Integration and mode switching for respiratory devices

The system integrates anesthesia and high-flow respiratory support systems with a switching mechanism, facilitating safe transitions between modes to enhance patient oxygenation and reduce procedural risks.

JP7844481B2Active Publication Date: 2026-04-13FISHER & PAYKEL HEALTHCARE LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
FISHER & PAYKEL HEALTHCARE LTD
Filing Date
2021-12-22
Publication Date
2026-04-13

AI Technical Summary

Technical Problem

Current high-flow systems and anesthesia machines are separate systems, lacking an effective and safe way to integrate and transition between respiratory support modes during medical procedures.

Method used

A system with a switching mechanism that integrates a first breathing apparatus for delivering anesthetic-containing gases and a second breathing apparatus for high-flow respiratory support, allowing seamless transition between modes by controlling gas flow and anesthetic delivery through patient interfaces.

Benefits of technology

Enables efficient and safe switching between anesthesia ventilation and high-flow modes, reducing health risks and improving patient oxygenation during medical procedures.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The present disclosure relates to systems and apparatus that provide integration of different respiratory therapies into a single system or provide integrated switching between separate systems or apparatus that deliver different therapies, such as anesthesia and high-flow therapy. Aspects of the disclosure relate to various systems, devices, apparatus, switching mechanisms and multi-lumen assemblies that integrate the control of these therapies and provide flexibility in how and where a user controls switching between therapies.
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Description

Technical Field

[0001] The present disclosure relates to systems for delivering respiratory assistance to a patient, as well as devices and systems for providing integration and switching of the functions of a breathing apparatus. The present disclosure relates particularly, but not exclusively, to the integration and switching between an anesthesia ventilation mode and a high-flow mode of respiratory assistance.

Background Art

[0002] A patient may lose respiratory function during anesthesia or sedation, or more generally during some medical procedures. Prior to a medical procedure, the patient may be pre-oxygenated by a medical professional to provide an oxygen saturation reservoir, and this pre-oxygenation and CO2 flushing / rinse may be performed with high-flow respiratory assistance via a nasal cannula or other patient interface.

[0003] Under general anesthesia, the patient must be intubated and ventilated. In some cases, intubation is completed in 30 to 60 seconds, but in other cases, particularly when it is difficult to cross the patient's airway (e.g., due to cancer, severe injury, obesity, or neck muscle spasm), intubation takes a significantly long time. Pre-oxygenation alleviates the decrease in oxygen saturation, but if the intubation procedure takes a long time, it is necessary to interrupt the intubation process and raise the patient's oxygen saturation to an appropriate level. Interruption of the intubation process may occur several times in a difficult intubation process, which is time-consuming and exposes the patient to significant health risks. After attempting intubation about three times, medical procedures such as intubation methods are abandoned.

[0004] High-flow systems may be present in operating rooms for use during anesthesia, sedation, or other medical procedures. High-flow respiratory support has been shown to promote patient oxygenation, reduce the work of breathing, and be effective in performing nasal humidified rapid supply-and-exchange ventilation (THRIVE) by meeting or exceeding the patient's normal inspiratory requirements. Pre-oxygenation using a high-flow system before administering anesthesia or sedatives provides an oxygen reservoir and extends safe apnea time. Furthermore, a flushing effect can be generated in the nasopharynx, so that it is flushed by a high-flow gas stream entering the anatomical dead space of the upper airway. This provides a reservoir of fresh gas available with each breath, while minimizing rebreathing of carbon dioxide, nitrogen, etc. THRIVE is the delivery of high-flow respiratory gas to the patient when the patient is apnea, and is performed when the anesthetic has taken effect and the patient has been successfully intubated and mechanical ventilation has begun. High-flow respiratory support refers to the delivery of heated and humidified respiratory gas to a patient via an open patient interface (such as a nasal cannula) at a high flow rate generally intended to meet or exceed the patient's inspiratory requirements while the patient is breathing spontaneously.

[0005] If pre-oxygenation is performed, an anesthetic is delivered to the patient to sedate them before intubation. After intubation, an anesthetic is also delivered to maintain the patient's anesthetic state during the medical procedure. This delivery of the anesthetic can be done by injection or by aerosol / vapor, the latter of which can be achieved by using an anesthesia machine. A system configured for anesthesia procedures typically includes an anesthesia machine, which includes a rebreathing system in which exhaled gases from the patient are returned to the machine. The anesthesia machine delivers an anesthetic to sedate and / or maintain the patient in a sedated state via a sealed mask placed over the patient. Once sedated, the patient is intubated and mechanically ventilated by the anesthesia machine, assisting or replacing spontaneous breathing (anesthetic ventilation).

[0006] In this specification, no reference to patent documents or any other matter identified as prior art should be construed as meaning that such documents or other matters were known, or that the information contained in such documents or other matters was part of the common general knowledge as of the priority date of any of the claims. [Overview of the project] [Problems that the invention aims to solve]

[0007] Currently, high-flow systems and anesthesia machines are separate systems, and there is no easy, effective, and safe way to integrate both systems and / or their functions into the administration of anesthesia. Therefore, it is difficult to efficiently and safely transition from one form of respiratory support to the other during medical procedures requiring the use of both devices. Solving or improving one or more of these difficulties would be beneficial. [Means for solving the problem]

[0008] In one aspect, this disclosure provides a system for delivering respiratory gases to a patient, and this system is (a) A first breathing apparatus that can be configured to deliver a breathing gas containing one or more types of anesthetics to a patient, (b) A second breathing apparatus that can be configured to deliver breathing gas to the patient at a predetermined flow rate, (c) A switching means that can be operated to select an operating mode of the system, wherein the operating mode is (i) A first mode in which the respiratory gas is delivered to the patient by the first respiratory device, (ii) A second mode in which the respiratory gas is delivered to the patient by a second respiratory device, A switching means selected from the group including, Includes.

[0009] Typically, in the second operating mode, the respiratory gas delivered to the patient eliminates the anesthetic.

[0010] In some embodiments, when the first mode is selected, the system directs the flow of respiratory gas to a first inspiratory channel, where a first patient interface directs the respiratory gas into the patient's airway and is a sealed interface. Preferably, the first patient interface directs the exhaled gas from the patient to an exhalation channel that returns the exhaled gas to the first inspiratory channel via the first breathing device. The first patient interface may be a sealed mask or an endotracheal tube.

[0011] In some embodiments, when the second mode is selected, the system isolates the flow of respiratory gas from the first respiratory device to prevent the delivery of anesthetic to the patient. Preferably, when the second mode is selected, the system directs the flow of respiratory gas to a second inspiratory channel, where a second patient interface directs the respiratory gas to the patient's airway, such as an open interface like a nasal cannula.

[0012] In some embodiments, the switching means includes a switching mechanism configured to change the flow of breathing gas in the system according to the selection of a first or second operating mode. The switching mechanism may be located between the gas supply unit and the first and second breathing devices. In some embodiments, the switching mechanism includes one or more gas flow valves.

[0013] In some embodiments, the switching mechanism includes a gas delivery device that receives a supply of gases including NO, O2, and air, and has one or more breathing gas outlets. The gas delivery device may include one or more flowmeters that control the flow rate of the gases including one or more of NO, O2, and air through one or more breathing gas outlets. One or more flowmeters can control the flow of breathing gases through one or more breathing gas outlets in response to the selection of a first or second operating mode.

[0014] In some embodiments, the gas delivery device includes a gas mixing element that mixes NO, O2, and air in proportions necessary for the operation of the system in the first mode.

[0015] In some embodiments, the gas delivery device includes a common gas outlet that supplies breathing gas from the gas delivery device to first and second breathing devices. The gas delivery device may include a first switching element that is connected to a switching means and is operable to control the input to the common gas outlet. (i) When the first mode is selected, the common gas outlet receives breathing gas from the gas mixing element, (ii) When the second mode is selected, the common gas outlet receives breathing gas from the flow meter.

[0016] In some embodiments, the first and second respiratory devices can be integrated into a single machine. The integrated machine may include a humidifier configured to adjust the respiratory gas to a predetermined temperature and / or humidity before delivering it to the patient in the second mode. The humidifier may be located between the second respiratory device and the second patient interface.

[0017] In some embodiments, the gas delivery device includes a gas mixing element that mixes NO, O2, and air in proportions required for the operation of the system in a first or second mode, and may further include a flow meter that controls the flow rate of the breathing gas from the gas mixing element. A first gas outlet that supplies breathing gas from the gas delivery device to the first breathing apparatus, A second gas outlet that supplies breathing gas from the gas delivery device to the second breathing device, A first switching element, connected to a switching means and operable to prevent the inflow of NO into the gas mixing element when the second mode is selected, It can include...

[0018] In some embodiments, the system further includes a second switching element connected to a switching means and operable to control the gas flow from a gas delivery device to first and second breathing devices, wherein (i) when a first mode is selected, breathing gas from the gas delivery device is directed only to a first gas outlet, and (ii) when a second mode is selected, breathing gas from the gas delivery device is directed only to a second gas outlet.

[0019] In some embodiments, the gas delivery device includes a first switching element that is operable to allow the flow of breathing gas from the gas delivery device to a first breathing device when a first mode is selected. The second breathing device may include a flow meter that receives a supply of gas containing O2 to be delivered at a predetermined flow rate, and the system may include a second switching element that is operable to allow the flow of breathing gas from the flow meter to a second patient interface when a second mode is selected. The first and second switching elements can be operablely coupled so that when a second mode is selected, the first switching element blocks the flow of breathing gas from the gas delivery device to the first breathing device, and the second switching element allows the flow of breathing gas from the flow meter to the second patient interface.

[0020] In some embodiments, the switching mechanism includes a gas shunt that receives a supply of gases including anesthetic gas and breathing gas, the gas shunt having first and second switching elements that are operable to control the flow of gas from the gas shunt to first and second breathing devices according to a selection of a first or second operating mode of the system. The first switching element may include a valve that controls the flow of anesthetic gas, which is open in the first mode and closed in the second mode. The second switching element may include one or more shunt valves that direct breathing gas to the first breathing device in the first mode and breathing gas to the second breathing device in the second mode.

[0021] In some embodiments, the switching mechanism includes (a) a first switching element operable to direct the flow of O2 to a first respiratory device in a first mode and to a second respiratory device in a second mode, and (b) a second switching element operable in response to the first switching element to stop the flow of gas from the first device to the patient when the first switching element is operating in the second mode. The first switching element may be, for example, a flow divider valve.

[0022] In some embodiments, the first breathing apparatus and the second breathing apparatus are separate machines. The second breathing apparatus can include a humidifier configured to adjust to a predetermined temperature and / or humidity before delivering breathing gas to the patient in the second mode.

[0023] In some embodiments, the first switching element and the second switching element are operatively coupled to operate substantially simultaneously with or subsequent to the operation of the switching means. In other embodiments, the switching means incorporates the first and second switching elements.

[0024] In some embodiments, the predetermined flow rate can be selected by the user operating the switching means from an available range of about 20 L / min to about 90 L / min. In some embodiments, the predetermined flow rate can be selected by the user from a plurality of predetermined available flow rates. The predetermined available flow rates can include at least, for example, 0 L / min, 40 L / min, and 70 L / min.

[0025] In some embodiments, the switching means is operable by the user to select the delivery of a selected predetermined flow rate in continuous flow or oscillating flow. The switching means can include a flow selector operable by the user to control the selection and / or delivery of the predetermined flow rate in the second operating mode. In some embodiments, operation of the flow selector blocks the delivery of breathing gas from the first breathing apparatus to the patient. In some embodiments, operation of the flow selector to select a flow rate of 0 L / min enables the supply of O2 to the first breathing apparatus, and otherwise, operation of the flow selector blocks the delivery of anesthetic from the first breathing apparatus to the patient.

[0026] In some embodiments, the switching means includes a pressure-controlled actuator configured to allow the flow of breathing gas in the first breathing device in response to an increase in the breathing gas pressure in the flow to the second breathing device. In some embodiments, the switching means includes a pressure-controlled actuator configured to block the flow of breathing gas in the first breathing device in response to a decrease in the breathing gas pressure in the flow to the second breathing device.

[0027] In some embodiments, the switching means further provides the user with a choice between a manual first operating mode or a mechanical first operating mode for the first respiratory device. For example, the switching means may include a three-way actuator that provides the user with a choice between a manual first operating mode, a mechanical first operating mode, or a second operating mode. Selection of the mechanical first mode can trigger the system to connect the mechanical ventilator circuit to the first respiratory device. Selection of the manual first mode can trigger the system to connect the ventilator bag to the first respiratory device.

[0028] In some embodiments, by selecting a second operating mode, the system substantially simultaneously (i) blocks the flow of respiratory gas from the first respiratory device to the patient through the first inspiratory channel and (ii) provides a flow of respiratory gas from the second respiratory device to the patient through the second inspiratory channel.

[0029] In some embodiments, the system includes a controller that receives input from one or more sensors that detect whether a breathing circuit connected to a patient's airway is associated with a first patient interface used with a first breathing device or with a second patient interface used with a second breathing device, the controller operating a switching means to select an operating mode according to the detected breathing circuit association.

[0030] One or more sensors may include, for example, pressure sensors positioned to measure back pressure in a first and / or second respiratory device, and the controller determines that a respiratory circuit is associated with the first patient interface if the measured back pressure indicates that respiratory gases are delivered to the patient through a substantially sealed patient interface. Alternatively or further, one or more sensors may include CO2 sensors associated with one or each of the first respiratory circuit associated with the first patient interface and the second respiratory circuit associated with the second patient interface, and the controller determines that a respiratory circuit in which exhaled gases from the patient contain a high concentration of CO2 is the respiratory circuit in which respiratory gases are delivered to the patient. Alternatively or further, the sensors may include proximity sensors.

[0031] In some embodiments, the switching means includes one or more user-operable actuators, one or more of which include one or more buttons, switches, knobs, electronic input devices, touchscreens, voice-activated sensors, and foot-operated switches. One or more actuators may be located at or near the patient interface through which respiratory gases are delivered to the patient by the first or second respiratory device. In some embodiments, one or more actuators include an electronic input device that is wirelessly connectable to the system controller and can be positioned at multiple locations relative to the patient and / or the first and second respiratory devices.

[0032] The switching means may include one or more mechanical, electronic, electromechanical, and pneumatic switching mechanisms. In some embodiments, one or more switching mechanisms may be connected to the switching means via one or more wired and wireless couplings. The switching mechanism may be operable to control one or more characteristics of the breathing gas delivered to the subject, the characteristics being selected from the group including the presence of volatile substances, flow rate, gas composition, gas concentration, temperature, and / or humidity.

[0033] In some embodiments, the second breathing apparatus is configured to deliver a flow of breathing gas at a predetermined flow rate in the range of approximately 20 to 90 L / min.

[0034] In some embodiments, the operation of the system in the second mode eliminates the delivery of anesthetics in the respiratory gas delivered to the patient. This can be achieved by any preferred means.

[0035] The first breathing apparatus may include one or more of the following: a CO2 absorber configured to process the exhaled gas returned in the first mode before recirculating it to the patient; a pressure limiting valve configured to maintain a substantially stable pressure within the system in the first mode; a variable volume section for gas replacement in the first mode; a fresh gas flow for replenishing the anesthetic gas delivered to the patient in the first mode; and a vaporizer for vaporizing volatile anesthetics into the breathing gas delivered to the patient in the first mode.

[0036] The second breathing apparatus may include one or more of a flow source configured to generate a gas flow through the system and a humidifier configured to adjust the breathing gas to a predetermined temperature and / or humidity before delivering it to the patient in the second mode.

[0037] Viewed in another aspect, the present disclosure provides a gas delivery device used in a respiratory system, the gas delivery device comprising (a) a first inlet for receiving a supply of anesthetic gases, (b) a second inlet for receiving a supply of respiratory gases, (c) a first outlet, (d) a second outlet, and (e) a manifold between the first and second inlets and the first and second outlets, providing a first channel to the first outlet and a second channel to the second outlet, wherein the gas delivery device is operable in (i) a first mode in which the first channel is open and the second channel is closed, and in (ii) a second mode in which the second channel is open and the first channel is closed.

[0038] In some embodiments, in a first embodiment, the gas delivery device blocks the flow of anesthetic gas to the outlet. A first valve can control the flow of anesthetic gas in the manifold, where, in a first embodiment, the first valve is open and directs the anesthetic gas into a first channel, and in a second embodiment, the first valve is closed. A second valve can control the flow of breathing gas in the manifold, where, in a first embodiment, the second valve directs the breathing gas into a first channel, and in a second embodiment, the second valve directs the breathing gas into a second channel. One or both of the first and second valves may be operable to control the flow rate of gas passing through them.

[0039] In some embodiments, the gas delivery device includes a third inlet for receiving a further supply of breathing gas, the breathing gas supplied to the second and third inlets including air and O2. A second valve may be operable to control the O2 concentration in the breathing gas delivered to the first and second flow paths.

[0040] In some embodiments, the gas delivery device can operate in a third form in which both the first and second channels are open.

[0041] In some embodiments, the gas delivery device includes a switching means that can be operated by the user to select a configuration for the operation of the gas delivery device. The switching means may be pneumatic, mechanical, electronic, or a combination thereof.

[0042] In some embodiments, the gas delivery device may be configured to be connected to a power source. In some embodiments, the gas delivery device may include a battery.

[0043] In some embodiments, the first outlet of the gas delivery device may be connectable to the gas inlet of a first respiratory device. The first respiratory device may be, for example, an anesthesia machine. In some embodiments, the second outlet of the gas delivery device may be connectable to the gas inlet of a second respiratory device. The second respiratory device may be, for example, a high-flow respiratory device.

[0044] The gas delivery device may include one or more switching elements that create first and second flow paths. The switching elements may be located in the first breathing device. The switching elements may be located in the second breathing device. The switching elements may be located at the patient interface where the breathing gas is directed to the patient's airway. The switching elements can be activated in response to the detection of a change in state detected by one or more system sensors. The system sensors may include one of the following: a pressure sensor, a CO2 sensor, an O2 sensor, a flow sensor, a gas concentration sensor, etc. The switching elements can communicate with one or more other switching elements via wired or wireless communication to control the operation of the gas delivery device according to a user-selected configuration.

[0045] In some embodiments, the gas delivery device includes an output module that provides either a visual or audible indication of the configuration in which the gas delivery device is operating, or both. The operation of the output module can be activated, for example, when a user operates a switching means to select a second embodiment.

[0046] In some embodiments, the gas delivery device includes a gas mixer that mixes the received gases in the proportions necessary to deliver the required treatment.

[0047] Viewed in another aspect, the present disclosure provides a respiratory device capable of operating to deliver respiratory gases to a patient in multiple modes, the respiratory device providing an inspiratory gas channel and an expiratory gas channel, (a) in a first mode, the respiratory device delivers respiratory gases containing one or more anesthetics into the inspiratory gas channel and receives the return of expiratory gases through the expiratory gas channel, (b) in a second mode, the respiratory device disables the flow of one or more anesthetics and delivers respiratory gases containing O2 into the inspiratory gas channel at a predetermined flow rate without the return of expiratory gases, and (c) in a transient mode, the respiratory device disables the flow of one or more anesthetics and delivers high-flow O2 into the inspiratory gas channel.

[0048] The respiratory apparatus may include a switching mechanism that can be operated to select one of several operating modes.

[0049] In some embodiments, the transient mode is activated only during the operation of an actuator that is normally biased to off. The respiratory device may include a button or trigger that is configured to be activated by the user to operate the respiratory device in transient mode, and the transient mode is deactivated by releasing the button or trigger.

[0050] In some embodiments, in a first mode, the respiratory device is capable of delivering respiratory gases containing an anesthetic to the patient via a first patient interface that forms a sealed interface with the patient's airway and returns the exhaled gases to the respiratory device through an exhaled gas channel. The first patient interface may be a mask or an endotracheal tube.

[0051] In some embodiments, in a second mode, the respiratory device is operable to deliver respiratory gas to the patient through a second patient interface that forms an open interface with the patient's airway. The second patient interface may be, for example, a nasal cannula.

[0052] In some embodiments, the respiratory device can operate in either a manual first operating mode or a mechanical first operating mode. The respiratory device may include a user-operable switching means to select between the manual first operating mode, the mechanical first operating mode, or a second operating mode. In some embodiments, selecting the manual first mode triggers the connection of a manual ventilation bag to the first respiratory device.

[0053] In some embodiments, the breathing apparatus may be configured to communicate with a gas flow one or more of the following: a CO2 absorber configured to process the exhaled gas returned in a first mode before recirculating it to the patient; a pressure limiting valve configured to maintain a substantially stable pressure within the system in a first mode; a variable volume section for gas replacement in a first mode; a fresh gas flow for replenishing the anesthetic gas delivered to the patient in a first mode; and a vaporizer for vaporizing volatile anesthetics into the breathing gas delivered to the patient in a first mode.

[0054] In some embodiments, the breathing apparatus can be configured to communicate with a gas flow source configured to generate a gas flow through the system and a humidifier configured to adjust the breathing gas to a predetermined temperature and / or humidity before delivering it to the patient in a second mode.

[0055] Viewed in another aspect, the present disclosure provides a system for delivering respiratory gases to a patient, the system receiving a supply of respiratory gases to be delivered to the patient via an inspiratory gas channel and connectable to a return gas conduit for returning exhaled gases from the patient, the system including a flow generator configured to generate a gas flow through the system and a switching actuator operable to select an operating mode of the system, the system operable in a first mode in which the respiratory gases are delivered in a closed gas flow circuit where exhaled gases are returned to the system for rebreathing by the patient, and a second mode in which the respiratory gases are delivered in an open gas flow circuit without rebreathing.

[0056] In some embodiments, the flow generator is a blower capable of delivering a gas flow at a flow rate suitable for delivering respiratory therapies, including anesthesia, ventilation, and high-flow respiratory support. The flow generator may be capable of delivering gas flows in the range of up to approximately 90 L / min.

[0057] In some embodiments, a switching actuator is operatively coupled to a flow generator, and operation of the switching actuator to select a first mode triggers operation of the flow generator at a low flow rate, such as less than 15 L / min.

[0058] In some embodiments, the switching actuator includes or is operatively coupled to a switching mechanism, such that in a first mode, the switching mechanism allows a first fresh breathing gas flow to the system and allows exhaled gas to return to the system, and in a second mode, the switching mechanism allows a first fresh breathing gas flow to the system and prevents exhaled gas from returning to the system. The switching mechanism may include any preferred mechanism, such as a gas flow divider or a pressure-controlled gas flow divider.

[0059] In some embodiments, the switching mechanism is located upstream of the flow generator.

[0060] In some embodiments, the switching mechanism is operatively coupled to the flow generator, and operation of the switching mechanism in the first mode triggers operation of the flow generator at a low flow rate.

[0061] The second mode can include a ventilator mode and a high-flow mode.

[0062] In some embodiments, operating a switching actuator to select a high-flow mode triggers the flow generator to operate at a flow rate sufficient to provide high-flow respiratory support. In some embodiments, operating a switching actuator to select a ventilator mode triggers the flow generator to operate at a flow rate matching the patient's ventilation.

[0063] In some embodiments, the system is configured to receive a supply of anesthetic gases to be delivered to the patient in the inspiratory gas flow path in the first mode. The system may include a pressure limiting valve to maintain a substantially stable gas pressure within the system. The system may be configured to receive a supply of anesthetic gases downstream of or upstream of the flow generator. A return gas conduit may be connectable to the system downstream of the flow generator.

[0064] In some embodiments, the system may include a gas flow reflector, which can be configured, for example, to collect anesthetic gas exhaled from the patient and return it to the inspiratory gas path in the subsequent inhalation phase.

[0065] This system can be configured to block the supply of anesthetic gas to the system when the second mode is selected.

[0066] The system may include a CO2 absorber configured to process the exhaled gas returned in the first mode before recirculating it into the inspiratory gas path. Alternatively, or further, the system may include a humidifier configured to adjust the respiratory gas to a predetermined temperature and / or humidity before delivering it to the patient in the second mode.

[0067] Viewed in another aspect, the present disclosure provides a system for delivering respiratory gas to a patient, the system being operable in a first mode and a second mode, the first mode comprising a recirculating gas flow between the system and the patient's airway, and the second mode comprising a non-recirculating gas flow between the system and the patient's airway, the system comprising (a) a first module comprising a first set of respiratory components, and (b) a second module comprising a second set of respiratory components, the second module being configured to work with the first module to switch between the two modes, the system being operable in the first mode when the first module is activated or coupled to the second module, and the system being operable in the second mode when the first module is stopped or uncoupled from the second module.

[0068] In the first mode, the gas supplied to the patient in the recirculating gas flow may contain an anesthetic.

[0069] A first set of respiratory components may include one or more of the following: a CO2 absorber configured to process the exhaled gas returned in the first mode before recirculating it to the patient; a pressure limiting valve configured to maintain a substantially stable pressure within the system in the first mode; a variable volume section for gas replacement in the first mode; a fresh gas flow for replenishing the anesthetic gas delivered to the patient in the first mode; and a vaporizer for vaporizing volatile anesthetics into the respiratory gas delivered to the patient in the first mode.

[0070] The second set of respiratory components may include one or more of the following: a flow source configured to generate a gas flow through the second set of respiratory components; an inspiratory conduit; a patient interface configured to direct gas from the non-recirculating gas flow to the patient's airway; a humidifier configured to adjust the respiratory gas to a predetermined temperature and / or humidity before delivering it to the patient in second mode; and a filter upstream of the patient interface.

[0071] The first module may include a first gas outlet and a first gas inlet, and the second module may include a second gas inlet and a second gas outlet, wherein the first gas outlet is connectable to the second gas inlet, and the first gas inlet is connectable to the second gas outlet.

[0072] In some embodiments, the operation of the system in the first mode allows for a first fresh breathing gas flow into the system and allows for the return of exhaled gas to the system, while the second mode allows for a first fresh breathing gas flow into the system and prevents the return of exhaled gas to the system.

[0073] In some embodiments, the system's operation in a second mode prevents the release of anesthetic from the system. The second mode can include a ventilator mode and a high-flow mode.

[0074] The second module can be configured to receive a supply of breathing gas independently of the first module.

[0075] In another aspect, the present disclosure provides a system for delivering respiratory gases to a patient, the system comprising a flow source configured to generate a gas flow through a system in a gas delivery circuit, and a switching mechanism forming part of the gas delivery circuit, the gas delivery circuit having an inspiratory gas path and an expiratory gas path, the switching mechanism configured to switch the gas path in the gas delivery circuit according to a selection of a first operating mode in which the inspiratory gas path is in fluid communication with a first patient interface, or a second operating mode in which the inspiratory gas path is in fluid communication with a second patient interface.

[0076] The first patient interface can form a substantially sealed interface with the patient's airway and receive exhaled gas from the patient. The second patient interface can form an unsealed interface with the patient's airway.

[0077] In some embodiments, the switching mechanism includes one or more of a gas flow divider, a bistable switch, a pneumatic switch, a rotary switch, a lever, a knob, or other user-operable actuators. The switching mechanism may be user-operable to switch between inhaled and exhaled gas flows in the gas delivery circuit.

[0078] In some embodiments, the system includes one or more sensors configured to monitor one or more characteristics of the gas in the gas delivery circuit, and controls the operation of a flow generator based on the one or more monitored characteristics. The characteristics may include, for example, one or more of the following: flow rate, pressure, and CO2. In some embodiments, the system controls the operation of the flow source to generate a low flow rate when one or more sensors indicate that the breathing gas flow is toward a first patient interface. In some embodiments, the system controls the operation of the flow generator to generate a high flow rate when one or more sensors indicate that the breathing gas flow is toward a second patient interface.

[0079] In some embodiments, the system is configured to receive user input to select either a first operating mode in which the flow source generates a low flow rate below a predetermined flow rate, or a second operating mode in which the flow source generates a high flow rate above a predetermined flow rate, and the switching mechanism operates in response to the flow rate of gas in the inspiratory gas passage generated by the flow source. In response to a low flow rate of gas in the inspiratory gas passage, the switching mechanism can direct the flow to a first patient interface. In response to a high flow rate of gas in the inspiratory gas passage, the switching mechanism can direct the flow to a second patient interface.

