Controlling the humidifier chamber temperature for precise humidity control

The integrated blower/humidifier system with sensor-controlled power adjustments addresses the challenge of precise gas property control in respiratory therapy, ensuring effective and stable delivery.

JP7745697B2Active Publication Date: 2025-09-29FISHER & PAYKEL HEALTHCARE LTD
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Patent Information

Application Number
JP2024083250
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2008-05-27
Filing Date
2024-05-22
Publication Date
2025-09-29
Estimated Expiration
2029-05-27

AI Technical Summary

Technical Problem

Existing respiratory humidification systems face challenges in accurately controlling gas temperature, humidity, and flow rate due to interdependencies and external variables, leading to issues like condensation and ineffective therapy delivery.

Method used

An integrated blower/humidifier system with sensors and a controller that measures and adjusts power to maintain desired gas properties at the point of delivery, using rules-based systems, mathematical formulas, or look-up tables to compensate for changes in flow resistance and ambient conditions.

Benefits of technology

The system ensures precise control of gas temperature, humidity, and flow rate, minimizing condensation and maintaining effective therapy delivery despite environmental variations.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a respiration aid system for supplying a heated and humidified gas flow to a user.SOLUTION: A system of the present invention includes a humidifier unit for holding and heating a predetermined amount of water, and receiving a flow of gas from a gas supply source through an inlet port when in use, the flow of gas passing through a humidifier and exiting through an outlet port. The system further includes a temperature sensor for measuring the temperature of gas exiting from the humidifier unit, a peripheral temperature sensor for measuring the temperature of gas before entering the humidifier unit, and a flow rate sensor for measuring a flow rate of a gas flow. The system also includes a controller for receiving data from the temperature sensor and the flow rate sensor, and determining a control output according to the data. The control output adjusts power for the humidifier unit, and a desired output is thereby achieved at the outlet port of the humidifier unit.SELECTED DRAWING: Figure 2b
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Description

[Technical Field]

[0001] The present invention relates to a method and apparatus for controlling the humidity level and flow rate of gas in a device that provides a heated, humidified gas flow to a user for therapeutic purposes, and in particular to a method and apparatus for controlling the humidity of a gas flow in a device that provides humidified air for respiratory humidification therapy, high-flow oxygen therapy, CPAP therapy, Bi-PAP therapy, OPAP therapy, etc., or humidification of gases used in insufflation or keyhole surgery. [Background technology]

[0002] Devices or systems for providing a flow of humidified gas to a patient for therapeutic purposes are well known in the art. Systems for providing this type of therapy (e.g., respiratory humidification) have a structure in which gas is supplied from a gas source to a humidifier chamber. As the gas passes over heated water or through heated humidified air in the humidifier chamber, the gas becomes saturated with water vapor. The heated, humidified gas is then supplied to a user or patient downstream from the humidifier chamber via a gas conduit and a user interface. The gas supply system may be a modular system assembled from separate units, with the gas source being an assisted breathing unit or a blower unit. That is, the humidifier chamber / heater and the blower unit are separate (modular) items. These modules are connected in series via connecting conduits to pass gas from the blower unit to the humidifier unit during use. Alternatively, the respiratory assistance device may be an integrated system, in which the blower unit and humidifier unit are housed within the same housing during use. In both modular and integrated systems, the gas provided by the blower unit is generally sourced from ambient air. A third common type of respiratory support system is typically used in hospitals, where the respiratory support system receives at least a portion of its gas supply from a centralized gas source, typically external to the area of ​​use (e.g., a patient's room). A gas conduit or the like is connected between the gas conduit and an inlet, e.g., attached to a wall (or the like) of the patient's room. In use, the gas conduit may be directly connected to a humidifier chamber, or, if necessary, a step-down control unit or the like may be connected in series between the gas inlet and the humidifier chamber. This type of respiratory support system is generally used when the patient or user may require oxygen therapy, and oxygen is provided from a centralized gas source. Pure oxygen from the gas source is typically mixed with ambient air before delivery to the patient or user, e.g., by using a venturi located in the step-down control unit. In systems where at least some of the gas is supplied from a centralized source, a separate flow generator or blower is not required - the gas is supplied under pressure through an inlet, and a step-down control unit varies the pressure and flow to the required levels.

[0003] An example of a known prior art type modular system that uses only atmospheric gases is shown in FIG.

[0004] In typical integrated and modular systems, atmospheric gases are drawn into or otherwise introduced into a main "blower" or assisted breathing unit, which provides a flow of gas to its outlet. The blower and humidifier units are mated or otherwise rigidly connected to the blower unit. For example, the humidifier unit may be mated with the blower unit via a slide-on or push-fit connection, ensuring a rigid connection of the humidifier unit to the main blower unit and securely holding it in place. An example of this type of system is the Fisher and Paykel Healthcare "slide-on" water chamber system shown and described in U.S. Pat. No. 7,111,624. Another variation on this design is the slide-on or clip-on design, in which the chamber is enclosed within a portion of the integrated unit during use. An example of this type is described in WO 2004 / 112873.

[0005] One of the challenges faced by systems providing a flow of heated, humidified gas to a patient via a gas conduit and interface is proper control of the gas's characteristics. Specifically, it is desirable for the gas delivered to the patient (i.e., as the gas exits the user interface) to have the exact temperature, humidity, flow rate, and oxygen percentage (if the patient is receiving oxygen therapy) to provide the necessary therapy. If gas with the correct or required characteristics is not delivered to the patient, the therapy regimen may be ineffective. In many cases, the most desirable situation is to deliver gas saturated with water vapor (i.e., substantially 100% relative humidity) to the user at a constant flow rate. Other types or types of therapy regimens may require a relative humidity less than 100%. Breathing circuits are not steady-state systems, and it is difficult to ensure that gas is delivered to the user with substantially the correct characteristics. Achieving this result over a range of ambient temperatures, ambient humidity levels, and a range of gas flow rates at the delivery point can be difficult. The temperature, flow rate, and humidity of the gas stream are all interdependent characteristics. A change in one characteristic can cause changes in other characteristics. Because numerous external variables can affect the gas in the breathing circuit, it can be difficult to deliver gas to a user at a substantially appropriate temperature, flow rate, and humidity. As one example, the delivery conduit between the patient or user and the humidifier outlet is exposed to ambient atmospheric conditions, which can cause cooling of the heated humidified gas within the conduit as the gas travels along the conduit between the outlet port of the humidifier chamber and the user interface. This cooling can cause "rainout" within the conduit (i.e., the formation of condensation on the interior surface of the conduit). Rainout is highly undesirable for reasons explained in detail in WO 01 / 13981.

[0006] To facilitate achieving a gas flow delivery with gas having desired characteristics, prior art systems use sensors (e.g., temperature and humidity sensors) placed at various locations throughout the breathing circuit. Temperature sensors are generally thermistors because they are reliable and inexpensive. Humidity sensors, such as those described in U.S. Patent No. 6,895,803, are suitable for use in systems that deliver heated and humidified gas to a user for therapeutic purposes.

[0007] Achieving gas delivery to the patient at the correct temperature and humidity requires measuring or sensing gas properties at the point of delivery, or calculating or estimating gas properties at the point of delivery from measurements taken elsewhere in the system. To directly measure gas parameters at the point of delivery, a sensor must be located at or near the point of delivery—either within the end or interface of the patient conduit. A sensor located at or near the gas delivery point may provide the most accurate indication of gas status. However, one consideration when designing a breathing circuit is ensuring that the components used in the breathing circuit can be reliably and repeatedly connected and disconnected from one another. Another consideration is minimizing the weight supported by the patient during use; therefore, it is desirable to minimize the number of sensors at the patient end of the conduit, or to eliminate the need for them altogether. It is also desirable to minimize the total number of sensors in the system to limit cost and complexity (e.g., increased electrical and pneumatic connections).

[0008] To eliminate or avoid this problem, or to find a compromise between accurate measurement of gas properties, complexity, cost, patient-borne weight, and reliability, sensors may be placed at various other points in the system to measure gas parameters at those points, and the controller may use the sensor readings to estimate or calculate the gas properties at the point of delivery. The controller then adjusts the system's output parameters (e.g., fan speed, humidifier chamber heater plate power, etc.) accordingly. An example of a system and method for performing this type of calculation is disclosed in WO 2001 / 13981, which describes a device without a sensor at the patient end of the conduit. A temperature sensor is located proximal to the heater plate to measure the heater plate temperature. The gas flow through the humidifier chamber is estimated, and then an appropriate power level for the heater plate is determined by a centralized controller. The controller estimates the power supply to the heater humidifier plate and the power required by the conduit heater wire to achieve the optimal temperature and humidity of the gas delivered to the patient.

[0009] One possible drawback of systems and methods for estimating gas properties (such as those disclosed in WO 2001 / 13981) is that the estimates and algorithms used are less accurate than necessary. There are many variables that can adversely affect the accuracy of the calculation algorithms used by the controller, factors that may not have been taken into account when the algorithms were designed. For example, devices, particularly humidifier chambers, can experience convective heat losses ("drafts") caused by external airflow, especially in ventilated spaces. Air flow rates vary in magnitude, direction, and frequency of increase and decrease. Mean air velocities ranging from less than 0.05 m / s up to 0.6 m / s, turbulence intensities ranging from less than 10% up to 70%, and velocity fluctuation frequencies as high as 2 Hz have been determined to contribute up to 90% of the measured standard deviation of velocity fluctuations in indoor occupied areas - for an example see HVAC&R Research, Volume 13, Issue 6 - Paper title: "Accuracy limitations for low velocity measurements and draft assessment in rooms", by A Melikov, Z Popiolek, and MCGSilva.

[0010] The system disclosed in WO 2001 / 13981 likely cannot provide the control precision required to accurately control humidity without substantial rainout. For gas delivery with lower humidity levels, users or manufacturers may be forced to compromise between the increased likelihood of rainout and the number of sensors used and their location within the breathing circuit. For example, as the temperature of the inlet gas delivered to the humidifier chamber from the compressor or blower increases (particularly in integrated blower / humidifier respiratory support systems), the chamber temperature must be accurately compensated to achieve the desired dew point. If the air flowing into the chamber is warm and the air temperature increases with increased flow, the inaccuracy of the configured calculation algorithm may increase.

[0011] Additionally, it should be noted that prior art systems often measure / calculate and display the humidifier chamber outlet temperature. Because temperature does not necessarily relate directly to the humidity state of the gas, the displayed temperature reading is often insufficient to allow the user to make an informed decision. This is due to a number of factors, including, but not limited to, the following: 1. High temperature of the inflowing gas 2. Extremely low or extremely high flow rates 3. Cooling of the humidifier chamber by convection of ambient air near the humidification chamber 4. Mixing of outflowing and inflowing gases in the chamber 5. Condensation of water on the chamber walls or connecting pipes, especially under low ambient temperature conditions 6. Problems with accurate temperature measurement at high humidity (the "wet bulb" effect) 7. Fluctuations in humidity levels of the incoming gas

[0012] Furthermore, users do not always require gases heated to body temperature and 100% humidity. Certain treatment regimens may require high humidity or 100% humidity levels, which may be undesirable for mask users, as the highly humidified gases may cause discomfort to the user's skin.

