Improvement related to supply of gas flow
Patent Information
- Application Number
- JP2025117073
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2020-02-27
- Filing Date
- 2025-07-11
- Publication Date
- 2026-01-15
AI Technical Summary
High-flow breathing systems struggle to accurately determine whether they are providing a gas flow that meets a patient's inspiratory demand, leading to potential discomfort due to either insufficient or excessively high flow rates, and there is significant variability in inspiratory demand among patients.
A respiratory system with a flow generator and controller that adjusts gas flow rates based on oxygen fraction measurements at the patient's nose and mouth, using sensors to ensure the flow meets or exceeds inspiratory demand.
The system effectively adjusts gas flow to match patient demand, minimizing discomfort and ensuring adequate oxygenation by preventing ambient air entrainment, thus optimizing respiratory support.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to methods and apparatus for determining whether a breathing system is providing a sufficient flow of gas to meet a patient's inspiratory demand and / or for providing a gas flow that meets or at least approaches the patient's inspiratory demand. [Background technology]
[0002] High-flow breathing systems are used to provide a flow of gas at a high flow rate and oxygen concentration to a patient for respiratory support. For example, such a flow of gas may be provided to support the patient's breathing and / or to oxygenate the patient. Oxygenating a patient may be desirable in a variety of circumstances, such as when a patient's lung function is compromised and requires assistance, e.g., in intensive care when the patient suffers from a respiratory disease or disorder, or when a patient's oxygen reserves need to be increased prior to an anesthesia procedure (referred to as "pre-oxygenation"). The term "anesthesia procedure" can be used to encompass general anesthesia, procedural sedation, and regional / local anesthesia. There may be other applications for high-flow breathing systems, and the embodiments herein may be used in conjunction with any of the other applications of high-flow breathing systems.
[0003] To provide effective respiratory support, a high-flow breathing system must provide a flow rate high enough to meet inspiratory demand, preferably the patient's peak inspiratory demand. However, it should be noted that there is considerable inter- and intra-patient variability in peak inspiratory demand due to a variety of factors, including anatomy, physiology, anxiety, level of consciousness, and respiratory disease states. Such variability makes it more difficult to determine whether a high-flow breathing system is providing gas flow at a rate suitable for meeting the patient's inspiratory demand, as providing a "high" flow rate may not be high enough to meet the patient's inspiratory demand. Furthermore, it is important to minimize or avoid patient discomfort associated with excessively high flow rates.
[0004] It is therefore desirable to provide a method and apparatus for determining whether a breathing system is providing a flow of gas at a rate that meets the patient's inspiratory demand, such as peak inspiratory demand. Summary of the Invention [Problem to be solved by the invention]
[0005] It is an object of the present invention to provide a gas flow to a patient based on inspiratory demand and / or to obtain an indication of inspiratory demand. For example, embodiments determine whether the breathing system is providing a gas flow that meets the patient's inspiratory demand. This may be, for example, instantaneous inspiratory demand or peak inspiratory demand. [Means for solving the problem]
[0006] In one aspect, the present invention may be said to comprise a respiratory system comprising a flow generator that provides a gas flow to a patient, the gas flow comprising an oxygen fraction, and a controller configured to receive input from a sensor and adjust the flow rate of the gas flow based on the oxygen fraction at the patient's nose and / or mouth.
[0007] In another aspect, the present invention may be said to comprise a respiratory system comprising a flow generator for providing a gas flow to a patient, the gas flow comprising an oxygen fraction, and a controller configured to receive input related to the oxygen fraction at the patient's nose and / or mouth and to adjust the flow rate of the gas flow based on the oxygen fraction at the patient's nose and / or mouth.
[0008] Optionally, the flow generator provides a high flow rate gas stream.
[0009] Optionally, the control unit is further configured to obtain an indication of the oxygen fraction at the patient's nose or mouth.
[0010] Optionally, the gas flow rate is adjusted based on the relationship between the oxygen fraction at the patient's nose and / or mouth and the oxygen fraction of the gas flow.
[0011] Optionally, the sensor is an O2 fraction sensor coupled to the controller.
[0012] Optionally, the system comprises: a humidifier for humidifying the gas stream; Intake tube, Conduit (e.g., dry line or heated breathing tube), patient interface, pressure relief valve, filter The device further comprises one or more of:
[0013] Optionally, the controller is further configured to determine whether the gas flow meets or does not meet inspiratory demand based on the oxygen fraction at the patient's mouth and / or nose.
[0014] Optionally, the controller is further configured to determine whether the gas flow meets or does not meet inspiratory demand based on a relationship between the oxygen fraction at the patient's mouth and / or nose and the oxygen fraction of the gas flow.
[0015] Optionally, the system further comprises a user interface and controls configured to inform the user whether the patient is meeting or not meeting inspiratory demand.
[0016] Optionally, the oxygen fraction is at least greater than about 21%, optionally 100%, or between about 30% and about 50%.
[0017] Optionally, the flow rate is greater than about 20 liters per minute, optionally between about 20 and 90 liters per minute, optionally between about 40 and 70 liters per minute.
[0018] Optionally, the system comprises or is used with a non-sealing patient interface, preferably a non-sealing nasal cannula.
[0019] Optionally, whether the gas flow meets the patient's inspiratory demand comprises comparing the oxygen fraction at the mouth and / or nose with the oxygen fraction of the gas flow.
[0020] Optionally, if the determined oxygen fraction at the patient's nose and / or mouth is less than the oxygen fraction of the gas flow, it is determined that the gas flow is not meeting the patient's inspiratory demand.
[0021] Optionally, if the oxygen fraction at the patient's nose and / or mouth is equal to or nearly equal to ("matches") the oxygen fraction of the gas flow, it is determined that the gas flow meets or is close to meeting the patient's inspiratory demand.
[0022] Optionally, if the intake demand is not being met, the gas flow rate is increased by the controller.
[0023] Optionally, the gas stream flow rate is increased to a rate of about 20 liters per minute or greater, optionally from about 20 to about 90 liters per minute, or from about 40 to about 70 liters per minute.
[0024] Optionally, the gas flow rate is maintained or reduced by the controller if intake demand is exceeded.
[0025] Optionally, the gas flow rate is maintained until it is determined that the patient's inspiratory demand is not being met.
[0026] Optionally, determining that the patient's inspiratory demand is not being met includes the controller monitoring a set number of previous patient breathing cycles, determining the number of previous patient breathing cycles that had entrainment of ambient air, and comparing the number of previous patient breathing cycles that had entrainment of ambient air to a set threshold.
[0027] Optionally, if the number of previous patient breathing cycles with ambient air entrainment exceeds a set threshold, the patient's inspiratory demand is not met.
[0028] Optionally, the system is operated to provide a gas flow to the patient prior to an anesthesia procedure, the oxygen fraction of the gas flow being 100%.
[0029] Optionally, the system operates to provide a gas flow to the patient during a sedation procedure, the gas flow having an oxygen fraction of about 21% or greater.
[0030] Optionally, during sedation procedures, the oxygen fraction of the gas stream is from about 21% to about 100%.
[0031] In another aspect, the present invention may be said to comprise a method of providing a flow of gas to a patient from a respiratory system, comprising the steps of providing a gas flow to the patient having an oxygen fraction and adjusting the gas flow rate based on the oxygen fraction at the patient's nose and / or mouth.
[0032] In another aspect, the present invention may be said to comprise a method of providing a flow of gas to a patient from a respiratory system, comprising the steps of providing a flow of gas to the patient having an oxygen fraction and determining from the oxygen fraction at the patient's mouth and / or nose whether the gas flow meets the patient's inspiratory demand.
[0033] Optionally, the gas flow is at a high flow rate.
[0034] Optionally, the method further comprises obtaining an indication of the oxygen fraction at the patient's nose or mouth.
[0035] Optionally, the gas flow rate is adjusted based on the relationship between the oxygen fraction at the patient's nose and / or mouth and the oxygen fraction of the gas flow.
[0036] Optionally, determining whether the gas flow satisfies the patient's inspiratory demand is based on a relationship between the oxygen fraction at the patient's mouth and / or nose and the oxygen fraction of the gas flow.
[0037] Optionally, if the oxygen fraction at the patient's nose and / or mouth is less than the oxygen fraction of the gas stream, it is determined that the gas stream is not meeting the patient's inspiratory demand.
[0038] Optionally, if the oxygen fraction at the patient's nose and / or mouth is equal to or nearly equal to ("matches") the oxygen fraction of the gas flow, it is determined that the gas flow meets the patient's inspiratory demand.
[0039] Optionally, if intake demand is not being met, the gas flow rate is increased.
[0040] Optionally, the gas stream flow rate is increased to a rate of about 20 liters per minute or greater, optionally from about 20 to about 90 liters per minute, or from about 40 to about 70 liters per minute.
[0041] Optionally, the gas flow rate is maintained or reduced if inspiration demand is exceeded.
[0042] Optionally, the gas flow rate is maintained until it is determined that the patient's inspiratory demand is not being met.
[0043] Optionally, determining that the patient's inspiratory demand is not being met includes the steps of monitoring a set number of previous patient respiratory cycles, determining the number of previous patient respiratory cycles that had entrainment of ambient air, and comparing the number of previous patient respiratory cycles that had entrainment of ambient air to a set threshold.
[0044] Optionally, if the number of previous patient breathing cycles with ambient air entrainment exceeds a set threshold, the patient's inspiratory demand is not met.