[0080] In some embodiments, the switching mechanism is provided by the operation of the first and second patient interfaces, where a first delivery mode is selected when both the first and second patient interfaces are applied to the patient simultaneously, and a second delivery mode is selected when only the second patient interface is applied to the patient. In some embodiments, the first patient interface is a sealed face mask, and the second patient interface is a nasal cannula adapted to operate, including while the sealed face mask is applied over the nasal cannula. Thus, the first patient interface may be a mask configured to form a sealed interface over the second patient interface, which is the nasal cannula. In some embodiments, the sealed face mask is not operational when it is not applied over the nasal cannula, and the second delivery mode is enabled when only the nasal cannula is applied to the patient.

[0081] In some embodiments, simultaneous use of the first and second patient interfaces in the first mode directs the inspiratory gas flow to the patient through one or both of the first and second patient interfaces, and returns the exhaled gas to the exhaled gas flow path from the first patient interface.

[0082] In some embodiments, the first patient interface is in fluid communication with an anesthetic gas reflector.

[0083] In some embodiments, the system may include one or more of the following: a CO2 absorber configured to process the exhaled gas returned in a first mode before recirculating it to the patient; a pressure limiting valve configured to maintain a substantially stable pressure within the system in a first mode; a variable volume section for gas replacement in a first mode; a fresh gas flow for replenishing the anesthetic gas delivered to the patient in a first mode; and a vaporizer for vaporizing volatile anesthetics into the respiratory gas delivered to the patient in a first mode.

[0084] In some embodiments, the system includes one or more flow sources configured to generate a gas flow through the system and humidifiers configured to adjust the breathing gas to a predetermined temperature and / or humidity before delivering it to the patient in a second mode.

[0085] In another aspect, the present disclosure provides a switching mechanism that forms part of a gas delivery circuit for delivering respiratory gases to a patient, the switching mechanism configured to switch between an inspiratory gas path and an expiratory gas path in the gas delivery circuit according to a selection of a first operating mode in which the inspiratory gas path is in fluid communication with a first patient interface, or a second operating mode in which the inspiratory gas path is in fluid communication with a second patient interface.

[0086] In some embodiments, the switching mechanism may be user-operable and may include one or more of the following: a gas flow divider, a pneumatic switch, a rotary switch, a lever, a knob, or other user-operable actuators.

[0087] In some embodiments, the switching mechanism can operate in response to the gas flow rate in the intake passage, with a second operating mode selected when the gas flow rate is high. In some embodiments, the switching mechanism can be configured to operate in response to the gas flow rate in the intake passage, with the switching mechanism switching to a first operating mode when the gas flow rate is low, and switching to a second operating mode when the gas flow rate is high.

[0088] Viewed in another aspect, the present disclosure provides a multi-tube lumen assembly used in a respiratory support system, the multi-tube lumen assembly having a plurality of conduits including (a) a first inspiratory conduit having a first conduit inlet end connectable to a first gas outlet of the respiratory support system, (b) a second inspiratory conduit having a second conduit inlet end connectable to a second gas outlet of the respiratory support system, and (c) an expiratory conduit having an expiratory conduit outlet end connectable to an expiratory gas inlet of the respiratory support system.

[0089] The first inspiratory conduit may have a first conduit outlet end that is connectable to a first patient interface configured to seal and engage with the patient's airway and direct airflow into the airway. The second inspiratory conduit may have a second conduit outlet end that is connectable to a second patient interface configured to direct airflow into the patient's airway and is an unsealed interface.

[0090] In some embodiments, at least some of the conduits can be arranged coaxially.

[0091] A mechanism can be provided for holding at least a portion of a plurality of conduits as a block. This mechanism may include webbing spaced apart or continuously along at least a portion of the plurality of conduits, between at least pairs of the plurality of conduits. The webbing may be breakable to facilitate the separation of one or more portions of the plurality of conduits from the block. Alternatively or further, this mechanism may include a sheath applied around the plurality of conduits. Part of the sheath may be removable. The sheath may provide a smooth outer surface. Alternatively or further, this mechanism may include one or more retainers configured to hold two or more conduits in the plurality of conduits as a block. The retainers may be slidable along one or more portions of the conduits in the plurality of conduits.

[0092] In some embodiments, the first inspiratory conduit may be configured to deliver respiratory gas containing an anesthetic to the patient. The expiratory conduit may be configured to return the exhaled gas from the patient to the respiratory support system. The second inspiratory conduit may be configured to deliver respiratory gas to the patient at a flow rate of 20 L / min to 90 L / min.

[0093] In some embodiments, the multi-lumen assembly includes, or can cooperate with, a flow switching mechanism that can be operated to direct the flow of respiratory gas into a first inspiratory conduit or into a second inspiratory conduit. The flow switching mechanism may be a flow divider. The flow switching mechanism may be user-operable. Alternatively or further, the flow switching mechanism may be operatively coupled to a respiratory support system controller. In some embodiments, the respiratory support system controller controls the respiratory support system to deliver respiratory gas to the multi-lumen assembly in accordance with the user's operation of the flow switching mechanism. The respiratory support system controller can control the operation of the flow switching mechanism.

[0094] In some embodiments, the outlet end of the first inspiratory conduit and the inlet end of the expiratory conduit form a common gas flow path defined by a single gas exchange conduit connectable to a first patient interface. A taper can be provided in the region of the single gas exchange conduit to reduce the overall cross-sectional area of ​​the multi-lumen assembly.

[0095] In some embodiments, the multi-lumen assembly includes a patient-end connector that (a) connects the outflow end of a first inspiratory conduit to a first patient interface, and (b) connects the outflow end of a second inspiratory conduit to a second patient interface. The patient-end connector may include a switching element that can be operated to switch the connector between a first operating mode in which the connector directs breathing gas to the first patient interface and a second operating mode in which the connector directs breathing gas to the second patient interface. The switching element may be operationally connectable to a respiratory support system controller. Alternatively or further, the switching element may be user-operable, and the controller controls the operation of the respiratory support system in accordance with the user's operation of the switching element. In some embodiments, the respiratory support system controller controls the operation of the switching element.

[0096] In some embodiments, the multi-lumen assembly may include a gas sampling conduit for monitoring one or more characteristics of the gas. The characteristics can be used by the respiratory support system controller to determine whether the connector is delivering the respiratory gas to the patient through the first or second inspiratory conduit, and the controller can operate the respiratory support system to automatically select the corresponding operating mode of the respiratory support system.

[0097] Viewed in another aspect, the present disclosure provides a respiratory gas connector used in a respiratory support system for delivering respiratory gas to a patient, the connector comprising: (a) an inlet port connectable to a gas conduit for receiving respiratory gas from a respiratory support system; (b) a first outlet port connectable to a first gas channel for delivering respiratory gas to a patient via a first patient interface; (c) a second outlet port connectable to a second gas channel for delivering respiratory gas to a patient via a second patient interface; and (d) a switching mechanism operable to switch the connector between a first operating mode in which the connector directs gas from the inlet port to the first outlet port and a second operating mode in which the connector directs gas from the inlet port to the second outlet port.

[0098] In some embodiments, the connector may include an exhalation gas port connectable to an exhalation gas conduit, and in the first mode, the switching mechanism directs the exhalation gas in the first gas flow path to the exhalation gas conduit.

[0099] The switching mechanism may be operationally connectable to the controller of the respiratory support system. By operating the connector switching mechanism, the following can be selected: (a) In the first operating mode, the controller operates the respiratory support system in a first mode in which respiratory gas containing anesthetic is delivered to the gas conduit connected to the connector; (b) In the second operating mode, the controller operates the respiratory support system in a second mode in which respiratory gas is delivered to the gas conduit connected to the connector at a predetermined flow rate.

[0100] In some embodiments, the connector switching mechanism is operatively connectable to the controller of the respiratory support system, and by operating the connector switching mechanism to select a second operating mode, the controller can be configured to block the flow of anesthetic in the respiratory gas.

[0101] In some embodiments, the connector may include a sensor that detects one or more characteristics of the gas at a first or second outlet port, the characteristics of which are used to determine whether the connector is connected to the patient's airway by a first or second patient interface, and the sensor provides input to a respiratory support system controller that automatically selects the corresponding operating mode of the respiratory support system. The one or more characteristics may include, for example, gas pressure, CO2 concentration, and gas flow rate.

[0102] In some embodiments, the sensor wire may be positioned inside a conduit that provides a gas flow path between the sensor and the respiratory support system controller.

[0103] Viewed in another aspect, the present disclosure provides a controller used in a respiratory support system that delivers respiratory gas to a patient via a multi-lumen assembly, the controller comprising: (a) a control interface operable to receive a user selection of a first or second operating mode of the respiratory support system; (b) a tube assembly input connector that connects to a patient end of a multi-lumen assembly having a first inspiratory conduit, a second inspiratory conduit, and an expiratory conduit; (c) a first flow port connectable to a first flow path that delivers respiratory gas to the patient in the first mode; and (d) a second flow port connectable to a second flow path that delivers respiratory gas to the patient in the second mode.

[0104] In some embodiments, the controller may include a switching mechanism configured to direct the breathing gas from a first inspiratory conduit to a first flow port when a first mode is selected, and to direct the breathing gas from a second inspiratory conduit to a second flow port when a second mode is selected.

[0105] In some embodiments, the controller may include a third flow port that can be connected to an expiratory flow path that receives exhaled air from the patient in a second mode. A switching mechanism may be configured to direct the exhaled gas to the third flow port when the second mode is selected.

[0106] In some embodiments, the controller may include mounting means configured to releasably mount the controller to a structure located in close proximity to the patient.

[0107] In some embodiments, the control interface can be operationally coupled to a respiratory support system controller. The respiratory support system controller can control the respiratory support system according to an operating mode selected using the control interface to deliver respiratory gas to the multi-lumen assemblies described above. In some embodiments, the respiratory support system controller is operable to control the operation of the control interface. The controller can be provided for use with the multi-lumen assemblies described above.

[0108] Viewed in another aspect, the present disclosure provides a system for delivering respiratory gases to a patient, the system being operable to deliver respiratory gases via a first patient interface in a first mode and via a second patient interface in a second mode, the system comprising (a) one or more CO2 sensors configured to detect CO2 in exhaled gases from a patient, (b) a switching mechanism for switching between a first mode and a second mode according to the detected CO2, and (c) a system controller for receiving input from one or more CO2 sensors, the system controller for operating the switching mechanism to select either the first mode or the second mode.

[0109] In some embodiments, the switching mechanism is operable to switch modes when at least a predetermined threshold of CO2 is detected. The threshold may be, for example, equivalent to the CO2 concentration in the ambient air.

[0110] One or more switching mechanisms include one or more mechanical, electronic, electromechanical, and pneumatic switching mechanisms. One or more switching mechanisms may be connected to a system controller via wired and / or wireless coupling.

[0111] In some embodiments, in the first mode, the respiratory gas is delivered to the patient's airway via a first patient interface, which may be a sealed interface such as a sealed mask or an endotracheal tube, and the exhaled gas is returned to the system through an exhaled gas channel. The first mode may include a rebreathing mode in which the exhaled gas returned to the system is recirculated so that it is delivered to the patient via the first patient interface. The respiratory gas may include one or more anesthetics. In some embodiments, a CO2 sensor detects CO2 in the exhaled gas in the exhaled gas channel.

[0112] In some embodiments, the second mode is a high-flow mode in which respiratory gas is delivered to the patient at a predetermined flow rate through a second patient interface, which is an open interface such as a nasal cannula. A CO2 sensor can detect CO2 in the exhaled gas as it exits the patient's airway at the second patient interface. In some embodiments, the CO2 sensor is located on the nasal cannula and can detect CO2 in the exhaled gas exiting one or both of the patient's nasal cavities.

[0113] In some embodiments, the system includes a first breathing device for delivering breathing gas in a first mode and a second breathing device for delivering breathing gas in a second mode. When the second mode is selected, the system can isolate the flow of breathing gas from the first breathing device to the patient. In some embodiments, the first and second breathing devices may be integrated into a single machine, but this is not required. In some embodiments, the system may include a humidifier configured to adjust the temperature and / or humidity to a predetermined level before delivering breathing gas to the patient in the second mode.

[0114] In some embodiments, the second breathing apparatus delivers breathing gas at a predetermined flow rate, which can optionally be selected from an available range of approximately 20 L / min to approximately 90 L / min by operating a switching means.

[0115] In some embodiments, the system includes a CO2 sensor associated with one or each of a first breathing circuit for delivering breathing gas in a first mode and a second breathing circuit for delivering breathing gas in a second mode. The controller can determine which breathing circuit contains the highest concentration of CO2 is the breathing circuit to which the breathing gas is supplied to the patient, and can control the supply of gas to the determined breathing circuit according to the relevant operating mode.

[0116] In some embodiments, the system includes a display device that can be configured to operationally communicate with a system controller and display one or more CO2O2 traces based on inputs from one or more CO2 sensors received by the system controller. The system controller can be configured to automatically display a single CO2 trace corresponding to a CO2 sensor input that represents the highest CO2 detected from the multiple CO2 sensors.

[0117] In some embodiments, the first breathing apparatus may include one or more of the following: a CO2 absorber configured to process the exhaled gas returned in the first mode before recirculating it to the patient; a pressure limiting valve configured to maintain a substantially stable pressure within the system in the first mode; a variable volume section for gas replacement in the first mode; a fresh gas flow for replenishing the anesthetic gas delivered to the patient in the first mode; and a vaporizer for vaporizing volatile anesthetics into the breathing gas delivered to the patient in the first mode.

[0118] In some embodiments, the second breathing apparatus may include one or more of a flow source configured to generate a gas flow through the system and a humidifier configured to adjust the breathing gas to a predetermined temperature and / or humidity before delivering it to the patient in the second mode.

[0119] Viewed in another aspect, the present disclosure provides a system for delivering respiratory gases to a patient, the system comprising (a) a flow source configured to provide a gas flow through the system in a gas delivery circuit, and (b) a gas delivery conduit circuit including an inspiratory gas channel and an expiratory gas channel, the system configured to switch between a first mode and a second mode. In the first mode, the system is operable to deliver respiratory gases to the patient via an inspiratory gas channel and a first patient interface fluidly communicating with the inspiratory gas channel, and to deliver expiratory gases from the patient via an expiratory gas channel and a second patient interface fluidly communicating with the expiratory gas channel, the respiratory gas comprising a first flow parameter. In the second mode, the system is operable to deliver respiratory gases to the patient via an inspiratory gas channel and a third patient interface, the respiratory gas comprising a second flow parameter.

[0120] In some embodiments, the first flow parameter is different from the second flow parameter. The first flow parameter may include a first flow rate, and the second flow parameter may include a second flow rate, with the first flow rate being less than the second flow rate. In some embodiments, the first flow rate is less than 15 L / min, and the second flow rate is greater than 15 L / min. In some embodiments, the second flow rate is in the range of about 20 L / min to about 90 L / min, and optionally about 40 L / min to about 70 L / min.

[0121] The first patient interface may include an unsealed patient interface, such as a nasal cannula, and the second patient interface may include a sealed patient interface, such as a mask. The third patient interface may also include an unsealed patient interface, such as a nasal cannula. In some embodiments, the first and third patient interfaces are the same.

[0122] In some embodiments, the exhalation path is inoperable in the second mode.

[0123] In some embodiments, the system is in a first mode when the first and second patient interfaces are applied to the patient simultaneously, and in a second mode when only the third patient interface is applied to the patient. The first and third patient interfaces may include an unsealed nasal cannula, and the second patient interface may include a sealed mask. The system may be in a first mode when the nasal cannula and mask are applied to the patient, and in a second mode when only the nasal cannula is applied to the patient. In some embodiments, the mask is configured to seal the nasal cannula to the patient.

[0124] In some embodiments, the system may include a third mode and a fourth patient interface, and the system may be configured to deliver respiratory gas to the patient via an inspiratory gas channel and the fourth patient interface, and to deliver exhaled gas from the patient via an expiratory gas channel and the fourth patient interface. The respiratory gas may include a third flow parameter. The fourth patient interface may include a sealed patient interface, such as an invasive patient interface, a laryngeal mask, or an endotracheal tube.

[0125] In some embodiments, the first flow parameter includes pressure and / or volume parameters.

[0126] In some embodiments, the third flow parameter includes one or more of the flow rate, pressure, or volume parameters.

[0127] In some embodiments, the system can be configured to control the delivery of respiratory gases to the patient based on pressure and / or volume.

[0128] In some embodiments, the system includes an inspiratory conduit defining at least a portion of the inspiratory gas flow path, an expiratory conduit defining at least a portion of the expiratory gas flow path, and a common connector provided at the ends of the inspiratory and expiratory conduits, the common connector being configured to connect to one or more patient interfaces.

[0129] In some embodiments, the system includes a controller that communicates with a flow source, and one or more sensors and input interfaces that communicate with the controller and provide input to the controller to control the flow source to provide a breathing gas flow in a first or second mode. The sensors and / or input interfaces may be configured to provide input to the controller to control the flow source to provide a breathing gas flow in a third mode.

[0130] In some embodiments, the system includes a humidifier, and the breathing gas is heated and humidified by the humidifier before being delivered to the patient in the second mode.

[0131] In some embodiments, exhaled gas from the patient is returned to the inspiratory gas path in a first mode. In some embodiments, exhaled gas from the patient is returned to the inspiratory gas path in a third mode. In some embodiments, the system includes a CO2 remover configured to remove CO2 from the exhaled gas before returning it to the inspiratory gas path.

[0132] When a high-flow system and an anesthesia machine are integrated, a configuration that allows for easy and sufficient humidification of the respiratory gas delivered during high-flow respiratory support may be desirable. It may also be desirable to enable humidification of the respiratory gas in high-flow mode.

[0133] Viewed in another aspect, the present disclosure provides a respiratory device for delivering respiratory gases to a patient, the respiratory device comprising: a flow source that provides a flow of respiratory gases to be delivered to the patient in an inspiratory channel; a mounting base connected to at least one vaporizer that vaporizes one or more volatile anesthetics into the flow of respiratory gases in the inspiratory channel before delivery to the patient; and a return channel that recirculates exhaled gases received from the patient via an expiratory channel into the inspiratory channel, the mounting base being connectable to a humidifying component that adjusts the flow of respiratory gases in the inspiratory channel to a predetermined temperature and / or humidity before delivery to the patient.

[0134] In some embodiments, the operation of the humidifying component prevents the delivery of one or more volatile anesthetics into the respiratory gas flow in the inspiratory passage. The operation of the humidifying component can disable the operation of at least one vaporizer.

[0135] In some embodiments, the breathing apparatus further includes an interlocking mechanism that prevents simultaneous operation of a humidifying component and at least one vaporizer. The interlocking mechanism may be configured to enable the operation of the humidifying component or at least one vaporizer when in the unlocked state and to disable the operation of the humidifying component or at least one vaporizer when in the locked state.

[0136] The humidifying components and at least one vaporizer can be configured to cooperate with each other to provide an interlocking mechanism. The humidifying components and at least one vaporizer may be mounted adjacent to each other on a breathing apparatus. For example, a mounting base may include a number of slots for connecting the humidifying components and at least one vaporizer in a side-by-side arrangement. The slots may be configured to receive the housing of the humidifying components and the housing of at least one vaporizer. The mounting base may be configured to receive the housing of the humidifying components and the housing of at least one vaporizer by sliding engagement with the slots.

[0137] In some embodiments, the humidifying component and at least one vaporizer may each include a locking element associated with its housing. The locking element may be configured to engage with a corresponding locking element associated with the other housing of the humidifying component and at least one vaporizer to provide an interlocking mechanism. The locking element may include at least one locking pin that is retractable within the housing in the locked state and extendable from the housing in the unlocked state. The locking element may include two or more locking pins, each locking pin independently retractable within the housing in the locked state and extendable from the housing in the unlocked state.

[0138] In some embodiments, the humidifying component and at least one vaporizer include slots associated with their housings, and at least one locking pin is slidably movable between the slots of the humidifying component and at least one vaporizer to provide an interlocking mechanism. In the locked configuration, the at least one locking pin may be positionable in a slot of either the humidifying component or at least one vaporizer. In the unlocked configuration, it may be positionable in the other slot of either the humidifying component or at least one vaporizer.

[0139] In some embodiments, the breathing apparatus further includes a switching mechanism configured to enable selective operation of a humidifying component and at least one vaporizer. When the switching mechanism is activated to operate either the humidifying component or at least one vaporizer, the other of the humidifying component and at least one vaporizer may remain inoperable until the switching mechanism is deactivated.

[0140] The switching mechanism may include each of at least one vaporizer and humidifying component that is operable by a switch, and the switches may be linked together to prevent simultaneous operation of the humidifying component and at least one vaporizer.

[0141] In some embodiments, the switching mechanism is coupled with an interlocking mechanism. When the switching mechanism is activated to operate a humidifying component or at least one vaporizer, the interlocking mechanism can enable the operation of the humidifying component or at least one vaporizer and disable the operation of the other of the humidifying component or at least one vaporizer.

[0142] In some embodiments, the humidification component includes a humidification chamber through which breathing gas is received and adjusted to a predetermined temperature and / or humidity. The humidification chamber may be configured to be connected to a mounting base. The housing of the humidification chamber may be configured to be slidably received on the mounting base. For example, the mounting base may include a number of slots, and the housing of the humidification chamber may be slidably received in one of the slots.

[0143] The mounting base may include a heating element for heating the liquid in the humidification chamber. The humidification chamber may include a conductive plate for conducting heat from the heating element in the mounting base. In other embodiments, the humidification chamber includes a heating element for heating the liquid in the humidification chamber. The humidification chamber may be configured to be electrically connected to a breathing apparatus for the operation of the humidification chamber.

[0144] In some embodiments, the humidification component includes a humidifier having a humidification chamber, the humidification chamber being connectable to a humidification base unit for operation. The humidification base unit may be configured to be connected to a mounting base. The housing of the humidification base unit may be configured to be slidably received on the mounting base. For example, the mounting base may include a plurality of slots, and the housing of the humidification base unit may be slidably received in one of the slots. The humidification base unit may include a heating element for heating the liquid in the humidification chamber.

[0145] A humidifying chamber as disclosed herein may include an inlet port for receiving a flow of respiratory gases from a respiratory device and an outlet port for delivering a regulated flow of respiratory gases to a patient. The outlet port may be connectable to an inspiratory conduit to deliver a regulated flow of respiratory gases to the patient via a patient interface.

[0146] In other embodiments, a humidification chamber as disclosed herein may include an inlet port for receiving a flow of breathing gas from a breathing apparatus and a return port for returning the regulated flow of breathing gas to the breathing apparatus. The return port may be connectable to the breathing apparatus to return the regulated flow of breathing gas.

[0147] In some embodiments, the humidification chamber includes a liquid inlet connected to a liquid reservoir for refilling the humidification chamber. The humidification chamber may include a flow control mechanism to control the flow of liquid into the humidification chamber. The humidification chamber may include at least one sensor to detect the liquid level in the humidification chamber. The humidification chamber may include a float valve to control the liquid level in the humidification chamber.

[0148] In some embodiments, the humidifying component can be connected to a mounting base via an adapter. The adapter may include a first inlet port for receiving a flow of breathing gas from a breathing apparatus and a first outlet port for delivering the flow of breathing gas to the humidifying component. The adapter may further include a second inlet port for receiving a regulated flow of breathing gas from the humidifying component. The adapter may also include a second outlet port for delivering the regulated flow of breathing gas from the humidifying component to the breathing apparatus.

[0149] In some embodiments, the adapter is configured to electrically connect to the breathing apparatus for the operation of the humidifying component. The adapter may include a first power connector that provides an electrical connection to the breathing apparatus. The adapter may also include a second power connector that provides an electrical connection to the humidifying component.

[0150] The respiratory device can be configured to operate in the following modes: a first mode in which the respiratory device delivers respiratory gas to the inspiratory channel and receives the return of exhaled gas through the expiratory channel; and a second mode in which the respiratory device delivers respiratory gas to the inspiratory channel at a predetermined flow rate without the return of exhaled gas from the patient.

[0151] In some embodiments, the respiratory device is further configured to detect the connection of a humidifying component to a mounting base in order to enable the respiratory device to operate in a second mode. For example, the mounting base may include a sensor for detecting the connection of the humidifying component. In the second mode, the humidifying component may be operable to adjust the flow of respiratory gas in the inspiratory passage to a predetermined temperature and / or humidity before delivering it to the patient.

[0152] In some embodiments, the respiratory apparatus further includes a CO2 absorber configured to process the exhaled gas returned from the patient before recirculating it to the patient in a first mode. In a second mode, the CO2 absorber may be further configured to adjust the respiratory gas in the inspiratory channel to a predetermined temperature and / or humidity before delivering it to the patient. In a second mode, the CO2 absorber may be configured to adjust the respiratory gas to a predetermined temperature and / or humidity by either or both of the following: changing the amount of soda lime present in the CO2 absorber and / or changing the amount of CO2 supplied to the soda lime present in the CO2 absorber.

[0153] In the first mode, the respiratory device may be capable of delivering respiratory gases to the patient via a first patient interface that forms a sealed interface with the patient's airway and returns the exhaled gases to the respiratory device through the expiratory channel. In the first mode, the respiratory gases include one or more anesthetics. The first patient interface may be a mask or an endotracheal tube.

[0154] In the second mode, the respiratory device may be capable of supplying respiratory gas to the patient through a second patient interface that forms an open interface with the patient's airway. The second patient interface may be a nasal cannula.

[0155] In the second mode, the predetermined flow rate can be in the range of approximately 20 L / min to approximately 90 L / min.

[0156] In the second mode, the predetermined flow rate can be in the range of approximately 40 L / min to approximately 70 L / min.

[0157] In some embodiments, the breathing apparatus can be configured to communicate with a gas delivery device that receives a supply of gases including NO, O2, and air. The gas delivery device may include a gas mixing element that mixes one or more of NO, O2, and air in the proportions necessary to deliver the breathing gas in a first mode and / or a second mode, and a gas outlet that supplies gas from the gas delivery device to the breathing apparatus.

[0158] In some embodiments, the breathing apparatus can be configured to communicate with a flow meter that controls the flow of a gas containing either or both air and O2 in a second mode.

[0159] In some embodiments, the breathing apparatus may be configured to communicate with a gas flow one or more of the following: a pressure limiting valve configured to maintain a substantially stable pressure within the breathing apparatus in a first mode; a variable volume section for gas replacement in the first mode; a fresh gas flow for replenishing the breathing gas delivered to the patient in the first mode; and a vaporizer for vaporizing one or more volatile anesthetics into the breathing gas flow before being delivered to the patient in the first mode.

[0160] In another embodiment, the Disclosure provides a respiratory apparatus for delivering respiratory gases to a patient and a humidifying component used in the respiratory apparatus, the respiratory apparatus comprising a flow source that provides a flow of respiratory gases to be delivered to the patient in an inspiratory channel; a mounting base connected to at least one vaporizer that vaporizes one or more volatile anesthetics into the flow of respiratory gases in the inspiratory channel before delivery to the patient; and a return channel that recirculates exhaled gases received from the patient via an expiratory channel into the inspiratory channel, the humidifying component being connectable to the mounting base to adjust the flow of respiratory gases in the inspiratory channel to a predetermined temperature and / or humidity before delivery to the patient.

[0161] In some embodiments, the operation of the humidifying component prevents the delivery of one or more volatile anesthetics into the respiratory gas flow in the inspiratory passage. The operation of the humidifying component can disable the operation of at least one vaporizer.

[0162] In some embodiments, the humidifying component is connectable to a mounting base to provide an interlocking mechanism that prevents simultaneous operation of the humidifying component and at least one vaporizer. The interlocking mechanism may be configured to enable the operation of the humidifying component or at least one vaporizer when in the unlocked state and to disable the operation of the humidifying component or at least one vaporizer when in the locked state.

[0163] The humidifying component may be connectable to a mounting base to provide an interlocking mechanism in cooperation with at least one vaporizer. The humidifying component may be mounted on the breathing apparatus adjacent to at least one vaporizer. For example, the mounting base may include a number of slots for connecting the humidifying component and at least one vaporizer in a side-by-side arrangement. The slots may be configured to receive the housing of the humidifying component and the housing of at least one vaporizer. The mounting base may be configured to receive the housing of the humidifying component and the housing of at least one vaporizer by sliding engagement with the slots.

