Respiratory assistance
Patent Information
- Application Number
- JP2025176469
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2020-07-08
- Filing Date
- 2025-10-20
- Publication Date
- 2026-02-24
AI Technical Summary
High-flow respiratory support can mask a patient's deterioration, potentially delaying the escalation of care and increasing mortality and hospital stays, necessitating a method to determine when to escalate respiratory support and assess the patient's respiratory status for better decision-making.
A method and apparatus that assess a patient's respiratory status by receiving patient parameters, determining a respiratory index over time, and implementing changes in respiratory assistance based on trends in the index, using sensors and a controller to evaluate respiratory status and support adjustments.
Enables timely escalation or de-escalation of respiratory support, improving patient outcomes by providing clinicians with accurate respiratory status assessments and facilitating appropriate therapeutic interventions.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to devices, systems and / or methods that use respiratory indices to determine aspects of respiration, including, but not limited to, respiratory indices, respiratory status and / or changes in respiratory assistance (e.g., based on the respiratory indices and / or status). [Background technology]
[0002] High-flow respiratory support is common and commonly used. It has become the first-line therapy for patients with respiratory distress. High-flow respiratory support is also used to support patients whose respiratory systems are compromised (including patients with conditions such as COPD, pulmonary fibrosis, and asthma).
[0003] High-flow respiratory support can be an oxygenation tool for patients with respiratory distress or failure. It can also increase the amount of O2 delivered due to the fact that high flow can prevent entrainment of room air. However, a high O2 ratio (high FiO2) can potentially mask a patient's deterioration and delay escalation of care.
[0004] Patients can be escalated to, for example, mechanical ventilation or non-invasive ventilation. Although the risks of invasive mechanical ventilation are well understood, delayed ventilation can result in longer hospital stays and increased mortality. Summary of the Invention [Problem to be solved by the invention]
[0005] Therefore, it may be desirable to determine when to escalate respiratory support. Additionally, it may be desirable to determine the patient's respiratory status to enable clinicians to make better decisions for the patient. [Means for solving the problem]
[0006] In one aspect, the present disclosure may be expressed as including a method of assessing a patient receiving NHF respiratory assistance and, if necessary, changing the respiratory assistance based on the assessment, the method including receiving one or more patient parameters for the patient having at least an oxygenation parameter from one or more sensors; determining, in a controller, a respiratory index at multiple time points; determining, from a trend of the respiratory index over time, whether a change in respiratory assistance is needed; and, if so, implementing the change in respiratory assistance.
[0007] In another aspect, the present disclosure may be expressed as including a method of treating a patient with a respiratory assistance device, the method including the steps of receiving one or more patient parameters of the patient, having at least an oxygenation parameter, from one or more sensors; determining a respiratory index at a plurality of time points in a controller; determining from a trend of the respiratory index over time whether a change in respiratory assistance is required; and, if so, implementing the change in respiratory assistance.
[0008] Optionally, the respiratory index is a ROX index.
[0009] Optionally, a respiratory index is determined from one or more pulmonary function parameters and one or more oxygenation parameters.
[0010] Optionally, the pulmonary function parameter is a parameter indicative of pulmonary function, such as respiratory rate, expiratory time, minute ventilation, etc.
[0011] Optionally, the oxygenation parameter / oxygenation exchange parameter is a parameter indicative of oxygenation, such as SpO2, FiO2, FdO2, O2 ratio, etc. Although different, FiO2, FdO2, and O2 ratio can be close surrogate measurements of each other and may be used interchangeably where appropriate.
[0012] Optionally, the evaluation phase: assessing respiratory status and determining whether it is normal, abnormal, worsening, stable, improving, or the like; assessing whether a change in respiratory support is required (as a result of assessing respiratory status); If a change is needed, assessing the change in respiratory support needed (e.g., escalation, de-escalation, increase or decrease in high-flow therapy, escalation to NIV or invasive ventilation, de-escalation from NIV or invasive ventilation, or the like); may include one or more of:
[0013] Optionally, the change in respiratory support phase comprises: indicating any of the results of the above-mentioned evaluation phases, for example by means of an alert, alarm, message or other indication; and / or Implementing any of the changes determined in the evaluation phase may include:
[0014] Optionally, the evaluation phase: Clinicians only, one or more assessments, therapies and / or other devices without the involvement of a clinician; or Both the clinician and one or more devices It can be implemented by:
[0015] Optionally, the respiratory support phase comprises: Clinicians only, one or more assessments, therapies and / or other devices without the involvement of a clinician; or Both the clinician and one or more devices It can be implemented by:
[0016] In another aspect, the present disclosure may be expressed as including a method of assessing a patient receiving respiratory assistance during a session to determine a respiratory status, the method including the steps of receiving one or more patient parameters of the patient including at least one respiratory parameter from one or more sensors for a plurality of time points, determining in a controller for each time point from the one or more patient parameters a respiratory index and / or one or more component parameters and a change in the respiratory index and / or one or more component parameters over time, and determining the patient respiratory status from the change in the respiratory index and / or one or more component parameters over time.
[0017] Optionally, the patient is receiving respiratory assistance, and optionally the respiratory assistance is high-flow, non-invasive pressure respiratory assistance.
[0018] In one aspect, the present disclosure may be expressed as including a method according to any preceding claim, wherein a clinician determines a patient's respiratory condition as "at risk but improving" if the ROX index is below a threshold but the ROX index change indicator indicates a trend toward lower risk.
[0019] Optionally, if the clinician determines the patient's respiratory status to be "at risk but improving," the evaluation device provides an indication, such as an early alarm or display message, that the patient is at risk but improving.
[0020] Optionally, the clinician determines the patient's respiratory status as "at risk and deteriorating" if the ROX is below a threshold and the ROX index change indicator indicates a trend toward higher risk.
[0021] Optionally, if the clinician determines the patient's respiratory condition to be "at risk and deteriorating," the assessment device provides an indication, such as an alarm and a display message, indicating that the patient is at risk and deteriorating.
[0022] Optionally, the clinician determines the patient's respiratory status as "not at risk but deteriorating" if the ROX index is above the threshold but the ROX index change indicator indicates a trend toward higher risk.
[0023] Optionally, if the clinician determines the patient's respiratory status to be "not at risk but deteriorating," the evaluation device provides an indication, such as a silent alarm, and then a loud alarm if / when the ROX index drops below a threshold.
[0024] Optionally, the clinician determines the patient's respiratory status as "stable" if the respiratory rate has an upward trend (above a threshold slope or other change indicator) but the SpO2 is stable, and a message is displayed on the screen.
[0025] Optionally, the clinician determines the patient's respiratory condition to be "worsening" if the respiratory rate has an upward trend (by more than a threshold slope or other change indicator) and the SpO2 has a downward trend, and an alarm is activated.
[0026] Optionally, the clinician determines the patient's respiratory status from the ROX index in comparison to one or more threshold values.
[0027] Optionally, the clinician determines, based on one or more thresholds: breathing rate, SpO2, and / or FiO2, The patient's respiratory status is determined from this.
[0028] Optionally, the clinician: Respiratory index, and / or Patient parameters such as respiratory rate, SpO2 and / or FiO2 The patient's respiratory condition is determined from changes over time.
[0029] Optionally, the clinician determines the patient's respiratory status from change indicators such as the slope, magnitude and / or angle between respiratory indices at multiple time points.
[0030] Optionally, the clinician determines the patient's respiratory status from change indicators such as slope, magnitude and / or angle between patient parameters such as respiratory rate, SpO2 and / or FiO2 at multiple time points.
[0031] Optionally, the patient's respiratory status is determined from the length of time it takes for the respiratory index and change indicator to change and / or the magnitude of the change over a threshold time.
[0032] Optionally, the clinician determines the patient's respiratory status from the time taken for the respiratory index and / or change indicator by a threshold amount.
[0033] Optionally, the assessment device and / or the respiratory assistance device comprises a user interface, such as a display.
[0034] In another aspect, the disclosure may be expressed as including a method of assessing a patient receiving respiratory assistance during a session to determine a respiratory status, the method including receiving one or more patient parameters of the patient including at least one respiratory parameter from one or more sensors for a plurality of time points; determining in a controller, for each time point, a respiratory index from the one or more patient parameters and a change in the respiratory index over time; and determining the respiratory status of the patient from the change in the respiratory index over time.
[0035] Optionally, the patient is receiving respiratory assistance, and optionally the respiratory assistance is high-flow respiratory assistance.
[0036] Optionally, the session Therapy sessions, One day or part of it, One night or part of one night Sub-session, a certain length of time is.
[0037] Optionally, the one or more patient parameters are one or more pulmonary function parameters and one or more oxygenation parameters.
