Alarm for respiratory therapy system
Patent Information
- Application Number
- JP2024225448
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2019-10-25
- Filing Date
- 2024-12-20
- Publication Date
- 2025-08-20
AI Technical Summary
Existing respiratory therapy devices face challenges in accurately and promptly adjusting oxygen concentrations to achieve target blood oxygen levels in patients, due to delays in blood oxygen concentration responses to changes in oxygen therapy settings.
A breathing aid device that includes a flow generator, a controller, and sensors to measure and adjust the oxygen concentration of respiratory gases based on target oxygen concentrations and real-time patient blood oxygen level measurements, while providing estimated future blood oxygen concentration values and alarm outputs.
The device enables immediate adjustment of oxygen therapy settings to meet target blood oxygen levels, reduces delays in therapeutic responses, and provides early alerts if target blood oxygen concentrations cannot be reached, ensuring effective respiratory therapy.
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Abstract
Description
[Technical field]
[0001] The present invention relates to a method and system for controlling and / or operating a respiratory assistance device. [Background technology]
[0002] Respirators are used to deliver a flow of gas to a user or patient in a variety of environments, such as hospitals, medical facilities, residential care, or home environments. Respirators, such as flow therapy devices, may include an oxygen inlet to allow supplemental oxygen to be delivered along with the gas flow, and / or a humidification device to deliver heated and humidified gas. Flow therapy devices may allow for the regulation and control of characteristics of the gas flow, including flow rate, temperature, gas concentration such as oxygen concentration, humidity, pressure, and the like. Summary of the Invention [Means for solving the problem]
[0003] One or more inventions are disclosed that relate to a respiratory assistance device for providing respiratory gas to a patient.
[0004] In one aspect, a respiratory assistance apparatus is provided, comprising: a flow generator configured to provide a breathing gas to a patient, the breathing gas including supplemental oxygen provided from an oxygen source; a controller configured to control an oxygen concentration of the respiratory gas; at least one sensor configured to provide a measurement indicative of a blood oxygen level of the patient to the controller; Including, The controller is configured to identify a target oxygen concentration of the respiratory gas; The controller calculates the estimated future value of the patient's blood oxygen concentration by: the difference between the initial oxygen concentration of the respiratory gas and the target oxygen concentration of the respiratory gas; A measurement showing the patient's blood oxygen level The calculation is configured based on:
[0005] In some embodiments, the controller is configured to control the oxygen concentration of the breathing gas based on a target oxygen concentration.
[0006] In some embodiments, the estimated future value of the patient's blood oxygen level is further based on the time from when the controller controls the oxygen level of the respiratory gas to the target oxygen level.
[0007] In some embodiments, the controller is configured to receive an input and identify a target oxygen concentration of the respiratory gas based on the input.
[0008] In some embodiments, the input includes a target oxygen concentration range including an upper target oxygen concentration limit and a lower target oxygen concentration limit.
[0009] In some embodiments, the oxygen supplemental humidifier, controller, flow generator and sensor are located within a single housing.
[0010] In some embodiments, the device includes at least one gas composition sensor configured to provide measurements indicative of the oxygen concentration of the respiratory gas to the controller.
[0011] In some embodiments, the at least one gas composition sensor is an ultrasonic sensor.
[0012] In some embodiments, the controller is configured to compare the estimated future value of the patient's blood oxygen level to a blood oxygen level alarm threshold and / or a blood oxygen level alarm range, and generate an alarm output if the estimated future value of the patient's blood oxygen level is not within the blood oxygen level alarm range.
[0013] In some embodiments, the blood oxygen level alarm range includes an upper blood oxygen level alarm threshold and a lower blood oxygen level alarm threshold.
[0014] In some embodiments, the blood oxygen concentration alarm threshold is identified based on the time from when the controller controls the oxygen concentration of the respiratory gas to the target oxygen concentration.
[0015] In some embodiments, an alarm threshold may be identified based on the amount of change in the target oxygen concentration.
[0016] In some embodiments, the alarm threshold may be a specified or target oxygen concentration.
[0017] In some embodiments, the alarm threshold may be the specified current oxygen concentration of the gas.
[0018] In some embodiments, the alarm threshold is based on a target blood oxygen level.
[0019] In some embodiments, the controller is configured to generate an alarm output based on a comparison of an estimated future value of the patient's blood oxygen level and a blood oxygen level alarm threshold.
[0020] In some embodiments, the controller is configured to generate said alarm output if a projected future value of the patient's blood oxygen level is above or below a blood oxygen level threshold.
[0021] In some embodiments, the alarm threshold is based on the time from when the controller controls the oxygen concentration of the breathing gas to the target oxygen concentration.
[0022] In some embodiments, the input includes a target blood oxygen level, and the blood oxygen level alarm range is based on the target blood oxygen level.
[0023] In some embodiments, the blood oxygen level threshold and / or blood oxygen level alarm range is based on the difference between a target oxygen level and a target upper oxygen level limit.
[0024] In some embodiments, the respiratory assistance device may include at least one valve, and the controller is configured to control the valve to control the oxygen concentration of the respiratory gas by varying the amount of oxygen provided to the respiratory gas from the oxygen source.
[0025] In some embodiments, the respiratory assistance device may be connected to an oxygen source, and the controller is configured to control the flow of gas from the oxygen source to control the oxygen concentration of the respiratory gas.
[0026] In some embodiments, the controller is configured to control the oxygen concentration of the respiratory gas based on a target oxygen concentration and a measured oxygen concentration of the respiratory gas.
[0027] In some embodiments, measurements indicative of a patient's blood oxygen level may be determined over a period of time.
[0028] In some embodiments, the controller is configured to generate an alarm output based on an estimated future value of the patient's blood oxygen level.
[0029] In some embodiments, the respiratory assistance device (or associated equipment) is configured to display the alarm output or information related to the alarm output.
[0030] In some embodiments, the respiratory assistance device (or associated equipment) is configured to display to the patient an estimated future value of blood oxygen level.
[0031] In some embodiments, the alarm output may be transmitted to one or more servers in communication with the respiratory assistance device or to a patient monitoring unit and / or a nurse monitoring station.
[0032] In another aspect, a respiratory assistance apparatus is provided comprising: a flow generator configured to provide a breathing gas to a patient, the breathing gas including supplemental oxygen provided from an oxygen source; at least one sensor configured to provide a measurement indicative of a blood oxygen level of the patient to the controller; a controller configured to receive an input, the input including a target oxygen concentration range including an upper target oxygen concentration limit and / or a lower target oxygen concentration limit; a controller configured to control an oxygen concentration of the respiratory gas to a target oxygen concentration, the target oxygen concentration being within a target oxygen concentration range including an upper target oxygen concentration limit and a lower target oxygen concentration limit, the controller comprising: calculating an estimated maximum future value of the patient's blood oxygen concentration for the target oxygen concentration range based on the measurement indicative of the patient's blood oxygen concentration and the difference between the target oxygen concentration and the target oxygen concentration upper limit; or calculating an estimated minimum future value of the patient's blood oxygen concentration for the target oxygen concentration range based on the measurement indicative of the patient's blood oxygen concentration and the difference between the target oxygen concentration and the target oxygen concentration lower limit; a controller configured to: Includes.
[0033] In some embodiments, the controller is configured to control the oxygen concentration of the breathing gas from an initial oxygen concentration to a target oxygen concentration.
[0034] In some embodiments, the initial oxygen concentration is the oxygen concentration before the controller controls the oxygen concentration of the respiratory gas to the target oxygen concentration.
[0035] In some embodiments, the respiratory assistance device is configured to receive an input indicating a target oxygen concentration range.
[0036] In some embodiments, the target oxygen concentration range is input via a user interface.
[0037] In some embodiments, the estimated maximum future value and / or the estimated minimum future value are based on the estimated oxygen efficiency.
[0038] In some embodiments, the estimated maximum future value and / or the estimated minimum future value are updated in real time.
[0039] In some embodiments, the maximum or minimum future value is after the effect of the change in oxygen concentration has been realized on the patient's blood oxygen.
[0040] In some embodiments, the controller is configured to display a minimum estimated future value of the patient's blood oxygen and / or an estimated minimum future value of the patient's blood oxygen level.
[0041] In some embodiments, the controller is configured to generate an alarm output.
[0042] In some embodiments, the alarm output may be transmitted to one or more servers in communication with the respiratory assistance device or to a patient monitoring unit and / or a nurse monitoring station.
[0043] In some embodiments, the alarm output includes at least one alarm parameter.
[0044] In some embodiments, the controller is configured to generate an alarm output based on an estimated future value of the patient's blood oxygen level and / or an estimated maximum or minimum future value of the patient's blood oxygen level.
[0045] In some embodiments, the controller is configured to compare the estimated maximum future value of the patient's blood oxygen level to a target blood oxygen level upper limit, and generate an alarm output if the estimated maximum future value of the patient's blood oxygen level is below the target blood oxygen level upper limit.
[0046] In some embodiments, the alarm parameters of the or one of the alarm outputs are based on the magnitude of the difference between an estimated maximum future value of the patient's blood oxygen level and a target upper blood oxygen level limit.
[0047] In some embodiments, the controller is configured to compare the estimated minimum future value of the patient's blood oxygen level to a target blood oxygen level lower limit, and generate an alarm output if the estimated minimum future value of the patient's blood oxygen level falls below the target blood oxygen level lower limit.
[0048] In some embodiments, the or an alarm parameter of the alarm output is based on the magnitude of the difference between an estimated minimum future value of the patient's blood oxygen level and a target lower blood oxygen level limit.
[0049] In some embodiments, the alarm parameter is an alarm time or an alarm intensity.
[0050] In some embodiments, the alarm output and / or associated data is provided to a display.
[0051] In some embodiments, the alarm output is configured to present a message on a display.
[0052] In some embodiments, the alarm output is configured to generate a sound or provide a display.
[0053] In another aspect, a respiratory assistance apparatus is provided comprising: a flow generator configured to provide a breathing gas to a patient, the breathing gas including supplemental oxygen provided from an oxygen source; at least one sensor configured to provide a measurement indicative of a blood oxygen level of the patient to the controller; Including, During operation of the device, the controller is configured to store respiratory gas oxygen concentration data, the stored respiratory gas oxygen concentration data including a plurality of oxygen concentrations of the respiratory gas, each oxygen concentration of the respiratory gas having an associated timestamp; The controller calculates the estimated future value of the patient's blood oxygen concentration by: stored respiratory gas oxygen concentration data, where the respiratory gas oxygen concentration is weighted based on an associated time stamp; A measurement showing the patient's blood oxygen level The calculation is configured based on:
[0054] In some embodiments, the controller may further comprise: The patient's estimated oxygen efficiency ratio, Hemoglobin Saturation Function The calculation is configured based on:
[0055] In some embodiments, the controller is configured to generate an alarm output based on an estimated future value of the patient's blood oxygen level.
[0056] In some embodiments, the respiratory assistance device (or associated equipment) is configured to display the alarm output or information related to the alarm output.
[0057] In some embodiments, the respiratory assistance device (or associated equipment) is configured to display an estimated future value of the patient's blood oxygen level.
[0058] In some embodiments, the alarm output may be transmitted to one or more servers in communication with the respiratory assistance device or to a patient monitoring unit and / or a nurse monitoring station.
[0059] In another aspect, a respiratory assistance apparatus is provided comprising: a flow generator configured to provide a breathing gas to a patient, the breathing gas including supplemental oxygen provided from an oxygen source; at least one sensor configured to provide a measurement indicative of a blood oxygen level of the patient to the controller; Including, During operation of the device, the controller is configured to store respiratory gas oxygen concentration data, the stored respiratory gas oxygen concentration data including one or more oxygen concentrations of the respiratory gas, each oxygen concentration of the respiratory gas having an associated timestamp; The controller calculates the estimated maximum future value of the patient's blood oxygen concentration by: stored respiratory gas oxygen concentration data, where the respiratory gas oxygen concentration is weighted based on an associated time stamp; a measurement indicative of the patient's blood oxygen level; The difference between the current oxygen concentration of the breathing gas and the target oxygen concentration upper limit, The calculation is configured based on:
[0060] In some embodiments, the controller may further comprise: The patient's estimated oxygen efficiency ratio, Hemoglobin Saturation Function The calculation is configured based on:
[0061] In another aspect, a respiratory assistance apparatus is provided comprising: a flow generator configured to provide a breathing gas to a patient, the breathing gas including supplemental oxygen provided from an oxygen source; at least one sensor configured to provide a measurement indicative of a blood oxygen level of the patient to the controller; Including, During operation of the device, the controller is configured to store respiratory gas oxygen concentration data, the stored respiratory gas oxygen concentration data including one or more oxygen concentrations of the respiratory gas, each oxygen concentration of the respiratory gas having an associated timestamp; The controller calculates the estimated maximum future value of the patient's blood oxygen concentration by: stored respiratory gas oxygen concentration data, where the respiratory gas oxygen concentration is weighted based on an associated time stamp; a measurement indicative of the patient's blood oxygen level; the difference between the oxygen concentration of the respiratory gas in the current estimation phase and the target oxygen concentration lower limit; The calculation is configured based on:
[0062] In some embodiments, the controller may further comprise: The patient's estimated oxygen efficiency ratio, Hemoglobin Saturation Function The calculation is configured based on:
[0063] In some embodiments, the associated timestamp includes the time that the associated oxygen concentration of the respiratory gas was recorded and / or measured and / or stored.
[0064] In some embodiments, the associated timestamp includes the amount of time that has elapsed since the associated oxygen concentration of the respiratory gas was recorded and / or measured and / or stored.
[0065] In some embodiments, the controller is configured to identify a series of changes to the respiratory gas oxygen concentration in the stored respiratory gas oxygen concentration data.
[0066] In some embodiments, the oxygen concentration of the respiratory gas is controlled to a target oxygen concentration of the respiratory gas.
[0067] In some embodiments, the oxygen concentration of the respiratory gas is a measured oxygen concentration of the respiratory gas.
[0068] In some embodiments, the device includes at least one gas composition sensor configured to provide measurements indicative of the oxygen concentration of the respiratory gas to the controller.
[0069] In some embodiments, the controller is configured to update the stored oxygen concentration of the respiratory gas concentration data at regular or irregular time intervals.
[0070] In some embodiments, the controller is configured to update the stored oxygen concentration of the respiratory gas when the target oxygen concentration of the respiratory gas is updated by the controller.
[0071] In some embodiments, the weighting based on the associated timestamp is based on a decay function.
[0072] In some embodiments, the stored oxygen concentration data is transmitted to one or more servers in communication with the respiratory assistance device or to a patient monitoring unit and / or a nurse monitoring station.
[0073] In another aspect, a respiratory assistance apparatus is provided comprising: a flow generator configured to provide a breathing gas to a patient, the breathing gas including supplemental oxygen provided from an oxygen source; at least one sensor configured to provide a measurement indicative of a blood oxygen level of the patient to the controller; Including, the controller is configured to maintain a total change in respiratory gas oxygen concentration; The controller is configured to perform an estimation update phase, the estimation update phase comprising: applying a decay function to the sum of the changes in oxygen concentration of the respiratory gas; Calculating a difference between the oxygen concentration of the respiratory gas in a current estimated update phase and the oxygen concentration of the respiratory gas in a previous estimated update phase; Add the difference to the total change in oxygen concentration of the breathing gas. Including, The controller calculates the estimated future value of the patient's blood oxygen concentration by: The sum of the changes in oxygen concentration of the respiratory gas; A measurement showing the patient's blood oxygen level The calculation is configured based on:
[0074] The controller calculates the estimated future value of the patient's blood oxygen concentration by: The patient's estimated oxygen efficiency ratio, Hemoglobin Saturation Function The calculation is configured based on:
[0075] In another aspect, a respiratory assistance apparatus is provided comprising: a flow generator configured to provide a breathing gas to a patient, the breathing gas including supplemental oxygen provided from an oxygen source; at least one sensor configured to provide a measurement indicative of a blood oxygen level of the patient to the controller; Including, The controller is configured to maintain a total change in respiratory gas oxygen concentration; The controller is configured to perform an estimation update phase, the estimation update phase comprising: applying a decay function to the sum of the changes in oxygen concentration of the respiratory gas; Calculating a difference between the oxygen concentration of the respiratory gas in a current estimated update phase and the oxygen concentration of the respiratory gas in a previous estimated update phase; Add the difference to the total change in oxygen concentration of the breathing gas. Including, The controller calculates the estimated maximum future value of the patient's blood oxygen concentration by: The sum of the changes in oxygen concentration of the respiratory gas; a measurement indicative of the patient's blood oxygen level; The difference between the oxygen concentration of the respiratory gas in the current estimation phase and the target oxygen concentration upper limit, The calculation is configured based on:
[0076] In some embodiments, the controller may further comprise: The patient's estimated oxygen efficiency ratio, Hemoglobin Saturation Function The calculation is configured based on:
[0077] In another aspect, a respiratory assistance apparatus is provided comprising: a flow generator configured to provide a breathing gas to a patient, the breathing gas including supplemental oxygen provided from an oxygen source; at least one sensor configured to provide a measurement indicative of a blood oxygen level of the patient to the controller; Including, The controller is configured to maintain a total change in respiratory gas oxygen concentration; The controller is configured to perform an estimation update phase, the estimation update phase comprising: applying a decay function to the total change in oxygen concentration of the respiratory gas; Calculating a difference between the oxygen concentration of the respiratory gas in a current estimated update phase and the oxygen concentration of the respiratory gas in a previous estimated update phase; Add the difference to the total change in oxygen concentration of the breathing gas. Including, The controller determines an estimated minimum future value of the patient's blood oxygen concentration by: The sum of the changes in oxygen concentration of the respiratory gas, a measurement indicative of the patient's blood oxygen level; the difference between the oxygen concentration of the respiratory gas in the current estimation phase and the target oxygen concentration lower limit; The calculation is configured based on:
[0078] In some embodiments, the controller may further comprise: The patient's estimated oxygen efficiency ratio, Hemoglobin Saturation Function The calculation is configured based on:
[0079] In some embodiments, the controller is configured to perform the estimation update phase at regular or irregular time intervals.
[0080] In some embodiments, the controller is configured to perform the estimation updates in real-time.
[0081] In some embodiments, the controller is configured to perform the estimation update phase periodically.
[0082] In some embodiments, the controller is configured to perform an estimation update phase when the target oxygen concentration of the respiratory gas is updated by the controller.
[0083] In some embodiments, the controller is configured to control the oxygen concentration of the breathing gas to a target oxygen concentration.
[0084] In some embodiments, the oxygen concentration of the respiratory gas is controlled to a target oxygen concentration of the respiratory gas.
[0085] In some embodiments, the oxygen concentration of the respiratory gas is a measured oxygen concentration of the respiratory gas.
[0086] In some embodiments, the device includes at least one gas composition sensor configured to provide measurements indicative of the oxygen concentration of the respiratory gas to the controller.
[0087] In some embodiments, the controller is configured to update a target oxygen concentration of the respiratory gas and to control the oxygen concentration of the respiratory gas from an initial oxygen concentration to the target oxygen concentration.
[0088] In some embodiments, the target oxygen concentration is provided by an oxygen concentration controller.
[0089] In some embodiments, the or one of the inputs further includes a target blood oxygen level.
[0090] In some embodiments, the or a target blood oxygen level is a range.
[0091] In some embodiments, the target blood oxygen level comprises an upper target blood oxygen level limit and / or a lower target blood oxygen level limit.
[0092] In some embodiments, the controller is configured to identify the target oxygen level based on a midpoint of a target blood oxygen level range.
[0093] In some embodiments, the controller is configured to control the target blood oxygen level to be within an upper target blood oxygen level limit and a lower target blood oxygen level limit.
[0094] In some embodiments, the controller is configured to vary the target oxygen level to control the patient's blood oxygen level to the target blood oxygen level.
[0095] In some embodiments, the controller is configured to vary the amount of supplemental oxygen provided to the breathing gas from the oxygen source to control the oxygen concentration of the breathing gas.
[0096] In some embodiments, the device includes at least one valve device.
[0097] In some embodiments, the valve device is in fluid communication with the blower.
[0098] In some embodiments, the valve device may be controllable to regulate the amount of oxygen introduced into the gas stream.
[0099] In some embodiments, the controller is configured to generate an alarm output.
[0100] In some embodiments, the alarm output may be transmitted to one or more servers in communication with the respiratory assistance device or to a patient monitoring unit and / or a nurse monitoring station.
[0101] In some embodiments, the alarm output includes at least one alarm parameter.
[0102] In some embodiments, the controller is configured to generate an alarm output based on an estimated future value of the patient's blood oxygen level and / or an estimated maximum or minimum future value of the patient's blood oxygen level.
