Breathing aid
The respiratory assistance device addresses bubbling detection in pressure regulators by using sensors and controllers to monitor waveform characteristics, improving gas flow and pressure control for effective therapy delivery.
Patent Information
- Application Number
- JP2023518090
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-09-21
- Filing Date
- 2021-09-21
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2041-09-21
AI Technical Summary
Existing respiratory assistance devices lack effective methods to detect bubbling in pressure regulators, which can affect the delivery of gas flow and pressure, and there is a need for improved monitoring and control of gas characteristics.
A respiratory assistance device with a flow generator, gas characteristic sensors, and a controller that determines waveform characteristics to detect bubbling in the pressure regulator, generating alarms or adjusting therapy modes based on these detections.
The device effectively detects bubbling and adjusts therapy modes, ensuring consistent gas flow and pressure delivery, enhancing patient care and device performance.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to respiratory assistance devices, and in particular to detecting bubbling in a respiratory assistance device and / or estimating flow and / or pressure in a gas flow path. [Background technology]
[0002] Respiratory assistance apparatuses are used in a variety of settings, such as hospitals, medical facilities, home care, or residential environments, to deliver a gas flow to a user or patient. Respiratory assistance or respiratory treatment apparatuses (collectively "respiratory apparatus" or "respiratory device") deliver the gas flow and may optionally additionally or alternatively be used to deliver supplemental oxygen or other gases. Respiratory assistance apparatuses may also include a humidification apparatus to deliver heated and humidified gas. As discussed in more detail below, the humidification apparatus may be separate from the respiratory assistance apparatus or may be part of the respiratory assistance apparatus. Respiratory assistance apparatuses may be able to regulate and control characteristics of the gas flow, including flow rate, temperature, gas concentration, humidity, pressure, etc. Sensors, such as flow and / or pressure sensors, are used to measure the characteristics of the gas flow. Summary of the Invention [Means for solving the problem]
[0003] In an aspect of the present disclosure, there is provided a respiratory assistance device for providing respiratory therapy, the respiratory assistance device comprising: a flow generator configured to provide a flow of gas to the inhalation conduit at a target flow rate; at least one gas characteristic sensor configured to measure a flow rate and / or a pressure of the gas in the gas flow path; the gas flow path includes at least an inspiratory conduit configured to couple to a patient interface, and an expiratory conduit configured to couple to the patient interface, and a pressure regulator, the pressure regulator including a chamber with a column of liquid immersing an end of the expiratory conduit therein; and at least one gas characteristic sensor; A controller, the controller comprising: determining at least one waveform characteristic based on the measured flow and / or pressure waveform; and a controller configured to determine whether bubbling is occurring in the pressure regulator based on at least one waveform characteristic.
[0004] Determining whether bubbling is occurring may be based on determining pressure and / or flow oscillations in the waveform that are indicative of bubbling within the pressure regulator.
[0005] The controller may be configured to indicate on a display whether bubbling is occurring within the pressure regulator.
[0006] The controller may be configured to generate an alarm based on whether bubbling is occurring within the pressure regulator.
[0007] The controller may be configured to generate an alarm if it determines that no bubbling is occurring within the pressure regulator.
[0008] The controller may be configured to generate an alert if it determines that the percentage of time that bubbling occurs over a period of time is less than a threshold value, or that the percentage of time that no bubbling occurs over a period of time is greater than a threshold value.
[0009] The alarm is audible alarm, It may also include one or more visual alarms.
[0010] The device may include a display, optionally the display including one or more of a touch screen and / or one or more mechanical input devices.
[0011] The controller may automatically select a respiratory therapy mode based on whether bubbling is occurring within the pressure regulator.
[0012] Respiratory therapy modes may include a bubble CPAP therapy mode and a high flow therapy mode.
[0013] The detection of bubbling may occur constantly or intermittently while the device is operating in a non-bubble CPAP mode.
[0014] The controller is configured to generate an alarm when bubbling is detected in a non-bubble CPAP mode.
[0015] The determination of whether bubbling is occurring may be based on at least one waveform characteristic exceeding an associated threshold.
[0016] The determination of whether bubbling is occurring may be based on a model, the model including one or more waveform characteristic factors associated with each waveform characteristic.
[0017] The model may be a regression model.
[0018] One or more waveform characterization factors may be determined experimentally.
[0019] The determination of whether bubbling is occurring within the pressure regulator may be over a period of time.
[0020] At least one waveform characteristic is Waveform amplitude, The distance between the positive peaks of the waveform, It may include or be based on one or more of the magnitude of the amplitude difference between successive positive and negative peaks of the waveform.
[0021] The at least one waveform characteristic may include at least one amplitude characteristic, the amplitude characteristic being: the average amplitude of the waveform's positive peaks, optionally over a time window; Optionally, one or more of the standard deviations of the amplitudes of the positive peaks of the waveform over the time window.
[0022] The at least one waveform characteristic may include at least one peak distance characteristic, the peak distance characteristic being: the average distance between positive peaks of the waveform, optionally over a time window; Optionally, one or more of the standard deviations of the distance between positive peaks of the waveform over the time window.
[0023] The at least one waveform characteristic may include at least one peak difference characteristic, the peak difference characteristic being: an average magnitude of the amplitude difference between consecutive positive and negative peaks of the waveform, optionally over a time window; Optionally, one or more of the standard deviations of the magnitude of the amplitude difference between successive positive and negative peaks of the waveform over the time window.
[0024] The controller may be configured to apply high pass and / or low pass filters to the flow or pressure and / or waveform measurements.
[0025] The waveform may be configured to be divided into one or more time windows, and optionally a determination of whether bubbling is occurring is made for each time window.
[0026] Each time window may be approximately 2 seconds.
[0027] Each time window may overlap with the previous time window and / or the next time window.
[0028] The time window overlap may be approximately 1.5 seconds.
[0029] The determination of whether bubbling is occurring may be based on a probability of 0 to 1 that bubbling is occurring.
[0030] Bubbling may be determined to occur when the probability of bubbling occurring exceeds 0.5.
[0031] The determination of whether bubbling is occurring may be based on atmospheric pressure.
[0032] The determination that bubbling is occurring may be based on the ambient temperature.
[0033] The determination that bubbling is occurring may be based on the altitude of the device.
[0034] The determination of whether bubbling is occurring may be based on the water level of a humidifier placed in the gas flow path.
[0035] The device may be configured to provide a combination of ambient air and auxiliary gas, and the determination of whether bubbling is occurring is based on the ratio of auxiliary gas to ambient air.
[0036] The determination of whether bubbling is occurring may be based on conduit characteristics of the inspiratory and / or expiratory conduits.
[0037] The conduit properties are The length of the conduit, the diameter of the conduit, It may include one or more of the types of conduit.
[0038] The determination of whether bubbling is occurring may be based on characteristics of the patient interface.
[0039] The controller may be configured to monitor the pressure of the gas in the gas flow path.
[0040] The controller may be configured to generate an alarm when the pressure of the gas flow exceeds a threshold value.
[0041] The respiratory assistance device may provide CPAP therapy.
[0042] The respiratory assistance device may provide bubble CPAP therapy.
[0043] The respiratory aid device may include a blower for generating the flow of gas.
[0044] The respiratory aid device may include a humidifier for heating and / or humidifying the gas flow.
[0045] The respiratory aid device may include a housing for containing a blower and / or a humidifier.
[0046] The respiratory assistance device may include a heated breathing tube.
[0047] The blower may be configured to deliver a substantially constant flow of gas and / or a substantially constant pressure.
[0048] The at least one gas characteristic sensor comprises: in a respiratory assistance device, optionally in a gas generator; In the patient interface, In the pressure regulator, They may be located in one or more of the inspiratory and / or expiratory conduits.
[0049] At least one gas characteristic sensor may be located in the gas flow path.
[0050] The flow generator may be configured to provide a flow of gas to the inhalation conduit at a target flow rate.
[0051] The controller may be configured to determine the waveform based on measurements of the flow rate and / or pressure of the gas in the gas flow path.
[0052] The liquid may be water or saline.
[0053] The controller detects if bubbling has occurred for a period of time. do not have Bubbling over time R The bubbling may be configured to be determined to be intermittent based on a percentage of time.
[0054] The controller detects whether bubbling is occurring. do not have Bubbling over time R The bubbling may be determined to be intermittent when the percentage of time is within a certain range.
[0055] The controller may be configured to determine one or more bubbling time metrics based on the detection of bubbling during one or more treatment sessions.
[0056] One or more bubbling time metrics: Bubbling index, which is the percentage of the total treatment time during which bubbling occurs; Non-bubbling time when no bubbling occurs This is one or more of the bubbling times during which bubbling occurs.
[0057] Detection of bubbling occurring within the pressure regulator during a treatment session may indicate that treatment is being delivered.
[0058] The controller may be configured to upload one or more bubbling time metrics to a server and / or a device.
[0059] The controller may be configured to generate an alert when one or more of the bubbling time metrics falls below a threshold value.
[0060] The controller may be configured to indicate that therapy is being delivered when one or more bubbling time metrics rise above a threshold value.
[0061] In another aspect of the present disclosure, there is provided a respiratory assistance apparatus for providing respiratory therapy, the respiratory assistance apparatus comprising: a flow generator configured to provide a flow of gas to the inhalation conduit at a target flow rate; at least one gas characteristic sensor, the at least one gas characteristic sensor configured to measure a flow rate and / or a pressure of the gas in the gas flow path; A controller, the controller comprising: determining at least one waveform characteristic based on the measured flow and / or pressure waveform; and a controller configured to determine whether bubbling is occurring in the pressure regulator based on at least one waveform characteristic.
[0062] It will be appreciated that the above aspects may be combined with any combination of the other aspects (and specifically the above aspects).
[0063] In another aspect of the present disclosure, there is provided a controller for a respiratory assistance device for providing respiratory therapy, the controller comprising: determining at least one waveform characteristic based on the measured flow and / or pressure waveform; The apparatus is configured to determine whether bubbling is occurring within the pressure regulator based on at least one waveform characteristic.
[0064] It will be appreciated that the above aspects may be combined with any combination of the other aspects (and specifically the above aspects).
[0065] In another aspect of the present disclosure, there is provided a method for detecting bubbling in a pressure regulator of a respiratory assistance system, the method comprising: determining at least one waveform characteristic based on the measured flow and / or pressure waveform; and determining whether bubbling is occurring within the pressure regulator based on at least one waveform characteristic.
[0066] It will be appreciated that the above aspects may be combined with any combination of the other aspects (and specifically the above aspects).
[0067] In another aspect of the present disclosure, there is provided a respiratory assistance apparatus for providing respiratory therapy, the respiratory assistance apparatus comprising: a flow generator configured to provide a flow of gas to the inhalation conduit (optionally at a target flow rate); a flow generator, wherein the gas flow path includes at least an inspiratory conduit configured to couple to a patient interface and an expiratory conduit configured to couple to a pressure regulator, the pressure regulator including a chamber with a column of water immersing an end of the expiratory conduit therein; at least one sensor configured to measure at least one characteristic indicative of bubbling in the pressure regulator; A controller, the controller comprising: and a controller configured to determine whether bubbling is occurring within the pressure regulator based on the measurement of at least one characteristic indicative of bubbling within the pressure regulator.
[0068] It will be appreciated that the above aspects may be combined with any combination of the other aspects (and specifically the above aspects).
[0069] In another aspect of the present disclosure, there is provided a respiratory assistance apparatus for providing respiratory therapy, the respiratory assistance apparatus comprising: a flow generator configured to provide a gas flow (optionally at a target flow rate); at least one sensor configured to measure at least one characteristic indicative of bubbling in the pressure regulator; A controller, the controller comprising: determining at least one waveform characteristic based on the waveform of the measurement of the at least one characteristic indicative of bubbling in the pressure regulator; and a controller configured to determine whether bubbling is occurring in the pressure regulator based on at least one waveform characteristic.
[0070] It will be appreciated that the above aspects may be combined with any combination of the other aspects (and specifically the above aspects).
[0071] In another aspect of the present disclosure, there is provided a respiratory assistance apparatus for providing respiratory therapy, the respiratory assistance apparatus comprising: a flow generator configured to provide a flow of gas to the inhalation conduit at a target flow rate; a flow generator, wherein the gas flow path includes at least an inspiratory conduit configured to couple to a patient interface and an expiratory conduit configured to couple to a pressure regulator, the pressure regulator including a chamber with a column of water immersing an end of the expiratory conduit therein; at least one sensor configured to measure at least one characteristic indicative of bubbling in the pressure regulator; A controller, the controller comprising: determining at least one waveform characteristic based on the waveform of the measurement of the at least one characteristic indicative of bubbling in the pressure regulator; and a controller configured to determine whether bubbling is occurring in the pressure regulator based on at least one waveform characteristic.
[0072] It will be appreciated that the above aspects may be combined with any combination of the other aspects (and specifically the above aspects).
[0073] In another aspect of the present disclosure, there is provided a controller for a respiratory assistance device for providing respiratory therapy, the controller comprising: The apparatus is configured to determine whether bubbling is occurring within the pressure regulator based on a waveform of the measurement of at least one characteristic indicative of bubbling within the pressure regulator.
[0074] In another aspect of the present disclosure, there is provided a method for detecting bubbling in a pressure regulator of a respiratory assistance system, the method comprising: determining at least one waveform characteristic based on a waveform of the measurements of the at least one waveform characteristic indicative of bubbling in the pressure regulator; and determining whether bubbling is occurring within the pressure regulator based on at least one waveform characteristic.
[0075] It will be appreciated that the above aspects may be combined with any combination of the other aspects (and specifically the above aspects).
[0076] At least one sensor a visual sensor (e.g., a visible light sensor) configured to output a signal indicative of an image of the bubbler; a water level sensor configured to output a signal indicative of the surface of the water in the bubbler (e.g., to monitor the height of the water in the bubbler); a microphone configured to output a signal indicative of the sound produced by the bubbler; an optical sensor configured to output a signal indicative of an optical characteristic of the liquid in the bubbler; The gas flow characteristic sensor may be one or more of a flow sensor or a pressure sensor configured to output a signal indicative of a gas flow characteristic.
[0077] At least one characteristic of the bubbling in the pressure regulator is a signal indicative of an image of the bubbler as an output of the visibility sensor; a signal indicating the surface of the water in the bubbler as the output of the water level sensor; a signal indicative of the sound generated by the bubbler as an output of the microphone; a signal indicative of the optical characteristics of the liquid in the bubbler as an output of the optical sensor; The gas flow characteristic may be based on one or more of the signals indicative of the gas flow characteristics as an output of the gas flow characteristic sensor.
[0078] At least one characteristic indicative of bubbling in the pressure regulator may be the flow rate and / or pressure of the gas in the gas flow path.
[0079] In another aspect of the present disclosure, there is provided a respiratory assistance apparatus for providing respiratory therapy, the respiratory assistance apparatus comprising: a flow generator configured to provide a flow of gas to the inlet conduit; and a controller configured to automatically select a respiratory therapy mode based on whether bubbling is occurring within the pressure regulator.
[0080] The respiratory assistance device may include at least one gas characteristic sensor configured to measure the flow rate and / or pressure of the gas in the gas flow path.
[0081] The controller determining a waveform based on measurements of the flow rate and / or pressure of the gas in the gas flow path; determining at least one waveform characteristic based on the flow and / or pressure waveform; The apparatus may be configured to determine whether bubbling is occurring within the pressure regulator based on at least one waveform characteristic.
[0082] The controller may automatically select the bubble CPAP mode when bubbling occurs in the pressure regulator.
[0083] The respiratory therapy mode may include a bubble CPAP therapy mode or a high flow therapy mode.
[0084] In another aspect of the present disclosure, there is provided a controller for a respiratory assistance device for providing respiratory therapy, the controller comprising: determining at least one waveform characteristic based on the waveform of the measured characteristic of the bubbling in the pressure regulator; The system is configured to estimate an estimated flow rate and / or pressure in the gas flow path based on the at least one waveform characteristic.
[0085] It will be appreciated that the above aspects may be combined with any combination of the other aspects (and specifically the above aspects).
[0086] In another aspect of the present disclosure, there is provided a method for estimating flow and / or pressure in a gas flow path of a respiratory assistance system, the method comprising: determining at least one waveform characteristic based on a waveform of the measured characteristic of the bubbling in the pressure regulator; and estimating an estimated flow rate and / or pressure in the gas flow path based on the at least one waveform characteristic.
[0087] It will be appreciated that the above aspects may be combined with any combination of the other aspects (and specifically the above aspects).
[0088] In another aspect of the present disclosure, there is provided a respiratory assistance apparatus for providing respiratory therapy, the respiratory assistance apparatus comprising: a flow generator configured to provide a gas flow to the inlet conduit; a flow generator, the gas flow path including at least an inspiratory conduit configured to couple to a patient interface and an expiratory conduit configured to couple to a pressure regulator, the pressure regulator including a chamber with a column of liquid immersing an end of the expiratory conduit therein; A controller, the controller comprising: measuring at least one characteristic of the bubbling in the pressure regulator; determining at least one waveform characteristic based on the waveform of the measured characteristic of the bubbling in the pressure regulator; and a controller configured to estimate an estimated flow rate and / or pressure in the gas flow path based on the at least one waveform characteristic.
[0089] At least one characteristic of the bubbling in the pressure regulator is a signal indicative of an image of the bubbler as an output of the visibility sensor; a signal indicating the surface of the water in the bubbler as the output of the water level sensor; a signal indicative of the sound generated by the bubbler as an output of the microphone; a signal indicative of the optical characteristics of the liquid in the bubbler as an output of the optical sensor; The gas flow characteristic may be based on one or more of the signals indicative of the gas flow characteristics as an output of the gas flow characteristic sensor.
[0090] At least one characteristic of the bubbling in the pressure regulator may be based on a signal indicative of the gas flow rate in the gas flow path as an output of a flow sensor, and optionally the signal is based on the measured flow rate and / or pressure of the gas in the gas flow path.
[0091] At least one characteristic of the bubbling in the pressure regulator may be based on a signal indicative of the gas pressure in the gas flow path as an output of a pressure sensor (optionally the signal is based on the measured pressure of the gas in the gas flow path).
[0092] The estimated flow rate in the gas flow path may be the flow rate of gas at the end of the breathing conduit.
[0093] The pressure in the gas flow path may be the pressure at the patient interface.
[0094] The flow rate of gas at the end of the expiratory conduit may be at a pressure regulator.
[0095] The controller may be configured to generate one or more alarms based on the estimated flow rate of gas at the end of the expiratory conduit and / or the estimated pressure at the patient interface.
[0096] The controller may be configured to generate one or more alarms if the estimated flow rate of gas at the end of the expiratory conduit (and optionally at the pressure regulator) exceeds a threshold value.
[0097] The controller may be configured to generate one or more alarms if the estimated pressure at the patient interface exceeds a threshold value.
[0098] One or more alarms may be audible alarm, It may also include one or more visual alarms.
[0099] The device may include a display, optionally the display including one or more of a touch screen and / or one or more mechanical input devices.
[0100] The apparatus may include at least one gas characteristic sensor configured to measure the flow rate of the gas in the gas flow path and / or the pressure of the gas in the gas flow path.
[0101] The controller may additionally be configured to estimate the pressure at the patient interface based on a relationship between the flow rate of gas in the gas flow path and the pressure of gas in the gas flow path.
[0102] The controller may be configured to estimate a leakage flow rate of the system, the leakage flow rate being based on the difference between a measured flow rate of gas in the gas flow path and an estimated flow rate of gas through the pressure regulator.