[0038] Optionally, the pulmonary function parameter is ·Respiration rate, Exhalation time, Minute ventilation It can be one or more of:
[0039] Optionally, the oxygenation parameter is: FiO2, FdO2, ·O2 ratio, SpO2 It can be one or more of:
[0040] Optionally, the respiratory index is a ROX index.
[0041] Optionally, the components of the ROX index are: breathing rate, SpO2, and / or FiO2, FdO2 and / or O2 ratio is.
[0042] Optionally, the respiration rate is determined by the controller from one or more patient parameters received from one or more sensors.
[0043] Optionally, the method further includes the step of prescribing and / or implementing changes in respiratory support based on the respiratory status and / or respiratory indices.
[0044] Optionally, the step of displaying the ROX index numerically and / or graphically.
[0045] Optionally, determining a change in the respiratory index over time comprises determining, for a plurality of time points, the change in the respiratory index for each of the plurality of time points.
[0046] Optionally, the method further comprises the step of displaying, for a plurality of time points, the change in the respiratory index over time for each of the plurality of time points.
[0047] Optionally, determining the patient's respiratory status from a change in the respiratory index over time comprises monitoring the change in the respiratory index over time over a plurality of time points.
[0048] Optionally, monitoring the change in the respiratory index over time and over a plurality of time points includes calculating and / or displaying the change in the respiratory index over time and over a plurality of time points and comparing it to related information.
[0049] Optionally, further comprising displaying the respiratory index threshold and / or the change indicator threshold.
[0050] Optionally, determining a change in the respiratory index over time includes determining a trend in the respiratory index.
[0051] Optionally, the trend comprises a plurality of instantaneous trends, and determining the trend comprises determining a plurality of instantaneous trends over time.
[0052] Optionally, the trend or instantaneous trend is represented by trend parameters including magnitude and direction, and may optionally be in the form of a vector or slope and magnitude.
[0053] Optionally, further comprising communicating the determined change in respiratory support to a clinician, for example in the form of a message, an alarm, a respiratory status, a respiratory index and / or a respiratory support device.
[0054] Optionally, the one or more sensors include one or more sensors arranged to sense a flow path of the respiratory assistance device and / or one or more sensors arranged to sense a parameter of the patient, and the controller receives the one or more patient parameters from the one or more sensors.
[0055] Optionally, the method further includes displaying the respiratory index versus time either graphically and / or numerically on an interface on either the respiratory device, the mobile device and / or other assessment device, displaying one or more components of the respiratory index (e.g., respiratory rate, SpO2, FiO2 or the like) alone, in combination and / or alternatively versus time either graphically and / or numerically, and / or displaying one or more vectors, slopes, angles, magnitudes, differences and / or other change indicators indicating changes between two or more respiratory indices and / or their components over time or in other manners.
[0056] Optionally, the method may further include receiving input (e.g., user input) to modify the display based on the user input and to re-display the information, including one or more of the following steps: receiving input to display one or more components of a respiratory index; displaying one or more components of a respiratory index either graphically and / or numerically, alone, combined and / or in a selection versus time; and / or receiving input to display, zoom and / or move the display; and displaying or re-displaying zoomed and / or moved versions of a respiratory index (e.g., ROX index) versus time either graphically and / or numerically, one or more components of a respiratory index either graphically and / or numerically, alone, combined and / or in a selection versus time; and / or one or more vectors, slopes, angles, magnitudes, differences and / or other change indicators indicating changes between two or more respiratory indices and / or their components over time or in other manners.
[0057] Optionally, the clinician determines the patient's respiratory status from changes in a respiratory index (e.g., ROX index) over time, either graphically and / or numerically, by observing one or more components of the respiratory index (e.g., respiratory rate, SpO2, FiO2, or the like) versus time, either graphically and / or numerically, alone, in combination, and / or alternatively, versus time, and / or one or more vectors, slopes, angles, magnitudes, differences, and / or other change indicators between two or more respiratory indices and / or their components over time or in other manners.
[0058] Optionally, the clinician determines the patient's respiratory status from changes in respiratory indices over time by any or combination of the steps of comparing one or more respiratory indices and / or changes in respiratory indices to one or more thresholds, comparing one or more change indicators to one or more thresholds, comparing one or more respiratory indices and / or changes in respiratory indices to one or more other respiratory indices and / or changes in respiratory indices and / or to one or more other change indicators, comparing one or more change indicators to one or more other change indicators and / or one or more respiratory indices and / or changes in respiratory indices, and considering one or more of the respiratory indices, changes in respiratory indices over time, changes in respiratory indices over time, and change indicators.
[0059] Optionally, upon determining the patient's respiratory status, one or more of the following may occur to indicate the respiratory status, alert the clinician, and / or indicate necessary action, sound an alarm, display a message, and / or automatically and / or manually initiate a change in therapy.
[0060] In one aspect, the present disclosure may be expressed as including an apparatus for assessing a patient receiving respiratory assistance during a session to determine a respiratory status, including one or more sensors or inputs for one or more sensors that receive one or more patient parameters of the patient including at least one respiratory parameter from a plurality of time points, and a controller that determines a respiratory index from the one or more patient parameters for each time point, determines the patient respiratory status from changes in the respiratory index over time, and / or displays on a display the changes in the respiratory index over time for a user to determine the patient respiratory status.
[0061] Optionally, the patient is receiving respiratory assistance, and optionally the respiratory assistance is high-flow respiratory assistance.
[0062] Optionally, the assessment device provides respiratory assistance or the assessment device is separate from the respiratory assistance device.
[0063] Optionally, the session Therapy sessions, One day or part of it, overnight or part of it, Sub-session, a certain length of time is.
[0064] Optionally, the one or more patient parameters are one or more pulmonary function parameters and one or more oxygenation parameters.
[0065] Optionally, the pulmonary function parameter is ·Respiration rate, Expiratory time, Minute ventilation It can be one or more of:
[0066] Optionally, the oxygenation parameter is: FiO2, FdO2, ·O2 ratio, SpO2 It can be one or more of:
[0067] Optionally, the respiratory index is a ROX index.
[0068] Optionally, the components of the ROX index are: breathing rate, SpO2, and / or FiO2, FdO2 and / or O2 ratio is.
[0069] Optionally, the respiration rate is determined by the controller from one or more patient parameters received from one or more sensors.
[0070] Optionally, the respiratory index is a ROX index determined from respiratory rate, FiO2 and / or SpO2.
[0071] Optionally, including displaying the ROX numerically and / or graphically on a display.
[0072] Optionally, determining the change in the respiratory index over time comprises determining, for a plurality of time points, the change in the respiratory index over time for each of the plurality of time points.
[0073] Optionally, for a plurality of time points, displaying the change in the respiratory index over time for each of the plurality of time points.
[0074] Optionally, determining from a change in the respiratory index over time includes the controller calculating the change and comparing it with relevant information.
[0075] Optionally, the controller further comprises displaying the respiratory index threshold and / or the indicator threshold.
[0076] Optionally, further comprising communicating the determined change in respiratory support to a clinician, for example, in the form of a message, an alarm, a respiratory status, a respiratory index and / or a respiratory support device.
[0077] Optionally, the one or more sensors include one or more sensors arranged to sense a flow path of the respiratory assistance device and / or one or more sensors arranged to sense a parameter of the patient, and the controller receives the one or more patient parameters from the one or more sensors.
[0078] Optionally, the apparatus comprises: Single or integrated, breathing apparatus, mobile devices, server One or more of the following.
[0079] Optionally, it includes a sensor.
[0080] In another aspect, the present disclosure may be expressed as including a system for assessing a patient receiving respiratory assistance during a session to determine respiratory status, which includes an apparatus according to any description herein performing a method according to any description herein.
[0081] Optionally, the device is configured to determine the patient's respiratory state from the change in the respiratory index over time by monitoring the change in the respiratory index over time over multiple time points.
[0082] Optionally, the at least one patient parameter is the patient's FiO2.
[0083] Optionally, the respiratory parameter is: Respiratory rate, and / or SpO2 is.
[0084] Optionally, the device is configured to determine changes in the respiratory index over time, which includes determining trends in the respiratory index.
[0085] Optionally, the trend comprises a plurality of instantaneous trends, and determining the trend comprises determining a plurality of instantaneous trends over time.
[0086] Optionally, the change indicator is: vector, or Inclination and size The form may be:
[0087] Optionally, the device is further configured to display, on an interface of either the respiratory device, the mobile device and / or other assessment device, one or more of the respiratory indices versus time, either graphically and / or numerically, one or more components of the respiratory indices (respiratory rate, SpO2, FiO2 or the like) alone, in combination and / or alternatively versus time, either graphically and / or numerically, and / or one or more vectors, slopes, angles, magnitudes, differences and / or other change indicators showing changes between two or more respiratory indices and / or components thereof over time or in other manners.