[0013] A further problem with this type of system can be outlined as follows: In systems such as those outlined above, it is standard practice for the fan speed (modular and integrated units) or pressure / flow level (hospital, remote source units) to be set at a constant level, with the assumption that this will provide a constant flow throughout the system (or, if the system uses a centralized gas source, it is assumed that the flow rate of the incoming gas from the remote source will remain constant). A constant flow rate is desirable for the same or similar reasons as outlined above. A constant flow rate is also highly desirable when using additional or supplemental oxygen, by mixing it with atmospheric gases. A constant flow rate can help maintain the oxygen percentage at a desired level.

[0014] Because gas properties are interdependent, changes in flow rate can lead to significant changes in the humidity, temperature, or oxygen percentage of the gas supplied to the user. However, flow through a system can be affected by many different interdependent variables that are unrelated to the gas source (e.g., fan speed). These can include an increase (or decrease) in flow resistance caused by a change in the position of the user interface relative to the user, changes in the tortuosity of the supply conduit during use, etc. Flow rate can also change, for example, if the interface is replaced with one of a different size or shape, or with an entirely different type of interface. Summary of the Invention [Problem to be solved by the invention]

[0015] Therefore, there is a need for a system and method that provides increased control over the humidity and / or temperature of a gas flow, while simultaneously delivering the gas to a patient at the correct temperature, humidity, and pressure for effective therapy. There is also a need for a system that compensates for changes in flow resistance through the system during use, in order to provide a substantially constant flow rate at a desired level. [Means for solving the problem]

[0016] SUMMARY OF THE INVENTION It is an object of the present invention to provide an integrated blower / humidifier system that goes some way to overcoming the above drawbacks or that provides a useful option for the user.

[0017] In a first aspect, the present invention can be broadly described as a respiratory assistance system for providing a heated and humidified gas flow to a user for therapeutic purposes, the respiratory assistance system comprising: a humidifier unit having an inlet port and an outlet port, the humidifier unit configured, in use, to receive a flow of gas from a gas source via the inlet port, the humidifier unit further configured, in use, to hold and heat a quantity of water, the flow of gas passing through the humidifier unit becoming heated and humidified, the heated and humidified gas exiting the humidifier unit via the humidifier unit outlet port; an outlet port temperature sensor configured to measure the temperature of gas exiting the humidifier unit; an ambient temperature sensor configured to measure the temperature of the gas before it enters the humidifier unit; a flow sensor configured to measure the actual flow rate of the gas flow through the system; a controller configured to receive data relating to the measured temperature from the ambient temperature sensor, data relating to the measured temperature from the outlet port temperature sensor, and data relating to the actual flow rate from the flow rate sensor, the controller responsively determining a control output, the control output adjusting power to the humidifier unit so as to achieve a desired output at the humidifier unit outlet port; Includes:

[0018] In a second aspect, the invention can be broadly described as a respiratory assistance system for providing a heated and humidified gas flow to a user for therapeutic purposes, the respiratory assistance system comprising: a humidifier unit having an inlet port and an outlet port, the humidifier unit configured, in use, to receive a flow of gas from a gas source via the inlet port, the humidifier unit further configured, in use, to hold and heat a quantity of water, the flow of gas passing through the humidifier unit becoming heated and humidified, the heated and humidified gas exiting the humidifier unit via the humidifier unit outlet port; a supply conduit and user interface arranged to receive the heated humidified gas from the outlet port for delivery to the user in use, the supply conduit having a heating wire configured to heat gas within the conduit; and a patient-end temperature sensor configured to measure the temperature of the gas flow at or near the patient; a flow probe configured to measure an actual flow rate of the gas flow through the system; The respiratory assistance system further includes a controller configured to receive data regarding the measured temperature from the patient-end temperature sensor and data regarding the actual flow rate from the flow probe, the controller determining a control output accordingly, the control output adjusting power to at least the heating wire to maintain or change the temperature of the gas flow in the conduit, thereby achieving a desired patient-end temperature and absolute humidity at the interface.

[0019] Preferably, the control output relates to a target temperature at the outlet port for a given flow level, the desired output is the target temperature, and the control output adjusts the power to the humidifier unit to cause the measured temperature at the outlet port to match the target temperature.

[0020] Preferably, the control output is determined from a rules-based system loaded into the controller.

[0021] Alternatively, the control output is determined from at least one mathematical formula loaded into the controller.

[0022] Alternatively, the control output is determined from a look-up table loaded into the controller.

[0023] Preferably, the desired output is a target dew point temperature.

[0024] Preferably, the target dew point temperature is in the range of 31 to 39°C.

[0025] Preferably, the user-set target dew point temperature provides an absolute humidity level of substantially 44 mg H2O / liter of air.

[0026] Alternatively, the desired output is a target absolute humidity.

[0027] Alternatively, the desired output is a target temperature and relative humidity.

[0028] Preferably, the respiratory assistance system also has user controls configured to allow a user to set a desired user-set flow rate of gas through the system.

[0029] Preferably, the respiratory assistance device further comprises a control unit configured to, in use, receive a flow of gas from a remote centralized source, said control unit being located in a gas pathway between said centralized source and said humidifier unit, said control unit receiving said flow of gas and delivering said flow to said humidifier unit via a gas connection pathway between said humidifier unit and said control unit, and said user control configured to enable a user to set a desired user set flow rate through said control unit.

[0030] Preferably, the control unit further comprises a venturi configured to mix the flow of gas from the centralized source with atmospheric gases before feeding them to the humidifier unit.

[0031] Preferably, the gas source is a blower unit that is fluidly connected to the humidifier unit in use, the blower unit having an adjustable variable speed fan unit configured to supply a flow of the gas to the humidifier unit over a predetermined range of flow rates, and a user control configured to allow a user to set a desired user-set flow rate, and the controller configured to control power to the blower unit to produce the user-set flow rate.

[0032] Preferably, the humidifier unit is a humidifier chamber having a heater base, and the breathing assistance system further comprises a heating plate configured to supply thermal energy to the heater base to heat the contents of the humidifier chamber; The respiratory assistance system further comprises a heating plate temperature sensor configured to measure the temperature of the heating plate and provide the temperature measurement to the controller, and the controller determines the control output by evaluating all of the measured temperature and the measured flow rate.

[0033] Preferably, if the chamber gas outlet temperature reaches a target value and the corresponding heater plate temperature is higher than a set value stored in the controller's memory for a given preset time, the controller assesses that the humidifier unit is experiencing high convective heat loss and determines the control output according to a modified or different rule set, formula or look-up table.

[0034] Preferably, the controller is further configured to measure the power drawn by the heating plate over a given preset time period, and if the power draw is higher than a value stored in the memory of the controller, the controller assesses that the humidifier unit is experiencing high convective heat loss and determines the control output according to a modified or different control algorithm, formula or look-up table.

[0035] Preferably, the controller is further configured to measure the power drawn by the heating plate over a given preset time period and compare it to a pre-stored set of values ​​stored in a memory of the controller, the controller applying an inversely linear correction factor if the measured power draw is not substantially similar to the pre-stored set of values.

[0036] Preferably, the measured data value and the stored data value are within ±2%.

[0037] Preferably the ambient temperature sensor is located at or near the inlet port so as to measure the temperature of the gas substantially as it enters the humidifier unit.

[0038] Alternatively, the ambient temperature sensor is configured to measure a pre-entry temperature of the gas substantially as it enters the respiratory assistance system, and the controller applies a correction factor to the pre-entry temperature.

[0039] Preferably, the controller is configured to receive at least the user set flow rate and the actual flow rate data from the flow probe or flow sensor, the controller having a coarse control parameter and a fine control parameter, the controller compares the user set flow rate with the actual flow rate, the controller uses the fine control parameter to adjust the output of the fan to match the actual flow rate as long as the actual flow rate matches the user set flow rate within a tolerance range, the value of the tolerance range being stored in the controller, and if the difference between the user set flow rate and the actual flow rate is outside the tolerance range, the controller uses the coarse control parameter to adjust the output of the fan to match the actual flow rate to the user set flow rate.

[0040] Preferably, the coarse control parameter is a first PID filter and the fine control parameter is a second PID filter.

[0041] Alternatively, the controller may further include a compensation filter, a low-pass filter, a high-pass filter, and a PID filter, wherein a signal indicative of the actual flow rate from the flow probe is passed through the low-pass filter and the high-pass filter in parallel, the low-pass filter generating a low-pass output signal, the high-pass filter generating a high-pass output signal that passes through the compensation filter, the low-pass output signal being subtracted from the user-set flow rate signal and sent to the PID filter, the output signal from the PID filter and the output signal from the compensation filter being added and compared with the user-set flow rate, and if the difference between the added value of the output signals and the user-set flow rate is outside a preset tolerance range contained in the memory of the controller, the controller adjusts the output of the fan using the coarse control parameters to cause the actual flow rate to match the user-set flow rate.

[0042] Alternatively, the controller is configured to receive at least the user set flow rate and the actual flow rate data from the flow probe, the controller having a coarse control parameter and a fine control parameter, the controller compares the user set flow rate with the actual flow rate, the controller uses the fine control parameter to adjust the output of the fan to match the actual flow rate as long as the actual flow rate matches the user set flow rate within a tolerance range, the value of the tolerance range is stored in the controller, and if the difference between the user set flow rate and the actual flow rate is outside the tolerance range, the controller uses the coarse control parameter to adjust the output of the fan to match the actual flow rate to the user set flow rate.

[0043] Alternatively, the controller may further include a compensation filter, a low-pass filter, a high-pass filter, and a PID filter, wherein a signal indicative of the actual flow rate from the flow probe is passed through the low-pass filter and the high-pass filter in parallel, the low-pass filter generating a low-pass output signal, the high-pass filter generating a high-pass output signal that passes through the compensation filter, the low-pass output signal being subtracted from the user-set flow rate signal and sent to the PID filter, the output signal from the PID filter and the output signal from the compensation filter being added and compared with the user-set flow rate, and if the difference between the added value of the output signals and the user-set flow rate is outside a preset tolerance range contained in the memory of the controller, the controller adjusts the output of the fan using the coarse control parameters to cause the actual flow rate to match the user-set flow rate.

[0044] Preferably the controller also includes a feedback signal from the fan to the compensation filter, and the input signals to the fan unit include the output signal from the PID filter and the output signal from the compensation filter.

[0045] Preferably, the actual flow rate data is measured by the at least one flow probe, the actual flow rate data is subtracted from the user set flow rate data, and a signal indicative of the difference is sent to both the first PID filter and the second PID filter, and the controller uses the output of either the first PID filter or the second PID filter to adjust the output of the fan to match the actual flow rate to the user set flow rate.

[0046] Preferably, the flow rate is sampled at a sample rate of 20 to 30 Hz.

[0047] Even more preferably, the sample rate is 25 Hz.

[0048] Preferably, the actual flow data is passed through a first low pass filter before being subtracted from the user set flow data.

[0049] Preferably, the first low pass filter has a cutoff frequency high enough to pass intra-breath flow fluctuations without attenuation.