[0103] In some embodiments, the controller is configured to compare the estimated maximum future value of the patient's blood oxygen level with a target blood oxygen level upper limit, and generate an alarm output if the estimated maximum future value of the patient's blood oxygen level falls below the target blood oxygen level upper limit.
[0104] In some embodiments, the alarm parameters of the or one of the alarm outputs are based on the magnitude of the difference between an estimated maximum future value of the patient's blood oxygen level and a target upper blood oxygen level limit.
[0105] In some embodiments, the controller is configured to compare the estimated minimum future value of the patient's blood oxygen level to a target blood oxygen level lower limit, and generate an alarm output if the estimated minimum future value of the patient's blood oxygen level falls below the target blood oxygen level lower limit.
[0106] In some embodiments, the or an alarm parameter of the alarm output is based on the magnitude of the difference between an estimated minimum future value of the patient's blood oxygen level and a target lower blood oxygen level limit.
[0107] In some embodiments, the alarm parameter is an alarm time or an alarm intensity.
[0108] In some embodiments, the alarm output and / or associated data is provided to a display.
[0109] In some embodiments, the alarm output is configured to present a message on a display.
[0110] In some embodiments, the alarm output is configured to generate a sound or provide a display.
[0111] In some embodiments, the or at least one sensor is in electrical communication with the controller.
[0112] In some embodiments, the at least one sensor is a pulse oximeter or an arterial blood oxygen sensor.
[0113] In some embodiments, the respiratory assistance apparatus further comprises a gas composition sensor.
[0114] In some embodiments, the gas composition sensor is in electrical communication with the controller.
[0115] In some embodiments, the gas composition sensor is an oxygen concentration sensor configured to measure the oxygen concentration of the respiratory gas.
[0116] In some embodiments, at least one gas composition sensor provides a signal indicative of the initial oxygen concentration of the respiratory gas.
[0117] In some embodiments, the controller is configured to receive an oxygen concentration signal indicative of the oxygen concentration of the respiratory gas from the oxygen concentration sensor.
[0118] In some embodiments, the controller is configured to control the oxygen concentration of the respiratory gas based on the oxygen concentration signal from the oxygen concentration sensor.
[0119] In some embodiments, the controller includes one or more processors, the processors being configured with computer-readable instructions.
[0120] In some embodiments, the controller includes at least one memory device, the memory device configured to store the computer readable instructions.
[0121] In some embodiments, the memory element is non-transitory.
[0122] In some embodiments, the flow generator is or includes a blower module, the blower module including at least one blower configured to generate the flow of said gas.
[0123] In some embodiments, the respiratory assistance device includes at least one display configured to display the or some alarm output.
[0124] In some embodiments, the display includes at least one screen.
[0125] In some embodiments, the respiratory assistance device includes at least one sound generating device configured to output an audible sound.
[0126] In another system, the system includes a respiratory assistance device, a conduit and a user interface according to any one of the above aspects.
[0127] In another aspect, a method of estimating future values of blood oxygen levels of a patient is provided, the method comprising: providing a breathing gas having an initial target oxygen concentration to a patient; measuring a blood oxygen level of the patient; providing a breathing gas having a target oxygen concentration to a patient; Calculating a future value of the patient's blood oxygen level based on the patient's blood oxygen level and the difference between the initial target oxygen level and the target oxygen level. Includes.
[0128] In another aspect, a method for estimating a maximum future value of a blood oxygen concentration of a patient with respect to a target oxygen concentration range is provided, the method comprising: measuring a blood oxygen level of the patient; providing a breathing gas having an oxygen concentration to a patient; calculating a maximum future value of the patient's blood oxygen concentration based on the patient's blood oxygen concentration and the difference between a target oxygen concentration upper limit of the target oxygen concentration range and the oxygen concentration of the respiratory gas; Includes.
[0129] In another aspect, a method is provided for estimating a minimum future value of a patient's blood oxygen concentration relative to a target oxygen concentration range, the method comprising: measuring a blood oxygen level of the patient; providing a breathing gas having an oxygen concentration to a patient; calculating a minimum future value of the patient's blood oxygen concentration based on the patient's blood oxygen concentration and the difference between the target oxygen concentration lower limit of the target oxygen concentration range and the oxygen concentration of the respiratory gas; Includes.
[0130] In another aspect, a method of estimating future values of blood oxygen levels of a patient is provided, the method comprising: providing a respiratory gas to a patient; During operation of the device, storing respiratory gas oxygen concentration data, the stored respiratory gas oxygen concentration data including one or more oxygen concentrations of the respiratory gas, each oxygen concentration of the respiratory gas having an associated timestamp; measuring a blood oxygen level of the patient; The estimated future value of the patient's blood oxygen concentration, stored respiratory gas oxygen concentration data, where the respiratory gas oxygen concentration is weighted based on an associated time stamp; A measurement showing the patient's blood oxygen level Steps for calculating based on Includes.
[0131] In another aspect, a method for estimating an estimated maximum future value of blood oxygen concentration of a patient is provided, the method comprising: providing a respiratory gas to a patient; During operation of the device, storing respiratory gas oxygen concentration data, the stored respiratory gas oxygen concentration data including one or more oxygen concentrations of the respiratory gas, each oxygen concentration of the respiratory gas having an associated timestamp; measuring a blood oxygen level of the patient; The estimated maximum future value of the patient's blood oxygen concentration is stored respiratory gas oxygen concentration data, where the respiratory gas oxygen concentration is weighted based on an associated time stamp; a measurement indicative of the patient's blood oxygen level; The difference between the current oxygen concentration of the breathing gas and the target oxygen concentration upper limit, Steps for calculating based on Includes.
[0132] In another aspect, a method for estimating an estimated minimum future value of a blood oxygen concentration of a patient is provided, the method comprising: providing a respiratory gas to a patient; During operation of the device, storing respiratory gas oxygen concentration data, the stored respiratory gas oxygen concentration data including one or more oxygen concentrations of the respiratory gas, each oxygen concentration of the respiratory gas having an associated timestamp; measuring a blood oxygen level of the patient; The estimated minimum future value of the patient's blood oxygen concentration is stored respiratory gas oxygen concentration data, where the respiratory gas oxygen concentration is weighted based on an associated time stamp; a measurement indicative of the patient's blood oxygen level; the difference between the oxygen concentration of the respiratory gas in the current estimation phase and the target oxygen concentration lower limit; Steps for calculating based on Includes.
[0133] In another aspect, a method of estimating future values of blood oxygen levels of a patient is provided, the method comprising: providing a respiratory gas to a patient; maintaining a total change in respiratory gas oxygen concentration; performing an estimation update phase, the estimation update phase comprising: applying a decay function to the sum of the changes in oxygen concentration of the respiratory gas; Calculating a difference between the oxygen concentration of the respiratory gas in a current estimated update phase and the oxygen concentration of the respiratory gas in a previous estimated update phase; Add the difference to the total change in oxygen concentration of the breathing gas. Including steps Includes.
[0134] In some embodiments, the controller may further comprise: The sum of the changes in oxygen concentration of the respiratory gas; A measurement showing the patient's blood oxygen level The calculation is configured based on:
[0135] In some embodiments, the controller may further comprise: The sum of the changes in oxygen concentration of the respiratory gas; a measurement indicative of the patient's blood oxygen level; The difference between the oxygen concentration of the respiratory gas in the current estimation phase and the target oxygen concentration upper limit, The calculation is configured based on:
[0136] In some embodiments, the controller may further comprise: The sum of the changes in oxygen concentration of the respiratory gas; a measurement indicative of the patient's blood oxygen level; the difference between the oxygen concentration of the respiratory gas in the current estimation phase and the target oxygen concentration lower limit; The calculation is configured based on:
[0137] In another aspect, a system is provided that includes a respiratory assistance apparatus and an auxiliary device, wherein the estimated maximum future value, and / or the estimated minimum future value, and / or the estimated future value are calculated in the auxiliary device.
[0138] In another aspect, a system is provided that includes a respiratory assistance apparatus and an auxiliary device, the controller being at least partially on the auxiliary device.
[0139] In some embodiments, the respiratory device provides sensor output and / or stored data to the ancillary device.
[0140] In some embodiments, the or some alarm output may be provided on the respiratory assistance device.
[0141] In some embodiments, the or some alarm output may be provided on an ancillary device.
[0142] In another aspect, there is provided a respiratory assistance device for use in providing the method of any of the above aspects.
[0143] In another aspect, there is provided the use of a respiratory assistance device to provide the method of any of the above aspects.
[0144] In another aspect there is provided a use of a respiratory support apparatus or flow therapy device according to any of the above aspects, the respiratory support apparatus being an apparatus according to any of the claims of any of the above aspects.
[0145] Reference to a range of numerical values disclosed herein (e.g., 1 to 10) is intended to include references to all rational numbers within that range (e.g., 1, 1.1, 2, 3, 3.9, 4, 5, 6, 6.5, 7, 8, 9, and 10) and any range of rational numbers within that range (e.g., 2 to 8, 1.5 to 5.5, and 3.1 to 4.7).
[0146] The embodiments described herein may be broadly interpreted to relate to the parts, elements and features referred to or shown in this specification, individually or collectively, and any combination of two or more of said parts, elements or features, and where a specific integer number having a known equivalent in the art to which the invention pertains is described herein, such known equivalent is deemed to be incorporated herein as if it were individually set forth.
[0147] Where references are made herein to external sources, including patents and other publications, this is generally for the purpose of providing material to discuss features of the invention, and unless otherwise noted, such sources are not to be construed in any jurisdiction as being prior art or forming part of the common general knowledge in the art.
[0148] As used herein, the term "comprising" means "consisting at least in part of." When interpreting sentences in this specification that contain the term, all of the features preceding the term in each sentence must be present, although other features may also be present. Related words such as "comprises" and "comprised" are to be interpreted in the same manner.
[0149] These and other features and aspects are described in detail below with reference to the accompanying drawings.
[0150] The invention will now be described, by way of example only, with reference to the following drawings, in which: [Brief description of the drawings]
[0151] [Figure 1A] 1 illustrates a schematic configuration of a flow therapy device. [Figure 1B] 1 illustrates a sensing circuit board including a flow sensor that may be used in a flow therapy device. [Figure 1C] 1A-1D show schematic diagrams of various ultrasonic transducer configurations for a sensor assembly using a cross flow beam. [Figure 1D]1A-1D show schematic diagrams of various ultrasonic transducer configurations for a sensor assembly using a cross flow beam. [Figure 1E] 1A-1D show schematic diagrams of various ultrasonic transducer configurations for a sensor assembly using along-flow beam. [Figure 1F] 1A-1D show schematic diagrams of various ultrasonic transducer configurations for a sensor assembly using along-flow beam. [Figure 2A] 1 shows a graph illustrating the operation of the breathing apparatus. [Figure 2B] 1 shows a graph illustrating the operation of the breathing apparatus. [Diagram 3] 1 shows a graph illustrating the operation of the breathing apparatus. [Figure 4A] 1 illustrates a process for estimating future values of blood oxygen for a patient. [Figure 4B] 1 illustrates a process for estimating future values of blood oxygen for a patient. [Figure 4C] 1 illustrates a process for estimating future values of blood oxygen for a patient. [Figure 4D] 1 illustrates a process for estimating future values of blood oxygen for a patient. [Figure 5A] Indicates breathing apparatus alarm conditions. [Figure 5B] Indicates breathing apparatus alarm conditions. [Figure 6] 1 illustrates a process for estimating maximum or minimum future values of blood oxygen for a patient. [Figure 7] 1 shows a graph illustrating the operation of the breathing apparatus. [Figure 8A] 1 shows a graph illustrating the operation of the breathing apparatus. [Figure 8B] 1 shows a graph illustrating the operation of the breathing apparatus. [Figure 9A] 1 illustrates a process for estimating maximum or minimum future values of blood oxygen for a patient. [Figure 9B] 1 illustrates a process for estimating maximum or minimum future values of blood oxygen for a patient. [Figure 10] 2 is a graph showing the operation of the breathing apparatus. [Figure 10A] 1 illustrates a process for estimating a patient's oxygen efficiency. [Figure 11] 1 is a perspective view of a first underside of a main housing of a flow therapy device showing an interior recess of the housing for a motor and / or sensor module subassembly. [Figure 12] FIG. 13 is a perspective view of a second underside of the main housing of the flow therapy device showing a recess for a motor and / or sensor module subassembly. [Figure 13] FIG. 13 is a perspective view of the motor and / or sensor subassembly on the underside of the main housing and fixed elbow of the flow therapy device. [Figure 14] FIG. 1 is an exploded perspective view of components of a motor and / or sensor subassembly, shown generally by the arrows showing gas flow paths through the subassembly. [Figure 15] FIG. 13 is a view of the underside of the cover and sensing PCB of the motor and / or sensor subassembly showing the location of the sensors. [Figure 16] A rear perspective view of the flow therapy device shown in cross section adjacent the rear edge of the flow therapy device, showing the arrangement of a portion of the main housing that provides a recess for receiving a motor and / or sensor subassembly. [Figure 17A] FIG. 1 illustrates a left front perspective view of a flow therapy device. [Figure 17B] FIG. 1 illustrates a left front perspective view of a flow therapy device. [Figure 18] FIG. 2 is a partially cutaway front left perspective view showing the valve module and the filter module. [Figure 19] 1 is a schematic diagram of the gas flow paths for the filter and valve modules, where the solid arrows represent oxygen (or other gas) flow and the dashed arrows represent ambient air flow. [Figure 20] FIG. 2 is a cross-sectional view showing the gas flow path through the filter module and the valve module. [Figure 21] FIG. 2 is a rear overhead perspective view of the valve module in a first configuration. [Figure 22]FIG. 2 is a rear overhead perspective view showing the gas flow paths through the valve module in a first configuration, with solid arrows representing oxygen (or other gas) flow and dashed arrows representing ambient air flow. [Figure 23] FIG. 2 is a cross-sectional view through a valve module in a first configuration. [Figure 24] FIG. 2 is a cross-sectional view showing the coupling of valves and valve manifolds of a valve module in a first configuration and the gas flow paths therethrough. [Diagram 25] 1 is a schematic diagram of a respiratory assistance apparatus and ancillary equipment; DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0152] Patients suffering from a variety of health conditions and diseases can benefit from respiratory therapy. In at least one form, the respiratory therapy can be oxygen therapy. For example, patients suffering from chronic obstructive pulmonary disease (COPD), pneumonia, asthma, bronchopulmonary dysplasia, heart failure, cystic fibrosis, sleep apnea, lung disease, trauma to the respiratory system, acute respiratory distress, and / or other conditions or diseases can benefit from respiratory therapy. Similarly, patients receiving pre- and post-operative oxygen support can also benefit from respiratory therapy. A common method of treating such problems is by providing the patient with a respiratory gas that includes a controlled concentration of supplemental oxygen. In at least one configuration, the respiratory gas can be provided with a controlled concentration of supplemental oxygen. The supplemental oxygen helps prevent the patient's blood oxygen level (e.g., blood oxygen saturation (SpO2)) from dropping too low (e.g., below about 90%).
[0153] However, when providing respiratory therapy to a patient, such as by providing supplemental oxygen, the change in the patient's blood oxygen level may lag behind the change in the delivered oxygen level. That is, it may take a significant amount of time for any change in blood oxygen level to occur from the time the delivered oxygen level is changed. In other words, when providing respiratory therapy to a patient, such as supplemental oxygen therapy, there may be a significant delay between the change in the delivered oxygen level and the resulting change in the patient's blood oxygen level. Thus, it may be difficult for a user to determine whether the change in the delivered oxygen level meets the desired therapeutic goal in terms of the patient's blood oxygen level until a significant amount of time has passed. During this time, the patient may not be provided with sufficient respiratory therapy.
[0154] Thus, a respiratory therapy device 10 can be provided that estimates the effect of changes in oxygen concentration of the respiratory gas on the patient's blood oxygen concentration.
[0155] One advantage is that the user can immediately see the effect of changing the oxygen concentration of the breathing gas on the patient's blood oxygen concentration and determine whether this is consistent with their therapeutic goals (e.g., desired blood oxygen concentration).
[0156] Another advantage is that the respiratory therapy device 10 may issue an alarm based on an estimated future value of the patient's blood oxygen level. For example, the respiratory therapy device 10 may issue an alarm if it is estimated that a change in the oxygen level of the provided respiratory gas would provide a desired change in the patient's blood oxygen level.
[0157] A user, typically a therapist, nurse, doctor, or other medical professional, may also set a target oxygen concentration range for the respiratory gas when setting the target blood oxygen concentration. Respiratory therapy device 10 thus attempts to control the patient's blood oxygen concentration by varying the oxygen concentration of the provided respiratory gas while ensuring that the oxygen concentration of the respiratory gas is within the target oxygen concentration range.
[0158] However, in some cases, the respiratory therapy device 10 may provide respiratory gas with a composition within the target oxygen concentration range, but may be unable to reach the target blood oxygen concentration, and the patient may not receive adequate therapy.
[0159] Furthermore, as previously mentioned, changes in the patient's blood oxygen level may lag behind changes in the oxygen level provided, and therefore it may take some time for a user to realize that the patient is not receiving sufficient therapy.
[0160] Thus, a respiratory treatment device 10 may be provided that estimates a patient's maximum or minimum future blood oxygen concentration corresponding to a target oxygen range.
[0161] The terms respiratory assistance device, respiratory therapy device and flow therapy device may be used interchangeably.
[0162] The device may then generate an alarm output to inform the user that the device is unable to reach the target blood oxygen concentration even when providing breathing gas with a composition within the target oxygen concentration range, and the user may then carefully monitor the patient and optionally modify the target oxygen concentration range.
[0163] In some embodiments, the device may identify an updated target oxygen concentration range when the device detects that a target blood oxygen concentration in the target oxygen concentration range cannot be reached.
[0164] Estimation of maximum or minimum future blood oxygen levels may provide an early indication to the user that the patient is not receiving sufficient therapy.
[0165] The blood oxygen level may be peripheral blood oxygen saturation (SpO2) or partial pressure of oxygen (PaO2).
[0166] The oxygen concentration of the breathing gas may be the fraction of inspired oxygen (FiO2), e.g., the percentage of oxygen in the breathing gas inhaled by the patient, or the fraction of delivered oxygen (FdO2), e.g., the percentage of oxygen in the breathing gas delivered to the patient.
[0167] Physiologically, oxygen provided to a patient (eg, fraction of inspired oxygen (FiO2)) is delivered via the lungs into the patient's blood (eg, as partial pressure of oxygen (PaO2)).
[0168] The oxygen in the patient's blood (eg, partial pressure of oxygen (PaO2)) can be converted to peripheral blood oxygen saturation (SpO2) using the hemoglobin saturation function.
[0169] A respiratory therapy device 10 is shown in FIG. 1A. The respiratory therapy device 10 may include a main housing 100 that houses a flow generator 11 in the form of a motor / impeller arrangement (e.g., a blower), an optional humidifier 12, a controller 13, and a user interface 14 (e.g., including a display and one or more input devices such as one or more buttons, a touch screen, etc.). The controller 13 may be configured or programmed to control the operation of the respiratory therapy device 10. For example, the controller 13 may control components of the respiratory therapy device 10, including, but not limited to, operating the flow generator 11 to generate a flow of gas (gas flow) for delivery to a patient, operating the humidifier 12 (if present) to humidify and / or heat the generated gas flow, controlling the flow of oxygen to the blower of the flow generator, receiving user input from the user interface 14 for reconfiguration and / or user-defined operation of the respiratory therapy device 10, and outputting information to a user (e.g., on a display).
[0170] To these ends, the controller 13 includes one or more computer processors 13a and associated non-transitory memory or storage media having processor-executable instructions or code stored thereon that, when executed by the one or more processors, cause the respiratory therapy device to perform the steps and processes described herein.
[0171] A user may be a patient, a health care professional (e.g., a clinician) or any other person interested in using the device. As used herein, "gas flow" may refer to any gas flow that may be used in a respiratory assistance or breathing device, such as an ambient air flow, a flow containing substantially 100% oxygen, a gas flow containing some combination of ambient air and oxygen, etc.