[0088] Optionally, the apparatus comprises: receiving input to display one or more components of a respiratory index, and displaying the one or more components of the respiratory index either graphically and / or numerically, alone, in combination, and / or alternatively versus time; and / or receiving input to view, zoom, and / or move the display; and Respiratory indices (e.g., ROX index) versus time, either graphically and / or numerically; one or more components of the respiratory index, either graphically and / or numerically, alone, in combination and / or alternatively versus time; and / or One or more vectors, slopes, angles, magnitudes, differences, and / or other change indicators that indicate changes between two or more respiratory indices and / or components thereof, over time or otherwise. Displaying or redisplaying a zoomed and / or shifted version of and further configured to receive input (e.g., user input) to modify the display and re-display the information based on the user input, including one or more of:
[0089] Optionally, the device allows the clinician to: Respiratory indices (e.g., ROX index) versus time, either graphically and / or numerically; one or more components of a respiratory index (e.g., respiratory rate, SpO2, FiO2, or the like), either graphically and / or numerically, alone, in combination, and / or alternatively versus time; and / or One or more vectors, slopes, angles, magnitudes, differences, and / or other change indicators that indicate changes between two or more respiratory indices and / or components thereof, over time or otherwise. The device is further configured to allow determination of the patient's respiratory status from changes in the respiratory index over time by observing
[0090] Optionally, the device allows the clinician to: comparing one or more respiratory indices and / or changes in respiratory indices against one or more thresholds; comparing one or more change indicators against one or more thresholds; comparing the one or more respiratory indices and / or changes in respiratory indices to one or more other respiratory indices and / or changes in respiratory indices and / or to one or more other change indicators; comparing the one or more change indicators to one or more other change indicators and / or one or more respiratory indices and / or changes in respiratory indices; respiratory index, Changes in respiratory indices over time, Changes in respiratory indices over time, Change Indicators Consider one or more of the following: The present invention is further configured to allow determining the patient's respiratory status from changes in the respiratory index over time by any one or combination of:
[0091] Optionally, the device is further configured to provide one or more of the following upon determining the patient's respiratory status: an alarm may be sounded and / or a message displayed to indicate the respiratory status and to alert a clinician and / or indicate required action; and / or a change in therapy may be automatically and / or manually initiated.
[0092] Optionally, in the methods or devices described, the respiratory index is a ROX index.
[0093] Optionally, in the methods or devices described, the components of the respiratory index are respiratory rate, SpO2 and / or FiO2.
[0094] In another aspect, the present disclosure may be expressed as including a method of assessing a patient receiving respiratory assistance during a session to determine a respiratory status, comprising receiving one or more patient parameters of the patient including at least one respiratory parameter from one or more sensors for a plurality of time points; determining in a controller, for each time point, a respiratory index and / or one or more component parameters from the one or more patient parameters and a change in the respiratory index and / or one or more component parameters over time; and determining the patient respiratory status from the change in the respiratory index and / or one or more component parameters over time.
[0095] In another aspect, the present disclosure may be expressed as including a method of evaluating a patient to determine a change in respiratory assistance, comprising receiving one or more patient parameters from the patient including at least one respiratory parameter for a plurality of time points; determining a respiratory index from the one or more patient parameters for each time point; and determining from the respiratory index a change in the patient's respiratory state and / or respiratory assistance based on a trend in the respiratory index.
[0096] In another aspect, the present disclosure may be expressed as including a method of assessing a patient to determine a change in respiratory assistance, comprising receiving one or more patient parameters from the patient including at least one respiratory parameter for a plurality of time points; determining a respiratory index from the one or more patient parameters for each time point; determining a change in the respiratory index over time from the change in the respiratory index; and determining a change in the patient's respiratory status and / or respiratory assistance.
[0097] Optionally, determining a change in the respiratory index over time includes determining a trend in the respiratory index.
[0098] Optionally, the trend comprises a plurality of instantaneous trends, and determining the trend comprises determining a plurality of instantaneous trends over time.
[0099] Optionally, the trend or instantaneous trend is represented by trend parameters including magnitude and direction, and optionally: vector, or Slope (i.e. gradient) and magnitude The form may be:
[0100] Optionally, the method further comprises communicating the determined change in respiratory assistance to a clinician and / or to the respiratory assistance device, for example in the form of a message, an alarm, a respiratory status, a respiratory index.
[0101] Optionally, the method further comprises controlling a respiratory assistance device based on the determined change in respiratory assistance.
[0102] Optionally, the method further comprises determining the patient's condition and / or a change in the patient's condition from the respiratory index, and optionally communicating the patient's condition to a clinician, for example in the form of a message, an alarm and / or a status.
[0103] Optionally, the step of determining a change in the patient's respiratory status and / or respiratory support based on a trend in the respiratory index comprises: Respiratory index and changes in respiratory index, A trend or multiple momentary trends; a trend parameter or multiple trend parameters; · Patient's respiratory status or changes in respiratory status comparing one or more of the above against related information; In this case, optionally, the related information is: at least one threshold, and / or The time when a threshold is met, exceeded, or not exceeded Includes.
[0104] Optionally, the method comprises: Respiratory index or changes in respiratory index, A trend or multiple momentary trends; a trend parameter or multiple trend parameters; · The patient's respiratory status or changes in respiratory status; Related information The method further includes transmitting one or more of:
[0105] Optionally, the respiratory index is a ROX index, the trend parameter is a vector indicating changes in the ROX index, and the related information is a threshold indicative of a risk of respiratory failure.
[0106] Optionally, the change in respiratory support is an escalation or de-escalation of respiratory support.
[0107] Optionally, the step of escalating respiratory support comprises: Optionally, providing high-flow respiratory assistance at higher levels by increasing or providing flow, O2 concentration, humidification, flow oscillation, and / or other high-flow parameters; Patients, NIV pressure breathing support, Mechanical ventilator respiratory support via intubation, and transferring the patient to more invasive respiratory support such as Includes.
[0108] Optionally, the escalation controlling the device to escalate respiratory support; and / or Optionally, communicating in the form of a message, status, or alarm to a clinician to escalate or consider escalating respiratory support. Includes.
[0109] Optionally, the alteration of respiratory support improves the patient's respiratory status and / or respiratory index.
[0110] In another aspect, the present disclosure may be expressed as including a method of assessing a patient to determine a change in respiratory support, comprising receiving one or more patient parameters from the patient including at least one respiratory parameter for a plurality of time points; determining a respiratory index from the one or more patient parameters for each time point; determining at least one vector including a magnitude and direction indicative of a change in the respiratory index over time; and determining a change in respiratory support based on the vector.
[0111] In another aspect, the present disclosure may be expressed as including an apparatus for determining a change in respiratory assistance, including a controller configured to receive one or more patient parameters from a patient including at least one respiratory parameter for a plurality of time points, determine a respiratory index from the one or more patient parameters for each time point, determine a change in the respiratory index over time from the change in the respiratory index, and determine a respiratory state and / or change in respiratory assistance for the patient, and an I / O interface for communicating one or more of the respiratory index and / or change in the respiratory index, the patient's respiratory state, and the change in respiratory assistance.
[0112] Optionally, the device is a respiratory device comprising a flow generator and a humidifier.
[0113] Optionally, the flow generator and the humidifier are integrated within the housing.
[0114] Optionally, the apparatus further comprises: a sensor for determining the O2 concentration of the gas; Sensor for determining a patient's respiratory rate The present invention is configured to include or couple to one or more of:
[0115] Optionally, the apparatus further comprises a wireless communication transceiver.
[0116] Optionally, the device is a mobile device including an IO interface; and Mobile telecommunications, Bluetooth(trademark), NFC and receiving patient parameters using one or more of:
[0117] Optionally, the mobile device is configured to control the respiratory apparatus and / or communicate over an IO interface of the respiratory apparatus by: Respiratory index and / or changes in respiratory index; The patient's respiratory status, and / or Changes in respiratory support transmitted to the breathing apparatus.
[0118] In another aspect, the present disclosure may be expressed as including a method of controlling a respiratory apparatus, comprising determining a change in a respiratory index over time from patient parameters from a change in the respiratory index, determining a patient's respiratory status and / or a change in respiratory support, and communicating to a clinician how to change the respiratory support and / or controlling the respiratory support apparatus to change the respiratory support.
[0119] Optionally, the alteration of respiratory support improves the patient's respiratory status and / or respiratory index.
[0120] In another aspect, the present disclosure may be expressed as including a method for determining one or more trend parameters for a respiratory index, comprising receiving one or more patient parameters from a patient including at least one respiratory parameter for a plurality of time points, determining a respiratory index from the one or more patient parameters for each time point, and determining one or more trend parameters representative of a change in the respiratory index over time.