[0103] The controller may be configured to generate an alarm when the estimated leak flow rate exceeds a leak threshold.
[0104] The controller may be configured to generate an alarm when the estimated leak flow rate increases by more than a leak increase threshold over a predetermined period of time.
[0105] The controller may be configured to estimate a set point for the pressure regulator based on an estimated flow rate of gas through the pressure regulator and an estimated pressure at the patient interface.
[0106] The controller may be configured to display the estimated pressure at the patient interface on at least one display.
[0107] The respiratory therapy mode may include a bubble CPAP therapy mode or a high flow therapy mode.
[0108] The estimated flow rate and / or pressure in the gas flow path (optionally the flow rate of gas through the pressure regulator and / or the pressure at the patient interface) may be based on a model, the model including one or more waveform characteristic factors associated with each waveform characteristic.
[0109] The model may be a regression model.
[0110] One or more waveform characterization factors may be determined experimentally.
[0111] At least one waveform characteristic is Waveform amplitude, The distance between the positive peaks of the waveform, The number of times the waveform crosses the threshold, The time between positive peaks of the waveform, The time between negative peaks of the waveform, The amplitude between the positive peaks of the waveform, The amplitude between the negative peaks of the waveform, It may include or be based on one or more of the magnitude of the amplitude difference between successive positive and negative peaks of the waveform.
[0112] The at least one waveform characteristic may include at least one amplitude characteristic.
[0113] The amplitude characteristics are the average amplitude of the waveform's positive peaks, optionally over a time window; the standard deviation of the amplitude of the positive peaks of the waveform, optionally over a time window; the average of the amplitude of the negative peaks of the waveform, optionally over a time window; the standard deviation of the amplitude of the negative peaks of the waveform, optionally over a time window; the average of the waveform amplitude, optionally over a time window; It may also optionally include one or more of the standard deviations of the amplitude of the waveform over the time window.
[0114] The at least one waveform characteristic may include at least one peak distance characteristic.
[0115] The peak distance characteristic is the average distance between positive peaks of the waveform, optionally over a time window; the standard deviation of the average distance between positive peaks of the waveform, optionally over a time window; the standard deviation of the distance between positive peaks of the waveform, optionally over a time window; the average distance between negative peaks of the waveform, optionally over a time window; It may optionally include one or more of the negative standard deviations between the positive peaks of the waveform over a time window.
[0116] The at least one waveform characteristic may include at least one peak difference characteristic.
[0117] The peak difference characteristic is an average magnitude of the amplitude difference between consecutive positive and negative peaks of the waveform, optionally over a time window; It may optionally include one or more of the standard deviations of the magnitude of the amplitude difference between successive positive and negative peaks of the waveform over a time window.
[0118] The at least one waveform characteristic may include at least one crossover characteristic.
[0119] The intersection property is The number of times the waveform crosses zero, It may include one or more of the number of times the waveform crosses the average amplitude of the waveform.
[0120] The controller may be configured to apply a high pass and / or low pass filter to the measurement of the characteristics of the bubbling in the pressure regulator.
[0121] The waveform may be configured to be divided into one or more time windows, and optionally a determination of the flow rate of gas through the pressure regulator and / or the pressure at the patient interface is made for each time window.
[0122] Each time window may be approximately 2 seconds.
[0123] Each time window may overlap with the previous time window and / or the next time window.
[0124] The time window overlap may be approximately 1.5 seconds.
[0125] Determining the flow rate of gas through the pressure regulator and / or the pressure at the patient interface may be based on conduit characteristics of the inspiratory conduit and / or the expiratory conduit.
[0126] The conduit properties are The length of the conduit, the diameter of the conduit, It may include one or more of the types of conduit.
[0127] Determining the flow rate of gas through the pressure regulator and / or the pressure at the patient interface may be based on characteristics of the patient interface.
[0128] The respiratory assistance device may provide bubble CPAP therapy.
[0129] The respiratory aid device may include a blower for generating the flow of gas.
[0130] The respiratory aid device may include a humidifier for heating and / or humidifying the gas flow.
[0131] The respiratory aid device may include a housing for containing a blower and / or a humidifier.
[0132] The respiratory assistance device may include a heated breathing tube.
[0133] The blower may be configured to deliver a substantially constant flow of gas and / or a substantially constant pressure.
[0134] The at least one gas characteristic sensor comprises: in a respiratory assistance device, optionally in a gas generator; In the patient interface, In the pressure regulator, They may be located in one or more of the inspiratory and / or expiratory conduits.
[0135] At least one gas characteristic sensor may be located in the gas flow path.
[0136] The flow generator may be configured to provide a flow of gas to the inhalation conduit at a target flow rate and / or a target pressure.
[0137] In another aspect of the present disclosure, there is provided a respiratory assistance apparatus for providing respiratory therapy, the respiratory assistance apparatus comprising: a flow generator, the flow generator configured to provide a gas flow; A controller, the controller comprising: measuring at least one characteristic of the bubbling in the pressure regulator; determining at least one waveform characteristic based on the waveform of the measured characteristic of the bubbling in the pressure regulator; and a controller configured to estimate an estimated flow rate and / or pressure in the gas flow path based on the at least one waveform characteristic.
[0138] It will be appreciated that the above aspects may be combined with any combination of the other aspects (and specifically the above aspects).
[0139] In an aspect of the present disclosure, there is provided a controller for a respiratory assistance device for providing respiratory therapy, the controller comprising: determining at least one waveform characteristic based on the waveform of the measured characteristic of the bubbling in the pressure regulator; The system is configured to estimate an estimated flow rate and / or pressure in the gas flow path based on the at least one waveform characteristic.
[0140] It will be appreciated that the above aspects may be combined with any combination of the other aspects (and specifically the above aspects).
[0141] In an aspect of the present disclosure, there is provided a method for estimating flow and / or pressure in a gas flow path of a respiratory assistance system, the method comprising: determining at least one waveform characteristic based on a waveform of the measured characteristic of the bubbling in the pressure regulator; and estimating an estimated flow rate and / or pressure in the gas flow path based on the at least one waveform characteristic.
[0142] It will be appreciated that the above aspects may be combined with any combination of the other aspects (and specifically the above aspects).
[0143] In another aspect of the present disclosure, there is provided a respiratory assistance apparatus for providing respiratory therapy, the respiratory assistance apparatus comprising: a flow generator configured to provide a flow of gas to a patient at a target flow rate; at least one gas characteristic sensor configured to measure the flow rate and / or pressure of the gas after the flow generator; the patient interface is configured to couple to a pressure regulator, the pressure regulator including a chamber with a column of liquid (optionally water) immersing an end of the expiratory conduit therein; and A controller, the controller comprising: determining a waveform based on measurements of gas flow rate and / or pressure; determining at least one waveform characteristic based on the flow and / or pressure waveform; and a controller configured to determine whether bubbling is occurring in the pressure regulator based on at least one waveform characteristic.
[0144] In another aspect of the present disclosure, there is provided a respiratory assistance apparatus for providing respiratory therapy, the respiratory assistance apparatus comprising: a flow generator configured to provide a flow of gas to the patient; at least one gas characteristic sensor, wherein the at least one gas characteristic sensor is configured to measure a flow rate and / or a pressure of the gas stream; A controller, the controller comprising: determining a waveform based on measurements of the flow rate and / or pressure of the gas in the gas flow path; determining at least one waveform characteristic based on the flow and / or pressure waveform; and a controller configured to determine whether bubbling is occurring in the pressure regulator based on at least one waveform characteristic.
[0145] In another aspect of the present disclosure, there is provided a respiratory assistance apparatus for providing respiratory therapy, the respiratory assistance apparatus comprising: a flow generator configured to provide a flow of gas to the inlet conduit; at least one gas characteristic sensor configured to measure a flow rate and / or a pressure of the gas in the gas flow path; the gas flow path includes at least an inspiratory conduit configured to couple to a patient interface and an expiratory conduit configured to couple to a pressure regulator, the pressure regulator including a chamber with a column of water immersing an end of the expiratory conduit therein; and at least one gas characteristic sensor; A controller, the controller comprising: determining a waveform based on measurements of the flow rate and / or pressure of the gas in the gas flow path; determining at least one waveform characteristic based on the flow and / or pressure waveform; and a controller configured to determine one or more flow and / or pressure oscillations occurring in the pressure regulator based on the at least one waveform characteristic.
[0146] In another aspect of the present disclosure, there is provided a respiratory assistance apparatus for providing respiratory therapy, the respiratory assistance apparatus comprising: a flow generator configured to provide a flow of gas to the inhalation conduit at a target flow rate; at least one gas characteristic sensor configured to measure a flow rate and / or a pressure of the gas in the gas flow path; the gas flow path includes at least an inspiratory conduit configured to couple to a patient interface and an expiratory conduit configured to couple to a pressure regulator, the pressure regulator including a chamber with a column of water immersing an end of the expiratory conduit therein; and at least one gas characteristic sensor; A controller, the controller comprising: determining a waveform based on measurements of the flow rate and / or pressure of the gas in the gas flow path; determining at least one waveform characteristic based on the flow and / or pressure waveform; and a controller configured to determine whether bubbling is occurring in the pressure regulator based on at least one waveform characteristic.
[0147] It will be appreciated that the above four aspects may be combined with any combination of the other aspects (and specifically the above aspects).
[0148] Determining whether bubbling is occurring may be based on determining pressure and / or flow oscillations in the waveform that are indicative of bubbling within the pressure regulator.
[0149] The controller may be configured to indicate on a display whether bubbling is occurring within the pressure regulator.
[0150] The controller may be configured to generate an alarm if it is determined that no bubbling is occurring within the pressure regulator.
[0151] The alarm is audible alarm, It may also include one or more visual alarms.
[0152] The controller may automatically select a respiratory therapy mode based on whether bubbling is occurring within the pressure regulator.
[0153] The respiratory therapy mode may include a bubble CPAP therapy mode or a high flow therapy mode.
[0154] The determination of whether bubbling is occurring may be based on at least one waveform characteristic exceeding an associated threshold.
[0155] The determination of whether bubbling is occurring may be based on a model, the model including one or more waveform characteristic factors associated with each waveform characteristic.
[0156] The model may be a regression model.
[0157] One or more waveform characterization factors may be determined experimentally.
[0158] At least one waveform characteristic is Waveform amplitude, The distance between the positive peaks of the waveform, It may include or be based on one or more of the magnitude of the amplitude difference between successive positive and negative peaks of the waveform.
[0159] The at least one waveform characteristic may include at least one amplitude characteristic, the amplitude characteristic being: the average amplitude of the waveform's positive peaks, optionally over a time window; Optionally, one or more of the standard deviations of the amplitudes of the positive peaks of the waveform over the time window.
[0160] The at least one waveform characteristic may include at least one peak distance characteristic, the peak distance characteristic being: the average distance between positive peaks of the waveform, optionally over a time window; Optionally, one or more of the standard deviations of the distance between positive peaks of the waveform over the time window.
[0161] The at least one waveform characteristic may include at least one peak difference characteristic, the peak difference characteristic being: an average magnitude of the amplitude difference between consecutive positive and negative peaks of the waveform, optionally over a time window; Optionally, one or more of the standard deviations of the magnitude of the amplitude difference between successive positive and negative peaks of the waveform over the time window.
[0162] The controller may be configured to apply high pass and / or low pass filters to the flow or pressure and / or waveform measurements.
[0163] The waveform may be configured to be divided into one or more time windows, and optionally a determination of whether bubbling is occurring is made for each time window.
[0164] Each time window may be approximately 2 seconds.
[0165] Each time window may overlap with the previous time window and / or the next time window.
[0166] The time window overlap may be approximately 1.5 seconds.
[0167] The determination of whether bubbling is occurring may be based on a probability of 0 to 1 that bubbling is occurring.
[0168] Bubbling may be determined to occur when the probability of bubbling occurring exceeds 0.5.
[0169] The determination of whether bubbling is occurring may be based on atmospheric pressure.
[0170] The determination that bubbling is occurring may be based on the ambient temperature.
[0171] The determination that bubbling is occurring may be based on the altitude of the device.
[0172] The determination of whether bubbling is occurring may be based on the water level in a humidifier placed in the gas flow path.
[0173] The device may be configured to provide a combination of ambient air and make-up gas, and the determination of whether bubbling is occurring is based on the ratio of ambient air to make-up gas.
[0174] The determination of whether bubbling is occurring may be based on conduit characteristics of the inspiratory and / or expiratory conduits.
[0175] The conduit properties are The length of the conduit, the diameter of the conduit, It may include one or more of the types of conduit.
[0176] The determination of whether bubbling is occurring may be based on characteristics of the patient interface.
[0177] The controller may be configured to monitor the pressure of the gas in the gas flow path.
[0178] The controller may be configured to generate an alarm when the pressure of the gas flow exceeds a threshold value.
[0179] The respiratory assistance device may provide CPAP therapy.
[0180] The respiratory assistance device may provide bubble CPAP therapy.
[0181] The respiratory aid device may include a blower for generating the flow of gas.
[0182] The respiratory aid device may include a humidifier for heating and / or humidifying the gas flow.
[0183] The respiratory aid device may include a housing for containing a blower and / or a humidifier.
[0184] The respiratory assistance device may include a heated breathing tube.
[0185] The blower may be configured to deliver a substantially constant flow of gas and / or a substantially constant pressure.
[0186] The at least one gas characteristic sensor comprises: in a respiratory assistance device, optionally in a gas generator; In the patient interface, In the pressure regulator, They may be located in one or more of the inspiratory and / or expiratory conduits.
[0187] In another aspect of the present disclosure, there is provided a respiratory assistance apparatus for providing respiratory therapy, the respiratory assistance apparatus comprising: a flow generator configured to provide a flow of gas to the inlet conduit; at least one gas characteristic sensor, the at least one gas characteristic sensor configured to measure a flow rate and / or a pressure of the gas in the gas flow path; A controller, the controller comprising: determining a waveform based on measurements of the flow rate and / or pressure of the gas in the gas flow path; determining at least one waveform characteristic based on the flow and / or pressure waveform; configured to determine whether bubbling is occurring within the pressure regulator based on at least one waveform characteristic; The controller includes a controller that automatically selects a respiratory therapy based on whether bubbling is occurring within the pressure regulator.
[0188] The controller may automatically select the bubble CPAP mode when bubbling occurs in the pressure regulator.
[0189] The respiratory therapy mode may include a bubble CPAP therapy mode or a high flow therapy mode.
[0190] The respiratory assistance system may include a respiratory assistance device and / or any of the controllers in the above paragraphs.
[0191] In some embodiments, the respiratory assistance device includes any combination of features disclosed with respect to other aspects.
[0192] These and other features, aspects, and advantages of the present disclosure will be described with reference to the drawings of specific embodiments, which are intended to illustrate specific embodiments broadly and not to limit the disclosure. [Brief explanation of the drawings]
[0193] [Figure 1] 1 shows a schematic representation of a conventional installation using a wall source to provide bubble CPAP. [Figure 2] 1 shows a schematic representation of a respiratory assistance device with a flow generator for providing bubble CPAP. [Figure 3A] 1 illustrates a schematic representation of a respiratory assistance system configured to provide respiratory therapy to a patient. [Figure 3B] FIG. 1 is a front perspective view of an exemplary respiratory aid device with a humidification chamber in place. [Figure 3C] FIG. 3C is a rear perspective view of the respiratory assistance device of FIG. 3B. [Figure 4] 3C illustrates an exemplary sensing chamber of the respiratory assistance device of FIG. 3B. [Figure 4A] 1 is a schematic of the gas flow paths of the filter module and valve module, with solid arrows representing gas flow. [Figure 5] 1 shows an example of ultrasonic flow sensor measurements. [Figure 6A] 1 shows example pressure sensor measurements over time at two pressure levels. [Figure 6B] 1 shows example pressure sensor measurements over time at two pressure levels. [Figure 7A] After removing the DC level, examples of pressure signals with and without bubbling are shown. [Figure 7B] After removing the DC level, examples of pressure signals with and without bubbling are shown. [Figure 8] 1 illustrates an overview of bubbling detection according to one embodiment of a bubbling detection algorithm. [Figure 9] 10 illustrates an example of a training phase according to one embodiment of the bubbling detection algorithm. [Figure 10] 10 illustrates an example of peak detection according to one embodiment of the bubbling detection algorithm. [Figure 11] 1 illustrates an example of an embodiment of a bubbling detection algorithm. [Figure 11A] An example is given in which one or more alerts are generated based on whether bubbling is occurring. [Figure 12] 1 illustrates an example of an embodiment of a bubbling detection algorithm. [Figure 12A] Shows the waveform divided into two time windows. [Figure 13A] The waveform characteristics of the waveform are shown. [Figure 13B] The waveform characteristics of the waveform are shown. [Figure 13C] The waveform characteristics of the waveform are shown. [Figure 13D] The waveform characteristics of the waveform are shown. [Figure 13E] The waveform characteristics of the waveform are shown. [Figure 14] 1 illustrates an example of an embodiment of a flow and / or pressure estimation algorithm. [Figure 14A] 1 illustrates an example of an embodiment of a flow and / or pressure estimation algorithm. [Figure 14B] An example is given in which one or more alerts are generated based on whether bubbling is occurring. [Figure 15] 10 illustrates an exemplary embodiment of determining an estimated flow rate and / or pressure of a gas in a gas flow path. DETAILED DESCRIPTION OF THE INVENTION
[0194] Bubble Continuous Positive Airway Pressure (Bubble CPAP) is a form of respiratory therapy in which a patient (typically a child) is supplied with a gas flow (e.g., to provide respiratory support) via a patient interface. The gas flow is typically provided by a gas source within the walls of a hospital or clinic, or may be provided by cylinders of compressed air and / or oxygen, for example, during transport.
[0195] Bubble CPAP can be provided to provide respiratory support to a patient (e.g., a child) while the patient is in an incubator.
[0196] The patient interface is connected to two conduits: an inspiratory conduit, which provides gas to the patient, and an expiratory conduit, which provides a passage for gas exhaled from the patient. The expiratory conduit communicates with a pressure regulator, which is used to set the pressure.
[0197] The pressure regulator may be a chamber with a column of liquid (e.g., water, although it will be appreciated that other liquids may be used) into which the end of the expiratory conduit is immersed. Gas in the expiratory conduit is exhausted into the pressure regulator. Gas in the expiratory conduit (e.g., including exhaled gas) exhausting into the water may cause the water to bubble, i.e., a bubbling effect. Bubbling occurs when the flow of gas exhausted into the pressure regulator exceeds a pressure setpoint. The pressure is based on the height to which the end of the expiratory conduit is immersed in the water column. A user may control this pressure by varying the height to which the end of the expiratory conduit is immersed in the water column. If the flow of gas exhausted into the pressure regulator does not exceed the pressure setpoint, no bubbling will occur. An indication of whether bubbling is occurring may be important in determining whether a user is receiving therapy. For example, if the pressure setpoint is too high, insufficient therapy may be provided, and bubbling may be absent or intermittent.
[0198] The patient interface is typically configured to form a seal with the patient's mouth and / or nose. Examples of sealed patient interfaces include a nasal mask, an oral mask, a full face mask (which seals over the nose and mouth), nasal pillows, or a cannula with sealing nasal prongs.
[0199] In some locations, such as certain developing countries or remote areas, wall sources may be unavailable or of limited availability. The present disclosure provides systems and methods for providing bubble CPAP therapy with a flow generator as an alternative and / or optionally in addition to a wall source. The flow generator may also include an integrated humidifier to heat and humidify the gas flow. An example of a flow generator with an integrated humidifier is a respiratory assistance device that provides high-flow therapy. A heated breathing tube may also be used with a respiratory device to deliver the gas flow from the humidifier to the patient interface. The flow generator may also include an integrated agitator to provide supplemental gas to the gas flow. The flow generator is preferably a flow generator that draws in ambient gas, e.g., ambient air, rather than being connected to a gas source, e.g., a gas tank or wall source. The agitator may mix one or more supplemental gases with the drawn-in ambient gas.