[0045] Optionally, the gas stream is provided to the patient prior to anesthesia treatment, and the oxygen fraction of the gas stream is 100%.
[0046] Optionally, the gas stream is provided to the patient during a sedation procedure, and the oxygen fraction of the gas stream is about 21% or greater.
[0047] Optionally, during sedation procedures, the oxygen fraction of the gas stream is from about 21% to about 100%.
[0048] Optionally, the controller and flow generator adjust the gas stream rate based on the oxygen fraction at the patient's nose and / or mouth and the oxygen fraction of the gas stream to meet or approach inspiratory demand.
[0049] In another aspect, the present invention may be said to comprise a method of adjusting the flow rate of a gas flow provided to a patient receiving a high flow rate gas flow, the method comprising: a) providing a high flow rate gas flow to the patient, the gas flow comprising a target gas; b) obtaining target gas measurements from the patient's nose and / or mouth; and c) adjusting the flow rate of the gas flow based on the target gas measurements.
[0050] In another aspect, the present invention may be said to comprise a system for adjusting the flow rate of a gas stream provided to a patient receiving a high flow rate gas stream, the system comprising: a flow source configured to provide the high flow rate gas stream to the patient, the gas stream comprising a target gas; and a controller configured to receive input comprising a target gas measurement from the patient's nose and / or mouth, the controller configured to adjust the flow rate of the gas stream based on the target gas measurement.
[0051] The method and / or system may have the following features.
[0052] Optionally, the method further comprises repeating steps a) to c) until a desired target gas measurement is obtained, or the controller is configured to repeat steps a) to c) until a desired target gas measurement is obtained.
[0053] Optionally, if the target gas measurement is less than the desired target gas measurement, the flow rate of the gas stream is increased until the desired target gas measurement is obtained.
[0054] Optionally, if the target gas measurement is greater than the desired target gas measurement, the flow rate of the gas stream is decreased until the desired target gas measurement is obtained.
[0055] Optionally, the target gas comprises O2.
[0056] Optionally, a) comprises providing the patient with a high flow rate of 100% O2 / 1 O2 fraction.
[0057] Optionally, the target gas measurements comprise measured O2 fraction.
[0058] Optionally, the method further comprises the step of optimizing, or the controller is configured to optimize the flow rate of the gas stream to meet peak inspiratory demand of the patient.
[0059] Optionally, the desired target gas measurement comprises a measured O2 fraction of about or near 100% / O2 fraction of about or near 1.
[0060] Optionally, if the measured O2 fraction is substantially less than 100% / 1 fraction, the flow rate of the gas stream is increased until a measured O2 fraction of about or near 100% / about 1 or near 1 is obtained.
[0061] Optionally, if the measured O2 fraction is a 100% / 1 fraction, the flow rate of the gas stream is reduced until a measured O2 fraction of about or near 100% / a measured O2 fraction of about or near 1 is obtained.
[0062] Optionally, the flow rate is greater than or equal to about 20 L per minute.
[0063] Optionally, the flow rate is from about 20 L to about 90 L per minute.
[0064] Optionally, the gas stream is humidified.
[0065] Optionally, the patient is breathing spontaneously.
[0066] Optionally, the patient is pre-oxygenated prior to the anesthesia procedure.
[0067] In another aspect, the present invention may be said to comprise a method for determining whether a patient's peak inspiratory demand is met, the method comprising: a) providing a high flow rate gas flow to a patient, the gas flow comprising a target gas at a gas fraction (such as 100% / 1); and b) measuring the target gas fraction at or near the patient's nose and / or mouth; if the measured target gas fraction is substantially less than 100% / 1, the patient's peak inspiratory demand is not met; if the measured target gas fraction is about 100% or near 100% / about 1 or near 1 (i.e., a fraction that is approximately 1 or up to 1, but not exceeding 1), the patient's peak inspiratory demand is substantially met; and if the measured target gas fraction is 100% / 1, the patient's peak inspiratory demand is met or exceeded.
[0068] In another aspect, the invention may be said to comprise a system for determining whether a patient's peak inspiratory demand is being met, the system comprising: a flow source configured to provide a gas flow to a patient at a high rate, the gas flow comprising a target gas of a target gas fraction of 100% / 1; and a controller configured to receive an input comprising a target gas fraction measurement at or near the patient's nose and / or mouth, the controller configured to provide an output related to the patient's peak inspiratory demand, wherein if the measured target gas fraction is substantially less than the 100% / 1 fraction, the patient's peak inspiratory demand is not being met; If the measured target gas fraction is at or near 100% / a fraction of at or near 1 (i.e., a fraction of approximately 1 or up to 1, but not exceeding 1), the patient's peak inspiratory demand is substantially met; When the measured target gas fraction is a fraction of 100% / 1, the patient's peak inspiratory demand is met or exceeded.
[0069] The method and / or system may have the following features.
[0070] Optionally, the method includes the step of providing an output as to whether the patient's respiratory demand is met, or the controller is configured to provide an output as to whether the patient's respiratory demand is met.
[0071] Optionally, the output is provided on a display.
[0072] Optionally, the method includes adjusting the flow rate of the gas stream to substantially meet the patient's peak inspiratory demand, or the controller is configured to adjust the flow rate of the gas stream to substantially meet the patient's peak inspiratory demand.
[0073] Optionally, the flow rate is greater than or equal to about 20 L per minute.
[0074] Optionally, the flow rate is from about 20 L to about 90 L per minute.
[0075] Optionally, the gas stream is humidified.
[0076] Optionally, the patient is breathing spontaneously.
[0077] Optionally, the patient is pre-oxygenated prior to the anesthesia procedure.
[0078] As used herein, "high flow" refers to any gas flow having a flow rate higher than normal / usual, e.g., higher than the normal inspiratory flow rate of a healthy patient, but is not limited thereto. Alternatively or additionally, it may be higher than other threshold flow rates relevant to the context; for example, providing a gas flow to a patient at a rate that meets inspiratory demand may be considered a "high flow" because it is higher than the nominal flow rate that may otherwise be provided. Thus, "high flow" is context-dependent, and what constitutes a "high flow" depends on many factors, such as the patient's health status, the type of treatment / therapy / assistance provided, and the nature of the patient (large, small, adult, child). Those skilled in the art will understand what a "high flow" is from the context; it is a magnitude of flow rate that exceeds that which may otherwise be provided.
[0079] However, some indications of high flow rates can be, but are not limited to: · Delivery of gas to the patient at flow rates of about 5 or 10 liters per minute (5 or 10 LPM, i.e., L / min) or greater in some configurations. In some configurations, the flow rate is greater than or equal to about 20 liters per minute, optionally between about 20 and 90 liters per minute, optionally between about 40 and 70 liters per minute. Delivery of gas to the patient at a flow rate of about 5 or 10 LPM to about 150 LPM, or about 15 LPM to about 95 LPM, or about 20 LPM to about 90 LPM, or about 25 LPM to about 85 LPM, or about 30 LPM to about 80 LPM, or about 35 LPM to about 75 LPM, or about 40 LPM to about 70 LPM, or about 45 LPM to about 65 LPM, or about 50 LPM to about 60 LPM in some configurations. For example, according to various embodiments and configurations described herein, the flow rate of gas supplied or provided to the interface through the system or from a flow source may include, but is not limited to, flows of at least about 5, 10, 20, 30, 40, 50, 60, 70, 80, 90, 100, 110, 120, 130, 140, 150 LPM or more, and an effective range may be selected to be any of these values (e.g., about 20 LPM to about 90 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).
[0080] At "high flow rates," the delivered gas is selected, for example, depending on the therapeutic application. The delivered gas may include a percentage of oxygen. In some configurations, the percentage of oxygen in the delivered gas may be about 15% to about 100%, 20% to about 100%, or about 30% to about 100%, or about 40% to about 100%, or about 50% to about 100%, or about 60% to about 100%, or about 70% to about 100%, or about 80% to about 100%, or about 90% to about 100%, or about 100%, or 100%.
[0081] In some embodiments, the delivered gas may include a percentage of carbon dioxide. In some configurations, the percentage of carbon dioxide in the delivered gas may be greater than 0%, between about 0.3% and about 100%, between about 1% and about 100%, between about 5% and about 100%, between about 10% and about 100%, between about 20% and about 100%, between about 30% and about 100%, between about 40% and about 100%, between about 50% and about 100%, between about 60% and about 100%, between about 70% and about 100%, between about 80% and about 100%, between about 90% and about 100%, or about 100%.
[0082] High flow rates have been shown to be effective in meeting or exceeding a patient's normal actual inspiratory flow to increase the patient's oxygenation and / or reduce the work of breathing. Furthermore, high-flow therapy can create a washout effect within the nasopharynx, such that the anatomical dead space in the upper airway is washed away by the high inlet gas flow. This creates a pool of fresh gas available for every breath while minimizing rebreathing of carbon dioxide, nitrogen, etc.
[0083] By way of example, a high flow breathing system 10 is described with reference to Figure 3. High flow may be used as a means to enhance gas exchange and / or respiratory support by delivery of oxygen and / or other gases and by removal of CO2 from the patient's airways. High flow may be particularly useful before, during, or after a medical and / or anesthesia procedure.
[0084] When used prior to a medical procedure, the high flow gas stream can pre-oxygenate the patient during the patient's apneic period during the medical and / or anesthesia procedure, providing an oxygen buffer with high blood oxygen saturation and lung oxygen content.