[0121] Optionally, the trend parameters include magnitude and direction, and optionally: vector, or Slope (i.e. gradient) and magnitude The form may be:
[0122] In another aspect, the present disclosure may be expressed as including a system for determining a change in respiratory assistance, including a mobile device including a controller, an IO interface, and a wireless communication transceiver, and a respiratory apparatus including a controller, a flow generator, and a humidifier, wherein one or both of the controllers are configured to perform some or all of the following: receive one or more patient parameters from a patient including at least one respiratory parameter for a plurality of time points; determine a respiratory index from the one or more patient parameters for each time point; determine a change in the respiratory index over time from the change in the respiratory index; and determine a change in the patient's respiratory state and / or respiratory assistance.
[0123] In another aspect, the present disclosure is expressed as including an apparatus for determining a change in respiratory assistance, including a mobile device including a controller, an IO interface, and a wireless communication transceiver to receive one or more patient parameters from a patient including at least one respiratory parameter for a plurality of time points, determine a respiratory index from the one or more patient parameters for each time point, determine a change in the respiratory index over time from the change in the respiratory index, communicate information over the IO interface, and / or determine a change or suggested change in the patient's respiratory status and / or respiratory assistance.
[0124] Optionally, the mobile device Mobile telecommunications, Bluetooth(trademark) NFC, Wifi and receiving patient parameters via a wireless communication transceiver by using one or more of:
[0125] Optionally, the mobile device receives the patient parameters via a WAN, LAN or wireless network.
[0126] Optionally, the mobile device is configured to control the respiratory apparatus and / or communicate over an IO interface of the respiratory apparatus by: Respiratory index and / or changes in respiratory index; The patient's respiratory status, and / or Changes in respiratory support transmitted to the breathing apparatus.
[0127] Optionally, the mobile device and / or the respiratory device may display in the IO interface as a graph, message, display, information, and / or audibly or in other manner: Respiratory index or changes in respiratory index, A trend or multiple momentary trends; a trend parameter or multiple trend parameters; · The patient's respiratory status or changes in respiratory status; Related information transmit one or more of the following:
[0128] In another aspect, the present disclosure may be expressed as including a mobile device programmed to perform a method, the method comprising: receiving one or more patient parameters from the patient, including at least one respiratory parameter, for a plurality of time points; For each time point, determining a respiratory index from one or more patient parameters; determining a change in a respiratory quotient over time; From changes in respiratory index, The patient's respiratory status, and / or Changes in respiratory support and determining Includes.
[0129] In another aspect, the present disclosure may be expressed as including a method implemented by a mobile device and / or a mobile device programmed to execute the method, the method being presented in an IO interface as a graph, message, display, information, and / or audibly or otherwise: Respiratory index or changes in respiratory index, A trend or multiple momentary trends; A trend parameter (e.g., a vector including magnitude and / or direction) or multiple trend parameters · The patient's respiratory status or changes in respiratory status; Related information transmitting one or more of Further includes:
[0130] Optionally, the system or method may be configured to determine a change in flow rate provided by the respiratory assistance device required to improve the respiratory index, and may be configured to present instructions on the mobile device to change the flow rate or another parameter of the respiratory assistance device, optionally in which case the change in flow rate or another parameter may be Flow is increased to improve respiratory index; The flow rate is varied based on or in relation to changes in respiratory index; The flow rate is changed based on or in relation to a change in a trend or trend parameter; The FiO2 is varied in response to changes in respiratory rate or in response to changes in respiratory index. With the flow rate changed to an exponential change, the gas valve is controlled to increase or maintain the FiO2. One or more of the following.
[0131] Optionally, in the system or method, the respiration index is an ROX index based on SpO2, FiO2 and respiration rate, and optionally, the system includes or is configured to connect to one or more sensors from which the SpO2, FiO2 and / or respiration rate can be determined, and optionally, the respiration rate is calculated in the controller based on the frequency response of the respiration rate sensor.
[0132] Optionally, the mobile device captures / receives the respiratory rate and FiO2 by using the NFC protocol.
[0133] Optionally, Respiration rate sensor, oxygen concentration sensor, Flow sensor (optionally in-line type) Pressure Sensor temperature sensors, Ultrasonic Sensor and optionally, in which case the controller receives signals from one or more of the sensors and / or from a manual input, and calculates the respiration rate and FiO2 based on the received signals.
[0134] Optionally, in a system or method according to any preceding claim, the controller is configured to, or the method includes the step of, calculating a trend in the respiratory index over a set period of time based on respiratory rate and FiO2 measurements taken within the set period of time, and / or the controller is configured to increase flow from a base flow rate if the trend (or change) in the respiratory index indicates a worsening respiratory condition, and / or the controller is configured to reduce flow towards the base flow rate if the respiratory index indicates an improvement in the respiratory condition.
[0135] In another aspect, the present disclosure may be expressed as including a method of providing respiratory assistance, comprising determining a respiratory index of a patient's breath at one or more time points, determining a change in the respiratory index over time from the change in the respiratory index, determining a respiratory status and / or appropriate respiratory assistance for the patient, and providing the determined respiratory assistance to the patient.
[0136] In one implementation, an embodiment includes a mobile device that receives information from a wearable sensor. The information is used as described above, and the information is communicated to a clinician and further to a respiratory assistance device for controlling the device through wired or wireless transmission, including, for example, NFC. The mobile device can communicate with the respiratory assistance device using Bluetooth, infrared, or another suitable wireless communication protocol. The mobile device can receive information from the respiratory device and sensors within the respiratory assistance device. The mobile device can automatically ping (i.e., query) the respiratory assistance device at regular time intervals to receive data from sensors installed in the respiratory assistance device. Alternatively, the respiratory assistance device can periodically transmit data to the mobile device. In one example, NFC communication is advantageous because a user of the mobile device, such as a clinician, can initiate the reception of sensor data from the respiratory assistance device by the mobile device. The mobile device can determine the effectiveness of respiratory assistance by using the methods described herein.
[0137] In one aspect, the present disclosure may include a device for providing respiratory assistance, including a housing, a flow generator (e.g., a blower) within the housing, an auxiliary gas inlet, a valve in fluid communication with the auxiliary gas inlet and configured to control the amount of auxiliary gas introduced into the device, an outlet disposed within or on top of the housing, a gas pathway extending through the housing from the gas inlet to the outlet, the flow generator configured to receive auxiliary gas from the auxiliary gas inlet and to generate a flow of gas, the flow of gas traveling through the gas pathway, a plurality of sensors, and a controller in electronic communication with the one or more sensors and receiving signals from the sensors, where the sensors are non-invasive sensors, and the controller configured to: determine pulmonary function parameters and oxygenation parameters from the sensor signals; determine a respiratory index based on the pulmonary function parameters and oxygenation parameters; determine changes in the respiratory index over time; and modify respiratory assistance based on changes in respiration over time.
[0138] The apparatus optionally includes a humidifier positioned downstream of the flow generator, the humidifier configured to humidify the gas flow.
[0139] Optionally, the change in the respiratory index includes a trend or rate of change or a second derivative of the rate of change.
[0140] Optionally, the respiratory device may include a communications interface configured to transmit information to a mobile device (e.g., a smartphone or tablet) associated with a clinician or healthcare professional and / or to a remote patient monitoring system. The remote patient monitoring system may include one or more servers, memory units, databases, and other components that allow for management of patient information, generation of reports of patient health status, and for alerts to be sent to the patient and / or clinician. Changes in respiratory indices may be transmitted to the mobile device and / or to the remote patient monitoring system.
[0141] The respiratory index measurements and changes in respiratory index can be incorporated into a patient report that includes measured patient parameters such as SpO2, flow rate, humidity set point and time of use, as well as changes in respiratory index and measurements over time.
[0142] Changes in the respiratory index allow a clinician to assess whether the current therapy being delivered is effective and also allow the clinician to implement changes in the therapy being delivered. In one example, the operating parameters (e.g., prescription settings) of the respiratory assistance device can be remotely updated based on changes in the respiratory index.
[0143] In another aspect, the present disclosure can be expressed as including a monitoring system, comprising: a respiratory assist device (e.g., a high-flow respiratory assist device such as a nasal high-flow respiratory assist device); a remote monitoring device for a clinician to monitor a patient being supported by a respiratory device; receiving one or more patient parameters of the patient, including at least one respiratory parameter, from one or more sensors for a plurality of time points; determining, in the one or more controllers, for each time point, a respiratory index from one or more patient parameters and a change in the respiratory index over time; and providing information (numerically, graphically or otherwise) to a remote monitoring device, the information comprising: Respiratory index, and / or Changes in respiratory indices over time one or more controllers in the respiratory device, remote monitoring device, and / or other device in the system configured to be one or more of: Includes.