[0200] A more detailed respiratory device is described in International Patent Application No. PCT / IB2020 / 052566, which is incorporated herein by reference in its entirety.
[0201] A respiratory device (e.g., a high-flow respiratory device) can provide various modes of therapy, including, but not limited to, high-flow therapy, i.e., high-flow respiratory assistance (such as nasal high-flow therapy or tracheal high-flow therapy), CPAP, bilevel, and bubble CPAP, so that a patient does not need to switch to a different respiratory assistance device when switching between different modes of respiratory therapy (e.g., when the patient's condition changes). Each therapy may have a corresponding device mode.
[0202] When the device is operating in each device mode, the device may be used with one or more components specific to the mode and / or type of therapy provided, for example, in bubble CPAP mode, the device may be used with a sealing interface, a pressure regulator, and expiratory and / or inspiratory conduits.
[0203] The respiratory device can operate in a bubble CPAP therapy mode or a high nasal flow therapy mode (as described in more detail below). Additionally or alternatively, the respiratory device may also be capable of operating in other high flow therapy modes, such as high tracheal flow or other high flows. High nasal flow is delivered through a nasal interface. High tracheal flow can be delivered by a tracheal interface. Other interfaces, such as an oral interface, may also be capable of providing high flow to the airways via the oral passageway. The described respiratory assistance device can operate in at least a high flow therapy mode and a bubble CPAP mode.
[0204] The respiratory apparatus device may operate as a flow-controlled device (e.g., the respiratory apparatus may control a blower motor to achieve a target flow), as described in more detail below. The respiratory apparatus may control the apparatus to achieve a target flow rate based on output from one or more sensors of the device, e.g., a flow sensor (as described in more detail elsewhere herein). The target flow may be a constant flow rate. The target flow may be set by the user or may be based on the device mode of therapy, such as a bubble CPAP therapy mode or a high nasal flow therapy mode. In one example, the controller may include pre-defined target flow rates for the bubble CPAP therapy mode and the high nasal flow therapy mode. The pre-defined target flow rates may be stored in the memory of the controller.
[0205] When operating in bubble CPAP mode, the respiratory assistance device may detect pressure and / or flow oscillations indicative of bubbling in the pressure regulator (e.g., bubbler) via a detection algorithm. The respiratory assistance device may generate one or more notifications based on the detection of pressure and / or flow oscillations indicative of bubbling. For example, the respiratory assistance device may generate an alarm if no bubbling is detected in the pressure regulator or if the bubbling is irregular (e.g., intermittent bubbling). Bubbling may be intermittent, where bubbling transitions between occurring and not occurring (e.g., as described in more detail below).
[0206] The device can provide multiple alarms and monitors, for example, the device can determine if there is an irregular amount of leakage, an obstruction, a suggested and / or automatic flow rate change, and / or a flow rate that does not meet inspiratory acceptance (e.g., optionally if the pressure exceeds a threshold).
[0207] The terms respiratory assistance apparatus, breathing device, breathing apparatus, respiratory assistance apparatus, respiratory assistance device breathing apparatus, and variations thereof may be used interchangeably to describe and identify the same item.
[0208] The respiratory assistance apparatus, breathing device, respiratory apparatus, and breathing apparatus may be part of a respiratory assistance system (or breathing system) that includes one or more additional components (e.g., an inspiratory tube, an expiratory tube, a pressure generator), as described in more detail below.
[0209] The terms tube and conduit can be used interchangeably to describe and identify the same item.
[0210] High flow therapy, as discussed herein, is intended to be given its typical and ordinary meaning as understood by those skilled in the art to generally refer to a respiratory assistance system that delivers a target flow of humidified breathing gas through an intentionally non-sealing patient interface with a flow rate generally intended to meet or exceed the patient's inspiratory flow. Typical patient interfaces include, but are not limited to, nasal or tracheal patient interfaces. Typical flow rates for adults often range from about 15 liters per minute to about 60 liters per minute or more. Typical flow rates for pediatric patients (such as neonates, infants, and children) often range from about 1 liter per minute per kilogram of patient weight to about 3 liters per minute per kilogram of patient weight or more. High flow therapy can also include gas mixture components, optionally including the administration of supplemental oxygen and / or therapeutic medications. High flow therapy is often referred to as nasal high flow (NHF), humidified high flow nasal cannula (HHFNC), high flow nasal oxygen (HFNO), high flow therapy (HFT), or tracheal nasal flow (THF), among other common names.
[0211] Some example flow rates used to achieve "high flow" may be any of the flow rates listed below: For example, in some configurations, for an adult patient, "high flow therapy" may refer to delivering gas to the patient at a flow rate of about 10 liters per minute (10 LPM) or greater, such as from about 10 LPM to about 100 LPM, or from about 15 LPM to about 95 LPM, or from about 20 LPM to about 90 LPM, or from about 25 LPM to about 85 LPM, or from about 30 LPM to about 80 LPM, or from about 35 LPM to about 75 LPM, or from about 40 LPM to about 70 LPM, or from about 45 LPM to about 65 LPM, or from about 50 LPM to about 60 LPM, etc. For example, with respect to a neonate, infant, or child, "high flow therapy" may refer to delivering gas to the patient at a flow rate of greater than 1 LPM, e.g., from about 1 LPM to about 25 LPM, or from about 2 LPM to about 25 LPM, or from about 2 LPM to about 5 LPM, or from about 5 LPM to about 25 LPM, or from about 5 LPM to about 10 LPM, or from about 10 LPM to about 25 LPM, or from about 10 LPM to about 20 LPM, or from about 10 LPM to about 15 LPM, or from about 20 LPM to about 25 LPM, etc. A high flow therapy device for an adult, neonate, infant, or child patient may deliver gas to the patient at a flow rate of from about 1 LPM to about 100 LPM, or any subrange outlined above.
[0212] The delivered high-flow gas is humidified (as described in more detail below). Humidifying the gas improves comfort and tolerance to treatment, which can be particularly important when providing treatment to neonates who are unable to communicate.
[0213] In some embodiments, the flow rate delivered during the bubble CPAP mode may be less than about 20 LPM, or less than about 15 LPM, or about 15 LPM.
[0214] While specific examples are described below, those skilled in the art will recognize that the disclosure extends beyond the specifically disclosed examples and / or uses obvious modifications and equivalents thereof, and therefore it is not intended that the scope of the disclosure disclosed herein should be limited to any specific examples described below.
[0215] Bubble CPAP therapy can produce variations or oscillations in the pressure of gas delivered to the patient. By immersing one end of the expiratory conduit in a column of liquid (e.g., water or saline), the resulting bubbling generates variations or waves in the pressure of the gas delivered to the patient (e.g., similar to the bubbling that occurs as described in detail above). Bubble CPAP systems also provide a way to vary the average pressure of gas delivered to the patient by varying the height at which the end of the expiratory conduit is immersed in the column of water. The height at which the end of the expiratory conduit is immersed can be kept constant to maintain the average pressure of gas delivered to the patient.
[0216] It will be appreciated that the liquid may be any one or combination of water, saline and / or any other liquid.
[0217] As shown in FIG. 1 , a conventional respiratory assistance system for providing bubble CPAP therapy can provide humidified, pressurized gas to a patient 119 through a patient interface, such as a mask 128 of FIG. 1 , connected to an inspiratory conduit 121. The inspiratory conduit 121 is connected to an outlet 112 of a humidification chamber 110 containing a volume of water 115. As the volume of water 115 in the humidification chamber 110 is heated by a heating plate 113 within a device housing 114, water vapor begins to fill the volume of the chamber 110 above the water surface. The water vapor can heat and humidify a flow of gas (e.g., air) provided into the chamber 110 from a wall source 118 (see FIG. 1 ) through an inlet 116 of the chamber 110. The heated, humidified gas exits the outlet 112 of the humidification chamber 110 and enters the inspiratory conduit 121. The inlet conduit 121 may contain a heater, such as the heater wire 120 of Figure 1, which heats the walls of the conduit to promote a substantially constant humidification profile along the inlet conduit 121, thus reducing condensation of humidified gas within the inlet conduit 121. The device can provide power to heat the inlet conduit 121 and the heating plate 113, such as through input from one or more sensors (e.g., gas signature sensors) in the system, as described in more detail below.
[0218] The intake conduit 121 may be formed by at least one conduit (eg, coupled together).
[0219] The humidified gas can be passed through an inspiratory conduit 121 to a patient interface, such as a mask 128, attached and / or sealed around the patient's 119 mouth, nose, and / or nostrils. The inspiratory conduit 121 provides the patient 119 with a gas flow that can be ambient air, oxygen, a mixture of the two, or a mixture of ambient air and other supplemental gases. The gas can include medication, which can be added via nebulization. The gas can also include supplemental gas, such as nitric oxide. The supplemental gas can be provided via a supplemental gas port. The device can include one or more supplemental gas composition sensors (e.g., ultrasonic sensors, as described below) to measure the amount of supplemental gas in the gas flow (or, for example, the ratio of supplemental gas in the gas flow to other gases). The gas flow through the inspiratory conduit 121 can be delivered at a substantially constant flow rate and / or a substantially constant pressure in bubble CPAP. As shown in FIG. 1, the equipment has a gas flow supplied by a wall source 118. The wall source 118 can deliver gas at a target flow rate to maintain the flow rate of gas delivered to the patient.
[0220] In some configurations, the supplemental gas may be provided in combination with oxygen (as described below with respect to FIG. 4A) or separately from oxygen.
[0221] 1, excess gas can flow through an expiratory conduit 130 to a pressure regulator 134, which in the illustrated example is a bubbler. In a bubble CPAP system, the expiratory conduit 130 can terminate in an open termination 136. This termination 136 can be immersed in a volume of water 138 inside the bubbler 134.
[0222] The expiratory conduit 130 may be formed at least in part from a breathable material, such as Evaqua material, to allow excess water vapor to pass to the ambient atmosphere. The breathable expiratory conduit 130 allows excess water vapor to pass to the ambient atmosphere to reduce the formation of condensation within the expiratory conduit 130, which may block the expiratory conduit 130. It will be appreciated that an expiratory conduit 130 blocked by condensation will not provide a set pressure based on the height to which the expiratory conduit is immersed.
[0223] The exhalation conduit 130 may be formed by at least one conduit (eg, connected together).
[0224] The bubbler can regulate pressure by immersing the end 136 of the expiratory conduit 130 at a desired depth below the water level 140 within the volume of water 138. The end 136 can also be located on a short conduit, which can optionally be integrated into the end of the expiratory conduit 130. The bubbler can act as a pressure regulator by venting gas whenever the pressure exceeds a desired level, maintaining an average or mean pressure at a target level. Bubble CPAP systems can also include a pressure relief valve 146 to vent excess gas when the pressure exceeds the desired level. The bubbler can also provide oscillations in pressure, which may have clinical benefits. Bubble CPAP therapy may reduce the incidence of acute lung injury and bronchopulmonary dysplasia compared to intubation and / or mechanical ventilation. Bubble CPAP therapy may also aid in the removal of carbon dioxide. Bubble CPAP therapy can also be simple for clinicians to set up, as the user only needs to insert the end 136 of the expiratory conduit 130 submerged to a desired depth below the water level 140 to set the pressure and create oscillations during breathing, which can help keep the alveoli open and improve lung function in children.
[0225] FIG. 2 illustrates an exemplary respiratory assistance system 150 including a respiratory assistance device 10. The respiratory assistance device includes a flow generator 218 configured to provide bubble CPAP (the flow generator 218 may include a blower, but can also include other types of flow generators disclosed herein). By using a flow generator to generate the gas flow, the respiratory assistance device 10 can be used without a wall source to provide bubble CPAP, such as in situations where a wall source is unavailable. Furthermore, the use of a flow generator within the respiratory assistance device 10 allows the device to draw in ambient air and provide it as the gas flow for bubble CPAP. This can make the respiratory assistance device 10 simpler and less expensive, as there is no need for gas storage or a gas source, such as a wall source. Furthermore, a respiratory assistance device 10 with a flow generator is advantageous because ambient air is provided to the patient, eliminating the risk of running out of gas. This ensures that there is no interruption in therapy due to an empty gas source, as ambient air is plentiful. By integrating the humidifier and, optionally, the supplemental gas mixer into the flow generator (e.g., by integrating the oxygen inlet port 358' shown in FIG. 3C), the system requires fewer separate components, which simplifies its installation. Furthermore, the system occupies less space because it has fewer separate components connected by tubing. The described respiratory assistance device 10 with an integrated humidifier and optional integrated supplemental gas mixer can occupy less space and reduce additional interconnecting tubing. Additionally, the flow generator, integrated humidifier, and supplemental gas mixer can be controlled by a single controller, which can additionally monitor and control various flow parameters, as further described.
[0226] In some embodiments, the respiratory assistance device 10 including the flow generator may be able to provide other forms of therapy, such as nasal hyper-flow therapy, which may make it easier to transition between different types of respiratory support as the patient's condition changes and may also reduce the number of consumable components required, for example a common heated breathing tube may be used across multiple therapies and only the patient interface needs to be replaced.
[0227] In some embodiments, the respiratory assistance device 10 may include dimensions small enough to be suitable for use on a bed.
[0228] The respiratory assistance system 150 of FIG. 2 can differ from the conventional bubble CPAP equipment of FIG. 1 by having at least the gas flow provided by a flow generator 218 integrated within the device housing 214. The system of FIG. 2 can also optionally include a supplemental gas source (such as an oxygen tank, an oxygen mixer coupled to a flow meter, and the like) to control the oxygen concentration in the gas flow delivered to the patient 119. The supplemental gas source can be coupled to the device housing 214 and / or the flow generator 218 (e.g., at a supplemental gas inlet). The supplemental gas source can also be configured to provide other types of supplemental gas, such as nitrogen. The supplemental gas source may be coupled to an internal mixer that mixes the supplemental gas with ambient air to provide the gas flow to the patient. The concentration of the supplemental gas introduced or present in the gas flow can be controlled.
[0229] The respiratory assistance system or device may include one or more gas characteristic sensors to measure characteristics of the gas (e.g., a sensor that measures bubbling characteristics). For example, the system or device may include one or more sensors to determine the characteristics of the gas. The gas characteristic sensors may include one or more of a pressure sensor, a flow sensor, and a temperature sensor.
[0230] The following disclosure uses a gas signature sensor as an example, and it will be recognized that the disclosure is equally applicable to other sensors that measure properties of bubbling.
[0231] The gas characteristic sensor may be located within the device (or flow generator 218), as described in more detail below.
[0232] The gas characteristic sensor may be placed in the gas flow path after the flow generator.
[0233] The gas characteristic sensor (or other object) may be located within the patient interface.
[0234] The gas characteristic sensor may be located within the pressure regulator.
[0235] The gas characteristic sensor may be located in a gas flow path (eg, in an inspiratory and / or expiratory conduit or other gas flow path within the device).
[0236] In some embodiments, a gas characteristic sensor may be provided through a monitoring port in the patient interface, pressure regulator, or other component in the gas flow path.
[0237] The sensor may include wires for coupling to the device, or may communicate with the device wirelessly.
[0238] The sensor may be coupled to the device via one or more wires embedded in the wall of the conduit, or may be provided within the conduit or external to the conduit.
[0239] 1, the system can include a temperature sensor, such as temperature sensor 144, in intake conduit 121. Temperature sensor 144 can be coupled to and in electrical communication with a controller located within device housing 214.
[0240] In some embodiments, the flow generator is configured to receive and mix together an ambient gas and a make-up gas.
[0241] The respiratory assistance system 150 of FIG. 2 may include a high flow device (such as the respiratory assistance device 10).
[0242] Figure 3A shows an example of respiratory assistance device 10 in a high flow therapy configuration, however, features of respiratory assistance device 10 used in a high flow therapy configuration may also be used within the device when in a bubble CPAP configuration (e.g., as shown in Figure 2).
[0243] Respiratory assistance apparatus 10 may include a main device housing 100. Main device housing 100 may contain a flow generator 11, which may be in the form of a motor / impeller arrangement (e.g., a blower), an optional humidifier or humidification chamber 12, a controller 13, and a user interface 14. Humidification chamber 12 may be removable for refilling and / or replacement. User interface 14 may include a display and input devices such as buttons, a touchscreen, a combination of a touchscreen and buttons, or the like. Controller 13 may include one or more hardware and / or software processors and may be configured or programmed to control the components of the apparatus, including, but not limited to, operating flow generator 11 to generate a gas flow for delivery to a patient, operating humidifier 12 (if present) to humidify and / or heat the gas flow, receiving user input from user interface 14 for reconfiguration and / or user-defined operation of respiratory assistance apparatus 10, and outputting information to a user (e.g., on a display). The user may be a patient, a medical professional, or the like.
[0244] Continuing with reference to FIG. 3A, which discloses a respiratory assistance device in a high-flow therapy configuration, a patient breathing conduit 16 couples to a gas outlet 21 in the main device housing 100 of the respiratory assistance device 10 and can be coupled to a patient interface 17. In the example of a high-flow device as shown in FIG. 3A, the patient interface is a non-sealing interface including a nasal cannula with a manifold 19 and nasal prongs 18 to provide nasal high-flow therapy. The nasal cannula does not completely seal with the user's nostrils such that when the user exhales, exhaled gases leak out around the nasal prongs. The patient breathing conduit 16 can also be coupled to a sealing interface, such as a face mask, oral-nasal mask, nasal mask, nasal pillows mask, or nasal cannula, to provide bubble CPAP.
[0245] The gas flow can be generated by a flow generator 11 and may be humidified before delivery to the patient via the patient conduit 16 through the patient interface 17. The controller 13 can control the flow generator 11 to generate a gas flow at a desired flow rate and / or one or more valves to control the mixture of air and oxygen or other breathable gas. The controller 13 can control a heating element in the humidification chamber 12, if present, to heat the gas to a desired temperature to achieve a desired level of temperature and / or humidity for delivery to the patient. The patient conduit 16 can include a heating element 16a, such as a heater wire, to heat the gas flow to be passed to the patient. The heating element 16a can also be under the control of the controller 13. The heating element 16a heats the gas to reduce and / or prevent condensation in the patient conduit 16.
[0246] The respiratory support apparatus 10 may include one or more gas characteristic sensors for measuring gas characteristics. The gas characteristic sensors may include one or more of an ultrasonic transducer, a flow sensor such as a thermistor flow sensor, a pressure sensor, a temperature sensor, a humidity sensor, or other sensors in communication with the controller 13 to monitor the characteristics of the gas flow and / or operate the respiratory support apparatus 10 in a manner to provide appropriate therapy. The gas flow characteristics may include gas concentration, flow rate, pressure, temperature, humidity, or others. Sensors 3a, 3b, 3c, 20, 25, such as pressure, temperature, humidity, and / or flow sensors, may be located at various locations within the main device housing 100, the patient conduit 16, and / or the patient interface 17. The controller 13 may receive outputs from the sensors to determine appropriate target temperatures, flow rates, and / or pressures for the gas flow and to assist in operating the respiratory system 10 in a manner to provide appropriate therapy. Providing appropriate therapy can include meeting the patient's inspiratory demand and / or meeting the patient's inspired oxygen concentration (FiO2) demand (e.g., to control the patient's oxygen saturation (SpO2)). Appropriate therapy flow rates, e.g., high flow therapy flow rates, and / or flow rates that meet or exceed the patient's inspiratory demand, are described below.