[0085] A continuous supply of oxygen is essential to maintain healthy respiratory function during medical procedures (such as during anesthesia procedures) when respiratory function may be impaired (e.g., reduced or stopped). If this supply is impaired, hypoxia and / or hypercapnia may occur. To detect when this occurs, patients are monitored during anesthesia procedures, such as general anesthesia, while the patient is unconscious. If oxygen delivery and / or CO2 removal is impaired, the clinician will stop the medical procedure and promote oxygen delivery and / or CO2 removal. This can be achieved, for example, by manually ventilating the patient with an anesthesia bag and mask or by using a high-flow breathing system to provide a high-flow gas flow to the patient's airway.
[0086] An additional benefit of high flow gas streams is that they increase the patient's airway pressure, thereby providing pressure support that opens the airways, trachea, lungs / alveoli, and bronchioles. Opening these structures improves oxygenation and assists, to some extent, in the removal of CO2.
[0087] The increased pressure can also prevent structures such as the larynx from obscuring the view of the vocal cords during intubation. High-flow gas streams, when humidified, can also prevent airway drying, reducing mucociliary damage and the risk of laryngospasm and the risks associated with airway dryness, such as nosebleeds, aspiration (as a result of nosebleeds), and airway obstruction, swelling, and bleeding. Another advantage of high-flow gas streams is that the flow can clear smoke generated in the airway during surgery. For example, smoke can be generated by lasers and / or cauterizing devices.
[0088] As used herein, "oxygen concentration" may be referred to in terms of "oxygen fraction." For example, the oxygen concentration of ambient air is 21% oxygen fraction (which can be expressed as 0.21). In another example, the oxygen concentration of pure air is 100% oxygen fraction (which can be expressed as 1). The terms "oxygen fraction" and "oxygen concentration" can be used interchangeably.
[0089] As used herein, "inspiratory demand" refers to the flow rate of gas that a patient inhales.
[0090] As used herein, "peak inspiratory demand (of a patient)" refers to the peak flow rate of gas that a patient inhales. Peak inspiratory demand is met when a flow rate of gas is provided to the patient at a rate that is approximately equal to or greater than the peak inspiratory demand.
[0091] As used herein, "instantaneous inspiratory demand (of a patient)" refers to the flow rate of gas that the patient inhales at that instant. The instantaneous inspiratory demand is met when a flow rate of gas is provided to the patient at a rate that is approximately equal to or greater than the instantaneous inspiratory demand.
[0092] As used herein, the term "meeting" in the context of "meeting inspiratory demand" or "meeting a flow rate" or similar means equal to, or close to, or otherwise within a suitable tolerance. The tolerance is defined by one that achieves the benefits of the described embodiments and could be, for example, + / -10%, + / -9%, + / -8%, + / -7%, + / -6%, + / -5%, + / -4%, + / -3%, + / -2%, + / -1%, 0%, or some fraction therebetween (but these are merely examples and not limitations). "Meeting" does not mean that it must be an exact match. Furthermore, "meeting" in this context can also mean "at least meeting," which can mean actually exceeding the intake demand (i.e., required flow rate). As will be appreciated, in many cases, it is not known whether the intake demand (i.e., required flow rate) is met or exceeded, but that does not detract from the benefit. Knowing that it is either met or exceeded is sufficient.
[0093] As used herein, the term "equal" or similar terms in the phrase "the measured concentration of oxygen in the patient is equal to the concentration of oxygen delivered" or similar contexts means at, or close to, or otherwise within a suitable tolerance. The tolerance is defined by what achieves the benefits of the described embodiments and could be, for example, + / -10%, + / -9%, + / -8%, + / -7%, + / -6%, + / -5%, + / -4%, + / -3%, + / -2%, + / -1%, 0%, or some fraction therebetween (but these are merely examples and not limitation). "Equal" does not mean that it must be an exact match.
[0094] Reference to a range of numerical values disclosed herein (e.g., 1 to 10) also incorporates reference to every rational number within that range (e.g., 1, 1.1, 2, 3, 3.9, 4, 5, 6, 6.5, 7, 8, 9, and 10), and also to 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 thus every subrange of every range explicitly disclosed herein is intended to be hereby expressly disclosed. These are merely specifically intended examples, and all possible combinations of numerical values between the minimum and maximum values recited are to be considered to be expressly disclosed in this application as well.
[0095] As used herein, the term "comprising" means "consisting at least in part of." In interpreting each phrase in this specification containing the term "comprising," other features or things preceded by that term may also be present. Related terms, such as "comprise" and "comprises," are to be interpreted similarly. Unless expressly required otherwise, throughout the specification and claims, words such as "comprise," "comprising," and the like, should be interpreted in an inclusive sense, i.e., "including, but not limited to," rather than an exclusive or exhaustive sense.
[0096] Where patent specifications, other external documents, or other sources of information are referenced herein, the reference is generally intended to provide a context for discussing the features of the present disclosure. Unless specifically stated otherwise, the reference to such external documents is not to be construed as an admission that such documents, or such sources of information, are prior art or form part of the general knowledge in the art in any jurisdiction.
[0097] The present invention may also be broadly said to include the components, elements, and features referred to or shown individually or collectively in the specification of this application in any or all combinations of two or more of said components, elements, or features. Where in the foregoing description reference has been made to components having integers or their known equivalents, these integers are incorporated herein as if set forth individually.
[0098] Numerous modifications of the structure and widely different embodiments and applications of the present invention will occur to those skilled in the art to which this invention pertains without departing from the scope of the invention, as defined by the appended claims. The disclosures and descriptions herein are purely illustrative and are not intended to be limiting in any sense. Where specific integers that have known equivalents in the art to which this invention pertains are referred to herein, such known equivalents are deemed to be incorporated herein as if individually set forth. The present invention consists in the foregoing and also contemplates the structures set forth below, which are merely exemplary.
[0099] The embodiments are described with reference to the following figures: [Brief explanation of the drawings]
[0100] [Figure 1] Shows a representation of the patient's breathing. [Figure 2A] Gas flow to the patient and entrained air are shown, with the gas flow not meeting peak inspiratory demand. [Figure 2B] It shows gas flow to the patient without air entrainment and gas flow meets peak inspiratory demand. [Figure 3] 1 shows a respiratory system for determining peak inspiratory demand. [Figure 4] 1 illustrates operation of the respiratory system to determine peak inspiratory demand. [Figure 5] A flow that can satisfy the inspiratory demand of the patient for part of the breath but not the patient's peak inspiratory demand, and a flow that satisfies the patient's inspiratory demand and peak inspiratory demand are shown. [Figure 6] This shows the composition of the flow that the patient inhales. [Figure 7] The measured oxygen fraction is shown. DETAILED DESCRIPTION OF THE INVENTION
[0101] overview There are many clinical situations in which it is important to deliver a known fraction of inspired oxygen (i.e., "oxygenation"). (References to "fraction" herein can be used interchangeably with the terms "concentration" and "ratio.") For example, during the oxygenation phase before general anesthesia (commonly referred to as pre-oxygenation), it is desirable to administer a fraction of inspired oxygen to ensure that the lungs contain as much oxygen as possible. A further example is the desirability of administering a known fraction of inspired oxygen to a patient undergoing treatment for respiratory distress. In another more common example, respiratory support may be provided to a patient. For example, respiratory support may be provided to a patient using a high flow rate ("high flow") gas flow. In a clinical situation, the patient may or may not be spontaneously breathing, depending on the situation.
[0102] When it is desirable to deliver a flow of gas to oxygenate a patient (delivering oxygen that meets the patient's oxygen needs), the flow of gas can be provided at a desired oxygen concentration (typically exceeding that of ambient air). For example, this may be in situations where ambient air cannot meet the patient's oxygenation needs, because ambient air may not have a high enough oxygen concentration to effectively oxygenate the patient. This can be achieved by operating the respiratory system to deliver a flow of gas having an oxygen concentration higher than that found in ambient air, such that the flow of gas meets the patient's oxygenation needs.
[0103] For a gas flow to effectively oxygenate a patient, the gas flow must have the oxygen concentration required by the patient and a flow rate that satisfies the patient's inspiratory demand. For peak inspiratory demand, the flow rate required to meet demand is the peak flow rate of gas that the patient inhales during the respiratory cycle. For instantaneous demand, the flow rate required at a particular time to meet demand is the flow rate that the patient inhales at that particular time.
[0104] If the flow rate of gas being delivered to the patient does not meet the inspiratory demand, ambient air entrainment may occur. Ambient air entrainment may occur through the patient's nose and / or mouth. Ambient air entrainment may occur through the patient's mouth if the patient's mouth is open. When this occurs, the concentration of the component gas is altered (usually diluted) due to the different concentration of that component gas in the ambient air. This means that the intended concentration of the component gas is not actually provided.
[0105] This is further explained with reference to FIG. 1, which shows, by way of example, a line graph illustrating a patient's respiratory flow 1 (and therefore inspiratory demand 7) and how it alters the path of the patient's breathing cycle. Inspiratory demand varies over time (instantaneous inspiratory demand 7) and reaches a peak inspiratory demand 5. When delivering a desired oxygen concentration to the patient, it is desirable for the flow of gas 6 from the breathing system to be the same as the inspiratory demand 7 flow rate (whether peak 6'' or instantaneous 6'); otherwise, as shown in FIG. 2A, the patient will entrain ambient air 8 during inspiration (note that while only the nose is shown in FIG. 2A for simplicity, entrainment can occur through the nose and / or mouth).