[0144] Optionally, - the patient's respiratory status, - Changes in respiratory status over time, - patient parameters versus time, - Change in patient parameters versus time, - Respiratory Index Threshold - Change Indicator Threshold - Respiratory support suggested One or more of the following may be provided:
[0145] Reference to a range of numbers disclosed herein (e.g., 1 to 10) is also intended to encompass reference to every rational number within that range (e.g., 1, 1.1, 2, 3, 3.9, 4, 5, 6, 6.5, 7, 8, 9, and 10), and further to any range of rational numbers within that range (e.g., 2 to 8, 1.5 to 5.5, and 3.1 to 4.7), and thus every subrange of every range explicitly disclosed herein is hereby expressly disclosed. These are merely examples of what is specifically intended, and all possible combinations of numerical values between the minimum and maximum values recited are to be considered to be expressly set forth in this application in an analogous manner.
[0146] As used herein, the term "comprise" means "consisting at least in part of." In interpreting each statement herein that includes the term "comprise," there may be features other than the one or more prefaced by this term. Related terms such as "comprise" and "comprises" should be interpreted in the same manner. Unless the context clearly requires otherwise, throughout the description and claims, the terms "comprise," "including," and the like, should be interpreted in an inclusive sense, i.e., "including but not limited to," as opposed to an exclusive or exhaustive sense.
[0147] Where references are made herein to patents, other external documents, or other sources of information, this is generally for the purpose of providing a context for describing features of the present disclosure. Unless specifically stated otherwise, references to such external documents should not be construed as an admission that such documents or such sources are prior art in any jurisdiction or form part of the common general knowledge in the art.
[0148] The present disclosure may also be broadly expressed as including the parts, elements, and features referenced or shown in the specification of this application, individually or collectively, in any or all combinations of two or more of said parts, elements, or features. In the foregoing description, where reference is made to whole entities or components having known equivalents thereof, those whole entities are included herein as if individually set forth.
[0149] To those skilled in the art to which this disclosure pertains, numerous modifications in structure and widely different embodiments and applications of the present disclosure will suggest themselves without departing from the scope of the present disclosure as defined in the appended claims. The disclosures and descriptions herein are purely illustrative and are not intended to be limiting in any way. Where specific integers having known equivalents in the art to which this disclosure pertains are referred to herein, such known equivalents shall be deemed to be encompassed herein as if individually set forth. The present disclosure further contemplates structures that include the foregoing, and of which the following merely gives examples.
[0150] Embodiments will now be described with reference to the following drawings: [Brief explanation of the drawings]
[0151] [Figure 1] 1 shows a flow diagram of the assessment phase and respiratory assistance phase of the present disclosure for determining a patient's respiratory assistance requirements. [Figure 2] 1 shows a graph of respiratory index versus time in relation to thresholds related to the patient's respiratory status. [Figure 3] 1 illustrates a system for implementing the assessment phase and the respiratory assistance phase. [Figure 4] 1 shows a graph of ROX index versus time in relation to a threshold related to the patient's respiratory status. [Figure 5] 1 shows a graph of respiratory rate versus FiO2 with a vector of ROX index over time in relation to thresholds related to the patient's respiratory status. [Figure 6] 1 shows a respiratory support device. [Figure 7] 1 shows a mobile device and a screen displaying information for assessing a patient's breathing. [Figure 8] 1 illustrates a use case for the described method and apparatus. [Figure 9] 1 illustrates a use case for the described method and apparatus. [Figure 10] 1 illustrates a use case for the described method and apparatus. [Figures 11A-E] For example, the information displayed may include use cases. DETAILED DESCRIPTION OF THE INVENTION
[0152] term Respiratory support device, respiratory apparatus, respiratory assistance device, breathing apparatus may all be used interchangeably to define the same device.
[0153] Respiratory index: for example, an indicator of a patient's breathing and an indicator of the patient's internal respiration and / or gas exchange. The respiratory index is a parameter by which decisions regarding the respiratory status and the respiratory support provided to the patient can be determined. For example, the respiratory index may indicate an increase in the severity of respiratory distress to allow a clinician to escalate therapy to more severe therapy (e.g., NIV or intubation). The respiratory index can be determined from / is a function of one or more pulmonary function parameters (such as respiratory rate, expiratory time, minute ventilation, etc.) and one or more oxygenation parameters (SpO2, FiO2, FdO2, O2 ratio, etc.).
[0154] In one alternative characterization, the respiratory index is: In addition to other things, Physiological parameters (which may include respiratory parameters), Therapy parameters (therapy delivered to the patient), and Respiratory device parameters (which may include operating parameters) Patient parameters that may include It can be considered a unitless numerical value characterized as a function of one or more of:
[0155] Pulmonary function parameters: These are parameters that indicate lung function such as respiratory rate, expiratory time, minute ventilation, etc.
[0156] Oxygenation parameters / oxygenation exchange parameters: These are parameters that indicate oxygenation, such as SpO2, FiO2, FdO2, O2 ratio, etc. Although different, FiO2, FdO2, and O2 ratio can be close surrogate measurements for each other and can be used interchangeably where appropriate.
[0157] O2 ratio: The proportion of oxygen in the gas stream. FiO2: The fraction of oxygen inspired by the patient. FdO2: The fraction of oxygen delivered to the patient. SpO2: The patient's blood oxygen level.
[0158] Respiratory Status: The current state of a patient's breathing. The status may indicate normal breathing or difficulty breathing. It may be an indicator and / or a result of breathing and gas exchange. Respiratory status is affected by lung function (such as respiratory rate) and gas exchange (i.e., blood gas exchange, such as that indicated by FiO2 requirements). Respiratory status may change over time.
[0159] Respiratory Status: An indicator of a patient's current and / or possible future respiratory status. This includes respiratory status, but also any past or future changes or trends in status that indicate the patient's overall health now and possible future health. This can be used to predict the likely course of a patient's health and to determine actions needed, if any.
[0160] Dyspnea: A point in time when a patient is not breathing normally. For example, dyspnea can be, for example, hypoxemic dyspnea, acute respiratory distress syndrome, hypercapnic dyspnea, dyspnea, or respiratory failure. Dyspnea can be on a scale from mild to severe (e.g., respiratory failure). Dyspnea can range, for example, from mild to severe and can be The patient has difficulty breathing, an increase in the patient's respiratory rate, Deterioration of breathing leading to respiratory failure, onset of respiratory failure, The occurrence of respiratory failure, Increased O2 requirements, e.g., increased FiO2, to maintain SpO2 levels; abnormalities in the patient's blood gas levels, difficulty breathing, low SpO2, High PaCO2, High likelihood of decompensation It may present itself as one or more of:
[0161] First, respiratory distress occurs, which can be followed by respiratory failure.
[0162] Respiratory failure: occurs when a patient's lungs cannot deliver enough oxygen to their blood and manifests as abnormalities in the patient's blood gases and / or breathing. The degree of respiratory failure can be indicated by respiratory rate and blood oxygen level. The more severe the patient's condition, the more O2 is required and / or the greater the respiratory rate. For example, respiratory failure can manifest as and / or be indicated by an increase in respiratory rate above the resting respiratory rate, e.g., twice the resting respiratory rate.
[0163] Risk of Respiratory Failure: Indicates the risk of onset of respiratory failure.
[0164] Change Indicator: Indicates the change in a respiratory index (or other parameter) over time (or with the change in any other parameter). This can be a slope, vector, angle, magnitude, difference, or the like - it can be an indication or a graph. It should be understood that reference to any particular change indicator, such as slope, is generally used by way of example only, and that other change indicators may convey the same or similar information, and that reference to a particular change indicator can generally be considered interchangeable with another change indicator.
[0165] High-flow respiratory support: Generally speaking, this provides a high flow of gas to assist a patient's breathing. For example, this can be delivered by a nasal cannula in nasal high-flow respiratory support (Nasal High-Flow (NHF)) or by a tracheal interface (e.g., a tracheostomy adapter) in tracheal high-flow respiratory support. The term "high-flow respiratory support" can be taken to mean, but is not limited to, one or more of the following terms and types of respiratory support used by those skilled in the art. Note that some of these are similar terms used for the same type of respiratory support. ·High flow rate High flow oxygen Humidified high flow rate High flow nasal oxygen ·Nose high flow rate High tracheal flow ·High flow supply ·High flow therapy Humidified high-flow nasal cannula
[0166] High-flow respiratory support can be useful for respiratory distress and failure.