[0247] The respiratory assistance device 10 may include one or more patient sensors. The patient sensors may measure one or more patient characteristics (e.g., the patient's oxygen saturation). The one or more patient sensors may be connected to the controller by a wired or wireless connection (as described in more detail below).
[0248] In some configurations, the one or more patient sensors include a pulse oximeter configured to measure the patient's blood oxygen saturation. The pulse oximeter may be, for example, finger-worn or ear-worn.
[0249] In some configurations, the device may control the oxygen concentration or other supplemental gas concentration (e.g., as described above) provided to the patient. The device may control one or more valves (as described below) based on a gas composition sensor (e.g., an ultrasound sensor) and / or the patient's blood oxygen saturation (e.g., a pulse oximeter). The device may control the valves to achieve a gas composition target (e.g., oxygen concentration) or a target for the patient's blood oxygen saturation.
[0250] The use of an ultrasonic gas composition sensor (as described in more detail below) may allow for rapid measurement of gas composition and rapid response control of the device's valves to control a gas composition target (e.g., oxygen concentration) or a patient's blood oxygen saturation target. It will be appreciated that other gas composition sensors may alternatively be used.
[0251] Respiratory assistance device 10 may include a wireless data transmitter and / or receiver, or transceiver 15, that enables controller 13 to wirelessly receive data signals 8 from operational sensors (e.g., gas characteristic sensors or patient sensors) and / or control various components of system 10. Additionally or alternatively, data transmitter and / or receiver 15 may transmit data to a remote server or allow remote control of system 10. In one example, the remote server may record patient usage data, such as use of a bubble CPAP system or use of a high-flow system (e.g., as described in more detail below). Usage may be hours of use and / or may include flow rate and humidification levels (e.g., dew point). System 10 may also include wired connections, e.g., using cables or wires, that enable controller 13 to receive data signals 8 from operational sensors and / or control various components of respiratory assistance system 10.
[0252] The wireless data transmitter and / or receiver, or transceiver 15, may act as a network interface (eg, as a modem).
[0253] The wireless data transmitter and / or receiver, or transceiver 15, may use one or more of the communication protocols known in the art, such as Wifi, Bluetooth, Zigbee, cellular (3G, 4G, or 5G, etc.).
[0254] A wireless data transmitter and / or receiver, or transceiver 15, may enable communication between the device and a mobile device (eg a phone or tablet via Bluetooth or Wifi).
[0255] The wireless data transmitter and / or receiver, or transceiver 15, may include several separate transmitters, receivers, and / or transceivers for each or a group of communication protocols.
[0256] A wireless data transmitter and / or receiver, or transceiver 15, may be configured to transmit data and receive data from one or more devices (eg, a server).
[0257] The one or more events or alerts may be transmitted (as described in more detail below) to one or more servers and / or devices (e.g., computers, phones, or tablets). Additional information related to the events or alerts (e.g., time, duration, or severity) may additionally be transmitted to the servers and / or devices.
[0258] A bubbling time metric based on whether bubbling is occurring (as described in more detail below) may also be sent to the server and / or device.
[0259] The respiratory assistance apparatus 10 may be powered from mains voltage.
[0260] In some embodiments, the system may include an auxiliary power source (eg, a battery).
[0261] In some embodiments, the system can include a battery. The battery may provide the primary power source for the system or may serve as a backup power source when the primary power source is unavailable. This is advantageous because it allows for continuous delivery of therapy, i.e., gas can continue to be delivered to the patient even if there is a primary power shortage or outage. This is advantageous because therapy can be sustained for a period of time for neonates or infants, thereby reducing the likelihood of physiological deterioration or injury to these patients due to compromised therapy.
[0262] Batteries can increase the portability of the system by allowing the system to be used in situations where a mains voltage source is not available.
[0263] High flow therapy as discussed herein is intended to be given its typical general meaning as understood by those skilled in the art to generally refer to a respiratory assistance system that delivers a target flow of humidified breathing gas through an intentionally non-sealing patient interface at a flow rate generally intended to meet or exceed the patient's inspiratory flow.
[0264] 3B and 3C illustrate an exemplary respiratory assistance device 10. The device can include a housing 300 that at least partially encloses a flow generator. The flow generator can include a motor and / or a sensor module. The motor and / or sensor module can be permanently attached to the main housing 300. The motor and / or sensor module can also be optionally removable from the main housing 300. The housing 300 can include a humidifier or humidification chamber bay 318 to receive a removable humidification chamber 310. The removable humidification chamber 310 contains a suitable liquid, such as water, for heating and humidifying gases delivered to the patient. The humidification chamber 310 can be fluidly coupled to the device housing 300 for linear sliding movement within the chamber bay 318. A gas outlet port 322 can establish fluid communication between the motor and / or sensor module and the inlet 306 of the chamber 310.
[0265] The heated and humidified gas can exit the chamber 310 through the outlet 308 and enter the humidified gas return 340, which can include a removable L-shaped elbow. The removable elbow can further include a patient outlet port 344 for coupling to an inspiratory conduit, such as the inspiratory conduit 16 of FIG. 3A, to deliver the gas to the patient interface 17. The gas outlet port 322, the humidified gas return 340, and the patient outlet port 344 can each have seals, such as O-ring seals or T-seals, to provide a sealed gas passage between the device housing 300, the humidification chamber 310, and the inspiratory conduit. The floor of the humidification chamber bay 318 within the housing 300 can include a heater configuration, such as a heating plate or other suitable heating element, to heat water within the humidification chamber 310 for use during the humidification process. The elbow can include one or more integrated sensors. For example, the elbow can include a pair of embedded temperature sensors.
[0266] It can be advantageous for the elbow to be removable in that it can be removed and disinfected between uses by different patients.
[0267] As shown in FIG. 3C , the device can include an arrangement in which the flow generator can deliver air, oxygen (or an alternative supplemental gas), or a suitable mixture thereof to the humidification chamber 310 and thereby to the patient. This arrangement can include an air inlet 356′ in the rear wall 322 of the housing 300. The device can include a separate oxygen inlet port 358′. In the configuration shown, the oxygen inlet port 358′ can be located adjacent one side of the housing 300 at its rear end. The oxygen port 358′ can be connected to an oxygen source, such as a tank or an oxygen agitator. The oxygen inlet port 358′ can be in fluid communication with a valve. The valve can be, for example, a solenoid valve, a proportional valve, and / or any other suitable valve capable of controlling the amount of oxygen added to the gas stream delivered to the humidification chamber 310. An arrangement in which the flow generator can deliver air, oxygen (or an alternative supplemental gas), or a suitable mixture thereof is disclosed in more detail below in connection with FIG. 4A .
[0268] The housing 300 can include a suitable electronics board, such as a sensing circuit board. The electronics board can contain or be in electrical communication with suitable electrical or electronic components, such as, but not limited to, microprocessors, capacitors, resistors, diodes, operational amplifiers, comparators, and switches. One or more sensors can be used in conjunction with the electronics board. Components of the electronics board (such as, but not limited to, one or more microprocessors) can act as the controller 13 of the device. One or both of the electronics boards can be in electrical communication with electrical components of the system 10, including, but not limited to, the display facility and user interface 14, motors, valves, and heater plates, to provide the desired flow rate of gas, humidify and heat the gas stream to the appropriate level, and operate motors to supply the appropriate amount of oxygen (or an appropriate amount of an alternative supplemental gas) to the gas stream.
[0269] The display may include one or more of a touch screen and / or one or more mechanical input devices.
[0270] As described above, operational sensors, such as flow, temperature, humidity, and / or pressure sensors, can be located at various locations within the respiratory assistance device, the patient conduit 16, and / or the cannula 17. An electronics board can be in electrical communication with these sensors. Output from the sensors can be received by the controller 13 to assist the controller 13 in operating the respiratory assistance system 10 in a manner that provides optical therapy, including meeting inspiratory demand. One or more sensors (e.g., Hall effect sensors) can be used to measure the motor speed of the flow generator motor. The motor may include a brushless DC motor, and the motor speed can be measured from the brushless DC motor without using a separate sensor. For example, during operation of the brushless DC motor, back EMF can be measured from a de-energized winding of the motor, and motor position can be determined from the de-energized winding of the motor, which can then be used to calculate motor speed. Additionally, a motor driver can be used to measure motor current, which can be used together with the measured motor speed to calculate motor torque. The motor may also include a low-inertia motor.
[0271] Room air can enter the flow generator through an inlet port, such as air inlet port 356' in FIG. 3C. The flow generator can operate at motor speeds greater than 1,000 RPM but less than 30,000 RPM, greater than 2,000 RPM but less than 21,000 RPM, greater than 4,000 RPM but less than 15,000 RPM, or any value in between. Operation of the flow generator can mix gases entering the flow generator, such as the motor and / or sensor chamber, through the inlet port. Using a flow generator such as a mixer can reduce the pressure drop that would otherwise occur in a system with a separate mixer, such as a static mixer including baffles, since mixing requires energy.
[0272] In some embodiments, the respiratory assistance device (or a portion of the device, such as the flow generator) may enter a standby mode when therapy is paused or stopped. In standby mode, the motor speed is maintained at a low, constant speed, for example, between 1,000 RPM and 3,000 RPM. Maintaining a relatively low motor speed reduces the time it takes for the impeller to reach operating speed when therapy is resumed.
[0273] As shown in FIG. 4 , the mixed air can exit the flow generator and enter a flow path 402 in a sensor chamber 400, which can be located within a motor and / or sensor module. A sensing circuit board 404 with sensors, such as an ultrasonic sensor 406 and / or a heated thermistor flow sensor, can be positioned within the sensor chamber 400 such that the sensing circuit board is at least partially immersed in the gas flow. At least a portion of the sensors on the sensing circuit board can be positioned within the gas flow to measure gas characteristics within the flow. After passing through the flow path 402 in the sensor chamber 400, the gas can exit to the humidification chamber 310.
[0274] Positioning the sensor downstream of the flow generator can improve the accuracy of measurements, such as measurements of gas concentration, including oxygen concentration, over systems where the sensor is positioned upstream of the flow generator and / or mixer. Such positioning can provide a repeatable flow profile. Furthermore, positioning the sensor downstream of a combined flow generator and mixer avoids the effects of pressure drop that would otherwise occur when sensing occurs before the flow generator and separate mixer. Immersing at least a portion of the sensing circuit board and sensor in the flow path can also improve the accuracy of measurements, as sensors immersed in the flow are likely to experience the same conditions, such as temperature and pressure, as the gas flow and therefore provide a better indication of the gas flow characteristics.
[0275] As shown in FIG. 4, the flow path 402 can have a curved shape. The flow path 402 can be configured to have a curved shape without sharp turns. The flow path 402 can have curved ends with straight sections between the curved ends. A curved flow path can reduce the pressure drop of the gas flow without reducing the sensitivity of the flow measurement by aligning a portion of the measurement area with the flow path to form a measurement section of the flow path.
[0276] The sensing circuit board 404 may include sensors such as acoustic transmitters and / or receivers, flow sensors, pressure sensors (e.g., absolute or relative), humidity sensors, temperature sensors, thermistors, and the like (or other sensors, e.g., as disclosed anywhere herein).
[0277] Gas flow rate may be measured using at least two different types of sensors. A first type of sensor may include a thermistor that can determine flow rate by monitoring heat transfer between the gas flow and the thermistor. A thermistor flow sensor may operate a thermistor at a constant target temperature within the flow as the gas flows past and around the thermistor. The sensor may measure the amount of power required to maintain the thermistor at the target temperature. The target temperature may be configured to be higher than the temperature of the gas flow, so that more power is required to maintain the thermistor at the target temperature at higher flow rates.
[0278] The thermistor flow sensor can also maintain multiple (e.g., two, three, or more) constant temperatures on the thermistor to avoid too small or too large a difference between the target temperature and the gas flow temperature. Multiple different target temperatures allow the thermistor flow sensor to be accurate over a large gas temperature range. For example, the thermistor circuit can be configured to switch between two different target temperatures so that the gas flow temperature always falls within a certain range relative to one of the two target temperatures (e.g., not too close or too far). The thermistor circuit can be configured to operate at a first target temperature of about 50°C to about 70°C, or about 66°C. The first target temperature can be associated with a desired flow temperature range of about 0°C to about 60°C, or about 0°C to about 40°C. The thermistor circuit can be configured to operate at a second target temperature of about 90°C to about 110°C, or about 100°C. The second target temperature can relate to a desired flow temperature range of about 20°C to about 100°C, or about 30°C to about 70°C.
[0279] The controller can be configured to adjust the thermistor circuit to change between at least a first target temperature mode and a second target temperature mode by coupling or bypassing a resistor in the thermistor circuit. The thermistor circuit can be arranged in a Wheatstone bridge configuration, including a first voltage driver arm and a second voltage driver arm. The thermistor can be located on one of the voltage driver arms. More details of the thermistor flow sensor are described in International Publication No. WO 201805230 A2, the entirety of which is incorporated herein by reference.
[0280] A second type of sensor can include an acoustic (e.g., ultrasonic) sensor assembly. Acoustic sensors including acoustic transmitters and / or receivers can be used to measure the time of flight of acoustic signals to determine gas velocity and / or composition, which can be used in flow therapy devices. In one ultrasonic sensing (including ultrasonic transmitters and / or receivers) topology, a driver causes a first sensor, such as an ultrasonic transducer, to generate an ultrasonic pulse in a first direction. A second sensor, such as a second ultrasonic transducer, receives the pulse and provides a measurement of the time of flight of the pulse between the first and second ultrasonic transducers. Using this time-of-flight measurement, the acoustic velocity of the gas flow between the ultrasonic transducers can be calculated by a processor or controller of the respiratory assistance device. A second sensor can also transmit a pulse in a second direction opposite the first direction to provide a second measurement of the time of flight, which can be received by the first sensor, and a characteristic of the gas flow, such as flow rate or velocity, can be determined. In another acoustic sensing topology, acoustic pulses transmitted by an acoustic transmitter, such as an ultrasonic transducer, can be received by an acoustic receiver, such as a microphone. More details about acoustic flow sensors are described in WO2017095241A3, which is incorporated by reference in its entirety. Acoustic pulses can be transmitted along the flow path of a gas, whereby the acoustic sensor can be used to measure the flow rate or velocity of the gas.
[0281] Ultrasonic sensors such as those described above may provide a sensor that provides a rapid response, allowing a controller to control a valve that can regulate the amount of O2 in the gas stream. Alternatively, other gas composition sensors can be used.
[0282] Readings from both the first and second types of sensors can be combined to determine a more accurate flow measurement. For example, a previously determined flow rate and one or more outputs from one of the sensor types can be used to determine a predicted current flow rate. The predicted current flow rate can then be updated using one or more outputs from the other of the first and second types of sensors to calculate a final flow rate.
[0283] For example, as shown in Figure 4A, the device may include a valve module 4001 that controls the flow of oxygen and / or other gases into the gas flow path of the device, allowing the device to adjust the percentage of oxygen entrained in the airflow. The valve module is formed as a modular unit for ease of manufacture, assembly, operation, or replacement, e.g., in the event of failure, routine maintenance, or future upgrades / upgrades.
[0284] The valve module may be configured to operate to control the oxygen concentration of the gas provided to the user at a therapeutic oxygen concentration.
[0285] The device may include a filter module 4002, which may include a filter.
[0286] The filter module 4002 and valve module 4001 described herein may vary the gas flow path for the device. For example, the valve module may control the flow of oxygen into the gas flow path of the device through the valve module and filter module. Alternatively, the valve module may be bypassed by connecting an alternate oxygen source directly to the filter module via an alternate supply inlet. This may be useful in situations where a user may want to manually adjust the oxygen supply (i.e., via a wall-supplied rotameter).
[0287] It will be appreciated that the filter modules and valve modules described herein may be used separately in an apparatus to deliver a gas flow, or alternatively, the filter and valve modules may be used together as a filter and valve assembly for improved functionality.
[0288] In the illustrated configuration, the device 10 performs at least one of the following: via a valve module (for automatic oxygen regulation by the device), or Oxygen is received via an alternative gas inlet provided on top of the filter (which can be fitted with a manually adjustable oxygen supply, such as a wall supply regulated by a regulator).
[0289] The device 10 may include a manifold. The manifold may be located on the housing. The manifold may provide one or more of an oxygen inlet, an alternative gas inlet, and / or an air inlet.
[0290] The manifold may provide oxygen, alternative gases, and / or ambient air to the valve module, filter module, and / or blower.
[0291] An oxygen inlet or alternative gas supply inlet may be provided on the side of the manifold.
[0292] The manifold may allow excess oxygen to spill over to the ambient environment and / or may allow oxygen to spill over to the ambient environment when the blower is turned off and oxygen continues to be supplied, which prevents O2 buildup within the housing.
[0293] The various configurations described are merely example configurations, and any one or more features from any configuration may be used in combination with any one or more features from any other configuration.
[0294] As another example, while the motor and / or sensor subassembly recess is described as being on the back of the housing, it could alternatively be on the back, side, front or top of the housing. The air and / or oxygen inlet may also be positioned differently as desired.
[0295] As another example, the humidification chamber and chamber bay can be configured so that the humidification chamber is inserted into and removed from the chamber bay from the side, back, or top of the housing, rather than being configured so that the humidification chamber is inserted into and removed from the chamber bay from the front of the housing.
[0296] As another example, although the filter module is described as being inserted into the housing from above and the valve module is described as being inserted into the housing from below, one or both of these components can be inserted into any suitable part of the housing, such as the top, bottom, side, front, or back.
[0297] The filter module and valve module are described with reference to a respiratory assistance device capable of delivering heated and humidified gases to a patient or user.
[0298] The filter module and / or valve module may alternatively be used with devices that do not require a humidifier, and therefore do not require a humidification chamber. For example, it will be recognized that the configuration isolating the motor and gas flow path from electrical and electronic components has wide application within other types of gas delivery devices.
[0299] The respiratory assistance device may be configured to deliver high flow therapy (eg, as shown in Figure 3) or bubble CPAP therapy (eg, as shown in Figure 2).
[0300] The respiratory assistance device may be interchangeable between one or more of a high flow therapy mode, a bubble CPAP therapy mode, a CPAP therapy mode, and / or a bi-level therapy mode.
[0301] In the high flow therapy mode, the respiratory assistance device is configured to provide high flow therapy.
[0302] In the bubble CPAP therapy mode, the respiratory assistance device is configured to provide bubble CPAP therapy.
[0303] High flow treatment is nasal high flow treatment.
[0304] In the high flow therapy mode, the system includes a non-sealing patient interface coupled to the inspiratory conduit 121 .
[0305] The non-sealing patient interface may be a nasal cannula.
[0306] In use, the nasal cannula is positioned on the user's face to deliver gas to the user's nostrils.
[0307] In the bubble CPAP treatment mode, the system includes a sealed patient interface coupled to an inspiratory conduit 121, and an expiratory conduit 130 coupled to the sealed patient interface.
[0308] The expiratory conduit 130 is coupled to a patient interface and / or a pressure regulator for regulating the pressure within the patient's airway.
[0309] As described in more detail above, the pressure regulator includes a chamber with a column of water and an expiratory conduit 130 that is immersed within the column of water. The pressure provided to the user is defined or set by the depth to which the expiratory conduit 130 is immersed within the column of water.
[0310] In some embodiments, the flow generator (as part of the respiratory assistance device) is configured to provide a flow of gas through the gas flow path at a target flow rate and / or a target pressure.