[0050] Preferably, the actual flow rate data is also passed through an averaging filter.

[0051] Preferably, the averaging filter is a second low-pass filter.

[0052] Preferably, the output of the averaging filter is fed back to the controller instead of the direct flow data from the flow probe.

[0053] Preferably, the controller receives the average flow rate from the averaging filter and compares it with the user set flow rate, and the controller adjusts the flow rate to the user set flow rate using coarse control parameters if the difference between the user set flow rate and the actual flow rate is outside a tolerance range stored in the controller's memory, and the controller uses fine control parameters if the difference is within the tolerance range.

[0054] Preferably, the tolerance is 3 L / min.

[0055] Alternatively, the tolerance is a variable amount, which is a percentage of the actual flow rate as measured by the flow probe.

[0056] Preferably, the percentage value is 1 to 3%.

[0057] Alternatively, the percentage value is 3 to 5%.

[0058] Alternatively, the percentage value is 5 to 7%.

[0059] Alternatively, the percentage value is 7 to 10%.

[0060] Preferably, the control unit is configured to receive oxygen as the gas from the remote source, the at least one flow probe is configured to measure the flow rate of the gas received from the remote source and send the flow rate measurement to the controller, the controller is configured to determine the flow rate of the gas from atmosphere based on known system dimensions, and the controller determines the percentage of oxygen in the admixed air from the flow rate and the system dimensions.

[0061] Preferably, the control unit is configured to receive oxygen as the gas from the remote source, the at least one flow probe is configured to measure the flow rate of the gas received from the remote source, and the system further includes a second flow probe configured to measure the flow rate of the gas received from the atmosphere, and the controller determines the percentage of oxygen in the admixed air from the flow rate.

[0062] Preferably the system is configured so that when a user changes the user set flow rate, the oxygen fraction is changed accordingly.

[0063] Preferably, the system further comprises a display configured to indicate the chamber outlet dew point temperature.

[0064] Alternatively, the display is configured to indicate the absolute humidity level of the gas exiting the chamber.

[0065] Alternatively, the display is configured to show absolute humidity and chamber outlet dew point temperature.

[0066] Preferably, the respiratory assistance system also comprises a humidity sensor configured to measure humidity of atmospheric gases entering the respiratory assistance system, the controller receiving data relating to the measured humidity; The controller also uses data regarding the measured humidity to determine the control output.

[0067] Preferably, the system also comprises a pressure sensor configured to measure the pressure of atmospheric gas entering the respiratory assistance system, the controller receiving data relating to the measured pressure; The controller also uses data regarding the measured pressure to determine the control output.

[0068] Preferably, the system further includes a supply conduit and a user interface arranged to receive the heated humidified gas from the outlet port for supply to the user in use, the supply conduit having a heating wire configured to heat gas within the conduit.

[0069] Preferably, the respiratory assistance system further comprises a patient end temperature sensor configured to measure the temperature of the gas flow at or near the patient, the measured patient end temperature being fed back to the controller which adjusts the power to the heating wire to maintain the temperature of the gas flow in the conduit.

[0070] Preferably, the controller receives the measured patient-end temperature data, and the controller also uses the data relating to the measured patient-end temperature data to determine the control output.

[0071] Preferably, the controller is further configured to measure the power draw by the heating wire over a given preset time period, and if the power draw by the heating wire is higher than a value stored in the memory of the controller, the controller assesses that the humidifier unit is experiencing high convective heat loss and determines the control output according to a modified or different rule set, formula, or look-up table.

[0072] The invention may also be said to reside generally in the parts, elements and features described or shown in the specification of this application, individually or collectively, and in any and all combinations of any two or more of said parts, elements and features, and where specific integers known to be equivalent in the art to which this invention pertains are described herein, such known equivalents are deemed to be incorporated herein as if individually set forth.

[0073] The term "comprising" as used herein means "comprising at least a part of," i.e., when interpreting statements herein that include this term, all features preceded by this term in each statement must be present, although other features may also be present.

[0074] A preferred form of the invention will now be described with reference to the accompanying drawings. [Brief explanation of the drawings]

[0075] [Figure 1] 1 shows a schematic diagram of a user receiving humidified air from a modular blower / humidifier respiratory assistance system of a known prior art type. [Figure 2a] 1 shows a schematic diagram of a user receiving humidified air from one variation of the present invention, the user wearing a nasal mask receiving air from a modular blower / humidifier respiratory assistance system. [Figure 2b] 1 shows a schematic diagram of a user receiving humidified air from another variation of the present invention, where the user is wearing a nasal cannula to receive air from a modular blower / humidifier respiratory assistance system. [Figure 3] 1 shows a schematic diagram of a user receiving humidified air from another variation of the present invention, where the user is wearing a nasal mask and receiving air from an integrated blower / humidifier respiratory assistance system. [Figure 4]1 shows a schematic diagram of a user receiving humidified air from another variation of the present invention, where the user is wearing a nasal cannula and the breathing assistance system receives gases from a centralized source via a wall inlet and provides it to a control unit which provides the gases to a humidifier chamber downstream of and in series with the control unit. [Figure 5] FIG. 4 shows a graphical representation of a data set used in the respiratory assistance system of FIG. 2 or FIG. 3, the graph showing curves representing seven different constant flow rates over a range of ambient air temperatures, and a range of target temperatures for a given flow rate and ambient temperature, the data being loaded into the system controller at the time of use. [Figure 6] 5 shows a graphical representation of an alternative data set for use in the respiratory assistance system of FIG. 2, FIG. 3 or FIG. 4, this alternative data being compared to or used in conjunction with equivalent data from a table graphically shown in FIG. 5, with graph lines showing curves representing two different steady-state flow rates for a range of ambient air temperatures when there is little ambient air movement, as well as a range of target temperatures for a given flow rate and ambient temperature, and the same steady-state flow rate over a range of ambient temperatures when convective heat loss from the humidification chamber is high, the data from the look-up table being loaded into the system controller at the time of use. [Figure 7] FIG. 1 shows a schematic diagram of some of the connections between a controller suitable for use in the respiratory assistance system of FIG. 2, 3 or 4 and other components of a preferred form respiratory assistance system as shown in FIG. 2, 3 or 4. [Figure 8a] 5 shows graphs of experimental data measuring flow rate, dew point, and chamber outlet or chamber discharge temperature under high ambient temperature conditions using a respiratory assistance system such as that shown in FIG. 2, FIG. 3 or FIG. 4. [Figure 8b] 8a shows a graph similar to FIG. 8a for low ambient temperature conditions. [Figure 9]FIG. 4 shows a schematic diagram of a portion of the programming for a control system used by the respiratory assistance system of FIG. 2 or 3 to adjust the flow rate through the system so that the flow rate remains substantially constant as the geometry of the system changes, the control mechanism including two PID control filters, one for large deviations from the set flow rate and one for small deviations, and the control mechanism also including an averaging filter in the feedback path that compares the measured flow rate with the set flow rate. [Figure 10a] FIG. 4 shows a schematic diagram of part of the programming for a control system used by the respiratory assistance system of FIG. 2 or FIG. 3 so that mean flow and intra-breath flow can be controlled with a low-pass filter, which is also incorporated as part of the programming and used to determine whether to use coarse or fine flow control. [Figure 10b] FIG. 4 shows a schematic diagram of a portion of the programming for a control system incorporating dual feedback loops to improve flow control in the systems of FIG. 2 or FIG. 3, which allows for separate control filters that can control mean flow and intra-breath flow. [Figure 11] A schematic diagram of the system is shown in FIG. 10b, which adds an additional feedback path from the flow generator to a compensation filter to help compensate for non-linearities in the breathing system shown in FIGS. [Figure 12] Graphs of motor speed for several example interfaces are shown, demonstrating that humidity can be controlled to appropriate levels for either the mask or nasal cannula (mask and nasal cannula require different motor speeds, and the system remains stable at both high and low speeds, providing appropriate humidity levels). DETAILED DESCRIPTION OF THE INVENTION

[0076] Schematic diagrams of a user 2 receiving air from a modular assisted breathing unit and humidifier system 1 according to a first variant or embodiment of the present invention are shown in Figures 2a and 2b. System 1 provides a pressurized flow of heated and humidified gas to user 2 for therapeutic purposes (e.g., to reduce the incidence of obstructive sleep apnea, provide CPAP therapy, or provide therapeutic humidification). System 1 is described in more detail below.

[0077] The assisted breathing unit or blower unit 3 has an internal compressor unit, a flow generator or fan unit 13, which may commonly be referred to as a flow control mechanism. Air from the atmosphere enters the blower unit 3 housing through an atmospheric inlet 40 and is drawn through the fan unit 13. The power output of the fan unit 13 is adjustable—the fan speed is variable. The pressurized gas flow exits the fan unit 13 and blower unit 3 and travels through a connecting conduit 4 to the humidifier chamber 5, where it enters the humidifier chamber 5 through an inlet or inlet port 23. The humidifier chamber 5 contains a predetermined amount of water 20 during use. In a preferred embodiment, during use, the humidifier chamber 5 is located on top of a humidifier base unit 21, which includes a heating plate 12. When power is applied to the heating plate 12, the bottom surface of the chamber 5 is heated, which in turn heats the contents of the chamber 5. As the water in the chamber 5 is heated, it vaporizes, and the gas in the humidifier chamber 5 (above the surface of the water 20) becomes heated and humidified. The gas stream entering the humidifier chamber 5 via the inlet port 23 passes over heated water (or through these heated humidifiers—as applicable for larger chambers and flow rates) and becomes heated and humidified accordingly. The gas stream then exits the humidifier chamber 5 via the outlet or outlet port 9 and enters the supply conduit 6. When referring to a "humidifier unit" in this specification in connection with the present invention, it should be interpreted to mean at least the chamber 5 and, if appropriate, the base unit 21 and heating plate 12. The heated humidifier gas is routed along the length of the supply conduit 6 and provided to the patient or user 2 via the user interface 7. The conduit 6 may be heated, such as via a heating wire (not shown), which may help prevent rainout. The user interface 7 shown in FIG. 2a is a nasal mask that surrounds and covers the nose of the user 2. However, it should be noted that a nasal cannula (as shown in FIG. 2b), a full-face mask, a tracheal attachment, or any other suitable user interface may be used in place of the nasal mask shown. A centralized controller or control system 8 is located either in the blower casing (controller 8a) or in the humidifier base unit (controller 8b).In this type of modular system, separate blower controller 8a and humidifier controller 8b are preferably used, and most preferably, controllers 8a, 8b are connected (e.g., by cable) so that they can communicate with each other during use. Control system 8 receives user input signals via user controls 11 located either on humidifier base unit 21, blower unit 3, or both. In a preferred embodiment, controller 8 also receives inputs from sensors located at various locations throughout system 1. FIG. 7 shows a schematic diagram of some of the inputs to and outputs from controller 8. It should be noted that not all possible connections and inputs and outputs are shown—FIG. 7 represents some of the connections and is representative. The sensors and their locations are described in more detail below. In response to user input from controls 11 and signals received from the sensors, control system 8 determines control outputs, which in a preferred embodiment send signals to adjust the power to humidifier chamber heating plate 12 and the speed of fan 13. The programming that determines how the controller determines the control outputs is described in more detail below.