[0164] In some embodiments, the humidification component includes a housing having a locking element, the locking element being configured to engage with a corresponding locking element associated with at least one vaporizer housing to provide an interlocking mechanism. The locking element may include at least one locking pin that is retractable within the housing in the locked state and extendable from the housing in the unlocked state. The locking element may include two or more locking pins, each locking pin independently retractable within the housing in the locked state and extendable from the housing in the unlocked state.

[0165] In some embodiments, the humidifying component includes a housing having a slot, and at least one locking pin is slidably movable between a slot in the humidifying component and a slot associated with the housing of at least one vaporizer, so as to provide an interlocking mechanism. The at least one locking pin may be positionable within the slot of the humidifying component in the locked configuration. In the unlocked configuration, it may be positionable within the slot of at least one vaporizer.

[0166] In some embodiments, the breathing apparatus further includes a switching mechanism configured to enable selective operation of a humidifying component and at least one vaporizer. When the switching mechanism is activated to operate the humidifying component, at least one vaporizer may remain inactive until the switching mechanism is deactivated.

[0167] The switching mechanism may include a humidifying component that is operable by a switch, and the switch may be connected to a switch of at least one vaporizer to prevent simultaneous operation of the humidifying component and at least one vaporizer.

[0168] The humidifying component may further include a user-operable switch to enable the selective operation of the humidifier. For example, the switch may be a manual switch such as a button or dial on the housing of the humidifying component.

[0169] In some embodiments, the switching mechanism is coupled with an interlocking mechanism. When the switching mechanism is activated to operate the humidifying components, the interlocking mechanism can enable the operation of the humidifying components and disable the operation of at least one vaporizer.

[0170] In some embodiments, the humidification component includes a humidification chamber through which breathing gas is received and adjusted to a predetermined temperature and / or humidity. The humidification chamber may be configured to be connected to a mounting base. The housing of the humidification chamber may be configured to be slidably received on the mounting base. For example, the mounting base may include a number of slots, and the housing of the humidification chamber may be slidably received in one of the slots.

[0171] The mounting base may include a heating element for heating the liquid in the humidification chamber. The humidification chamber may include a conductive plate for conducting heat from the heating element in the mounting base. In other embodiments, the humidification chamber includes a heating element for heating the liquid in the humidification chamber. The humidification chamber may be configured to be electrically connected to a breathing apparatus for the operation of the humidification chamber.

[0172] In some embodiments, the humidification component includes a humidifier having a humidification chamber, the humidification chamber being connectable to a humidification base unit for operation. The humidification base unit may be configured to be connected to a mounting base. The housing of the humidification base unit may be configured to be slidably received on the mounting base. For example, the mounting base may include a plurality of slots, and the housing of the humidification base unit may be slidably received in one of the slots. The humidification base unit may include a heating element for heating the liquid in the humidification chamber.

[0173] A humidifying chamber as disclosed herein may include an inlet port for receiving a flow of respiratory gases from a respiratory device and an outlet port for delivering a regulated flow of respiratory gases to a patient. The outlet port may be connectable to an inspiratory conduit to deliver a regulated flow of respiratory gases to the patient via a patient interface.

[0174] In other embodiments, a humidification chamber as disclosed herein may include an inlet port for receiving a flow of breathing gas from a breathing apparatus and a return port for returning the regulated flow of breathing gas to the breathing apparatus. The return port may be connectable to the breathing apparatus to return the regulated flow of breathing gas.

[0175] In some embodiments, the humidification chamber includes a liquid inlet connected to a liquid reservoir for refilling the humidification chamber. The humidification chamber may include a flow control mechanism to control the flow of liquid into the humidification chamber. The humidification chamber may include at least one sensor to detect the liquid level in the humidification chamber. The humidification chamber may include a float valve to control the liquid level in the humidification chamber.

[0176] In some embodiments, the humidification component can be connected to a mounting base via an adapter. The adapter may include a first inlet port for receiving a flow of respiratory gas from a respiratory device and a first outlet port for delivering the flow of respiratory gas to the humidification component. The adapter may further include a second inlet port for receiving a regulated flow of respiratory gas from the humidification component. The adapter may also include a second outlet port for delivering a regulated flow of respiratory gas from the humidification component to the patient or respiratory device.

[0177] The respiratory device can be configured to operate in the following modes: a first mode in which the respiratory device delivers respiratory gas to the inspiratory channel and receives the return of exhaled gas through the expiratory channel; and a second mode in which the respiratory device delivers respiratory gas to the inspiratory channel at a predetermined flow rate without the return of exhaled gas from the patient.

[0178] In some embodiments, the respiratory device is further configured to detect the connection of a humidifying component to a mounting base in order to enable the respiratory device to operate in a second mode. For example, the mounting base may include a sensor for detecting the connection of the humidifying component. In the second mode, the humidifying component may be operable to adjust the flow of respiratory gas in the inspiratory passage to a predetermined temperature and / or humidity before delivering it to the patient.

[0179] In some embodiments, the respiratory device further includes a CO2 absorber configured to process the exhaled gas returned from the patient before recirculating it to the patient in a first mode. In a second mode, the CO2 absorber may be further configured to adjust the respiratory gas in the inspiratory channel to a predetermined temperature and / or humidity before delivering it to the patient. In the second mode, the respiratory device may be further configured to allow the CO2 absorber to adjust the respiratory gas to a predetermined temperature and / or humidity by either or both of the following: changing the amount of soda lime present in the CO2 absorber and / or changing the amount of CO2 supplied to the soda lime present in the CO2 absorber.

[0180] In the first mode, the respiratory device may be capable of delivering respiratory gases to the patient via a first patient interface that forms a sealed interface with the patient's airway and returns the exhaled gases to the respiratory device through the expiratory channel. In the first mode, the respiratory gases include one or more anesthetics. The first patient interface may be a mask or an endotracheal tube.

[0181] In the second mode, the respiratory device may be capable of supplying respiratory gas to the patient through a second patient interface that forms an open interface with the patient's airway. The second patient interface may be a nasal cannula.

[0182] In the second mode, the predetermined flow rate can be in the range of approximately 20 L / min to approximately 90 L / min.

[0183] In the second mode, the predetermined flow rate can be in the range of approximately 40 L / min to approximately 70 L / min.

[0184] In some embodiments, the breathing apparatus can be configured to communicate with a gas delivery device that receives a supply of gases including NO, O2, and air. The gas delivery device may include a gas mixing element that mixes one or more of NO, O2, and air in the proportions necessary to deliver the breathing gas in a first mode and / or a second mode, and a gas outlet that supplies gas from the gas delivery device to the breathing apparatus.

[0185] In some embodiments, the breathing apparatus can be configured to communicate with a flow meter that controls the flow of a gas containing either or both air and O2 in a second mode.

[0186] In some embodiments, the breathing apparatus may be configured to communicate with a gas flow one or more of the following: a pressure limiting valve configured to maintain a substantially stable pressure within the breathing apparatus in a first mode; a variable volume section for gas replacement in the first mode; a fresh gas flow for replenishing the breathing gas delivered to the patient in the first mode; and a vaporizer for vaporizing one or more volatile anesthetics into the breathing gas flow before being delivered to the patient in the first mode.

[0187] The present invention will now be described in more detail with reference to the accompanying drawings, in which similar features are represented by similar figures. It should be understood that the illustrated embodiments are merely examples and should not be construed as limiting the scope of the invention as defined in the claims appended herein. [Brief explanation of the drawing]

[0188] [Figure 1A] Figure 1A is a schematic diagram showing the components of a conventional anesthesia machine. [Figure 1B] Figure 1B is a schematic diagram of a conventional ventilator 20. [Figure 2]This is a schematic diagram of the components of a conventional high-flow system. [Figure 3] This is a schematic diagram showing the components of a system for delivering respiratory gas to a patient according to one embodiment of the present disclosure. [Figure 4A-B] This is a schematic diagram of a gas delivery device that switches gas flow according to one embodiment of the present disclosure. [Figure 5A-B] This is a schematic diagram of a gas delivery device that switches gas flows, according to another embodiment of the present disclosure, having a common gas outlet. [Figure 6A-B] This is a schematic diagram showing a gas delivery device and a second switching element for switching gas flow according to another embodiment of the present disclosure. [Figure 7A-B] This is a schematic diagram of a gas flow divider for switching gas flow according to another embodiment of the present disclosure. [Figure 8] This is a schematic diagram of a switching mechanism located between a gas source and first and second breathing apparatuses, according to another embodiment of the present disclosure. [Figure 9] This is a schematic diagram of a switching mechanism including a flow selector according to one embodiment of the present disclosure. [Figure 10] This is a schematic diagram of a switching mechanism including a flow selector according to another embodiment of the present disclosure. [Figure 11] This is a schematic diagram of a switching mechanism including a flow selector equipped with a pressure-controlled actuator. [Figure 12A-B] Figure 12A is a schematic diagram of a three-way actuator that provides connection of a ventilation bag in manual first mode or connection of a bellows in mechanical first mode. Figure 12B is a schematic diagram of a three-way actuator with a pressure-controlled actuator. [Figure 13A-B] This is a schematic diagram illustrating how a three-position switch can provide the physical-fluid coupling necessary to offer mode switching. [Figure 14] This is a schematic diagram of a respiratory device 1000 capable of operating to deliver respiratory gas to a patient in three modes, including anesthesia ventilation mode, high-flow mode, and flushing mode. [Figure 15A]This is a schematic diagram of a system that delivers different modes of respiratory support, including ventilation, anesthesia, and high-flow respiratory support. [Figure 15B] This is a schematic diagram of a system that delivers different modes of respiratory support, including ventilation, anesthesia, and high-flow respiratory support. [Figure 16A-D] These are schematic diagrams illustrating various alternative embodiments of the system shown in Figures 15A and 15B. [Figure 16E] These are schematic diagrams illustrating various alternative embodiments of the system shown in Figures 15A and 15B. [Figure 17] This is a schematic diagram of a modular system that delivers different modes of respiratory support, including ventilation, anesthesia, and high-flow respiratory support. [Figure 18A-C] Figure 18A is a diagram of a gas flow switching mechanism according to one embodiment of the present disclosure. Figure 18B shows the switching mechanism in a top cross-sectional view in the first mode, and Figure 18C shows the switching mechanism in a top cross-sectional view in the second mode. [Figure 19A-B] The gas flow switching mechanism according to another embodiment of the present disclosure is shown for the first mode and the second mode, respectively. [Figure 20] This is a schematic diagram of a system attached to a multi-lumen assembly that delivers respiratory gases. [Figure 21] This is a schematic diagram showing the patient end of a multi-lumen assembly with a connector portion. [Figure 22A-C] This is a schematic diagram illustrating a holding mechanism according to various embodiments of the present disclosure. [Figure 23A-B] This is a schematic diagram showing an actuator that switches the flow of respiratory gas toward the patient end of the assembly. [Figure 24] This is a schematic diagram of a patient-end connector used in a multi-lumen assembly to selectively control the flow of respiratory gas toward the patient end of the assembly. [Figure 25] This disclosure shows a patient interface equipped with a CO2 detection function according to an embodiment of this disclosure. [Figure 26] This disclosure shows a patient interface equipped with a CO2 detection function according to an embodiment of this disclosure. [Figure 27]This is a schematic diagram showing a piston-driven assembly that selectively directs exhaled gas from a patient mask and nasal cannula to a gas sampling line, with the piston in the first position. [Figure 28] This is a schematic diagram showing a piston-driven assembly that selectively directs exhaled gas from a patient mask and nasal cannula to a gas sampling line, with the piston in the second position. [Figure 29A-B] This schematic diagram illustrates the use of a pressure-controlled flow divider to selectively direct exhaled gas from a patient mask (Figure 29A) and a nasal cannula (Figure 29B) to a gas sampling line. [Figure 30] This is a schematic diagram of a three-way switch that selectively directs exhaled gas from a nasal cannula, endotracheal tube, or sealed mask to a gas sampling line. [Figure 31] This disclosure illustrates the use of multiple patient interfaces in the delivery of respiratory support according to embodiments of this disclosure. [Figure 32] This disclosure illustrates the use of multiple patient interfaces in the delivery of respiratory support according to embodiments of this disclosure. [Figure 33] This disclosure illustrates the use of multiple patient interfaces in the delivery of respiratory support according to embodiments of this disclosure. [Figure 34] This is a schematic diagram of a connector that can be used to facilitate the exchange of components for delivering different modes of respiratory assistance according to embodiments of the present disclosure. [Figure 35] This is a schematic diagram of another connector used in accordance with embodiments of the present disclosure. [Figure 36] This is a schematic diagram of another connector used with a nasal cannula used to deliver different modes of respiratory support according to embodiments of the present disclosure. [Figure 37A-B] This is a schematic diagram of a modified connector, which is a variation of the connector shown in Figure 36. [Figure 38] This is a schematic diagram of a respiratory device for delivering respiratory gas to a patient, which can be connected to at least one vaporizer and humidifier component, according to some embodiments of the present disclosure. [Figure 39]Figure 38 is a front view of a respiratory device shown as an anesthesia machine, which includes a vaporizer and humidifying components connected to a mounting base for an anesthesia machine, according to some embodiments of the present disclosure. [Figure 40] Figure 39 is an enlarged view of the mounting base of an anesthesia machine, in which the humidifying component has been removed and the mounting base includes a heating element, according to some embodiments of the present disclosure. [Figure 41] This is a cross-sectional view of a humidifying component used in a respiratory apparatus for delivering respiratory gas to a patient, according to some embodiments of the present disclosure, the humidifying component including a humidifying chamber having a heating element electrically connected to a mounting base, the humidifying chamber returning the conditioned respiratory gas to the respiratory apparatus. [Figure 42] This is a cross-sectional view of another humidifying component used with a respiratory apparatus for delivering respiratory gas to a patient, according to some embodiments of the present disclosure, the humidifying component comprising a humidifier having a humidifying chamber and a humidifying base unit having a heating element electrically connected to a mounting base, the humidifying chamber receiving respiratory gas from the respiratory apparatus and delivering conditioned respiratory gas to the patient via an inspiratory conduit. [Figure 43] This is a cross-sectional view of another humidifying component used in a respiratory apparatus for delivering respiratory gas to a patient, according to some embodiments of the present disclosure, the humidifying component comprising a humidifying chamber having a conductive plate connected to a heating element in a mounting base, the humidifying chamber returning the conditioned respiratory gas to the respiratory apparatus. [Figure 44] This is a cross-sectional view of another humidifying component used in a respiratory apparatus for delivering respiratory gas to a patient, according to some embodiments of the present disclosure, the humidifying component comprising a humidifier having a humidifying chamber and a humidifying base unit having a heating element, the humidifying chamber returning the conditioned respiratory gas to the respiratory apparatus. [Figure 45] This is a schematic diagram of an adapter connecting a respiratory device and a humidifying component for delivering respiratory gas to a patient, according to some embodiments of the present disclosure, the adapter being connectable to a mounting base for the respiratory device. [Figure 46]This is a schematic diagram of a vaporizer with an interlocking mechanism associated with a housing, according to some embodiments of the present disclosure, the housing including two locking pins connected to a switch on a dial. [Figure 47A-C] These are schematic diagrams showing the vaporizer of Figure 46 in the ON position with the locking pin extended (Figure 47A), the vaporizer of Figure 46 in the OFF position with the locking pin retracted (Figure 47B), and the vaporizer of Figure 46 in the locked position with one of the locking pins fully retracted into the housing (Figure 47C), according to some embodiments of the present disclosure. [Figure 48] This is a schematic diagram showing a vaporizer of Figure 46 positioned adjacent to a humidifying component having the same interlocking mechanism associated with a switch on a housing and dial, according to some embodiments of the present disclosure. [Figure 49A-B] Figure 49A is a schematic diagram showing a vaporizer and humidifying component with the interlocking mechanism shown in Figure 48, according to some embodiments of the present disclosure, in which the vaporizer is switched ON, the locking pin extends, thereby locking the humidifying component in the OFF position, and the humidifying component is switched ON, the locking pin extends, thereby locking the vaporizer in the OFF position (Figure 49B). [Figure 50] This schematic diagram illustrates another interlocking mechanism according to some embodiments of the present disclosure, in which the vaporizer and humidifying components include slots in the housing, and a locking pin slides between the slots to lock either the vaporizer or the humidifying component in the off position. [Figure 51A-B] This is a schematic diagram showing the interlocking mechanism of Figure 50, according to some embodiments of the present disclosure, in which a locking pin slides to lock the humidification control to the off position (Figure 51A), the humidification components are switched on, and the vaporizer control is locked to the off position (Figure 51B). [Figure 52] This is a schematic diagram illustrating the switching between a vaporizer and a humidifying component in a breathing apparatus according to some embodiments of the present disclosure. [Figure 53] This is a schematic diagram showing mechanical interlocking switches for vaporizer and humidifier components in a respiratory apparatus, according to some embodiments of the present disclosure. [Figure 54] This is a schematic diagram showing a fixed flow meter for a second mode of operation of a respiratory device, which is a high-flow mode, according to some embodiments of the present disclosure. [Figure 55] This is a schematic diagram showing two variable flowmeters for a second mode of operation of a respiratory device, which is a high-flow mode, according to some embodiments of the present disclosure. [Figure 56] This is a schematic diagram showing the gas flow through a respiratory device in a first mode, which is an anesthetic ventilation mode, according to some embodiments of the present disclosure. [Figure 57] This is a schematic diagram showing the gas flow through a breathing apparatus in a second mode, which is a high-flow mode, according to some embodiments of the present disclosure. [Modes for carrying out the invention]

[0189] Embodiments of the present invention will be discussed in this specification with reference to the drawings, which are not drawn to an exact scale and are intended solely to aid in the explanation of the present invention.

[0190] Components of an anesthesia machine Figure 1A is a schematic diagram showing the components of an anesthesia machine 10, which can be configured to receive a gas supply unit 1060 that delivers respiratory support to a patient 300 via piping connections known in the art. The gas supply unit 1060 may include one or more of the following: anesthetic gas (e.g., nitric oxide (NO)), oxygen (O2), and supply air. The supply air may be ambient air. A flow meter can be incorporated into the gas supply unit 1060, located upstream of the anesthesia machine 10, or incorporated into the anesthesia machine 10 to control the flow of gas through the anesthesia machine. Typically, such flow meters are manually controlled, but may also be precisely controlled by an anesthesia machine controller.

[0191] The breathing circuit delivers gas to patient 300 and returns exhaled gas to the rebreathing component 140. Typically, the breathing circuit includes a corrugated tube, valves, and one or more patient interfaces that direct gas to the patient's airway and remove exhaled gas. In the schematic diagram of Figure 1A, the breathing circuit is simplified and shown to include (but not limited to) an inspiratory conduit 110 and a first patient interface 120 that direct gas to the patient's airway 310, and an expiratory conduit 130 that collects exhaled gas. Thus, the first patient interface 120 may be a sealed interface such as a sealed mask or endotracheal tube and may be configured to direct exhaled gas from patient 300 to an expiratory channel 130 that returns the exhaled gas to the rebreathing component 140 of the anesthesia machine 10. The inspiratory and expiratory conduits are typically connected to the patient interface by Y-piece connectors.

[0192] One or more vaporizers 150 convert volatile anesthetics such as isoflurane and sevoflurane from liquid to vapor, and control the introduction of these drugs into the breathing circuit at precisely controlled concentrations and doses, as required by the user, typically an anesthesiologist. Typically, the vaporizers 150 are manually controlled, but may also be precisely controlled by a breathing apparatus controller. In some embodiments, the vaporizers 150 supply the drugs to the rebreathing components 140.

[0193] The anesthesia machine 10 integrates a ventilation system to ventilate the patient 300 during induction and after administration of anesthetic drugs to achieve continuous anesthesia. Typically, a manual ventilation bag 142 is used during induction (dotted line in the rebreathing component 140) when volatile substances are being delivered and before the patient is intubated. The compliance of the ventilation bag 142 allows the patient to inhale and exhale a certain amount of gas through a sealed first patient interface 120 in the form of a face mask. Upon intubation, the ventilation mode changes from manual to mechanical, and the manual ventilation bag 142 and associated pressure relief valve 143 are effectively isolated from the rebreathing component 140, and ventilation occurs through a mechanical system (dashed line in the rebreathing component 140). Typically, this includes a foldable bellows 145 that controls the tidal volume and timing of the breath delivered to the patient through the sealed first patient interface 120 in the form of an endotracheal tube. The gas delivered to the patient can be controlled by pressure, flow rate, or volume. The pressure relief valves 143 and 146 provide the release of excess gas from the rebreathing component 140 (resulting from the fresh gas flow from the vaporizer 150 and the returned exhaled patient gas) while preventing ambient air from entering the breathing circuit.

[0194] The rebreathing component 140 provides a gas recirculation system in which exhaled gas from the patient is processed as it flows through the circuit and then reinhaled. This offers the advantages of reducing the presence of anesthetic in the atmosphere and lowering costs by reusing oxygen and volatile substances present in the exhaled gas stream from the patient. The exhaled gas in the rebreathing component 140 is passed through a CO2 absorber 141, which may include a canister containing soda lime (or another CO2 absorbent). The soda lime (a mixture of NaOH and Ca(OH)2) acts as a CO2 scrubber, removing CO2 before the gas in the rebreathing component 140 re-enters the inspiratory conduit 110. Furthermore, the gas from pressure relief valves 143, 146 is directed via exhaust (not shown) to an external scavenger system 144 that filters and recovers anesthetic gases from the gas stream.

[0195] It should be understood that as part of the anesthesia machine 10, further functions may be provided, such as those known in the art, including patient monitoring, suction, pressure gauges, regulators, and “pop-off” valves for protecting patient and machine components from high-pressure gases. For simplicity, these are not included in the illustrated examples.

[0196] Figure 1B is a schematic diagram of a ventilator 20 that can be used in an intensive care unit (ICU). The ventilator 20 ventilates the patient with active humidification by a humidifier 420 configured to heat and humidify the gas delivered, in many cases, to the patient's airway 310, using gas from a gas supply unit 1060. The ventilator 20 can assist or replace the patient's own breathing by delivering a breathing gas controlled to replicate the “normal” inspiratory and expiratory breathing phases. The mechanical ventilator 184 may include a flow regulator and / or blower that controls the pressure, volume and respiratory rate of the breathing gas delivered through the inspiratory conduit 110, which is delivered to the patient via a sealed first patient interface 120. The sealed first patient interface may be invasive (e.g., an endotracheal tube or laryngeal mask airway (LMA)) or non-invasive (e.g., a sealed face mask). Exhaled gases leave the patient through the first patient interface and the exhalation conduit 130, where they are processed, for example, by a filter 182 and released into the atmosphere. In some non-invasive ventilation systems, exhaled gases exit through the patient interface 120 or a vent or exhaust port on the exhalation conduit, thereby allowing the exhaled gases to exit into the atmosphere without returning to the ventilator 20.

[0197] Components of a high-flow system Figure 2 is a schematic diagram of the components of a high-flow system 30, which can be configured to receive gas from a gas supply unit 1060 to deliver high-flow respiratory support to a patient 300. The gas supply unit 1060 may be one or more of anesthetic gases (e.g., nitric oxide (NO)), oxygen (O2), or supply air, preferably O2 and / or supply air. The supply air may be ambient air. The high-flow system 30 has a flow regulator 250 configured to generate a gas flow, which is passed through a humidifier 420 configured to heat and humidify the gas flow generated by the flow regulator 250. In some embodiments, the flow regulator 250 may comprise a gas supply unit 1060 as described later. The humidified high-flow gas flow is delivered to the patient 300 by a second inspiratory conduit 210 and an unsealed second patient interface 220. Typically, this is a nasal cannula that directs the high-flow respiratory gas into the patient's airway 310 through one or both nostrils. An optional filter 230 can be provided between the inspiratory conduit 210 and the second patient interface 220, thereby allowing the components of the breathing circuit upstream of the filter to be reused without the risk of contamination by any exhaled gases inadvertently taken in by the second patient interface 220.

[0198] In some configurations, the flow regulator 250 is configured to deliver gas to the patient through the high-flow system 30. In some embodiments, the flow regulator includes gas generating means, such as a blower, adapted to receive gas from the environment outside the high-flow system 30 and propel the gas through the high-flow system 30. In some configurations, the flow regulator 250 may include a supply source (e.g., oxygen or air) available from a hospital gas outlet or wall supply, or one or more containers of compressed air and / or another gas, and one or more valve arrangements adapted to control the rate at which the gas exits one or more containers. In some configurations, the flow regulator 250 may include an oxygen concentrator.

[0199] In this specification, “high flow” means, without limitation, any gas flow having a flow rate that is higher than normal / usual, or higher than any other threshold flow rate relevant to the situation, such as higher than the normal inspiratory flow rate of a healthy patient. This can be provided, for example, by an open breathing system with substantial leakage occurring at the entrance of the patient’s airway. This can also be provided with humidification to improve patient comfort, compliance, and safety. “High flow” can mean any gas flow rate that is higher than any other threshold flow rate relevant to the situation; for example, if a gas flow is provided to a patient at a flow rate that satisfies their inspiratory requirements, that flow rate may be considered “high flow” because it is higher than the nominal flow rate that could have been provided by other means. Thus, “high flow” is situational, and what constitutes “high flow” depends on many factors such as the patient’s health condition, the type of treatment / therapy / assistance being provided, and the patient’s characteristics (large, small, adult, child). Those skilled in the art will understand what constitutes “high flow” in a particular situation. However, without limitation, some indicated values ​​for high flow can be as follows:

[0200] In some configurations, high-flow gas delivery to the patient is possible at a flow rate of approximately 5 or 10 liters per minute (5 or 10 LPM, i.e., L / min) or more.

[0201] In some configurations, high-flow gas delivery to the patient is defined as flow rates of approximately 5 or 10 LPM to 150 LPM, or approximately 10 LPM to 120 LPM, or approximately 15 LPM to 95 LPM, or approximately 20 LPM to 90 LPM, or approximately 20 LPM to 70 LPM, or approximately 25 LPM to 85 LPM, or approximately 30 LPM to 80 LPM, or approximately 35 LPM to 75 LPM, or approximately 40 LPM to 70 LPM, or approximately 45 LPM to 65 LPM, or approximately 50 LPM to 60 LPM. For example, according to the various embodiments and configurations described herein, the flow rate of the gas supplied by the disclosed system embodiment may include, but is not limited to, at least about 5, 10, 15, 20, 30, 40, 50, 60, 70, 80, 90, 100, 110, 120, 130, 140, 150 LPM or higher, and a useful range may be selected to be any of these values ​​(e.g., about 20 LPM to about 90 LPM, about 15 LPM to about 70 LPM, about 20 LPM to about 70 LPM, about 40 LPM to about 70 LPM, about 40 LPM to about 80 LPM, about 50 LPM to about 80 LPM, about 60 LPM to about 80 LPM, about 70 LPM to about 100 LPM, about 70 LPM to about 80 LPM). Therefore, "high-flow" or "high-flow respiratory support" may refer to delivering gas to a patient at a flow rate of approximately 5 or 10 LPM to 100 LPM, or approximately 15 LPM to 95 LPM, or approximately 20 LPM to 90 LPM, or approximately 25 LPM to 85 LPM, or approximately 30 LPM to 80 LPM, or approximately 35 LPM to 75 LPM, or approximately 40 LPM to 70 LPM, or approximately 45 LPM to 65 LPM, or approximately 50 LPM to 60 LPM.

[0202] In "high-flow" systems, the delivered gas is selected according to the intended use, for example, therapeutic or adjunctive. The delivered gas may contain a certain percentage of oxygen. In some configurations, the percentage of oxygen in the delivered gas may be approximately 15% to 100%, 20% to 100%, 30% to 100%, 40% to 100%, 50% to 100%, 60% to 100%, 70% to 100%, 80% to 100%, 90% to 100%, 100%, or 100%.

[0203] The "high-flow" flow rate for premature infants / children (weighing approximately 1 to 30 kg) may vary. The flow rate can be set from approximately 0.4 LPM / kg to approximately 8 LPM / kg, with a minimum of approximately 0.5 LPM and a maximum of approximately 70 LPM. For patients weighing less than 2 kg, the maximum flow rate can be set to 8 LPM.