[0311] The controller may control the motor output (eg, motor speed or motor current) of the motor to achieve the target flow rate.
[0312] The target pressure may be controlled by a pressure regulator as described above.
[0313] In some embodiments, the gas flow path may include an inspiratory conduit connected to a patient interface and an expiratory conduit connected to a pressure regulator.
[0314] The gas flow path may include the part of the respiratory aid through which gas flows.
[0315] The inspiratory conduit 121 may be common between the high flow and bubble CPAP treatment modes.
[0316] The same intake duct can be used in both modes, reducing the number of components that need to be interchanged when changing modes.
[0317] Furthermore, this common inspiratory conduit allows the same respiratory assistance device, including the flow generator and humidifier integrated within the housing, to be used for both bubble CPAP and high flow modes. Furthermore, the integrated humidifier and flow generator within a common housing simplifies transitioning between bubble CPAP and other therapy modes (e.g., non-bubble CPAP modes, such as high flow modes) by allowing the use of a single device rather than the multiple component specific installations required in prior art systems.
[0318] The system provides a single respiratory support device that can be used to deliver both bubble CPAP therapy and high flow therapy while only requiring a change of interface. Because a common respiratory support device can be used to deliver humidified gas, there are no changes to the components on the gas delivery side, i.e., no changes to the gas delivery components.
[0319] The controller may include a high flow therapy control program associated with the high flow therapy mode.
[0320] The controller may include a bubble CPAP therapy control program associated with a bubble CPAP therapy mode.
[0321] In some embodiments, the high flow therapy mode may include a high flow therapy controller. Optionally, the high flow therapy controller may be configured to execute a high flow therapy control program.
[0322] In some embodiments, the bubble CPAP therapy mode may include a bubble CPAP therapy controller. Optionally, the bubble CPAP therapy controller may be configured to execute a bubble CPAP therapy control program.
[0323] The controller is configured to select and apply a program corresponding to the selected mode of operation.
[0324] The high flow therapy control program and the bubble CPAP therapy control program each define corresponding operating parameters.
[0325] In some embodiments, the operating parameters may include one or more of a motor speed or a pressure limit.
[0326] The operating parameters may include one or more alarm conditions.
[0327] One or more alarm conditions may be a lack of bubbling in a bubble CPAP therapy mode.
[0328] In some embodiments, an alarm may be activated when a lack of bubbling is detected for more than a threshold period of time.
[0329] The operating parameters may define a humidification level.
[0330] The operating parameter may be one or more of a temperature or dew point set point for controlling the humidifier.
[0331] The level of humidification provided during the high flow mode may be greater than the level of humidification provided during the bubble CPAP therapy mode.
[0332] The operating parameters may also define the flow limits corresponding to each mode.
[0333] The controller may be configured to detect bubbling of the bubbler, and if bubbling is detected, the controller selects a bubble CPAP therapy mode.
[0334] The controller may be configured to consider bubbler bubbling in all therapy modes (e.g., bubble CPAP and high flow therapy modes), for example, bubbling detection may occur continuously or periodically during operation of the device.
[0335] In some embodiments, detection of bubbling may occur at the start of treatment.
[0336] In some embodiments, detection of bubbling may occur for a predetermined time at or near the start of treatment.
[0337] In some embodiments, the detection of bubbling may occur within a predetermined time of the start of treatment.
[0338] In some embodiments, the detection of bubbling may occur at or near the start of a non-bubble CPAP mode (e.g., a high flow therapy mode). If bubbling is detected in a non-CPAP mode, the controller may issue one or more alerts (e.g., notifications) and / or automatically change to a bubble CPAP mode.
[0339] In some embodiments, detection of bubbling may occur when changing treatment modes.
[0340] In some embodiments, bubbling detection may occur when a user changes one or more treatment settings (eg, flow rate setpoint and / or pressure setpoint).
[0341] In some embodiments, the detection of bubbling may occur when the device is in a non-bubble CPAP mode.
[0342] When bubbling is detected during a non-bubble CPAP mode (e.g., a high flow therapy mode), the controller may generate an alarm or notification indicating that the bubbler is connected and / or the wrong therapy has been selected.
[0343] The controller may select a bubble CPAP therapy mode once bubbling is detected for a predetermined period of time.
[0344] The controller may display a message to the user to consider changing the mode to a bubble CPAP therapy mode once bubbling is detected (optionally for a predetermined period of time).
[0345] The controller may automatically select the treatment mode based on whether a bubbler is coupled and / or whether bubbling is detected in the bubbler.
[0346] The controller may automatically switch the mode to a bubble CPAP therapy mode if a bubbler is detected by bubbling.
[0347] The controller may automatically switch the mode to a bubble CPAP therapy mode if bubbling is detected in the bubbler.
[0348] The controller may limit the flow rate if bubbling is detected. Limiting the flow rate in this case may provide protection to the patient if an incorrect mode (e.g., a non-bubble CPAP mode) is selected. The controller may limit the flow rate if bubbling is detected in a non-bubble CPAP mode.
[0349] The controller may automatically limit the flow set point if bubbling is detected in non-bubble CPAP mode.
[0350] If bubbling is detected in non-bubble CPAP mode, the controller may provide an alert to inform the user that bubbling has been detected and / or that restrictions have been applied to the flow rate setpoint. The user may be given the ability to override restrictions applied to the flow rate setpoint.
[0351] When automatically switching to bubble CPAP therapy mode, the controller may maintain the current flow rate or adjust the flow rate to a rate appropriate for bubble CPAP therapy.
[0352] When automatically switching to bubble CPAP therapy mode, the controller may control the device based on a set of safe operating parameters (e.g., safe flow rate, pressure limits, etc.), which may include one or more range or limit thresholds.
[0353] In some embodiments, when bubbling is not detected but the controller is not configured to automatically change to bubble CPAP mode, the controller may still monitor alarms and thresholds for each bubble CPAP mode.
[0354] When automatically switching to the bubble CPAP therapy mode, the controller may generate a notification prompting the user to switch the bubble CPAP interface.
[0355] When switching to a bubble CPAP therapy mode, the device may present an option via the user interface to change to the bubble CPAP mode that the user can select.
[0356] In some embodiments, the detection of bubbling may be used to detect an incorrect surrounding component (such as a patient interface, conduit, etc.) using a respiratory assistance device and / or therapy mode.
[0357] The user may select (optionally via a user interface) a high flow therapy mode or a bubble CPAP therapy mode.
[0358] The detection of bubbling may be a detection as described anywhere herein.
[0359] The respiratory assistance device may also be configured to detect the presence of bubbling in the bubbler (or other pressure regulator). Bubbling can be useful in indicating that the system is operating correctly. For example, a temporary lack of bubbling can indicate that the patient's maximum inspiratory flow exceeds the flow rate delivered by the device at that moment (i.e., the flow rate delivered by the respiratory assistance device is insufficient). Additionally, a prolonged lack of bubbling can indicate that there may be a leak in the gas passageway, for example, between component connections.
[0360] Oscillations in pressure and / or flow can be caused by events such as breathing and bubbling. The pressure and / or flow oscillations associated with each event may have different signatures that can be used to distinguish between these events. Bubbling can be detected by detecting the presence of a bubbling oscillation signature in the pressure and / or flow caused by the expulsion of gas through a bubbler. In a respiratory assistance system in which flow rate is controlled by a controller, the controller can use a pressure signal, such as from a pressure sensor, or a flow signal, such as from a flow sensor (either of which are disclosed elsewhere herein), to determine the presence of bubbling.
[0361] During normal operation of the system, the controller may monitor the pressure and / or flow rate of the gas using the pressure and / or flow rate sensors, as described above.
[0362] However, detecting pressure or flow variations (e.g., bubbling) is more complex due to a number of factors, including, but not limited to, variations in amplitude depending on the treatment provided and the components used, the presence of respiration on the pressure and / or flow oscillations, and characteristics of the flow and pressure signals due to changes in the level of flow and height of the water column through the water.
[0363] Additionally, deformation of the bubbling pattern due to the presence of leaks and / or interruptions (eg, condensation in the circuit) can add to the complexity of bubbling detection.
[0364] Determining whether bubbling is occurring may be based on at least one characteristic indicative of bubbling within the pressure regulator.
[0365] At least one characteristic indicative of bubbling in the bubbler pressure regulator may be determined by one or more of a visual sensor (e.g., a visible sensor), a water level sensor, a microphone, an optical sensor, or a gas flow characteristic sensor configured to output a signal indicative of an image of the bubbler.
[0366] The sensors described above may output a signal indicative of at least one characteristic indicative of bubbling within the pressure regulator.
[0367] The controller may be configured to determine whether bubbling is occurring based on a signal indicative of at least one characteristic indicative of bubbling in the pressure regulator.
[0368] The controller may be configured to determine whether bubbling is occurring based on a signal indicative of at least one characteristic indicative of bubbling in the pressure regulator over a period of time.
[0369] Detection of bubbling occurring within the pressure regulator may indicate that therapy is being delivered.
[0370] The controller may be configured to determine whether bubbling is occurring based on one or more waveform characteristics of the signal that exhibit at least one characteristic indicative of bubbling in the pressure regulator (e.g., as described in more detail below).
[0371] The visual sensor (e.g., a visual sensor) may be configured to output a signal indicative of an image of at least a portion of the interior of the pressure regulator (e.g., a signal indicative of at least one characteristic indicative of bubbling within the pressure regulator). The visual signal indicative of an image of at least a portion of the pressure regulator may include an image of at least a portion of the water surface and / or an area within the pressure regulator surrounding the outlet of the breathing conduit.
[0372] Based on the signal representing an image of at least a portion of the pressure regulator (e.g., over a period of time), the controller may determine the liquid level (e.g., water level) in the pressure regulator and any liquid disturbances (e.g., the presence of bubbles) within the liquid in the pressure regulator.
[0373] The visual sensor may be, for example, a camera.
[0374] The water level sensor (e.g., monitoring the height of the water in the bubbler) is configured to output a signal indicative of the water level in the bubbler (e.g., at least one characteristic indicative of bubbling in the pressure regulator). In some embodiments, the water level sensor may be a limit switch that changes state when the water level exceeds a threshold value.
[0375] The water level sensor may be, for example, a flight sensor, and / or a laser-based sensor (eg, LIDAR), and / or an electrical resistance sensor.
[0376] The microphone may be configured to output a signal indicative of the sound produced by the bubbler (eg, a signal indicative of at least one characteristic indicative of bubbling within the pressure regulator).
[0377] The microphone may include, for example, an ultrasonic sensor and / or any other acoustic signal receiver.
[0378] The optical sensor may be configured to output a signal indicative of an optical characteristic of the liquid in the bubbler (such as a signal indicative of at least one characteristic indicative of bubbling in the pressure regulator).
[0379] The optical sensor may include, for example, a laser or an infrared sensor.
[0380] The gas flow characteristic sensor may be configured to output a signal indicative of a characteristic of the gas flow within the device (e.g., a flow sensor or a pressure sensor, as described in more detail below), such as a signal indicative of at least one characteristic indicative of bubbling within the pressure regulator.
[0381] In some embodiments, the microphone may be located within the flow path (e.g., within the sensor chamber 400) or external to the flow path. In some embodiments, the microphone may be located within or at the bubbler.
[0382] In some embodiments, the determination of whether bubbling is occurring is based on characteristics of the flow generator, which may be affected by flow and pressure disturbances caused by bubbling in the bubbler.
[0383] The flow generator characteristics may be, for example, valve characteristics, motor characteristics (ie, blower or flow generator motor).
[0384] In some embodiments, the valve characteristic may be valve current, or valve voltage, or other valve output.
[0385] As the blower motor provides flow to the patient, bubbling in the bubbler can affect one or more motor characteristics. For example, bubbling can lead to different disturbances in motor speed or motor torque caused by changing flow and / or pressure created in the blower by the bubbling.
[0386] The motor characteristic may be, for example, motor speed (or an indication of motor speed) or motor torque (or an indication of motor torque).
[0387] In some embodiments, determining whether bubbling is occurring is based on determining pressure or flow oscillations in a waveform, such as a pressure or flow waveform, that are indicative of bubbling within the pressure regulator.
[0388] It will be appreciated that the determination of bubbling may be based on any combination of the above.
[0389] The controller may determine the at least one waveform based on measurements of the flow rate and / or pressure of the gas in the gas flow path.
[0390] In some embodiments, the at least one waveform may additionally or alternatively be based on a measurement of another characteristic of the bubbling in the pressure regulator (e.g., a signal indicative of at least one characteristic indicative of bubbling in the pressure regulator, as described in more detail above).
[0391] The or each waveform may be a signal indicative of at least one characteristic indicative of bubbling in the pressure regulator (e.g., a measurement (e.g., over a period of time) of the flow rate and / or pressure of gas in the gas flow path). Additionally or alternatively, the waveform may be based on one or more signal processing techniques (e.g., analog signal processing, duration processing, discrete time processing, digital signal processing, nonlinear signal processing, statistical signal processing). Additionally or alternatively, the waveform may be based on one or more curve-fitting techniques. Additionally or alternatively, the waveform may be based on a filtered output of a measurement of the flow rate or pressure of gas in the gas flow path.
[0392] The waveform may be based on a combination of measurements of the flow rate or pressure of the gas in the gas flow path. For example, a measurement of the flow rate of the gas in the gas flow path may be combined with a measurement of the pressure of the gas in the gas flow path. The combination may be multiplied, for example, as a weighted average.
[0393] The controller may determine at least one waveform characteristic based on the flow and / or pressure waveforms (eg, the output of the flow and / or pressure sensors).
[0394] The controller may determine whether bubbling is occurring within the pressure regulator based on at least one waveform characteristic.
[0395] The controller may be configured to indicate on a display whether bubbling is occurring within the pressure regulator.
[0396] The determination of whether bubbling is occurring in the pressure regulator may be over a period of time (eg, a period of time going back from the current time).
[0397] The controller may be configured to generate an alarm based on whether bubbling is occurring within the pressure regulator.
[0398] The controller may be configured to generate an alarm if it is determined that no bubbling is occurring within the pressure regulator.
[0399] The controller may be configured to generate an alert if it is determined that the percentage of bubbling time occurring over a period of time is below a threshold value or the percentage of bubbling time not occurring over a period of time is above a threshold value.
[0400] In some embodiments, the controller may be configured to generate an alarm if the bubbling pattern is determined to be irregular.
[0401] In some embodiments, the alert may be an audible and / or visual alert (eg, via a display and / or user interface).
[0402] In some embodiments, the controller may be configured to monitor the pressure of the gas in the gas flow path.
[0403] In some embodiments, the controller may be configured to generate an alarm when the pressure of the gas flow exceeds a threshold value.
[0404] The controller may be configured to generate an alarm to prompt the user to check the inspiratory and / or expiratory conduits for condensation if it detects that no bubbling is occurring within the pressure regulator.
[0405] Sensor characteristics The choice of flow and / or pressure sensors used in the respiratory assistance device may affect bubbling detection due to sensor characteristics. For example, the choice of a particular sensor may introduce more measurement noise. These sensor characteristics must be taken into account when detecting bubbling.
[0406] Ultrasonic flow sensors can have high-frequency measurement noise with amplitudes that can exceed 2 L / min. Figure 5 shows an example of the variation in ultrasonic flow sensor measurements for a flow level of 6 L / min (sampled at 100 Hz).
[0407] Pressure sensors (such as gauge or absolute pressure sensors) provided within respiratory assistance devices may have lower measurement noise compared to ultrasonic flow sensors. However, measurement noise in the pressure signal may increase substantially as the measured pressure increases. Figures 6A and 6B show example pressure sensor measurements over time for pressure levels of 1.5 cmH2O and 13 cmH2O (sampled at 100 Hz). At the 1.5 cmH2O pressure level, the range of pressure measurements may vary by + / - 0.1 cmH2O. At the 13 cmH2O pressure level, the range of pressure measurements may vary by + / - 1 cmH2O.
[0408] The pressure sensor may be located within the device, for example as described in more detail above.
[0409] In a first embodiment for determining whether bubbling is occurring, the bubbling detection algorithm 800 may include a learning phase, and a monitoring phase may be used to detect and monitor bubbling.
[0410] 8 shows an overview of bubbling detection according to one embodiment of a bubbling detection algorithm 800. In step 801, a user initiates the bubbling detection process. In some embodiments, the initiation of bubbling detection may be automatic or may occur periodically, for example.
[0411] In step 802, the learning phase begins by detecting whether bubbling is occurring in the system, as described in more detail below. The learning phase fails if no bubbling is detected in the system. If the learning phase is successful and bubbles are detected, the algorithm proceeds to the monitoring phase (step 803). In step 803, the presence or absence of bubbling is monitored based on the bubbling patterns determined in the learning phase (step 802), as described in more detail below.
[0412] During the monitoring phase 803, the bubbling detection algorithm 800 may be restarted if the measured flow rate and / or pressure changes.
[0413] In some embodiments, the bubbling detection algorithm 800 may determine the bubbling pattern based on the number of peaks counted in the pressure and / or flow signals.
[0414] In some embodiments, the bubbling detection algorithm 800 may determine if the bubbling pattern has changed due to, for example, a change in flow rate, the height of the expiratory conduit within the pressure generator.
[0415] In some embodiments, the controller may indicate the current stage of bubbling detection on a user interface, for example, the controller may indicate that a learning stage is in progress.
[0416] 9 shows an example of the learning phase 802. During the learning phase, the pressure signal may be high-pass filtered to remove DC and low frequency components. The high-pass filtered signal is then subjected to peak detection, where the number of peaks (NPeak) over a detection time window (w) is detected. In some embodiments, bubbling is detected when the number of peaks exceeds a predetermined threshold.
[0417] Peak detection during the learning phase may occur over a suitable detection time window, hi some embodiments, peak detection during the learning phase occurs over a detection time window of about 1 second to about 10 seconds, or about 2 seconds to about 6 seconds, or about 4 seconds.
[0418] The learning phase may continue until bubbling is detected within the detection time window (i.e., the peak detection threshold is met). For example, if bubbling is detected within a first detection time window (e.g., 4 seconds), the learning phase is complete after 4 seconds. If bubbling is not detected within the first detection time window, a second, third, fourth, etc. detection window is initiated until bubbling is detected or the maximum learning phase duration is reached.
[0419] In some embodiments, the learning phase may last up to about 10 minutes before the learning phase is considered a failure. For example, the maximum learning phase duration may be from about 1 minute to about 10 minutes, or from about 2 minutes to about 8 minutes, or from about 4 minutes to about 6 minutes, or about 5 minutes.
[0420] The controller may generate an alarm or notification if no bubbling is detected after the maximum learning phase duration is reached.
[0421] The learning phase 802 requires a minimum level of disturbance in the pressure signal in order to proceed to the monitoring phase 803. In some embodiments, the minimum level of disturbance is a fixed peak detection threshold. In some embodiments, two peak detection thresholds may be used for peak detection in the learning phase.
[0422] The peak detection threshold may be coded into the controller, or in some embodiments, the peak detection threshold may be configurable by the user and / or dynamically calculated by the system.
[0423] FIG. 10 shows an example of peak detection using a positive peak threshold (PosPeakTh) and a negative peak threshold (NegPeakTh).
[0424] In the example of FIG. 10, the positive peak threshold (PosPeakTh) is 0.08 cmH2O and the negative peak threshold (NegPeakTh) is −0.17 cmH2O.
[0425] A positive peak is detected when the signal exceeds PosPeakTh and a negative peak is detected when the signal is below NegPeakTh. In some embodiments, the positive and negative peaks must alternate to be considered a valid peak detection.