[0172] The patient respiratory conduit 16 is coupled at one end to a gas outlet 21 of the housing 100 of the respiratory therapy device 10. The patient respiratory conduit 16 is coupled at another end to a patient interface 17, such as a non-sealed nasal cannula with a manifold 19 and nasal prongs 18. Additionally or alternatively, the patient respiratory conduit 16 may be coupled to a face mask, a nasal mask, a nasal pillow mask, an endotracheal tube, a tracheotomy interface, or the like. The gas flow generated by the flow therapy device 10 may be humidified and delivered to the patient through the patient interface 17 via the patient respiratory conduit 16. The patient respiratory conduit 16 may have a heating element 16a for heating the gas flow through the patient's body. The heating element 16a may be under the control of the controller 13. In at least one configuration, the heating element 16a is a heater wire 16a. The patient respiratory conduit 16 and / or the patient interface 17 may be considered part of the respiratory therapy device 10 or alternatively as peripherals thereof. Respiratory therapy system 1 may include a respiratory therapy device 10, a patient respiratory conduit 16, and a patient interface 17, which together may form a respiratory therapy system.
[0173] The controller 13 may control the flow generator 11 to generate a gas flow at a desired rate. The controller 13 may also control a supplemental oxygen inlet to allow for the supply of supplemental oxygen. The humidifier 12 (if present) may humidify the gas flow to an appropriate level and / or heat the gas flow, etc. The controller 13 may be configured to control the humidifier 12. The gas flow is directed to the patient through a patient respiratory conduit 16 and a patient interface 17. The controller 13 may also control a humidifier heating element 16b in the humidifier 12 and / or a heating element 16a in the patient conduit 16 to heat the gas to a desired temperature for a desired level of therapy and / or patient comfort. The controller 13 may be programmed with or may determine a suitable target temperature for the gas flow.
[0174] The oxygen inlet port 28 includes a valve through which pressurized gas may enter the respiratory therapy device 10. The valve may control the flow of oxygen into the respiratory therapy device 10. The valve may be any type of valve, such as a proportional valve or a binary valve. The oxygen source may be an oxygen tank or a hospital oxygen supply. Medical grade oxygen is generally 95%-100% pure. Lower purity oxygen sources may also be used. Examples of valve modules and filters are disclosed in U.S. Provisional Patent Application No. 62 / 409,543, filed October 18, 2016, entitled "Valve Modules and Filter," and U.S. Provisional Patent Application No. 62 / 488,841, filed April 23, 2017, entitled "Valve Modules and Filter," both of which are incorporated herein by reference in their entireties. Valve modules and filters are described in more detail below with reference to FIGS. 7-15.
[0175] The flow therapy device 10 can measure and control the oxygen content of the gas being delivered to the patient, and therefore the oxygen content of the gas inhaled by the patient. In at least one implementation of high flow therapy, the high flow rate of gas delivered meets or exceeds the patient's peak inhalation demand. This means that the amount of gas delivered by the device to the patient during inspiration meets or exceeds the amount of gas inhaled by the patient during inspiration. Thus, high flow therapy can help prevent the inhalation of ambient air when the patient inhales and the flushing of the patient's airway by exhalation. As long as the flow rate of the delivered gas meets or exceeds the patient's peak inhalation demand, the inhalation of ambient air is prevented, and the gas delivered by the device is substantially the same as the gas inhaled by the patient. As such, the oxygen concentration measured by the device can be equivalent to the fraction of oxygen delivered (FdO2) and can be substantially the same as the oxygen concentration the patient inhales, the fraction of inspired oxygen (FiO2), and as such, both terms can be considered equivalent.
[0176] Operational sensors 3a, 3b, 3c, such as flow, temperature, humidity and / or pressure sensors, may be located at various locations within the flow therapy device 10. Additional sensors (e.g., sensors 20, 25) may be located at various locations on the patient conduit 16 and / or patient interface 17 (e.g., there may be a temperature sensor 29 at or near the end of the inspiratory tube). The sensors may be monitored by the controller 13. This may assist the controller 13 in operating the flow therapy device 10 to provide a suitable therapy. In some configurations, providing a suitable therapy includes being at the peak inspiratory demand of the patient. The respiratory therapy device 10 may have a transmitter, receiver and / or transceiver 15 that enables the controller 13 to receive signals 8 from the sensors and / or control various components of the flow therapy device 10 or accessories or peripherals associated with the flow therapy device 10, including, but not limited to, the flow generator 11, the humidifier 12 and the heating element 16a, the humidifier heating element 16b. Additionally or alternatively, the transmitter, receiver and / or transceiver 15 may provide data to a remote server or enable remote control of the respiratory therapy device 10 or respiratory therapy system 1 .
[0177] Oxygen may be measured after the oxygen is mixed with the ambient air by placing one or more gas composition sensors (e.g., an ultrasound transducer system) on the respiratory therapy device 10, the patient breathing conduit 16, the patient interface 17, or any other suitable location.
[0178] The oxygen concentration may also be measured by using flow sensors in at least two of the ambient air inlet conduit, the oxygen inlet conduit, and the patient breathing conduit to determine the flow rates of at least two gases. By determining the flow rates of both inlet gases or the flow rate of one inlet gas and the total flow rate of one inlet gas, along with the assumed or measured oxygen concentration of the inlet gases (approximately 20.9% for ambient air and approximately 100% for oxygen), the oxygen concentration of the final gas composition may be calculated. Alternatively, flow sensors may be placed in all three of the ambient air inlet conduit, the oxygen inlet conduit, and the final supply conduit, allowing for redundancy and testing that each sensor is working correctly by checking for consistency of readings. Other methods of measuring the oxygen concentration delivered by the flow therapy device 10 may also be used.
[0179] The flow therapy device 10 may include a patient sensor 26 or patient monitoring system, such as a pulse oximeter, to measure one or more physiological parameters of the patient, such as the patient's blood oxygen level (e.g., blood oxygen saturation (SpO2)), heart rate, respiratory rate, perfusion index, and provide an indication of signal quality. The sensor 26 may communicate with the controller 13 by a wired connection or communication with a wireless transmitter in the sensor 26. The sensor 26 may be a disposable adhesive sensor designed to be connected to the patient's finger. The sensor 26 may be a non-disposable sensor. Sensors are available designed for different age groups and connected to different locations on the patient and may be used with the flow therapy system 1. The pulse oximeter may be attached to the patient, typically the patient's finger, although other locations, such as the earlobe, are also options. The pulse oximeter may be connected to a processor in the respiratory therapy device 10 and constantly provides a signal indicative of the patient's blood oxygen saturation. The patient sensor 26 may be a hot-swappable device and may be attached or replaced during operation of the flow therapy device 10. For example, the patient sensor 26 may be connected to the flow therapy device 10 using a USB interface or using a wireless communication protocol (such as Bluetooth®). If the patient sensor 26 is disconnected during operation, the flow therapy device 10 may continue to operate in its previous operating state for a defined period of time. After the defined period of time, the flow therapy device 10 may trigger an alarm, transition from an automatic mode to a manual mode, and / or exit a control mode (e.g., automatic or manual mode) entirely. The patient sensor 26 may be a bedside monitoring system or other patient monitoring system that communicates with the flow therapy device 10 by a physical or wireless interface.
[0180] The flow therapy device 10 may include or be in the form of a high-flow therapy device. As used herein, "high-flow" therapy refers to the administration of gas to a patient's airways at a relatively high flow rate that meets or exceeds the patient's peak inspiratory demand. The flow rate 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 the delivery of gas to a 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 75 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. In some configurations, for neonatal, infant or pediatric patients, "high flow therapy" may refer to the delivery of gas to the patient at a flow rate of greater than 1 LPM, such as 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 15 LPM, or from about 20 LPM to 25 LPM. For adult, neonatal, infant or pediatric patients, a high flow therapy device may deliver gas to the patient at a flow rate of from about 1 LPM to about 100 LPM or any of the subranges outlined above. The flow therapy device 10 may deliver any concentration of oxygen (e.g., FdO2) up to 100% at any flow rate from about 1 LPM to about 100 LPM. In some configurations, any of the flow rates may be combined with oxygen concentrations (FdO2) of about 20%-30%, 21%-30%, 21%-40%, 30%-40%, 40%-50%, 50%-60%, 60%-70%, 70%-80%, 80%-90%, and 90%-100%. In some combinations, the flow rates may be about 25 LPM to 75 LPM combined with oxygen concentrations (FdO2) of about 20%-30%, 21%-30%, 21%-40%, 30%-40%, 40%-50%, 50%-60%, 60%-70%, 70%-80%, 80%-90%, and 90%-100%.In some configurations, the flow therapy device 10 may include a safety threshold that prevents the patient from over-oxygenating the patient when operating in manual mode.
[0181] High flow therapy may be administered to the patient's nares and / or orally, or via a tracheostomy interface. High flow therapy may deliver gas to the patient at a flow rate above the intended patient's peak inspiratory flow conditions. High flow therapy may create a flushing effect in the nasopharynx, causing the anatomical dead space of the upper airway to be flushed with a high inflow gas flow. This may create a reservoir of fresh gas available for each breath, while minimizing rebreathing of nitrogen and carbon dioxide. Demand for inspiration and flushing of the airway are even more important when trying to control the patient's FdO2. High flow therapy may be delivered by a non-sealing patient interface, such as, for example, a nasal cannula. The patient interface 17 may be configured to deliver breathing gas to the patient's nares at a flow rate above the intended patient's peak inspiratory flow conditions.
[0182] As used herein, the term "non-sealed patient interface" may refer to an interface that provides a pneumatic link between the patient's airway and a source of gas flow (e.g., from the flow generator 11) that does not completely occlude the patient's airway. A non-sealed pneumatic link may include less than about 95% occlusion of the patient's airway. A non-sealed pneumatic link may include less than about 90% occlusion of the patient's airway. A non-sealed pneumatic link may include between about 40% and about 80% occlusion of the patient's airway. The airway may include one or more of the patient's nostrils or mouth. In a nasal cannula, the airway is through the nares.
[0183] The flow generator 11 may be or may include a blower module. The blower module may include at least one blower 11 configured to generate said gas flow.
[0184] The flow generator 11 may include an ambient air inlet port 27 that draws room ambient air into the blower. The flow therapy device 10 may also include an oxygen inlet port 28 that leads to a valve through which pressurized gas may enter the flow generator 11. The valve may control the flow of oxygen to the flow generator 11. The valve may be any type of valve, including a proportional valve or a binary valve.
[0185] The blower 11 may operate at a motor speed greater than about 1,000 RPM and less than about 30,000 RPM, greater than about 2,000 RPM and less than about 21,000 RPM, or between any of the values mentioned above. Operation of the blower 11 may mix gases entering the blower 11 through inlet ports (e.g., ambient air inlet port 27 and / or oxygen inlet port 28). Using the blower 11 as a mixer may reduce pressure drop that may occur in systems with separate mixers, such as static mixers including baffles, since mixing requires energy.
[0186] The respiratory aid device may further include a gas composition sensor, which may be a sensor as described below (e.g., an ultrasonic transducer arrangement).
[0187] The gas composition sensor may be connected to the controller.
[0188] The gas composition sensor may be located at any point in the flow path.
[0189] The gas composition sensor may be an oxygen concentration sensor configured to measure the oxygen concentration of the respiratory gas.
[0190] The controller may be configured to receive an oxygen concentration signal indicative of the oxygen concentration of the respiratory gas from the oxygen concentration sensor.
[0191] The gas composition sensor may be configured to provide an output of the gas composition sensor to the controller. Optionally, the output of the gas composition sensor may be a signal indicative of the gas composition (e.g., oxygen concentration) of the respiratory gas.
[0192] The gas composition sensor may be in electrical communication with the controller.
[0193] The controller may be configured to control the oxygen concentration of the respiratory gas based on the oxygen concentration signal from the oxygen concentration sensor.
[0194] The respiratory assistance device may further include a blood oxygen level sensor.
[0195] The blood oxygen level sensor may provide a signal to the controller.
[0196] The blood oxygen level sensor can be a pulse oximeter or an arterial blood oxygen sensor.
[0197] The blood oxygen level sensor may be in electrical communication with the controller.
[0198] The controller 13 may include one or more processors. The processors may be configured with computer-readable instructions.
[0199] The controller 13 may include at least one memory device, which may be configured to store the computer-readable instructions.
[0200] The memory element may be non-transitory.
[0201] The respiratory assistance device may include at least one display module configured to display the alarm output.
[0202] In some embodiments, information regarding estimated future values may be displayed, such as an estimated minimum future value of the patient's blood oxygen and / or an estimated minimum future value and / or an estimated future value of the patient's blood oxygen concentration.
[0203] The respiratory assistance device may include at least one audio module configured to emit an audible alarm.
[0204] The display module includes at least one display (which may include, for example, a liquid crystal display (LCD) or a light emitting diode (LED) display, although it should be understood that any display technology may be used).
[0205] The display module may be configured to receive input to the system (eg, as a touch screen).
[0206] 1B, a sensing circuit board 2200 is shown that may be implemented in the flow therapy device 10. The sensing circuit board 2200 may be positioned within the sensor chamber such that the sensing circuit board 2200 is at least partially immersed in the gas flow. The gas flow may flow from the blower 11 through a conduit and into a flow path in the sensor chamber. At least some of the sensors on the sensing circuit board 2200 may be positioned within the gas flow to measure properties of the gas in the flow. After passing through the flow path in the sensor chamber, the gas may flow to the humidifier 12 described above.
[0207] The sensing circuit board 2200 may be a sensing printed circuit board (PCB). Alternatively, the circuit on the board 2200 may be assembled with wires connecting electronic components rather than printed on a circuit board. At least a portion of the sensing circuit board 2200 may be mounted outside the gas flow. The gas flow may be generated by the flow generator 11 described above. The sensing circuit board 2200 may include an ultrasonic transducer 2204. The sensing circuit board 2200 may include one or more thermistors 2205. The thermistor 2205 may be configured to measure the temperature of the gas flow. The sensing circuit board 2200 may include a thermistor flow sensor 2206. The sensing circuit board 2200 may include other types of sensors, such as humidity sensors, including humidity-only sensors and combined humidity and temperature sensors used with a separate temperature sensor, sensors for measuring atmospheric pressure, sensors for measuring differential pressure, and / or sensors for measuring sensor gauge pressure. The thermistor flow sensor 2206 may include a hot wire anemometer, such as a platinum wire, and / or a thermistor, such as a negative temperature coefficient (NTC) or positive temperature coefficient (PTC) thermistor. Other non-limiting examples of heated temperature sensing elements include glass or epoxy encapsulated or unencapsulated thermistors. The thermistor flow sensor 2206 may be configured to measure the flow rate of the gas by being powered with a constant power or to maintain a constant sensor temperature or a constant temperature difference between the sensor and the gas flow.
[0208] The sensing circuit board 2200 can include a first portion 2201 and a second portion 2202. The first portion 2201 can be positioned within the gas flow path, while the second portion 2202 can be positioned outside the gas flow path. The direction of gas flow is indicated by arrow 2203 in FIG. 1B. The direction of gas flow can be straight or curved as shown in FIG. 1B.
[0209] Positioning one or more of the thermistor 2205 and / or thermistor flow sensor 2206 downstream of a combined blower and mixer may take into account the heat supplied to the gas flow from the blower, and immersing a temperature-based flow sensor in the flow path may increase measurement accuracy since a sensor immersed in the flow may be more likely to be exposed to the same conditions, e.g., temperature, as the gas flows, and therefore may provide a better indication of the gas properties.
[0210] The sensing circuit board 2200 may include an ultrasonic transducer, transceiver, or sensor for measuring a gas property of a gas flow, such as the gas composition or concentration of one or more gases in a gas stream. Any suitable transducer, transceiver, or sensor may be mounted on the sensing circuit board 2200, as will be appreciated. In this configuration, the gas composition sensor is an ultrasonic transducer that utilizes ultrasonic or sound waves to determine gas concentration. Various sensor configurations are described below with reference to Figures 1C-1F.
[0211] The ultrasonic transducer may determine the relative gas concentration of two or more gases in a gas stream. The ultrasonic transducer may be configured to measure the oxygen fraction in a bulk gas stream consisting of atmospheric air supplemented with supplemental oxygen, which is essentially a binary gas mixture of nitrogen (N2) and oxygen (O2). It is also understood that the ultrasonic transducer may be configured to measure the gas concentration of other supplemental gases blended with atmospheric air in the gas stream, including nitrogen (N2) and carbon dioxide (CO2). The ultrasonic sensor may determine the gas concentration of a gas in a gas stream at a relatively high frequency. For example, the ultrasonic sensor may output a measured FdO2 value at a maximum sample rate of the sensor or at a frequency lower than the maximum sample rate, such as about 1 Hz to 200 Hz, about 1 Hz to 100 Hz, about 1 Hz to 50 Hz, and about 1 Hz to 25 Hz.
[0212] In some configurations, the sensing circuit board 2200 includes a pair of ultrasonic transducers disposed on opposite sides of the sensing circuit board. Various alternative configurations of ultrasonic transducers can be used to sense properties of the gas stream by transmitting and receiving ultrasonic beams or pulses.
[0213] The distance between the ultrasonic transducers 2204 at both ends of the sensing circuit board 2200 may affect the measurement resolution. Generally, the actual measured length has a certain amount of error, and as the length increases, the percentage of error generated during the measurement is less than that for a shorter length, so increasing the distance between each of the ultrasonic transducers 2204 may reduce the proportional or partial error. Thus, the overall uncertainty of the measurement is reduced. Increasing the distance may also increase the measurement resolution and accuracy, since the acoustic signal between the ultrasonic transducers 2204 may be of a longer duration. However, as the distance increases, the signal may become weaker.
[0214] The ultrasonic transducers 2204 may be positioned such that the space between them at least partially coincides with the flow path. In some configurations, the ultrasonic transducers are positioned at opposing ends of the sensing circuit board. The entire face of the flow path is exposed to the acoustic path so that sound waves propagate through all of the gas in the flow path. Wave averaging may occur over the entire flow path rather than just one section of the flow path. Averaging over a longer distance reduces error and reduces dependency on air-oxygen mixing. The ultrasonic transducers may be configured to measure gas properties from any angle relative to the flow path.
[0215] Positioning sensors within the flow path or module instead of outside the flow path or module allow both of the transducers 2204 to operate within a smaller temperature range relative to each other or both at substantially one temperature (i.e., the temperature of the gas flow). Because the transducers are temperature sensitive, making them a substantially homogenous temperature increases accuracy. Additionally, positioning sensors along the flow path allow measurements and calculations that account for the effect of gas velocity so that the effect of gas velocity can be removed from the sensor measurements.
[0216] 1C-1F, various configurations of ultrasonic transducers are described for a gas composition sensing system for sensing the speed of sound through a gas stream by transmitting and receiving ultrasonic beams or pulses, with like reference numerals representing like components.
[0217] 1C, the transducer configuration 2300 provides an arrangement in which there is a pair of transducers 2302, 2304 facing each other from opposite sides of a sensing passage 2306, generally indicating the direction of the air flow path at 2308. In this arrangement, each of the transducers 2302, 2304 is driven as either a dedicated transmitter or receiver such that ultrasonic pulses 2310 are transmitted unidirectionally across the gas flow path from the transmitter to the receiver transducer. As shown, the transducer pairs are aligned with the air flow path direction 2308 (i.e., not displaced upstream or downstream from each other) and are configured to transmit cross flow pulses that are substantially perpendicular to the gas flow path direction.
[0218] 1D, an alternative transducer configuration 2320 is shown in which a pair of transducers 2322, 2324 are provided facing each other on opposite sides of a sensing passage, but each transducer can operate as both a transmitter and a receiver, i.e., an ultrasonic transmitter-receiver or transceiver. In this configuration, a bidirectional ultrasonic pulse 2326 can be sent between the transducer pair 2322, 2324. For example, the pulses can be sent back and forth between the transducers or in any other sequence or pattern. Again, the transducer pair is aligned with the gas flow path direction and configured to send cross-flow pulses that are substantially perpendicular to the gas flow path direction.
[0219] 1E, an alternative transducer configuration 2360 is shown having a pair of opposing transducers 2362, 2364 at opposite ends of a sensing passage 2306 with a gas flow path direction or axis generally indicated by 2308. In this configuration 2360, each of the transducers 2362, 2364 is driven as either a dedicated transmitter or receiver such that a flow-along ultrasonic pulse 2366 is transmitted unidirectionally in a beam path between the transmitter and receiver that is substantially aligned with or parallel to the gas flow path axis 2308 in the sensing passage 2306. In the illustrated embodiment, the transmitter is upstream of the receiver, although it will be understood that the opposite arrangement can also be utilized. In this configuration, a flow sensor is provided in the sensing passage to provide a flow signal indicative of the flow rate of the gas stream in the sensing passage. It is understood that the speed of sound in the sensing passage may be derived or determined in a similar manner as previously described in the above embodiments, and the flow signal is used in signal processing to remove or compensate for the gas flow rate in the calculated speed of sound signal.