[0204] High-flow gas can be used as a means to promote gas exchange and / or respiratory support through the delivery of oxygen and / or other gases and through the removal of CO2 from the patient's airways. High-flow gas can be particularly useful before, during, or after medical procedures. A further advantage of high-flow gas is that the high flow rate increases the pressure in the patient's airways, thereby providing patency support to open the airways, trachea, lungs / alveoli, and bronchi. Opening these structures promotes oxygenation and helps to some extent in the removal of CO2.

[0205] As pressure increases, it can also prevent structures such as the larynx from obscuring the vocal cords during intubation. Humidification, along with a high flow rate of gas, can prevent airway dryness, mitigate mucosal damage, and reduce the risk of laryngospasm, as well as risks associated with airway dryness, such as epistaxis, aspiration (as a result of epistaxis), and airway obstruction, swelling, and bleeding.

[0206] In this specification, the terms "subject" and "patient" are used synonymously. "Subject" or "patient" may refer to a human or animal subject or patient.

[0207] In this specification, references to the range of numbers disclosed herein (e.g., 1 to 10) are intended to also include references to all rational numbers within that range (e.g., 1, 1.1, 2, 3, 3.9, 4, 5, 6, 6.5, 7, 8, 9, and 10), and any range of rational numbers within that range (e.g., 2 to 8, 1.5 to 5.5, and 3.1 to 4.7), and so all subranges of all ranges expressly disclosed herein are thus expressly disclosed. These are merely examples of what is specifically intended, and all possible combinations of numbers between the listed minimum and maximum values ​​should be considered to be expressly referred to in this application as well.

[0208] overview Embodiments of the present disclosure provide systems and apparatus that offer integration of different forms of respiratory support into a single system, or integrated switching between separate systems or apparatuses that enable convenient use of those systems or apparatuses by clinician users who may wish to switch between different forms of respiratory support delivered to a patient. Embodiments of the present disclosure relate to various systems, devices, apparatuses, switching mechanisms and lumen assemblies, as well as systems incorporating humidification. Those skilled in the art will understand that various features and advantages described in the context of one embodiment are also useful in the context of another embodiment, and that such combinations are within the scope of the present disclosure and expressly form part of the present disclosure.

[0209] System switching with gas control Figure 3 is a schematic diagram showing the components of a system 1000 for delivering respiratory gas to a patient 300. The system 1000 includes a first respiratory device 100, which can be configured to deliver respiratory gas containing one or more anesthetic agents to the patient, and a second respiratory device 200, which can be configured to deliver respiratory gas to the patient at a predetermined flow rate. The first respiratory device 100 may incorporate one or more components of an anesthetic device 10 (Figure 1A), and the second respiratory device 200 may incorporate one or more components of a high-flow system 30 (Figure 2). For simplicity, similar figures will be used throughout this disclosure to represent these components.

[0210] The switching means 700 is operable to select an operating mode of the system 1000, the operating mode being selected from a group including a first mode in which the respiratory gas is delivered to the patient by a first respiratory device 100 and a second mode in which the respiratory gas is delivered to the patient by a second respiratory device 200 at a predetermined flow rate, which is typically in the range of about 20 LPM to about 90 LPM for most patients.

[0211] Figure 3 shows the switching means 700 with a dashed line indicating flexibility so that the switching means 700 can be deployed to provide switching between the first mode and the second mode. In some embodiments, the switching means 700 may be located between the gas supply unit 1060 and the first device 100 and the second device 200 and / or may include one or more elements that form part of the first or second device, as illustrated by reference to the various embodiments described herein. Thus, it should be understood that the switching means 700, although schematically shown in Figure 3 as a box feature, can be effective in that it consists of or includes one or more switching mechanisms configured to change the flow of breathing gas in the system 1000 according to the selection of the first mode or the second mode.

[0212] The switching mechanism may further consist of or include one or more switching elements. Thus, the switching means 700 may allow a user to manually select an operating mode and may further include a user-operable actuator that causes the system components to operate in the selected mode, and / or a sensor-driven automation system that operates the system components in a mode determined by a sensor that detects, for example, which of the first patient interface 100 and the second patient interface 200 is connected to the patient's airway 310. The various switching elements may be operationally coupled to operate substantially simultaneously, or in response to other switching elements or actuators, or under the control of a controller, as will become apparent by referring to the non-limiting examples provided.

[0213] While this specification discloses various embodiments for preventing the delivery of anesthetic to the patient when the second mode is selected, it should be understood that other methods may be developed as alternatives to or in addition to the examples shown in the figures. For example, system 1000 may stop the release of anesthetic to the patient by stopping the vaporizer or reducing its function to a level that disables it. Alternatively or further, system 1000 may stop the delivery of anesthetic to the first breathing apparatus 100. Alternatively or further, the system may inactivate any anesthetic in the respiratory gas flow delivered from the first breathing apparatus 100 by using a neutralizer in the first breathing apparatus which is activated when the system is operating in the second mode, thereby rendering any anesthetic that may be flowing through the system ineffective. Although wasteful, this may be an important safety measure.

[0214] When the first mode is selected, the system 1000 directs the breathing gas to the first inspiratory channel 110, where the first patient interface 120 directs the breathing gas into the patient's airway 310. The first patient interface 120 is a sealed interface such as a sealed mask or endotracheal tube and is configured to direct the patient's exhaled gas to the exhaled channel 130, which returns the exhaled gas to the first breathing device 100. The returned exhaled gas is processed by the rebreathing component 140, as described with respect to Figure 1.

[0215] When the second mode is selected, the system 1000 isolates the respiratory gas flow from the first respiratory device 100 to prevent the delivery of anesthetic gases, including NO and vaporized anesthetic, to the patient 300. Thus, when the second mode is selected, the system directs the respiratory gas flow to a second inspiratory passage 210, where a second patient interface 220 directs the respiratory gas into the patient 300's airway 310, and the second patient interface 220 is an open interface. Typically, the second patient interface is a nasal cannula with one or more nasal prongs directing the gas to one or both of the patient's nostrils.

[0216] In one embodiment, the switching means 700 includes a switching mechanism located between the gas supply unit 1060 and the first and second breathing devices 100 and 200, and includes a gas delivery device that receives a supply of gas containing NO, O2 and / or air, and provides a flow meter that controls the flow rate of the gas through one or more breathing gas outlets. Preferably, the flow meter controls the flow of breathing gas through one or more breathing gas outlets in response to the selection of a first or second operating mode. This can be achieved in several ways.

[0217] In one example schematically shown in Figures 4A and 4B, the gas delivery device 1040 includes a gas mixing element 1042 that mixes NO, O2, and air in the proportions required for the operation of the system in the first mode. To control the proportion of gas entering the gas mixing element 1042, a flow meter may be incorporated into the gas supply unit 1060, or located upstream of or incorporated within the gas delivery device 1040. Typically, such a flow meter is manually controlled, for example, by a proportional valve with a rotary actuator, but may also be precisely controlled by the controller 1010 of the system 1000. For example, safety features may be incorporated to limit the gas flow rate and proportion to be within safety limits, to ensure that the ratio of O2 to NO does not fall below 0.25.

[0218] The flow meter 1090 controls the flow rate of breathing gas from the gas mixing element 1042. The first gas outlet 1044A supplies breathing gas from the gas delivery device 1040 to the first breathing device 100 when the first mode is selected (Figure 4A), and the second gas outlet 1044B supplies breathing gas from the gas delivery device to the second breathing device 200 when the second mode is selected (Figure 4B). To achieve this, the first switching element 710 can be operatively coupled with the switching means 700, and the first switching element 710 may be operable to allow the inflow of NO into the gas mixing element 1042 when the first mode is selected (Figure 4A) and to prevent the inflow of NO into the gas mixing element when the second mode is selected (Figure 4B). Simultaneously, the operation of the switching means 700 for selecting the first mode allows the flow meter 1090 to be operatively connected to the switching means 700, so that the flow meter 1090 can limit the flow rate to a low flow rate of up to 15 LPM, preferably 10 to 15 LPM. The operation of the switching means 700 for selecting the second mode allows the flow meter 1090 to increase the flow rate to a maximum of 90 LPM, preferably 40 to 70 LPM. A second switching element 720, operatively connected to the switching means 700, is operable to control the gas flow from the gas delivery device 1040 to one of the first gas outlet 1044A and the second gas outlet 1044B. When the first mode is selected, the breathing gas (including NO) from the gas delivery device 1040 is directed only to the first gas outlet 1044A, as shown by the solid line in Figure 4A. When the second mode is selected, the breathing gases from the gas delivery device, excluding NO, are directed only to the second gas outlet 1044B, as shown by the solid line in Figure 4B.

[0219] In another example schematically shown in Figures 5A and 5B, the gas delivery device 1040 includes a single common gas outlet (CGO) 1044 for supplying breathing gas from the gas delivery device to the first breathing device 100 and the second breathing device 200 of the system 1000. A first switching element 710, operationally coupled to the switching means 700, is operable to control the input to the common gas outlet 1044 such that when a first mode is selected (Figure 5A), the common gas outlet receives breathing gas from a gas mixing element capable of mixing NO, air, and O2, and when a second mode is selected (Figure 5B), the common gas outlet receives breathing gas from the flow meter 1090. A second switching element 720, coupled to the switching means 700, is operable to control the gas flow from the CGO 1044 to either the first breathing device 100 or the second breathing device. When the first mode is selected, the breathing gas (containing NO) from the gas delivery device 1040 is directed from the gas mixing element to the CGO 1044 and to the first breathing apparatus 100, as shown by the solid line in Figure 5A. When the second mode is selected, the breathing gas containing O2 (optionally excluding NO) is directed from the flow meter 1090 to the CGO 1044 and to the second breathing apparatus 200, as shown by the solid line in Figure 5B. In some embodiments, it should be understood that when the second mode is selected, the breathing gas containing air and O2 (optionally excluding NO) is directed from the flow meter 1090 to the CGO 1044 and to the second breathing apparatus.

[0220] In Figures 4A to 5B, the first switching element 710 and the second switching element 720 can be operatively coupled to operate substantially simultaneously with, or subsequently to, the operation of a switching means, such as a knob or actuator operable by a user or an electronic controller of the system. Alternatively, the switching means 700 can be incorporated such that the first switching element 710 and the second switching element 720 are incorporated into a common mechanical or pneumatic actuator that is operable by a user to trigger the first switching element 710 and the second switching element 720. The first and second switching elements may include, for example, one or more gas flow valves or / diversion valves.

[0221] In the embodiments shown in Figures 4A to 5B, the first respiratory device 100 and the second respiratory device 200 can be integrated into a single machine. This provides a convenient complete respiratory support system 1000 that, in the first mode, provides the ability to deliver anesthesia to the patient, and in the second mode, is further supported by high-flow respiratory support, which can be beneficial, for example, when preparing for patient intubation or when discontinuing sedation. This configuration conveniently places the user control functions for the second respiratory device 200, which delivers high-flow respiratory support, together with the user control functions for the first respiratory device 100, which delivers sedation. The integrated machine also simplifies and reduces the number of instruments that occupy valuable space in the clinical environment.

[0222] In some embodiments, the integrated machine may include a humidifier (not shown), typically located between a flow meter and a second patient interface 220 that delivers gas from the second respiratory apparatus 200. The humidifier is configured to adjust the breathing gas to a predetermined temperature and / or humidity before delivery to the patient in the second mode. This has the advantage of streamlining the humidifier setup by incorporating it into the routine setup of the integrated system 1000.

[0223] However, it should be understood that the switching mechanism described can be similarly implemented in a system 1000 in which the first respiratory device 100 and the second respiratory device 200 are separate machines. Beneficially, the switching means 700 described provides integrated control of the operation of these machines such that when the first mode is selected, a single switching input simultaneously enables the delivery of gas from the first respiratory device 100 to the patient and blocks the delivery of gas from the second respiratory device 200, or vice versa when the second mode is selected.

[0224] Advantageously, in the embodiments shown in Figures 4A to 5B, there is no need to set up an additional oxygen supply unit, and both the first breathing apparatus 100 and the second breathing apparatus 200 receive oxygen from a common supply unit 1060. Furthermore, this configuration facilitates simultaneous switching to both the first breathing apparatus 100 and the second breathing apparatus 200, so that when the second mode is selected, the first breathing apparatus 100 stops delivering gas to the patient 300. This improves safety by preventing anesthetics, including NO and volatile anesthetics vaporized by the first breathing apparatus, from being supplied into the gas flow delivered to the second patient interface 220. In addition, preventing anesthetics from entering the environment helps avoid inhalation of these drugs by caregivers accompanying the patient, and reduces waste.

[0225] In another example schematically shown in Figures 6A and 6B, the gas delivery device 1040 provides a first switching element 710 that controls the flow of breathing gas (including anesthetic) from the gas delivery device to the first breathing device 100, and a second switching element 720 located outside the gas delivery device that controls the flow of breathing gas through the second breathing device 200. As shown by the dashed lines, the switching elements 710 and 720 are operationally coupled to operate substantially simultaneously when the desired operating mode is selected by the switching means 700. In the first mode shown in Figure 6A, the first switching element 710 is open and the second switching element 720 is closed. This allows flow from the gas supply unit 1060 to the gas mixing element 1042 and to the outlet 1044 for supplying gas to the first breathing device 100, while blocking flow through the second breathing device 200. In the first operating mode, the respiratory gas containing the anesthetic is delivered to the patient by a first patient interface 120 that also receives exhaled gas from the patient and returns it to the rebreathing component 140 of the first respiratory device via the exhalation conduit 130.

[0226] In the second operating mode shown in Figure 6B, the first switching element 710 is closed and the second switching element 720 is open. This prevents the flow of gas to the gas outlet 1044, thereby preventing the delivery of respiratory gas containing anesthetic from the first respiratory device 100 to the patient. Meanwhile, the flow meter 1090 receives oxygen (optionally air) from the gas supply unit 1060 and increases the flow rate to a predetermined flow rate of up to 90 LPM, preferably 40-70 LPM. The high-flow gas from the flow meter 1090 preferably passes through the humidifier 420 and is delivered to the patient 300 via the second patient interface 220. In this configuration, the flow meter 1090, together with the preferred humidifier 420, forms a major component of the second respiratory device 200, as illustrated by the dashed lines enclosing these functions. The advantage of placing the second switching element 720 downstream of the flow meter 1090 is that when the second mode is selected, there is no need for the flow meter to increase to a predetermined high flow rate. However, it should be understood that the second switching element 720 can be located upstream of the flow meter 1090 or downstream of the humidifier 420.

[0227] Switching system with manifold In another example of system 1000, where the switching mechanism 700 is located between the gas source 1060 and the first and second breathing apparatuses 100 and 200, a gas diverter receiving a supply of gases including anesthetic gases and breathing gases includes two switching means that are operable to control the flow of gas to the first and second breathing apparatuses. An example of a gas diverter 800 is schematically illustrated in Figures 7A and 7B. The gas diverter 800 receives a supply of gases including NO, O2 and / or air. The gas diverter 800 has a first switching element 710 that controls the flow of NO from the gas supply unit 1060 to outlet 820, and a second switching element 720 that controls the flow of breathing gas, i.e., O2, to outlet 822 or 828. In some examples, the breathing gas may include air, and the second switching element consists of a pair of elements 720A and 720B that work together to direct the flow of O2 and air to outlets 822 / 828 and 824 / 826, respectively. As shown by dashed lines inside the gas splitter 800, the switching elements 710 and 720A,B are operationally coupled so as to operate substantially simultaneously when the required operating mode is selected by the switching means 700. The first switching element 710 and the second switching element 720 are operationally coupled by either physical (e.g., pneumatic, magnetic, mechanical) or electronic means so as to operate one switching element substantially simultaneously with that of the other.

[0228] In the first mode shown in Figure 7A, the first switching element 710 (which may be, for example, a flow control valve) is open, allowing the flow of NO to outlet 820. Meanwhile, the second switching elements 720A and 720B (which may be, for example, gas splitters) direct the breathing gases (O2 and air) to outlets 822 and 824, respectively. In the second mode shown in Figure 7B, the first switching element 710 is closed, blocking the flow of NO to outlet 820. Meanwhile, the second switching elements 720A and 720B direct the breathing gases (O2 and air) to outlets 826 and 828, respectively. Thus, the operation of the switching means 700 to select the first mode provides a supply of breathing gases and NO to the first breathing apparatus 100 (typically via a flow meter), while the operation in the second mode blocks the supply of gases to the first breathing apparatus. Advantageously, the first switching element 710 prevents the supply of NO to the outside of the gas diverter 800 so that when the gas diverter is in the second configuration, the breathing gas delivered to the second breathing apparatus 200 excludes the anesthetic.

[0229] Advantageously, the gas diverter manifold 800 is installed between a gas supply unit 1060, such as a gas wall supply unit in an operating room (or other medical location), and the gas inlet port of a first breathing apparatus 100, which is in fluid communication with a vaporizer 150 (see Figure 1). The gas diverter manifold 800 is also installed between the gas supply unit 1060 and the gas inlet port of a second breathing apparatus. Upon activation of the second mode, the supply of NO to the first breathing apparatus 100 and the diversion of oxygen and air to the second breathing apparatus 200 are automatically stopped. Advantageously, the gas diverter 800 can be supplied as a standalone component that can be retrofitted to an existing anesthesia machine, or it can be incorporated into a newly constructed machine. In some embodiments, while the supply of NO to the first breathing apparatus 100 is stopped, a small residual flow of O2 (and optionally air) may flow from the gas diverter manifold 800 to the first breathing apparatus. This may be desirable in scenarios where an existing anesthesia machine with a retrofitted gas diverter 800 is configured to sound an alarm if the machine detects that it is not receiving flow and / or pressure from an O2 or air supply.

[0230] Standalone gas flow divider Although the gas splitter 800 has been described in the context of being a component of system 1000, it should be understood that the gas splitter 800 may also be supplied as a standalone device used in a respiratory system, such as a system that provides the functions of a first respiratory device 100 (typically an anesthesia machine) and a second respiratory device 200 (for delivering high-flow respiratory support). The gas splitter 800 illustrated in Figures 7A and 7B provides three inlets, three outlets to the first respiratory device 100, and two outlets to the second respiratory device 200, but it should be understood that air inlets and outlets may be omitted so that the gas splitter 800 receives only NO and O2 flows. The gas splitter 800 includes a manifold between the inlets and outlets, which provides the necessary flow paths to deliver gas to the first respiratory device 100 and the second respiratory device 200 in first and second modes, respectively. In some embodiments, the manifold can mix the NO and O2 flows so that they are delivered to the first respiratory device 100 through a single common gas outlet. Therefore, in one embodiment, the gas shunt 800 includes a first outlet (combining 820 / 822), a second outlet 828, and manifolds between the first and second inlets and the first and second outlets that provide a first flow path to the first outlet and a second flow path to the second outlet. In this embodiment, the gas delivery device 800 is operable in a first configuration where the first flow path is open and the second flow path is closed, and in a second configuration where the second flow path is open and the first flow path is closed. In the first configuration (Figure 7A), the gas delivery device 800 blocks the flow of anesthetic gas to the outlet.

[0231] As disclosed in relation to Figures 7A and 7B, the gas delivery device 800 includes one or more switching elements that create first and second flow paths within the manifold. One or more switching elements may include a first valve 710, which controls the flow of anesthetic gas (NO) within the manifold such that in a first embodiment the first valve 710 is open, directing NO to the first flow path, and in a second embodiment (Figure 7B) the first valve 710 is closed. The switching element may include a second valve 720, which controls the flow of respiratory gas (O2) within the manifold such that in a first embodiment the second valve 720 directs respiratory gas to the first flow path, and in a second embodiment the second valve 720 directs respiratory gas to the second flow path. Ideally, one or both of the first and second valves are operable to control the flow rate of gas passing through them. When a third gas, such as room air or high-pressure air from a flow regulator 250, is delivered through the gas delivery device 800, the manifold can mix the breathing gases (air and O2) such that a second valve 720 (illustrated as 720A, B) directs the breathing gases to a single outlet 828 for delivering the breathing gases to a second breathing apparatus in a second embodiment. Ideally, the second valve is operable to control the O2 concentration in the breathing gases delivered to the first and second flow paths. This can be done directly by controlling the rate at which O2 gas flows through the manifold, or indirectly by controlling the flow rate of O2.

[0232] In some embodiments, the gas delivery device 800 is operable in a third embodiment, where both the first and second flow paths are open, and a plug or other shut-off mechanism can be utilized at the patient end to obstruct the flow through the first or second patient interface. A gas mixer (not shown) may also be included, which mixes the received gas in the proportion required to deliver the desired treatment. The gas delivery device 800 may include switching means that can be operated by the user to select a configuration for the operation of the gas delivery device, which is achieved by switching elements (e.g., valves and gas flow dividers) in a manifold. The switching means may be located, for example, in the gas flow divider device 800, in the first breathing apparatus 100, or in the second breathing apparatus 200, or in the patient interface where the breathing gas is directed to the patient's airway.

[0233] The switching mechanism can be pneumatic, mechanical, electronic, or utilize any other mechanism suitable for triggering the operation of the switching element. In embodiments utilizing an electronic switching mechanism, the gas delivery device 800 is configured to be connected to a power source, which may include a battery. Ideally, both a mains power source and a battery power source are utilized to ensure the continued operation of the gas delivery device in the event of a power outage, until the battery is charged and the procedure is completed, or until the mains power is restored.

[0234] In some embodiments, the switching means is activated in response to the detection of a change in state detected by one or more system sensors. These sensors may include, for example, one or more pressure sensors, CO2 sensors, O2 sensors, flow sensors, gas concentration sensors, etc., and are ideally positioned and configured to determine whether the breathing circuit delivering gas to the patient's airway is associated with a first patient interface in which the gas (including, for example, an anesthetic) is delivered to the patient's airway through a substantially sealed interface, or with respect to a second patient interface in which the gas, excluding the anesthetic, is delivered to the patient through an unsealed interface. The switching means may be wired or wirelessly connected to one or more switching elements to control the operation of the gas delivery device according to a user-selected configuration.

[0235] In some embodiments, the gas delivery device includes an output module that provides either a visual or audible indication (similar to monitor 1094 in Figure 20) of the configuration in which the gas delivery device is operating. The output module may also present to the user other parameters relevant to the use of the gas delivery device or the entire respiratory system, such as flow rate and gas concentration. The operation of the output module can be activated, for example, when a switching means is operated by the user to select a second configuration, or it may have a button or actuator to switch on and off, with a visual and / or audible indication provided at all relevant points in time while it is switched on.

[0236] O2 switching In another example of system 1000, where the switching mechanism 700 is located between the gas source 1060 and the first and second breathing devices 100 and 200, the switching mechanism includes a first switching element 710 that can be operated to direct the flow of O2 to the first breathing device 100 in a first mode and to the second breathing device 200 in a second mode. Figure 8 provides a schematic diagram illustrating the operation of such a switching mechanism 700 in the first mode. In particular, in the first mode, a second switching element 720 is also open and, in a preferred embodiment, can be operated to allow the first breathing device 100 to operate in either a manual (147) or automatic (148) ventilation / rebreathing mode. In the embodiment shown in Figure 8, the manual first mode is selected. The second switching element 720 responds to the first switching element 710. Therefore, when the first switching element 710 is switched to the second mode, O2 is directed to the second breathing apparatus 200 (represented by the flow regulator 250 and humidifier 420), and the second switching element moves to the lowest position 722 to block the flow from the rebreathing component 140 of the first apparatus to the patient 300. In some embodiments, when the first switching element 710 is switched to the second mode, O2 and / or air can be directed to the second breathing apparatus 200. The operation of the first switching element 710 in the second mode prevents the inflow of O2 into the gas mixing element 1042 of the first breathing apparatus 100, and therefore there is no inflow to the patient 300 through the first patient interface.

[0237] As illustrated in the embodiments shown in Figures 4A to 5B, the configuration of Figure 8 eliminates the need to set up an additional oxygen supply unit, i.e., both the first breathing apparatus 100 and the second breathing apparatus 200 receive oxygen from a common supply unit 1060. Furthermore, this configuration facilitates simultaneous switching to both the first breathing apparatus 100 and the second breathing apparatus 200, so that when the second mode is selected, the first breathing apparatus 100 stops delivering gas to the patient 300. This improves safety by preventing anesthetics, including NO and volatile agents vaporized by the vaporizer 150 of the first breathing apparatus, from being delivered into the gas flow delivered to the second patient interface 220. In addition, it reduces waste while preventing anesthetics from entering the environment and avoiding caregivers accompanying the patient inhaling these agents.

[0238] The embodiments shown in Figures 6A to 8 are particularly useful in a system 1000 in which the first respiratory device 100 and the second respiratory device 200 are separate machines. Ideally, in each case, the second respiratory device 200 has a humidifier 420 (particularly shown in Figure 8) that adjusts the respiratory gas to a predetermined temperature and / or humidity before delivering it to the patient in the second mode. Furthermore, as previously stated, the first switching element 710 and the second switching element 720 are operatively coupled to operate substantially simultaneously with or following the operation of the switching means 700, but it should be understood that in some embodiments, the switching means may incorporate the first and second switching elements so as to be integrated with a common mechanical or pneumatic actuator that is user-operable to trigger the first and second switching elements. The first switching element 710 and the second switching element 720 may include one or more gas flow valves or flow divider valves.

[0239] Switching Interface / Control In some embodiments, such as those related to the examples already described, it may be desirable that the predetermined flow rate of respiratory gas delivered to the patient 300 in the second mode be selectable by the user operating the switching means from a range of about 20 LPM to about 90 LPM, although in some cases, such as with pediatric or neonatal patients, a lower range may be desired. Preferably, the required predetermined flow rate is selectable by the user from a plurality of predetermined available flow rates, such as 0 LPM, 40 LPM, and 70 LPM, but it should be understood that additional and / or different predetermined flow rates may be selectable within the high-flow range disclosed herein.

[0240] The selection of the required predetermined flow rate can, in some embodiments, be achieved by operating a switching means 700, which includes a flow selector in the form of a knob, slide switch, touchscreen, or other actuator, providing a user selection of the required predetermined flow rate from a plurality of predetermined flow rates. A schematic diagram of Figure 9, similar to Figure 8, shows an example of a flow switching element 730 associated with a flow selector, except that the flow regulator 250 is replaced by two flow regulators 250A and 250B, which operate, for example, at 70 LPM and 40 LPM respectively, and these flow regulators 250A and 250B are in fluid communication with the flow switching element 730, which also has an "off" position 732. In some embodiments, the flow switching element 730 can replace the first switching element 710, but in some embodiments, it may be desirable to provide the flow switching element 730 in addition to the first switching element 710 to avoid the problem of delayed gas flow rate increase when the second mode is selected. Preferably, the flow switching element 730 is operationally coupled with the second switching element 720 such that, in the second mode, the operation of the flow selector for delivering flow from the second respiratory device 200 (i.e., to the second patient interface via the humidifier 420 as shown) prevents the delivery of respiratory gas from the first respiratory device to the patient.

[0241] In some embodiments, the operation of a flow selector element 730 to select a flow rate of 0 LPM enables the supply of O2 to the first respiratory device. This is schematically shown in Figure 10, where the flow selector element 730 controls the flow of O2 to the first respiratory device 100 and the second respiratory device 200. Thus, when the flow selector element 730 is operated to select one of two predetermined flow rates (exemplified as 40 LPM and 70 LPM), there is a flow of O2 to the second respiratory device, i.e., the second mode, and when the flow selector element 730 is operated to select 0 LPM, the flow from the O2 supply is directed to the first respiratory device 100, i.e., the first mode. The flow selector element 730 and the second selector element 720 are operationally coupled such that the operation of the flow selector in the second mode triggers the switching of the second selector element to the lowest position 722, which closes the flow from the rebreathing component 140 of the first device to the patient 300. In the second mode, the operation of the flow switching element 730 prevents the flow of O2 to the gas mixing element 1042 of the first respiratory device 100, so there is no flow to the first patient interface in the second mode.

[0242] In another example involving a flow selector, a pressure-controlled actuator is positioned to control the flow to the first breathing apparatus 100 and the second breathing apparatus 200, as shown in the schematic diagram of Figure 11. In this configuration, the pressure-controlled actuator 740 detects the backflow pressure from the second breathing apparatus 200. During operation in the second mode, i.e., when the flow switching element 730 is operated to select an available non-zero flow rate, the pressure-controlled actuator blocks the flow of gas to the first breathing apparatus 100. When the flow switching element 730 is operated to select a flow rate of 0 LPM, the back pressure from the second breathing apparatus 200 increases, triggering the pressure-controlled actuator 740 to direct the gas flow towards the first breathing apparatus 100.