[0106] When the oxygen concentration of ambient air is less than the oxygen concentration in the gas flow provided from the breathing system, the entrainment of ambient air is undesirable because it dilutes and reduces the oxygen concentration (and therefore the level of oxygenation) received by the patient. Conversely, when the flow rate of gas provided from the breathing system meets the inspiratory demand flow rate, the patient inhales only the gas flow provided by the breathing system (i.e., does not entrain ambient air) and therefore receives the desired oxygen concentration as provided by the gas flow. This occurs when the breathing system delivers a gas flow at a rate that is equal to or greater than the patient's inspiratory demand.
[0107] Therefore, to avoid or reduce entrainment, the flow rate from the nasal high flow desirably meets or exceeds the patient's inspiratory demand (i.e., the flow rate being inspired). If the patient's inspiratory demand is met by the flow rate of the gas flow being provided, the patient may not entrain ambient air.
[0108] This may be achieved by meeting peak inspiratory demand, where gas flow 6 may be provided to the patient at a constant high flow rate (see horizontal dotted line 6'' in FIG. 1) above peak inspiratory demand 5, meaning that gas flow 6 at least meets, and typically exceeds, the instantaneous inspiratory demand at any particular portion of the respiratory cycle. That is, if the gas flow rate always meets the peak inspiratory demand, the gas flow rate will meet the demand (instantaneous inspiratory demand, assuming gas flow 6 is constant) at any point in the cycle, since the instantaneous inspiratory demand never exceeds the peak inspiratory demand.
[0109] Alternatively, this may be achieved by meeting or exceeding instantaneous inspiratory demand 7 at all times (see curved dotted line 6'). References herein to "inspiration demand" can be used to encompass peak inspiratory demand or instantaneous inspiratory demand. Reference numeral 6 can be used to refer generally to the flow of gas provided. Reference numeral 6" refers to a gas flow that meets peak inspiratory demand. Reference numeral 6' can refer to a varying gas flow that meets instantaneous inspiratory demand (of which gas flow 6" meeting peak inspiratory demand is a special case).
[0110] There is considerable inter- and intra-patient variability in inspiratory demand due to a variety of factors, including anatomy, physiology, anxiety, level of consciousness, and respiratory disease states. Therefore, it can be difficult to determine and provide a gas flow at a rate sufficient to meet the inspiratory demand. One solution would be to provide a very high flow rate that is sure to meet the patient's inspiratory demand (peak or instantaneous). However, having a very high rate of gas flow that exceeds the inspiratory demand can cause discomfort to the patient. Therefore, it is desirable to deliver a suitable flow rate or range of flow rates to the patient to meet the inspiratory demand (whether peak or instantaneous) without providing an unnecessarily high flow rate that excessively exceeds the inspiratory demand.
[0111] Generally, embodiments described herein accomplish this by placing a suitable sensor, e.g., a gas sampling device such as a cannula with a gas sampler attachment, in the patient's mouth and / or nose (see, e.g., U.S. Patent Application Nos. 62 / 408,480 and 62 / 492,783, which are incorporated herein by reference in their entireties). If the sampler measures a value less than the gas concentration being delivered (or a different value, e.g., a higher value, but less since delivered gas concentrations are typically higher than ambient), then inspiration demand is not being met and the flow rate of gas provided to the patient needs to be increased. If the patient's inspiration demand is being met, the gas sampler will measure a concentration of oxygen equal to (this also means being at, close to, or within a tolerance of) the concentration of oxygen being delivered; see definition above. In this case, the flow rate of gas provided to the patient can be maintained. Thus, based on the determined oxygen fraction (by the controller and / or sensor), it can be determined whether the gas flow meets or does not meet the inspiratory demand. Flow rate adjustments can then be made depending on whether the gas flow meets the inspiratory demand (maintaining or decreasing the flow rate) or does not meet the inspiratory demand (increasing the gas flow rate). To do this, the controller of the respiratory system receives input related to the gas concentration (e.g., the concentration of oxygen) at the patient's nose and / or mouth. This can be input received directly from a sensor or from a user who inputs a measurement that is or is related to a gas concentration. In some cases, the user confirms the measurement from a sensor, but the information may also be confirmed in other ways. In some embodiments, the controller may receive information, whether from a sensor, a user, or other source, about whether the gas concentration at the patient's nose and / or mouth meets the gas concentration to be delivered, and may use that information to control the respiratory system flow rate. That is, the controller does not determine whether the gas concentration at the nose and / or mouth meets the gas concentration to be delivered, but simply receives input related to that determination.References herein to sensing the gas fraction in the patient's mouth and / or nose may be read to mean either sensed and input directly to the ventilator / controller from a sensor, or sensed but then received indirectly in another manner, such as input by a user reading the sensor output. Receiving input from a sensor may be considered to encompass both options, i.e., both direct and indirect input from the sensor.
[0112] Referring to FIG. 7, when the measured oxygen concentration equals the delivered oxygen concentration, this may actually be due to the fact that the flow rate exceeds the patient's inspiratory demand. In this case, it may be desirable to reduce the delivered flow rate so as not to provide more therapy than necessary, which may result in discomfort or other undesirable consequences (e.g., O2 waste). In this case, the flow rate provided to the patient can be titrated to approach (rather than exceed) the actual inspiratory demand as follows: The flow rate can be reduced, and then another measurement can be taken. If the measured oxygen concentration still equals the delivered concentration, the inspiratory demand is still at least met (or possibly exceeded), so the flow rate is reduced again. This can continue until the measured oxygen concentration is less than the delivered oxygen concentration, which would indicate the patient is entraining air, and thus would be just below the point where the inspiratory demand is met. Optionally, at this point, the flow rate can be increased again to eventually meet or approach the inspiratory demand. Thus, the flow rate is reduced until the oxygen concentration level reaches or approaches an optimal value. Thus, the flow rate provided to the patient can be titrated based on whether the patient's inspiratory demand is met, which may be determined based on the concentration of oxygen inspired by the patient (also known as the fraction of inspired oxygen). More complex control techniques may also be utilized.
[0113] FIG. 3 shows a breathing system that can provide a flow of gas (with a known oxygen fraction) to provide respiratory assistance (preferably oxygenation) to a patient, determine whether the flow of gas has a flow rate that meets the patient's inspiratory demand (i.e., the flow rate of gas inspired by the patient), and optionally adjust the flow rate of the flow of gas 6'' to meet the inspiratory demand flow rate ("inspiration demand") or any other flow rate as needed. In one option, the breathing system determines whether the flow of gas has a flow rate 6 that meets the patient's peak inspiratory demand 5 (i.e., the flow rate of gas inspired by the patient at peak inspiration), and optionally adjust the flow rate of the flow of gas 6'' to meet the peak inspiratory demand flow rate ("peak inspiratory demand") or any other flow rate as needed. This is achieved by measuring O2 concentration at the nose and / or mouth at the time of peak inspiratory demand or throughout the cycle. Alternatively, the breathing system can be configured to determine, during any portion of the inspiratory cycle, whether the flow rate 6 being provided meets the instantaneous inspiratory demand 7 (i.e., the flow rate of gas inspired by the patient at that instant). This is achieved by measuring the O2 concentration at the nose and / or mouth continuously or periodically throughout the respiratory cycle. Optionally, the respiratory system adjusts the gas flow rate 6' to meet the instantaneous inspiratory demand ("instantaneous inspiratory demand") or any other rate as needed. Alternatively, or additionally, more generally, the respiratory system may adjust the gas flow rate 6 based on a determined oxygen fraction or other parameter at the patient's nose and / or mouth. For example, the controller may be configured to receive input related to the oxygen fraction at the patient's nose and / or mouth and adjust the gas flow rate based on the oxygen fraction at the patient's mouth and / or nose. In any variation, a measurement of the O2 concentration may be provided as an input to the respiratory system directly from a sensor or indirectly, for example, by a user reading the sensor.
[0114] Preferably, an option is used where the breathing system is configured to determine if the flow rate being provided meets the peak inspiratory demand 5. If the peak inspiratory demand is determined and met, then any inspiratory demand 7 in any other part of the breathing cycle will be met (assuming the flow rate 6'' is kept constant) (see horizontal dotted line in Figure 1).
[0115] Of course, in an alternative embodiment, the instantaneous inspiratory demand 7 is determined periodically or continuously, and the system flow rate 6' is varied (titrated) periodically or continuously to meet the instantaneous inspiratory demand 7 (see curved dotted line 6'' in Figure 1).
[0116] In the embodiments described below, such a determination is achieved by comparing the oxygen fraction (or some proxy measure of its concentration, or determined in some other way) of the gas inspired by the patient with the oxygen fraction or concentration of the flow of gas provided by the respiratory system 10. Optionally, the respiratory system can be configured to titrate the flow rate 6' of gas (see curved dotted line in FIG. 1) so as to meet the instantaneous inspiratory demands of the patient while avoiding higher than necessary flows as long as they are not needed or may be harmful to the patient.