[0078] A schematic diagram of a user 2 receiving air from an integrated blower / humidifier system 100 according to a second aspect of the present invention is shown in FIG. 3. This system operates in a manner very similar to the modular system 1 shown in FIG. 2 and described above, except that the humidifier chamber 105 is integrated with the blower unit 103 to form an integrated unit 110. A pressurized gas flow is provided by a fan unit 113 located inside the casing of the integrated unit 110. Water 120 in the humidifier chamber 105 is heated by a heating plate 112 (which in this embodiment is an integral part of the structure of the blower unit 103). Air enters the humidifier chamber 105 through an inlet port 123 and exits the humidifier chamber 105 through an outlet port 109. The gas flow is provided to the user 2 via a supply conduit 106 and an interface 107. A controller 108 is housed within the outer shell of the integrated unit 100. User controls 111 are located on the exterior surface of unit 100 .

[0079] A schematic diagram of a user 2 receiving air from another form of respiratory assistance system 200 is shown in Figure 4. System 200 can generally be characterized as a remote source system, receiving air from a remote source via a wall inlet 1000. Wall inlet 1000 is connected via an inlet conduit 201 to a control unit 202, which receives gases from inlet 1000. Control unit 202 has sensors 250, 260, 280, 290, which measure the humidity, temperature, and pressure, as well as flow rate, of the incoming gas stream, respectively. The gas stream is then provided to a humidifier chamber 205, where it is heated and humidified in the same manner as outlined above, and provided to the user. It should be noted that when referring to a "humidifier unit" in reference to a remote source system such as system 200, it should be construed to mean incorporating control unit 202—gas from a remote source may be connected directly to the inlet or via control unit 202 (such as for pressure reduction), but the control unit and humidifier chamber should be construed as belonging to the overall "humidifier unit." If desired, system 200 can have a centralized source for O2 or can provide O2 or an O2 fraction to the user by blending ambient air with O2 coming from a centralized source, such as via a venturi 90 located in control unit 202. Control unit 202 also preferably has a valve or similar mechanism that acts as a flow control mechanism for regulating the flow rate of gas through system 200.

[0080] Sensor The modular and integrated systems 1, 100 and 200 shown in Figures 2, 3 and 4 have sensors located at various locations throughout the system, which are described below in relation to the respiratory assistance system 1.

[0081] The preferred form of the modular system 1 as shown in Figure 2 has at least the following sensors in the following preferred locations: 1) An ambient temperature sensor 60 located in, near, or on the blower casing and positioned or configured to measure the temperature of incoming air from the atmosphere. Most preferably, the temperature sensor 60 is located in the gas stream after (downstream from) the fan unit 13 and as close as possible to the intake or entrance to the humidifier chamber. 2) A humidifier unit outlet port temperature sensor 63 located at the chamber outlet port 9 or at the device end (opposite the patient end) of the supply conduit 6. The outlet temperature sensor 63 is positioned or configured to measure the temperature of the gas flow as it exits the chamber 5 (in either arrangement, the outlet port temperature sensor 63 may be considered proximal to the chamber outlet port 9).

[0082] Similarly, sensors are located in substantially the same positions in the integrated system 100 shown in Figure 3 and the system 200 of Figure 4. For example, for the integrated system of Figure 3, the ambient temperature sensor 160 is located in the gas flow within the blower casing just prior to (upstream of) the humidifier chamber inlet port 123. The chamber outlet port temperature sensor 163 is located at one of the chamber outlet ports 109 and positioned to measure the temperature of the gas flow as it exits the chamber 105 (it is conceivable that in either arrangement, the outlet port temperature sensor 163 would be proximal to the chamber outlet port 109). Alternatively, for either embodiment, the sensor could be located at the device end (opposite the patient end) of the supply conduit 106. A similar designation—ambient temperature sensor 260, fan unit 213, chamber outlet port temperature sensor 263 located at chamber outlet port 209, etc.—is used for the respiratory assistance system shown in Figure 4.

[0083] The respiratory assistance system 1 (and 100, 200) also preferably includes a heater plate temperature sensor 62 located adjacent to the heater plate 12, positioned to measure the temperature of the heater plate. One or more respiratory assistance systems including a heater plate temperature sensor are preferred, as the sensor provides a direct indication of the condition of the heater plate. However, having a heater plate temperature sensor for one or more systems is not absolutely necessary to practice the invention.

[0084] Most preferably, the system also includes a flow probe—flow probe 61 in system 1—located upstream of fan unit 13 and positioned to measure gas flow. The preferred location for the flow probe is upstream of the fan unit, but the flow probe may be located downstream of the fan or in any other suitable location. Furthermore, while the flow probe preferably forms part of the system, it is not essential to the practice of the invention that the flow probe be part of the system.

[0085] A detailed description will now be given of the layout and operation of respiratory assistance system 1. The operation and layout of systems 100 and 200 are substantially the same and will not be described in detail unless necessary.

[0086] For the respiratory assistance system 1, all sensor readings are fed back to the control system 8. The control system 8 also receives input from user controls 11.

[0087] Further alternative additional sensors and their layouts are described in further detail below.

[0088] Humidity Control Method In a most preferred embodiment, control system 8 has at least one data set preloaded into the controller. The data forming the data set is pre-measured or pre-calculated under controlled conditions (e.g., a test area or laboratory) for a particular system configuration with specific components (e.g., data collected using System 1 or System 100 or System 200 with each specific blower and humidifier unit). Data is collected under a range of conditions that would typically be encountered in use, and the pre-measured (pre-configured) data is then loaded into controller 8 as integrated software or hardware for production systems, or as data to be used in, for example, fuzzy logic algorithms for humidity control.

[0089] A data set particularly suitable for use with system 1 is shown graphically in Figure 5. The x-axis represents a range of ambient temperatures, 18°C ​​to 35°C. In use, the ambient temperature of the gases prior to or upstream of chamber 5 in the respiratory assistance system is measured by ambient temperature sensor 60, and the ambient temperature data is relayed to controller 8. Most preferably, temperature sensor 60 measures the ambient temperature of the gases just before they enter chamber 5. To generate the data set, a typical system 1 is placed in an environment where the ambient temperature can be maintained at a known, constant level over a range of temperatures.

[0090] In use, in a preferred form, the user selects the flow rate by adjusting control 11. Controller 8 receives input from user control 11 and adjusts the fan speed to substantially match the requested flow rate (either by changing the fan speed to a speed known to substantially correspond to the required flow rate for the particular breathing circuit configuration, or by measuring the flow rate using flow probe 61 and adjusting the flow rate to the required or desired level using a feedback mechanism via controller 8). The graph of FIG. 5 shows seven different constant flow rates for seven different constant fan speeds. Lines 70-76 correspond to different flow rates as follows: Line 70 - 15 liters / minute flow rate; Line 71 - 20 liters / minute flow rate; Line 72 - 25 liters / minute flow rate; Line 73 - 30 liters / minute flow rate; Line 74 - 35 liters / minute flow rate; Line 75 - 40 liters / minute flow rate; and Line 76 - 45 liters / minute flow rate.

[0091] The Y-axis indicates the range of target chamber temperatures. That is, for any given fan speed (flow rate and pressure) and any given ambient temperature, there is an "optimal" or "ideal" target outlet temperature for the gas above the water 20 in chamber 5—the target outlet temperature as shown on the Y-axis. This "ideal" temperature is the dew point temperature for a given constant flow rate and constant ambient temperature. That is, the temperature at which the gas can exit chamber 5 at the required saturation (required humidity level) and then be delivered to user 2 at the correct temperature and pressure for effective treatment. As the gas exits chamber 5, the gas temperature is measured by chamber outlet port temperature sensor 63. Controller 8 is configured to receive the temperature data measured by chamber outlet temperature sensor 63 and data regarding the temperature of the gas entering chamber 5 (as measured by ambient temperature sensor 60). As outlined above, the flow rate is preset to a constant value, so controller 8 already "knows" the constant flow rate. Because the controller 8 "knows" both the flow rate and the ambient temperature, it can determine, for example, an "ideal" target outlet temperature from a range built into a pre-loaded data set (e.g., the data shown graphically in FIG. 5). The controller 8 then compares the measured chamber outlet temperature to the "ideal" target chamber temperature for a given known flow rate and ambient temperature. If the measured target temperature does not match the "ideal" target value, the controller 8 generates or determines an appropriate control output and adjusts the power to the heating plate accordingly, either increasing power to increase the temperature of the gas in the chamber 5 or decreasing power to decrease the gas temperature. By adjusting power in this manner, the controller 8 causes the measured temperature at the outlet or outlet port to match the required target temperature. In a preferred embodiment, the mechanism by which the controller 8 adjusts the output characteristic is via a proportional-integral-derivative controller (PID controller) or any one of many similar mechanisms known in the art.

[0092] The controller may also generate or determine a suitable control output, for example, by using a fuzzy logic control algorithm loaded into the controller 8 or a mathematical formula that utilizes the measured temperature and flow rate data as variables in the formula.

[0093] Example equations are shown below, which generally correspond to the data shown graphically in Figure 5 for a range of flow rates from 15 to 45 liters / minute.

[0094] [Table 1]

[0095] Example: User 2's treatment regimen specifies a certain flow rate and pressure, e.g., 45 liters / minute. The speed of blower or fan unit 13 is set (via control 11) to deliver gas at this flow rate. If flow probe 61 is part of the system, this flow rate can be dynamically adjusted by feeding back real-time flow readings from flow sensor or flow probe 61 to controller 8, which then adjusts the fan speed as needed. This can be done via a PID controller, or the like, which may comprise part of control 8, as described in more detail below. Preferably, the flow rate is dynamically adjusted and monitored. However, if a flow probe is not part of the system, the flow rate is estimated or calculated from the fan speed and is assumed to be constant for a given fan power level. A flow rate of 45 liters / minute is represented by line 76 on the graph in FIG. 5. In this example, user 2 is sleeping in a bedroom where the ambient temperature is substantially 30°C. Air at 30°C enters the respiratory aid and warms slightly as it passes through the fan and connecting passages in the casing. The temperature of the air just before entering the humidifier chamber is measured by ambient temperature sensor 60. With the ambient temperature and flow rate known, controller 8 can calculate the required target temperature, as shown on the Y-axis of the graph in FIG. 5. For this particular example, it can be seen that the chamber target temperature is 42°C. Chamber exit temperature sensor 63 measures the temperature of the gas as it exits chamber 5 (the gas temperature at the exit point may be substantially the same temperature as the gas in the space above the chamber contents 20). If the gas temperature as measured by chamber exit temperature sensor 63 is not 42°C, controller 8 determines and generates an appropriate control output, which alters the power to heating plate 12 accordingly. As noted above, any changes in the ambient temperature as measured by ambient temperature sensor 60 are fed back to controller 8, which then alters the output accordingly, such as using a PID control algorithm.