[0220] Referring to FIG. 1F, an alternative transducer configuration 2370 is shown in which a pair of transducers 2372, 2374 are provided opposite each other at opposite ends of the sensing passage as in FIG. 1E, but each transducer can act as both a transmitter and a receiver, i.e., an ultrasonic transmitter-receiver or transceiver. In this configuration, flow-directed ultrasonic pulses 2376 can be sent bidirectionally between the transducer pair 2372 and 2374. For example, the pulses can be sent back and forth between the transducers or in any other sequence or pattern. Again, the transducer pair is aligned with the gas flow path axis 2308 and configured to transmit cross-flow pulses in one or more beam paths substantially aligned with or parallel to the gas flow path axis 2308 in the sensing passage 2306. In this configuration, a separate flow sensor need not necessarily be provided, as the flow component of the sound speed signal can be derived or determined directly from processing of the transmitted and received acoustic pulses.
[0221] Some examples of flow therapy devices are disclosed in International Application No. PCT / NZ2016 / 050193, filed December 2, 2016, entitled "Flow Path Sensing for Flow Therapy Apparatus," and International Application No. PCT / IB2016 / 053761, filed June 24, 2016, entitled "Breathing Assistance Apparatus," both of which are incorporated by reference in their entireties. Aspects of the present disclosure and example configurations of flow therapy devices that may be used are described in further detail below with respect to Figures 14-19.
[0222] 1A, the controller 13 may be programmed or configured to implement a closed-loop control system to control the operation of the flow therapy device 10. The closed-loop control system may be configured to ensure that the patient's blood oxygen level (e.g., SpO2) reaches and consistently remains at or near a target level.
[0223] The oxygen control system is described in International Application PCT / NZ Patent Application Publication No. 2018 / 050137, entitled "Closed Loop Oxygen Control," filed on October 5, 2018, the entirety of which is incorporated herein by reference.
[0224] The controller 13 may be configured to control the patient's blood oxygen level to a target blood oxygen level (or a target blood oxygen level range). The controller 13 may be configured to receive a signal indicative of the patient's blood oxygen level, calculate a target oxygen level of the respiratory gas, and control the patient's blood oxygen level to the target blood oxygen level (or a target blood oxygen level range).
[0225] The target oxygen concentration of the respiratory gas may be controlled to be within a target oxygen concentration range of the respiratory gas (described in more detail below).
[0226] The controller 13 may be configured to control the oxygen concentration of the respiratory gas to a target oxygen concentration of the respiratory gas. The controller 13 may be configured to receive a signal indicative of the oxygen concentration of the respiratory gas and to control the oxygen concentration of the respiratory gas to the target oxygen concentration of the respiratory gas.
[0227] The oxygen concentration of the respiratory gas may be, for example, a measured oxygen concentration of the respiratory gas, and / or a delivered oxygen concentration of the respiratory gas, and / or a provided oxygen concentration of the respiratory gas.
[0228] The controller 13 may receive inputs from a user that the controller 13 may use to operate the closed loop control system. The inputs may include a target blood oxygen level for the patient. The target blood oxygen level may be a target SpO2 value. The target blood oxygen level may be a value or a range of values. The value may be preset, selected by the user, or specified based on the type of patient. The type of patient may refer to the current condition and / or information about the patient, such as age, weight, height, sex, and other patient characteristics. Similarly, the target SpO2 may be two values, each selected in any of the manners described above. The two values would represent a range of acceptable values for the patient's target blood oxygen level (described in more detail below). The controller may target a value within the range. The target blood oxygen level may be the midpoint of the range or any other value within the range, which may be preset or selected by the user. Alternatively, the range may be set automatically based on the target blood oxygen level. The controller may be configured to have one or more predefined responses if the patient's blood oxygen level falls outside of its range. The responses may include raising an alarm, switching to manual control of FdO2, changing FdO2 to a particular value, and / or other responses. The controller may have one or more ranges, with one or more different responses if it falls outside each range.
[0229] The graphical user interface of the flow therapy device 10 may be configured to prompt the user to input a patient type, and a target blood oxygen concentration (or, for example, a target blood oxygen concentration range) will be specified based on which the user selects. Additionally, the user interface may include a custom option, whereby the user may specify the limits of the target oxygen concentration range of the respiratory gas.
[0230] In general, the patient's blood oxygen concentration (e.g., SpO2) will be controlled to about 80% to about 100%, or about 80% to about 90%, or about 88% to about 92%, or about 90 to about 99%, or about 92% to about 96%. SpO2 may also be controlled between any two suitable values of any two of the above-mentioned ranges. The target SpO2 may be about 80% to about 100%, or about 80% to about 90%, or about 88% to about 92%, or about 90% to about 99%, or about 92% to about 96%, or about 94%, or 94%, or about 90%, or 90%, or about 85%, or 85%. The target SpO2 may be any value between any two suitable values of any two of the above-mentioned ranges. The target SpO2 may correspond to the middle of the defined SopO2 ranges.
[0231] The inputs received by the controller 13 may also or alternatively include a target oxygen concentration range, which may be a target FdO2 or FiO2.
[0232] The target oxygen concentration range may be provided via the user interface 14 .
[0233] As previously mentioned, the oxygen concentration of the respiratory gas (e.g., FdO2) may be controlled within a target oxygen concentration range of the respiratory gas. The target oxygen range may be a tolerance range within which the FdO2 is controlled. As previously mentioned, the measurement within the device (e.g., FdO2) will be substantially the same as the oxygen concentration (FiO2) the patient inhales as long as the flow rate meets or exceeds the patient's peak inhalation demand, and therefore these terms may be considered equivalent. Each of the limits of the target oxygen concentration range may be preset, selected by the user, or specified based on the type of patient. The type of patient may refer to current symptoms and / or information about the patient, such as age, weight, height, sex, and other patient characteristics. Alternatively, one value of FdO2 may be selected. The target oxygen concentration range may be specified based at least in part on this value. For example, the target oxygen concentration range may be a set amount above and below the selected FdO2. The selected FdO2 may be used as a starting point for the controller 13. The respiratory therapy device 10 may have one or more responses if the controller 13 attempts to move the FdO2 outside of the target oxygen concentration range. These responses may include issuing an alarm, preventing the FdO2 from going out of range, switching the FdO2 to manual control and / or switching to a particular FdO2. The respiratory therapy device 10 may have one or more target oxygen concentration ranges with one or more different responses as it approaches the limits of each target oxygen concentration range.
[0234] The target oxygen concentration range of the breathing gas may include an upper target oxygen concentration limit.
[0235] The target oxygen concentration range of the breathing gas may include a lower target oxygen concentration limit.
[0236] It should be appreciated that in some circumstances, no upper target oxygen concentration limit or lower target oxygen concentration limit may be provided.
[0237] The oxygen concentration of the respiratory gas (e.g., FdO2) may be controlled to about 21% to about 100%, or about 21% to about 90%, or about 21% to about 80%, or about 21% to about 70%, or about 21% to about 60%, or about 21% to about 50%, or about 25% to about 45%. FdO2 may be controlled between any two suitable values from any two ranges described above. The FdO2 target may be between any two suitable values from any two ranges described above. If the range is based on a single value, the upper and lower limits may be determined by adding / subtracting a certain amount to the selected value. The amount added or subtracted may be about 1%, or about 5%, or about 10%, or about 15%, or about 20%, or about 30%, or about 50%, or about 100%. The amount added / subtracted may vary relative to the selected value. For example, the upper limit can be 20% higher than the selected value, so that at a selected value of 50%, FdO2 has an upper limit of 60% for the control range. The percentages used for the ranges can be about 1%, or about 5%, or about 10%, or about 15%, or about 20%, or about 30%, or about 50%, or about 100%. The methods for calculating the lower and upper limits do not necessarily have to be the same. If a single value is used, the value can be about 21% to about 100%, or about 25% to about 90%, or about 25% to about 80%, or about 25% to about 70%, or about 25% to about 60%, or about 25% to about 50%, or about 25% to about 45%.
[0238] The graphical user interface 14 (GUI) may be configured to display a range of values between which FdO2 and / or SpO2 are controlled. A range (e.g., a patient target blood oxygen range or a target oxygen concentration range for a respiratory gas) may be displayed on the GUI by placing two limits spaced apart from each other, with an indicator appearing within each range to graphically represent the location of the current value relative to the limits of the range.
[0239] The GUI may display graphs of recent FdO2 and / or SpO2 data. The GUI may display the levels of each parameter over a defined period of time, such as an hour or more, in the same or different graphs. The length of time that the data is displayed may be adapted to the length of time that the data is currently available.
[0240] The displayed FdO2 data may be at least one of a target FdO2 or a measured FdO2. The SpO2 data may include a line indicating a target SpO2. Additionally or alternatively, the SpO2 and / or FdO2 data may include one or more lines or shaded portions indicating their respective control limits.
[0241] The graphs may be displayed on the default display. Alternatively, the graphs may be hidden with only the current data values shown. The graphs are made available through interaction with the GUI, such as by selecting to view a graph for a defined parameter.
[0242] The closed loop control system may utilize two control loops. The first control loop may be implemented by a blood oxygen level (e.g., SpO2) controller. The blood oxygen level controller may identify a target oxygen level (e.g., FdO2) based in part on the target blood oxygen level and / or the measured blood oxygen level. As previously mentioned, the target blood oxygen level value may be a single value or a range of acceptable values. The value may be pre-set, selected by the user, or automatically identified based on the client's characteristics.
[0243] The target blood oxygen level may be controlled within a target blood oxygen level range.
[0244] The target blood oxygen level range may include an upper target blood oxygen level limit and / or a lower target blood oxygen level limit.
[0245] The controller 13 may be configured to control the target blood oxygen level to be within an upper target blood oxygen level limit of a target blood oxygen level range and a lower target blood oxygen level limit of the target blood oxygen level.
[0246] Generally, the target blood oxygen level value is received or identified prior to or at the start of a treatment session, although the target blood oxygen level value may be received at any time during a treatment session.
[0247] During a therapy session, the blood oxygen concentration controller may also receive as inputs measured oxygen concentration readings from the gas composition sensor and measured blood oxygen concentration readings and signal quality readings from the patient sensor. In some configurations, the blood oxygen concentration controller may receive a target oxygen concentration as an input. In such cases, the output of the blood oxygen concentration controller may be provided directly back as an input to the blood oxygen concentration controller. Based at least in part on the input, the blood oxygen concentration controller may output a target oxygen concentration to the second control loop.
[0248] The second control loop may be implemented by a breathing gas oxygen concentration controller, which may be configured to control the oxygen concentration from an initial oxygen concentration to a target oxygen concentration.
[0249] The blood oxygen level controller may be a separate controller from controller 13 or may be included as part of controller 13 .
[0250] The oxygen concentration controller may be a separate controller from controller 13 or may be included as part of controller 13 .
[0251] The initial oxygen concentration may be a measured oxygen concentration. In some embodiments, the initial oxygen concentration may be the result of a previous control of the oxygen concentration. In some embodiments, for example, at system start-up or when no supplemental oxygen source is connected, in which case the initial oxygen concentration may be substantially the same as that of the ambient air.
[0252] The target oxygen level may be a target oxygen level (eg, FdO2) provided by a blood oxygen level controller.
[0253] The oxygen concentration controller may receive inputs of a measured oxygen concentration of the respiratory gas and a target oxygen concentration of the respiratory gas. The respiratory gas oxygen concentration controller may therefore output an oxygen inlet valve control signal for controlling the operation of the oxygen valve based on the difference between the measured oxygen concentration and the target oxygen concentration value. The oxygen concentration controller may receive a target oxygen concentration value, which is output from the first control loop when the respiratory therapy device is operating in automatic mode. The respiratory gas oxygen concentration controller may also receive additional parameters such as flow values, gas characteristics and / or measured oxygen concentrations. Gas characteristics may include the temperature of the gas at the O2 inlet and / or the oxygen content of the source. The gas source connected to the oxygen inlet valve may be an oxygen-enriched gas stream, and the oxygen content of the source may be less than pure oxygen (i.e. 100%). For example, the oxygen source may be an oxygen-enriched gas stream with an oxygen content less than 100% and greater than 21% oxygen content.
[0254] From at least some of the inputs, the respiratory gas oxygen concentration controller may identify an oxygen flow rate that would be required to achieve the target oxygen concentration. The oxygen concentration controller may use the flow rate input to modify the valve control signal. When the flow rate changes, the oxygen concentration controller may automatically calculate a new required oxygen flow rate that is required to maintain the target oxygen concentration at the new flow rate without waiting for feedback from the gas concentration sensor, e.g., a measured oxygen concentration value. The oxygen concentration controller may then output a modified valve control signal to control the valve based on the new flow rate. In some configurations, the control signal of the oxygen concentration controller may set the current of the oxygen valve to control the operation of the oxygen valve. Additionally or alternatively, the oxygen concentration controller may detect changes in the measured oxygen concentration and modify the valve position accordingly. During manual mode, the second control loop may operate independently without receiving a target oxygen concentration from the first control loop. Rather, the target oxygen concentration may be received from a user input or may be a default value.
[0255] During the treatment session, the blood oxygen level and oximetry controller may continue to automatically control the operation of the flow therapy device until the treatment session ends or until an event triggers a change from automatic mode to manual mode.
[0256] The respiratory gas oxygen concentration controller may be configured to control the oxygen concentration in the respiratory gas within a target oxygen concentration range, which may include an upper target oxygen concentration limit and / or a lower target oxygen concentration limit.
[0257] The respiratory assistance apparatus may further include at least one valve arrangement (described in more detail below).
[0258] The valve arrangement may be controllable by the controller to vary the amount of supplemental oxygen provided to the breathing gas from the oxygen source.
[0259] The valve arrangement may be in fluid communication with the blower.
[0260] The valve arrangement may be controllable to regulate the amount of oxygen introduced into the gas stream.
[0261] The valve arrangement may include one or more actuators.
[0262] The controller may be configured to vary the amount of supplemental oxygen provided to the breathing gas from the oxygen source to control the oxygen concentration of the breathing gas.
[0263] Respiratory therapy system 1 may include a predictive alarm system. In particular, respiratory therapy device 10 may include a predictive alarm system that may generate an alarm based on estimated future values of a particular blood oxygen level.
[0264] The predictive alarm system may be part of the controller 13 or part of a separate alarm module.
[0265] The controller 13 may be configured to estimate the effect of changes in the oxygen concentration of the breathing gas on the patient's blood oxygen concentration.
[0266] The controller 13 may be configured to estimate the effect of a past change (eg, a series of changes) in the oxygen concentration of the respiratory gas on the patient's blood oxygen concentration.
[0267] The controller 13 may be configured to estimate a maximum future value of the patient's blood oxygen concentration based on the effect of past changes (eg, a series of changes) in the oxygen concentration of the respiratory gas and a target oxygen concentration range for the respiratory gas.
[0268] The controller 13 may also take into account the patient's blood oxygen (ie, as measured by a sensor).
[0269] In some embodiments, the patient's blood oxygen may be determined over a period of time.
[0270] The controller 13 may be configured to control the oxygen concentration of the breathing gas to a target oxygen concentration.
[0271] Changes in the oxygen concentration of the respiratory gas (changes in the oxygen concentration provided) can cause corresponding changes in the patient's blood oxygen concentration.
[0272] If the change is an increase in the oxygen concentration of the respiratory gas (eg, as shown in FIG. 2A), then a corresponding increase in the oxygen concentration in the patient's blood should occur.
[0273] If the change is a decrease in the oxygen concentration of the respiratory gas (e.g., as shown in Figure 2B), a corresponding decrease in the patient's blood oxygen concentration should occur.
[0274] FIG. 2A shows an exemplary increase (step change) in the oxygen concentration of the breathing gas over time (e.g., by a controller controlling a target oxygen concentration of the breathing gas) and the corresponding effect this has on the patient's blood oxygen concentration over time.
[0275] At time t1, the controller 13 controls the oxygen concentration of the breathing gas from an initial oxygen concentration 920 via a step change 921 to a higher target oxygen concentration 922. As shown in the blood oxygen concentration over time in Figure 2A, the effect of the change in oxygen concentration 921 on the blood oxygen concentration is gradual over time, with the estimated blood oxygen concentration increasing over the time from t1 to t3.
[0276] FIG. 2B shows an exemplary decrease (step change) in the oxygen concentration of the respiratory gas over time (e.g., by a controller controlling a target oxygen concentration of the respiratory gas) and the corresponding effect this has on the patient's blood oxygen concentration over time.
[0277] At time t1, the controller 13 controls the oxygen concentration of the breathing gas from an initial oxygen concentration 930 via a step change 931 to a lower target oxygen concentration 932. As shown in the blood oxygen concentration over time, the effect of the change in oxygen concentration 931 on the blood oxygen concentration is gradual over time, with the estimated blood oxygen concentration 933 decreasing over the time from t1 to t3. Time t4 represents the time when the change in the oxygen concentration of the breathing gas has had its full effect on the estimated blood oxygen concentration 933.
[0278] 2A and 2B show a single step change in oxygen concentration over time, it is understood that the controller may implement a series of changes over a period of time (e.g., as shown in FIG. 3).
[0279] FIG. 3 illustrates a series of exemplary changes over time in the oxygen concentration of the respiratory gas (eg, a controller controls a target oxygen concentration of the respiratory gas) and the corresponding effect this has on the patient's blood oxygen concentration over time.
[0280] At time t1, the controller 13 controls the oxygen concentration of the breathing gas via a step change 939 to a higher oxygen concentration of the breathing gas, then via a further step change 939' at t2 to a higher oxygen concentration of the breathing gas, then via a further step change 939'' at t3 to a lower oxygen concentration of the breathing gas, and then via a further step change 939''' at t4 to a lower oxygen concentration of the breathing gas.
[0281] The controller 13 may implement these changes in the oxygen concentration of the respiratory gas based on controlling the patient's blood oxygen concentration (as described above).
[0282] The controller 13 may implement these changes to reach a target oxygen concentration in the breathing gas.
[0283] 2A, 2B and 3 show changes in the oxygen concentration of the respiratory gas as step changes, these changes may occur over a period of time, in some embodiments, control of the oxygen concentration of the respiratory gas may be continuous.
[0284] During operation of the device 10, the controller 13 may store the oxygen concentration of the respiratory gas as stored oxygen concentration data.
[0285] The controller 13 may also store an associated time stamp. The controller 13 may store the oxygen concentration of the respiratory gas and the associated time stamp as stored oxygen concentration data. For example, the stored oxygen concentration data may include one or more oxygen concentrations of the respiratory gas, each oxygen concentration having an associated time stamp.
[0286] The timestamp may include information regarding the time when the oxygen concentration of the respiratory gas was measured (e.g., by a sensor) or determined (e.g., calculated as a target).
[0287] With reference to FIG. 4A, determining the estimated future value of the patient's blood oxygen level is shown in more detail.
[0288] The determination of the estimated future value shown in FIG. 4A may be based on the effect of a single change in the oxygen concentration of the respiratory gas or one or more changes in the oxygen concentration of the respiratory gas over a period of time.
[0289] In block 901, the controller 13 determines an initial oxygen concentration of the respiratory gas. As previously described, if the flow therapy device 10 is already operating, this initial oxygen concentration may be hotter than that of the ambient air. Alternatively, if the flow therapy device 10 is not yet operating, the oxygen concentration may be substantially the same as that of the ambient air.
[0290] The initial oxygen concentration may be determined from a signal from a gas composition sensor (as described above). The controller 13 may monitor readings from the gas composition sensor to determine the initial oxygen concentration.
[0291] In block 902, the controller 13 identifies a target oxygen concentration of the respiratory gas. As previously described, the target oxygen concentration of the respiratory gas may be a target oxygen concentration (e.g., FdO2) provided by a blood oxygen concentration controller.
[0292] The target oxygen concentration may be determined from the signal from the gas composition sensor (as described above).
[0293] At block 903, the controller 13 determines the patient's blood oxygen level (eg, the patient's SpO2). In some embodiments, the patient's blood oxygen level may be determined over a period of time.
[0294] In block 904, the controller determines an estimated future value of the patient's blood oxygen level (discussed in more detail below).
[0295] The controller 13 may be configured to calculate an estimated future value of the patient's blood oxygen concentration based on the difference between the initial oxygen concentration of the respiratory gas and the target oxygen concentration of the respiratory gas.
[0296] Additionally or alternatively, the controller 13 may be configured to calculate an estimated future value of the patient's blood oxygen level based on the measurements indicative of the patient's blood oxygen level.