[0243] Three-position bag / ventilation holes / HF switch In some embodiments, the switching means 700 provides further functionality to the system 1000 in that it can provide the user with a choice of operation of the system in a second mode, along with a manual first operating mode or a mechanical first operating mode of the first respiratory device. In the manual first operating mode, the first respiratory device 100 deploys a ventilation bag for manual ventilation of patient 300, for example during intubation, and a medical professional squeezes the bag by hand to control the timing and tidal volume of the respiratory gas delivered to the patient's airway by the first patient interface. In the mechanical first operating mode, the first respiratory device 100 deploys a bellows to provide mechanical ventilation of patient 300, for example, once sedated, and the bellows control the tidal volume and inspiratory / expiratory timing. In both cases, a pressure relief valve is provided to avoid overpressure in the system of the breathing circuit connected to the patient's airway.

[0244] In one embodiment, the additional functionality of providing a selection of a manual first operating mode, a mechanical first operating mode, or a second operating mode for the system 1000 is achieved by including a three-way actuator. One example is provided in a schematic diagram in Figure 12A, which shows a three-way actuator 750 that provides a fluid coupling connection between the rebreathing component 140 of the first breathing apparatus 100 and the ventilation bag 142 in the manual first mode, or the bellows 145 in the mechanical first mode, and the second breathing apparatus 200 in the second mode. Ideally, the first and second breathing apparatuses receive O2 from a common supply unit as described above. To prevent the auxiliary fresh gas flow (FGF) of the anesthetic from the vaporizer 150 from contaminating the breathing gas supplied to the second breathing apparatus, a pressure-controlled actuator 740 can be positioned to detect a drop in back pressure that triggers the actuator to shut off the FGF when the system 1000 is operating in the second mode. This is schematically shown in Figure 12B, which ensures the delivery of O2 to the patient's airway via the second respiratory device 200 and the second patient interface 220 in the absence of an anesthetic. Advantageously, by using a pressure-controlled actuator as shown in Figures 11 and 12B, a clean solution to the problem of FGF contamination of the gas delivered in the second mode is provided, and the need to physically or functionally couple the operation of separate switching elements located in different components of system 1000 is avoided.

[0245] Figures 13A and 13B are schematic diagrams illustrating how a three-position switch (Figure 13A) can provide the necessary physical-fluid coupling to enable switching between manual first operating mode (POS I), mechanical first operating mode (POS II), and second operating mode (POS III). Figure 13B schematically shows the breathing circuit, including the patient interface connected in each mode.

[0246] The embodiments shown in FIGS. 13A and 13B provide a physical three-position switch, but it should be understood that a similar control may be achieved using an electronic three-position switch. The electronic three-position switch can communicate with the controller 1010 to control the operation of the first breathing apparatus 100 in the manual first mode or the manual second mode, or switch to the second operation mode in which breathing gas is delivered by the second breathing apparatus 200. This type of electronic switch may enjoy wired communication or wireless communication. The latter provides flexibility in the location of an electronic actuator that can include one or more of a button panel or a touch screen removably positioned, and ideally mounted, at multiple locations such as the patient's bed, the anesthesiologist's body, or the hardware delivering gas to the patient.

[0247] An electronically usable switch can be physically attached to one or both of the first patient interface 120 or the second patient interface 220 to enable a quick switch of the system's operating mode when the patient interface is exchanged, for example, when moving from pre-intubation to intubation, or when disengaging the patient from sedation. Thus, activating a button or an electronic switch located on the patient interface can cause the system 1000 to select an operating mode to safely deliver gas to the patient via that interface. Alternatively, a foot pedal or a foot-operated switch or voice control may be utilized. Each of these has the potential to improve access to mode selection while the anesthesiologist is away from the control unit located on the anesthesia machine.

[0248] Switch the on / off of NHF according to the changes detected by the machine While some embodiments of the system provide mechanical, pneumatic, or other physical control and operational coupling of the switching element, in some embodiments, the system 1000 includes a controller 1010 that receives input from one or more sensors deployed throughout the system. The sensors detect whether a breathing circuit connected to the patient's airway is associated with a first patient interface 120 used with a first respiratory device 100, or with a second patient interface 220 used with a second respiratory device 200. This information is used by the controller 1010 to operate the switching means 700 to select an operating mode. Thus, if the sensors detect that the breathing circuit is associated with the first patient interface 120, the controller 1010 ensures that the system is operating in a first operating mode. Conversely, if the sensors detect that the breathing circuit is associated with the second patient interface 220, the controller 1010 ensures that the system is operating in a second operating mode that delivers nasal high-flow (NHF) respiratory support.

[0249] The sensor may include a pressure sensor positioned to measure back pressure in one or both of the first and second breathing apparatuses 100 and 200. The system 1000 can provide a continuous or intermittent flow of breathing gas through the first and / or second breathing apparatuses to enable measurement of back pressure in the first and / or second breathing apparatuses. In some embodiments, this continuous or intermittent flow of breathing gas has a smaller flow rate, pressure, and / or volume than the flow of breathing gas provided to the patient in the first and / or second modes. Different flow resistance values ​​are associated with each of the first (closed) patient interface 120 and the second (unclosed) patient interface, when connected to the patient 300, used in the first and second modes, respectively. When the measured back pressure indicates that the respiratory gas is delivered to the patient through a sealed patient interface that is substantially sealed to the patient, the controller 1010 determines that the breathing circuit is associated with a first patient interface and operates the system 1000 in a first mode in which the respiratory gas and anesthetic are deliverable to the patient 300 and the exhaled gas is returned to the rebreathing component. Alternatively, when the measured back pressure indicates that the respiratory gas is delivered to the patient through an unsealed patient interface, the controller 1010 determines that the breathing circuit is associated with a second respiratory device and operates the system 1000 in a second mode in which the respiratory gas that eliminates the anesthetic is delivered to the patient at a predetermined (high flow) flow rate. In some embodiments, the pressure sensor may be located at or downstream of the flow regulator 250 of the system, or at any convenient location in the gas flow path between the patient airway and the flow regulator 250.

[0250] Alternatively, one or more sensors can include a CO2 sensor associated with a first breathing circuit associated with the first patient interface 120 and / or a second breathing circuit associated with the second patient interface 220. In such embodiments, the controller 1010 determines that a breathing circuit in which the exhaled gas from the patient contains a higher concentration of CO2 than the ambient air is the breathing circuit connected to the patient's airway. If the CO2 concentration in both breathing circuits is higher than the ambient air, the controller determines that the breathing circuit with the higher CO2 concentration is the breathing circuit connected to the patient's airway.

[0251] Alternatively, the sensor can include one or more proximity sensors, such as acoustic (including audible and / or ultrasonic), optical (including infrared), high frequency, pressure (within the inhalation / exhalation conduit and / or mask cuff), flow rate, electrical conductivity, resistance, temperature, or other sensors, to determine which breathing circuit is connected to the patient's airway by the first or second patient interface. Such proximity sensors are described in more detail in International Publication No. WO 2016 / 157105, the content of which is incorporated herein by reference.

[0252] The switching means 700 may include, but is not limited to, one or more user-operable actuators such as buttons, switches, knobs, foot switches, or pedals. Alternatively / Furthermore, the switching means 700 may include one or more electronic input devices, touchscreens, voice-activated sensors, etc., which may be able to operate in cooperation with an electronic controller of the system as described later. One or more actuators of the switching means may be located at or near the first patient interface 120 or second patient interface 220 through which respiratory gas is delivered to the patient by the first or second respiratory device 100. By positioning one or more actuators at or near the patient end of the breathing circuit that delivers gas to the patient's airway, convenience is provided to the clinician working with the patient throughout the stages of anesthesia, where it is often necessary to switch between operating modes of the system and the form of respiratory support delivered. Positioning the actuators that enable mode selection at the patient end may be more convenient and time-saving for the clinician and others nearby. In other configurations, the system 1000 can be configured to detect whether the first or second patient interface is attached to the patient and to change the operating mode accordingly.

[0253] It should be understood that the switching means 700 may include one or more switching mechanisms, such as mechanical, electronic, electromechanical, electromagnetic, pneumatic, or any other suitable switching mechanism for achieving the functions disclosed herein. Furthermore, one or more switching mechanisms may be coupled to the switching means via wired and / or wireless coupling using techniques readily understood and verifiable by those skilled in the art. The switching mechanism may include an actuator that can be operated by a user of the system 1000 to select the desired operating mode, and may include or consist of any of the switching mechanisms described. In some embodiments, the actuator includes an electronic input device that wirelessly communicates with the controller 1010 of the system 1000 and is movable and positionable in different positions relative to the patient 300 and / or the first and second respiratory devices 100 and 200.

[0254] In some embodiments, one or more switching mechanisms are operable to control one or more characteristics of the breathing gas delivered to the subject, such as the presence of volatile substances, flow rate, gas composition, gas concentration, temperature, and / or humidity, but are not limited to these.

[0255] For the sake of brevity, some features of the first respiratory apparatus 100 are not necessarily shown in the figures. However, in a preferred embodiment, it should be understood that the first respiratory apparatus 100 performs the function of an anesthesia machine 10 and includes one or more of the following: a CO2 absorber 141 configured to process the returned exhaled gas before recirculating it to the patient in the first mode; a pressure limiting valve 146 configured to maintain a substantially stable pressure within the system in the first mode; a variable volume section 145 for gas replacement in the first mode (e.g., using bellows or a ventilation bag); a fresh gas flow to replenish the anesthetic gas delivered to the patient in the first mode; and a vaporizer 150 to vaporize volatile anesthetics in the respiratory gas delivered to the patient in the first mode.

[0256] Similarly, for the sake of brevity, some features of the second respiratory device 200 are not necessarily shown in the figures. However, it should be understood that in a preferred embodiment, the second respiratory device 200 includes one or more flow sources 250 or regulators configured to deliver high-flow respiratory assistance as described herein and generate a gas flow through the system. A humidifier 420 configured to adjust the respiratory gas to a predetermined temperature and / or humidity before delivering it to the patient in the second mode is also typically provided, but may be omitted in some cases.

[0257] Anesthesia machine with 3 modes, including O2 flushing. Figure 14 is a schematic diagram of a respiratory device 1000, which is capable of operating to deliver respiratory gas to a patient through an inspiratory gas channel and to receive exhaled gas through an exhaled gas channel in several modes. The respiratory device is capable of operating in multiple modes. In the first mode, the respiratory device typically uses components of the first respiratory device 100 as described herein to deliver respiratory gas containing one or more anesthetics to the inspiratory gas channel and receive the return of exhaled gas through the exhaled gas channel. In the second mode, the respiratory device typically uses components of the second respiratory device 200 as described herein to disable the flow of one or more anesthetics and deliver respiratory gas containing O2 to the inspiratory gas channel at a predetermined flow rate without the return of exhaled gas. In the transient mode, the respiratory device disables the flow of one or more anesthetics and delivers high-concentration O2 to the inspiratory gas channel.

[0258] The respiratory device includes a switching means that can be operated to select one of several operating modes. The switching means may include one or more actuators, such as buttons, switches, knobs, foot switches or pedals, shown as switching elements 710, 720 in Figure 14, which are operatively coupled to deliver respiratory gas in a first or second mode, in a manner similar to that described in relation to Figures 4A and 4B. In the first mode, the respiratory device is operable to deliver respiratory gas containing an anesthetic to the patient by a first patient interface that forms a sealed interface with the patient's airway and returns the exhaled gas to the respiratory device through an exhaled gas flow path as described herein. Preferably, the respiratory device includes a first respiratory device 100 having the features of Figure 1A corresponding to an anesthesia machine, and the first patient interface is a sealed mask or an endotracheal tube.

[0259] In the second mode, the respiratory device is capable of delivering respiratory gases to the patient through a second patient interface, such as a nasal cannula, which forms an open interface with the patient's airway. In particular, in the first mode, FGF containing anesthetics from the NO source and / or vaporizer 150 enters the inspiratory gas path to supplement patient sedation. However, in the second and transient modes, the flow of FGF to the second patient interface is disabled by the switching element 720, preventing the release of anesthetics into the environment through the open interface and reducing waste while avoiding inhalation of these drugs by caregivers accompanying the patient. In some configurations, the inspiratory path is the same in the second and transient modes. In some configurations, the inspiratory path is the same in the first and third modes.

[0260] In a preferred embodiment, the transient mode is activated only during the operation of an actuator that is normally biased to off. For example, the switching means may include a button or trigger, which is configured to be activated by the user to operate the breathing apparatus in transient mode while the trigger or button is pressed, and the transient mode is deactivated by releasing the button or trigger. By operating the button or trigger, the flush valve 730 can be opened, thereby allowing a high flow rate of O2 to flow through the system, bypassing the gas mixing element 1042 and the flow meter 1090. The transient mode can be used, for example, to flush the breathing apparatus with O2 during setup or after use. Ideally, the user can select the transient mode to flush the breathing apparatus, including the first and / or second breathing apparatus. This includes flushing the first breathing apparatus 100 in a manual operating mode in which the bag ventilation components are flushed, or in a mechanical operating mode in which the mechanical bellows system components are flushed. This typically always relates to manual (bag) or mechanical (bellows) ventilation modes, which can be selected by the user operating a switch that changes the gas flow path to the selected ventilation component, although in some machines this may require manual connection of the ventilation bag.

[0261] For the operation of the respiratory apparatus in the second mode, it is desirable to configure the apparatus to communicate with a gas flow regulator configured to provide a gas flow through the system at a predetermined flow rate consistent with high-flow respiratory support, and a humidifier configured to adjust the respiratory gas to a predetermined temperature and / or humidity before delivering it to the patient in the second mode. These features are represented in Figure 14 by a second respiratory apparatus 200 having the features of Figure 2, along with an optional filter 230. However, it should be understood that humidification can be provided to a limited extent by reconfiguring the CO2 absorber in the first respiratory apparatus, if it is also configurable for high-flow support. In this regard, it should be noted that Figure 14 shows two gas outlets 1044A and 1044B, but a common gas outlet can supply gas to an integrated apparatus that can also be configured to provide respiratory support in the first and second modes and to provide a transient mode in which the system is flushed with O2. This configuration allows a common gas source to operate the respiratory device in three modes, eliminating the need to set up an additional oxygen supply to deliver high-flow respiratory support and enable O2 flushing.

[0262] Blower-driven anesthetic unit with high-flow mode Another aspect of the present disclosure provides a system for delivering respiratory gases to a patient, enabling the delivery of different modes of respiratory support, including ventilation, anesthesia, and, in some embodiments, high-flow respiratory support. Figures 15A and 15B are schematic diagrams of a system 1300, which has a flow generator 1350 adapted to receive fresh air and gases 1310 from the environment and propel them through the system to be delivered to the airway 310 of a patient 300 through an inspiratory conduit 110 connected to a sealed first patient interface 120. A switching actuator, such as a button, switch, knob, foot switch or pedal, or an electronic interface that can operately with a system controller, can be operated by the user to select an operating mode of the system 1300, in which, in the first mode (Figure 15A), the respiratory gas is delivered in a closed gas flow circuit in which the exhaled gas is returned to the system by the exhalation conduit 130 for rebreathing by the patient, and in the second mode (Figure 15B), the respiratory gas is delivered in an open gas flow circuit without rebreathing.

[0263] Ideally, the flow generator 1350 is a blower with variable control selectable by the user or a system controller. Ideally, the switching actuator includes, or is operatively coupled to, a switching mechanism 1370 that controls the flow of fresh gas to the system 1300 according to the operating mode selected using the switching actuator. In the first mode (Figure 15A), the switching mechanism 1370 blocks the first fresh breathing gas flow to the system and allows the return of exhaled gas to the system, while in the second mode, the switching mechanism allows the first fresh breathing gas flow to the system and blocks the return of exhaled gas to the system. In some embodiments, the switching mechanism 1370 may be a gas flow diverter, and in some configurations, may be a pressure-controlled gas flow diverter configured to detect back pressure in the system 1300 and, when high back pressure is detected, to operate in the first mode and signal that a sealed patient interface has been applied to patient 300 that returns exhaled gas to the system.

[0264] Typically, the switching mechanism 1370 is located upstream of the flow generator 1350, as shown in Figures 15A and 15B. The switching mechanism 1370 is operatively coupled to the flow generator 1350, and by operating the switching actuator to select a first mode, the flow generator is activated at low flow rates, such as less than 15 LPM; by selecting a second mode, the flow generator is activated at higher flow rates suitable for patient ventilation; and by selecting a third mode, the flow generator is activated at high flow rates up to 90 LPM.

[0265] In some embodiments, the operation of system 1300 in the first mode enables the delivery of anesthesia. In such embodiments, system 1300 also receives oxygen from an O2 source 1060 and vaporized volatile anesthetics such as sevoflurane from a vaporizer 150. These gases are mixed by a gas mixer 1042 in the required proportions and concentrations (as determined by the user or the system controller). The mixed gas is delivered to the patient into the patient's airway 310 via an inspiratory conduit 110 and a sealed first patient interface 120. The exhaled gas is returned to the exhalation conduit 130 and system 1300 by the first patient interface 120, where CO2 is removed by a CO2 absorber 141 and the gas is recirculated to return to the inspiratory pathway.

[0266] In some embodiments, the operation of the system 1300 in a second mode enables the provision of ventilatory assistance to the patient. This form of assistance can be delivered by the same first patient interface 120 as in the first operating mode, but differs in that the switching mechanism 1370 operates to allow the flow of fresh air into the system 1300 while preventing gas recirculation. Thus, the gas returned by the expiratory conduit 130 is discharged into the environment or exhaust, or released through the vents of the patient interface to which the respiratory assistance is delivered. In another form of respiratory assistance delivered in the second mode, the first patient interface 120 is replaced with an unsealed patient interface such as a nasal cannula, and the flow rate generated by the flow generator is increased to deliver a high flow rate, thereby causing the system 1300 to operate in a second mode to deliver high-flow respiratory assistance to the patient 300. Thus, by operating the switching actuator to select the second mode, the flow generator is activated at a flow rate sufficient to deliver high-flow respiratory assistance (e.g., up to 90 LPM). In embodiments where the switching actuator 1370 is a pressure-controlled gas flow diverter, low back pressure within the system 1300, coinciding with the connection of a second unsealed patient interface 220 such as a nasal cannula (or the separation of the expiratory conduit 130 from the system 1300), shuts off gas recirculation while automatically allowing a flow of fresh gas to the system. While the system is operating in the second mode, O2 can also be supplied from the O2 source 1060, and the O2 concentration is selected by operating a switching actuator that can be operatively coupled to the O2 source or gas mixer 1042, or by manually selecting the O2 concentration in a supply controller provided in the O2 source. The system 1300 is also configured to prevent the supply of anesthetic gas to the system when the second mode is selected. This can be achieved by the user manually stopping the vaporizer 150, or by providing a vaporizer switching mechanism that is operatively coupled to the switching mechanism 1370 and / or the system controller 1010.

[0267] In some embodiments, the system 1300 includes a pressure relief valve 146 that maintains a substantially stable gas pressure within the system when operating in the first mode, the gas pressure rising when oxygen and volatile substances are added to the system 1300 in the first mode, in the absence of the pressure relief valve 146. To regulate the gas flow within the system 1300 to generate expiratory and inspiratory respiratory cycles, in particular, if this cannot be achieved by regulating the flow rate through the flow generator 1350, an expiratory valve 143 or a variable flow constrictor may be provided. As shown in Figures 15A and 15B, in some embodiments, the system 1300 is configured to receive a supply of anesthetic gas from a vaporizer 150 located downstream of the flow generator 1350 before the inspiratory conduit 110 and expiratory conduit 130 can be connected to the system 1300 downstream of the flow generator. However, this is not essential.

[0268] Figures 16A–16E are schematic diagrams illustrating various alternative embodiments of system 1300. In Figure 16A, the vaporizer 150 is located downstream of the flow generator 1350, and the switching mechanism 1370 provides a separate gas flow path via a separate inspiratory conduit to deliver high-flow respiratory support to a second open-sealed patient interface. An adjustable pressure limiting valve (APL) is provided to release return gas into the scavenger system (as described in relation to Figure 1). However, it should be understood that in the various embodiments disclosed, the APL can be represented by any form of relief valve, and the adjustable pressure limiting valve is just one example. In Figure 16B, the vaporizer 150 is located in the return gas flow path upstream of the CO2 absorber 141 (although it may also be located downstream of the CO2 absorber 141). In Figure 16C, the vaporizer 150 is connected in parallel with the flow generator 1350, and the ventilation bag 142 provides manual ventilation to the patient. In Figure 16D, the vaporizer 150 is connected upstream of the flow generator 1350, which receives the gas containing the anesthetic and pushes it into the inspiratory conduit 1100. In Figure 16E, the system 1300 includes a gas flow reflector 1360 configured to collect the anesthetic gas exhaled by the patient and return it to the inspiratory gas flow path in the subsequent inhalation phase.

[0269] In various embodiments, the system 1300 includes a humidifier configured to adjust the respiratory gas to a predetermined temperature and / or humidity before delivering it to the patient in the second mode. Ideally, the humidifier (not shown) is located downstream of the blower and before the second patient interface 220.

[0270] FIG. 17 shows another system for delivering breathing gas to a patient that enables delivery of different modes of breathing assistance, including ventilation, anesthesia, and in some embodiments high flow respiratory assistance, in a schematic view. Here, system 1300 is operable in a first mode and a second mode, the first mode includes a recirculation gas flow between the system and the patient's airway, and the second mode includes a non-recirculation gas flow between the system and the patient's airway. System 1300 includes a first module 1380 that includes a first set of breathing components and a second module 1390 that includes a second set of breathing components. The second module 1390 is configured to switch between the two modes in cooperation with (or vice versa) the first module 1380. Thus, system 1300 is operable in the first mode when the first module 1380 is activated with or coupled to the second module 1390, and the system is operable in the second mode when the first module stops or is decoupled from the second module such that the second module functions independently of the first module.

[0271] In some embodiments, during the first mode of operation of system 1300, the gas delivered to patient 300 in the recirculation gas flow includes an anesthetic agent delivered by vaporizer 150, and vaporizer 150 vaporizes a volatile anesthetic agent into the breathing gas delivered to the patient. Thus, the first set of breathing components of the first module 1380 can include one or more of a CO2 absorber 141 configured to process exhaled gas returned in the first mode before recirculating it to the patient, a pressure limiting valve 146 configured to maintain a substantially stable pressure within the system in the first mode, and a variable volume portion (such as ventilation bag 142 or bellows) for gas replacement in the first mode. The fresh gas flow from vaporizer 150 replenishes the anesthetic gas delivered to the patient in the first mode.

[0272] During the second operating mode, the second module 1390 operates independently of the first module 1380 to deliver, for example, ventilatory support and, in some embodiments, high-flow respiratory support to the patient 300. Therefore, the second set of respiratory components of the second module 1390 may include one or more of the following: a flow source, such as a blower 1350 configured to generate a gas flow through the second set of respiratory components; an inspiratory conduit 110; and a patient interface configured to direct the gas from the non-recirculating gas flow towards the patient's airway. When the system 1300 is used in the second mode to deliver ventilatory support, the patient interface may be a sealed patient interface, where exhaled gas is returned to the system via the exhalation conduit 130 and discharged into the atmosphere or exhaust (not recirculated to the patient). Alternatively, exhaled gas may exit the sealed patient interface through a port hole in the interface or the exhalation conduit. When the system 1300 is used in the second mode to deliver high-flow respiratory support, the patient interface is ideally an unsealed second patient interface, such as a nasal cannula. A humidifier (not shown) may be provided to adjust the temperature and / or humidity to a predetermined level before delivering the respiratory gas to the patient in the second mode, and a filter may be provided upstream of the patient interface to reduce contamination of the second set of respiratory components upstream of the filter, thereby allowing them to be reused.

[0273] In some embodiments, the first module 1380 includes a first gas outlet 1388 and a first gas inlet 1386, and the second module 1390 includes a second gas inlet 1396 and a second gas outlet 1398, and as shown in Figure 17, for the operation of the system 1300 in the first mode, the first gas outlet is connectable to the second gas inlet and the first gas inlet is connectable to the second gas outlet. Thus, in the first operating mode, the system delivers respiratory gases containing anesthetics to the patient using the same patient breathing circuit comprising an inspiratory conduit 110 and an expiratory conduit 130. A one-way valve 149 may be provided to prevent gas backflow to the patient. It should be understood that during use, the user can switch the patient interface to ensure that the gas delivered in the first mode is delivered via a sealed first patient interface such as a sealed mask or endotracheal tube, and the gas delivered in the second mode is delivered via an unsealed second patient interface such as a nasal cannula, or a sealed patient interface through which the exhaled gas is discharged or discarded, i.e., not returned to the patient.

[0274] In particular, the operation of system 1300 in the first mode enables a first fresh breathing gas flow 1310 into the system, and simultaneously, the connection of the second gas outlet 1398 and the first gas inlet 1386 enables the return of exhaled gas to the system. A one-way valve 149A can be provided to prevent backflow of the return gas to the fresh gas supply unit 1310. On the other hand, the operation of system 1300 in the second mode enables a first fresh breathing gas flow 1310 into the system independently of the first module 1380, and the disconnection of the second gas outlet 1398 and the first gas inlet 1386 prevents the return of exhaled gas to the system. Furthermore, the operation in the second mode prevents the release of anesthetic from the system, for example, by providing a shut-off valve at the first gas outlet 1388 and / or by switching the vaporizer 150 off and / or by providing a bypass around the vaporizer 150.

[0275] Switching provided to the breathing circuit Another aspect of the present disclosure relates to switching the delivery of respiratory gas to a patient 300 in a first mode or a second mode at the patient end of a respiratory circuit. In one embodiment, a system for delivering respiratory gas to a patient includes a flow regulator 250 configured to generate a gas flow through the system in a gas delivery circuit, and a switching mechanism that forms part of the gas delivery circuit. Figure 18A is a schematic perspective view of a switching mechanism 900 configured to switch the gas path in the gas delivery circuit according to a selection of a first operating mode in which the inspiratory gas path 910 is in fluid communication with a first patient interface 120, or a second operating mode in which the inspiratory gas path 910 is in fluid communication with a second patient interface 220.

[0276] Typically, the first patient interface 120 forms a substantially sealed interface with the patient's airway and receives exhaled gas from the patient. Thus, in the first mode, the exhaled pathway 930 returns the exhaled gas to the system, specifically to the system's ventilator or anesthesia machine, where the exhaled gas is processed, for example by filtration, and released into the atmosphere or recirculated in the anesthesia machine rebreathing system. Typically, the second patient interface 220 forms an unsealed interface with the patient's airway, for example, a nasal cannula, and around the unsealed nasal prongs of the cannula, allows for the release of exhaled gas into the environment.

[0277] In one embodiment shown in Figure 18A, the switching mechanism 900 includes an "X-piece" connector 950 and an actuator 940 in the form of a rotary switch that can be operated by the user to switch the gas flow path in the gas delivery circuit. The actuator can take any preferred form, such as a knob, switch, lever, etc. An optional anesthetic reflector 960 is also shown in Figure 18A. Figure 18A is a top cross-sectional view of the switching mechanism 900 of Figure 18A in a first mode, where the respiratory gas in the inspiratory flow path 910 is directed to the first patient interface 120, and the exhaled gas is returned to the switching mechanism through a common conduit and returned to the system through the exhaled gas flow path 930. Figure 18C is a top cross-sectional view of the switching mechanism 900 of Figure 18A in a second mode, where the respiratory gas in the inspiratory flow path 910 is directed to the second unsealed patient interface 220. In this mode, no gas is returned.