[0096] One advantage of this system over systems disclosed in the prior art is that in prior art systems, as the ambient temperature approaches the target dew point temperature, the heating plate draws less power and the temperature of the water in the humidifier chamber does not increase as much. This can lead to the gas not being fully saturated when it leaves the chamber. The method outlined above overcomes this problem by using values ​​for the ambient temperature, or more preferably the chamber inlet temperature, the chamber outlet temperature, and the flow rate for systems of known configuration, to produce a target chamber outlet temperature that is considered to be substantially the best or "ideal" temperature for gas saturation and delivery to the user for a set flow rate and specific ambient temperature.

[0097] Another advantage is that the system 1 can accurately control humidity levels without requiring a precision humidity sensor.

[0098] Another advantage is that when gas is supplied to the humidifier chamber from a compressor or blower and the inlet gas temperature is high, the chamber temperature can be accurately compensated to achieve the desired dew point. This is particularly advantageous when the air or gas entering the chamber is warm, and also in situations where temperature increases with increasing flow rate. During operation, any flow generator will cause an increase in air temperature between the atmospheric inlet and outlet. This temperature change may be more pronounced in some flow generators. The temperature of system components may change between when the system is first started and some time thereafter (e.g., over a reasonably long period of time, such as one to two hours). That is, the system will take some time to reach steady-state operation because system components may heat up as the system operates. If such components are located in or adjacent to the air path between where the air enters the system and where it enters the chamber, the temperature of the gas will change—there will be some heat transfer from such components to the gas as it travels along that path. It will therefore be appreciated that measuring the temperature of the gas as it enters the chamber will reduce the likelihood of introducing temperature measurement errors into the control calculations, as the temperature of the gas at the point of entry into the system may differ from the temperature of the gas at the point of entry into the chamber when the system has reached steady state operation. However, while measuring the gas temperature at the point of entry into the chamber is generally most preferred, it has been found that measuring ambient gas temperature is also acceptable in most cases.

[0099] The above method is substantially similar for the integrated device 100 or device 200; however, because the devices have slightly different configurations, the pre-set or pre-measured values ​​pre-loaded into the look-up table may be different. Alternatively, the user may select the pressure change rate (and the data set may be modified for pressure values ​​rather than flow values).

[0100] The above-described apparatus and method have been found to provide improved control of gas properties at the point of delivery to a user 2 compared to systems and methods known in the prior art. The above-described systems and methods go some way toward overcoming the problems of prior art methods and apparatus. The above-described systems and methods control the output characteristics with the goal of producing fully saturated gas at the chamber outlet - i.e., the gas leaving the chamber is at or very close to the dew point for a given temperature. The system output characteristics are modified relative to the target dew point temperature, not the chamber outlet temperature.

[0101] If the system has a user display, it can display dew point (or absolute humidity, or both dew point and absolute humidity) rather than chamber outlet temperature. As outlined above, chamber outlet temperature can be an inaccurate indicator of the humidity level of the gas exiting the humidifier chamber. This has been experimentally verified with a modular system substantially similar to that of FIG. 2. Data was measured over a full range of flow rates, from about 15 liters / minute to about 45 liters / minute. Chamber outlet temperature and dew point at the chamber outlet formed part of the measured data. Data was measured for one substantially constant ambient temperature (however, to eliminate uncertainty, this was also measured throughout the test). The collected data are graphed in FIGS. 8a and 8b, which show flow rate on the y-axis versus time on the x-axis. In the graph of FIG. 8a, data was collected for a high ambient temperature condition. The measured flow rate is represented on the graph by point 801. Line 802 represents the ambient temperature. Line 803 represents the measured chamber outlet temperature. Line 804a shows the measured dew point (measured Td). Line 805a shows the displayed dew point (displayed Td). As can be seen, the ambient temperature remains substantially the same (rising slightly over time). The chamber outlet temperature varies from 39°C to 41°C. The measured actual outlet dew point fluctuates around a substantially constant level. However, these increases, decreases, or fluctuations occur primarily during flow rate transitions. The displayed dew point remains constant for the entire flow rate range.

[0102] FIG. 8b shows a graph similar to FIG. 8a, but for conditions of low ambient temperature (i.e., 18-20°C) and flow rates ranging from 45 to 15 liters / minute. The chamber outlet temperature is not displayed because it is very close to the dew point. Note that in the preferred embodiment, the dew point is displayed only when the temperature reaches 30°C. If the humidity is too low, the patient should not use the humidifier. It can be seen that fluctuations in ambient temperature cause transient behavior in the measured dew point. However, despite this, it can be seen that the displayed dew point (displayed Td), as shown by line 805b, "tracks" the actual dew point (measured Td, as shown by line 804b) quite consistently. Note that at 12 minutes in the graph of FIG. 8b, the flow rate temporarily changed from 45 to 15 liters / minute, causing a small overshoot. At higher flow rates of 45 to 40 liters / minute, the heating plate was unable to maintain the target temperature, and the humidity output dropped below Td 37°C. This is reflected in the displayed dew point.

[0103] Further preferred variations and embodiments that add improved control of gas properties will now be described.

[0104] Further Alternative Sensor Layouts In a variation of the apparatus and method outlined above, the system (System 1 or System 100 or System 200) also has additional sensors as outlined below.

[0105] 1) The patient-end temperature sensor 15 (or 115 or 215) is located at the patient-end of the supply conduit 6 (or in or on the interface 7), i.e., at or near the patient or point of delivery. As read herein, "patient-end" or "user-end" should be interpreted to mean near the user-end of a supply conduit (e.g., supply conduit 6) or in or on the patient interface 7. This applies unless a specific location is otherwise specified. In either arrangement, the patient-end temperature sensor 15 can be considered to be at or near the user or patient 2. The reading of the patient-end temperature sensor 15 is fed back to the controller 8 and is used to ensure that the temperature of the gas at the point of delivery substantially matches the target patient temperature of the gas at the chamber outlet (the target patient temperature is the target dew point temperature at the chamber outlet). If the patient-end temperature sensor 15 reading indicates that the gas temperature is dropping as the gas travels down the length of the supply conduit 6, the controller 8 can increase power to the conduit heating wire (shown as wire 75 in FIG. 2a—not shown, but present in the alternative preferred form respiratory assistance systems 200 and 400 shown in FIGS. 3 and 4, and in the system shown in FIG. 2b) to maintain the gas temperature. If the power available to the conduit heating wire 75 is not enough to make the gas at the point of delivery equalize with the dew point temperature at the chamber outlet 9, the controller 8 reduces the target chamber outlet temperature (below the dew point temperature). The controller 8 reduces the chamber outlet temperature to a level at or near the maximum gas temperature the conduit heating wire can deliver to the patient, as measured by the patient-end temperature sensor 15. The controller 8 is loaded with a predetermined data set and uses that data (similar to that shown in graphical form in FIG. 5) to adjust the power to the heating plate, or the conduit heating wire, or both. For a constant flow level and a measured ambient temperature (which may vary) as measured by ambient temperature sensor 60, there exists an ideal patient-end temperature. Controller 8 adjusts the power output of one or more of the heating plate and conduit to cause the temperature at the patient end of the conduit (as measured by temperature sensor 15) to match this ideal temperature.

[0106] The accuracy of the above method can be further improved if other conditions of the gas in the system—gas conditions—are known. For example, if the humidity level of the inlet gas to the blower or the gas pressure of the inlet gas is known. To achieve this, alternative embodiments of systems 1, 100, and 200 described above can also have a gas condition sensor (e.g., a humidity sensor or pressure sensor) located in the inlet gas path. For modular system 1, humidity sensor 50 is shown located proximal to atmospheric inlet 40. For integrated system 100, this is shown as humidity sensor 150 (and others). Similar to the control method outlined above, controller 8 is pre-loaded with a humidity level data set. For a constant flow rate and a known ambient or external humidity level, there is an ideal gas temperature at the chamber outlet (or at the point of delivery to the user). The data set includes such ideal values ​​for a given range of ambient humidity and flow rate, similar to the values ​​shown in graphical form in FIG. 5. The controller 8 adjusts the power output of the heating plate, or heating wire, or both, to match the measured chamber exit temperature (or patient end temperature) to an "ideal" temperature retrieved from a data set in the controller's memory. Similarly, if the pressure level of the incoming gas to the humidification chamber blower is known, a pressure sensor can be placed in the incoming gas path to the humidification chamber to improve the accuracy of the above method (for a modular system, pressure sensor 80 is shown in the incoming gas path in FIG. 2; for an integrated system, pressure sensor 180 is shown in the incoming gas path in FIG. 3; for a centralized gas source system, pressure sensor 280 is shown in the incoming gas path in FIG. 4). It should be noted that if the data from the data set is plotted graphically for a constant flow rate, ambient temperature, and another gas condition (e.g., humidity or pressure), the graph needs to be plotted on three axes—X, Y, and Z—the graph is "three-dimensional" when plotted.

[0107] Further variations on the layout or construction of the respiratory support system are outlined below: In some embodiments, the gas is intended to exit the chamber at 41°C. As the gas travels along the main supply pipe or conduit towards the interface, it heats up from 41°C at the chamber exit to 44°C at the end of the main supply hose 6. At the end of the main supply hose, the gas enters a thin, unheated secondary supply hose - for example 6a as shown in Figure 2b. As the gas passes through secondary hose 6a, it cools from a temperature of 44°C, to 37°C by the time it enters the user interface 7. 37°C is considered to be the optimal supply temperature for the patient.

[0108] We now describe further refinements of the method outlined above, with or without additional sensors.

[0109] Compensation for convective heat losses and gains in flow generators. As outlined in the Prior Art section, one problem known in the art is the accurate control of a system's output characteristics when there are many variables that can affect the output characteristics. One of the variables that has been found to affect gas output characteristics is convective heat loss from the humidifier chamber 5. This convection can be caused by natural factors, such as temperature gradients in a room—"natural or free convection"—or by forced movement of gas—"forced convection." Forced convection can be caused, for example, by a ventilation or air conditioning system. Convective cooling of the humidifier chamber can substantially affect the dew point temperature at the humidifier chamber outlet. Air flow over the exterior surface of a humidifier chamber—e.g., chamber 5 in system 1—can cause a drop in the temperature inside the chamber. To compensate for this, more power is required from the heating plate to raise the temperature of the contents of chamber 5. The output temperature at the chamber outlet is measured by outlet temperature sensor 63, and a temperature loss is "seen" by controller 8 when controller 8 registers a drop in temperature at the chamber outlet. The controller 8 can compensate by increasing the power to the heater plate 12 (with a corresponding increase in the heater plate temperature as measured by the heater plate temperature sensor 62). The effect of this increase in power is to increase the water-to-gas heat transfer rate and the water pressure of the gas in the chamber, resulting in an increase in the dew point temperature.

[0110] Evaporation of non-boiling water is governed by the Low Mass Transfer Rate Theory, which states that mass (water) transfer is directly related to heat transfer. Therefore, evaporation is governed by the temperature of the inlet gas (and, to a lesser extent, its humidity), the water temperature, flow rate, and pressure. Flow rate not only determines the gas flow rate over the water, but also the water transfer rate. For example, agitating the water (forced convection) increases evaporation. Evaporation rates are higher while the heater plate controller is in transition mode. Transition mode is characterized by larger temperature fluctuations within the heater plate, which can increase the Nusselt number and its mass transfer analog, the Sherwood number, thereby increasing water turbulence (free convection). This is more pronounced at high ambient temperatures, or more specifically, when the gas entering the humidifier is hot and the chamber outlet gas temperature is significantly higher than the dew point. Convective heat loss increases the dew point to near the gas temperature.