[0297] In some embodiments, the estimated future value of the patient's blood oxygen level (BOC) may be based on the following formula: Estimated future BOC = current BOC + K(ΔO2Conc) Where: The estimated future BOC is an estimate of the patient's blood oxygen level. Current BOC is the current blood oxygen level. K is a coefficient or function that defines the relationship between changes in oxygen concentration of the delivered gas and the effect on the patient's blood oxygen concentration. Δ2Conc is the change in oxygen concentration of the respiratory gas (eg, the difference between the initial oxygen concentration of the respiratory gas and the target oxygen concentration of the respiratory gas).
[0298] The estimated future value of the patient's blood oxygen concentration may be further based on the time since the controller controls the oxygen concentration of the breathing gas to the target oxygen concentration. With respect to the above equation, the coefficient K may be based on the time since the change in the oxygen concentration of the breathing gas occurred.
[0299] K can be, for example, a linear or non-linear function such that an increase in delivered oxygen results in a corresponding increase in the patient's blood oxygen level.
[0300] The estimated future value of the patient's blood oxygen concentration may be based on an estimated oxygen efficiency for the patient, which is a measure of the relationship between changes in oxygen concentration of the respiratory gas and changes in the patient's blood oxygen concentration. The estimated oxygen efficiency for the patient may be included as part of the coefficient or function K mentioned above.
[0301] Referring to FIG. 4B, another specification of the estimated future value of the patient's blood oxygen level is shown in more detail.
[0302] In block 911, controller 13 may update stored respiratory gas oxygen concentration data (described in more detail below).
[0303] The controller 13 may store respiratory gas oxygen concentration data for a predetermined amount of time (eg, the last 15 minutes) from device start-up or the start of treatment, or up to the current time.
[0304] The controller 13 may update the stored respiratory gas oxygen concentration data at regular or irregular time intervals, hi some embodiments, the controller may update the stored respiratory gas oxygen concentration data in real time.
[0305] In some embodiments, updating the stored respiratory gas oxygen concentration data may include adding one or more additional oxygen concentrations of the respiratory gas and an associated timestamp (e.g., a newly measured oxygen concentration of the respiratory gas along with a timestamp of when that measurement was made).
[0306] At block 912, the controller 13 determines the patient's blood oxygen level (eg, the patient's SpO2).
[0307] In block 913, the controller determines an estimated future value of the patient's blood oxygen level (described in more detail below).
[0308] In some embodiments, the estimated future value of the patient's blood oxygen level (BOC) may be based on the following formula: Estimated future value BOC = f(BOC,O2Conc,C) Where: The estimated future BOC is an estimate of the patient's blood oxygen level. BOC is the patient's blood oxygen level (eg, measured blood oxygen level) over the course of a treatment or defined period of time. O2Conc is the oxygen concentration of the respiratory gas over a therapeutic or predetermined period of time (eg, target oxygen concentration). C may include constants and / or functions (eg, the patient's oxygen efficiency and / or hemoglobin saturation function).
[0309] This equation shows that the estimated future BOC is a function of the patient's blood oxygen concentration, the oxygen concentration of the respiratory gas, and a constant and / or function C.
[0310] In some embodiments, the controller is configured to calculate an estimated future value of the patient's blood oxygen level based on the stored respiratory gas oxygen level data and the measurement indicative of the patient's raw blood oxygen level.
[0311] The respiratory gas oxygen concentrations of the stored respiratory gas oxygen concentration data may be weighted based on the associated timestamp.
[0312] The controller may identify a series of changes in respiratory gas oxygen concentration in the stored respiratory gas oxygen concentration data.
[0313] The weighting based on the timestamp may be inversely proportional to the time since the change in oxygen concentration of the respiratory gas occurred.
[0314] That is, in calculating future values of blood oxygen level, older changes are assigned a lower weight because the effects of these changes may already be reflected (at least in part) on the patient's blood oxygen level compared to more recent changes.
[0315] In some embodiments, the estimated future value of the patient's blood oxygen concentration (BOC) may be based on the sum of the changes in oxygen concentration of the respiratory gas.
[0316] Referring to FIG. 4C, another specification of the estimated future value of the patient's blood oxygen level is shown in more detail.
[0317] In block 916, the controller 13 performs an estimation update phase.
[0318] The estimation update phase may be configured to determine one or more variables of the device 10 and update the total change in oxygen concentration of the respiratory gas accordingly.
[0319] At block 917, the controller 13 determines the patient's blood oxygen level.
[0320] In block 918, the controller 13 estimates future values of the patient's blood oxygen level based on the sum of the changes in oxygen level (updated in the estimation update phase in block 916).
[0321] The estimation update phase 916 is shown in more detail in FIG. 4D.
[0322] At block 990, a damping factor is applied to the running total of the change in oxygen concentration of the respiratory gas.
[0323] The damping factor damps the total change in the oxygen concentration of the respiratory gas in each estimation update phase to take into account the effect that the change in the oxygen concentration of the respiratory gas has on the blood oxygen concentration of the patient.
[0324] In block 991, the controller 13 determines the oxygen concentration of the respiratory gas. As previously described, the oxygen concentration of the respiratory gas may be a measured oxygen concentration (e.g., measured by a gas composition sensor) or a target oxygen concentration (i.e., set by the controller 13).
[0325] At block 992, the controller 13 determines the oxygen concentration of the respiratory gas at the time of the last estimated update.
[0326] At block 993, the controller 13 determines the difference between the oxygen concentration of the respiratory gas and the oxygen concentration of the respiratory gas at the previous estimated update.
[0327] In block 994, the controller 13 updates the total change in the oxygen concentration of the respiratory gas by adding the difference between the oxygen concentration of the respiratory gas and the oxygen concentration of the respiratory gas at the previous estimated update and the damped total change in the oxygen concentration of the respiratory gas.
[0328] The total change in oxygen concentration of the respiratory gas may indicate a change in oxygen provided to the user that still has no effect on the patient's blood oxygen concentration.
[0329] The estimated future value of the patient's blood oxygen level may be based on the patient's oxygen efficiency and / or hemoglobin saturation function.
[0330] The estimation update phase may be given by the following equation:
[0331] (ΣΔO2conc) t =∝(ΣΔO2conc) t-1 +((O2conc) t -(O2conc) t-1 ) Where: (ΣΔO2conc) t is the sum of the change in oxygen concentration of the respiratory gas in the current estimation update phase (time t). ∝ is the damping coefficient. (ΣΔO2conc) t-1 is the sum of the changes in oxygen concentration of the respiratory gas during the previous estimation update phase (time t-1). (O2conc) t is the oxygen concentration of the respiratory gas in the current estimation update phase (t). (O2conc) t-1 is the oxygen concentration of the respiratory gas at the previous estimation update phase (time t-1).
[0332] The controller 13 may be configured to perform the estimation update phase at regular or irregular time intervals.
[0333] In some embodiments, the controller 13 may be configured to perform the estimation update phase every 0.5 seconds to about every 2 seconds, or every 1 second to about every 1.5 seconds, or every 0.5 seconds, or every 1 second, or every 1.5 seconds.
[0334] In some embodiments, the decay coefficient may define an exponential decay.
[0335] The decay factor may be based on the time between estimation update phases.
[0336] In some embodiments, the decay coefficient may be selected such that the amplitude of any change in oxygen concentration of the respiratory gas decays to 36% of its initial value over 45 seconds.
[0337] The stored oxygen concentration data may be transmitted by the respiratory apparatus device to one or more servers or patient monitoring units and / or nurse monitoring stations.
[0338] The controller 13 may be configured to compare an estimated future value of the patient's blood oxygen level to a blood oxygen level alarm range.
[0339] The controller 13 may generate an alarm output if the estimated future value of the patient's blood oxygen level is not within the blood oxygen level alarm range.
[0340] For example, in FIG. 5A , the blood oxygen level alarm range may include an upper blood oxygen level alarm threshold 996 and a lower blood oxygen level alarm threshold 997 .
[0341] The alarm output may be based on the difference and length of time between the estimated future value and the upper blood oxygen concentration alarm threshold 996 (or the lower blood oxygen alarm threshold 997).
[0342] The time it takes for an alarm output to be generated may be inversely proportional to the difference: for example, if the difference is relatively small, it may take longer for the alarm to activate, whereas if the difference is relatively large, the alarm may activate in a shorter time.
[0343] In some embodiments, if the estimated blood oxygen level is close to the alarm threshold, the alarm takes a relatively long time to activate.
[0344] In some embodiments, if the estimated blood oxygen level is far from the alarm threshold, the alarm is triggered in a relatively short period of time.
[0345] The upper blood oxygen concentration alarm threshold limit 996 and / or the lower blood oxygen concentration alarm threshold limit 997 may be based on the time since the controller controls the oxygen concentration of the respiratory gas to the target oxygen concentration. For example, the lower blood oxygen concentration alarm limit may increase over time.
[0346] An alarm threshold may be identified based on the amount of change in the target oxygen concentration (eg, the difference between the target oxygen concentration and the initial oxygen concentration).
[0347] Additionally or alternatively, the alarm threshold may be a specified or target oxygen concentration.
[0348] Additionally or alternatively, the alarm threshold may be the specified current oxygen concentration of the gas.
[0349] The alarm threshold may be based on a target blood oxygen level.
[0350] For example, as shown in FIG. 5B, the controller 13 may be configured to generate an alarm output based on a comparison of an estimated future value of the patient's blood oxygen level to a blood oxygen level alarm threshold 998.
[0351] The controller 13 may be configured to generate said alarm output if the estimated future value of the patient's blood oxygen level is above or below a blood oxygen level threshold.
[0352] The alarm threshold may be based on the time from when the controller controls the oxygen concentration of the breathing gas to the target oxygen concentration.
[0353] The alarm output may be transmitted to one or more servers in communication with the respiratory therapy device or to a patient monitoring unit and / or a nurse monitoring station.
[0354] An alarm threshold may be identified based on the amount of change in the target oxygen concentration (eg, the difference between the target oxygen concentration and the initial oxygen concentration).
[0355] Additionally or alternatively, the alarm threshold may be a specified or target oxygen concentration.
[0356] Additionally or alternatively, the alarm threshold may be the specified current oxygen concentration of the gas.
[0357] The alarm range may be based on a target blood oxygen level.
[0358] The alarm output may be transmitted to one or more servers in communication with the respiratory therapy device or to a patient monitoring unit and / or a nurse monitoring station.
[0359] The blood oxygen level alarm threshold may be based on a target blood oxygen level, for example, the blood oxygen level alarm threshold may be a percentage difference or a predetermined amount from the target blood oxygen level.
[0360] The controller may also be configured to determine the effect that further possible changes to the oxygen concentration of the breathing gas within the target oxygen concentration range of the breathing gas have on the patient's blood oxygen concentration.
[0361] For example, if the target upper oxygen concentration limit of the target oxygen concentration range is higher than the oxygen concentration of the respiratory gas, the controller can determine the effect that increasing the oxygen concentration of the respiratory gas to the target upper oxygen concentration limit will have on the patient's blood oxygen concentration.
[0362] Alarm outputs are described in more detail below.
[0363] With reference to FIG. 6, the identification of maximum or minimum future values of a patient's blood oxygen level with respect to a corresponding target oxygen range is shown in more detail.
[0364] The maximum or minimum future value may be after any change in oxygen concentration of the respiratory gas is reflected in the patient's blood oxygen (e.g., when the patient's blood oxygen no longer changes or reaches a low state).
[0365] In block 941, the controller 13 identifies a target oxygen concentration range for the respiratory gas (as described in more detail above). For example, the target oxygen concentration range may be provided as an input from a user or may be specified by the controller 13 or another controller 13 of the device.
[0366] At block 942, the controller 13 determines the patient's blood oxygen level (eg, via a sensor such as a pulse oximeter).
[0367] In block 943, the controller 13 determines the oxygen concentration of the respiratory gas. If the controller 13 is in the process of varying or controlling the oxygen concentration of the respiratory gas, the oxygen concentration of the respiratory gas may be a target oxygen concentration of the respiratory gas.
[0368] In block 944, the controller 13 determines an estimated maximum or minimum future value of the patient's blood oxygen level. The estimated maximum or minimum future value of the patient's blood oxygen level may be based on a target oxygen level range of the respiratory gas, a current oxygen level of the respiratory gas, and a current blood oxygen level of the patient.
[0369] 7 illustrates an example in which the controller 13 controls the oxygen concentration of the respiratory gas from an initial oxygen concentration 920 to a target oxygen concentration 921. The target oxygen concentration 921 may be within a target oxygen concentration range. As previously described, the target oxygen concentration range may include a target oxygen concentration upper limit 935 and / or a target oxygen concentration lower limit 936.
[0370] The controller may determine a difference (indicated by reference numeral 937 ) between the target oxygen concentration upper limit 935 and the target oxygen concentration 921 .
[0371] The controller may determine a difference (denoted by reference numeral 938 ) between the target oxygen concentration lower limit 936 and the target oxygen concentration 921 .
[0372] The controller 13 may be configured to calculate an estimated maximum or minimum future value of the patient's blood oxygen level relative to the target oxygen level range, i.e., calculate an estimate of the maximum or minimum future value of the patient's blood oxygen level as the device may potentially further vary the delivered oxygen level while remaining within the target oxygen level range.
[0373] The estimated maximum or minimum future values may be useful to provide information to the user regarding the estimated effect that the device can provide on the patient's blood oxygen concentration within the target oxygen concentration range of the respiratory gas input by the user. For example, if the estimated maximum or minimum future values are unacceptable to the user, the user may be notified and may change the input parameters of the system or modify the therapy.
[0374] The controller 13 may be configured to calculate an estimated maximum future value of the patient's blood oxygen level for the target oxygen level range. The estimated maximum future value of the patient's blood oxygen level for the target oxygen level range may be based on a difference between the target oxygen level and the target oxygen level upper limit and a measurement indicative of the patient's blood oxygen level.
[0375] The estimated maximum or minimum future value of the patient's blood oxygen level may additionally be based on a measurement indicative of the patient's blood oxygen level.
[0376] Determining an estimated maximum or minimum future value of the patient's blood oxygen level may include aspects of the methods described above for determining an estimated future value of the patient's blood oxygen level.
[0377] The estimated maximum or minimum future value of the patient's blood oxygen concentration may be based on changes in the oxygen concentration of the respiratory gas that have occurred in the past (e.g., stored respiratory gas oxygen concentration data) and possible changes that may be made in the future (e.g., changes that may occur in controlling the oxygen concentration of the respiratory gas within a target respiratory gas oxygen concentration range).
[0378] In some embodiments, the estimated maximum future value of the patient's blood oxygen concentration (BOC) may be based on the following formula:
number
number
[0379] The controller 13 may be configured to calculate an estimated minimum future value of the patient's blood oxygen level for the target oxygen level range. The estimated minimum future value of the patient's blood oxygen level may be based on a difference between the target oxygen level and a target oxygen level lower limit and a measurement indicative of the patient's blood oxygen level.
[0380] In some embodiments, the estimated maximum future value of the patient's blood oxygen level may be based on the following formula:
number
number
[0381] FIG. 8A illustrates a target oxygen concentration range for respiratory gas defined by upper target oxygen concentration limit 935 and lower target oxygen concentration limit 936 .
[0382] An example of the calculation of minimum or estimated maximum future values of a patient's blood oxygen concentration is shown in Figures 8A and 8B. Figure 8A shows the oxygen concentration of the respiratory gas 922 over time. In this example, the controller 13 is controlling the oxygen concentration of the respiratory gas 922 to a constant value (i.e., there is no change).
[0383] The oxygen concentration of the respiratory gas 922 corresponds to the patient's blood oxygen concentration over time. Because the oxygen concentration of the respiratory gas 922 is constant, so is the patient's blood oxygen concentration 932.
[0384] As previously discussed, the controller 13 may calculate the difference 937 between the target upper oxygen concentration limit 935 of the respiratory gas and the oxygen concentration 922 of the respiratory gas (e.g., the current oxygen concentration of the respiratory gas). This difference 937 may then be used, together with a measurement indicative of the patient's blood oxygen concentration 923, to estimate a maximum future value 950 of the patient's blood oxygen concentration.
[0385] As previously described, the controller 13 may calculate a difference 938 between the target lower oxygen concentration limit 936 of the respiratory gas and the oxygen concentration 922 of the respiratory gas (e.g., the current oxygen concentration of the respiratory gas). This difference 938 may then be used, together with a measurement indicative of the patient's blood oxygen concentration 923, to estimate a minimum future value 951 of the patient's blood oxygen concentration.
[0386] In some embodiments, the estimated maximum or minimum future value of the patient's blood oxygen level may be based on, for example, the estimated future value of the patient's blood oxygen level (which may be based on recent changes in oxygen level), as described above, such that the maximum or minimum future value of the patient's blood oxygen level may be estimated to take into account past or recent changes in the oxygen level of the respiratory gas (as described above).
[0387] In some embodiments, the estimated maximum or minimum future values of the patient's blood oxygen level may be based on stored respiratory gas oxygen level data (as described in more detail above).
[0388] In some embodiments, the estimated maximum or minimum future value of the patient's blood oxygen level may be based on the sum of the changes in oxygen level of the respiratory gas (as described in more detail above).
[0389] The estimated maximum or minimum future value of the patient's blood oxygen level may be further based on a measurement indicative of the patient's blood oxygen level and the estimated future value of the patient's blood oxygen level (as described above).
[0390] Referring to FIG. 9A, the identification of maximum or minimum future values of a patient's blood oxygen concentration for a corresponding target oxygen concentration range of respiratory gas is shown in more detail.
[0391] In block 960, controller 13 may update stored respiratory gas oxygen concentration data (as described in more detail above).
[0392] The controller 13 may store respiratory gas oxygen concentration data for a predetermined amount of time (eg, the last 15 minutes) since machine startup, such as the start of treatment, or the present time.
[0393] The controller 13 may store the respiratory gas oxygen concentration data at regular or irregular time intervals, and in some embodiments, the controller may update the stored respiratory gas oxygen concentration data in real time.
[0394] At block 961, the controller 13 determines the patient's blood oxygen level (eg, the patient's SpO2).
[0395] In block 962, the controller 13 identifies a target oxygen concentration range for the respiratory gas (as described in more detail above). For example, the target oxygen concentration range for the respiratory gas may be provided as an input from a user or may be specified by the controller 13 or another controller 13 of the device.
[0396] At block 963, the controller 13 calculates an estimated maximum or minimum future value of the patient's blood oxygen level (as described elsewhere herein).
[0397] In some embodiments, the estimated maximum or minimum future value of the patient's blood oxygen concentration (BOC) may be based on the following formula: Estimated maximum or minimum future BOC = f(BOC, O2Conc, target O2Conc, C) Where: The estimated maximum or minimum future BOC is the estimated maximum or minimum future value of the patient's blood oxygen concentration. BOC is the blood oxygen level of a patient over the course of a treatment or defined period of time. O2Conc is the oxygen concentration of the respiratory gas over a therapeutic or prescribed period. Target O2Conc is the target oxygen concentration range for the breathing gas. C may include constants and / or functions (eg, the patient's oxygen efficiency and / or hemoglobin saturation function).
[0398] This formula shows that the estimated maximum or minimum future BOC is a function of the patient's blood oxygen concentration, the oxygen concentration of the respiratory gas, the target oxygen concentration range of the respiratory gas, and a constant and / or function C.
[0399] In some embodiments, the controller is configured to calculate an estimated maximum or minimum future value of the patient's blood oxygen level based on the stored respiratory gas oxygen level data, a target oxygen level range for the respiratory gas, and a measurement indicative of the patient's blood oxygen level.
[0400] The respiratory gas oxygen concentrations of the stored respiratory gas oxygen concentration data may be weighted based on the associated timestamp.
[0401] The controller may determine that there is a series of changes in the oxygen concentration of the respiratory gas in the stored respiratory gas oxygen concentration data.
[0402] The weighting based on the timestamp may be inversely proportional to the time since the change in oxygen concentration of the respiratory gas occurred.
[0403] That is, older changes are assigned a lower weight in calculating the estimated maximum or minimum future blood oxygen levels because the effects of these changes may already be reflected (at least in part) on the patient's blood oxygen levels compared to more recent changes.
[0404] Referring to FIG. 9B, another determination of the estimated maximum or minimum future values of the patient's blood oxygen level is shown in more detail.
[0405] In block 970, the controller 13 performs the estimation update phase (as described in more detail above and shown in FIG. 4C).
[0406] At block 971, the controller 13 determines the patient blood oxygen level.
[0407] At block 972, the controller 13 identifies a target oxygen concentration range for the breathing gas.
[0408] In block 973, the controller 13 estimates future values of the patient's blood oxygen level based on the total change in oxygen level (updated in the estimation update phase in block 916).