[0426] If the number of positive peaks within the detection time window (e.g., 4 seconds) exceeds NPeakTh(24), bubbling is detected and the monitoring phase begins. Conversely, if the number of positive peaks is less than NPeakTh, bubbling is not detected, the monitoring phase cannot begin, and the bubbling detection algorithm is terminated. The learning phase 802 must be restarted to detect bubbling.
[0427] In some embodiments, a user may configure the peak detection threshold for the learning phase by adjusting the sensitivity setting of the device. The sensitivity setting may correspond to the number of peaks required for bubbling detection (NPeakTh) and / or the detection time window (w) and / or the peak thresholds (PosPeakTh, NegPeakTh). For example, a higher sensitivity setting may correspond to a lower NPeakTh value and / or a longer detection window and / or a lower peak threshold (PosPeakTh, NegPeakTh).
[0428] In some embodiments, the learning phase 802 is repeated (automatically in some embodiments) when the flow and / or pressure signals change and / or when the target flow rate or other parameters are modified by the user. For example, the learning phase 802 is repeated if a change in the pressure signal occurs due to a change in the expiratory conduit height in the pressure regulator.
[0429] In some embodiments, the controller may automatically repeat the learn phase 802 if it detects a change in flow and / or a change in the pressure signal and / or when the target flow rate or other parameters are modified by the user. Additionally or alternatively, the controller may generate a notification that the flow, pressure and / or parameters have changed, prompting the user to repeat the learn phase.
[0430] In some embodiments, the device may display an indication that the learning phase is occurring.
[0431] Similar to the learning phase 802, the monitoring phase 803 may also be based on the detection of positive and negative peaks. The monitoring phase 803 may be configured to specifically detect bubbling patterns determined during the learning phase 802. This may be achieved by adjusting the peak detection threshold of the monitoring phase as the average amplitude of a predetermined number of the largest positive and / or negative peaks determined in the learning phase 802.
[0432] In some embodiments, the peak detection threshold of the monitoring stage may be adjusted based on the following rules: i) The positive peak threshold for monitoring (Positive Peak Threshold - MonitoringPosPeakTh) is set as the average amplitude of the number of maximum positive peaks (e.g. 16) detected during the learning phase. ii) The negative peak threshold for monitoring (Negative Peak Threshold - MonitoringNegPeakTh) is set as the average amplitude of the number of maximum negative peaks (e.g., 16) detected during the learning phase.
[0433] For example, bubbling is detected when the number of positive peaks is greater than a number of positive peaks threshold (MonitoringNPeakTh) (e.g., at least 6 peaks) over a time window of about 5 seconds (or at a pressure signal frequency of, e.g., 0.83 Hz or greater). Peaks may be detected as described above (with respect to the learning phase), but with a positive peak threshold - MonitoringPosPeakTh and a negative peak threshold - MonitoringNegPeakTh as peak thresholds.
[0434] In some embodiments, a user may configure the peak detection thresholds for the monitoring phase by adjusting the sensitivity setting of the device. The sensitivity setting may correspond to the number of peaks (number of positive peak thresholds, MonitoringNPeakTh) and / or the detection time window (w) and / or peak thresholds (positive peak threshold - MonitoringPosPeakTh, negative peak threshold - MonitoringNegPeakTh) required for bubbling detection. For example, a higher sensitivity setting may correspond to a lower number of positive peak threshold - MonitoringNPeakTh values and / or a longer detection time window (w) and / or lower peak thresholds (positive peak threshold - MonitoringPosPeakTh, negative peak threshold - MonitoringNegPeakTh).
[0435] In some embodiments, the device may display an indication that the monitoring phase is occurring.
[0436] In a second embodiment for determining whether bubbling is occurring, bubbling detection may begin automatically and adapt to changes to flow and / or pressure. In other words, the bubbling detection algorithm 1100 according to this embodiment may detect bubbling patterns across the entire range of flows and pressures used for bubble CPAP therapy without requiring user intervention.
[0437] The bubble detection algorithm 1100 may use a model that continues to function despite changes to flow and / or pressure settings without the need for a learning phase or restart (retraining).
[0438] In some embodiments, the bubbling detection algorithm 1100 detects a number of waveform characteristics of the flow and / or pressure signal that are indicative of bubbling caused by passing a gas flow through a column of water at the end of the expiratory conduit of a bubble CPAP circuit.
[0439] This approach differs from the above in that instead of counting the number of peaks above a threshold, some characteristics of the waveform are determined and used in the model to determine if bubbling is occurring, which may allow more information to be extracted from the flow or pressure signal than just counting the number of peaks.
[0440] Furthermore, due to various measurement noises generated by flow and / or pressure sensors, bubbling detection may be based on detecting / determining peaks that exceed sufficient amplitude to distinguish measurement noise from bubbling patterns.
[0441] Figures 7A and 7B show examples of pressure signals with (Figure 7A) and without (Figure 7B) bubbling after removing the DC level. The pressure in the pressure regulator was set to 8 cmH2O and the flow to 10 L / min. A throttle valve was used to generate pressure in the non-bubbling configuration in the expiratory conduit.
[0442] The waveforms of Figures 7A and 7B were submitted to a peak-counting bubbling detection algorithm as described above, and the algorithm detected that bubbling was occurring for both waveforms (but this was not the case for the waveform of Figure 7B, which was likely due to sensor noise (described in more detail below). However, the methodology described in more detail below is intended to minimize the risk of inaccurate detection of bubbling by using a methodology that counts the peaks of the waveform (which, as shown, is susceptible to sensor noise).
[0443] In some embodiments, the bubbling detection algorithm 1100 may be based on the inference of a model that maps input signals (e.g., flow and / or pressure) to a desired output (presence or absence of bubbling). The model inference may be performed using a training classification algorithm with positive and negative examples of bubbling.
[0444] FIG. 11 illustrates an exemplary method for determining whether bubbling is occurring, which is described in more detail below.
[0445] In step 901, at least one characteristic indicative of bubbling in the pressure regulator is measured (as described in more detail below).
[0446] In step 902, one or more waveform characteristics are determined based on the waveform of at least one measured characteristic (e.g., flow rate and / or pressure, as described in more detail below) that is indicative of bubbling in the pressure regulator.
[0447] In step 903, it is determined whether bubbling is occurring within the pressure regulator based on at least one waveform characteristic.
[0448] FIG. 11A shows an example of generating one or more alerts based on whether bubbling is occurring (described in more detail below).
[0449] In step 903, it is determined whether bubbling is occurring in the pressure regulator.
[0450] In step 904, one or more alarms are generated based on whether bubbling is occurring within the pressure regulator.
[0451] FIG. 12 shows an example of the overall structure according to an embodiment of the bubbling detection algorithm.
[0452] In step 1101, the flow and / or pressure signals as waveforms are filtered. For example, a high-pass FIR filter with cutoff frequencies, e.g., 2 Hz and 21 Hz, may be applied to the raw signals to remove any DC offset. The flow and / or pressure signals may be derived from the flow and pressure sensors, respectively.
[0453] In step 1102, the waveform is then divided into one or more time windows.
[0454] In some embodiments, the waveform may be divided into one or more time windows.
[0455] A determination of whether bubbling is occurring may be made for each time window.
[0456] In some embodiments, each time window may be from about 1 second to about 6 seconds, or from about 1.5 seconds to about 3 seconds, from about 1 second to about 180 seconds, from about 1 second to about 60 seconds, or from about 1 second to about 30 seconds.
[0457] In some embodiments, each time window may overlap with the previous and / or next time window.
[0458] In some embodiments, the time window overlap may be from about 1 second to about 6 seconds, or from about 1.5 seconds to about 3 seconds, or from about 5 seconds to about 30 seconds, or from about 1 second to about 60 seconds, or from about 1 second to about 10 seconds.
[0459] FIG. 12A shows an example of overlapping timing windows 1202, 1202'.
[0460] It will be appreciated that in some embodiments, a single timing window is used.
[0461] In step 1103, one or more waveform characteristics are determined from the waveform within the time window.
[0462] In step 1104, one or more waveform characteristics are used to determine whether bubbling is occurring. The determination of bubbling may be based on a model (as described in more detail below).
[0463] As shown in Figures 13A-13E, examples of characteristics indicative of bubbling (such as flow or pressure signals) are shown as waveforms optionally derived from one or more sensors, as described above.
[0464] It will be appreciated that the waveform characteristics may equally be applied to methods of estimating flow and / or pressure in a gas flow path, as described below.
[0465] As described above, one or more waveform characteristics may be determined from the waveform.
[0466] The one or more waveform characteristics may include or be based on the amplitude of the waveform, the distance between positive peaks of the waveform, and / or the amplitude difference between successive positive and negative peaks of the waveform, as will be appreciated, may be included as part of the characteristics as described below.
[0467] It will be appreciated that the following embodiments are described in terms of the term amplitude, but that the term amplitude may be used interchangeably with the term value. A value may be, for example, a value of a waveform (e.g., including any DC offset). In some embodiments, any DC offset may be added to the amplitude.
[0468] The mean and standard deviation (or other statistical characteristic) of each waveform characteristic may be calculated over the time window.
[0469] In some embodiments, the waveform characteristics may include at least one amplitude characteristic.
[0470] In some embodiments, the amplitude characteristics may optionally include an average of the amplitude of the waveform over the timing window 1202 .
[0471] In some embodiments, the amplitude characteristics may optionally include the average standard deviation of the amplitude of the waveform over the timing window 1202 .
[0472] In some embodiments, the amplitude characteristic may optionally include an average of the amplitude of the waveform's positive peaks over the timing window 1202, as shown in FIG. 13A.
[0473] In some embodiments, the amplitude characteristic may optionally include an average of the amplitude of the negative peak of the waveform over the timing window 1202, as shown in FIG. 13A.
[0474] FIG. 13A shows an example of the amplitude 1201 of the positive peak of the waveform and an example of the amplitude 1201' of the positive peak of the waveform.
[0475] In some embodiments, the amplitude characteristics optionally include a standard deviation of the amplitude of the positive peaks of the waveform over the timing window 1202 .
[0476] In some embodiments, the amplitude characteristics optionally include a standard deviation of the amplitude of the negative peak of the waveform over the timing window 1202 .
[0477] It will be appreciated that the amplitude of the positive peaks of the waveform can be calculated for each positive peak of the waveform (within the timing window), and then the average amplitude of the positive peaks of the waveform and / or the standard deviation of the amplitude of the positive peaks can be calculated.
[0478] It will also be appreciated that the amplitude of the negative peaks of the waveform can be calculated for each negative peak of the waveform (within the timing window), and then the average amplitude of the negative peaks of the waveform and / or the standard deviation of the amplitude of the negative peaks can be calculated.
[0479] In the example of FIG. 13A, the amplitude of the positive peak of the waveform is shown, however, as noted above, in some embodiments, the amplitude characteristics may include the average amplitude of the negative peak of the waveform and / or optionally the standard deviation of the amplitude of the negative peak of the waveform over the timing window 1202.
[0480] In some embodiments, the waveform characteristics may include at least one peak distance characteristic. It will be appreciated that distance in this context may be in any time-based units.
[0481] In some embodiments, the peak distance characteristic comprises the average distance between the positive peaks of the waveform. Figure 13B shows an example of the distance between two positive peaks of the waveform 1203.
[0482] In some embodiments, the peak distance characteristic comprises a standard deviation of the distance between positive peaks.
[0483] It will be appreciated that the distance between the positive peaks of the waveform can be calculated for each pair of adjacent positive peaks of the waveform (within the timing window), and then the average of the distances between the positive peaks of the waveform and / or the standard deviation of the distances between the positive peaks can be calculated.
[0484] In some embodiments, the peak distance characteristic comprises the average distance between negative peaks of the waveform. Figure 13B shows an example of the distance between two negative peaks of waveform 1203'.
[0485] In some embodiments, the peak distance characteristic comprises a standard deviation of the distance between negative peaks.
[0486] It will be appreciated that the distance between the negative peaks of the waveform can be calculated for each pair of adjacent negative peaks of the waveform (within the timing window), and then the average of the distances between the negative peaks of the waveform and / or the standard deviation of the distances between the negative peaks can be calculated.
[0487] In some embodiments, the waveform characteristics may include at least one peak difference characteristic.
[0488] In some embodiments, as shown in FIG. 13C , the peak difference characteristic includes an average magnitude of the amplitude difference between consecutive positive and negative peaks of the waveform. For example, FIG. 13C shows the amplitude 1201 of the positive peak of the waveform and the amplitude 1204 of the negative peak of the waveform. The magnitude 1205 of the amplitude difference between consecutive positive and negative peaks of the waveform is calculated based on the sum of the absolute amplitude 1201 of the positive peak of the waveform and the absolute amplitude 1204 of the consecutive negative peaks of the waveform. It will be appreciated that the waveform of FIG. 12C , which shows a zero DC offset, may be provided with a DC offset. In some embodiments, the magnitude 1205 of the amplitude difference between consecutive positive and negative peaks of the waveform may include any DC offset. The DC offset may be determined and added to the magnitude 1205 of the amplitude difference between consecutive positive and negative peaks of the waveform.
[0489] In some embodiments, the magnitude 1205 of the amplitude difference between consecutive positive and negative peaks of the waveform is calculated by taking the difference between the value of the positive peak of the waveform and the value of the consecutive negative peak of the waveform. This approach inherently includes any DC offset in the magnitude 1205 of the amplitude difference between consecutive positive and negative peaks of the waveform.
[0490] In some embodiments, the peak difference characteristic comprises a standard deviation of the magnitude of the amplitude difference between consecutive positive and negative peaks of the waveform.
[0491] It will be appreciated that the magnitude of the amplitude difference between consecutive positive and negative peaks of the waveform can then be calculated for consecutive positive and negative peaks of the waveform (within the timing window), as the average of the magnitude of the amplitude difference between consecutive positive and negative peaks of the waveform, and / or the standard deviation of the magnitude of the amplitude difference between consecutive positive and negative peaks.
[0492] The peak difference characteristic can be particularly advantageous for determining bubbling because it removes the DC component of the waveform. This approach can be more robust to noise than DC filtering, as random fluctuations may not be removed by a DC filter (depending on the filter characteristics) but should be removed by the peak difference characteristic.
[0493] In some embodiments, the controller may be configured to apply high-pass and / or low-pass filters to measurements of flow or pressure and / or waveform.
[0494] As noted above, the mean and / or standard deviation (or other statistical measure) may be calculated over a time window.
[0495] Determining at least one peak difference characteristic may include detecting one or more peaks. Detecting one or more peaks may include finding local maxima and minima of the signal. Maxima and minima may be found alternately, e.g., a local maximum may be found after a local minimum, and a new minima may be found only after a local maximum. The parameters used for peak detection may be a minimum allowable range (MinRangeTh) between the local maximum and the local minimum.
[0496] It will be appreciated that the term average may apply to any statistical measure of central tendency, such as the mean, median, mode, or the like.
[0497] In some embodiments, MinRangeTh may be set to 0.5 L / min when using a filtered signal for bubbling detection.
[0498] In some embodiments, the waveform characteristics may include at least one intersection characteristic.
[0499] In some embodiments, the crossing characteristics include the number of times (within the timing window) the waveform crosses zero 1206. Figure 13D shows an example where the number of times (within the timing window) the waveform crosses zero 1206 is 6.
[0500] In some embodiments, the crossing characteristics include the number of times (within the timing window) the waveform crosses 1207 the threshold 1208. Figure 13E shows an example where the number of times (within the timing window) the waveform crosses 1207 the threshold 1208 is 6.
[0501] The threshold may be the mean amplitude of the waveform, and / or the mean amplitude of the positive peaks of the waveform, and / or the mean amplitude of the negative peaks of the waveform.
[0502] In some embodiments, the threshold may be preset and / or set, or selected by the user.
[0503] It will be appreciated that any thresholds, timing windows, timing window overlaps, or any feature of the models described below may vary based on a sensitivity setting. For example, a lower sensitivity setting may result in a less sensitive determination of bubbling (and thus a greater tendency to determine that bubbling is occurring in edge cases). For example, a higher sensitivity setting may result in a more sensitive determination of bubbling (and thus a lesser tendency to determine that bubbling is occurring in edge cases).
[0504] The sensitivity setting may be based, for example, on a user setting or on the identification of components used in the system (as described in more detail elsewhere herein).
[0505] When determining at least one crossover characteristic, a high-pass and / or low-pass filter may be applied to the waveform (eg, to remove DC offset).
[0506] As noted, in step 1104, the determination of whether bubbling is occurring is based on at least one waveform characteristic, as described above.
[0507] In some embodiments, the determination of whether bubbling is occurring is based on at least one waveform characteristic exceeding an associated threshold.
[0508] In some embodiments, the determination of bubbling may be based on a regression model that includes one or more waveform characteristic factors associated with each waveform characteristic.
[0509] The waveform characteristic factor may apply a weighting to each waveform characteristic.
[0510] The waveform characterization factors may be determined experimentally or through machine learning or other supervised learning.
[0511] In some embodiments, the determination of bubbling is based on an artificial neural network.
[0512] In some embodiments, the regression model is a logistic regression (LogReg) model.
[0513] The model may be trained based on supervised learning using positive ("bubbling") and negative ("non-bubbling") samples. The positive and negative samples may be collected from a range of operating conditions for the device. The samples may provide a wide range of scenarios in which bubbling should or should not be detected.
[0514] The model may be defined by the following functions: Bubbling detection output = w1*mean amplitude of positive peaks +w2*average distance between positive peaks +w3*Average amplitude between consecutive positive and negative peaks +w4*standard deviation of the amplitude of the positive peak + w5 * standard deviation of the distance between positive peaks +w6*standard deviation of amplitude between consecutive positive and negative peaks +Bias In the above equation, w1, w2, w3, w4, w5, and w6 are factors (for example, waveform characteristic factors).
[0515] In another configuration, the model may be defined by the following function: Bubbling detection output = w1*average amplitude +w2*mean amplitude of positive peaks +w3*mean amplitude of negative peak +w4*average distance between positive peaks +w5*average distance between negative peaks +w6*number of zero crossings +w7*number of threshold crossings +w8*Amplitude between consecutive positive and negative peaks + w9 * standard deviation of mean amplitude +w 10 *Standard deviation of the amplitude of the positive peak +w 11 *Standard deviation of the negative peak amplitude +w 12 *Standard deviation of the distance between positive peaks +w 13 *Standard deviation of the distance between negative peaks +w 14 *Standard deviation of the amplitude between consecutive positive and negative peaks +Bias In the above formula, w1, w2, w3, w4, w5, w6, w7, w8, w9, w 10 , w 11 , w 12 , w 13 , w 14 is a factor (eg, a waveform characteristic factor).
[0516] The bubbling detection output may be based on a sigmoid function.
[0517] The result of the model (e.g., as implemented in a classifier) is a real number ranging between [0,1]. The higher the value, the more likely the sample belongs to the "bubbling" class.
[0518] In step 1104, an exponential filter may be applied to the output of the model for each window, effectively combining the outputs of successive time windows.
[0519] It will be appreciated that other ways of combining the model outputs for each window are possible, such as low-pass filtering the model outputs or weighting based on the time elapsed since the window or the previous window (i.e., previous windows are weighted less heavily in the model output).
[0520] In some embodiments, the determination of whether bubbling is occurring is a probability of bubbling occurring ranging from 0 to 1.
[0521] In some embodiments, bubbling is determined to occur when the probability of bubbling occurring exceeds 0.5.
[0522] In some embodiments, the determination of whether bubbling is occurring is based on at least one frequency characteristic.
[0523] The frequency characteristics may be based on flow and / or pressure waveforms.