[0111] Instability is introduced into the control system when the chamber outlet temperature rises above the dew point. Any increase or decrease in flow rate or convective heat loss causes mass (water) transfer and subsequent rapid increase in gas humidity. This instability is illustrated in Figure 8a, where the measured dew point (804) of the high ambient air temperature cycles while the measured temperature at the chamber outlet (803) remains relatively stable.

[0112] This is a typical problem with humidity output control in respiratory support devices that incorporate both a flow generator and a humidifier (such as a CPAP blower, BiPAP, or non-invasive ventilation device—see, e.g., Figures 1, 2, and 3) and that typically have a target dew point of 31-32°C, rather than a dew point of 37°C, which is closer to body temperature (the high humidity associated with a 37°C dew point is typically used in high-flow therapy and invasive ventilation). The flow generator raises the chamber inlet temperature, several degrees above normal ambient temperature (22-24°C). The inlet temperature can get very close to or even exceed 31-32°C. Rising ambient (air) temperatures significantly exacerbate the problem. The increased chamber inlet temperature requires heating the air to approximately 36-41°C or even higher (depending on flow rate) to achieve a dew point of 31-32°C. The patient's physiological respiration or mechanical ventilation can also affect the flow within the humidification chamber and, consequently, the exposure time of the air within the chamber. All of these conditions combine to produce a variable humidity output at the chamber outlet. If the humidification chamber is exposed to the environment, which is usually the case in practice, convective heat loss can also significantly alter the humidity output.

[0113] Convective heat loss ("draft") is created by airflow over or around ventilation equipment, especially humidifier chambers. This can be particularly pronounced in designs where the chamber is at least partially exposed to the space being ventilated. Air flow velocities vary in magnitude, direction, and frequency. Mean air velocities ranging from less than 0.05 m / s up to 0.6 m / s, turbulence intensities ranging from less than 10% up to 70%, and velocity frequencies as high as 2 Hz have been identified in indoor occupied areas to contribute up to 90% of the measured standard deviation of velocity.

[0114] Convective heat loss can also be estimated by measuring the flow intensity or turbulence intensity (or both) across the chamber. This can be achieved using thermal, laser, or sonic anemometry, whereby the equipment (e.g., the humidifier base unit 21) is fitted with sensors to measure the flow or turbulence in or near the humidifier chamber 5.

[0115] For precise humidity control, it is desirable to compensate for convective heat loss. This compensation is more easily achieved if the controller 8 has the advantage of relying on one or more "convective compensation" data sets, or if the controller has the advantage of alternative "convective compensation" methods. The controller may be programmed with a fuzzy logic type rule-based system.

[0116] The data set graphically shown in Figure 5 is calculated under conditions of little or no convective heat loss. This data is suitable for use under conditions of low ambient air movement. In an alternative form or variation of the apparatus and method outlined above, the controller 8 switches to using alternative data as input when the convective heat loss reaches a certain level - for example, when the controller 8 senses a large step change in the heater plate temperature as measured by the heater plate temperature sensor 62. For example, the data may be used as input to a fuzzy logic control algorithm, one or more mathematical formulas, etc.

[0117] FIG. 6 shows some of the data used when, or if, ambient conditions change to "high convection" conditions during use—when, during use, there is airflow over the device, particularly the humidifier chamber, resulting in a change from low to high convection heat loss conditions. The alternative data in FIG. 6 is generated in the same manner as the table shown in FIG. 5 , but the pre-measured and pre-loaded conditions (flow rate and ambient temperature) are for a system where at least chamber 5 (or 105 or 205) is experiencing high levels of convection heat loss. The target temperature changes accordingly. FIG. 6 also shows some of the alternative data used in "high convection heat loss" conditions. Two curves 501 and 502 are shown, representing steady-state flow rates of 15 liters / minute (501) and 45 liters / minute (502). Similar to the data shown in FIG. 5 , a range of ambient temperatures (X-axis) and a range of target chamber outlet temperatures (Y-axis) for given steady-state flow rates and ambient temperatures are shown. For comparison purposes, two equivalent steady state flow rates (15 liters / minute and 45 liters / minute) from Figure 5 are also shown on this graph as line 503 (15 liters / minute) and line 504 (45 liters / minute). It can be seen that when the device is subjected to a "high flow rate" condition, the target chamber outlet temperature, as shown on the Y-axis, is lower than when the device is subjected to a "low draft" or low level of convective heat loss condition.

[0118] Similarly, alternative rule sets can be calculated and pre-loaded into the controller 8. The controller can switch between alternative fuzzy logic rule sets depending on ambient conditions as measured or assessed by one or more of the methods outlined above - for example, when convective heat loss reaches a particular level assessed by the controller 8 sensing a large step change in heater plate temperature as measured by the heater plate temperature sensor 62.

[0119] An estimate of heat loss is required for the controller 8 to evaluate whether to use data representing low or high convective heat loss. In a preferred embodiment, this is calculated from the power required at the heater plate 12 to maintain the correct chamber outlet temperature. The controller 8 is preloaded with data values ​​for heater plate power for known ambient temperatures and flow rates (or the controller utilizes a fuzzy logic rule set). The controller 8 evaluates whether the humidifier chamber is operating in a high or low convective heat loss condition and adjusts or modifies its control output accordingly (e.g., by modifying the operating conditions using a fuzzy logic rule set). The "highest convective heat loss" condition is defined as the condition when the controlled chamber outlet temperature is close to the dew point and further cooling the chamber will not increase humidity (fast moving air). The "low convective heat loss" condition is defined as the condition when the controlled chamber outlet temperature rises above the dew point temperature (still air). This is further explained as follows:

[0120] Typically, the controller 8 uses a "low convective heat loss" (still air, i.e., low convective heat loss) algorithm or rule set. If the chamber 5 is cooled externally by convection ("high convective heat loss"), humidity output will increase. The target chamber outlet temperature for the method outlined above (i.e., using the data shown in FIG. 5) uses lookup table data (or rule set) corresponding to the heater plate temperature range and / or heater plate duty cycle. If the chamber gas outlet temperature reaches the target value and the corresponding heater plate temperature is higher than a set limit for a given time, the controller 8 switches to data representing "high convective heat loss" (this switch may also be incorporated as one of the rules in a fuzzy logic rule set). It should be noted that if a system without a heater plate temperature sensor is used, the heater plate power duty cycle can be used instead of the heater plate temperature to calculate the switch point—i.e., when the target chamber gas outlet temperature is achieved and the power draw by the heater plate is higher than a set value for a given time).

[0121] The controller 8 reduces the target chamber gas outlet temperature by an appropriate amount.

[0122] Example: In a preferred embodiment, for system 100 of FIG. 3, if the chamber gas outlet temperature reaches a target value of 39.5°C and the corresponding heating plate temperature (or calculated power) is higher than 60-65°C for 5 minutes, controller 8 determines a control output to decrease the target chamber gas outlet temperature by 0.25°C.

[0123] This new value also has a corresponding new heater plate temperature and / or duty cycle (i.e., chamber gas outlet temperature 38.4°C and heater plate temperature 87°C). The target dew point temperature is then gradually decreased (via the fuzzy logic algorithm of the controller 8) until it has a corresponding appropriate heater plate temperature. If the heater plate temperature is significantly higher than the corresponding chamber gas outlet temperature, the new target value will be approached more quickly. For example, if the heater plate temperature is more than 10°C higher, the new target value will be reached in a shorter time (i.e., a 0.5°C decrease). This decrease in target chamber gas outlet temperature may vary depending on the flow rate and / or ambient / gas chamber inlet temperature. For example, at a flow rate of 45 liters / min and an ambient temperature of 23°C, the decrease may be 0.1°C for every 5°C of heater plate temperature. At an ambient temperature of 30°C, the decrease may be 0.7°C for every 5°C of heater plate temperature. Furthermore, the decrease in target temperature may be non-linear.

[0124] In alternative embodiments, the heater plate temperature, heater plate duty cycle, heater plate power, heater tube duty cycle, or heater tube power can be used to estimate convective heat loss. Heat tubes have a larger surface area and therefore respond faster to changes in convection.

[0125] The same principles outlined above apply in reverse when convective heat loss is increasing and then decreasing. The time limits and the amount of increase or decrease in chamber gas outlet temperature can be different.

[0126] The displayed dew point may be corrected to track the actual dew point during the transition period.

[0127] In other alternative embodiments, multiple data sets can be used for different levels of convective heat loss, with the controller 8 using one, some, or all of the data sets to determine control outputs for different convective heat loss ranges, for example, by using fuzzy logic control algorithms, mathematical formulas, etc.

[0128] In yet another alternative embodiment, the use of multiple data sets can be avoided by using a single data set and modifying the target chamber outlet temperature as follows: If flow rate, ambient temperature, and heater plate power are used, or the heater plate temperature is known, the target chamber outlet temperature can be modified according to the (known, varying) level of heater plate power (or temperature) for any given ambient temperature and flow rate. In this way, for example, the level of "draft" or convective heat loss can be calculated from the heater plate power used. The target chamber outlet temperature is modified to provide accurate dew point control for a range of convective heat loss conditions, for example, by applying a correction factor or correction algorithm to the data from the data set used to create the graph of FIG. 5. For example, when heater plate power is used, the calculation can be performed as follows: the required heater plate power for any given target chamber outlet temperature and the flow rate for low convective heat loss conditions are known, and these values ​​are stored in the memory of the controller 8. In use, the controller 8 receives data regarding the power used by the heater plate and compares it to the stored data. If the measured and stored data values ​​are not substantially similar (within ±2% in the preferred form), the controller applies an inverse linear correction factor. For example, if the measured heater plate power is 10% greater than the stored value (indicating a high convective heat loss condition), the controller will reduce the target chamber outlet temperature by 10%.

[0129] It should be noted that instead of heater plate power as outlined in the example above, heater plate temperature or any of the other methods outlined above (e.g., heater plate temperature, conduit power, etc.) can be used.

[0130] Similarly, if one or more of the gas conditions are known, a correction algorithm or correction factor can be applied to the (ambient condition) data stored in the memory of the controller 8. The ambient conditions (e.g., humidity and pressure) under which the data was measured and loaded are known. If the measured gas conditions deviate from these baseline conditions by a certain percentage (e.g., more than 2%), the controller can apply a correction factor to the target chamber outlet temperature.