[0409] The controller 13 may calculate a difference 937 between the target upper oxygen concentration limit 935 of the respiratory gas and the oxygen concentration 922 of the respiratory gas (e.g., the current oxygen concentration of the respiratory gas). This difference 937 may then be used, together with the sum of the measurements indicative of the patient's blood oxygen concentration 923 and the change in the oxygen concentration of the respiratory gas, to estimate a maximum future value 950 of the patient's blood oxygen concentration.
[0410] The controller 13 may calculate a difference 938 between the target lower oxygen concentration limit 936 of the respiratory gas and the oxygen concentration 922 of the respiratory gas (e.g., the current oxygen concentration of the respiratory gas). This difference 938 may then be used, together with the sum of the measurements indicative of the patient's blood oxygen concentration 923 and the change in the oxygen concentration of the respiratory gas, to estimate a minimum future value of the patient's blood oxygen concentration.
[0411] The estimated maximum future value and / or the estimated minimum future value may be updated in real time. In this manner, the estimated maximum future value and / or the estimated minimum future value may be constantly updated during operation of the device 10.
[0412] The estimated maximum future value and / or the estimated minimum future value may be based on an oxygen efficiency ratio.
[0413] In some embodiments, the oxygen efficiency ratio (including the oxygen efficiency ratio as described above) may be input by a user.
[0414] In some embodiments, the oxygen efficiency ratio may be calculated based on the measured blood oxygen concentration and a target lower limit of the oxygen concentration of the respiratory gas (or a target upper limit of the oxygen concentration of the respiratory gas).
[0415] In other embodiments, the flow therapy device 10 may determine oxygen efficiency associated with the patient.
[0416] The system may calculate an estimate of the patient's oxygen efficiency (ξO2), along with other parameters. In general, oxygen efficiency may be calculated based on the patient's measured blood oxygen concentration (e.g., SpO2) and the measured oxygen concentration of the respiratory gas (e.g., FdO2). In one configuration, oxygen efficiency is determined based on the patient's measured SpO2 divided by the measured FdO2.
[0417] The oxygen efficiency of a patient who requires supplemental oxygen may be below that of a healthy person. For example, in a healthy person, a change in FdO2 may cause a change in SpO2 that is twice as large as the SpO2 in a patient with low oxygen efficiency. Having an indication of a patient's oxygen efficiency allows closed loop oxygen control systems to run more efficiently.
[0418] As shown in FIG. 10A, the controller 13 can calculate the patient's oxygen efficiency. The controller can receive a measured SpO2 value. A measured FdO2 value can be received from a gas composition sensor. An instantaneous oxygen efficiency can then be calculated based on the measured SpO2 and FdO2 values. The patient's overall oxygen efficiency can then be estimated by applying an on-the-fly filter to the instantaneous oxygen efficiency data. Filtering the instantaneous oxygen efficiency data can reduce variability in the estimate of the patient's overall oxygen efficiency. The controller can also prioritize more recent data. The instantaneous oxygen efficiency data can be weighted by pulse oximeter signal quality, such that instantaneous oxygen efficiency measurements made from data with low signal quality can have a reduced impact on the estimate of the patient's overall oxygen efficiency. The instantaneous oxygen efficiency data can also be weighted based on the size of the recent change to FdO2, such that instantaneous oxygen efficiency measurements made from data following a large change in FdO2 can have a reduced impact on the estimate of the patient's overall oxygen efficiency. This is because there is a delay between when a change in FdO2 is made and when the measured SpO2 changes. The controller may also take into account whether the patient is cannulated when estimating the patient's oxygen efficiency. For example, the controller may ignore efficiency data from periods when the patient is not cannulated.
[0419] The device may constantly monitor and update an estimate of the patient's overall oxygen efficiency. The patient's overall oxygen efficiency may be used by multiple parts of the closed loop control system, such as predictive models, tuning PID coefficients, and / or stepping up the feed forward phase. The patient's overall oxygen efficiency may be constantly updated as the estimate of the patient's instantaneous oxygen efficiency changes. The controller may start with an initial estimate of the patient's oxygen efficiency based on the typical oxygen efficiency of patients who require supplemental oxygen. The overall oxygen efficiency may then be updated as data is received. A higher estimate of oxygen efficiency may result in a smaller change in FdO2, thereby reducing the risk of the patient receiving too much oxygen. A lower estimate may result in a larger change in FdO2, thereby allowing the controller to achieve the target SpO2 more quickly, but may cause overshoot.
[0420] In some configurations, the flow therapy device 10 may have an initial oxygen efficiency calculation phase to determine the patient's oxygen efficiency. In some configurations, the oxygen efficiency is not updated after the initial oxygen efficiency calculation.
[0421] The controller may be configured to generate an alarm output.
[0422] The alarm output may include an alarm signal.
[0423] The alarm output may have any of the characteristics described above.
[0424] An alarm output may be provided in conjunction with the alarm outputs described above.
[0425] The controller 13 may be configured to compare an estimated maximum future value of the patient's blood oxygen concentration with a target blood oxygen concentration upper limit, and generate an alarm output if the estimated maximum future value of the patient's blood oxygen concentration exceeds the target blood oxygen concentration upper limit.
[0426] The controller 13 may be configured to compare an estimated maximum future value of the patient's blood oxygen concentration with a target blood oxygen concentration lower limit, and generate an alarm output if the estimated maximum future value of the patient's blood oxygen concentration falls below the target blood oxygen concentration lower limit.
[0427] The alarm parameters of the alarm output may be based on the magnitude of the difference between the estimated maximum future value of the patient's blood oxygen level and the target upper blood oxygen level limit.
[0428] The controller 13 may be configured to compare an estimated minimum future value of the patient's blood oxygen concentration with a target blood oxygen concentration lower limit, and generate an alarm output if the estimated minimum future value of the patient's blood oxygen concentration falls below the target blood oxygen concentration lower limit.
[0429] The controller 13 may be configured to compare the estimated minimum future value of the patient's blood oxygen concentration with a target blood oxygen concentration upper limit, and generate an alarm output if the estimated minimum future value of the patient's blood oxygen concentration exceeds the target blood oxygen concentration upper limit.
[0430] The alarm parameters of the alarm output may be based on the magnitude of the difference between an estimated minimum future value of the patient's blood oxygen level and a target lower blood oxygen level limit.
[0431] The alarm parameter may be an alarm duration or an alarm intensity.
[0432] The alarm intensity may be, for example, an alarm level indicating the severity of the alarm.
[0433] The alarm output may be provided to a display.
[0434] The display may be configured to provide a user interface.
[0435] The alarm output may be configured to generate an audio signal or provide an indication (eg, a visual indication).
[0436] The alarm output may be transmitted to one or more servers in communication with the respiratory therapy device or to a patient monitoring unit and / or a nurse monitoring station.
[0437] The alarm output may be based on the difference between the estimated maximum future value and the lower blood oxygen concentration alarm threshold 931 (or the difference between the estimated minimum future value and the upper blood oxygen concentration alarm threshold 930) and the amount of time.
[0438] The time it takes for an alarm output to be generated may be inversely proportional to the difference: for example, if the difference is relatively small, it may take longer for the alarm to activate, whereas if the difference is relatively large, the alarm may activate in a shorter time.
[0439] In some embodiments, when the estimated blood oxygen level is close to the alarm threshold, it takes a relatively long time for the alarm to be activated.
[0440] In some embodiments, if the estimated blood oxygen level is far from the alarm threshold, the alarm is triggered in a relatively short period of time.
[0441] If the controller 13 predicts that the estimated maximum future value of the patient's blood oxygen level will exceed a threshold amount below the target blood oxygen level, an under-oxygenation warning alarm output may be provided.
[0442] An under-oxygen administration warning alarm output may be provided after an under-oxygen administration warning alarm output time has elapsed during which the patient's estimated maximum future value of blood oxygen level exceeds a threshold amount below a target blood oxygen level.
[0443] The under-oxygen administration warning alarm threshold amount may have a first threshold corresponding to a first level under-oxygen administration warning and a second threshold corresponding to a second level under-oxygen administration warning, the first threshold being higher than the second threshold.
[0444] An under-oxygenation first level warning may indicate a large difference between the patient's estimated maximum future blood oxygen level and the target blood oxygen level.
[0445] An under-oxygenation level two warning may indicate a small difference between the patient's estimated maximum future blood oxygen level and the target blood oxygen level.
[0446] The first level under-oxygen warning may have different alarm parameters than the second level under-oxygen warning (eg, a longer alarm duration).
[0447] If the controller 13 predicts that the estimated minimum future value of the patient's blood oxygen level will exceed a threshold amount higher than the target blood oxygen level, an over-oxygenation warning alarm output may be provided.
[0448] The overoxygenation alarm output may be provided after an overoxygenation alarm output time has elapsed during which the estimated minimum future value of the patient's blood oxygen level exceeds a threshold amount above the target blood oxygen level.
[0449] The overoxygen administration warning alarm threshold amount may have a first threshold corresponding to a first level overoxygen administration warning and a second threshold corresponding to a second level overoxygen administration warning, the first threshold being higher than the second threshold.
[0450] An over-oxygenation first level warning may indicate a large difference between the patient's estimated minimum future blood oxygen level and the target blood oxygen level.
[0451] An over-oxygenation second level warning may indicate a small difference between the estimated minimum future value of the patient's blood oxygen level and the target blood oxygen level.
[0452] The overoxygen first level warning may have different alarm parameters than the overoxygen second level warning (eg, a longer alarm duration).
[0453] The alarm output may also be generated according to the following formula: Σ Alarm =Σ(BOC min -Estimated maximum or minimum future value-β) Where: Σ Alarm is the sum of the alarms, BOC min is the minimum BOC threshold, e.g., as a user input or target lower blood oxygen concentration limit, The estimated maximum or minimum future value is the estimated maximum or minimum future value as described above.
[0454] An alarm output may be generated if the sum of the alarms exceeds a threshold.
[0455] Although the above description has been in terms of an apparatus, it should be appreciated that the above may also be implemented as a method.
[0456] Also disclosed is a flow therapy device for use in providing the aforementioned methods.
[0457] The above-described embodiments may be at least partially implemented by the auxiliary device 2.
[0458] For example, calculation of the estimated maximum future value, and / or the estimated minimum future value, and / or the estimated future value may be performed in the auxiliary equipment (eg as shown in FIG. 25) rather than in a controller of the respiratory assistance apparatus.
[0459] 25, the auxiliary equipment 2 may include a display and / or a controller. For example the controller may take on any of the functions of the controller 13 of the respiratory assistance apparatus 1.
[0460] As shown in Figure 25, the respiratory assistance device may provide information to the auxiliary device 2 to provide it with the information necessary to calculate an estimated future value of the patient's blood oxygen.
[0461] For example, the respiratory assistance device 1 may provide variables measured by the respiratory assistance device 1, such as the patient's current blood oxygen concentration and the target oxygen concentration of the respiratory gas, to the auxiliary device 2, enabling the auxiliary device 2 to perform its calculations.
[0462] The respiratory aid apparatus 1 may also provide other information to be displayed on the auxiliary equipment 2 (eg the patient's blood oxygen concentration and target oxygen concentration of the respiratory gas or other variables measured or calculated by the respiratory aid apparatus 1).
[0463] In some embodiments, the respiratory apparatus 1 may communicate an alarm output (as described in more detail above) to the ancillary equipment 2.
[0464] The auxiliary device 2 may output an alarm (eg an audio and / or visual alarm via the auxiliary device's display and / or speaker).
[0465] In some embodiments, the auxiliary device 2 may identify an alarm output and provide an alarm output to the respiratory assistance apparatus 1. The respiratory apparatus 1 may then output an alarm as described above.
[0466] The auxiliary device 2 may be or include a server or a patient monitoring unit, and / or a nurse monitoring station, and / or a mobile device such as a tablet or mobile phone.
[0467] The auxiliary device 2 may communicate with the respiratory apparatus 1 via a wired or wireless connection (eg Bluetooth or NFC).
[0468] The auxiliary device 2 may be provided with an app or user interface for displaying information and / or alarms.
[0469] The auxiliary equipment 2 may be configured to vary at least one parameter of the respiratory assistance apparatus (eg the target oxygen concentration of the respiratory gas).
[0470] Motor and / or sensor module configuration The configuration of flow therapy device 10 is shown in Figures 11 to 13. The flow therapy device includes a main housing 100. Main housing 100 has an upper main housing exterior 102 and a lower main housing exterior 202.
[0471] 11 and 12, the lower housing 202 has a motor recess 250 for receiving a removable or non-removable motor and / or sensor module 400 as shown in Figures 13-15 and described in further detail below. A recess opening 251 is provided in the bottom wall 230 adjacent its rear edge for receiving a removable or non-removable motor / sensor module 400 as shown in Figures 16 and 18 and described in further detail below.
[0472] 13-16 show in further detail the motor and / or sensor module or subassembly 400. As mentioned above, the lower housing 202 includes a recess 250 for receiving the motor and / or sensor module 400.
[0473] 13-16, the motor and / or sensor module 400 includes three main components: a base 403 of the subassembly 400 (on which the motor 402 is positioned), an outlet gas flow passage and sensing layer 420 positioned above the base 403, and a stacked arrangement of a cover layer 440. The base 403, sensing layer 420, and cover layer 440 are assembled to form a subassembly housing having a shape complementary to the shape of the recess 250 such that the subassembly 400 may be received in the recess 250. The base 403 is configured to close the recess opening 251 when the subassembly 400 is positioned within the recess 250. The subassembly 400 may be maintained in place within the recess in any suitable manner, such as, for example, with fasteners, clips, or quick release arrangements, or may be permanently secured thereto.
[0474] The sensing layer includes a gas flow passage with one or more sensors, the gas flow passage being arranged to supply gas to an outlet port of the housing.
[0475] The motor 402 has a body 408 that defines an impeller chamber that contains an impeller. The motor 402 may be any suitable gas blower motor, and may be, for example, a motor and impeller assembly of the type described in WO 2013 / 009193, the contents of which are incorporated herein by reference in their entirety.
[0476] The gas outlet 406 is in fluid communication with an outlet gas flow passage and a gas inlet of a sensing layer 420 stacked on top of the motor. The layer 420 includes a body 422 including a number of mounting feet 425 that can be inserted into a number of mounting slots (not shown) in the base 403 to secure the body 422 to the base 403. In one configuration, the body 422 defines a gas flow passage coupling the gas outlet 406 to the gas flow passage and the gas inlet of the sensing layer 420.
[0477] The body 422 defines a lower portion 426 of the sensing and gas flow passages. The cover layer 440 has a body 442 that defines an upper portion 446 of the sensing and gas flow passages, the shapes of the upper and lower portions 426, 446 substantially corresponding to one another.
[0478] 14 and 15, the gas flow path includes a linear, elongated gas flow section 428, 448. The inlet is in fluid communication with a tangential gas flow path inlet section 430, 450 disposed at or adjacent the inlet end of the linear, elongated gas flow path section 428, 448. Recesses 433, 453 and 434, 454 may be provided at opposite ends of the linear, elongated gas flow path section.
[0479] The gas outlet ports 452 extend vertically through the body 442 of the cover layer 440 and are located at or adjacent to the opposing outlet ends of the linear elongated portions 428, 448 of the gas flow passages. The gas outlet ports 452 are in fluid communication with the upper portion of the motor recess 250, which is in turn in fluid communication with the gas flow passages. Again, due to the configuration of the walls 252 and ceiling 262 of the recess 250, if there is a gas leak from the motor / sensor module 400, the gas will be vented to the atmosphere rather than entering the portion of the main housing 100 that contains most of the electronics and controls. The recess 250 may include one or more spacers, such as lugs projecting downwardly from the ceiling 262, as shown in FIG. 15, to maintain a suitable spacing for gas flow from the gas outlet ports 452 and the recess ceiling 262.
[0480] 14, it can be seen that at least a portion of the gas flow path through and exiting the motor and / or sensing module 400 has a serpentine or undulating configuration. For example, the direction of gas flow traveling through the elongated portions 428, 448 is generally opposite the direction of gas flow traveling from the gas outlet port 452 to the inlet of the gas flow path through the elbow 324.
[0481] 14 and 15, the cover layer 440 includes a sensing printed circuit board (PCB) 456. The cover layer 440 may also include one or more temperature sensors, such as thermistors, mounted on the gas flow path elongated portions 428, 448. One sensor may measure the temperature of the gas and the other sensor may act as a redundant temperature sensor. Alternatively, one of the thermistors may be used as a reference flow sensor (e.g., by use as a constant temperature thermistor) and the measured temperature may be used to determine the gas flow rate through the gas flow path portions 428, 448. The one or more temperature sensors may be located on a portion of the sensing PCB 456 that faces the gas flow. The sensing PCB 456 may further include other sensors, including, but not limited to, pressure sensors, humidity sensors, and dew point sensors.
[0482] One or both of the electronics boards 272 are in electrical communication with or coupled to the sensors to process information received from the sensors and to operate the device 10 based on the information received from the sensors.
[0483] In an alternative configuration, the motor / impeller unit may be provided at a location remote from the device 10. In that configuration, the module received in the recess 250 may include only the gas flow path and various sensors to supply gas to the fixed elbow 324 and thereby to the liquid chamber 300. In an alternative configuration, the module received in the recess 250 may include only the motor and gas flow path and may not include sensors.
[0484] In another alternative configuration, the motor and / or sensor module 400 may not be removable from the recess 250, but rather may be permanently mounted therein. The benefits of isolating the gas from the electrical / electronic components are still provided in that configuration.
[0485] The flow paths are compact and have fewer curves / sharp turns, thereby reducing flow separation and lowering resistance to flow.
[0486] The motor and flow path arrangement provides another layer of insulation for the wall arrangement.
[0487] Having a modular motor and / or sensor module allows the various parts of the module to be disassembled if cleaning and / or repair is required.
[0488] Advantageously, there are no leak paths in the motor and / or sensor module, as there may be potential leak points in the motor and / or sensor module that would allow oxygen to be released into the atmosphere or liquid chamber in that area.
[0489] Figures 17A, 17B, 18, 19, 20, 21, 22, 23, and 24 show a first configuration of a valve module 4001. The valve module 4001 controls the flow of oxygen and / or other gases into the gas flow path of the device 10 and enables the device 10 to regulate the percentage of oxygen drawn into the air flow. The valve module is formed as a modular unit for ease of manufacture, assembly, repair or replacement, for example in the event of failure, routine maintenance, or future upgrades / refurbishments.
[0490] The valve module 4001 is inserted vertically upward into the valve module receptacle 306 of the lower casing 202 of the main housing. In alternative configurations, the valve module may be insertable in different orientations into the housing, for example, forward, downward, rearward, or sideways. The valve module 4001 is removably engageable with the main housing of the device such that the valve module 4001 is substantially received in the housing and accessible from the exterior of the housing. In some configurations, the valve module 4001 can be fixed and not removable within the main housing. When the valve module is removably engaged with the housing, a portion of the valve module 4001 is disposed substantially flush with the exterior wall of the housing.
[0491] Because the valve module is modular and accessible from the exterior of the housing, the valve module can be replaced without significant disassembly of the device 10 and without compromising the seal of the housing of the device. Because the valve module 4001 is substantially received within the housing, when the valve module is engaged with the housing, the valve module becomes integral with the housing and does not increase the size or bulk of the housing. Furthermore, the components of the valve module, such as the valve 4003 and valve manifold 4011 described below, are protected during use because they are positioned within the valve support 4051 and the main housing of the device. This configuration significantly reduces the likelihood that the valve module and components of the valve module will be damaged if the device 10 is inadvertently knocked or dropped.
[0492] The valve module includes a flow control valve 4003 arranged to control the flow of gas through a valve manifold 4011. The valve is arranged to control the flow of gas to a portion of the apparatus. For example, the valve may be arranged to control the flow of gas to a filter module 1001. Alternatively, the valve 4003 may be arranged to control the flow of gas to another portion of the apparatus. The valve module 4001 and the filter module 1001 are positioned upstream of the blower 402 and the motor and / or sensor module 400. In some embodiments, the valve module 4001 and the filter module 1001 are positioned downstream of the blower 402.
[0493] Valve 4003 includes a cylindrical body 4005 and a valve member within the body.
[0494] The flow control valves may be, for example, solenoid valves, motor driven, or piezo operated.
[0495] In a solenoid valve, a valve member is actuated between an open and a closed position. A solenoid valve may be a proportional valve: the amount of gas flow through the valve (i.e. due to the valve opening size) is a function of the current supplied to the valve.
[0496] Alternatively, a solenoid valve may be controlled by a modulated input signal such that the valve is modulated between open and closed positions.