[0278] In some embodiments, the system is configured to receive a user input to select a first operating mode in which the flow source 1350 generates a low flow rate below a predetermined flow rate, or a second operating mode in which the flow source generates a high flow rate above a predetermined flow rate, and the switching mechanism 900 operates in response to the flow rate of gas in the inspiratory gas passage generated by the flow source. In such embodiments, a bistable switch 948 as shown in Figures 19A and 19B can be used. If the flow through the "X-piece" exceeds a threshold flow rate, e.g., 15 LPM, or a threshold flow rate corresponding to, for example, the delivery of high-flow respiratory support, the flow is delivered to the second patient interface 220 (Figure 19B). Below the threshold flow rate, the flow is delivered to the first patient interface 110, and the exhaled gas is returned through the exhalation passage 930 (Figure 19A). However, it should be understood that the switching mechanism may include any preferred mechanism, but is not limited to, one or more of the following: a gas flow divider, a pneumatic switch, a rotary switch, a lever, a flap, or a valve.

[0279] In some embodiments, a user-controlled actuator 1440 operates a flow divider that controls the flow of respiratory gas toward the patient. An example is schematically shown in Figures 23A and 23B. In some embodiments, the actuator 1440 is operationally coupled to the system 1000 so that user operation of the actuator switches control of the system 1000 to an operating mode in which respiratory gas is delivered, thereby switching the delivery of flow between patient interfaces. For example, in Figure 23A, the actuator 1440 is in a first position, directing respiratory gas from the first inspiratory conduit 1410 to the first patient interface 120, which returns the exhaled gas via the exhaled conduit 1430. This corresponds to a first operating mode that provides delivery of respiratory gas containing an anesthetic and return of exhaled gas for processing by a rebreathing component, as disclosed herein. In Figure 23B, the actuator is in a second position, directing respiratory gas from the inspiratory conduit 1410 to a second patient interface 220, which is an unsealed interface such as a nasal cannula. This requires the system controller 1010 to direct the respiratory gas into the inspiratory conduit 1410 to match the second operating mode (i.e., high flow without anesthetic). The exhaled gas is exhaled into the environment. This matches the second operating mode, which provides delivery of high-flow respiratory support, as disclosed herein.

[0280] In some embodiments, the system utilizing the switching mechanism 900 includes one or more sensors configured to monitor one or more characteristics of the gas in the gas delivery circuit, and controls the operation of the flow regulator 250 based on the one or more monitored characteristics. These characteristics may be one or more of, for example, flow rate, pressure, and CO2. The system controls the operation of the flow regulator 250 using various techniques described herein to generate a low flow rate (e.g., less than 15 LPM) when one or more sensors indicate that the breathing gas flow is to the first patient interface 110, and to generate a high flow rate when one or more sensors indicate that the breathing gas flow is to the second patient interface 220.

[0281] As those skilled in the art will understand when considering this disclosure as a whole, a system utilizing the switching mechanism 900 or other switching concept disclosed herein may include one or more components commonly found in an anesthesia machine, such as a CO2 absorber configured to process the exhaled gas returned in the first mode before recirculating it to the patient, a pressure limiting valve configured to maintain a substantially stable pressure within the system in the first mode, a variable volume section (e.g., a ventilation bag or bellows) for gas replacement in the first mode, a fresh gas flow for supplementing the anesthetic gas delivered to the patient in the first mode, and a vaporizer for vaporizing volatile anesthetic gases into the respiratory gas delivered to the patient in the first mode. Furthermore, such a system may include one or more functions of a high-flow respiratory support system, such as a flow regulator configured to provide a high-flow rate through the system, and a humidifier configured to adjust the respiratory gas to a predetermined temperature and / or humidity before delivering it to the patient in the second mode.

[0282] Although the switching mechanism 900 has been described in the context of being a component of system 1000, it should be understood that the switching mechanism 900 may be supplied as a component separate from such a system. In this sense, the switching mechanism 900 can be considered a respiratory gas connector having an inlet port 911 connectable to a gas conduit 910 for receiving respiratory gas from a respiratory support system, a first port 921 connectable to a first gas flow path for delivering respiratory gas to a patient via a first patient interface 120, a second outlet port 922 connectable to a second gas flow path for delivering respiratory gas to a patient via a second patient interface 220, and a switching mechanism 940 that can operate to switch the connector between a first operating mode in which the connector directs gas from the inlet port to the first outlet port and a second operating mode in which the connector directs gas from the inlet port to the second outlet port.

[0283] The exhalation gas port 931 is connectable to an exhalation gas conduit, and in the first mode, the switching mechanism directs the exhalation gas in the first gas flow path to the exhalation gas conduit. The switching mechanism may be operatively connectable to the controller 1010 of the respiratory support system, and the first operating mode can be selected from the second operating mode by operating the connector switching mechanism 940. In the first operating mode, the controller operates the respiratory support system in a first mode in which respiratory gas containing anesthetic is delivered to the gas conduit 910 connected to the connector. In the second operating mode, the controller operates the respiratory support system in a second mode in which respiratory gas is delivered to the gas conduit 910 connected to the connector at a predetermined flow rate. In some embodiments, the connector switching mechanism 940 is operatively connectable to the controller of the respiratory support system so that the controller blocks the flow of anesthetic in the respiratory gas by operating the connector switching mechanism to select the second operating mode.

[0284] A sensor may be provided to detect one or more characteristics of the gas in the first outlet port 921 or the second outlet port 922, the characteristics of which are used to determine whether the connector is connected to the patient's airway by the first (sealed) patient interface 120 or by the second (unsealed) patient interface 220, and the sensor provides input to the respiratory support system controller which automatically selects the corresponding operating mode of the respiratory support system. One or more characteristics may include, but are not limited to, gas pressure, CO2 concentration, and gas flow rate. A sensor wire that can be positioned inside a conduit providing a gas flow path between the sensor and the respiratory support system controller.

[0285] In another embodiment, a switching mechanism can be provided by using the first patient interface 120 and the second patient interface 220 simultaneously. Thus, when the first and second patient interfaces are applied to the patient simultaneously, the first mode is selected, and when only the second patient interface is applied to the patient, the second delivery mode is selected. In one configuration, the first patient interface is a mask, which can seal over the second patient interface, a nasal cannula, without obstructing the flow through the cannula. The inspiratory flow is delivered through the cannula, and the exhaled gas is returned through the face mask. This configuration can be expanded to deliver anesthesia in a closed system, using the cannula to deliver the anesthetic to the patient and the mask to return the exhaled gas. A pressure sensor can be used to determine when the mask is applied to the patient and sealed over the cannula, and when a target pressure is detected in the mask (e.g., inside the mask or in the mask cuff), the system can respond by initiating delivery of the anesthetic through the nasal cannula. The patent publication owned by the applicant of this application, International Publication No. 2015145390, discloses a mask suitable for such circumstances, which is incorporated herein by reference.

[0286] Figures 31-33 illustrate one example of how switching between operating modes of a system for delivering respiratory gases to a patient can be provided by using the first and second patient interfaces simultaneously or separately. The system includes a flow source configured to provide gas flow through the system in a gas delivery circuit having an inspiratory gas channel 210 and an expiratory gas channel 130. In the first mode, the system is operable to deliver respiratory gases to the patient via the inspiratory gas channel 210 and a first patient interface fluidly communicating with the inspiratory channel, and to deliver expiratory gases from the patient via the expiratory gas channel 130 and a second patient interface fluidly communicating with the expiratory gas channel, the respiratory gas including a first flow parameter. In the second mode, the system is operable to deliver respiratory gases to the patient via the inspiratory gas channel 210 and a third patient interface, the respiratory gas including a second flow parameter. The first and second flow parameters include or correspond to a first flow rate and a second flow rate, respectively. In some embodiments, the first flow rate is less than 15 L / min, and the second flow rate is greater than 15 L / min. In some embodiments, the second flow rate is in the range of about 20 L / min to about 90 L / min, and optionally in the range of about 40 L / min to about 70 L / min. However, it should be understood that the first flow parameter may, by alternative means or further, include pressure and / or volume parameters.

[0287] As shown in Figure 31, the first patient interface is an unsealed patient interface shown as a nasal cannula 224 that is in fluid communication with the inspiratory gas flow path 210, and the second patient interface is a sealed patient interface shown as a mask 124. In Figure 32, the nasal cannula 224 and mask 124 are applied to the patient simultaneously, and the system is capable of operating in a first mode that provides anesthetic ventilation, with the mask 124 configured to be sealed over the nasal cannula 224 and to the patient. In this configuration, respiratory gases are delivered to the patient via the inspiratory conduit and nasal cannula 224 that provide the inspiratory gas flow path 210, and exhaled gases from the patient are delivered from the patient via the mask 124 and an exhaled conduit that provides the exhaled gas flow path 130. In Figure 31, only the nasal cannula 224 is applied to the patient to deliver respiratory gases to the patient's airway in a second mode that provides high-flow respiratory support. In Figure 31, the first and third patient interfaces are the same, and are the nasal cannula 224. In some embodiments, the exhalation channel 130 is unnecessary or inoperable in the second mode. In alternative embodiments, respiratory gas is delivered to the patient via the gas channel 130 and mask 124, and exhaled gas from the patient is delivered from the patient via the nasal cannula and gas channel 210. In such embodiments, the gas channel 130 is the inspiratory gas channel, and the gas channel 210 is the exhaled gas channel. In some embodiments, the exhaled gas is returned to the system.

[0288] Figure 33 shows the configuration for the operation of the system in the third mode. In the third mode, anesthetic ventilation is delivered by an endotracheal tube 126. Here, the inspiratory conduit providing the inspiratory gas passage 210 is detached from the nasal cannula 224 and connected to the inlet of the coupling 600. Similarly, the expiratory conduit providing the expiratory gas passage 130 is detached from the mask 124 and connected to the outlet of the coupling 600. The patient end of the coupling 600 is connected to a fourth patient interface, shown as the endotracheal tube 126. In some embodiments, the endotracheal tube 126 may be a laryngeal mask or a tracheostomy interface. In the third mode, respiratory gases including a third flow parameter which may include one or more of the flow rate, pressure, or volume parameters can be delivered to the patient.

[0289] The advantage of mode switching, as illustrated in the examples in Figures 31-33, is that it allows for the provision of multiple modes of respiratory support to a patient using a single inspiratory and expiratory conduit. This reduces the cost and complexity of the respiratory circuit used to treat the patient.

[0290] Figure 34 is a schematic diagram of a novel connector 1700 that can be used to facilitate the exchange of components for delivering respiratory support in first and second modes, as described in relation to the embodiments in Figures 31 to 33. The connector 1700 is configured to connect to a standard Y-piece connector 1750. In normal use, the Y-piece connector 1750 is configured to connect at port 1755 to a conduit that provides a flow of respiratory gas to a mask 124 of the type shown in Figures 31 and 32. The Y-piece connector 1750 receives a flow of respiratory gas from the inspiratory channel 210 and provides an outflow path for exhaled gas from the patient via the exhaled gas channel 130. When used consistently as in Figure 32, the mask 124 forms a sealed interface with the patient's airway to deliver respiratory gas, which may contain anesthetics, while returning exhaled gas to the respiratory device via the exhaled gas channel 130.

[0291] To facilitate interoperability between different patient interfaces, a novel connector 1700 can be used, which provides a wall 1720 configured to protrude into the Y-piece connector 1750. When connected, the wall 1720 separates the flow of the inspiratory channel 210 and the expiratory channel 130 to separate limbs 1710 and 1730. In use, the connector 1700 is configured so that the first limb 1710 connects to a conduit attached to a nasal cannula 224, and the second limb 1730 connects to a conduit attached to a face mask 124. The separating wall 1720 keeps the inspiratory flow to the cannula 224 (see Figures 31 and 32) separate from the expiratory flow received from the mask 124 (when used in the configuration of Figure 32). To quickly switch to the device required to deliver assistance in a third mode, the connector 1700 can be detached from the Y-piece connector 1750, which is then connected to an endotracheal tube 126. Advantageously, the connector 1700 allows the Y-piece connector 1750 to be connected and disconnected simultaneously to the nasal cannula 224 and mask 124, and the endotracheal tube 126, with fewer disconnections / reconnections of parts and less room for error for rapid connection. When switching back to the first support mode with the mask 124 configured to seal over the nasal cannula 224 (as shown in Figure 32), the endotracheal tube 126 is disconnected from the Y-piece connector 1750, and the connector 1700 is reconnected to reconnect the cannula 224 and mask 124 simultaneously.

[0292] Figure 35 is a schematic diagram of an alternative connector 1800 provided for use in the configuration shown in Figure 32 instead of the standard Y-piece connector 1750. Using connector 1800, the mask 124 is used to remove exhaled gas through the exhaled gas passage 130. In operation in a second mode (Figure 32), the connector 1800 can remain in place, connected between the mask and the exhaled gas passage 130 and disconnected from the inspiratory gas passage 210, which is instead connected to the nasal cannula 224. The one-way valve 1810 is biased so that the flow in the inspiratory gas passage 210 is directed towards the mask 124, and in this mode of operation, since the inspiratory gas conduit is not attached to connector 1800, it operates to prevent exhaled gas from the mask from being released into the atmosphere. To operate in a third mode (Figure 33), the inspiratory conduit can be reconnected to the connector, and the mask 124 can be disconnected and replaced with a connection to the endotracheal tube 126. The advantage of this configuration is that the connector 1800 can be used for delivery in both modes of respiratory assistance shown in Figures 32 and 33, while avoiding the need to separate and reconnect all conduits necessary for gas delivery and removal, as is the case with standard Y-piece connectors.

[0293] Figure 36 is a schematic diagram of another novel connector 1900 configured for use in an embodiment in which a nasal cannula 224 is used to deliver different modes of respiratory support. Connector 1900 is connectable to three conduits that provide fluid communication with each of the following: a first inspiratory gas channel 210A configured to provide gas flow for the delivery of nasal high-flow respiratory support; a second inspiratory gas channel 210B configured to provide gas flow for the delivery of anesthetic ventilation; and an expiratory gas channel for expelling expiratory gas from the patient. A switch 1910 (a switching valve, solenoid, etc.) is provided to change the internal flow path of connector 1900 when different modes of support are selected. When the nasal cannula 224 is used for the delivery of anesthetic ventilation, switch 1910 is in the position shown by the solid line, allowing delivery of respiratory gas (including anesthetic) from the inspiratory gas channel 210B and providing a pathway for expiratory gas 130. During rebreathing, the bag mask is applied over the nasal cannula 124, and sufficient pressure can be applied (e.g., by an attendant) so that the cannula can provide both an inspiratory and expiratory passage. In high-flow respiratory support, switch 1910 is in the position indicated by the dashed line. To determine the mode of support to be delivered, switch 1910 can be operatively coupled with other switching means in the system operated by the user (or system controller).

[0294] Figures 37A and 37B are schematic diagrams of connectors 1950A and 1950B, which are modifications of connector 1900 of Figure 36, and are provided with connections for both a nasal cannula 224 and a mask 124. These connectors 1950A and 1950B provide nasal high-flow delivery when switch 1910 is in the dashed line position. When switch 1910 is in the solid line position, the device is arranged as shown in Figure 32, allowing anesthetic ventilation to be provided by the cannula 224 and exhaled gas to be removed by the application of the face mask 124. Figure 37A shows connector 1950A in which all flow paths are located within a single connector member. Figure 37B shows connector 1950B with an inspiratory flow path having a connection for a nasal cannula 124, and a separate conduit is used to provide an exhaled gas flow path 130 attached to the mask 124.

[0295] Typically, a system 1000 using the patient interface shown in Figures 31-33 may include a controller 1010 that communicates with a flow regulator 250, and one or more sensors or input interfaces that communicate with the controller to provide inputs to the controller for controlling the flow regulator to provide a respiratory gas flow in a first or second mode. The sensors and / or input interfaces may also be configured to provide inputs to the controller for controlling the flow regulator to provide a respiratory gas flow in a third mode.

[0296] The system may also include a humidifier 420, in which the respiratory gas is heated and / or humidified by the humidifier in the second mode before being delivered to the patient. In some embodiments, the respiratory gas in the first mode and / or third mode may be heated and / or humidified by the humidifier 420. Ideally, the exhaled gas from the patient is returned to the inspiratory gas channel 210 in the first and third modes. A CO2 absorber 141 may be provided to remove CO2 from the exhaled gas before returning it to the inspiratory gas channel 210.

[0297] 3. Luminous tube assembly Another aspect of the present disclosure provides a multi-lumen assembly 1400 used with a respiratory support system 1000, as schematically illustrated in Figure 20. The multi-lumen assembly 1400 has a plurality of conduits, as shown in Figure 21. A first inspiratory conduit 1410 has a first conduit inlet end, which is connectable to a first gas outlet 1044 of the respiratory support system and configured to deliver respiratory gases, including anesthetics, to the patient. The first inspiratory conduit 1410 has a first conduit outlet end, which is connectable to a first patient interface 120, which is configured to seal and engage with the patient's airway and direct the flow. In the illustrated embodiment, the first patient interface 120 is schematically illustrated as a sealed mask, but it should be understood that the first patient interface may be an endotracheal tube, LMA, etc.

[0298] The second inspiratory conduit 1420 has a second conduit inlet end that can be connected to a second gas outlet 1048 of the respiratory support system and is configured to deliver high-flow respiratory gas to the patient at a flow rate of 20 L / min to 90 L / min. The second inspiratory conduit 1420 has a second conduit outlet end that can be connected, for example, via a three-way safety connector to a second patient interface 220, which is configured to direct the flow to the patient's airway and may be an open interface such as a nasal cannula.

[0299] The expiratory conduit 1430 has an expiratory conduit outlet that can be connected to the expiratory gas inlet 1046 of the respiratory support system. The expiratory conduit 1430 is configured to return the patient's exhaled gas to the respiratory support system.

[0300] In some embodiments, the multi-lumen assembly 1400 includes or is operable with a connector portion 1415, such that the outlet end of the first inspiratory conduit 1410 and the inlet end of the expiratory conduit 1430 form a common gas flow path 1416. A schematic diagram is provided in Figure 21. The common gas flow path 1416 is defined by a single gas exchange conduit 1417 that can be connected to a first patient interface 120. Ideally, the connector portion 1415 includes a taper, such as a 22 mm taper, to reduce the overall cross-section of the assembly in the area of ​​the single gas exchange conduit 1417. In some embodiments, the connector portion is configured to orient the second conduit outlet end of the second inspiratory conduit 1420 to branch off from the single gas exchange conduit. The connector portion is then connectable to a second patient interface 220 for delivering high-flow respiratory support, for example, by a three-way safety connector.

[0301] Retention mechanism In some embodiments, at least a portion of the conduits are arranged coaxially, as schematically shown in Figure 21, such that the outer wall of one lumen defines the inner wall of the next lumen. In other embodiments, at least a portion of the conduits are arranged parallel to each other, and the multi-lumen assembly 1400 includes a mechanism for holding at least a portion of the conduits in a cluster, such as in a strip (Figure 22A) or in a bundle (Figures 22B and 22C), where the conduits are arranged side by side. In some embodiments, the conduits are inserted into each of the three “slots” of the respiratory support system 1000 and configured to deliver anesthesia and / or ventilation, as well as high-flow respiratory support, depending on the selected operating mode of the system. Patient-end adapters can be used to insert the first and second patient interfaces into a single connector (e.g., connector 1500), or the conduits can be separated along a portion of the assembly to allow the patient ends to move independently.

[0302] In some embodiments, the retaining mechanism includes webbing 1452 positioned spaced apart or in sequence between at least pairs of conduits arranged in a strip. The webbing (or portion of webbing) 1452 may be detachable to facilitate the separation of at least a portion of one or more of the conduits from the mass, for example, to separate a second inspiratory conduit 1420 connected to a second patient interface 220, while a first inspiratory and expiratory conduit are connected to a single first patient interface 120.

[0303] Alternatively, or further, the retention mechanism may include a sheath (or skin) 1454 applied around multiple conduits, as shown in Figure 22B. Ideally, a portion of the sheath 1454 is removable from a portion of the multi-lumen assembly, for example, to isolate the second inspiratory conduit 1420. The sheath can be formed from any suitable material, such as a plastic extruded product or wrap, which may have a continuous sheet form, be a fabric, or be an expandable "mesh" that can be stretched over multiple conduits. One advantage of a sheath 1454 formed from a smooth plastic or similar coating is that it is easily cleaned by wiping and has an orderly appearance. Advantageously, the patient interface can be replaced, especially when used with a filter 230 that can be assembled with the patient interface being used or incorporated as part of the patient interface. This allows the three-lumen tube assembly 1400 to be reused for different patients. Alternatively, or further, the filter 230 may be incorporated into or connected to the three-lumen tube assembly 1400 so that a single filter can be used with different interchangeable patient interfaces. Furthermore, the three-lumen tube assembly 1400 also has the capability to carry a sensor line or gas sampling line 227, which can be used to transmit sampled exhaled gas or sensor signals from a sensor located in the patient interface (such as a second patient interface in the form of a nasal cannula) to a controller 1010 of the respiratory support system 1000, which can be used to control the switching of the operating modes of the respiratory support system 1000.

[0304] Alternatively, or further, the retaining mechanism may include one or more retainers or clips 1456 configured to hold two or more conduits of a plurality of conduits in a cluster. Figure 22C shows an example of a retainer / clip 1456, which has slots for holding three conduits in a cluster or bundle. It should be understood that several retainers 1456 can be used to hold a bundle of conduits together along a desired length. In some embodiments, the retainer / clip 1456 may have slots for accommodating two, three, four or more conduits, and may have slots for holding, for example, sensor wires or other elongated members. In some embodiments, the retainer 1456 is slidable along one or more portions of conduits in a plurality of conduits. The advantage of the retainers 1456 is that their positions on the multi-lumen assembly 1400 can be changed as needed, not all slots need to be used, and they can be cleaned and reused. They can also be used to rejoin conduits that were separated when a web or sheath was previously provided.

[0305] In some embodiments, the multi-lumen assembly 1400 includes, or is operable with, a flow switching mechanism that can be operated to direct the flow of respiratory gas to a first inspiratory conduit 1410 or a second inspiratory conduit 1420. The switching mechanism is operable by the user to select an assist mode, thereby determining the flow of respiratory gas to the first or second inspiratory conduit. The switching mechanism is associated with or operablely connected to the respiratory assistance system 1000 and can take any preferred form, such as a button, switch, knob, foot switch or pedal, or other user-operable actuator. In the illustrated embodiment, the switching mechanism is schematically shown as a switch lever 700.

[0306] In some embodiments, the switching mechanism is operatively coupled to the respiratory support system controller 1010 by electronic means that allow the user to switch modes using a touchscreen or other electronic interface. In some embodiments, the switching mechanism can be directly coupled to a gas flow divider that controls the flow to the first gas outlet 1044 and the second gas outlet 1048 of the system. Alternatively, an electronic switching mechanism having functional control over valves and / or gas flow dividers or other means used to control the flow of gas to the first inspiratory line 1410 and the second inspiratory line 1420 provides a range of flexibility in the location of the switching mechanism, as well as the possibility of central control over other components of the respiratory support system 1000, such as vaporizers, gas sources, gas mixers, and flow regulators.

[0307] Figure 24 shows an example of a patient-end connector 1500 that can be connected to the three lumen assemblies 1400 via a connector coupling 1550. In some embodiments, the patient-end connector 1500 includes one or more switching elements 1570 that the user can operate to switch the connector between a first operating mode in which the connector directs respiratory gas to a first patient interface via a first coupling 1510 and expiratory gas from the patient to the expiratory flow path via an expiratory coupling 130, and a second operating mode in which the connector directs respiratory gas to a second patient interface via a second coupling 1520. Thus, the switching elements 1570 communicate the selected mode so that the controller 1010 of the respiratory support system 1000 can be operably communicated to configure the gas delivery system accordingly. Alternatively / furthermore, the controller 1500 can receive control signals from the system controller 1010 and redirect the flow within the controller to direct respiratory gas to the first or second patient interface, for example, by activating valves and / or gas flow diverters.

[0308] In various embodiments of the multi-lumen assembly 1400, and of actuators and connectors used with or forming part of the multi-lumen assembly, a gas sampling conduit 227 (B in Figure 22) may be provided for monitoring the properties of one or more gases, such as CO2. These properties can be used by a respiratory support system controller to determine whether a first or second patient interface is attached to a connector and applied to the patient's airway.

[0309] System switching with CO2 trigger Another aspect of this disclosure relates to CO2 detection as a means of providing mode switching in a system for delivering respiratory gases to a patient. This aspect will be described in relation to a system 1000 that provides respiratory assistance as described herein. This system is operable to deliver respiratory gases via a first patient interface 120 in a first mode and via a second patient interface 220 in a second mode. This system includes one or more CO2 sensors configured to detect CO2 in exhaled gases from a patient. A system controller 1010 receives input from one or more CO2 sensors and operates a system switching mechanism according to the detected CO2 to select a first mode when the detected CO2 indicates that the first patient interface is connected to a patient, and selects a second mode when the detected CO2 indicates that the second patient interface is connected to a patient.

[0310] In some embodiments, the system controller 1010 switches control when it determines that there has been a change in the detected CO2 concentration. However, detection of a change is not essential, as it may be sufficient for the controller to determine whether the first patient interface 120 or the second patient interface 220 is attached to the patient by comparing it to a reference value (e.g., corresponding to a typical ambient CO2 level). By detecting the patient circuit (and patient interface) connected to the patient, the system controller 1010 can automatically select the correct operating mode to provide the patient with the necessary respiratory support. For example, in the first mode, breathing gases are delivered to the patient's airway via the first patient interface, which may be a sealed interface, and exhaled gases are returned to the system by an exhaled gas path. The exhaled gases may be redirected to the atmosphere or exhaust when the breathing gases are delivered to the patient to provide ventilatory support in the first mode. Alternatively, the first mode may be a rebreathing first mode in which the exhaled gases returned to the system are recirculated via a rebreathing system such as the one disclosed herein for delivery to the patient via the first patient interface. In the first rebreathing mode, the breathing gas may contain one or more volatile anesthetics vaporized into the breathing gas by a vaporizer as disclosed herein. In the second mode, the breathing gas can be delivered at a high flow rate of at least 20 LPM (for adults) and up to approximately 90 LPM, and these gases can be delivered to the patient via a second patient interface 220, which may be an open interface such as a nasal cannula 224.

[0311] The system may include a CO2 sensor associated with a first breathing circuit for the delivery of breathing gas in a first mode and / or a second breathing circuit for the delivery of breathing gas in a second mode, and the controller 1010 may determine that the breathing circuit containing the highest concentration of CO2 is the breathing circuit attached to the patient, and control the delivery of gas to the determined breathing circuit according to the relevant operating mode.

[0312] Typically, when one or more CO2 sensors detect CO2 in the exhaled gas in the exhaled gas channel 130 that returns the exhaled gas to the system, the system controller 1010 determines that a first breathing circuit, including a first patient interface 120, is to be attached to the patient. The first patient interface 120 may include a sealed mask 124 or an endotracheal tube 126, as shown in Figures 25 and 26, and a CO2 sensor (not shown) is provided in the gas channel of the exhaled conduit that returns the exhaled gas to the system. The CO2 sensor may be located within the system body, for example, at the exhaled gas inlet, or at any location along the length of the exhaled gas conduit 130. The nasal cannula 224 shown in Figures 25 and 26 has nasal prongs 226 that can direct high-flow breathing gas into the nasal cavity of the patient 300.

[0313] Since the unsealed patient interface does not have a return conduit for exhaled gas, the CO2 sensor can be located at the patient end of the interface, for example, on a prong 226 or on the cannula body to which the prong is attached. Alternatively, a sampling conduit 228 can be used to return the sampled gas exiting the nasal cavity to a CO2 sensor located elsewhere in the device. Thus, the sampling conduit 228 can be connected to a gas sampling line 227 (Figures 27 and 28) which is in fluid communication with the CO2 sensor that provides input to the system 1000, or it can be in fluid communication with the exhaled gas conduit 130 as shown in Figure 26. Since CO2 dissipates rapidly into the atmosphere, in embodiments where exhaled gas is directed to the exhaled gas conduit 130 via the sampling conduit 228, the controller 1010 can be configured to associate lower detected CO2 concentrations with the use of the second unsealed patient interface 220 / 224.