[0117] 2B, when the flow rate 6 provided by the breathing system is equal to or greater than ("meets") the instantaneous inspiratory demand 7, the patient's inspiratory demand 7 is met ("inspiration demand" see 6' in FIG. 1). For example, if the oxygen fraction at the patient's nose and / or mouth is equal to or nearly equal to ("matches") the oxygen fraction of the gas flow, the gas flow is determined to meet the patient's inspiratory demand. When the flow rate provided by the breathing system is equal to or greater than the peak inspiratory demand 5, the peak inspiratory demand will be met ("peak inspiratory demand" see 6" in FIG. 1). This embodiment (according to FIG. 3) can determine whether the gas flow meets the inspiratory demand (either peak or instantaneous, depending on the configuration), and if not (as in FIG. 2A), optionally modify operation to provide the flow of gas 6 to the patient at a flow rate 6' high enough to meet the patient's inspiratory demand 7 (preferably, peak inspiratory demand 6"), resulting in no or minimal ambient air entrainment, as shown in FIG. 2B. In some embodiments, flow restrictions may be applied to the change in flow rate by the breathing system when there is ambient air entrainment by the patient. For example, when ambient air entrainment is determined, the breathing system may increase the flow rate of gas, but the breathing system may not continuously increase the flow rate above a predetermined flow limit. This is to avoid excessive or unnecessarily high flow rates, which may be detrimental to the patient.
[0118] Embodiments will now be described. It should be noted that the embodiments describe, by way of example, systems (devices) and / or methods for meeting "inspiration demand." This may relate to meeting "peak inspiratory demand" or "instantaneous inspiratory demand," depending on the configuration. To meet peak inspiratory demand, measurements of oxygen concentration at the nose and / or mouth are made at the time of peak inspiratory demand or throughout the respiratory cycle (continuous or periodic determination). However, these embodiments may equally be used to meet instantaneous inspiratory demand. To do so, the same devices / methods are used, except that measurements of oxygen concentration at the nose and / or mouth are made continuously or periodic throughout the respiratory cycle.
[0119] One embodiment A breathing system (which may also be referred to as a "ventilator") 10 for providing flow therapy or other treatment to a patient is described in further detail, according to one embodiment. The breathing system is configured to deliver a gas flow to the patient and to determine whether the rate of the gas flow provided to the patient meets the inspiratory demand of the patient. As a result, the breathing system may also modify the gas flow rate to the patient to meet the inspiratory demand. The breathing system may be used for any suitable oxygenation purpose, including, but not limited to, during an anesthetic procedure (e.g., anesthesia or sedation), pre-oxygenation after an anesthetic or sedative agent has been administered to a patient during an anesthetic procedure (e.g., anesthesia or sedation according to the disclosures in PCT Publication Nos. WO 2016 / 157102 and WO 2016 / 133406 (the U.S. equivalents being U.S. Patent Application Publication Nos. 20180280641 and 20180126110, respectively), which are incorporated herein in their entireties), for example, high flow respiratory assistance, high flow therapy, ventilation, delivery of high flow gas flows, or any other location where monitoring of whether a patient's inspiratory demands are being met (whether by the breathing system gas flow or entrained air) is necessary.
[0120] The breathing system comprises a flow source 50 for providing a high flow gas 31, for example oxygen or a mixture of oxygen and one or more other gases. Alternatively, the breathing system may have connections for coupling to the flow source. Thus, depending on the context, the flow source may form part of the breathing system, or may be considered to be separate therefrom, or even with part of the flow source forming part of the breathing system and part of the flow source being external to the breathing system. In summary, the system may comprise: Flow source a humidifier for humidifying the gas stream; Intake tube, Conduits (e.g., drylines or heated breathing tubes), Patient interface, Pressure relief valve Filters
[0121] The system will now be described in further detail.
[0122] The flow source can be a wall-mounted supply of oxygen, a tank of oxygen 50A, a tank of other gas, and / or a high-flow device with a flow generator 50B. While FIG. 3 shows a flow source 50 with a flow generator 50B and an optional inlet 50C and an optional connection to an O2 source (e.g., a tank or O2 generator) 50A via a shut-off valve and / or regulator and / or other gas flow control device 50D, this is just one option. The flow generator 50B can control the flow delivered to the patient 16 using one or more valves, or optionally, the flow generator 50B can include a blower. The flow source can be one or a combination of the flow generator 50B, O2 source 50A, and air source 50C, as described. Although flow source 50 is shown as part of breathing system 10, it may be considered a separate component in the case of an external oxygen tank or a wall-mounted source, in which case the breathing system has a connection port for connecting to such a flow source. The flow source provides a (preferably high flow) flow of gas that can be delivered to the patient via a delivery conduit and patient interface 51.
[0123] The patient interface 51 may be a non-sealing (non-sealing) interface, such as a non-sealing nasal cannula (e.g., when used in high-flow therapy), or a sealed (sealing) interface, such as a nasal mask, full face mask, or nasal pillows (e.g., when used in CPAP). In some embodiments, the patient interface 51 is a non-sealing patient interface, for example, to help prevent barotrauma (e.g., tissue damage to the lungs or other organs of the respiratory system due to pressure differences relative to the atmosphere). In some embodiments, the patient interface 51 is a sealing mask that seals against the patient's nose and / or mouth. The patient interface may be a nasal cannula with a manifold and nasal prongs, and / or a mask, and / or a nasal pillows mask, and / or a nasal mask, and / or a tracheostomy interface, or any other suitable type of patient interface. The flow source, as described above, may provide a base gas flow rate, for example, from 0.5 liters / minute to 375 liters / minute, or any range within this range, or even higher or lower limits. Details of the flow rate ranges and nature are described below.
[0124] A humidifier 52 may optionally be provided between the flow source 50 and the patient to provide humidification of the delivered gas. One or more sensors 53A, 53B, 53C, 53D, such as flow, oxygen fraction, pressure, humidity, temperature, or other sensors, may be located throughout the system and / or at, on, or near the patient 16. Alternatively, or additionally, sensors that provide such parameters may be used. Additionally, or alternatively, sensors 53A-53D may be one or more physiological sensors for sensing a patient physiological parameter, such as heart rate, oxygen saturation, partial pressure of oxygen in the blood, respiration rate, partial pressure of CO2 in the blood. Alternatively, or additionally, sensors that provide such parameters may be used. Other patient sensors may include an EEG sensor, a waist band for detecting respiration, and any other suitable sensor. In some configurations, a humidifier may be optional or desirable due to the benefits of humidified gases to help maintain airway integrity. One or more of the sensors may form part of the respiratory system or may be external thereto, and the respiratory system has inputs for any external sensors. The sensors may be coupled to the controller 19 or may send their outputs to the controller 19.
[0125] The sensor 14 is provided to measure the oxygen fraction of the air inhaled by the patient. It may be placed on the patient interface 51, for example, to measure or otherwise determine the fraction of oxygen proximate to (at / near / near) the patient's mouth and / or nose. The output from the sensor 14 is transmitted to the controller 19 to assist in controlling the respiratory system, determining whether peak inspiratory demand is being met and altering operation accordingly. The controller 19 is coupled to the flow source 50, the humidifier 52, and the sensor 14. It controls these and other aspects of the respiratory system, as described below. The controller can operate the flow source to provide a delivered flow of gas at a desired flow rate high enough to meet the peak inspiratory demand. In an alternative, the sensor 14 may communicate the measurement of the oxygen fraction at the patient's mouth and / or nose to a user who then inputs that information into the ventilator / controller. Any of the following disclosures / embodiments may be construed as having alternative forms, if desired.
[0126] The controller 19 is also configured to operate the respiratory system so that the patient's gas flow has a flow rate with an oxygen fraction that meets the patient's needs and provides the required therapy. The oxygen fraction may be a known oxygen fraction. For example, if pre-oxygenation of the patient is desired prior to administration of anesthesia, the controller 19 can operate the respiratory system to provide a gas flow with an oxygen fraction of at or about 100%. In another example, if sedation of the patient is desired, the controller 19 can operate the respiratory system to provide a gas flow with an oxygen fraction of at or about 21% or greater during the sedation procedure. Preferably, the oxygen fraction of the gas flow provided during the sedation procedure is greater than 21%, e.g., about 30%, or about 50% or greater. If the patient becomes apneic during the sedation procedure, the controller 19 or a clinician can adjust the oxygen fraction of the gas flow to anywhere between about 21% and about 100%. Preferably, the controller 19 increases the oxygen fraction in the gas stream, preferably to an oxygen fraction greater than the previous oxygen fraction, although this may be done manually. It may do this in any suitable manner, for example by controlling a valve coupled to an O source to increase / decrease the amount of O relative to the ambient gas stream to control the ratio (concentration) of O in the total gas stream.
[0127] An input / output interface (user interface) 54 (e.g., a display and / or input devices) is provided. The input devices are for receiving information from a user (e.g., a clinician or patient) that can be used to determine oxygenation needs, anesthetic gas agent, and / or CO detection. For example, but not by way of limitation, the user interface can be used to input oxygen concentration information from the patient's mouth and / or nose into the ventilator / controller. The respiratory system can also be activated for / in connection with anesthesia (i.e., pre-anesthesia oxygen needs and / or oxygen needs during the pre-oxygenation phase—which may include when the patient is apneic or when the patient is breathing) and after such procedures, which may include extubation periods, to determine the patient's dosage / oxygenation needs (hereinafter "oxygen needs"). The respiratory system 10 is also configured to adjust the high flow gas provided to the patient for anesthesia purposes, for example, based on the determined oxygen fraction at the patient's nose and / or mouth, and adjust parameters (e.g., pressure, flow rate, amount of gas, gas composition) of the high flow gas delivered to the patient as needed to meet oxygenation needs. The respiratory system also includes a display, which may be part of the I / O, for displaying estimated indicators of gas parameters of the exhaled gas stream as graphs, digital readouts, or any other suitable means. The controller can determine whether inspiratory demand is being met or not and output an indication thereof on a user interface.