[0497] The valve 4003 can be a needle valve, a plunger valve, a gate valve, a ball valve, a butterfly valve, a globe valve, etc. The valve can be of the pressure compensated type.
[0498] In some configurations, the valve is a normally closed valve, i.e., the valve is closed when power is turned off, thereby preventing the connected gas supply line from constantly venting oxygen or other gases when the device is turned off. In some alternative configurations, the valve is a normally open valve.
[0499] In some configurations, the valve 4003 is an electrically actuated proportional solenoid valve. For example, the valve may be a μProp valve available from Staiger GmbH & Co. KG, Erligheim, Germany, or an Asco 202 series Preciflow valve available from Emerson / Asco Valves, New Jersey, or any other suitable type of valve.
[0500] The valve may have a coaxial inlet-outlet configuration.
[0501] The valve module 4001 includes a valve manifold 4011 having a body 4013 that defines a gas flow path 4015 between a valve manifold gas inlet 4017 and one or more valve manifold gas outlets 4019. The valve manifold gas inlet 4017 is axially disposed at or toward an end of the valve manifold. In some configurations, the valve manifold 4011 has a single gas outlet 4019 that is radially disposed about the valve manifold. In some configurations, the valve manifold 4011 includes multiple valve manifold gas outlets 4019 that are radially disposed about the valve manifold. The valve manifold outlets 4019 are positioned to deliver gas from the valve manifold gas inlet 4017 to the gas inlet of the filter module 1001. The radial positioning of the outlet(s) 4019 helps direct oxygen (or other gases) toward the filter module, minimizing oxygen loss and increasing draw efficiency. The valve 4003 is positioned to control the flow of gas from a valve manifold gas inlet 4017 to one or more valve manifold gas outlets 4019. When the valve is "closed", gas flow is prevented from the gas inlet 4017 to the one or more gas outlets 4019. When the valve is "open", gas flow is allowed from the gas inlet 4017 to the one or more gas outlets 4019.
[0502] An end 4018 of the valve manifold 4011 opposite the gas inlet receives and sealingly engages the valve 4003 such that the valve and the valve manifold are in fluid communication. The end 4018 includes a flange 4023 for attachment to the valve. The flange 4023 has an aperture 4023A that receives a fastener 4023F for fastening the manifold to the valve 4003. One or more O-rings are provided around the periphery of the interface between the valve 4003 and the valve manifold 4011 to sealingly engage the valve with the valve manifold.
[0503] The valve manifold 4011 directs / disperses the oxygen from the valves through radially arranged gas outlets 4019. In some embodiments, a single gas outlet 4019 is provided in the valve manifold. As the oxygen passes through the outlet or outlets, noise is generated. Because respirators may be used in close proximity to the patient in medical and / or home environments, it is desirable to minimize the noise generated.
[0504] Additionally or alternatively, a hood, duct, or channel may be formed around, near, or in fluid communication with one or more of the valve manifold outlets 4019 to reduce noise. Additionally and / or alternatively, foam or the like may be placed around the valve manifold and near the valve manifold outlets to reduce noise.
[0505] A small filter is provided within the inlet of the valve manifold gas inlet 4017 to prevent dust or particulates from being introduced into the valve.
[0506] The end of the valve manifold corresponding to the gas inlet 4015 is arranged to receive and connect to the connector 4031. In the form shown, the connector 4031 is a swivel connector. Alternatively, the connector 4031 may be arranged such that the gas inlet 4033 of the connector can move in a different manner, for example, a translational or pivotal motion.
[0507] The valve module 4001 is located at the beginning of the device's flow path. If the valve 4003 becomes blocked (i.e., by dust, particulates, etc.), excess pressurized oxygen or other gas is "bulked out" from one or more ambient air inlet openings in the valve support 4051 so that it remains open (e.g., in FIG. 20, the openings are shown just below the swivel connector). This prevents any excess pressure from reaching the patient. As such, the system can be considered inherently pressure limited without the use of a pressure relief valve.
[0508] One or more openings 4051O are provided in the valve support 4051 to draw ambient air into the gas flow path of the device. The ambient air flow path passes near or adjacent to the valve. In the illustrated embodiment, the openings 4051O are located around the gas inlet of the swivel connector. Additionally or alternatively, the openings are located elsewhere in the valve support. When the blower motor 402 of the device is operated, suction is created through the filter module and the valve module, drawing ambient air into the device. The ambient air flow path passes through the valve module and allows ambient air to be sucked in along with the gas flow from the flow control valve. The ambient air flow path has a gas outlet adapted to supply ambient air so that the ambient air flows past one or more temperature sensors of the device to supply the gas flow.
[0509] The device may simultaneously draw gas and ambient air from a gas inlet of the valve manifold, or may pressurize gas from the gas inlet to force the gas through the filter. Gas flows out of the valve module and into the gas inlet in the filter. The device may be configured such that gas and ambient air from the gas inlet are dynamically drawn into / mixed in the device before being delivered to a gas outlet of the device.
[0510] The valve module may be configured to minimize pressure drop across the valve module to minimize turbulence and smooth the flow by having one or more of: large openings 4051O for ambient air located around the swivel connector and / or anywhere else; rounded / rounded / beveled edges in the flow path (i.e., for example, in the valve manifold).
[0511] The valve module 4001 described herein is positioned to mate directly with the filter 1001 to provide a gas flow path from the valve module to the filter. No hose connections are required between the valve module and the filter module. This minimizes component size and simplifies connection and disconnection of the modular valve module and filter module.
[0512] The filter and valve modules described herein may provide various gas flow paths to the device. For example, the valve module may control the flow of oxygen through the valve and filter modules and into the gas flow paths of the device. Alternatively, the valve module may be bypassed by direct connection of an alternative oxygen source to the filter module via the first subcompartment gas inlet (e.g., inlet 1011 of FIG. 20). This may be practical in situations where a user wishes to manually adjust the oxygen source (i.e., via a wall-fed rotameter, etc.).
[0513] It will be appreciated that the filter modules and valve modules described herein may be used separately in an apparatus for providing a flow of gas, or alternatively, the filter and valve modules may be used together as a filter and valve assembly for enhanced functionality.
[0514] In the illustrated configuration, the device 10 receives oxygen by at least one of the following: via a valve module (automatic oxygen adjustment by the device) or via an alternative gas inlet provided on top of the filter (allowing attachment of a manually adjustable oxygen source - i.e. by a wall-fed rotameter, etc.).
[0515] The various configurations described are merely example configurations: any one or more features from any of the configurations may be used in combination with any one or more features from any of the other configurations.
[0516] For example, a swivel connector used in a valve module may have additional functionality. In some configurations, the swivel connector may be arranged to swivel about two or more axes, and may have, for example, two adjacent swivel connection portions with axes of rotation perpendicular to one another, so that the gas inlet of the swivel connector can rotate about two axes. In some configurations, the swivel connector may include a ball joint arrangement or the like, allowing the gas inlet of the swivel connector to rotate in substantially any direction. In some configurations, the swivel connector may be arranged to provide both swivel rotational and translational motion, such that the swivel connector gas inlet may swivel about, for example, one or more axes, and also move linearly. This may be useful, for example, to translate the gas inlet from one part of a device to another, such as from one side of the device to the other side of the device. In some configurations, the gas inlet may be arranged to translate instead of rotate.
[0517] As another example, the motor and / or sensor subassembly recesses are described as being on the underside of the main housing, but could instead be on the rear, side, front or top of the housing. In such variations, the air and / or oxygen inlets could also be positioned differently as needed.
[0518] As another example, rather than being configured so that the liquid chamber is inserted into and removed from the chamber space from the front of the housing, the configuration may be such that the liquid chamber is inserted into and removed from the chamber space from the side, rear or top of the housing.
[0519] 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, either or both of those components may be inserted into any suitable portion of the housing, either at the top, bottom, side, front or rear.
[0520] The filter and valve modules are described with reference to a flow therapy device capable of delivering heated and humidified gas to a patient or user. The device may be suitable for treating chronic obstructive pulmonary disease (COPD). The device may be configured to deliver gas to a patient interface at high flow rates (high flow therapy), particularly nasal high flow therapy.
[0521] Alternatively, the filter module and / or valve module may be used in a device for different purposes. The device may be a high-flow therapy device or a low-flow therapy device. Features may also be provided in devices for providing continuous positive airway pressure (CPAP), which may deliver gas (humidified or otherwise) at positive pressure.
[0522] Alternatively, the filter module and / or valve module may be used with a device that does not require a humidifier, and thus does not require the features of the liquid chamber 300 or chamber space 108. For example, it will be understood that the configuration for isolating the motor and gas flow path from the electrical and electronic components has broad application in other types of gas delivery devices.
[0523] The term "flow therapy device" is intended to encompass all such variations.
[0524] [Item 1] 1. A respiratory assistance apparatus comprising: a flow generator configured to provide a respiratory gas to a patient, the respiratory gas including supplemental oxygen provided from an oxygen source; a controller configured to control the oxygen concentration of the breathing gas; at least one sensor configured to provide a measurement indicative of a blood oxygen level of the patient to the controller; Including, the controller is configured to identify a target oxygen concentration of the breathing gas; The controller estimates future values of blood oxygen levels of the patient by: a difference between an initial oxygen concentration of the respiratory gas and the target oxygen concentration of the respiratory gas; the measurement indicative of the patient's blood oxygen level; The respiratory assistance device is configured to calculate based on: [Item 2] 2. The respiratory assistance device of claim 1, wherein the controller is configured to control the oxygen concentration of the respiratory gas based on the target oxygen concentration. [Item 3] 3. A respiratory assistance device as described in item 1 or 2, wherein the estimated future value of the patient's blood oxygen concentration is further based on the time from when the controller controls the oxygen concentration of the respiratory gas to the target oxygen concentration. [Item 4] 4. A respiratory assistance device as described in any one of items 1 to 3, wherein the controller is configured to receive an input and identify a target oxygen concentration of the respiratory gas based on the input. [Item 5] 5. The respiratory assistance device of claim 4, wherein the input includes a target oxygen concentration range including an upper target oxygen concentration limit and a lower target oxygen concentration limit. [Item 6] 6. The respiratory assistance device of any one of claims 1 to 5, wherein the controller is configured to compare the estimated future value of the patient's blood oxygen level with a blood oxygen level alarm threshold and / or a blood oxygen level alarm range, and to generate an alarm output if the estimated future value of the patient's blood oxygen level is not within the blood oxygen level alarm range. [Item 7] 7. The respiratory assistance device of claim 6, wherein the blood oxygen concentration alarm range includes an upper blood oxygen concentration alarm threshold limit and a lower blood oxygen concentration alarm threshold limit. [Item 8] 8. A respiratory assistance device as described in item 6 or 7, wherein the blood oxygen concentration alarm threshold is determined based on the time from when the controller controls the oxygen concentration of the respiratory gas to the target oxygen concentration. [Item 9] The respiratory assistance device according to any one of items 6 to 8, wherein the alarm threshold value can be determined based on an amount of change in a target oxygen concentration. [Item 10] 10. The respiratory assistance device according to any one of claims 6 to 9, wherein the alarm threshold may be a specified or target oxygen concentration. [Item 11] 11. The respiratory assistance device according to any one of items 6 to 10, wherein the alarm threshold value may be a specified current oxygen concentration of a gas. [Item 12] 12. The respiratory assistance device according to any one of items 6 to 11, wherein the alarm threshold is based on the target blood oxygen concentration. [Item 13] 13. The respiratory assistance device of any one of claims 6 to 12, wherein the controller is configured to generate an alarm output based on a comparison of the estimated future value of the patient's blood oxygen concentration and a blood oxygen concentration alarm threshold. [Item 14] 14. The respiratory assistance device of claim 13, wherein the controller is configured to generate the alarm output if the estimated future value of the patient's blood oxygen concentration is above or below the blood oxygen concentration threshold. [Item 15] 15. The respiratory assistance apparatus of claim 14, wherein the alarm threshold is based on the time from when the controller controls the oxygen concentration of the respiratory gas to the target oxygen concentration. [Item 16] Item 16. The respiratory assistance apparatus of any one of items 1 to 15, wherein the input includes a target blood oxygen level, and the blood oxygen level alarm range is based on the target blood oxygen level. [Item 17] 17. The respiratory assistance apparatus of claim 16, wherein the blood oxygen concentration threshold and / or blood oxygen concentration alarm range is based on the difference between the target oxygen concentration and the target oxygen concentration upper limit. [Item 18] 1. A respiratory assistance apparatus comprising: a flow generator configured to provide a respiratory gas to a patient, the respiratory gas including supplemental oxygen provided from an oxygen source; at least one sensor configured to provide a measurement indicative of a blood oxygen level of the patient to a controller; a controller configured to receive an input, the input including a target oxygen concentration range including an upper target oxygen concentration limit and / or a lower target oxygen concentration limit; a controller configured to control an oxygen concentration of the breathing gas to a target oxygen concentration, the target oxygen concentration being within the target oxygen concentration range including an upper target oxygen concentration limit and a lower target oxygen concentration limit, the controller comprising: calculating an estimated maximum future value of the patient's blood oxygen level for the target oxygen level range based on the measurement indicative of the patient's blood oxygen level and a difference between the target oxygen level and the target oxygen level upper limit; or calculating an estimated minimum future value of the patient's blood oxygen level for the target oxygen level range based on the measurement indicative of the patient's blood oxygen level and a difference between the target oxygen level and the target oxygen level lower limit; a controller configured to: Respiratory support devices including: [Item 19] 20. The respiratory assistance apparatus of claim 18, wherein the controller is configured to control the oxygen concentration of the respiratory gas from an initial oxygen concentration to a target oxygen concentration. [Item 20] 20. A respiratory assistance apparatus as described in item 18 or 19, wherein the initial oxygen concentration is the oxygen concentration before the controller controls the oxygen concentration of the respiratory gas to the target oxygen concentration. [Item 21] 21. A respiratory assistance apparatus as claimed in any one of claims 18 to 20, configured to receive an input indicative of the target oxygen concentration range. [Item 22] 22. A respiratory assistance apparatus as described in item 21, wherein the target oxygen concentration range is input via a user interface. [Item 23] 23. The respiratory assistance device according to any one of items 18 to 22, wherein the estimated maximum future value and / or the estimated minimum future value is based on an estimated oxygen efficiency. [Item 24] 24. The respiratory assistance device according to any one of items 18 to 23, wherein the estimated maximum future value and / or the estimated minimum future value are updated in real time. [Item 25] 23. Respiratory assistance apparatus according to any one of items 18 to 22, wherein the maximum or minimum future value is after the effect of changes in oxygen concentration has been realised on the patient's blood oxygen. [Item 26] 1. A respiratory assistance apparatus comprising: a flow generator configured to provide a respiratory gas to a patient, the respiratory gas including supplemental oxygen provided from an oxygen source; at least one sensor configured to provide a measurement indicative of a blood oxygen level of the patient to a controller; Including, During operation of the device, the controller is configured to store respiratory gas oxygen concentration data, the stored respiratory gas oxygen concentration data including one or more oxygen concentrations of the respiratory gas, each oxygen concentration of the respiratory gas having an associated timestamp; The controller estimates future values of blood oxygen levels of the patient by: the stored respiratory gas oxygen concentration data, the oxygen concentration of the respiratory gas being weighted based on the associated time stamp; the measurement indicative of the patient's blood oxygen level; The respiratory assistance device is configured to calculate based on: [Item 27] The controller estimates future values of blood oxygen levels of the patient by: an estimated oxygen efficiency ratio for said patient; Hemoglobin Saturation Function 27. The respiratory assistance device of item 26, configured to calculate based on: [Item 28] 1. A respiratory assistance apparatus comprising: a flow generator configured to provide a respiratory gas to a patient, the respiratory gas including supplemental oxygen provided from an oxygen source; at least one sensor configured to provide a measurement indicative of a blood oxygen level of the patient to a controller; Including, During operation of the device, the controller is configured to store respiratory gas oxygen concentration data, the stored respiratory gas oxygen concentration data including one or more oxygen concentrations of the respiratory gas, each oxygen concentration of the respiratory gas having an associated timestamp; The controller calculates an estimated maximum future value of the patient's blood oxygen concentration by: the stored respiratory gas oxygen concentration data, the oxygen concentration of the respiratory gas being weighted based on the associated time stamp; the measurement indicative of the patient's blood oxygen level; the difference between the current oxygen concentration of the breathing gas and the target oxygen concentration upper limit; The respiratory assistance device is configured to calculate based on: [Item 29] The controller calculates an estimated maximum future value of the patient's blood oxygen concentration by: an estimated oxygen efficiency ratio for said patient; Hemoglobin Saturation Function 30. The respiratory apparatus of item 28, configured to calculate based on [Item 30] 1. A respiratory assistance apparatus comprising: a flow generator configured to provide a respiratory gas to a patient, the respiratory gas including supplemental oxygen provided from an oxygen source; at least one sensor configured to provide a measurement indicative of a blood oxygen level of the patient to a controller; Including, During operation of the device, the controller is configured to store respiratory gas oxygen concentration data, the stored respiratory gas oxygen concentration data including one or more oxygen concentrations of the respiratory gas, each oxygen concentration of the respiratory gas having an associated timestamp; The controller calculates an estimated maximum future value of the patient's blood oxygen concentration by: the stored respiratory gas oxygen concentration data, the oxygen concentration of the respiratory gas being weighted based on the associated time stamp; the measurement indicative of the patient's blood oxygen level; the difference between the oxygen concentration of the respiratory gas in the current estimation phase and a target oxygen concentration lower limit; The respiratory assistance device is configured to calculate based on: [Item 31] The controller estimates a minimum future value of the patient's blood oxygen concentration by: an estimated oxygen efficiency ratio for said patient; Hemoglobin Saturation Function 31. The respiratory assistance device of item 30, configured to calculate based on: [Item 32] 32. Respiratory assistance apparatus according to item 30 or 31, wherein the associated time stamp comprises the time at which the associated oxygen concentration of the respiratory gas was recorded and / or measured and / or stored. [Item 33] 33. A respiratory assistance apparatus according to any one of claims 30 to 32, wherein the associated timestamp comprises a time that has elapsed since the associated oxygen concentration of the respiratory gas was recorded and / or measured and / or stored. [Item 34] 34. A respiratory assistance device as claimed in any one of claims 30 to 33, wherein the controller is configured to identify a series of changes to the oxygen concentration of the respiratory gas in the stored respiratory gas oxygen concentration data. [Item 35] 35. The respiratory assistance apparatus according to any one of items 30 to 34, wherein the oxygen concentration of the respiratory gas is controlled to a target oxygen concentration of the respiratory gas. [Item 36] 35. The respiratory assistance apparatus according to any one of items 30 to 34, wherein the oxygen concentration of the respiratory gas is a measured oxygen concentration of the respiratory gas. [Item 37] 37. A respiratory assistance device as described in any one of items 30 to 36, comprising at least one gas composition sensor, the gas composition sensor configured to provide a measurement value indicative of the oxygen concentration of the respiratory gas to the controller. [Item 38] 38. A respiratory assistance device according to any one of items 30 to 37, wherein the controller is configured to update the stored oxygen concentration of the respiratory gas at regular or irregular time intervals. [Item 39] 39. A respiratory assistance device according to any one of items 30 to 38, wherein the controller is configured to update the stored oxygen concentration of the respiratory gas when a target oxygen concentration of the respiratory gas is updated by the controller. [Item 40] 40. A respiratory assistance device according to any one of claims 30 to 39, wherein the weighting based on the associated timestamp is based on a decay function. [Item 41] A respiratory assistance device according to any one of items 30 to 40, wherein the stored oxygen concentration data is transmitted to one or more servers or patient monitoring units and / or nurse monitoring stations in communication with the respiratory assistance device. [Item 42] 1. A respiratory assistance apparatus comprising: a flow generator configured to provide a respiratory gas to a patient, the respiratory gas including supplemental oxygen provided from an oxygen source; at least one sensor configured to provide a measurement indicative of a blood oxygen level of the patient to a controller; Including, the controller is configured to maintain a total change in respiratory gas oxygen concentration; The controller is configured to perform an estimation update phase, the estimation update phase comprising: applying a decay function to the sum of changes in the oxygen concentration of the respiratory gas; calculating a difference between the oxygen concentration of the respiratory gas in a current estimation update phase and the oxygen concentration of the respiratory gas in a previous estimation update phase; adding said difference to said sum of changes to said oxygen concentration of said respiratory gas. Including, The controller estimates future values of blood oxygen levels of the patient by: the sum of the changes in the oxygen concentration of the respiratory gas; and the measurement indicative of the patient's blood oxygen level; The respiratory assistance device is configured to calculate based on: [Item 43] The controller estimates future values of blood oxygen levels of the patient by: an estimated oxygen efficiency ratio