[0167] Non-invasive (NIV) pressure breathing support: This is ventilatory support for a patient. It controls ventilation by providing bilevel pressure therapy. This therapy is non-invasive pressure therapy. For example, in bilevel pressure therapy, a higher pressure is provided on inspiration and a lower pressure is provided on expiration. This allows for control of at least tidal volume and PEEP. NIV is ventilatory support and controls ventilation. NIV is administered through a sealed interface. The terms NIV, NIV pressure breathing support, and bilevel pressure support can be used interchangeably.
[0168] Invasive respiratory support: Generally speaking, this is mechanical ventilation provided to an intubated patient.
[0169] Base respiratory support: This is the initial respiratory support provided by the clinician, usually via nasal high-flow or tracheal high-flow respiratory support.
[0170] High Flow: (e.g., in the context of high-flow respiratory assistance) means any gas flow having a flow rate that is above normal, such as, but not limited to, above the normal inspiratory flow rate of a healthy patient. This can be provided by a non-sealing breathing system with a large leak at the entrance to the patient's airway due to a non-sealing patient interface, such as a nasal cannula. High flow is provided as part of a high-flow respiratory assistance as defined above, such as in a high nasal or high tracheal flow, which also provides humidification to improve patient comfort, compliance, and safety. Alternatively or additionally, this can be above some other threshold flow rate relevant to the environment—for example, if a gas flow is provided to a patient at a rate to meet or exceed inspiratory demand, this flow rate may be considered a “high flow” because it is above the nominal flow rate that may otherwise be provided. Thus, “high flow” is environment-dependent, and what constitutes a “high flow” depends on many factors, such as the patient's health, the type of procedure / therapy / assistance being provided, the patient's characteristics (large, small, adult, child), and the like. Those skilled in the art will know from the context what constitutes a "high flow rate," which is a flow rate magnitude that exceeds or exceeds that which could otherwise be provided.
[0171] However, without limitation, some indications of high flow rates may be as follows: In some configurations, delivery of gas to the patient at a flow rate of approximately 5 or 10 liters per minute (5 or 10 LPM or L / min) or greater In some configurations, delivery of gas to the patient at a flow rate of from about 5 or 10 LPM to about 150 LPM, or from about 15 LPM to about 95 LPM, or from about 20 LPM to about 90 LPM, or from about 25 LPM to about 85 LPM, or from about 30 LPM to about 80 LPM, or from about 35 LPM to about 75 LPM, or from about 40 LPM to about 70 LPM, or from about 45 LPM to about 65 LPM, or from about 50 LPM to about 60 LPM. For example, according to various embodiments and configurations described herein, the flow rate of gas supplied and provided through the system or from a flow source to an interface can have a flow of, but is not limited to, at least about 5, 10, 20, 30, 40, 50, 60, 70, 80, 90, 100, 110, 120, 130, 140, 150 LPM or more, and a useful range can be selected to be any of these values (e.g., about 20 LPM to about 90 LPM, about 40 LPM to about 70 LPM, about 40 LPM to about 80 LPM, about 50 LPM to about 80 LPM, about 60 LPM to about 80 LPM, about 70 LPM to about 100 LPM, about 70 LPM to about 80 LPM). In some configurations, typical flow rates for adults often range, but are not limited to, from about 15 liters per minute (LPM) to about 70 liters per minute or more. Typical flow rates for pediatric patients (such as neonates, infants, and children) range, but are not limited to, from about 1 liter per minute per kilogram of patient weight to about 3 liters per minute per kilogram of patient weight or more. High flow rates may also optionally include gas mixture compositions that include the administration of supplemental oxygen and therapeutic agents. The flow rates used to achieve "high flow" may be any of the flow rates listed below. For example, in some configurations, for an adult patient, "high flow respiratory support" can mean the delivery of gas to the patient at a flow rate of 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, in the case of a neonatal, infant, or child patient, "high flow respiratory assistance" can refer to the delivery of gas to the patient at a flow rate 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. High flow respiratory assistance devices associated with adult, neonatal, infant, or child patients can deliver gas to the patient at a flow rate of from about 1 LPM to about 100 LPM, or in any of the subranges outlined above. The flow therapy device 10 can 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 can 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 rate may be between about 25 LPM and 75 LPM in combination 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 embodiments, the flow therapy device 10 may include a safety threshold that prevents a user from delivering too much oxygen to a patient when operating in manual mode. "High flow" flow rates for premature babies / infants / children (with weights ranging from about 1 to about 30 kg) can vary. Therapeutic flow can be set at 0.4-8 L / min / kg with a minimum of about 0.5 L / min and a maximum of about 25 L / min. For patients under 2 kg, the maximum flow is set at 8 L / min. Oscillatory flow is set at 0.05-2 L / min / kg, with a preferred range of 0.1-1 L / min / kg, and another preferred range of 0.2-0.8 L / min / kg.
[0172] At "high flow," the delivered gas is selected depending on, for example, the intended therapeutic use, some examples of which are described above. The delivered gas can have a predetermined percentage of oxygen. In some configurations, the percentage of oxygen in the delivered gas can be about 15% to about 100%, 20% to about 100%, or about 30% to about 100%, or about 40% to about 100%, or about 50% to about 100%, or about 60% to about 100%, or about 70% to about 100%, or about 80% to about 100%, or about 90% to about 100%, or about 100%, or 100%.
[0173] 1. Overview The embodiments described herein provide devices, systems, and methods for assessing a patient's respiratory status (e.g., normal, difficulty, worsening or improving, stable) and, optionally, for performing appropriate respiratory support actions ("respiratory support phase") based on the assessment. For example, if the patient is in respiratory distress or progressing toward or in respiratory failure during the respiratory support phase, escalation of respiratory support can be performed to reduce further deterioration of the respiratory status. The assessment is preferably performed while the patient is receiving respiratory support, such as, for example, high-flow respiratory support, NIV, invasive ventilation, or the like.
[0174] In the assessment phase, a respiratory index may be determined, which is an indicator of the patient's respiration, and which (and / or changes in the respiratory index) may be used to determine the patient's (current) respiratory state and / or changes in respiratory state - thus resulting in a respiratory state determination.
[0175] The respiratory status may be "normal" or "dyspnea." Dyspnea can range from mild to severe, as described below. The respiratory index may indicate whether a patient is prone to or experiencing onset of dyspnea, or whether they are in a dyspnea state, and / or whether they are experiencing or prone to worsening dyspnea (which may result in risk of or actual respiratory failure, which is a severe type of dyspnea).
[0176] From the patient's respiration, respiratory index, and / or respiratory status, it can be determined whether it is desirable to escalate respiratory support (during the respiratory support phase) to improve the patient's respiratory status / alleviate dyspnea. This may be aimed at preventing further deterioration of dyspnea (stabilization) or moving the patient from dyspnea to normal breathing. For example, if the patient is in mild dyspnea, escalation of respiratory support can be used to reduce the likelihood that the patient will deteriorate to a more severe level of dyspnea, such as the risk of or actual respiratory failure. Alternatively, if the patient is already at risk of (or experiencing) respiratory failure, escalation of respiratory support reduces the risk of respiratory failure occurring (or continuing) and / or the negative health consequences of respiratory failure.
[0177] However, escalating respiratory support (such as increasing high-flow respiratory support, providing NIV pressure respiratory support, or providing invasive respiratory support) has its own risks, and therefore, it is undesirable to unnecessarily escalate respiratory support. Similarly, when respiratory distress is alleviated, it is often desirable to de-escalate respiratory support so as to eliminate the risks encountered due to escalated respiratory support. Among other things, the reason for the assessment phase is to identify early enough whether the patient's respiratory status is deteriorating so that action can be taken preemptively without unnecessarily early implementation. While early escalation of respiratory support improves health outcomes, delays may carry the risk of negative health outcomes.
[0178] For example, the patient may be receiving base respiratory support in the form of high-flow respiratory support, such as nasal high-flow or tracheal high-flow respiratory support, etc. An assessment phase can be used and should be implemented to determine whether escalation of respiratory support may be beneficial to the patient.
[0179] In one example, escalating respiratory support may involve escalating high-flow respiratory support. This may be in the form of increasing high-flow respiratory support parameters of the respiratory support (e.g., flow rate, O2 concentration, humidification, or the like), while de-escalating respiratory support may involve decreasing the support parameters. Such escalation may occur, for example, when respiratory indices indicate that the patient is in respiratory distress and deteriorating, but does not yet pose a high risk of respiratory failure. Escalating high-flow respiratory support may stabilize or possibly improve the patient's respiratory status, which may mean that the risk of respiratory failure (and therefore potentially more invasive escalation) is avoided.