[0131] In the combined blower and humidifier embodiment shown schematically in Figures 1, 2, and 3, the chamber inlet temperature typically increases with increasing flow rate from the flow generator, pressure, or both. One or more fuzzy logic algorithms can be used to define a corrected chamber inlet temperature according to ambient or chamber inlet / inlet temperature and motor speed. An increase in motor speed typically accompanies an increase in chamber inlet temperature. Furthermore, a known motor speed can be used by the controller to define humidity and temperature regimes according to a known interface attached to the patient end of the supply conduit. For example, by using a lower motor speed associated with a mask interface (as opposed to a nasal cannula), the algorithm can control the humidity output from the system to a level appropriate for the mask. When a mask is used, a dew point of 31°C is required. A narrow or wide nasal cannula or tracheal attachment requires a dew point of 37°C. This is illustrated in FIG. 12, which shows a graph of motor speed for several exemplary interfaces—higher fan RPM is required for nasal cannula applications and lower fan RPM for mask applications. The motor RPM output can be kept more stable by using the control method outlined above. The experimental results shown in FIG. 12 demonstrate that humidity can be controlled to appropriate levels for either the mask or the nasal cannula (mask and nasal cannula require different motor speeds, and the system remains stable and provides appropriate humidity levels at both high and low speeds). The x-axis shows time of use (seconds). The y-axis shows motor speed (RPM). Line 1201 shows the motor speed of the system when used with a narrow nasal cannula. Line 1202 shows the motor speed of the system when used with a wide nasal cannula. Line 1203 shows the motor speed of the system when used with a tracheal interface. Line 1204 shows the motor speed of the system when used with a mask.

[0132] Another possible approach is to compensate for the delayed "self-heating" effect of the blower as it gradually warms up or heats up during use.

[0133] First, after a predetermined period of steady operation (eg, 1 hour, 2 hours, etc.), the humidity control algorithm can switch from using the chamber outlet temperature to using the heater plate temperature.

[0134] Second, a time element can be implemented in the control algorithm (eg, after 1 hour of operation, the target chamber outlet temperature can be increased by, eg, 0.5°C).

[0135] Third, a "heat rise compensation factor" can be used. This factor can be calculated using the run time, heater duty cycle, and heater plate temperature. Under steady flow and ambient temperature conditions, if the duty cycle or heater plate temperature changes over time, it indicates that the air entering the blower is getting hotter over time and must be compensated for.

[0136] Constant flow control In the most preferred form of the invention, system 1, 100, or 200 also includes a flow control system configured to control the flow rate through the system and keep it as close as possible to the desired level set by the user. As outlined above, the flow rate and humidity of gas within the system are interrelated. As outlined above, in prior art systems, fans are typically set at a constant speed, assuming that if the fan speed remains constant, the flow rate will remain substantially constant, or that the pressure at the delivery point to the patient remains constant. However, even if the power to the fan remains constant, or even if the fan speed remains constant, the flow rate can be affected by changes within the system (which will affect humidity). This is particularly true when the flow resistance of the conduits, interfaces, or both, is relatively low. The difference or deviation between the magnitude of the measured or actual flow rate and the magnitude of the user-set flow rate can be characterized as a "large deviation" or a "small deviation." In a preferred embodiment, the difference between the actual flow rate and the desired (user set) flow rate determines whether the controller 8 uses fine or coarse control to match the actual flow rate to the desired flow rate.

[0137] For example, in a preferred embodiment of system 1, when the system is first turned on or activated, it "warms up" before use. As the system warms up, the flow rate approaches the user set point. The user is generally not wearing the interface during the warm-up period, and the interface may not be connected to a supply conduit. Once the user puts on the interface or connects the interface to a conduit, the flow rate decreases as flow resistance increases. This may cause discomfort to the user. Other undesirable side effects—for example, a change in delivered oxygen concentration or a change in delivered humidity—may also occur. The change in flow rate due to increased flow resistance may be large, i.e., a large percentage or fraction of the total flow rate, resulting in a large deviation of the measured flow rate from the user-set flow rate. Another example of a large flow rate deviation may be, for example, when the user interface is changed or replaced, such as from a full-face mask to a nasal mask or nasal cannula. There may be a change in flow rate that can be characterized as a large deviation from the user-set flow rate—the difference between the measured flow rate and the user-set flow rate may be large. Large deviations can also occur, for example, when a small bore nasal cannula is exchanged for a larger bore cannula.

[0138] In contrast, there are changes in the flow rate through the system that can be characterized as "small deviations." Some examples of changes in the system that cause "small deviations" from the user-set flow rate are as follows: if the geometry of the supply conduit changes (e.g., if the user turns while sleeping or changes the way the supply conduit flexes or bends), there can be a small relative or small change or rate of change in flow rate, and the deviation of the actual flow rate from the user-set flow rate can also be small. Small deviations from the user-set flow rate can also occur, for example, if the position of the user interface relative to the user's face or at the user's nostrils changes.

[0139] For purposes of this specification, the base flow rate is set as follows: a user defines a "user-set flow rate." The flow rate through the system is measured, and an "actual flow rate" is obtained (e.g., via flow probe 61) continuously or periodically. As long as the measured actual flow rate matches the user-set flow rate within a predetermined tolerance—e.g., 3 liters / minute—the controller 8 characterizes the flow rate as being within tolerance—i.e., there is no "large deviation" between the actual measured flow rate and the user-set flow rate. If the measured flow rate differs from the user-set flow rate by more than a predetermined tolerance of 3 liters / minute or more from the set base flow rate, the controller 8 characterizes it as a "large deviation" in a manner similar to that outlined above. In contrast, if the difference between the measured flow rate and the user-set flow rate is less than 3 liters / minute, it is characterized as a small deviation. It should also be noted that in alternative embodiments, the controller may operate on a percentage deviation from the user-set flow rate rather than an empirically derived variation, such as the 3 liters / minute of the preferred embodiment described above.

[0140] In a preferred embodiment, the control system or control algorithm loaded into the controller 8 is designed to switch between coarse and fine control depending on whether there is a large or small deviation. If the controller "sees" a large deviation or step change in the flow rate, it will use the coarse control parameters to return the flow rate to the user-set flow rate. If the flow rate is changing slowly or there is a small deviation in the flow rate, the controller 8 will use the fine control parameters to adjust the flow rate.

[0141] To avoid the coarse control being triggered by system or measurement deviations related to noise or the patient breathing through the system, the actual measured flow rate used is not the instantaneous measured flow rate, but rather the calculated average flow rate over a period longer than several breathing cycles.

[0142] One or more pre-loaded control systems (or one or more control algorithms or fuzzy logic rule sets) incorporated as part of controller 8 and serving to smooth the flow rate on system 1 (or 100, or 200) to provide a constant flow rate to a user receiving humidification therapy can advantageously set a known flow rate. This flow rate is independent of the interface used, the attachment of the interface to the user, and the depth of the user's breathing. This is particularly useful when a user is receiving O2 therapy, for example, by using system 200. If the O2 flow rate provided by the centralized gas supply (provided to the humidifier chamber via a wall inlet and conduit) is known (measured by a flow probe), and the flow rate from a separate ambient air supply is known (either measured by a separate flow probe or calculated from the system dimensions (e.g., venturi dimensions) and the measured flow rate using an algorithm in the controller), a lookup table in controller 208 can calculate the O2 percentage in the blended humidified air. For example, the difference in airflow between the cannula interface and the tracheal interface is typically 5 liters / minute or more for the same user. If the separate flow rates from the atmosphere and the centralized source are known, the O2 percentage can be set to a known value via the user control 11 without the need for an O2 sensor for either of these interfaces. Also, by having a system with a flow sensor that feeds back to the controller 208 and sets the flow rate regardless of the interface or the patient's breathing pattern, humidity can be tightly controlled as outlined herein. Thus, with a preset flow rate, the respiratory assistance system can deliver precise oxygen percentages and humidity without the need for oxygen or humidity sensors. Precise flow rate control allows for precise delivery of blended oxygen. Precise flow rate control also allows for precise control of the humidity level in the gas (e.g., blended oxygen) delivered to the patient.

[0143] A schematic diagram illustrating the operation of control system 300 is shown in FIG. 9. In a preferred form, controller 8 (or 108 or 208) is loaded with control system 300. Controller 8 uses a PID control algorithm from PID filter 313 as a coarse or large deviation control parameter. Filter 313 has a "P" or proportional portion shown as 301, an "I" or integral portion shown as 302, and a "D" or derivative portion shown as 303. In the control subsystem or algorithm, fan unit 13 is shown, and flow probe 61 is shown downstream of fan unit 13. User input from control 11 is shown as arrow 304. A feedback signal 307a is shown returning from the output of the control system or subsystem to the front end or input, which is sent to filter 313 along with a signal indicative of the user-set flow rate—user input 304—(it should be noted that when the phrase "user-set flow rate" is used herein, it may be interpreted to mean user input signal 304). Arrow 311 indicates the input to the fan unit 13, which is the output or signal from the PID filter 313 (either the large deviation control filter 313a or the small deviation control filter 313b).

[0144] It can be seen from Figure 9 that the filter 313 is split into a "large deviation control filter" (313a) and a "small deviation control filter" (313b). The controller 8 switches between the two filters depending on the parameters outlined above.

[0145] It should be noted that coarse flow control or "large deviation" control can be achieved by using the heating plate temperature, or the tube temperature, or both as inputs. If the temperature changes more than a certain rate (large deviation), the controller initiates coarse control. The controller may also use the power or duty cycle of the heating plate or heating wires (or both), and may use lookup tables, formulas, or fuzzy logic algorithms (this flow control can be used as a stand-alone or backup control system). This may not be accurate enough for oxygen therapy, but could be implemented for surgical humidification or high flow therapy (without O2).

[0146] Also, data from an oxygen sensor (rich O2 air) can be used as input to fuzzy logic for flow control (changes in O2% can be reflected in changes in flow rate).

[0147] The above flow control methods and systems can be further modified to control flow during the inhalation-exhalation cycle, as described below.

[0148] Intra-breath control The flow control methods described above address average flow - i.e., flow averaged over a longer period of time over multiple breathing cycles (e.g., three or more inhale-exhale cycles). There is a need to implement a control system that maintains a constant flow during a single breath (inhale / exhale). A preferred method by which this may be achieved is described below.

[0149] The flow rate through the conduit can vary as the patient inhales and exhales (i.e., during a single breath or breathing cycle). The percentage amount by which flow rate can vary during a breath depends on many factors, such as the resistance of the tubing / interface combination, the leakiness or seal around the cannula in the nares, and the size of the breath being taken. When the resistance of the conduit and cannula combination is quite high, a control system may not be necessary to maintain a constant flow rate during a breath. However, interfaces with lower resistance, such as nasal cannulas used with Systems 1, 100, or 200, are likely to require a control system—fluctuations in flow rate can be relatively large.

[0150] In some cases, varying the flow rate can actually be beneficial—it can reduce the workload required of the user to breathe and can be more comfortable for the user because the pressure at the nose during exhalation is lower than would otherwise be the case with a constant-flow device. In other cases, it can be beneficial to have a more constant flow rate through the tubing. This results in higher pressure during exhalation, resulting in higher PEEP. This is useful and advantageous for treating some respiratory disorders. For tubing with relatively low resistance (and low blower backpressure), the change in flow rate between inspiration and expiration can be relatively large, e.g., 5 L / min or more. This change is greater when the user-set flow rate is relatively low. Controlling the flow rate during breathing is generally more difficult than controlling the average flow rate. This is because the time response of the motor used as part of the blower unit 13 is often comparable to the breathing rate. Care must be taken to ensure that a respiratory system, such as the respiratory assistance system 1, remains stable under all operating conditions while maintaining a sufficiently fast response. This is done by carefully selecting the control parameters. For example, if a PID system is used, the P, I, and D gains must be set very carefully.