for said patient; Hemoglobin Saturation Function Item 43. A respiratory assistance device as described in item 42, configured to calculate based on: [Item 44] 1. A respiratory assistance apparatus comprising: a flow generator configured to provide a respiratory gas to a patient, the respiratory gas including supplemental oxygen provided from an oxygen source; at least one sensor configured to provide a measurement indicative of a blood oxygen level of the patient to a controller; Including, the controller is configured to maintain a total change in respiratory gas oxygen concentration; The controller is configured to perform an estimation update phase, the estimation update phase comprising: applying a decay function to the sum of changes in the oxygen concentration of the respiratory gas; calculating a difference between the oxygen concentration of the respiratory gas in a current estimation update phase and the oxygen concentration of the respiratory gas in a previous estimation update phase; adding said difference to said sum of changes to said oxygen concentration of said respiratory gas. Including, The controller calculates an estimated maximum future value of the patient's blood oxygen concentration by: the sum of the changes in the oxygen concentration of the respiratory gas; and the measurement indicative of the patient's blood oxygen level; the difference between the oxygen concentration of the respiratory gas in the current estimation phase and a target upper oxygen concentration limit; The respiratory assistance device is configured to calculate based on: [Item 45] The controller calculates an estimated maximum future value of the patient's blood oxygen concentration by: an estimated oxygen efficiency ratio for said patient; Hemoglobin Saturation Function Item 45. The respiratory assistance device of item 44, configured to calculate based on: [Item 46] 1. A respiratory assistance apparatus comprising: a flow generator configured to provide a respiratory gas to a patient, the respiratory gas including supplemental oxygen provided from an oxygen source; at least one sensor configured to provide a measurement indicative of the blood oxygen level of the patient to a controller; Including, the controller is configured to maintain a total change in respiratory gas oxygen concentration; The controller is configured to perform an estimation update phase, the estimation update phase comprising: applying a decay function to the sum of changes in the oxygen concentration of the respiratory gas; calculating a difference between the oxygen concentration of the respiratory gas in a current estimation update phase and the oxygen concentration of the respiratory gas in a previous estimation update phase; adding said difference to said sum of changes to said oxygen concentration of said respiratory gas. Including, The controller may further comprise: the sum of changes in oxygen concentration of the respiratory gas; and the measurement indicative of the patient's blood oxygen level; the difference between the oxygen concentration of the respiratory gas in the current estimation phase and a target oxygen concentration lower limit; The respiratory assistance device is configured to calculate based on: [Item 47] The controller may further comprise: an estimated oxygen efficiency ratio for said patient; Hemoglobin Saturation Function 47. The respiratory assistance device of item 46, configured to calculate based on: [Item 48] 48. A respiratory assistance device according to any one of items 42 to 47, wherein the controller is configured to perform the estimation update phase at regular or irregular time intervals. [Item 49] 48. A respiratory assistance device according to any one of items 42 to 47, wherein the controller is configured to perform the estimation updates in real time. [Item 50] 48. A respiratory assistance apparatus according to any one of items 42 to 47, wherein the controller is configured to perform the estimation update phase periodically. [Item 51] 48. A respiratory assistance device according to any one of items 42 to 47, wherein the controller is configured to perform the estimation update phase when a target oxygen concentration of the respiratory gas is updated by the controller. [Item 52] 52. The respiratory assistance apparatus according to any one of claims 42 to 51, wherein the controller is configured to control the oxygen concentration of the respiratory gas to a target oxygen concentration. [Item 53] 48. The respiratory assistance apparatus according to any one of items 42 to 47, wherein the oxygen concentration of the respiratory gas is controlled to a target oxygen concentration of the respiratory gas. [Item 54] 54. The respiratory assistance apparatus according to any one of claims 42 to 53, wherein the oxygen concentration of the respiratory gas is a measured oxygen concentration of the respiratory gas. [Item 55] 55. A respiratory assistance device as described in any one of items 1 to 54, comprising at least one gas composition sensor, the gas composition sensor configured to provide a measurement value indicative of the oxygen concentration of the respiratory gas to the controller. [Item 56] 56. The respiratory assistance device of any one of claims 1 to 55, wherein the controller is configured to update a target oxygen concentration of the respiratory gas and control the oxygen concentration of the respiratory gas from an initial oxygen concentration to the target oxygen concentration. [Item 57] 57. The respiratory assistance device according to any one of claims 1 to 56, wherein the target oxygen concentration is provided by an oxygen concentration controller. [Item 58] 58. The respiratory assistance device according to any one of claims 1 to 57, wherein the or a certain input further includes the target blood oxygen concentration. [Item 59] Item 59. The respiratory assistance device according to any one of items 1 to 58, wherein the or a target blood oxygen concentration is a range. [Item 60] 60. The respiratory assistance device of claim 59, wherein the target blood oxygen concentration includes a target upper blood oxygen concentration limit and / or a target lower blood oxygen concentration limit. [Item 61] 61. A respiratory assistance apparatus as described in item 59 or 60, wherein the controller is configured to identify the target oxygen concentration based on a midpoint of a target blood oxygen concentration range. [Item 62] 62. The respiratory assistance device according to any one of items 59 to 61, wherein the controller is configured to control the target blood oxygen concentration to be within the target blood oxygen concentration upper limit and the target blood oxygen concentration lower limit. [Item 63] Item 3. A respiratory assistance device according to any one of items 1 to 62, wherein the controller is configured to vary the target oxygen concentration to control the patient's blood oxygen concentration to the target blood oxygen concentration. [Item 64] Item 64. A respiratory assistance device as described in any one of items 1 to 63, wherein the controller is configured to vary the amount of supplemental oxygen provided to the respiratory gas from an oxygen source to control the oxygen concentration of the respiratory gas. [Item 65] 65. A respiratory assistance device according to any one of the preceding claims, comprising at least one valve device. [Item 66] Item 66. Respiratory assistance apparatus according to item 65, wherein the valve device is in fluid communication with a blower. [Item 67] 67. Respiratory assistance apparatus according to item 65 or 66, wherein the valve device may be controllable to regulate the amount of oxygen introduced into the gas flow. [Item 68] Item 68. The respiratory assistance device of any one of items 1 to 67, wherein the controller is configured to generate an alarm output. [Item 69] 69. A respiratory assistance device as described in item 68, wherein the alarm output may be transmitted to one or more servers in communication with the respiratory assistance device or to a patient monitoring unit and / or a nurse monitoring station. [Item 70] 70. A respiratory assistance device as described in item 68 or 69, wherein the alarm output includes at least one alarm parameter. [Item 71] 71. The respiratory assistance device of any one of items 68 to 70, wherein the controller is configured to generate the alarm output based on the estimated future value of the patient's blood oxygen concentration and / or the estimated maximum or minimum future value of the patient's blood oxygen concentration. [Item 72] 71. The respiratory assistance device of claim 70, wherein the controller is configured to compare the estimated maximum future value of the patient's blood oxygen concentration with the target blood oxygen concentration upper limit, and generate the alarm output if the estimated maximum future value of the patient's blood oxygen concentration falls below the target blood oxygen concentration upper limit. [Item 73] 72. The respiratory assistance device according to any one of items 68 to 71, wherein an alarm parameter of the alarm output is based on the magnitude of the difference between the estimated maximum future value of the patient's blood oxygen concentration and the target upper blood oxygen concentration limit. [Item 74] The respiratory assistance device of any one of items 68 to 72, wherein the controller is configured to compare the estimated minimum future value of the patient's blood oxygen concentration with the target blood oxygen concentration lower limit, and to generate an alarm output if the estimated minimum future value of the patient's blood oxygen concentration falls below the target blood oxygen concentration lower limit. [Item 75] 75. The respiratory assistance device of any one of claims 70 to 74, wherein an alarm parameter of the alarm output is based on the magnitude of the difference between the estimated minimum future value of the patient's blood oxygen concentration and the target blood oxygen concentration lower limit. [Item 76] 76. The respiratory assistance apparatus according to any one of items 70 to 75, wherein the alarm parameter is an alarm time or an alarm intensity. [Item 77] 77. The respiratory assistance device of any one of items 70 to 76, wherein the alarm output is provided on a display. [Item 78] 78. The respiratory assistance device of any one of items 70 to 77, wherein the alarm output is configured to present a message on a display. [Item 79] 79. The respiratory assistance device of any one of claims 70 to 78, wherein the alarm output is configured to generate an audio signal or provide a display. [Item 80] A respiratory assistance device according to any one of items 1 to 79, wherein the or at least one sensor is in electrical communication with the controller. [Item 81] 81. A respiratory assistance device as described in item 80, wherein the at least one sensor is a pulse oximeter or an arterial blood oxygen sensor. [Item 82] 82. A respiratory assistance device according to any one of the preceding claims, further comprising a gas composition sensor. [Item 83] 83. A respiratory assistance apparatus as described in item 82, wherein the gas composition sensor is in electrical communication with the controller. [Item 84] Item 84. Respiratory assistance apparatus according to item 82 or 83, wherein the gas composition sensor is an oxygen concentration sensor configured to measure the oxygen concentration of the respiratory gas. [Item 85] 85. A respiratory assistance apparatus as described in any one of items 82 to 84, wherein the at least one gas composition sensor provides a signal indicative of the initial oxygen concentration of the respiratory gas. [Item 86] Item 84 or 85. A respiratory assistance apparatus as described in item 84 or 85, wherein the controller is configured to receive an oxygen concentration signal from the oxygen concentration sensor indicative of the oxygen concentration of the respiratory gas. [Item 87] 87. A respiratory assistance device according to any one of items 82 to 86, wherein the controller is configured to control the oxygen concentration of the respiratory gas based on the oxygen concentration signal from the oxygen concentration sensor. [Item 88] A respiratory assistance device as described in any one of items 1 to 87, wherein the controller includes one or more processors, the processors being configured with computer-readable instructions. [Item 89] A respiratory assistance device as described in any one of items 1 to 88, wherein the controller includes at least one memory element, the memory element being configured to store the computer-readable instructions. [Item 90] 90. A respiratory assistance device as described in claim 89, wherein the memory element is non-transient. [Item 91] 89. A respiratory assistance device according to any one of claims 1 to 88, wherein the flow generator is or includes a blower module, the blower module including at least one blower configured to generate the flow of gas. [Item 92] 89. A respiratory assistance device according to any one of items 1 to 88, comprising at least one display configured to display the or an alarm output. [Item 93] Item 93. A respiratory assistance device as described in item 92, wherein the display includes at least one screen. [Item 94] Item 89. A respiratory assistance device according to any one of items 1 to 88, comprising at least one sound generating device configured to output an audible sound. [Item 95] A system comprising a respiratory assistance device, a conduit and a user interface as described in any one of items 1 to 94. [Item 96] 1. A method of estimating a future value of a blood oxygen concentration of a patient, comprising: providing a respiratory gas having an initial target oxygen concentration to the patient; measuring the blood oxygen level of the patient; providing a respiratory gas having a target oxygen concentration to the patient; calculating a future value of the patient's blood oxygen level based on the patient's blood oxygen level and a difference between an initial target oxygen level and the target oxygen level. The method includes: [Item 97] 1. A method for estimating a maximum future value of a patient's blood oxygen concentration relative to a target oxygen concentration range, comprising: measuring a blood oxygen level of the patient; providing a respiratory gas having an oxygen concentration to the patient; calculating a maximum future value of the patient's blood oxygen level based on the patient's blood oxygen level and a difference between a target oxygen level upper limit of the target oxygen level range and the oxygen level of the respiratory gas; The method includes: [Item 98] 1. A method for estimating a minimum future value of a patient's blood oxygen concentration relative to a target oxygen concentration range, comprising: measuring a blood oxygen level of the patient; providing a respiratory gas having an oxygen concentration to the patient; calculating a minimum future value of the patient's blood oxygen concentration based on the patient's blood oxygen concentration and a difference between a target oxygen concentration lower limit of the target oxygen concentration range and the oxygen concentration of the respiratory gas. The method includes: [Item 99] 1. A method of estimating a future value of a blood oxygen concentration of a patient, comprising: providing a respiratory gas to the patient; storing respiratory gas oxygen concentration data during operation of the apparatus, the stored respiratory gas oxygen concentration data comprising a plurality of oxygen concentrations of the respiratory gas, each oxygen concentration of the respiratory gas having an associated timestamp; measuring a blood oxygen level of the patient; The estimated future value of the blood oxygen concentration of the patient, the stored respiratory gas oxygen concentration data, the oxygen concentration of the respiratory gas being weighted based on the associated time stamp; a measurement indicative of the patient's blood oxygen level; Steps for calculating based on The method includes: [Item 100] 1. A method for estimating an estimated maximum future value of a blood oxygen concentration of a patient, comprising: providing a respiratory gas to the patient; storing respiratory gas oxygen concentration data during operation of the device, the stored respiratory gas oxygen concentration data including one or more oxygen concentrations of the respiratory gas, each oxygen concentration of the respiratory gas having an associated timestamp; measuring a blood oxygen level of the patient; An estimated maximum future value of the patient's blood oxygen concentration; the stored respiratory gas oxygen concentration data, the respiratory gas oxygen concentration being weighted based on the associated time stamp; a measurement indicative of the patient's blood oxygen level; the difference between the current oxygen concentration of the breathing gas and the target oxygen concentration upper limit; Steps for calculating based on The method includes: [Item 101] 1. A method for estimating an estimated minimum future value of a blood oxygen concentration of a patient, comprising: providing a respiratory gas to the patient; storing respiratory gas oxygen concentration data during operation of the device, the stored respiratory gas oxygen concentration data including one or more oxygen concentrations of the respiratory gas, each oxygen concentration of the respiratory gas having an associated timestamp; measuring a blood oxygen level of the patient; a predicted minimum future value of the patient's blood oxygen concentration; the stored respiratory gas oxygen concentration data, the stored respiratory gas oxygen concentration data being weighted based on the associated time stamp; a measurement indicative of the patient's blood oxygen level; the difference between the oxygen concentration of the respiratory gas in the current estimation phase and a target oxygen concentration lower limit; Steps for calculating based on The method includes: [Item 102] 1. A method of estimating a future value of a blood oxygen concentration of a patient, comprising: providing a respiratory gas to the patient; maintaining a total change in respiratory gas oxygen concentration; performing an estimation update phase, said estimation update phase comprising: applying a decay function to the sum of changes in the oxygen concentration of the respiratory gas; calculating a difference between the oxygen concentration of the respiratory gas in a current estimation update phase and the oxygen concentration of the respiratory gas in a previous estimation update phase; adding said difference to said sum of changes in said oxygen concentration of said respiratory gas. Including steps The method includes: [Item 103] The controller estimates a future value of the blood oxygen level of the patient by: the sum of the changes in the oxygen concentration of the respiratory gas; and the measurement indicative of the patient's blood oxygen level; The method according to item 101 or 102, wherein the method is configured to calculate based on [Item 104] The controller calculates an estimated maximum future value of the patient's blood oxygen concentration by: the sum of the changes in the oxygen concentration of the respiratory gas; and the measurement indicative of the patient's blood oxygen level; the difference between the oxygen concentration of the respiratory gas in the current estimation phase and a target upper oxygen concentration limit; The method according to any one of items 101 to 103, wherein the method is configured to calculate based on [Item 105] The controller estimates a minimum future value of the patient's blood oxygen concentration by: the sum of the changes in the oxygen concentration of the respiratory gas; and the measurement indicative of the patient's blood oxygen level; the difference between the oxygen concentration of the respiratory gas in the current estimation phase and a target oxygen concentration lower limit; The method according to any one of items 101 to 104, wherein the method is configured to calculate based on [Item 106] A flow therapy device used to provide the method according to any one of items 96 to 105. [Item 107] Use of a flow therapy device, including for providing a method according to any one of items 96 to 105. [Item 108] The flow therapy device or use of a flow therapy device according to item 106 or 107, wherein the flow therapy device is a device according to any one of items 1 to 95.
Claims
1. A respiratory assistance device, comprising: a flow generator configured to provide a breathing gas to a patient, the breathing gas including supplemental oxygen provided from an oxygen source; at least one sensor configured to provide a measurement indicative of the patient's blood oxygen level to a controller; Including, During operation of the device, the controller is configured to store respiratory gas oxygen concentration data, the stored respiratory gas oxygen concentration data including one or more oxygen concentrations of the respiratory gas, each of the oxygen concentrations of the respiratory gas in the stored respiratory gas oxygen concentration data having an associated timestamp; The controller calculates an estimated future value of the patient's blood oxygen level by: the stored respiratory gas oxygen concentration data, wherein each of the respiratory gas oxygen concentrations in the stored respiratory gas oxygen concentration data is weighted based on the associated time stamp; the measurement indicative of the patient's blood oxygen level; 11. A respiratory assistance device configured to calculate based on:
2. The controller is configured to: an estimated oxygen efficiency ratio for said patient; Hemoglobin Saturation Function 2. The respiratory assistance device of claim 1, configured to calculate based on:
3. The estimated future value of the patient's blood oxygen concentration is an estimated maximum future value; The controller may further calculate the estimated maximum future value of the patient's blood oxygen level by: the stored respiratory gas oxygen concentration data, wherein the oxygen concentrations of one or more of the respiratory gases in the stored respiratory gas oxygen concentration data are weighted based on the associated time stamp; the measurement indicative of the patient's blood oxygen level; the difference between the current oxygen concentration of the breathing gas and a target upper oxygen concentration limit; 3. A respiratory assistance device as claimed in claim 1 or 2, configured to calculate based on:
4. The estimated future value of the patient's blood oxygen concentration is an estimated minimum future value; The controller may further calculate the estimated minimum future value of the patient's blood oxygen level by: the stored respiratory gas oxygen concentration data, wherein the oxygen concentrations of one or more of the respiratory gases in the stored respiratory gas oxygen concentration data are weighted based on the associated time stamp; the measurement indicative of the patient's blood oxygen level; the difference between the oxygen concentration of the respiratory gas in the current estimation phase and a target oxygen concentration lower limit; 3. A respiratory assistance device as claimed in claim 1 or 2, configured to calculate based on:
5. The associated timestamps include the times at which each of the one or more oxygen concentrations of the respiratory gases in the stored respiratory gas oxygen concentration data was recorded and / or measured and / or stored; and / or 5. A respiratory assistance device as claimed in any one of claims 1 to 4, wherein the stored respiratory gas oxygen concentration data includes the time elapsed since each of the one or more oxygen concentrations of the respiratory gas was recorded and / or measured and / or stored.
6. A respiratory assistance device as described in any one of claims 1 to 5, wherein the controller is configured to identify a series of changes in each of the oxygen concentrations of one or more of the respiratory gases in the stored respiratory gas oxygen concentration data.
7. A respiratory assistance device as described in any one of claims 1 to 6, wherein the oxygen concentration of the respiratory gas is controlled to a target oxygen concentration of the respiratory gas.
8. A respiratory assistance device as described in any one of claims 1 to 7, wherein each of the one or more oxygen concentrations of the respiratory gas in the stored respiratory gas oxygen concentration data is a measured oxygen concentration of the respiratory gas.
9. A respiratory assistance device as described in any one of claims 1 to 8, comprising at least one gas composition sensor, the gas composition sensor configured to provide the controller with a measurement value indicative of the oxygen concentration of the respiratory gas.
10. A respiratory assistance device as described in any one of claims 1 to 9, wherein the controller is configured to update each of the oxygen concentrations of one or more of the respiratory gases in the stored respiratory gas oxygen concentration data at regular or irregular time intervals.
11. A respiratory assistance device as described in any one of claims 1 to 10, wherein the controller is configured to update each of the one or more oxygen concentrations of the respiratory gas in the stored respiratory gas oxygen concentration data when the target oxygen concentration of the respiratory gas is updated by the controller.
12. A respiratory assistance device as described in any one of claims 1 to 11, wherein the weighting based on the associated timestamp is based on a decay function.
13. A respiratory assistance device as described in any one of claims 1 to 12, wherein the stored respiratory gas oxygen concentration data is transmitted to one or more servers or patient monitoring units and / or nurse monitoring stations that communicate with the respiratory assistance device.
14. A respiratory assistance device as described in any one of claims 1 to 13, wherein the controller is configured to generate an alarm output based on the estimated future value of the patient's blood oxygen concentration.
15. A respiratory assistance apparatus as described in claim 14, wherein the respiratory assistance apparatus or associated device is configured to display the alarm output or information related to the alarm output, and / or the alarm output is transmitted to one or more servers or patient monitoring units and / or nurse monitoring stations in communication with the respiratory assistance apparatus.