[0524] The frequency characteristics may include at least one frequency band and a power in the frequency band.
[0525] The frequency characteristics may be provided to the bubbling detection model in the same manner as the waveform characteristics, as described above.
[0526] The frequency band may be between about 5 Hz and about 20 Hz, or another range tailored to bubbling.
[0527] As mentioned above, the power in the frequency bands may be provided to a model used to detect bubbling.
[0528] The location of the flow and / or pressure sensor may also affect bubbling detection. For example, a flow and / or pressure sensor placed near a flow generator may sense disturbances in the flow and / or pressure that have waveform / spectral characteristics that overlap with the bubbling pattern.
[0529] Detecting bubbling, particularly in devices that may also provide high-flow therapy, can be difficult because the sensor location may not always be optimal for best determining bubbling. For example, the sensor may be placed near the flow generator (as opposed to near the pressure regulator) in a respiratory assistance device. Therefore, any sensor noise generated from device operation (e.g., by the flow generator) must be distinguished from noise that is part of the signal indicative of bubbling in the pressure regulator. The above-described embodiments facilitate noise removal by using waveform characteristics to isolate the bubbling signal.
[0530] Bubbling detection may be affected by, for example, ambient pressure, temperature, the amount of water in the humidification chamber, and / or the gas mixture.
[0531] In some embodiments, the determination of whether bubbling is occurring is based on one or more of the ambient temperature, the altitude of the device, and the water level of a humidifier placed in the gas flow path.
[0532] In some embodiments, the device may be configured to provide a combination of ambient air and make-up gas, and the determination of whether bubbling is occurring is based on the ratio of ambient air to make-up gas.
[0533] In some circumstances, components of the flow path (e.g., circuitry and / or interfaces) used in bubble CPAP therapy may affect bubbling detection. For example, the length and diameter of the conduit and the interface may affect the waveform.
[0534] The components may be identified by the device by one or more methods known in the art (e.g., by determining the electrical resistance of the linked components.
[0535] In some embodiments, the determination of whether bubbling is occurring may be based on conduit characteristics of the inspiratory and / or expiratory conduits.
[0536] In some embodiments, the conduit characteristics may include one or more of: conduit length, conduit diameter, and conduit type.
[0537] In some embodiments, the determination of whether bubbling is occurring is based on a characteristic of the patient interface.
[0538] If bubbling is detected while the device is connected to components that are not compatible with bubble CPAP (eg, a conduit or patient interface that is not suitable for bubble CPAP therapy), the device may generate an alarm.
[0539] Detection of bubbling in a pressure regulator can be beneficial to ensure proper use of a respiratory assistance device. Proper use of a respiratory assistance device is important to ensure effective respiratory therapy or assistance is provided to a user. A lack of bubbling or an irregular bubbling pattern can indicate improper use of the respiratory assistance device, such as an incorrect peripheral device (e.g., patient interface, conduit, etc.) being used, an improper respiratory assistance therapy being set (e.g., the pressure regulator being connected during a high-flow therapy mode), or an incorrect therapy mode being selected (e.g., a counterflow therapy mode being selected when a bubble CPAP mode was required). Bubbling detection can be used to prevent or at least mitigate improper use that may be detrimental to the safety and comfort of the user.
[0540] An intermittent bubbling alarm may be generated if bubbling is detected as intermittent, for example, if bubbling is detected and then not detected, the device may determine that the bubbling is intermittent.
[0541] Detecting intermittent bubbling may indicate that the target flow rate and / or target pressure provided to the patient is not meeting the patient's needs.
[0542] The alarm generated when bubbling is detected as intermittent may also include a recommendation to increase the target flow rate and / or target pressure.
[0543] Intermittent bubbling may be detected when the number of transitions between bubbling and non-bubbling occurrences exceeds a threshold (eg, over a period of time).
[0544] Additionally or alternatively, intermittent bubbling may be detected when the ratio of time when bubbling occurs to time when no bubbling occurs (e.g., over a period of time) is within a certain range.
[0545] Detection of bubbling may occur (e.g., constantly or periodically) while the device is operating in a non-bubble CPAP mode (e.g., high flow therapy mode and / or CPAP mode). If bubbling is detected while the device is operating in a non-bubble CPAP mode, the device may generate an alarm (e.g., the device may be operating in an incorrect mode and / or indicate to the user that the device is in the correct mode). In some configurations, if the device detects bubbling while operating in a non-bubble CPAP mode, the device may automatically change to bubble CPAP mode.
[0546] The detection of bubbling may also be used to indicate whether the patient interface is properly engaged with the patient, for example, if bubbling occurs, this may indicate that the patient interface is properly engaged, and if no bubbling occurs, this may indicate that the patient interface is not engaged.
[0547] Determining whether the patient interface is properly engaged with the patient may additionally or alternatively be based on detecting intermittent bubbling, which may indicate a poor seal between the interface and the patient and / or a leak in the system.
[0548] In some embodiments, the controller may determine that the patient interface is not engaged with the patient when the controller detects (optionally for a predetermined time) that bubbling is occurring, and then (optionally for a predetermined time) that bubbling is not occurring.
[0549] In some embodiments, the controller may determine that the patient interface is not engaged with the patient when no bubbling is occurring and the flow rate provided by the device is below a threshold value.
[0550] The controller may generate an alarm if it determines that the patient interface is not engaged.
[0551] The detection of bubbling may also be used to determine one or more bubbling time metrics, for example, the detection of bubbling during one or more treatment sessions may indicate that treatment is being delivered.
[0552] A therapy session may be when a device provides therapy to a user for a period of time (e.g., a therapy time). A therapy session may be initiated by the user and / or by providing therapy to the user. A therapy session may be ended by the user and / or by ceasing to provide therapy to the user. A therapy time may be the time during which therapy is provided, for example, as part of a therapy session.
[0553] The device may also generate a bubbling index (e.g., a bubbling time metric) based on the treatment time and the detection of bubbling. The index may be the percentage of treatment time during which the detection of bubbling occurs. The index may be expressed, for example, as a percentage of the total treatment time during which bubbling occurs.
[0554] The device may also calculate the bubbling time as a bubbling time metric during which bubbling occurs.
[0555] Bubbling time may be used to determine how long treatment is provided during a treatment session.
[0556] The bubbling time may be compared to a threshold time to determine whether the treatment has been provided for a predetermined period of time.
[0557] The device may also calculate non-bubbling time as a bubbling time metric where no bubbling is occurring.
[0558] The non-bubbling time may be used to determine how long no therapy was provided during a therapy session.
[0559] The non-bubbling time may be compared to a threshold time to determine if therapy has not been provided for a predetermined period of time.
[0560] The device may additionally or alternatively determine a pressure-based metric. The pressure-based metric may be the percentage of treatment time when the pressure delivered to the patient is greater than a threshold pressure. The pressure-based metric may be the percentage of treatment time when the pressure delivered to the patient is greater than a threshold pressure at which bubbling occurs. The pressure delivered to the patient may be, for example, the pressure at the interface and / or the pressure regulator and / or the pressure at the device.
[0561] The pressure metric may be sent to a server (or other device) and / or provided as part of a report, as described below with respect to the bubbling time metric.
[0562] The bubbling time metric may be based on the treatment time for one treatment session or over several treatment sessions.
[0563] In some embodiments, one or more alerts may be generated based on the bubbling index (or other bubbling time metric) falling below a threshold (optionally for a predetermined amount of time).
[0564] In some embodiments, the controller is configured to indicate that the therapy being provided exceeds a threshold value based on a bubbling index (or other bubbling time metric).
[0565] The device may transmit the bubbling index (or other bubbling time metric) to another device (e.g., a server) via a wireless data transmitter and / or receiver or transceiver 15.
[0566] The device may transmit information to another device (eg, a server) via a wireless data transmitter and / or receiver or transceiver 15 when bubbling is detected.
[0567] The apparatus (and / or server and / or other device) may determine trends for one or more bubbling time metrics. The apparatus and / or server and / or other device may display the trends or provide the trends to the server and / or other device.
[0568] The apparatus (and / or server and / or other device) may determine an index as to whether one or more bubbling time metrics are improving or worsening, and the apparatus and / or server and / or other device may display the index or provide the index to the server and / or other device.
[0569] A server (e.g., a remote server) and / or other device may generate a report based on the information transmitted from the device. As discussed above, the information may be one or more bubbling time metrics. The information may also be other information related to the treatment provided (e.g., treatment parameters such as humidity, temperature, and / or flow rate).
[0570] The report may include a trend for one or more bubbling time metrics and / or an index for one or more bubbling time metrics.
[0571] The reports may help the clinician determine whether the patient's condition is improving or worsening. For example, reducing the treatment time (e.g., while bubbling occurs) may indicate an improvement in the patient's condition and / or that the patient can transition to another type of treatment (e.g., nasal hyperperfusion treatment). The reports may also be useful in determining whether the patient is receiving the desired treatment over a period of time.
[0572] The report may show one or more bubbling time metrics over a period of time (eg, a week, or a month, etc.).
[0573] A bubbling index that remains above a threshold for a period of time while reducing (or trending downward in) the bubbling time may indicate an improvement in the patient's condition and / or that the patient can be transitioned to another type of treatment (e.g., nasal hyperperfusion therapy).
[0574] Bubbling in the pressure regulator 134 can also be used to estimate flow and pressure parameters in the system, since characteristics indicative of bubbling can also be indicative of flow and pressure parameters.
[0575] 1-3A, there may be no pressure or flow sensor located downstream of device 10 in the gas flow path. This allows for a simpler system with fewer components and therefore lower costs. However, a drawback of this type of system is that the device cannot directly measure the gas flow or pressure in the gas flow path downstream of the device (i.e., after the thermistor flow sensor on sensing circuit board 404).
[0576] It will be appreciated that having estimates of flow and pressure at various locations in the gas flow path may be advantageous in other aspects, such as calibration or sensor redundancy.
[0577] In some embodiments, estimated flow and pressure parameters may be performed within the system as described (eg, as described above) when bubbling is detected to be occurring.
[0578] FIG. 14 shows an example embodiment of a flow and / or pressure estimation algorithm.
[0579] In step 1301, a characteristic of the bubbling in the pressure regulator 134 is measured. The characteristic of the bubbling in the pressure regulator 134 may be, for example, any of the characteristics described above for detecting bubbling.
[0580] However, the following example (FIG. 14A) uses flow and pressure measurements (as signals indicative of gas flow rate in the gas flow path from a flow sensor and / or as signals indicative of gas pressure in the gas flow path from a pressure sensor) as examples.
[0581] In step 1302, at least one waveform characteristic is determined based on at least one waveform of a measured characteristic of bubbling in pressure regulator 134.
[0582] In step 1303, an estimated flow rate and / or pressure in the gas flow path is determined based on at least one waveform characteristic (as described in more detail below).
[0583] It will be appreciated that the estimated flow rate and / or pressure within the gas flow path may be at any location within the gas flow path.
[0584] The estimated flow rate and / or pressure in the gas flow path may be at a location downstream from the device.
[0585] The estimated flow rate of gas at the end of the expiratory conduit may be at pressure regulator 134 .
[0586] The estimated flow rate in the gas flow path may be the flow rate through the end of the expiratory conduit 130 at the pressure regulator 134 (eg, open end 136 ).
[0587] The estimated flow rate in the gas flow path may be the flow rate in the device.
[0588] The estimated pressure in the gas flow path may be the pressure at the patient interface.
[0589] The estimated pressure in the gas flow path may be the pressure at the pressure regulator 134 (eg, the pressure set point at the pressure regulator 134).
[0590] The estimated pressure in the gas flow path may be the pressure at the end of the expiratory conduit 130 at the pressure regulator 134 (eg, open end 136 ).
[0591] The estimated pressure in the gas flow path may be the pressure in the device.
[0592] The estimated flow rate in the gas flow path may be the flow rate through the end of the expiratory conduit 130 at the pressure regulator 134 (eg, open end 136 ).
[0593] In addition to or as an alternative to the at least one characteristic of the bubbling in the pressure regulator 134 as described above, the at least one characteristic of the bubbling in the pressure regulator 134 may be: a signal indicative of an image of the bubbler as an output of the visual sensor; a signal indicating the surface of the water in the bubbler as the output of the water level sensor; a signal indicative of the sound generated by the bubbler as an output of the microphone; a signal indicative of the optical characteristics of the liquid in the bubbler as an output of the optical sensor; The gas flow characteristic may be based on one or more of the signals indicative of the gas flow characteristics as an output of the gas flow characteristic sensor.
[0594] Such sensors may be located at any point within the system (e.g., within the device, within the gas flow path (e.g., within the inhalation and / or exhalation conduits and / or any connectors), within the patient interface, and / or within the pressure regulator 134).
[0595] At least one characteristic of the bubbling in the pressure regulator 134 may be based on a signal indicative of the gas flow rate in the gas flow path.
[0596] At least one characteristic of the bubbling in the pressure regulator 134 may be based on a signal indicative of the gas flow rate in the gas flow path, optionally as the output of a flow sensor (e.g., the measured flow rate of the gas in the gas flow path, as shown in FIG. 14A).
[0597] The signal indicative of gas flow rate within the gas flow path may be measured (eg, measured) at the same or a different location than the estimated flow rate and / or location within the gas flow path at which the estimated flow rate is determined.
[0598] At least one characteristic of the bubbling in the pressure regulator 134 may be based on a signal indicative of the gas pressure in the gas flow path, optionally as the output of a pressure sensor (e.g., the measured pressure of the gas in the gas flow path, as shown in FIG. 14A).
[0599] The signal indicative of the rate of gas pressure within the gas flow path may be measured (eg, measured) at the same or a different location than the estimated flow rate and / or the location within the gas flow path where the estimated flow rate is determined.
[0600] FIG. 14A shows an example embodiment of a flow and / or pressure estimation algorithm.
[0601] In step 1301', the flow rate and / or pressure of the gas in the gas flow path is measured.
[0602] As noted above, the flow rate and / or pressure of the gas in the gas flow path may be measured at the same or a different location than the estimated flow rate and / or location in the gas flow path at which the estimated flow rate is determined.
[0603] In step 1302', at least one waveform characteristic is determined based on at least one waveform of the measured flow and / or pressure.
[0604] In step 1303', an estimated flow rate at the end of the expiratory conduit and / or an estimated pressure at the patient interface is determined based on at least one waveform characteristic.
[0605] In the exemplary embodiment of FIG. 14A, the estimated flow is the estimated flow of gas at the end of the expiratory conduit and the estimated pressure is the estimated pressure at the patient interface.
[0606] The estimated flow rate of gas at the end of the expiratory conduit may be at pressure regulator 134 .
[0607] The estimated flow rate in the gas flow path may be the flow rate through the end of the expiratory conduit 130 at the pressure regulator 134 (eg, open end 136 ).
[0608] In the embodiment of FIG. 14A, at least one characteristic of the bubbling in the pressure regulator 134 is a signal indicative of the gas flow rate in the gas flow path (based on the measured flow rate and the measured pressure) and a signal indicative of the gas pressure in the gas flow path.
[0609] Based on the estimated flow rate and / or pressure in the gas flow path, the device (e.g., by the controller 13) may generate one or more alarms if the estimated flow rate and / or pressure in the gas flow path is greater than and / or less than a threshold value.
[0610] FIG. 14B shows an example of one or more alarms that may be generated based on estimated flow rate and / or pressure within the gas flow path (described in more detail below).
[0611] In steps 1303, 1303', the estimated flow rate and / or pressure in the gas flow path is determined.
[0612] In step 1304, one or more alarms are generated based on the estimated flow rate and / or pressure in the gas flow path.
[0613] In some configurations (eg, the embodiment of FIG. 14A), the controller may generate an alarm based on the estimated flow rate of gas through the pressure regulator 134 and / or the estimated pressure at the patient interface.
[0614] 4. A respiratory assistance apparatus as claimed in any one of claims 1 to 3, wherein the controller is configured to generate an alarm if the estimated flow rate of gas through the pressure regulator exceeds a threshold value.
[0615] The controller 13 may be configured to generate an alarm if the estimated pressure at the patient interface exceeds a threshold value.
[0616] The alarm may be an alarm as described above (eg, with respect to the bubbling detection disclosure above).
[0617] As described above, the apparatus includes at least one gas characteristic sensor configured to measure the flow rate of the gas in the gas flow path and / or the pressure of the gas in the gas flow path.
[0618] The device is an estimated flow rate and / or pressure in the gas flow path; One or more alarms may be generated based on a comparison between the measured flow rate of gas in the gas flow path and / or the measured pressure of gas in the gas flow path.
[0619] The controller 13 may additionally be configured to estimate the pressure at the patient interface based on the relationship between the flow rate of the gas in the gas flow path and the pressure of the gas in the gas flow path (e.g., the measured gas flow rate and pressure of the gas in the gas flow path).
[0620] The controller 13 may be configured to estimate the leak flow rate of the system based on the difference between the measured flow rate of gas in the gas flow path and the estimated flow rate of gas through the pressure regulator 134. The leak flow rate may indicate the flow rate of gas lost, for example, through a leak between the device and the end (e.g., open end 136) of the expiratory conduit 130 at the pressure regulator 134. Sources of leak may include a mask leak (i.e., caused by an imperfect seal between the interface and the patient) or a connection leak (i.e., caused by an imperfect connection between components of the system).
[0621] The controller 13 may be configured to generate an alarm when the leak rate exceeds a leak threshold.
[0622] The controller 13 may be configured to generate an alarm when the leakage flow rate of the system exceeds a leakage threshold.
[0623] The controller 13 may be configured to generate an alarm when the leak flow rate increases by more than a leak increase threshold over a period of time.
[0624] The controller 13 may be configured to estimate the set point of the pressure regulator 134 based on the estimated flow rate of gas through the pressure regulator 134 and the estimated pressure at the patient interface.
[0625] The controller may be configured to display the estimated pressure at the patient interface on at least one display.
[0626] As described in step 1303, determining the estimated flow rate and / or pressure of the gas in the gas flow path is based on at least one waveform characteristic, as described above (with respect to the detection of bubbling disclosure above).
[0627] It will be appreciated that the waveform characteristics described above with respect to detecting bubbling are equally applicable to waveform characteristics as described for determining the estimated flow rate and / or pressure of gas within a gas flow path.
[0628] FIG. 15 shows an example of an overall structure according to an embodiment of the determination of the estimated flow rate and / or pressure of a gas in a gas flow path.
[0629] In step 1401, one or more characteristic waveforms indicative of bubbling in the pressure regulator are filtered. For example, a high-pass FIR filter at cutoff frequencies, e.g., 2 Hz and 21 Hz, or 2 Hz and 40 Hz, may be applied to the raw signal to remove any DC offset. Flow and / or pressure signals may be derived from the flow and pressure sensors, respectively.
[0630] The controller may be configured to apply a high pass and / or low pass filter to the measurement of the characteristic of the bubbling in the pressure regulator.
[0631] In step 1402, the waveform is then divided into one or more time windows (eg, as shown in FIG. 12A).
[0632] In some embodiments, the waveform may be divided into one or more time windows.
[0633] A determination of an estimated flow rate and / or pressure of the gas in the gas flow path may be made for each time window.
[0634] In some embodiments, each time window may be from about 1 second to about 6 seconds, or from about 1.5 seconds to about 3 seconds, from about 1 second to about 180 seconds, from about 1 second to about 60 seconds, or from about 1 second to about 30 seconds.
[0635] In some embodiments, each time window may overlap with the previous time window and / or the next time window.