[0314] The sampling conduit 228 can provide flow to the exhalation gas conduit 130, or it can provide a separate conduit that fluidly communicates with a dedicated gas sampling inlet of the system 1000. Figure 26 shows a cannula 224 and a face mask 124 connected to the exhalation gas conduit 130 (for simplicity, the inspiratory gas conduit 110 is not shown). The sampling conduit 228 directs exhaled gas from the patient's mouth to the exhalation gas conduit 130 so that it is detected by a CO2 sensor. In this configuration, the nasal cannula 224 can be used to deliver respiratory gases that may contain anesthetics in a first mode, where the mask provides a means for directing exhaled gas through the exhalation pathway 130. In some embodiments, the sampling conduit 228 can be detached from the exhalation gas conduit of the sealed mask 124 and connected to the exhalation gas conduit of the endotracheal tube 126 (and vice versa), thereby enabling detection at various stages of sedation, including induction, ongoing anesthesia with ventilation, and withdrawal.

[0315] A variety of different methods can be used for detection as a means of providing mode switching in a system for delivering respiratory gas to a patient. In one example, the pressure inside the mask can be monitored with a pressure sensor and used to detect when the mask is in place on the patient. The mask may be placed on or in place of the high-flow cannula (as shown in Figure 32). Detection that the mask is on the patient can be achieved by detecting a pressure increase from the pressure expected during the delivery of high-flow respiratory support (corresponding to the mask being placed on the cannula), indicating that a rebreathing circuit may be intended to be used, thereby switching the operation of the respiratory support system 100 from high-flow mode to rebreathing mode. Alternatively, or otherwise, an optical sensor configured to monitor changes in emitted / detected light occurring in the presence of the patient's skin can be provided on the mask and used to detect when the mask is placed on the patient. This can be used in conjunction with a pressure sensor located on the mask's cuff that detects a pressure increase when the mask is applied to the patient, and the pressure increase can trigger a switch in control from high-flow mode to rebreathing mode. Similarly, if a reverse change is detected in these measurements, this may coincide with the removal of the mask from the patient, which could trigger a switch in control from rebreathing mode to high-flow mode.

[0316] Alternatively, or further, detection of the expiratory flow path of the rebreathing tube can be used to determine when the mask is in place on the patient to trigger a switch to rebreathing. The mask may be placed over the high-flow cannula (as shown in Figure 32) or replace the cannula. One or more parameters in the expiratory flow path, such as flow rate, pressure, temperature, or humidity, can be determined using a suitable sensor. An increase in one or more of these parameters (for example, if the sensor determines that the temperature in the expiratory flow path has risen or is higher than the ambient temperature) indicates that the mask is over the patient and triggers a switch from high-flow mode to rebreathing mode.

[0317] Figures 27 and 28 show another configuration that utilizes a piston-driven assembly to selectively direct exhaled gas from a first patient interface (mask 124) and a second patient interface (nasal cannula 224) to a gas sampling line 227. A sampling conduit 228 collects exhaled gas from the nasal cannula 224 into the first chamber 231A of the assembly. The assembly is housed with a filter 230 (optional) that receives exhaled gas from the face mask 124 and directs it to the first chamber 231A through an opening 233. The second chamber 231B is adjacent to the first chamber and is in fluid communication with the air-filled cuff 125 of the mask 124. A piston 232 is movable between a first position (Figure 27) and a second position (Figure 28) between the two chambers 231A and 231B. The first position obstructs the flow of gas from the sampling conduit 228 to the gas sampling line 227, and exhaled gas from the mask 124 is received in the first chamber 231A through the filter 230 and opening 233 and directed to the gas sampling line 227 (Figure 27). The second position obstructs the flow of exhaled gas from the mask 124 to the gas sampling line 227, and exhaled gas from the sampling conduit 228 is directed to the gas sampling line 227 (Figure 28). When the mask 124 is applied to the patient's face to deliver respiratory gas in the first mode, the pressure in the cuff 125 increases, and the piston 232 shifts away from the cuff to the first position. When the mask 124 is removed from the patient's face, the biasing means 234 shifts the plunger to the second position. The biasing means 234 is shown as an elastic biasing means in the figures, but it should be understood that the operation of the plunger may be controlled electronically, mechanically, or by other means.

[0318] In the alternative configurations shown in Figures 29A and 29B, exhaled gas is selectively directed to the gas sampling line 227 using airway pressure, such as that determined by the pressure inside the mask itself. Figure 29A shows the configuration when the mask is used in the first mode, and Figure 29B shows the configuration when a nasal cannula (not shown) is used. The gas sampling line 227 has a lower pressure than both the exhalation conduit 130 from the face mask and the sampling conduit 228 from the nasal cannula. In Figure 29A, the positive pressure inside the mask during use in the first mode causes the pressure-responsive flow divider 235 to allow the flow of exhaled gas from the exhalation conduit 130 to the gas sampling line 227, while blocking the flow of exhaled gas from the sampling conduit 228 (from the nasal cannula). In Figure 29B, the mask is removed from the patient, and the pressure inside the exhalation conduit 130 becomes equal to atmospheric pressure. During the second operating mode, the nasal cannula is applied to the patient, causing the exhaled gas in the sampling conduit 228 to increase pressure, and the flow divider 235 allows the flow of exhaled gas from the sampling conduit 228 to the gas sampling line 227, while substantially blocking the flow of exhaled gas from the exhaled conduit 130 due to the pressure difference and the arrangement of the flow divider 235 when operating in the second mode.

[0319] In yet another configuration shown in Figure 30, the user operates a three-way switch 1600 to selectively direct exhaled gas from one of the following: a nasal cannula, an endotracheal tube, and a sealed mask, to a gas sampling line 227 incorporated into a multi-lumen assembly 1400, in a preferred embodiment. A piston 232, connected to an actuator operated by the user, moves within a chamber 231 inside the switch housing to direct the exhaled gas flow according to the operating mode or patient interface selected by the user. When the piston moves to the distal end of the multi-lumen tube assembly 1400, high-pressure exhaled gas from the cannula (via the sampling conduit 228) enters the chamber 231 and the gas sampling line 227 inside the multi-lumen assembly. When the piston shifts toward the multi-lumen tube assembly 1400, the flow from the cannula is unable to enter the gas sampling line, and instead, exhaled gas enters from either the endotracheal tube or the mask.

[0320] In some embodiments, the system 1000 includes a first breathing device 100 for delivering breathing gas in a first mode and a second breathing device 200 for delivering breathing gas in a second mode, as described herein. Thus, the first breathing device 100 may include one or more of the following: a CO2 absorber configured to process the exhaled gas returned in the first mode before recirculating it to the patient; a pressure limiting valve configured to maintain a substantially stable pressure within the system in the first mode; a variable volume section (such as a ventilation bag or bellows) for gas replacement in the first mode; a fresh gas flow for replenishing the anesthetic gas delivered to the patient in the first mode; and a vaporizer for vaporizing volatile anesthetics in the breathing gas delivered to the patient in the first mode. The second breathing device 200 includes a flow regulator configured to provide a high flow rate gas flow through the system and typically includes a humidifier configured to adjust the temperature and / or humidity before delivering the breathing gas to the patient in the second mode.

[0321] In a preferred embodiment, when the second mode is selected, the system isolates the flow of respiratory gas from the first respiratory device to the patient, preventing the delivery of anesthetic to the patient 300. In some embodiments, the first respiratory device 100 and the second respiratory device 200 are integrated into a single machine, but this is not mandatory. In any case, a humidifier may be provided to adjust the respiratory gas to a predetermined temperature and / or humidity before delivering it to the patient in the second mode.

[0322] In some embodiments, the system 1000 includes a display device or monitor 1094 that can be configured to display one or more CO2 traces based on inputs from one or more CO2 sensors received by the system controller 1010, and which can be operationally communicated with the system controller. The system controller 1010 can automatically determine which of the CO2 sensor signals to display on the monitor 1094 and can select the trace corresponding to the CO2 sensor input that represents the highest detected CO2 value from the multiple CO2 sensors, or the CO2 value that is most likely to be similar to the patient value (e.g., higher than the ambient CO2 concentration). Alternatively, the system controller 1010 may have all CO2 traces displayed simultaneously or cyclically on the monitor 1094, or on one or more separate monitors that may be dedicated to CO2 monitoring.

[0323] Respiratory device with humidifying function Figures 38 to 40 show a respiratory device 100 for delivering respiratory gas to a patient 300 according to one embodiment of the present disclosure. The respiratory device 100 includes a flow source 1030 that provides a flow of respiratory gas to be delivered to the patient 300 in the inspiratory channel. The respiratory device 100 also includes a mounting base 160 which is connected to at least one vaporizer 150 that vaporizes one or more volatile anesthetics into the flow of respiratory gas in the inspiratory channel before being delivered to the patient 300. The respiratory device 100 also includes a return channel that recirculates the exhaled gas received from the patient 300 via the expiratory channel back into the inspiratory channel. The mounting base 160 is connectable to a humidifying component 450 that adjusts the flow of respiratory gas in the inspiratory channel to a predetermined temperature and / or humidity before being delivered to the patient 300.

[0324] Components of the respiratory apparatus 100, as illustrated and described in relation to Figures 38-40, which have the same numbering as the components of the anesthesia machine 10, ventilator 20, and high-flow system 30, are intended to refer to the same components. Therefore, the descriptions of these components related to the anesthesia machine 10 are considered applicable to the respiratory apparatus 100 according to some embodiments of this disclosure.

[0325] The flow source 1030 of the respiratory apparatus 100 may include a flow regulator (such as the flow regulator 250 described with reference to Figure 2), and more specifically, a flow generator adapted to receive one or more respiratory gases outside the respiratory apparatus 100 and generate a gas flow through the respiratory apparatus 100. The flow generator may be in direct or indirect fluid communication with a gas supply unit 1060 that provides one or more respiratory gases to the respiratory apparatus 100. The gas supply unit 1060 may be a gas source supplied by one or more hospital gas outlets, such as those located in an operating room or ICU. The gas supply unit 1060 may be configured to supply nitric oxide (NO), oxygen (O2), and / or air to the flow generator.

[0326] In some embodiments, the flow source 1030 includes a gas supply unit 1060. The flow source 1030 and / or the breathing apparatus 100 may include one or more valve arrangements adapted to control the rate at which one or more gases, for example, one or more of NO, O2, and air supplied from the gas supply unit 1060, are provided to the inspiratory passage. This also allows for control of mixing one or more gases to a desired composition for use by the breathing apparatus 100. In alternative embodiments, the flow source 1030 may not include the gas supply unit 1060. Instead, the flow source 1030 may include one or more containers of compressed air and / or another gas, and one or more valve arrangements adapted to control the rate at which the gases exit one or more containers to provide a flow of breathing gases to the inspiratory passage.

[0327] In other embodiments, the respiratory device 100 is in gas flow communication with a gas delivery device 1040, which is in fluid communication with a gas supply unit 1060, as shown by the dashed lines in Figure 38. The gas delivery device 1040 can receive a supply of gas from the gas supply unit 1060, which includes one or more of NO, O2, and air. The gas delivery device 1040 includes a gas mixing element 1042 that mixes one or more of NO, O2, and air from the gas supply unit 1060 in the proportions necessary to deliver the breathing gas in the desired proportions for use by the respiratory device 100. For example, when the respiratory device 100 is operating to provide anesthetic ventilation to a patient 300 using one or more anesthetic agents, the gas mixing element 1042 may include at least nitric oxide (NO) in the breathing gas supplied to the respiratory device 100. Alternatively, if the respiratory device 100 is operating to provide anesthetic ventilation to the patient 300 without an anesthetic, the gas mixing element 1042 may contain O2 and / or air.

[0328] The gas delivery device 1040 also includes one or more flowmeters 1090 that control the flow of breathing gases supplied to the breathing apparatus 100, as shown in Figure 38. The gas delivery device 1040 may include flowmeters 1090 that control gas lines supplying NO, O2, and air, respectively (see, for example, Figures 54 and 55, which include flowmeters 190 for the breathing apparatus 100). The flowmeters 1090 can control the gas mixture by changing the flow rate of each breathing gas supplied to the breathing apparatus 100, thereby changing the proportion of the breathing gases. The gas delivery device 1040 may also include a gas outlet 1044 that can be connected to the breathing apparatus 100 to supply gas from the gas delivery device 1040 to the breathing apparatus 100.

[0329] In other embodiments, the respiratory apparatus 100 may include a gas delivery device 1040. The gas delivery device 1040 may be in fluid communication with the flow source 1030 to provide the flow source 1030 with respiratory gas to generate a gas flow for delivery to the patient 300 in the inspiratory passage. Alternatively, the gas delivery device 1040 may replace the flow source 1030 such that the gas outlet 1044 provides a flow of respiratory gas directly into the inspiratory passage.

[0330] The respiratory apparatus 100 provides an inspiratory channel into which the flow of respiratory gas is directed to the patient's airway 310. The flow of respiratory gas from the flow source 1030 can be adjusted and / or modified in the inspiratory channel before being delivered to the patient 300. As shown in Figure 38, the flow of respiratory gas can be directed from the flow source 1030 (or the gas supply unit 1060 and / or the gas delivery device 1040) to the vaporizer 150, the external humidification component 450 of the respiratory apparatus 100, or directly to the inspiratory conduit 110 or inspiratory conduit 120. The choice of which to direct the respiratory gas flow can be controlled by the controller 1010 of the respiratory apparatus 100. Furthermore, a switching mechanism 1020 can be provided to control switching between the choices for directing the respiratory gas flow in the inspiratory channel. This will be described in more detail in relation to Figures 52 and 49.

[0331] The respiratory device 100 can be operated in multiple operating modes, for example by a controller 1010. The respiratory device 100 may be able to operate in a first mode in which the respiratory device 100 delivers respiratory gas to the inspiratory channel and receives the return of expiratory gas through the expiratory channel. The first operating mode may be an anesthetic ventilation mode, which may include providing ventilatory support with or without one or more types of anesthetics. Typically, the respiratory gas is delivered at a low flow rate, for example, less than about 15 L / min. In the first mode, the respiratory gas may include one or more of NO, O2, and air. The respiratory gas may optionally include one or more types of anesthetics for the operation of the respiratory device 100 in the anesthetic ventilation mode, such as nitric oxide from the flow source 1030 and / or one or more types of volatile agents from the vaporizer 150.

[0332] In the first mode, the respiratory gas flow can be directed from the flow source 1030 to the vaporizer 150 or directly to the inspiratory conduit 110 for delivery to the patient 300, as shown in Figure 38. When the respiratory gas flow is directed to at least one vaporizer 150, the respiratory gas flow can be modified to optionally include one or more volatile anesthetics that vaporize within the gas flow. One or more volatile anesthetics may include isoflurane or sevoflurane, which are converted from liquid to vapor by the vaporizer 150. The respiratory gas flow containing the optional anesthetics is then directed to the inspiratory conduit 110 for delivery to the patient's airway 310 via the first patient interface 120. The first patient interface 120 can form a sealed interface with the patient's airway 310 and may include a mask or an endotracheal tube. The first patient interface 120 may include a laryngeal mask (LMA) or a sealed face mask.

[0333] The respiratory device 100 also provides an expiratory channel from which a flow of exhaled gas from the patient 300 is received. The first patient interface 120 can be configured to receive exhaled gas from the patient 300 in the first mode, as shown in Figure 38. The exhaled gas can flow through an expiratory conduit 130 connected to a rebreathing component 140 of the respiratory device 100. The rebreathing component 140 includes at least a CO2 absorber 141 configured to process the returned exhaled gas from the patient 300 before recirculating it into the inspiratory channel in the first mode. The rebreathing component 140 can also include one or more of a ventilation bag 142, a pressure relief valve 143, a scavenger system 144, a bellows 145, and a pressure relief valve 146, as described in relation to the anesthesia machine 10 in Figure 1A. Thus, the respiratory device 100 provides a return channel for recirculating exhaled gas from the patient 300 into the inspiratory channel via the rebreathing component 140 in the first mode.

[0334] The respiratory device 100 may also be able to operate in a second mode, for example, by a controller 1010, in which the respiratory device delivers respiratory gas to the inspiratory channel at a predetermined flow rate without the return of exhaled gas from the patient 300. The second mode may be a high-flow mode that delivers high-flow respiratory support. Typically, the respiratory gas is delivered at a high flow rate, such as in the range of about 20 L / min to about 90 L / min, or in the range of about 40 L / min to about 70 L / min. In other embodiments, the predetermined flow rate may include about 20 L / min, about 40 L / min, or about 70 L / min. The respiratory gas may contain O2 and / or air in proportions necessary for the operation of the respiratory device 100 in the second mode.

[0335] In the second mode, the respiratory gas flow can be directed from the flow source 1030 to the humidifying component 450, and the respiratory gas is then provided directly or indirectly to the second inspiratory conduit 210 for delivery to the patient 300, as shown in Figure 38. When the respiratory gas flow is directed to the humidifying component 450, the humidifying component 450 is operable to adjust the respiratory gas flow in the inspiratory channel to a predetermined temperature and / or humidity before delivery to the patient 300. The humidifying component 450 may be operable to heat the respiratory gas flow to a predetermined temperature. The predetermined temperature and / or humidity may include a value or range of values ​​suitable for the delivery of ventilatory assistance, particularly high-flow respiratory assistance, to the patient 300. However, it should be understood that in some embodiments, it may be desirable not only to enable the vaporizer 150 but also to allow the humidifying component 450 to provide humidification and / or heating of the gas during the delivery of assistance in the first mode, i.e., the rebreathing mode.

[0336] The humidification component 450 can operate in at least an invasive mode (e.g., for patients with bypassed airways) and / or a non-invasive mode (e.g., for patients or users with a respiratory mask or nasal cannula). Each mode may have a number of humidity settings, which can be expressed as dew point or absolute humidity. The humidification component 450 can be controlled to deliver a humidified gas having a predetermined humidity level or near that dew point (or absolute humidity) at the outlet port 408 of the humidification chamber 400 and / or the patient end of the inspiratory conduit 210. For example, a user or clinician can select a setting suitable for the current operating mode. A number of humidity settings can be provided. For example, the humidity settings may correspond to dew points such as 37°C, 31°C, 29°C, 27°C, etc. For invasive therapy (i.e., when the patient's upper airway is bypassed), a humidity setting corresponding to a dew point of 37°C may be preferred, while other humidity settings may be preferred for non-invasive respiratory support, although the humidity settings may not be limited to a particular type of respiratory support. Alternatively, each humidity setting may be continuously variable between an upper and lower limit. A user or clinician may select a lower humidity setting to reduce condensation or "rainout" in the intake conduit 210, or a higher humidity setting to improve patient comfort or physiological benefit. Some of the humidification components 450 disclosed herein may also include a high-flow mode, an open-seal mode, or any other mode known to those skilled in the art.

[0337] The humidifying component 450 can provide different humidity levels for different respiratory support applications. For example, the humidifying component 450 can deliver a desired humidity level of approximately 44 mg / L BTPS (approximately 37°C fully saturated) for invasive and / or high-flow respiratory support, and / or approximately 32 mg / L BTPS (approximately 31°C fully saturated) for non-invasive forms of respiratory support. Other suitable patient-comfortable settings can also be delivered for various forms of respiratory support.

[0338] The regulated respiratory gas flow from the humidifying component 450 can be directed to a second inspiratory conduit 210 and a second patient interface 220 that can be connected to the patient's airway 310. The second patient interface 220 can form an open interface with the patient's airway 310 and may include a nasal cannula. Alternatively, the regulated respiratory gas flow can be returned to the respiratory device 100 and then exit through a dedicated outlet 164 for delivery to the patient 300 (see also Figure 39). In this case, the second inspiratory conduit 210 can be connected to the outlet 164 to deliver the regulated respiratory gas flow to the patient's airway 310. Furthermore / alternatively, the respiratory device 100 can also allow the regulated respiratory gas flow from the humidifying component 450 to be directed to the first inspiratory conduit 110 in the first operating mode. Thus, some humidification function can be utilized even in the first operating mode if desired by the anesthesiologist or clinician.

[0339] Importantly, in some embodiments, the respiratory apparatus 100 does not allow the flow of respiratory gas containing anesthetics to be directed towards the patient 300 in the second mode. The operation of the humidifying component 450 can prevent the delivery of one or more volatile anesthetics into the flow of respiratory gas in the inspiratory passage. More specifically, the operation of the humidifying component 450 can disable the operation of at least one vaporizer 150, or all of the vaporizers 150, in the respiratory apparatus 100. For example, the respiratory apparatus 100 may include a one-way valve or other configuration that prevents the gas flow from the vaporizer 150 to the second inspiratory conduit 210, in particular the passage of any volatile anesthetics, when the humidifying component 450 is operating. Such configurations have been described above.

[0340] The breathing apparatus 100 can advantageously enable the selective operation of one or more vaporizers 150 and humidifying components 450. The breathing apparatus 100 may include an optional switching mechanism 1020, as shown in Figure 38, to enable the selective operation of either the vaporizer 150 or the humidifying component 450. If neither is selected, the gas flow is directed to the inspiratory conduit 110 or 210, as shown. The switching mechanism 1020 can be configured to operate according to the operating mode of the breathing apparatus 100, which will be described in further detail.

[0341] Figures 39 and 40 show additional components of the respiratory apparatus 100, which is illustrated as an anesthesia machine, having similar features to the anesthesia machine 10 shown in Figure 1A. The respiratory apparatus 100 may include a module 180 having an auxiliary O2 flow meter and a suction regulator. The respiratory apparatus 100 may also be configured to communicate with one or more flow meters 190 (see also Figures 54 and 55) to control the flow rate / mixing of gases within the respiratory apparatus 100, similar to the operation of the flow meter 1090 of the gas delivery device 1040 illustrated and described in relation to Figure 38. The respiratory apparatus 100 may be configured to communicate with the flow meters 190 to control the flow of gases including one or both of air and O2 in a second mode.

[0342] The respiratory apparatus 100 may be configured to communicate with a gas flow one or more of the following: pressure limiting valves 143, 146 configured to maintain a substantially stable pressure within the respiratory apparatus 100 in the first mode; a variable volume section or bellows 145 for gas replacement in the first mode; a fresh gas flow (FGF) (see also Figures 56 and 57) for replenishing the respiratory gas delivered to the patient 300 in the first mode; and a vaporizer 150 for vaporizing one or more volatile anesthetics into the respiratory gas flow before delivery to the patient 300 in the first mode. See, for example, the components of the anesthesia machine 10 in Figure 1A. The respiratory apparatus 100 may also include two monitors, namely a patient monitor 192 and a system monitor 194, which display information useful to the operator of the respiratory apparatus 100.

[0343] The breathing apparatus 100 also includes a mounting base 160 to which a vaporizer 150 and a humidifying component 450 can be connected, as shown in Figure 39. The mounting base 160 may include a plurality of slots to receive the housings of the vaporizer 150 and the humidifying component 450. The housings of the vaporizer 150 and the humidifying component 450 can be slidably received in the slots of the mounting base 160. Figure 40 shows the empty slots of the mounting base 160 when the humidifying component 450 is removed. The mounting base 160 may be configured so that at least one vaporizer 150 and a humidifying component 450 can be mounted adjacent to each other on the breathing apparatus 100, as shown in Figure 39. The vaporizer 150 and the humidifying component 450 can be positioned in an aligned arrangement on the mounting base 160. As described in relation to Figures 46 to 51, the housings of the vaporizer 150 and the humidifying component 450 or their components can cooperate and engage with each other.

[0344] In some embodiments, the mounting base 160 can be connected to two or more vaporizers 150 (not shown) in addition to the humidifying component 450. The humidifying component 450 can be positioned on the mounting base 160 with the vaporizers 150 located on either side of the humidifying component 450. This allows the housing of the humidifying component 450 to engage in cooperation with each of the vaporizer housings, such as disabling the operation of both vaporizers 150 when the humidifying component 450 is operating. This will be described in more detail with reference to Figures 46 to 51. The mounting base 160 may also include a heating element 162, shown as a heating coil in Figure 40, which will be described in more detail with reference to Figure 43. However, the heating element 162 is optional and does not have to be included in the mounting base 160.

[0345] Figures 41–44 show different embodiments of a respiratory device 100 and a humidifying component 450 used to deliver respiratory gas to a patient 300, according to some preferred embodiments of the present disclosure. The respiratory device 100 includes a flow source 1030 that provides a flow of respiratory gas into the inspiratory channel for delivery to the patient 300. The respiratory device 100 also includes a mounting base 160 for connecting to at least one vaporizer 150 that vaporizes one or more volatile anesthetics into the flow of respiratory gas in the inspiratory channel before delivery to the patient 300. The respiratory device 100 also includes a return channel for recirculating exhaled gas received from the patient 300 via the exhaled channel to the inspiratory channel. The humidifying component 450 is connectable to the mounting base 160 of the respiratory device 100 to adjust the flow of respiratory gas in the inspiratory channel to a predetermined temperature and / or humidity before delivery to the patient 300.

[0346] The humidifying component 450 can be configured for use with the breathing apparatus 100 shown in Figures 38-40 and as described in the embodiments herein. Therefore, the description of the components of the breathing apparatus 100 will not be repeated for brevity. The humidifying component 450 may include a humidifying chamber 400, as shown in Figures 39 and 41-44, through which breathing gas is received and adjusted to a predetermined temperature and / or humidity. For example, in the embodiment of Figure 39, the humidifying chamber 400 may be an integrated and / or replaceable component of the housing of the humidifying component 450. The user may be able to replenish the humidifying chamber 400 with liquid. In some embodiments, the humidifying chamber 400 may be configured to be connected to a mounting base 160 and may be slidably mounted on the mounting base 160, for example, via a housing 422 that is received in a slot of the mounting base 160. The humidification chamber 400, with its housing 422, can be slidably received in a slot along a substantially horizontal plane with respect to the mounting base 160.

[0347] Figure 41 shows one embodiment of a humidification component 450, including a housing 422 with a humidification chamber 400, through which breathing gas is received from the breathing apparatus 100 and adjusted to a predetermined temperature and / or humidity. The humidification chamber 400 includes an inlet port 406 for receiving the flow of breathing gas from the breathing apparatus 100 and a return port 408 connectable to the breathing apparatus 100 for returning the adjusted flow of breathing gas. The humidification chamber 400 includes a heating element 404, such as a heating coil, for heating the liquid inside the humidification chamber 400. The humidification chamber 400 is configured to be electrically connected to the breathing apparatus 100 for the operation of the humidification chamber. The heating element 404 is electrically connected to a mounting base 160, as shown in Figure 41.

[0348] Figure 42 shows another embodiment of a humidification component 450, including a housing 422 containing a humidifier 420 having a humidification chamber 400, wherein the humidification chamber 400 is connectable to a humidification base unit 410 that operates the humidification chamber 400. The humidification chamber 400 may be slidably connectable to the humidification base unit 410. The humidification chamber 400 may be slidably connectable so as to be received along a substantially horizontal plane of the humidification base unit 410. For example, U.S. Patent No. 5,445,143 discloses a humidification chamber that operates on a base in a substantially horizontal plane, which is suitable for embodiments of the present disclosure, and that disclosure is incorporated herein by reference.

[0349] In some embodiments, the humidification base unit 410 is configured to be connected to a mounting base 160. The housing of the humidification base unit 410 can be configured to be slidably received on the mounting base 160. For example, the mounting base 160 includes a plurality of slots, and the housing of the humidification base unit 410 can be slidably received in one of the slots, as shown by the mounting base 160 in Figure 40. The humidification base unit 410 or its housing can be received in a slidable manner similar to that of the humidification component 450 described in relation to Figures 39 and 40.

[0350] The humidification chamber 400 includes an inlet port 406 for receiving the respiratory gas flow from the respiratory device 100 and an outlet port 414 for delivering the regulated respiratory gas flow to the patient 300. The outlet port 414 is connectable to an inspiratory conduit 210 to deliver the regulated respiratory gas flow to the patient 300 via a patient interface (e.g., a sealed or unsealed patient interface). The inspiratory conduit 210 can be connected to a second patient interface 220, such as a nasal cannula, to deliver the respiratory gas to the patient's airway 310. The humidification base unit 410 includes a heating element 412, such as a heating coil, for heating the liquid in the humidification chamber 400. The heating element 412 of the humidification base unit 410 is electrically connected to a mounting base 160, as shown in Figure 42.

[0351] Figure 43 shows another embodiment of the humidification component 450, which includes a housing 422 having a humidification chamber 400 with an inlet port 406 and a return port 408, similar to Figure 41. In this embodiment, the humidification chamber 400 includes a conductive plate 402 connected to a heating element 404 in a mounting base 160, as shown in Figure 40. The conductive plate 402 is heated when the heating element 404 in the mounting base 160 is operating, and the heat is transferred to the humidification chamber 400 to heat the liquid in the humidification chamber 400.