[0151] In a preferred embodiment as follows with reference to Figure 10a, an intra-breath control method is implemented.

[0152] First, flow is sampled at a rate capable of capturing intra-breath variations. In a preferred embodiment, this sample rate is in the region of 25 Hz (e.g., 20-30 Hz—i.e., flow is measured by flow probe 61 (or 161 or 261) 20-30 times per second). The flow probe 61 used in the preferred form of respiratory assistance system 1 must be able to respond to changes fast enough to achieve this response. As outlined above, a PID control algorithm is pre-loaded for use with controller 8. The problem with the "D" or derivative term 303a or 303b is that small measurement or process noise can cause large output changes. In a preferred form of the invention, to ensure a sufficiently fast response, this filter is not present. Alternatively, as shown in FIG. 10a, a low-pass filter 321 is used with a cutoff frequency high enough to pass intra-breath flow variations unattenuated, or nearly unattenuated. This increases the response time of the precision control system, thereby compensating for both mean and intra-breath variations. Care must be taken to ensure that the control filter parameters are selected to ensure that, over the full range of flow rates used and for any patient interface used, undesirable effects such as overshoot and oscillations that can be uncomfortable for the user do not occur.

[0153] The system may also be used without the presence of filter 321. However, removing this filter may require the use of a more precise flow sensor. The gain used should be kept small enough to ensure that noise does not adversely affect behavior - this may result in less than ideal performance, for example, flow rates may not be as constant as desired.

[0154] As outlined above, the controller 8 uses either fine or coarse control by constantly receiving input from the flow probe 61, which in a preferred embodiment samples the flow rate 20-30 times per second. Using the instantaneous flow rate, an average flow rate over a period longer than a few respiratory cycles is calculated, e.g., using a low-pass filter 320, which is used to calculate the deviation of the average flow rate from a user-set or desired flow rate. In a preferred embodiment, if the measured average flow rate differs from the user-set or desired flow rate by a preset value, e.g., greater than 3 liters / minute, the controller 8 adjusts the flow rate to a user-set level using a coarse control parameter or "large flow rate deviation" 313a. If the average flow rate deviates from its average by a factor of 15%, i.e., greater than 3 liters / minute, the controller 8 or 108 initiates coarse control. Otherwise, fine control or small flow rate deviation 313b is used.

[0155] To ensure that stable operation is maintained during coarse control, the average flow rate obtained using the output of filter 320 can be fed back to the controller rather than the instantaneous measured flow rate shown in Figure 10a.

[0156] In a variant or second preferred form or embodiment, the controller 8 compensates for flow rate fluctuations resulting from the respiratory cycle by passing signal 307a (indicative of actual flow rate) through a low pass filter 308 and a high pass filter 309 in parallel, as shown in Figure 10b. The low pass filter produces an output signal 307b. The high pass filter 309 produces an output signal 315 which is fed back to the compensation filter 306. The output signal 311 from the PID controller and the output signal 312a from the compensation filter 306 are used to control the fan speed in the fan unit 13. This has the advantage that the PID filter 313 for the average can be set independently of the intra-breath control filter, making it easier to design a stable and robust control system.

[0157] The dual feedback loop shown in Figure 10b allows for separate PID gains that can control the mean flow and intra-breath flow. The decision as to whether to use fine or coarse control to adjust the mean flow is made by examining the deviation of the low pass filter output 307b from the user set flow, as previously described.

[0158] Yet another difficulty faced by prior art systems is that the respiratory assistance system is a nonlinear system—the open-loop gain for the system changes with the state of the respiratory assistance system. That is, a given change in blower pressure or motor speed can result in a change in flow rate that depends on the current state of the respiratory assistance system. For example, if the blower unit 3 is operating at a high flow rate and the overall flow rate changes by a certain amount due to a user's exhalation, the change in pressure or motor speed required to compensate for this change may be different from what would have been required if the blower unit 3 were operating at a lower flow rate. This can create stability issues, and prior art control systems may become unstable at certain flow rate values ​​or motor speeds. It is also possible that the response time may be too slow to adequately compensate for intra-breath variations. This can be particularly problematic in systems where the response time is similar to the response time of an external disturbance, for example, a system where the rate of change in flow rate is similar to the time response of the fan unit 13.

[0159] There are a variety of different controllers that can be modified to help overcome these effects. One way is to use a controller that includes a control filter with parameters that vary according to the state of the system. For example, if a PID controller is used, the P, I, and D parameters are not constant, but may follow the average (or even instantaneous) flow rate, or the blower pressure or motor speed, or a user-set flow rate.

[0160] Figure 11 shows a schematic of how this can be achieved. The control system is the same as that shown in Figure 10 and described above, with the addition of a feedback signal 316 from the flow generator or fan unit 13 to the compensation filter 306. Thus, the input signals to the fan unit 13 in this variation would be the output signal 311 from the PID filter 313 and the signal 312b from the compensation filter 306.

Claims

1. 1. A respiratory assistance system for providing a heated and humidified gas flow to a patient for therapeutic purposes, comprising: a blower unit having an inlet and an outlet, the blower unit including an adjustable variable speed fan unit configured to draw gas through the inlet and deliver a flow of the gas to the outlet at a predetermined rate; a humidifier unit configured to hold and heat a predetermined amount of water, the humidifier unit having an inlet port, an outlet port, and a heater base, the humidifier unit configured to allow a flow of gas from an outlet of the blower unit to enter the humidifier unit through the inlet port, pass through the humidifier unit, be heated and humidified, and exit through the outlet port; a heating plate configured to apply thermal energy to a heater base of the humidifier unit to heat the contents of the humidifier unit; a heater plate temperature sensor configured to measure the temperature of the heater plate; an outlet port temperature sensor configured to measure a temperature associated with a flow of gas exiting the humidifier unit; a controller; an outlet port of the humidifier unit configured to be connectable, in use, to a conduit configured to carry the flow of gas from the outlet port through an interface to the patient; the conduit comprises a heating wire configured to heat the gas flow within the conduit; the conduit comprises a patient-end temperature sensor configured to measure a temperature of the gas flow in the conduit proximate the patient; The controller controlling the speed of the blower unit to deliver the gas flow to the outlet at a desired user-set flow rate; receiving data from the heating plate temperature sensor, data from the patient end temperature sensor, and data from the exit port temperature sensor; and controlling the temperature of gas provided to the patient to achieve a target dew point temperature by controlling the heating wires based on data from the patient-end temperature sensor and the outlet port temperature sensor, and by controlling the heating plate based on data from the heating plate temperature sensor and the outlet port temperature sensor. A respiratory support system characterized by:

2. the controller is configured to control the speed of the blower unit to deliver a flow of gas to the outlet at a user-set flow rate of 15 to 45 liters per minute.

10. A respiratory assistance system according to claim 1.

3. The target dew point temperature is in the range of 31 to 39°C. A respiratory assistance system according to claim 1 or 2.

4. the user-set target dew point temperature provides an absolute humidity level of substantially 44 mg HO / liter of gas; 4. A respiratory assistance system according to claim 3.

5. The target dew point temperature is a target temperature and relative humidity. A respiratory assistance system according to any one of claims 1 to 4.

6. the respiratory assistance system also comprising a user control configured to allow a user to set a desired user-set flow rate of gas through the system; A respiratory assistance system according to any one of claims 1 to 5.

7. the controller is configured to control power to the blower unit to achieve the user-set flow rate. A respiratory assistance system according to any one of claims 1 to 6.

8. and a flow probe configured to measure the flow of the gas through the respiratory assistance system. A respiratory assistance system according to any one of claims 1 to 7.

9. The controller is further configured to receive flow data from the flow probe and adjust the speed of the blower unit to deliver the gas flow to the outlet at a user-set flow rate. A respiratory assistance system according to any one of claims 1 to 8.

10. the speed of the blower unit is based on flow data from at least the flow probe; 10. A respiratory assistance system according to claim 9.

11. the controller is configured to receive at least the user-set flow rate and flow data from the flow probe or flow sensor; the controller having a coarse control parameter and a fine control parameter; The controller compares the user-set flow rate with the actual flow rate; the controller adjusts the output of the fan using the fine control parameters to cause the actual flow rate to match the user set flow rate as long as the actual flow rate matches the user set flow rate within a tolerance range, the tolerance range value being stored within the controller; the controller, if a difference between the user set flow rate and the actual flow rate is outside the tolerance range, adjusts the output of the fan using the coarse control parameters to match the actual flow rate to the user set flow rate; A respiratory assistance system according to claim 9 or 10.

12. the blower unit is configured to receive gas at the inlet from both a remote source and the atmosphere; the blower unit is configured to mix the atmospheric gas and the gas from the remote source before both gases pass through the humidifier; A respiratory assistance system according to any one of claims 8 to 11.

13. the control unit is configured to receive oxygen as the gas from the remote source, the at least one flow probe is configured to measure a flow rate of the gas received from the remote source and send the flow rate measurements to the controller, the controller is configured to determine a flow rate of the gas from atmosphere based on known system dimensions, and the controller determines a percentage of oxygen in the mixed gas from the flow rate and the system dimensions.

13. A respiratory assistance system as claimed in claim 12.

14. the system is configured to change the oxygen fraction when a user changes the user-set flow rate; 14. A respiratory assistance system as claimed in claim 13.

15. the system including a display configured to show data received by the controller; A respiratory assistance system according to any one of claims 1 to 14.

16. the respiratory assistance system having a humidity sensor configured to measure humidity of atmospheric gases entering the respiratory assistance system, the controller receiving data relating to the measured humidity; the controller also uses data regarding the measured humidity to control the heating plate.

16. A respiratory assistance system according to any one of claims 1 to 15.

17. the controller controls the heating wire based on data related to the measured humidity.

17. A respiratory assistance system as claimed in claim 16.

18. the system includes a pressure sensor configured to measure a pressure of atmospheric gas entering the respiratory assistance system, the controller receives data related to the measured pressure, and the controller controls the heating plate also using the data related to the measured pressure.

18. A respiratory assistance system according to any one of claims 1 to 17.

19. the controller also controls the heating wire based on data regarding the measured pressure; 20. A respiratory assistance system as claimed in claim 18.

20. the system including an ambient temperature sensor configured to measure a temperature of the gas before the gas enters the humidifier unit, and the controller configured to receive data from the ambient temperature sensor and to control the heating plate based on the data from the ambient temperature sensor.

20. A respiratory assistance system according to any one of claims 1 to 19.

21. the controller controls the heating wire based on data from the ambient temperature sensor.

21. A respiratory assistance system as claimed in claim 20.

22. the conduit is configured to convey the flow of gas from the outlet port to a patient through a low flow resistance nasal cannula; 22. A respiratory assistance system according to any one of claims 1 to 21.

Citation Information

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