[0128] The sensor for measuring oxygen fraction, the controller 19, and / or any other components may be considered a "sensing system." As noted above, the sensing system is integrated into the respiratory system 10, and aspects of the sensing system are used for other functions as well. However, it will be understood that there may be separate sensing systems, either integrated with the respiratory system or separate from the respiratory system.
[0129] The respiratory system 10 may be an integrated or separate component-based configuration, as shown generally in the dotted box in FIG. 3 . In some configurations, the respiratory system may be a modular component. Furthermore, the respiratory system may include only some of the components shown, and not all are necessarily essential. Also, the conduits and patient interface need not be part of the system, but may be considered separate. Although hereafter referred to as the respiratory system, this should not be considered limiting. The respiratory system is broadly considered herein to include anything that provides a flow of gas to a patient, whereby a sensing system can be used to determine whether the flow of gas meets the inspiratory demand.
[0130] 4 shows a flow diagram illustrating method steps 100 by which the controller of the respiratory system 10 is configured to operate. The flow diagram illustrates the more general example of meeting instantaneous inspiratory demand. In one example, this may be peak inspiratory demand. In step 102, the controller calculates the oxygen concentration FO of the air the patient is inhaling. 2pat In step 104, the controller receives a signal from the sensor 14 (directly or via a user) that is (or indicates) the sensed oxygen concentration FO 2pat , the oxygen concentration of the breathing system gas flow, FO 2app The detected oxygen concentration FO is compared with 2pat The oxygen concentration in the respiratory system is 2app If so, the controller proceeds to step 106 and calculates the intake air demand Q demand is the gas flow rate in the breathing system, Q app and then, before repeating step 102, the flow rate Q of the breathing system gas flow is increased in step 108. app Proceed to increase.
[0131] Adjusting the rate of gas flow to the patient will now be described. If the controller determines that the flow rate should be increased in step 106, the controller alerts the clinician of the need to increase the flow rate and / or, optionally, the rate or amount of increase. This can be done by sounding an alarm indicating the need to increase the flow rate and / or displaying information on a display, such as the flow rate or amount of flow increase. The clinician can then actuate the device to increase the flow rate accordingly. This can be done in step 108 by sending a user input to the controller, which actuates the device to increase the flow rate. Alternatively, the controller determines the rate or amount of increase to increase the flow rate and actuates the flow source 50 accordingly to reach or increase that flow rate.
[0132] Optionally, the increased flow rate can be determined as follows.
[0133] The measured FiO2 is given by equation (1).
number
[0134] Here, ambient flow is the flow rate of ambient air entrained by the patient, and device flow is the flow rate of gas flow being delivered to the patient by the device.
[0135] By rearranging from the ambient flow rate, we obtain equation (2).
number
[0136] The ambient flow rate can be calculated from (2) using knowledge of the device flow rate.
[0137] The inspiratory flow rate is given by equation (3). Instantaneous inspiratory flow rate = device flow rate + ambient flow rate
[0138] The instantaneous inspiratory flow can be calculated from equation (3) using the ambient flow calculated in equation (2) and knowledge of the system flow. The system flow delivered to the patient can then be varied by increasing the calculated instantaneous inspiratory flow.
[0139] Regardless of how it is determined, by way of example, the gas stream flow rate is increased to greater than 20 liters per minute, optionally to a flow rate of about 20 to about 90 liters per minute, or about 40 to about 70 liters per minute. Also by way of example, the gas stream flow rate is increased in increments of greater than 0 liters per minute, optionally to about 1 liter per minute or greater, optionally to about 5 liters per minute or greater, or optionally to about 10 liters per minute or greater. In some embodiments, the flow rate increase is a stepwise increase and / or a continuous increase.
[0140] On the other hand, the sensed (or otherwise determined) oxygen concentration FO 2pat The oxygen concentration in the respiratory system is 2app If Q matches (e.g., is equal to, is at, is near, or is in the vicinity of), the controller proceeds to step 110 and calculates the intake air demand Q demand is the gas flow rate in the breathing system, Q app If the inspiratory flow needs to be titrated, then the breathing system gas flow rate Q is increased in step 112 before repeating step 102. app It is determined to reduce
[0141] If it is determined that the flow rate provided to the patient should be titrated to approximate (rather than exceed) the actual inspiratory demand, the following occurs: If the controller determines in step 110 that the flow rate should be reduced, the controller alerts the clinician of the need to reduce the flow rate and / or, optionally, the rate or amount by which the flow rate should be reduced. This can be done by sounding an alarm indicating the need to reduce the flow rate and / or displaying information on a display, such as the flow rate or the amount by which the flow rate should be reduced. The clinician can then actuate the respiratory system to reduce the flow rate accordingly. This can be done in step 112 by sending a user input signal to the controller that activates the device to reduce the flow rate. Alternatively, the controller determines the rate or amount by which the flow rate should be reduced and actuates the flow source 50 to reduce the flow rate accordingly. In some embodiments, the gas flow rate is reduced to a flow greater than 20 liters per minute, optionally between about 20 and about 90 liters per minute, or between about 40 and about 70 liters per minute. Also by way of example, the gas flow rate is decreased by more than 0 liters per minute, optionally by about 1 liter per minute or more, optionally by about 5 liters per minute or more, or optionally by about 10 liters per minute or more.
[0142] In some embodiments, the flow rate reduction is a stepwise and / or continuous reduction. Once the flow rate is reduced (by either means), another measurement is taken. If the measured oxygen concentration still equals the delivered concentration, the inspiratory demand is still at least met (or possibly exceeded), and the flow rate is reduced again, as described above. This can continue until the measured oxygen concentration is less than the delivered oxygen concentration, which indicates the patient is entraining air and would be just below the point of meeting the inspiratory demand. Optionally, at this point, the flow rate can be maintained, or the flow rate can be increased again to eventually meet or approach the inspiratory demand. Thus, the flow rate is reduced until the oxygen concentration level reaches or approaches an optimal value, indicating that the inspiratory flow is just being met. There may be a constant feedback loop attempting to maintain the flow rate as close as possible to the inspiratory demand. In an alternative, the gas flow rate is maintained until it is determined that the patient's inspiratory demand is not being met.
[0143] When titrating as described above, there comes a point where no further reduction in flow rate is implemented and the flow rate is maintained or increased. There are various ways to do this. For example, the controller can be configured to continuously prompt the clinician to activate the breathing system to reduce the flow rate, or the controller activates the flow source 50 to reduce the flow rate until the difference between the oxygen fraction of the delivered gas stream and the oxygen fraction at the mouth and / or nose exceeds a threshold (i.e., the oxygen fraction at the nose and / or mouth is greater than a predetermined threshold less the oxygen fraction of the delivered gas stream). At this point, the reduction in flow rate ceases.
[0144] As such, by way of example, the controller may be configured to prompt the clinician to continue reducing the flow rate, or to control the flow source to continue reducing the flow rate, while the difference between the delivered oxygen fraction and the oxygen fraction at the mouth and / or nose is less than, for example, 5% oxygen fraction. If the difference between the delivered oxygen fraction and the oxygen fraction at the mouth and / or nose exceeds 5% oxygen fraction, the controller may determine that the flow rate should not be reduced any further, but instead should be maintained (or increased again, if implementing a feedback loop).
[0145] In one option, no action is taken until a sufficient percentage of previously measured respiratory cycles result in air entrainment. Only then does the controller prompt the clinician to increase the flow rate or control the flow source to increase the flow rate. For example, the respiratory system maintains the flow rate for a set number of respiratory cycles (e.g., 5) and observes whether there is any entrainment (i.e., the patient's oxygen fraction is less than the oxygen fraction of the gas flow) during any one of the cycles. If a sufficient set number of cycles indicate entrainment, the controller prompts the clinician to increase the flow rate or controls the flow source to increase the flow rate; if an acceptable number of cycles (e.g., 2 or less) indicate entrainment, the device may determine that peak inspiratory demand is substantially met beyond that set number of cycles and maintain the flow rate of delivered gas. The set number of cycles and the threshold for acceptable cycles can be predetermined or determined by the user.
[0146] In one example, determining that the patient's inspiratory demand is not being met includes the controller monitoring a set number of previous patient respiratory cycles, determining the number of previous patient respiratory cycles with entrained ambient air, and comparing the number of previous patient respiratory cycles with entrained ambient air to a set threshold. If the number of previous patient respiratory cycles with entrained ambient air exceeds the set threshold, the patient's inspiratory demand is not being met.
[0147] It should be noted that the sensor 14 may measure the oxygen concentration adjacent to the patient's nose / mouth continuously / periodically throughout the respiratory cycle, measuring the concentration at times other than peak patient inspiration. In this case, even at system flows less than peak inspiratory demand, the controller may determine that the oxygen concentration is sufficient, and therefore the flow rate is sufficient to meet the instantaneous inspiratory demand. However, once patient inspiratory demand reaches its peak, the sensor 14 measures again and, once at the peak, can determine whether the peak inspiratory demand has been met, which corrects itself.
[0148] Q peak The pattern can be displayed on the user interface 54 and observed to provide diagnostic information, for example, whether and how the patient's breathing is changing, e.g., the respiratory rate is decreasing over time.