[0180] As another example, escalation of respiratory support may include moving to more invasive respiratory support. This may be escalation to NIV respiratory support or invasive respiratory support. This may occur immediately or after escalation of high-flow respiratory support. In the case of nasal / tracheal high-flow respiratory support, escalation of respiratory support may also include progressing from nasal high-flow to invasive ventilation, such as providing mechanical ventilation to an intubated patient. De-escalation may include: Removal of invasive respiratory support or return to basic respiratory support (e.g., NIV respiratory support or nasal high flow), if used; or Removal of NIV respiratory support, if used, or return to base respiratory support (e.g., nasal high flow); or Nasal hyperflow de-escalation when used can have:
[0181] Alternatively, as another example of more invasive respiratory support, escalation of respiratory support can include transferring the patient to non-invasive ("NIV") pressure respiratory support. This can occur immediately or after escalation of high-flow respiratory support. De-escalation can include removing NIV pressure respiratory support and returning to base respiratory support (e.g., nasal high flow).
[0182] Respiratory support can include, for example, using humidification in conjunction with high nasal flow, high tracheal flow, and / or NIV pressure respiratory support. As another example, escalation of respiratory support can include providing or escalating humidification. This can be for therapy and / or comfort purposes and can be in place of or in addition to any of the other escalations described. De-escalation can include removing or reducing humidification.
[0183] Thus, the present embodiment utilizes changes in respiratory indices (e.g., respiratory index trends) to help identify when it is appropriate to escalate and / or de-escalate respiratory support. The use of respiratory index trends helps improve the timing of escalation of therapy needed to help improve patient stability (and improvement in respiratory index, condition, etc.).
[0184] This provides improved health outcomes (including improvements in respiratory indices, status, etc.) as escalated respiratory support is provided when the benefits of providing escalated support are likely to outweigh the risks of providing escalated support.
[0185] Generally, the described embodiments relate to base respiratory support in the form of nasal and / or tracheal high flow respiratory support, which is a high flow of gas provided to a patient to assist with respiratory function. Preferably, the high flow respiratory support includes humidification for patient comfort.
[0186] Generally speaking, the apparatus and method include: an evaluation method performed by the evaluation device; and Optionally, a method and / or apparatus for providing respiratory assistance based on the results of the evaluation method. Includes one or more of the following.
[0187] This allows the clinician and / or device to determine appropriate changes in respiratory status / condition, such as, for example, a change in dyspnea or a deterioration toward respiratory failure, and allows the clinician and / or respiratory device to escalate respiratory support more quickly. For example, the patient may be intubated and the patient may be provided with mechanical ventilation earlier than under current diagnostic methods. The methods described herein allow for earlier detection of a deterioration in a patient's respiratory status, such as an increase or worsening of dyspnea, indicating potential dyspnea (whether mild or severe). This allows the clinician / respiratory device to escalate respiratory support earlier, which can increase the chances of recovery and may increase the chances of survival.
[0188] Referring to FIG. 1, generally speaking, the apparatus and method in combination include: a) During the evaluation phase: A respiratory index can be determined, and From the change in the respiratory index, it is possible to determine the patient's respiratory status and / or whether a change in respiratory support is required; and b) During the respiratory support phase, based on the assessment phase: The use of a respiratory device allows respiratory support changes to be implemented (by the clinician and / or the respiratory device).
[0189] It is not necessary to have both a) and b), for example only evaluation stage a) may be implemented.
[0190] The evaluation phase is assessing respiratory status and determining whether it is normal, abnormal, worsening, stable, improving, or the like; assessing whether a change in respiratory support is required (as a result of the assessment of respiratory status); If a change is needed, assess the change in respiratory support needed (e.g., escalation, de-escalation, increase or decrease in high-flow therapy, escalation to NIV or invasive ventilation, de-escalation from NIV or invasive ventilation, or the like). may include one or more of:
[0191] The implementation and respiratory support phases are: indicating any of the above results of the evaluation phase, for example by an alert, alarm, message or other indicator; and / or Implementing any of the changes determined in the evaluation phase may include:
[0192] The evaluation phase is Clinicians only, one or more assessments, therapies and / or other devices without the involvement of a clinician; or Both the clinician and one or more devices It can be implemented by:
[0193] Similarly, the respiratory support phase is ·Clinician, one or more assessment, treatment and / or other devices without the involvement of a clinician; or Both the clinician and one or more devices It can be implemented by:
[0194] A respiratory index ("RI") is determined, and then, optionally, an assessment of the patient's respiratory status is made from changes in the respiratory index. A determination is then made based on the changes in the respiratory index and / or the patient's respiratory status (which may be displayed, for example, to a clinician) whether a change in respiratory support (e.g., escalation or de-escalation) is needed, and if so, what that change is. Optionally, the respiratory device is configured to provide a change in support automatically or with intervention by a clinician.
[0195] The respiratory index can be determined from / is a function of one or more pulmonary function parameters (such as respiratory rate, expiratory time, minute ventilation, etc.) and one or more oxygenation parameters (such as SpO2, FiO2, FdO2, O2 ratio, etc.), which can be calculated by the controller of the respiratory device based on signals / measurements from one or more sensors associated with the respiratory device.
[0196] Alternatively, the respiratory index can be characterized as follows: In addition to other things, Physiological parameters (which may include respiratory parameters), Therapy parameters (therapy delivered to the patient) Patient parameters that may include: Respiratory device parameters (which may include operating parameters) It can be a unitless number that is a function f(x) of one or more of:
[0197] The physiological parameters may include pulmonary function and / or oxygenation parameters.
[0198] Typically, a respiratory index can use one or more of SpO2 (a patient's physiological parameter), FiO2 (a patient's therapy parameter), and respiratory rate (a patient's physiological parameter). Note that FdO2 can be used as a surrogate for FiO2. FdO2 is the fraction of oxygen delivered, which is the O2 concentration in the gas stream, and FiO2 is the fraction of inspired oxygen. These are related and similar in value, but not identical, and when the gas flow is large enough and the patient is not entraining ambient air, FdO2 is substantially equivalent to FiO2 so that it can be used as a surrogate for FiO2. FdO2 is a respiratory device parameter. In the case of a respiratory device that provides oxygen, the oxygen concentration provided by the device (an operating parameter) can be closely related to FiO2 and used as a surrogate for FiO2. However, other parameters can also be used. A respiratory index may be a function of any set of parameters that provides a respiratory indication from which a determination of a patient's respiratory status (such as risk of respiratory failure) may be made.
[0199] For example, the respiratory index RI is generally one parameter describing pulmonary function and one parameter describing oxygen exchange, i.e., RR=f(LM,O), or Respiratory rate (RR), e.g., RI=f(RR), or a function of respiratory rate and FiO2, e.g., RI=f(FiO2,RR), or Function of respiratory rate, FiO2 and SpO2, e.g., RI=f(SpO2,FiO2,RR) can be defined as a function of
[0200] In one example, the respiratory index is: ROX = (SpO2 / FiO2) / RR ROX, which is defined as in this case, SpO2 is the set point saturation (%) of oxygen in the patient's blood, or alternatively the actual saturation (%) of oxygen in the patient's blood; FiO2 is the percentage of oxygen inspired by the patient (FdO2 can be used as a proxy), and Respiratory rate is the respiratory rate in breaths per minute.
[0201] For example, changes in the respiratory index RI over time can be used to determine the patient's respiratory status. Optionally, a determination can be made from the respiratory status as to whether the respiratory support requires a change. Alternatively, optionally, a determination can be made from changes in the respiratory index itself as to whether the respiratory support requires a change.
[0202] For example, a change in the respiratory index itself may provide an indication of whether a change in respiratory support is needed. Or, some relationship ("relationship" information) between, for example, a change in the respiratory index and some other information, such as, for example, a parameter (e.g., a predetermined or other threshold) may provide this determination. Multiple values of the respiratory index may be used to make the determination (e.g., multiple values of the respiratory index may be determined over time, and from this, a trend may be determined that may be determined by a change in breathing required). Some information may be used, such as a relationship between multiple values of the respiratory index or a parameter that generalizes the multiple values and other parameters. Various options exist for determining whether a change in respiratory support is needed, and these are indicated by the respiratory index, but optionally in addition to other information.
[0203] Observing the change in the respiratory index over time can include observing multiple time instances of the respiratory index changing over time. For example, the (e.g., instantaneous) change in the respiratory index over time for each of multiple time points can be determined. This change (with multiple time points) in the (e.g., instantaneous) change in the respiratory index (over time) can be used to determine the patient's respiratory status. That is, for example, the derivative of the respiratory index over time can be found at multiple time points, and these multiple time instances of the derivative of the respiratory index over time can also be differentiated with respect to time to obtain a second derivative of the respiratory index. For example, this can be the respiratory index, a patient parameter, the patient's condition, and / or the acceleration of the change in the patient's condition. The first and / or second derivative can be examined and compared to relevant information (e.g., a slope threshold, other change indicator threshold) to assess the patient's respiratory status. For example, the derivative of the respiratory index over time and / or the second derivative of the respiratory index over time can be displayed in numerical and / or graphical form. Monitoring the change in the respiratory index over time across multiple time points includes observing the displayed change in the respiratory index over time for multiple time points and / or calculating and comparing the change to related information. The change in the respiratory index over time may be indicated by a change indicator.