[0636] In some embodiments, the time window overlap may be from about 1 second to about 6 seconds, or from about 1.5 seconds to about 3 seconds, or from about 5 seconds to about 30 seconds, or from about 1 second to about 60 seconds, or from about 1 second to about 10 seconds.
[0637] FIG. 12A shows an example of overlapping timing windows 1202, 1202'.
[0638] It will be appreciated that in some embodiments, a single timing window is used.
[0639] In step 1403, one or more waveform characteristics are determined from the waveform within the time window.
[0640] In step 1404, one or more waveform characteristics are used to determine an estimated flow rate and / or pressure of the gas in the gas flow path. The determination of the estimated flow rate and / or pressure of the gas in the gas flow path may be based on a model (as described in more detail below).
[0641] The above disclosure regarding time windows in bubbling detection is equally applicable to flow and pressure estimation.
[0642] In some embodiments, determining the estimated flow rate and / or pressure of the gas in the gas flow path is based on at least one waveform characteristic exceeding an associated threshold.
[0643] In some embodiments, the determination of bubbling may be based on a regression model that includes one or more waveform characteristic factors associated with each waveform characteristic.
[0644] The waveform characteristic factor may weight each waveform characteristic.
[0645] The waveform characterization factors may be determined experimentally or through machine learning or other supervised learning.
[0646] In some embodiments, determining the estimated flow rate and / or pressure of the gas in the gas flow path is based on an artificial neural network.
[0647] In some embodiments, the regression model is a logistic regression (LogReg) model.
[0648] The model may be trained based on supervised learning using measured flow rates and pressures in the gas flow path. Samples may be collected from a range of operating conditions for the device. The samples may provide a wide range of scenarios for the equipment.
[0649] The model may be defined by the following functions: Estimated flow rate and / or pressure = w1*average amplitude +w2*mean amplitude of positive peaks +w3*mean amplitude of negative peak +w4*average distance between positive peaks +w5*average distance between negative peaks +w6*number of zero crossings +w7*number of threshold crossings +w8*Amplitude between consecutive positive and negative peaks + w9 * standard deviation of mean amplitude +w 10*Standard deviation of the amplitude of the positive peak +w 11 *Standard deviation of the negative peak amplitude +w 12 *Standard deviation of the distance between positive peaks +w 13 *Standard deviation of the distance between negative peaks +w 14 *Standard deviation of the amplitude between consecutive positive and negative peaks +Bias In the above formula, w1, w2, w3, w4, w5, w6, w7, w8, w9, w 10 , w 11 , w 12 , w 13 , w 14 is a factor (eg, a waveform characteristic factor).
[0650] In step 1404, an exponential filter may be applied to the output of the model for each window, effectively combining the outputs of successive time windows.
[0651] It will be appreciated that other ways of combining the model outputs for each window are possible, such as applying a low pass filter to the model outputs, or weighting based on the time elapsed since the window or the previous window (i.e., previous windows are weighted less heavily in the model outputs).
[0652] In some embodiments, determining the estimated flow rate and / or pressure of the gas in the gas flow path is additionally or alternatively based on at least one frequency characteristic.
[0653] The frequency characteristics may be based on one or more characteristics indicative of a bubbling waveform.
[0654] The frequency characteristics may include at least one frequency band and a power in the frequency band.
[0655] The frequency characteristics may be provided to the estimated flow and / or pressure models in the same manner as the waveform characteristics, as described above.
[0656] The frequency band may be about 5 Hz and about 20 Hz, or another range tailored to bubbling (or one or more characteristics indicative of bubbling).
[0657] As noted above, the power in the frequency band may be provided to a model that is used to determine an estimated flow rate and / or an estimated pressure of the gas in the gas flow path.
[0658] The location of the flow and / or pressure sensor may also affect the estimated flow rate and / or pressure of the gas in the gas flow path. For example, a flow and / or pressure sensor located near a flow generator may sense a disturbance in the flow and / or pressure that has waveform / spectral characteristics that overlap with one or more characteristics indicative of bubbling.
[0659] Detecting one or more characteristics indicative of bubbling, particularly in devices that may also provide high-flow therapy, can be difficult because the sensor location may not necessarily be optimal for best determining the one or more characteristics indicative of bubbling. For example, the sensor may be placed near the flow generator (as opposed to near the pressure regulator) in a respiratory assistance device. Therefore, any sensor noise generated from device operation (e.g., by the flow generator) must be distinguished from noise that is part of the signal indicative of bubbling in the pressure regulator. The above-described embodiments facilitate noise removal by using waveform characteristics to isolate the bubbling signal.
[0660] One or more properties indicative of bubbling may also be affected by, for example, ambient pressure, temperature, the amount of water in the humidification chamber, and / or the gas mixture.
[0661] In some embodiments, the determination of the estimated flow rate and / or pressure of the gas in the gas flow path is based on one or more of the ambient temperature, the altitude of the device, and the water level of a humidifier located in the gas flow path.
[0662] In some embodiments (as described in more detail above), the device may be configured to provide a combination of ambient air and supplemental gas, and the determination of the estimated flow rate and / or pressure of gas in the gas flow path is based on the ratio of ambient air to supplemental gas.
[0663] In some circumstances, the components of the fluid path used in bubble CPAP therapy (e.g., the circuitry and / or interfaces) can affect one or more characteristics indicative of bubbling. For example, the length and diameter of the conduit and the interface can affect the waveform.
[0664] The components may be identified by the device by one or more methods known in the art (e.g., by determining the electrical resistance of the linked components.
[0665] Determining the estimated flow rate and / or pressure of gas in the gas flow path (e.g., the flow rate of gas through a pressure regulator and / or the pressure at the patient interface) may be based on conduit characteristics of the inspiratory conduit and / or expiratory conduit.
[0666] The conduit properties are The length of the conduit, the diameter of the conduit, It may include one or more of the types of conduit.
[0667] Determining the estimated flow rate and / or pressure of gas in the gas flow path may be based on characteristics of the patient interface. For example, different interfaces may affect bubbling in the pressure regulator. Different interfaces may have different waveform characteristics, for example.
[0668] It will be appreciated that any feature of bubbling detection may be combined with any feature of flow and pressure estimation.
[0669] When a device is described as being acted upon, it may be one or more controllers of the device being acted upon as part of the device. Furthermore, when a controller is described as being acted upon, it will be recognized that the action may be acted upon by one or more controllers (or processors of controllers) in a distributed controller setup.
[0670] In this disclosure, the terms controller and hardware controller may be interchangeable. For example, a controller or hardware controller may be a microprocessor or CPU with software instructions to control other components.
[0671] The described methods and processes may be embodied in software code modules executed by one or more general-purpose and / or special-purpose computers and may be partially or fully automated via software code modules. The word "module" refers to logic embodied in hardware and / or firmware, or to a collection of software instructions written in a programming language, such as C or C++, possibly with entry and exit points. Software modules may be compiled and linked into executable programs, installed in dynamically linked libraries, or written in an interpreted programming language, such as BASIC, Perl, or Python. It will be appreciated that software modules may be callable from other modules or from themselves, and / or may be invoked in response to detected events or interrupts. Software instructions may be embedded in firmware, such as erasable programmable read-only memory (EPROM). It will be further appreciated that hardware modules may include connected logic units, such as gates and flip-flops, and / or may include programmable units, such as programmable gate arrays, application-specific integrated circuits, and / or processors. The modules described herein may be implemented as software modules, but may also be represented in hardware and / or firmware. Moreover, in some configurations, the modules may be separately compiled, while in other configurations, the modules may represent a subset of instructions of a separately compiled program and may not have an interface available to other logical program units.
[0672] In particular configurations, code modules may be embodied in and / or stored on any type of computer-readable medium or other computer storage device. In some systems, data (and / or metadata) input to the system, data generated by the system, and / or data used by the system may be stored in any type of computer data repository, such as a relational database and / or flat file system. Any of the systems, methods, and processes described herein may include interfaces configured to enable interaction with users, operators, other systems, components, programs, etc.
[0673] While the present disclosure has been described in the context of certain embodiments and examples, those skilled in the art will understand that the present disclosure extends beyond the specifically disclosed embodiments to other alternative embodiments and / or uses modifications and equivalents thereof that will be apparent. Additionally, while several variations of the disclosed embodiments have been shown and described in detail, other modifications that are within the scope of the present disclosure will be readily apparent to those skilled in the art. It is also contemplated that various combinations or subcombinations of specific features and aspects of the embodiments may be made and still fall within the scope of the present disclosure. For example, features described above in connection with one embodiment can be used with different embodiments described herein, and the combination will still fall within the scope of the present disclosure. It should be understood that various features and aspects of the disclosed embodiments can be combined with or substituted for one another to form different modes of embodiment of the present disclosure. Thus, it is not intended that the scope of the disclosure herein should be limited by the specific embodiments described above. Accordingly, unless otherwise specified or clearly contradicted, each embodiment of the present invention may include, in addition to its basic features described herein, one or more features as described herein relative to the embodiments of the present invention disclosed herein.
[0674] It is to be understood that a feature, material, characteristic, or group described in connection with a particular aspect, embodiment, or example is applicable to any other aspect, embodiment, or example described in this section or anywhere herein, unless inconsistent therewith. All features disclosed herein (including any accompanying claims, summaries, and drawings), and / or all steps of any method or process so disclosed, may be combined in any combination, except combinations in which at least some of such features and / or steps are mutually exclusive. Protection is not limited to the details of any foregoing embodiment. Protection extends to any novel, or any novel combination of, features disclosed herein (including any accompanying claims, summaries, and drawings), or any novel, or any novel combination of steps of any method or process so disclosed.
[0675] Furthermore, certain features that are described in this disclosure in the context of separate implementations can also be implemented in combination in a single implementation. Conversely, various features that are described in the context of a single implementation can also be implemented in multiple implementations separately or in any suitable subcombination. Moreover, while features may be described above as working in a particular combination, one or more features from a claimed combination can, in some cases, be deleted from that combination, and the combination may be claimed as a subcombination or a variation of the subcombination.
[0676] Moreover, while operations may be depicted in the figures and described herein in a particular order, such operations need not be performed in the specific order or sequential order shown, or all operations need not be performed, to achieve desired results. Other operations not depicted or described may be incorporated into the example methods and processes. For example, one or more additional operations may occur before, after, simultaneously with, or between any described operations. Furthermore, operations may be rearranged or resequenced in other implementations. Those skilled in the art will recognize that in some embodiments, the actual steps performed in the illustrated and / or disclosed processes may differ from those shown in the figures. Depending on the embodiment, certain steps described above may be eliminated, and others may be added. Furthermore, the features and attributes of the specific embodiments disclosed above may be combined in different ways to form additional embodiments, all of which are within the scope of the present disclosure. Furthermore, the separation of various system components in the above-described implementations should not be construed as requiring such separation in all implementations, and it should be understood that the described components and systems generally can be integrated together in a single product or multiple product packages.
[0677] For purposes of this disclosure, certain aspects, advantages, and novel features have been described herein. Not necessarily all such advantages may be achieved by any particular embodiment. Thus, for example, those skilled in the art will recognize that the present disclosure may be embodied or carried out in a manner that achieves one advantage or group of advantages as taught herein, without necessarily achieving other advantages as may be taught or suggested herein.
[0678] As used herein, predicate language, particularly "can," "could," "might," "may," "e.g.," and the like, is generally intended to express that certain embodiments include certain features, elements, and / or steps, while other embodiments do not, unless expressly stated otherwise or apparent from the context in which it is used. Thus, such predicate language generally does not intend that features, elements, and / or steps are in any way required for one or more embodiments, or that one or more embodiments necessarily include logic for determining, with or without other input or prompts, whether those features, elements, and / or steps are included in or should be performed in any particular embodiment. The terms "comprising," "including," "having," and the like are synonymous and used in an inclusive, non-limiting manner and do not exclude additional elements, features, acts, operations, etc. Also, the term "or" is used in its inclusive sense (and not its exclusive sense), so that, for example, when used to connect a list of elements, the term "or" means one, some, or all of the elements in the list.
[0679] Transitional language such as the phrase "at least one of X, Y, and Z," unless expressly stated otherwise, is understood with context to be generally used to convey that an item, term, etc. may be either X, Y, or Z. Thus, such transitional language is generally not intended to imply that a particular embodiment requires the presence of at least one X, at least one Y, and at least one Z.
[0680] As used herein, language of degree, such as the terms "approximately," "about," "generally," and "substantially," refers to a value, amount, or characteristic that is close to a stated value, amount, or characteristic that still performs a desired function or achieves a desired result. For example, the terms "approximately," "about," "generally," and "substantially" may refer to an amount that is less than 10%, less than 5%, less than 1%, less than 0.1%, and less than 0.01% of the stated amount. As another example, in certain embodiments, the terms "generally parallel" and "substantially parallel" refer to a value, amount, or characteristic that deviates from exact parallelism by no more than 15 degrees, 10 degrees, 5 degrees, 3 degrees, 1 degree, 0.1 degrees, etc.
[0681] Any methods disclosed herein need not be performed in the order listed. Although the methods disclosed herein include certain actions performed by a physician, the methods can also include any third-party command of those actions, whether express or implied. For example, an action such as "controlling the motor speed" includes "giving instructions to control the motor speed."
[0682] All of the methods and tasks described herein may be performed by a computer system and may be fully automated. A computer system may include multiple separate computers or computing devices (e.g., physical servers, workstations, storage arrays, cloud computing resources, etc.) that communicate and interact over a network to perform the described functions. Each such computing device typically includes a processor (or multiple processors) that executes program instructions or modules stored in memory or other non-transitory computer-readable storage media or devices (e.g., solid-state storage devices, disk drives, etc.). Various functions disclosed herein may be embodied in such program instructions and / or implemented in the computer system's special-purpose circuitry (e.g., ASIC or FPGA). When a computer system includes multiple computing devices, these devices may, but need not, be co-located. Results of the disclosed methods and tasks may be persistently stored by transforming physical storage devices, such as solid-state memory chips and / or magnetic disks, into different states. In some embodiments, the computer system may be a cloud-based computing system, whose processing resources are shared by multiple separate entities or other users.
[0683] The scope of the present disclosure is not intended to be limited by the specific disclosure of preferred embodiments in this section or elsewhere herein, but may be defined by the claims as they appear, or as they may appear in the future, either in this section or elsewhere herein. Claim language is to be interpreted broadly based on the language used in the claims, and is not limited to the examples set forth herein or during the prosecution of this application, which examples are to be construed as non-exclusive.
Claims
1. 1. A respiratory assistance device for providing respiratory therapy, comprising: a flow generator configured to provide a gas flow to an inspiratory conduit at a target flow rate, the gas flow path including at least the inspiratory conduit configured to couple to a patient interface, and an expiratory conduit configured to couple to the patient interface and a pressure regulator, the pressure regulator including a chamber with a column of liquid immersing an end of the expiratory conduit therein; a controller, the controller comprising: determining at least one waveform characteristic based on a waveform of a measured flow rate and / or pressure, the measured flow rate and / or pressure being measured by at least one gas characteristic sensor in the gas flow path; and determining whether bubbling is occurring within the pressure regulator based on the at least one waveform characteristic; The at least one waveform characteristic is: At least one peak distance characteristic, and / or at least one peak difference characteristic, and / or A respiratory assistance device including at least one crossover characteristic.
2. 2. A respiratory assistance device as claimed in claim 1, wherein determining whether bubbling is occurring is based on determining pressure and / or flow oscillations in the waveform which are indicative of bubbling in the pressure regulator.
3. 3. A respiratory assistance device as claimed in claim 1 or 2, wherein the controller is configured to indicate on a display whether bubbling is occurring within the pressure regulator.
4. 4. A respiratory assistance device as described in any one of claims 1 to 3, wherein the controller is configured to generate an alarm based on whether bubbling is occurring within the pressure regulator, and the controller is configured to generate the alarm when it determines that bubbling is not occurring within the pressure regulator.
5. 5. The respiratory assistance device of claim 4, wherein the controller is configured to issue the alarm when it determines that the percentage of time during which bubbling occurs in a certain period of time is less than a threshold value, or when it determines that the percentage of time during which no bubbling occurs in a certain period of time is greater than a threshold value.
6. A respiratory assistance device according to any preceding claim, wherein the controller is configured to automatically select a respiratory therapy mode based on whether bubbling is occurring within the pressure regulator.
7. 7. The respiratory assistance device of claim 6, wherein the respiratory therapy modes include a bubble CPAP therapy mode and a high flow therapy mode.
8. A respiratory assistance device according to any preceding claim, wherein the controller is configured to generate an alarm if bubbling is detected in non-bubble CPAP mode.
9. A respiratory assistance device as described in any one of claims 1 to 8, wherein the determination of whether bubbling is occurring is based on at least one waveform characteristic exceeding an associated threshold, and / or the determination of whether bubbling is occurring is based on a model including one or more waveform characteristic factors associated with each waveform characteristic.
10. The at least one waveform characteristic is: the amplitude of said waveform; the distance between the positive peaks of said waveform; and / or based on one or more of: the magnitude of the difference in amplitude between successive positive and negative peaks of the waveform; The at least one waveform characteristic includes at least one amplitude characteristic, the amplitude characteristic being: the average of the amplitudes of the positive peaks of the waveform; the standard deviation of the amplitude of the positive peaks of the waveform and / or The at least one peak distance characteristic is: the average distance between positive peaks of said waveform; the standard deviation of the distance between positive peaks of the waveform and / or The at least one peak difference characteristic is: an average of the magnitude of the amplitude difference between successive positive and negative peaks of the waveform; the standard deviation of the magnitude of the amplitude difference between successive positive and negative peaks of the waveform; 10. A respiratory assistance device according to any preceding claim, comprising one or more of:
11. 11. A respiratory assistance device as claimed in claim 10, wherein one or more of the at least one amplitude characteristic, the at least one peak distance characteristic and / or the at least one peak difference characteristic are determined over a time window.
12. The at least one gas characteristic sensor comprises: Within the respiratory assistance device, Within the flow generator, within the patient interface; Within the pressure regulator, A respiratory assistance device according to any preceding claim, located within one or more of the inspiratory conduit and / or the expiratory conduit.
13. the controller is configured to determine that bubbling is intermittent based on a ratio of a time during which bubbling occurs to a time during which bubbling does not occur over a certain period of time; A respiratory assistance device as described in any one of claims 1 to 12, wherein the controller is configured to determine that the bubbling is intermittent when the ratio of the time during which bubbling occurs to the time during which bubbling does not occur is within a certain range.
14. A respiratory assistance device as claimed in any preceding claim, wherein detection of bubbling occurring within the pressure regulator during a therapy session indicates that therapy is being delivered.
15. the controller is configured to determine one or more indicators of a bubbling time metric based on detecting bubbling during one or more treatment sessions; The one or more indicators of a bubbling time metric are: a bubbling index, the bubbling index being the percentage of the total treatment time during which bubbling occurs; Non-bubbling time when no bubbling occurs A respiratory assistance device according to any preceding claim, wherein bubbling occurs during one or more of the bubbling times.
16. the controller is configured to generate an alert when the one or more indicators of a bubbling time metric fall below a threshold; and / or 16. A respiratory assistance device according to claim 15, wherein the controller is configured to indicate that therapy is being delivered when the one or more indicators of bubbling time metrics rise above a threshold.
17. A respiratory assistance device as described in any one of claims 1 to 16, wherein detection of intermittent bubbling generates an intermittent bubbling alarm and indicates that the target flow rate and / or target pressure provided to the patient does not meet the patient's needs.
18. 18. A respiratory assistance apparatus as claimed in claim 17, wherein the intermittent bubbling alert includes a recommendation to increase the target flow rate and / or target pressure.
Citation Information
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