[0149] Operation of the respiratory system will now be described with respect to the device of Figure 3 and the flow diagram of Figure 4. The device operates in the usual manner for high-flow therapy, with the controller receiving inputs from various sensors and other inputs, determining the flow rate and oxygen concentration required by the patient, and controlling the flow generator to provide a flow of gas at the desired flow rate and oxygen concentration. The oxygen concentration may be set by the user or by the controller, depending on the device's treatment mode. Thus, the high-flow therapy device provides a flow of gas at a rate determined by the measured O2 concentration. At this point, the flow rate may or may not meet (peak) inspiratory demand. Figure 5 shows the flow rate Q appA satisfies the inspiratory demand for part of the patient's breath, but the peak inspiratory demand Q peak does not satisfy the condition, and the flow rate Q appB is the intake demand and peak intake demand Q peak Here is an example that satisfies the above.
[0150] The controller receives input (directly or via a user) from a sensor 14 that measures the concentration of oxygen at the patient's nose / mouth (step 102). The sensor may provide the controller with oxygen fraction information, or the controller may determine the oxygen fraction from the sensor. Alternatively, there may not be an actual determination of oxygen fraction, but another related parameter that allows the controller to determine the relative relationship between the oxygen fraction of the gas stream and the oxygen fraction at the patient's nose / mouth. The controller then determines whether the oxygen concentration at the patient's nose / mouth (measured by the sensor) is greater than, equal to, or less than the oxygen concentration in the gas stream (step 104). If the oxygen concentration at the patient's nose / mouth is less than the oxygen concentration in the gas stream (Q in FIG. 5), appA 10B), the controller determines that the peak inspiratory demand is not being met by the gas flow (step 106). This is because it is presumed that the patient must be entraining ambient air, since the oxygen concentration at the nose / mouth is less than the oxygen concentration provided in the gas flow. In this case, the controller (or clinician) can modify the operation of the breathing system to remedy the situation, for example, by controlling the valves and / or blowers of the flow generator 50B to increase the flow rate of flow gas provided by the breathing system (step 108). Alternatively, the controller may prompt the clinician via a user interface to manually modify the flow rate.
[0151] When the oxygen concentration at the patient's nose / mouth is equal to or nearly equal to the oxygen concentration in the gas flow (Q in Figure 5), appB), the controller determines that the peak inspiratory demand is met (or, in some cases, exceeded) (step 110). This is because it is presumed that the patient is not entraining ambient air, since the oxygen concentration at the nose / mouth is equal to the oxygen concentration provided in the gas flow. In this case, the controller may do nothing, or may modify operation of the flow therapy device (step 112) to reduce the flow provided to the patient (in instances where there may be too much flow and it is not necessary to maintain that flow), for example, by controlling the flow generator to reduce the flow rate of flow gas provided by the respiratory system.
[0152] It should be noted that the controller does not necessarily determine what the intake demand is, but it can do so and communicate it.
[0153] 6 and 7, these figures illustrate how the controller of the respiratory system 10 determines whether the respiratory system is providing a sufficient flow of gas to meet the inspiratory demand, and optionally titrates the rate of gas flow being delivered to the patient to provide a desired flow rate that is large enough to meet the instantaneous or peak inspiratory demand. FIG. 6 illustrates the rate of gas flow (Q) provided by the respiratory system. app ) based on the patient inspiration (Q patient 7 is a bar graph showing how the flow composition of the gas stream (Q) provided by the breathing system changes. app 6 and 7 are line graphs illustrating how the oxygen concentration (FiO2) of the air inspired by the patient varies as a function of the FiO2. States A-D shown in Figures 6 and 7 help illustrate how the operation of the respiratory system varies, while Figure 4 shows step 100 where the controller 14 moves from state A to state D.
[0154] In state A, the breathing system 10 initially adjusts the oxygen concentration FO of the ambient air. 2amb Larger oxygen concentration FO 2app The flow of gas with app1First breathing system flow Q app1 is the peak intake demand Q peak Therefore, when the patient is breathing at its peak, the ambient air is forced to the first ambient flow rate Q amb1 The patient's inhalation flow rate Q patient is the peak intake demand Q peak and in this situation, the first respiratory system flow Q app1 and the first ambient flow rate Q amb1 The entrainment of ambient air dilutes the oxygen concentration of the gas the patient inhales, causing the patient to experience a decrease in the oxygen concentration of the ambient air. 2amb greater than the desired oxygen concentration FO of the gas flow provided by the breathing system 2app The first oxygen concentration F O is smaller than 2pat1 This is because, in step 102, the sensor 14 detects a first oxygen concentration FO at the patient's nose / mouth. 2pat1 In step 104, the control device 19 detects the first oxygen concentration FO 2pat1 is the oxygen concentration in the breathing system gas flow, FO 2app and in step 106, the flow rate Q of the breathing system gas flow is determined to be smaller than the app1 is the peak intake demand Q peak In step 108, the controller 19 determines that the flow rate Q of the breathing system gas flow is insufficient to satisfy app A, Q app2 This creates State B.
[0155] Here, in state B, the breathing system 10 directs the gas flow to Q app2 The primary breathing system flow rate Q app1 Despite the increase from the second respiratory system flow Q app2 is the peak intake demand Q peak Since the patient's inspiration is still insufficient to meet the second ambient flow rate Q amb2 The patient's inhalation flow rate Qpatient is the peak intake demand Q peak and that is, in this situation, the second respiratory system flow Q app2 and the second ambient flow rate Q amb2 The entrainment of ambient air dilutes the oxygen concentration of the gas the patient inhales, causing the patient to experience a decrease in the oxygen concentration of the ambient air. 2amb The first oxygen concentration F 2pat1 The oxygen concentration FO of the gas flow provided by the breathing system is greater than 2app A second oxygen concentration F O 2pat2 This is because, in step 102, the sensor 14 detects a second oxygen concentration FO at the patient's nose / mouth. 2pat2 In step 104, the control device 19 detects the second oxygen concentration FO 2pat2 is the oxygen concentration in the breathing system gas flow, FO 2app and in step 106, the flow rate Q of the breathing system gas flow is determined to be smaller than the app1 is the peak intake demand Q peak In step 108, the controller 19 determines that the flow rate Q of the breathing system gas flow is insufficient to satisfy app A, Q app3 This will result in State C.
[0156] Here, in state C, the breathing system 10 operates at a first breathing system flow Q app1 and the second respiratory system flow Q app2 Increasing from,Q app3 The third breathing system flow Q provides a gas flow. app3 is at least the peak intake demand Q peak (See dotted line) and it is the third respiratory system flow Q app3 is the peak intake demand Q peak If it meets (but does not exceed) app3 is at least as large as the peak inspiratory demand), and the flow rate Q patient is the third respiratory system flow rate Q app3is less than or equal to Q and there is no entrainment of ambient air. amb = 0. The patient is monitored for the oxygen concentration FO of the gas flow provided by the respiratory system. 2app The third oxygen concentration F0 is equal to 2pat3 This is because, in step 102, the sensor 14 detects a third oxygen concentration FO at the patient's nose / mouth. 2pat3 In step 104, the control device 19 detects the third oxygen concentration FO 2pat3 is the oxygen concentration in the breathing system gas flow, FO 2app and in step 110, the flow rate Q of the breathing system gas flow is determined to be equal to or approximately equal to app3 is the peak intake demand Q peak At this point, the controller 19 determines that the current is sufficient to at least satisfy Q app3 Maintain a constant flow rate in the breathing system.
[0157] In condition C, the flow rate Q of the breathing system gas flow app3 is the peak intake demand Q peak It is possible that the flow rate Q of the breathing system gas flow may actually exceed 100%. In this case, it may be undesirable to maintain the flow rate Q since it is higher than necessary. app3 In state C, the peak intake demand Q peak As explained above, the controller 19 controls the flow rate Q of the breathing system gas flow. app In step 112, feedback control is used to reduce Q app Q app4 , so that it substantially meets the peak inspiratory flow. This leads to (test) State D. In State D, the breathing system 10 reduces the first and second breathing system flows Q app1 , Q app2 Larger but third respiratory system flow Q app3 Smaller Q app4 The fourth breathing system flow Q provides a flow of gas. app4 is the peak intake demand Qpeak , which is still the peak intake demand Q peak This may be greater or less than the fourth respiratory system flow Q app4 is the peak intake demand Q peak substantially meets the patient's inhalation flow rate Q patient is the fourth respiratory system flow rate Q app4 (e.g., they are equal to or within a tolerance such as 5%, 4%, 3%, 2%, 1%, or other tolerance) and there is no substantial entrainment of ambient air, i.e., Q amb = 0. In some embodiments, the tolerance may be predetermined or determined by the user. The patient is 2app A fourth oxygen concentration F0 is approximately equal to 2pat4 The fourth respiratory system flow rate, Q app4 is essentially the minimum flow rate that the breathing system gas flow can provide while still ensuring that the patient is adequately oxygenated (by ensuring that the patient actually inhales the oxygen fraction set by the breathing system).
[0158] From state C (where flow may exceed inspiratory demand), to achieve state D, flow is increased by a fourth respiratory system flow, Q app4 is the peak intake demand Q peak Typically, a closed loop or other control can be implemented whereby the flow rate is decreased and the oxygen fraction is measured to see if the flow rate still meets the inspiratory demand until the lowest flow rate that meets the inspiratory demand is found.
[0159] For example, you can set an increase or decrease in the flow rate, Q app is the peak intake demand Q peak Optionally, there may be additional states following state D.