[0352] Figure 44 shows another embodiment of the humidification component 450, similar to that in Figure 42. In this embodiment, the humidification chamber 400 includes a return port 408 that returns the regulated respiratory gas flow to the respiratory device 100. The outlet port 414 is eliminated and cannot be connected to the patient's airway 310. In this embodiment, the respiratory device 100 may include an outlet port 164, as shown in Figure 39, through which the regulated respiratory gas flow from the humidification component 450 is delivered to the inspiratory channel. The outlet port 164 is connected to the inspiratory conduit 210, as shown in Figure 38, and the respiratory gas flow can be delivered to the patient's airway 310 via a second patient interface 220.

[0353] In some embodiments, the humidification chamber 400 includes a liquid inlet connected to a liquid reservoir for refilling the humidification chamber 400. The humidification chamber 400 may also include a flow control mechanism for controlling the flow of liquid into the humidification chamber 400. The humidification chamber 400 may include at least one sensor for detecting the liquid level in the humidification chamber 400. The humidification chamber 400 may include a float valve for controlling the liquid level in the humidification chamber 400. For example, U.S. Patent No. 5,445,143 discloses a dual float valve humidification chamber suitable for embodiments of the present disclosure, which is incorporated herein by reference.

[0354] In some embodiments, the humidifying component 450 can be connected to the mounting base 160 via an adapter 430. Figure 45 shows an exemplary adapter 430 connecting the humidifying component 450 to a respiratory device 100 that delivers respiratory gas to a patient 300. The adapter 430 may be connected to the mounting base 160 of the respiratory device 100. The adapter 430 can be received in a slot in the mounting base 160 instead of the vaporizer 150 or the humidifying component 450.

[0355] As shown in Figure 45, the adapter 430 includes a first inlet port 432 for receiving the respiratory gas flow from the respiratory device 100 and a first outlet port 433 for delivering the respiratory gas flow to the humidifying component 450. The adapter 430 further includes a second inlet port 434 for receiving the regulated respiratory gas flow from the humidifying component 450. The regulated respiratory gas flow is delivered to the patient 300 or the respiratory device 100 via the second outlet port 435 of the adapter 430. In some embodiments, the second inlet port 434 and the second outlet port 435 are unnecessary if the humidifying component 450 is directly connected to the inspiratory conduit 210 to deliver the regulated respiratory gas flow to the patient's airway 310 (see, for example, Figure 42).

[0356] Figure 45 shows that the adapter 430 is configured to be electrically connected to the respiratory apparatus 100 for the operation of the humidifying component 450. For example, the adapter 430 as shown in Figure 45 includes a first power connector 436 that electrically connects the adapter 430 to the respiratory apparatus 100. The adapter 430 also includes a second power connector 437 that electrically connects the humidifying component 450 to the adapter 430. Thus, the humidifying component 450 can be powered via the adapter 430 connected to the respiratory apparatus 100. However, it should be understood that the humidification may, as an alternative / furthermore, be configured to be electrically connected to a battery or other built-in power source, as will be understood by those skilled in the art.

[0357] Advantageously, in some embodiments of the present disclosure, the operation of the humidifying component 450 prevents the delivery of one or more volatile anesthetics into the respiratory gas flow in the inspiratory passage. More specifically, the operation of the humidifying component 450 can disable the operation of at least one vaporizer 150, as described in relation to Figure 38. The respiratory device 100 may include an interlocking mechanism to prevent simultaneous operation of the humidifying component 450 and at least one vaporizer 150. The interlocking mechanism may be configured to enable the operation of the humidifying component 450 or at least one vaporizer 150 when in an unlocked state, and to disable the operation of the humidifying component 450 or at least one vaporizer 150 when in a locked state. Figures 46–49 show exemplary interlocking mechanisms of the respiratory device 100 according to some embodiments of the present disclosure.

[0358] Figure 46 shows a vaporizer 150 including a housing 152 having a dial 158 that provides an on / off switch when rotated by the user. The vaporizer 150 includes a locking element associated with the housing 152. The locking element 152 includes two locking pins 154A and 154B that are retractable into the housing 152 in the locked state and extendable from the housing 152 in the unlocked state. Each locking pin 154A and 154B may independently be retractable into the housing 152 in the locked state and extendable from the housing 152 in the unlocked state. In some embodiments, the locking element 152 may include only a single locking pin, such as locking pin 154B, as will be understood by those skilled in the art.

[0359] Figures 47A and 47C are schematic diagrams showing the operation of the interlocking mechanism of the vaporizer 150 in Figure 46. In Figure 47A, the dial 158 is rotated to the ON position, and the locking pins 154A and 154B extend from the housing 152. In Figure 47B, the dial 158 is rotated to the OFF position, and the locking pins 154A and 154B retract toward the housing 152. In Figures 47A and 47B, the vaporizer 150 remains in an unlocked state, allowing the user to rotate the dial 158 between the ON / OFF positions to enable or disable the operation of the vaporizer 150. In Figure 47C, an external force is applied to the locking pin 154A so that the pin retracts completely into the housing 152 and is no longer visible. This external force may be applied by the user, or more preferably by a corresponding locking element associated with the housing 422 of the humidifying component 450, as described later. In this state, the vaporizer 150 is in a locked state, at which point the dial 158 is disabled and it cannot rotate between the on / off positions. The vaporizer 150 is in a locked state when the dial 158 is in the off position. The vaporizer 150 can only be operated when the external force is removed and / or the lock pin 154A is released from inside the housing 152.

[0360] Figure 48 shows the vaporizer 150 of Figure 46 positioned adjacent to the humidifying component 450. The humidifying component 450 includes a housing 422 having a dial 428 that provides an on / off switch when rotated by the user. The humidifying component 450 includes a locking element associated with the housing 422. The locking element includes two locking pins 424A and 424B that are retractable into the housing 422 in the locked state and extendable from the housing 422 in the unlocked state. In some embodiments, the locking element includes only a single locking pin, such as locking pin 424A, as will be understood by those skilled in the art.

[0361] The vaporizer 150 and the humidifying component 450 may include the same locking elements as shown in Figure 48. The vaporizer 150 and the humidifying component 450 may be mounted adjacent to each other on the breathing apparatus 100, for example, by connecting them adjacent to each other on the mounting base 160 as shown in Figure 39, in order to enable them to cooperate with each other. Therefore, the vaporizer 150 and the humidifying component 450 can be configured to cooperate with each other to provide an interlocking mechanism. Furthermore, the locking elements of the vaporizer 150 or the humidifying component 450 may be configured to engage with the corresponding locking elements of the other vaporizer 150 or the humidifying component 450 to provide an interlocking mechanism.

[0362] Figures 49A and 49B are schematic diagrams showing the vaporizer 150 and humidifying component 450 equipped with the interlocking mechanism of Figure 48. In Figure 49A, the vaporizer 150 is switched to the ON position by rotating the dial 158, and the lock pins 154A and 154B extend from the housing 152. Since the vaporizer 150 is located adjacent to the humidifying component 450, the lock pin 154B of the vaporizer 150 presses against the lock pin 424A of the humidifying component 450, causing it to retract into the housing 422 of the humidifying component 450, and is not visible in Figure 49A. In this state, the humidifying component 450 is in a locked state, at which point the dial 428 is disabled and it cannot rotate between the ON / OFF positions. The humidifying component 450 is in the locked state in the OFF position. The humidifying component 450 can only operate when the vaporizer 150 is switched off by rotating the dial 158 to the off position, which allows the locking pin 424A to extend from the housing 422.

[0363] Figure 49B shows the reverse configuration of the interlocking mechanism in Figure 49A. In this embodiment, the humidifying component 450 is switched to the ON position by rotating the dial 428, and the locking pins 424A and 424B extend from the housing 422. The locking pin 424A presses against the locking pin 154B of the vaporizer 150, retracting it together with the housing 152 of the vaporizer 150, and is not visible in Figure 49B. In this state, the vaporizer 150 is in a locked state, at which point the dial 158 is disabled and it cannot rotate between the ON / OFF positions. The vaporizer 150 is in a locked state in the OFF position. The vaporizer 150 can only operate when the humidifying component 450 is switched to OFF by rotating the dial 428 to the OFF position, which allows the locking pin 154B to extend from the housing 422.

[0364] The locking elements of the vaporizer 150 and the humidifying component 450 include a pair of locking pins, and it is advantageous that the pins are located on each side of the housing of the vaporizer 150 and the humidifying component 450. This is useful because the mounting base 160 can accommodate one or more vaporizers 150 simultaneously, as well as the humidifying component 450. When the humidifying component 450 is positioned between two vaporizers 150, the locking pins 424A and 424B retract one of the locking pins 154A and 154B of the two vaporizers 150, so that both vaporizers 150 can be disabled while the humidifying component 450 is operating.

[0365] It should be understood that the humidifying component 450 and the vaporizer 150 may be operable using manual or electronic switching control means to achieve various operating states, such as the operation of the humidifying component 450 being enabled while the vaporizer 150 is enabled, or the operation of the humidifying component 450 being disabled while the vaporizer 150 is enabled, or the operation of the humidifying component 450 being enabled while the vaporizer 150 is disabled, or the operation of the humidifying component 450 being disabled while the vaporizer 150 is disabled.

[0366] Figures 50 and 51 illustrate another interlocking mechanism according to some embodiments of the present disclosure. In Figures 50 and 51, the vaporizer 150 and the humidifying component 450 each include a slot associated with their respective housings. For simplicity, Figures 50 and 51 exclude the respective housings and show only the dial 158 of the vaporizer 150 and the dial 428 of the humidifying component 450. The dials 158 and 428 can be rotated by the user to switch the vaporizer 150 and the humidifying component 450 to the on / off position. The dial 158 of the vaporizer 150 includes a slot 156, and the dial 428 of the humidifying component 450 includes a slot 426. A locking pin 460 is slidably movable between the slots 156 and 426, providing the interlocking mechanism.

[0367] As shown in Figure 51A, the locking pin 460 can be positioned within slot 426 of the humidifying component 450 by sliding the pin 460 from slot 156 to slot 426. The user can operate the locking pin 460 to slide it between slots 156 and 426. In this state, the humidifying component 450 is in the locked state because the dial 428 cannot rotate due to the presence of the locking pin 460. The vaporizer 150 is in the unlocked state because the dial 158 can rotate between the on and off positions. In Figure 51B, the locking pin 460 can be positioned within slot 156 of the vaporizer 150. In this state, the vaporizer 150 is in the locked state because the dial 158 cannot rotate due to the presence of the locking pin 460. In contrast, the humidifying component 450 is in the unlocked state, and the dial 428 can rotate to the on position as shown, thereby preventing the vaporizer 150 from operating.

[0368] In other embodiments, the interlocking mechanisms and locking elements shown in Figures 46 to 51 may incorporate different mechanisms for operation, as will be understood by those skilled in the art. For example, the locking element may include one or more elastic members or springs instead of a locking pin. The locking element may also include other forms of mechanical interlocking components, such as levers, bars, latches, and locks.

[0369] Figure 52 shows that the respiratory apparatus 100 may include a switching mechanism 1020 (not shown, see also Figures 38 and 53) configured to enable selective operation of the humidifying component 450 and at least one vaporizer 150. In some embodiments, the respiratory apparatus 100 may include two or more vaporizers 150, and the switching mechanism 1020 may selectively operate two or more vaporizers 150, as well as the humidifying component 450. Depending on the operating mode, the switching mechanism 1020 may direct the respiratory gas flow from the flow source 1030 (or from the gas delivery device 1040 as described above) to one of the vaporizers 150, the humidifying component 450, or directly to the patient 300 via the first inspiratory conduit 110 or the second inspiratory conduit 120 (see also Figure 38).

[0370] When the switching mechanism is activated to operate the humidifying component 450, the vaporizer 150 can be prevented from operating until the switching mechanism is stopped. Similarly, when the switching mechanism is activated to operate one of the vaporizers 150, the humidifying component 450 and / or the other vaporizers 150 can be prevented from operating until the switching mechanism is stopped.

[0371] The switching mechanism 1020 may include one or more of the following: a gas flow divider, a bistable switch, a pneumatic switch, a rotary switch, a lever, a knob, or other user-operable actuators. For example, the switching mechanism 1020 may include each of the vaporizer 150 and the humidification component 450, which are operable by a switch. The switch may be a mechanical switch or an electronic switch. The switch may be a rotary switch that is operable by the user through the rotation of a dial 158 on the vaporizer 150 and a dial 428 on the humidification component 450, as described in relation to Figures 46 to 51.

[0372] Figure 53 is a schematic diagram showing mechanical interlocking switches for a vaporizer 150 and a humidifying component 450 in a breathing apparatus 100 according to some embodiments of the present disclosure. In this embodiment, the flow source 1030 includes a gas delivery device 1040 to which source gas is supplied via a gas supply unit 1060. The source gas includes NO, O2, and air, which are then delivered through a gas mixing element 1042 and / or a flow meter 1090 to provide a desired composition and flow of breathing gas in the breathing apparatus 100. The flow of breathing gas can then pass through either the vaporizer 150 or the humidifying component 450, depending on whether switch 158 or 428 is operable. The switches for the vaporizer 150 and the humidifying component 450 can be coupled to prevent simultaneous operation of the humidifying component 450 and the vaporizer 150.

[0373] The switching mechanism 1020 can also be connected to the interlocking mechanism of the breathing apparatus 100, as described in relation to Figures 46 to 51. When the switching mechanism 1020 is activated to operate the humidifying component 450, the interlocking mechanism, via a mechanical interlocking switch, enables the operation of the humidifying component 450 and disables the operation of the vaporizer 150. When the switching mechanism 1020 is activated to operate the vaporizer 150, the interlocking mechanism, via a mechanical interlocking switch, enables the operation of the vaporizer 150 and disables the operation of the humidifying component 450.

[0374] Enabling and deactivating each of the humidifying components 450 and one or more vaporizers 150 can be done through various preferred means, and in some embodiments, electronic and / or mechanical actuators can be used. These actuators can be operatively coupled to switches and interlocking devices discussed in relation to Figures 42 to 51, which enable the selective operation of the humidifying components 450 and at least one vaporizer 150. For example, an electronic actuator controlled by an interlocking and switching function can change the power supply to the humidifying components 450, for example, to reduce the humidity to zero or a very low / minimal amount. In another example, an electronic actuator controlled by an interlocking and switching function can change the power supply to one or more vaporizers 150, for example, to reduce the release of an anesthetic to zero or a very low / minimal amount. In yet another example, a mechanical actuator controlled by an interlocking and switching function may include one or more valves, such as shut-off valves or diversion valves, which can reduce or block the flow to or from the components. Alternatively, or further, one or more solenoids or proportional valves may be provided downstream of or at the outlet (or at the inlet) of the humidifying component 450 and / or the vaporizer 150 to increase or decrease the flow rate, thereby enabling / deactivating these components. In other embodiments, when the vaporizer 150 is deactivated, the vaporizer may still form part of the flow path through which the gas is supplied to the patient; however, in other cases, the flow path may be closed using shut-off valves, solenoids, etc., as described above.

[0375] Figure 54 is a schematic diagram of three gas lines supplying a breathing apparatus 100, where the breathing apparatus 100 includes, in some embodiments, a plurality of flow meters 190. In Figure 54, the breathing apparatus 100 is supplied with a gas source including nitric oxide (NO), oxygen (O2), and / or air, such as via a flow source 1030 or a gas source 1060, as shown in Figure 38. The NO gas line includes a flow meter 190A and the air gas line includes a flow meter 190B to control the flow rate for mixing the gases to a desired composition for delivering a flow of breathing gases to the patient 300. In this embodiment, the O2 gas line includes flow meters 190C and 190D. The operation of flow meters 190C and 190D in the oxygen line is controlled by a switching mechanism 700.

[0376] When the respiratory device 100 is operating in a first mode, which may be an anesthetic ventilation mode (for example, providing ventilatory support with or without anesthetics), the switching mechanism 700 disables the operation of the O2 gas line having the flow meter 190D. In contrast, when the respiratory device 100 is operating in a second mode, which is ideally a high-flow respiratory support mode, the switching mechanism 700 disables the operation of the flow meter 190C and enables the operation of the flow meter 190D to deliver O2 and / or air to the patient 300 at a constant flow rate. The flow rate may be in the range of approximately 20 L / min to approximately 90 L / min. The flow rate may be in the range of approximately 40 L / min to approximately 70 L / min. The flow rate may be approximately 20 L / min, approximately 40 L / min, or approximately 70 L / min.

[0377] Figure 55 is another schematic diagram of the three gas lines supplying the respiratory apparatus 100, including three flowmeters 190A, 190B, and 190C, and two additional flowmeters 190E and 190F that can operate on the O2 gas line. When the respiratory apparatus 100 is operating in a second mode, which is ideally a high-flow respiratory support mode, the switching mechanism 700 disables the operation of flowmeter 190C and enables the operation of one of the flowmeters 190E and 190F. As shown in Figure 55, flowmeter 190E can deliver O2 to patient 300 at a flow rate of approximately 40 L / min, and flowmeter 190F can deliver O2 to patient 300 at a flow rate of approximately 70 L / min.

[0378] Figures 56 and 57 show the gas flow through the respiratory apparatus 100 in two operating modes controlled by the switching mechanism 1020, as described above. The switching mechanism 1020 may be operable in conjunction with the interlocking mechanism described in relation to Figures 41 to 46 to change the operating mode of the respiratory apparatus 100. The schematic diagram shown is a significant simplification from that of Figure 38, eliminating the vaporizer 150 in the inspiratory passage to the inspiratory conduit 110 and the components in the expiratory passage, including the rebreathing component 140.

[0379] Figure 56 shows a first operating mode of the respiratory device 100, in which the respiratory device 100 delivers respiratory gas to the inspiratory channel and receives the return of exhaled gas through the expiratory channel. The respiratory device 100 receives a fresh gas flow (FGF), which is a mixture of gases (e.g., one or more of NO, O2, and air) and / or one or more anesthetics, to replenish the gas flow via a rebreathing component 140. The gas flow is directed to the inspiratory conduit 110 to deliver a flow of respiratory gas to the patient's airway 310 via a first patient interface 120 (see also Figure 38). Exhaled gas from the patient 300 is received via an expiratory conduit 130, which forms a return channel 140, including a CO2 absorber 141 configured to process the returned exhaled gas from the patient 300 before recirculating it to the patient 300 in the first mode.

[0380] In Figure 57, the switching mechanism 1020 allows the respiratory device 100 to operate in a second operating mode, in which respiratory gas is delivered to the inspiratory channel at a predetermined flow rate without the return of exhaled gas from the patient 300. In the second mode, the respiratory device 100 receives a fresh gas flow (FGF), which is a mixture of O2 and / or air that does not contain any anesthetic (volatile or non-volatile). The gas flow is directed to the humidification component 450 to adjust the respiratory gas flow to a predetermined humidity and / or temperature before delivering it to the patient 300. The adjusted respiratory gas flow is then delivered to the patient 300 through the inspiratory conduit 210 via the second patient interface 220. Alternatively, in the second mode, the adjusted respiratory gas flow may be delivered directly from the humidification chamber 450 to the inspiratory conduit 210 without being returned to the respiratory device 100.

[0381] In the second operating mode, the CO2 absorber 141 may be further configured to adjust the respiratory gas in the inspiratory channel to a predetermined temperature and / or humidity before delivering it to the patient 300. In the second mode, the CO2 absorber 141 may be configured to adjust the respiratory gas to a predetermined temperature and / or humidity by either or both of the following: changing the amount of soda lime present in the CO2 absorber 141, and / or changing the amount of CO2 supplied to the soda lime present in the CO2 absorber 141.

[0382] For example, the reaction of the soda lime CO2 absorber 141 can be used to humidify high-flow gases. A switch (mechanical, electronic, or otherwise) can be employed in the respiratory apparatus to switch the CO2 absorber 141 between anesthesia ventilation mode and high-flow mode. Furthermore, the level of humidification can be changed by adjusting the geometric shape of the soda lime, increasing the humidity to a level suitable for high-flow respiratory support. Alternatively, the amount of CO2 supplied to the soda lime can be adjusted to increase the reaction with the soda lime, thereby increasing the humidity. Thus, as shown in Figure 57, the CO2 absorber 141 can be employed in the second mode (e.g., high-flow mode) of the respiratory apparatus 100 to provide additional humidification of the gas flow.

[0383] The two operating modes shown in Figures 56 and 57 can be controlled through detection of the connection of the humidifying component 450 to the mounting base 160. The breathing device 100 can be configured to detect the connection of the humidifying component 450 to the mounting base 160 and enable operation in the second mode. As shown in Figure 38, the breathing device 100 may include a sensor 1050 that communicates with the controller 1010. The sensor 1050 can be configured to detect the connection of the humidifying component 450 to the mounting base 160. The controller 1010 can be configured to process data from the sensor 1050 to identify the connection between the humidifying component 450 and the vaporizer 150. The controller 1010 can then communicate with the switching mechanism 1020 to switch operating modes, such as between the first mode and the second mode, as shown in Figures 56 and 57.

[0384] The sensor 1050 may include electronic and / or mechanical functions for detecting the connection. For example, the sensor 1050 may detect a change in electrical properties such as resistance, capacitance, or inductance in an electrical circuit when the humidifying component 450 is connected to the mounting base 160. Alternatively, the humidifying component 450 may include a machine-readable component associated with the housing 422, such as a radio frequency identification detection (RFID) device, which can be detected by the sensor 1050 when the humidifying component 450 is connected to the mounting base 160. In other embodiments, the breathing apparatus may eliminate the sensor 1050, as will be understood by those skilled in the art, and instead provide a mechanical arrangement configuration for detecting the connection, such as via a lock and key arrangement configuration.

[0385] advantage Embodiments of this disclosure provide a configuration that allows for easy switching between respiratory support via high-flow and respiratory support via anesthetic ventilation / anesthetic drug delivery through an anesthesia machine.

[0386] Some embodiments provide a single machine that provides both high-flow respiratory support and a rebreathing system for delivering anesthesia, which can easily transition between or switch between high-flow mode and anesthesia (rebreathing) mode. Preferably, this allows the clinician to easily switch between deploying high-flow respiratory support and the rebreathing system and then induce / ventilate the patient. This reduces the overall number of components, simplifies the working environment, and makes it easier for the anesthesiologist to perform the necessary tasks during procedures involving high-flow therapy in addition to administering anesthesia.

[0387] When switching from rebreathing mode to high-flow mode, for safety reasons, it is desirable that gas delivery from the anesthesia machine ceases during the transition. If O2 is delivered uncontrolled outside the rebreathing system (for example, when the mask is removed from the patient), it could cause a fire hazard, lead to wasted anesthetic gases, and unintentionally release anesthetic gases into the surgical environment, potentially contaminating the high-flow respiratory support gases and affecting the capabilities of individuals in the surgical environment. Embodiments of the present invention address one or more of these problems.

[0388] This specification also describes various embodiments, apparatus, connectors, assemblies, accessories, devices, etc., that achieve switching between respiratory support modes. Some of these provide the convenience of controlling mode selection when the user is not located at the “machine” by providing a switching actuator closer to the patient or clinician. Some embodiments provide automatic selection of the operating mode by monitoring the gas characteristics in the system, such as gas pressure and CO2 concentration in the exhaled gas. These features not only improve the convenience and operability of the system providing these respiratory support modes, but also have the ability to improve patient safety.

[0389] Humidification of the respiratory gas delivered during high-flow respiratory support can be important because, without it, the gas can have a drying effect on the airways that may lead to damage and other complications. Embodiments of this disclosure provide a respiratory device that enables humidification of the respiratory gas delivered during high-flow respiratory support. The respiratory device includes a mounting base that can be connected to a humidification component that adjusts the flow of respiratory gas to a predetermined temperature and / or humidity before delivery to the patient.

[0390] Embodiments of the respiratory apparatus can also advantageously provide an interlocking mechanism that prevents simultaneous operation of the humidifying component and one or more vaporizers. This can desirablely prevent the delivery of volatile anesthetics to the patient during high-flow respiratory support. Furthermore, the respiratory apparatus may also include a switching mechanism configured to enable selective operation of the humidifying component and at least one vaporizer. The switching mechanism, in conjunction with the interlocking mechanism, can provide easy and safe switching and transition between the respiratory apparatus's anesthetic ventilation mode and high-flow mode during medical procedures requiring both forms of respiratory support.

[0391] It should be understood that various modifications, additions, and / or substitutions can be made to the above-described components without departing from the scope of the invention as defined in the claims attached herein.

[0392] The present invention can also be described in great detail as any combination of two or more parts, elements, and features that are mentioned or described individually or collectively in the specification of this application. Whereever a complete or component having known equivalents is referred to in the above description, those completes are incorporated herein as if they were individually described.

[0393] Where any or all of the terms “comprise,” “comprises,” “comprised,” or “comprising” are used herein (including in the claims), they should be interpreted as identifying the existence of the feature, complete, step, or component described, but not as excluding the existence of one or more other features, completes, steps, or components, or any group thereof.

[0394] It should be understood that the following claims are provided merely as examples and are not intended to limit the scope of future claims. Features may be added to or omitted from the claims at a later date to further define or redefine the invention.

Claims

1. A multi-lumen assembly used in a respiratory support system, (a) A first inspiratory conduit having a first conduit inlet end that can be connected to a first gas outlet of the respiratory support system, (b) A second inspiratory conduit having a second conduit inlet end that can be connected to a second gas outlet of the respiratory support system, (c) An expiratory conduit having an expiratory conduit outlet end that can be connected to the expiratory gas inlet of the respiratory support system, Multiple conduits including, The outlet end of the first inspiratory conduit is connected to the first patient interface, The outflow end of the second inspiratory conduit is connected to the second patient interface. Patient-side connector and A multi-lumen assembly, including one.

2. The multi-lumen assembly according to claim 1, wherein at least some of the plurality of conduits are arranged coaxially.

3. The multi-lumen assembly according to claim 2, wherein the outer wall of the inner lumen defines the inner wall of the adjacent lumen.

4. A multi-lumen assembly according to any one of claims 1 to 3, comprising a mechanism for holding at least a portion of the plurality of conduits as a single unit.

5. The multi-lumen assembly according to claim 4, wherein the mechanism includes webbing spaced apart or continuously arranged along at least a portion of the plurality of conduits between at least pairs of the plurality of conduits.

6. The multi-lumen assembly according to claim 5, wherein the webbing is detachable to facilitate the separation of at least a portion of one or more of the plurality of conduits from the mass.

7. The multi-lumen assembly according to any one of claims 4 to 6, wherein the mechanism includes a sheath applied around the plurality of conduits.

8. The multi-lumen assembly according to any one of claims 1 to 7, wherein the second inspiratory conduit is connectable to the respiratory support system configured to deliver respiratory gas to a patient at a flow rate of 20 L / min to 90 L / min.

9. The multi-lumen assembly according to any one of claims 1 to 8, wherein the outflow end of the first inspiratory conduit and the inflow end of the expiratory conduit form a common gas flow path defined by a single gas exchange conduit connectable to a first patient interface.

10. The multi-lumen assembly according to any one of claims 1 to 9, wherein the patient end connector includes a switching element that is operable to switch the patient end connector between a first operating mode in which the patient end connector directs respiratory gas only to the first patient interface and a second operating mode in which the patient end connector directs respiratory gas only to the second patient interface.

11. The multi-lumen assembly according to claim 10, wherein the switching element is operatively connectable to a respiratory support system controller, and the respiratory support system controller controls the operation of the switching element.

12. The multi-lumen assembly according to claim 11, wherein the switching element is operable by a user to select an operating mode, and the respiratory support system controller controls the operation of the respiratory support system according to the operating mode selected by the user's operation of the switching element.

13. A multi-lumen assembly according to any one of claims 1 to 12, further comprising a gas sampling conduit for monitoring one or more properties of a gas.

14. The multi-lumen assembly according to claim 13, wherein the characteristics are used by a respiratory support system controller to determine whether the patient end connector is delivering respiratory gas to the patient through the first inspiratory conduit or the second inspiratory conduit, and the respiratory support system controller causes the respiratory support system to operate to automatically select the corresponding operating mode of the respiratory support system.

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