[0160] Or, Q in state C app3If the flow rate decreases from the third respiratory system flow rate of state D and the flow rate does not reach the flow rate of state D, the patient's peak inspiratory demand Q peak is no longer filled, and then entrainment of ambient air will occur. In this situation, the control device determines whether the patient is receiving a 2app Smaller oxygen concentration FO 2pat Therefore, the peak intake demand Q peak That is, in step 102, the sensor 14 determines that the oxygen concentration FO 2pat In step 104, the control device 19 detects the second oxygen concentration FO 2pat is the oxygen concentration in the breathing system gas flow, FO 2app and in step 106, the flow rate Q of the breathing system gas flow is determined to be smaller than the app is the peak intake demand Q peak In step 108, the controller 19 determines that the flow rate Q of the breathing system gas flow is insufficient to satisfy app Increase the
[0161] Other titration control systems that achieve state D are possible, the above are merely examples. Also, it is not important to titrate to state D; it would be possible to stay in state C where flow may exceed inspiratory demand.
[0162] In the above embodiments, the device may also be configured to determine whether the patient has stopped breathing or reduced their breathing. This is based on the premise that if zero (or a low) flow of gas is provided to the patient and the device still determines that inspiratory demand is being met, this may indicate that the patient may not be breathing or may have substantially reduced their breathing. If the patient is not breathing or reducing their breathing under zero flow, they are likely entraining ambient air, and the device will determine that inspiratory demand is not being met.
[0163] In this embodiment, the system may provide a flow of gas with a known oxygen fraction (e.g., 100%) at a specific flow rate, thereby verifying whether the inspiratory demand is being met normally. If the inspiratory demand is being met, this may be due to the fact that the flow rate is indeed meeting the inspiratory demand. However, it may also be because the patient is not breathing or is reducing their breathing. As a test, the device may be configured to reduce the flow rate to zero or to a low threshold to verify whether the inspiratory demand is being met. If the inspiratory demand is still being met, this would be unlikely if the patient is not breathing or reducing their breathing, since such a low flow rate is unlikely to meet the inspiratory demand. Therefore, it may be inferred that the patient is not breathing. An alarm and / or other suitable action may be taken.
[0164] Variations The above embodiments relate to the following: Determining the oxygen fraction in the patient's mouth and / or nose; determining whether the oxygen fraction at the patient's mouth and / or nose is equal to, less than, or greater than the oxygen fraction of the gas stream being delivered to the patient; and / or determining whether inspiratory demand is met or not based on the oxygen fraction determined at the patient's mouth and / or nose; · Adjusting flow to meet inspiratory demand.
[0165] In any of the above cases, it may not strictly be necessary to actually determine one or any of those results above or to make the adjustments described. For illustrative and conceptual purposes, in this embodiment, an aspect may be characterized as "determining," although in fact no determination may or need actually be made. Rather, more generally, an indication of the oxygen fraction at the patient's mouth and / or at the patient's mouth (whether in the form of a signal, voltage, current, data / information, value, user input, or the like) can be used to compare against the oxygen fraction in the gas stream, and an appropriate result or action can be taken (e.g., advising the user, patient, or clinician that respiratory demand is or is not being met, and / or adjusting the flow rate). Thus, more generally, the present invention relates to using the oxygen fraction at the patient's mouth and / or nose (regardless of how it is determined and provided, e.g., measured, sensed, or otherwise ascertained), and then using that knowledge, along with knowledge of the oxygen fraction being delivered, to take appropriate action as described above, based on any discrepancy (or otherwise) between the oxygen fraction at the patient's mouth and / or nose and the oxygen fraction of the gas stream that gives an indication of air entrainment, which in turn can provide an indication of whether inspiratory demand is being met or not, which itself can provide an indication of actions that need to be taken to alleviate the situation or take action that is otherwise appropriate. It is not important to adjust the flow rate to completely meet inspiratory demand, but simply to know that there is a discrepancy and to take some action to at least partially remedy the discrepancy. The present invention relates to this, and the above embodiments are merely some implementations of the invention, but should not be construed as limiting and are there to support the more general concept.
[0166] For example, references to determining the oxygen fraction at a patient's mouth and / or nose can mean obtaining any type of indication, whether received directly from output from a sensor in the form of a signal, data, current, voltage, value, information, or the like, or otherwise determined from such output from a sensor (e.g., by input from a user, but not limited to).
[0167] However, as noted above, no such determination may be made at all, or the display may not be a direct indication of oxygen fraction, but some proxy for it. For example, the display may be, but need not necessarily be, simply a signal, data, current, voltage, value, information, parameter, etc. from which oxygen fraction may be determined. The display may itself be sufficient to make a correlation with what needs to happen next to meet inspiratory demand.
[0168] As an example, the gas flow is adjusted based on the fraction at the patient's mouth and / or nose and the oxygen fraction of the gas stream. This may take the form of a comparison of some parameter indicative of the oxygen fraction at the patient's mouth and / or nose with some parameter indicative of the oxygen fraction of the gas stream. It may involve a comparison of the actual (however determined) oxygen fraction at the patient's mouth and / or nose with the actual oxygen fraction of the gas stream, although that is not the only indicative parameter and less direct parameters may be used. The comparison may look at whether one of the parameters is higher than, lower than, and / or the same as the other, respectively. In some embodiments, a comparison may not even be required. Simply having knowledge of the oxygen fraction at the patient's mouth or nose (or some parameter indicative thereof) and / or having knowledge of the oxygen fraction of the gas stream (or some parameter indicative thereof), without actually comparing the two, may be sufficient to carry out embodiments of the invention, whether it be determining inspiratory demand, adjusting flow rate, adjusting flow rate to meet inspiratory demand, or some combination thereof. Adjustments may not even completely resolve the conflict in meeting inspiratory demand, but rather may simply bring the flow rate closer to the patient's inspiratory demand. (In a broader sense, "meet" can mean "bringing the flow rate closer to inspiratory demand," which provides a benefit.) Knowledge of the oxygen fraction at the patient's nose and / or mouth and the oxygen fraction of the gas stream may be used to adjust the gas flow to improve the situation without necessarily actually meeting the inspiratory demand. However, the oxygen fraction at the patient's mouth and nose, and its relationship to the oxygen fraction of the gas stream, may be the basis for obtaining information for making decisions and / or adjusting the operation of the system.
[0169] Furthermore, Q peakThe pattern can be displayed and observed to provide patient, symptom, treatment, or other relevant information, for example, whether and how the patient's breathing is changing, e.g., respiratory rate is decreasing over time. This may be displayed on a user interface in the form of values and / or graphs or the like. For example, flow rate, inspiratory demand, entrainment flow, or the like may be shown in a suitable manner.
Claims
1. a flow generator for providing a gas flow to a patient, the gas flow comprising an oxygen fraction; A control device, receiving an input indicative of the oxygen fraction at the patient's nose and / or mouth; adjusting the flow rate of the gas stream based on a comparison of the oxygen fraction at the patient's nose and / or mouth with the oxygen fraction of the gas stream provided by the flow generator; A control device configured as follows: Equipped with Respiratory system.
2. 10. The respiratory system of claim 1, wherein the input indicative of the oxygen fraction is received from a sensor placed near the patient's nose and / or mouth.
3. 3. The respiratory system of claim 2, wherein the sensor is an O2 fraction sensor coupled to the controller.
4. The respiratory system of claim 1 , wherein the input indicative of the oxygen fraction is received via a user input.
5. A breathing system according to any preceding claim, wherein the flow generator provides a high flow rate gas flow.
6. a humidifier for humidifying said gas stream; Intake tube, conduit, patient interface, pressure relief valve, filter further comprising one or more of: A breathing system according to any one of claims 1 to 5.
7. The control device determining whether the gas flow meets or does not meet inspiratory demand based on a relationship between the oxygen fraction at the patient's mouth and / or nose and the oxygen fraction of the gas flow; A breathing system according to any one of claims 1 to 6, further configured to:
8. A user interface configured to inform a user whether the patient is meeting or not meeting inspiratory demand. A breathing system according to any preceding claim, further comprising:
9. A breathing system according to any one of claims 1 to 8, wherein the oxygen fraction of the gas flow is 100%, or between about 30% and about 50%.
10. 10. A breathing system according to any one of the preceding claims, wherein the flow rate of the gas flow is greater than about 20 litres per minute, or between about 20 and 90 litres per minute, or between about 40 and 70 litres per minute.
11. A respiratory system according to any preceding claim, comprising or for use with a non-sealing patient interface.
12. 9. A respiratory system as described in claim 7 or 8, wherein if the determined oxygen fraction at the patient's nose and / or mouth is less than the oxygen fraction of the gas flow, it is determined that the gas flow does not meet the inspiratory demand of the patient.
13. 13. A respiratory system as described in any one of claims 7, 8 and 12, wherein the gas flow is determined to meet or close to meeting the inspiratory demand of the patient when the oxygen fraction at the patient's nose and / or mouth is equal to or nearly equal to ("matches") the oxygen fraction of the gas flow.
14. 14. A breathing system according to any one of claims 7, 8, 12 and 13, wherein the flow rate of the gas flow is increased by the controller if the inspiratory demand is not met.
15. 15. The breathing system of claim 14, wherein the flow rate of the gas flow is increased to a rate of about 20 liters per minute or more, or about 20 to about 90 liters per minute, or about 40 to about 70 liters per minute.
16. A breathing system according to any one of claims 7, 8 and 12 to 15, wherein the flow rate of the gas flow is maintained or reduced by the controller if the inspiratory demand is exceeded.
17. 17. A breathing system according to any one of claims 7, 8 and 12 to 16, wherein the flow rate of the gas flow is maintained until it is determined that the patient's inspiratory demand is not being met.
18. A breathing system according to any one of claims 1 to 8, wherein the oxygen fraction of the gas flow is 100%.