[0204] As an example, a desirable option would be to observe the respiratory index over time and determine whether the respiratory index is trending upward or downward, or changing in some other way, or otherwise has some relationship change relative to relationship data, such as a threshold (e.g., as shown in FIG. 2). From any of the above, an indication of respiratory status can be determined, and from this, a change in respiratory support can be implemented. Or, optionally, the respiratory index and its trend (such as its magnitude and direction) relative to a threshold can be used to directly determine whether a change in respiratory support is needed. Evaluation using the respiratory index can provide a trigger for a change in respiratory support.
[0205] The threshold or other relationship information may be determined through experimental data, clinical research, user input, calculation, and / or other. The threshold or other relationship may be predetermined or determined in real time, or may be input or otherwise provided. The threshold or other relationship may be fixed or may vary depending on other parameters (e.g., it may change over time or may vary depending on other parameters used in the respiratory index, or may instead not be used in the respiratory index).
[0206] Non-limiting examples of thresholds may be a respiratory index threshold that delineates between normal versus difficult breathing conditions and / or a slope threshold that may delineate between a trend toward improvement and a worsening respiratory index (or other "change indicator" threshold, depending on the indicator used that indicates a change in the respiratory index). There may be one or more respiratory index or slope thresholds.
[0207] In some examples, the respiratory index and / or changes in the respiratory index may be: Comparison of a respiratory index (e.g., ROX) versus one or more respiratory index thresholds; Comparison of change in respiratory index over time versus one or more respiratory index thresholds; Comparison of a change indicator (e.g., vector, slope, or other measure of magnitude and / or direction) of change in respiratory index over time versus a threshold (e.g., one or more slope thresholds); Comparison of respiratory index versus one or more patient parameters or some function of one or more patient parameters (SpO2, FiO2 or the like), such as in graphical and / or numerical form that can be displayed and monitored; For example, a comparison of the change in magnitude (drop or rise) of the respiratory index over time against one or more thresholds such as slope (i.e., small slope), where a large difference in the respiratory index (i.e., large delta in ROX) at time=1 versus time=2 may indicate deterioration. Similarly, a large, but slow, positive change in magnitude may be an indication of improvement. Comparison of the change in any of the above versus time as the first derivative for any relationship data and / or comparison of this change versus time (acceleration of change) over time as the second derivative for any relationship data can be evaluated using one or a combination of:
[0208] The above examples refer to the use of respiratory indices to determine a patient's respiratory status.
[0209] In one alternative, a respiratory index and a patient parameter (which may be a component of the respiratory index) may be used to perform the assessment. Thus, more generally, one or more respiratory parameters may be used in conjunction with a respiratory index to assess a patient's condition. This may be particularly useful when a clinician wishes to perform an assessment and dig deeper into what is causing the respiratory condition. A respiratory index by itself may indicate a respiratory condition (e.g., a change in respiratory condition), but may not indicate why the change occurs. In contrast, patient parameters such as respiratory rate, FiO2, and / or SpO2 may provide insight into this, as will be described in more detail below. The respiratory index, patient parameters, and any other information related to a patient's condition or status to perform the assessment may be referred to as "assessment information." Assessment criteria may be used to assist in the assessment.
[0210] The above is not intended to be limiting. Respiratory status assessment may more generally include: displaying the assessment information, assessment criteria and / or relationship information as numbers, plots and / or other graphical indications on a display (static or animated and / or in two or three dimensions, e.g., with time on one axis), and allowing a person to observe the information; and / or The device compares this with relevant information This can be done by:
[0211] Any determination of whether a change in respiratory support is needed based on the use of respiratory indices may be referred to as a “diagnostic stage” or alternatively as a “trigger.” Alternatively, the assessment may also be considered a diagnostic stage, regardless of whether a course of action is determined.
[0212] In many cases, it is the clinician who will assess the respiratory status based on the information displayed on the evaluation device. By displaying various combinations of graphical and numerical representations of parameters and respiratory indices, a trained clinician can interpret them to obtain an indication of the respiratory status, and in particular the direction of the respiratory status and any interventions that may be required. This allows the clinician to make quick decisions in situations where there may be many patients being monitored simultaneously, such as in an emergency department. These assessments may be assisted by prompts (alarms, messages, and the like) from the evaluation device and / or automated decisions may be implemented by the evaluation device. Similarly, this same advantage can be realized for home-care patients; i.e., a clinician remotely monitoring multiple patients can quickly assess patients who are deteriorating or potentially progressing toward a respiratory failure state.
[0213] Previously, clinicians had to use subjective measures based on limited information to assess a patient's respiratory status. Additionally, clinicians had to use invasive testing methods. This embodiment improves on this. Generally speaking, assessments can be performed by graphically and / or numerically displaying respiratory indices, change indicators, patient parameters, and / or thresholds in various combinations to provide supporting information for clinicians to make decisions. Numerical information, two- or three-dimensional plots, animations, moving plots, zoom-in and drill-down information, and contextual information can also be used to perform assessments. Providing visual, contextual, and / or accessible information helps clinicians make quick decisions in an objective manner, as opposed to having to rely solely on subjective considerations. This also enables treatment by exception, addressing those needing assistance first. Examples are provided later in this specification.
[0214] The evaluation (determination) is performed in sessions. A session can be defined, for example, by a therapy session, a day or portion thereof, an overnight or portion thereof, a sub-session, or a length of time (e.g., 5 hours). Generally, the comparison is performed relative to thresholds and / or previous respiratory index parameters determined in the same session. That is, the evaluation is based on what occurs in real time. The evaluation can be performed for each time period, where each time period is a portion of a session. For example, the evaluation can be performed every minute, every 10 minutes, every hour, or the like. Over this time frame, the evaluation can include examining changes between the respiratory index and / or configuration parameters from time period to time period. Such evaluation can be based solely on changes in the respiratory index and / or configuration parameters and / or can be compared to related information. Alternatively, the evaluation (determination) can be performed within and / or across multiple sessions. For example, over multiple sessions, the evaluation can include examining changes between the respiratory index and / or configuration parameters from session to session (and / or within a session). Such assessment may be based solely on changes in respiratory indices and / or configuration parameters and / or may be compared with related information.
[0215] In a home environment, the clinician likely will not be located with the patient. In this case, the patient's respiratory index / condition can be remotely monitored. For example, this can be via an evaluation device that remotely provides evaluation information to the clinician and / or by the clinician processing the evaluation device to remotely communicate with the respiratory assistance device and / or any other devices (sensors, etc.) needed to perform the evaluation. The respiratory assistance device and / or evaluation device have communication capabilities 55B, 55A that allow the clinician to remotely monitor the patient. For example, the remote evaluation device can calculate the respiratory index and / or changes in the respiratory index based on measurements from the respiratory assistance device as well as the patient. The respiratory index can be calculated with the respiratory index value provided to the clinician. Processing can occur on the respiratory device, and the processed information can be provided to the clinician, and / or the clinician as the evaluation device can instead receive the raw data and perform the evaluation. For example, there can be a remote patient monitoring system 57 having at least a server 57 that receives information from the evaluation device and / or the respiratory assistance device via a network 56 accessible to the clinician. For example, a clinician may access the information via a web browser / web server. The assessment device may be a server, a respiratory device, a mobile device and / or any other assessment device.
[0216] The remote patient monitoring system 57 further comprises one or more databases, a report engine for generating patient reports, and other suitable components that allow for patient monitoring and generation of patient reports (including, for example, respiratory support device usage, therapy settings, etc.) The remote patient monitoring system 57 allows a clinician to remotely manage multiple patients, for example, while the patients are at home (i.e., outside of a hospital).
[0217] The respiratory index data can be provided to a remote patient monitoring system 57. The respiratory index measurements and changes in the respiratory index can be incorporated into a patient report that includes measured patient parameters such as SpO2, flow rate, humidity set point and time of use, and changes in the respiratory index, as well as respiratory index measurements over time.
[0218] Changes in the respiratory index allow a clinician to assess whether the current therapy being delivered is effective and also allow the clinician to implement changes in the delivered therapy. In one example, the operating parameters (e.g., prescription settings) of the respiratory assistance device can be remotely updated based on changes in the respiratory index. Changes in the respiratory index can be used by the remote monitoring system to generate alerts or messages to the clinician and patient. The remote patient monitoring system 57 can automatically change therapy settings, for example, remotely changing high-flow therapy settings such as the oxygen fraction (i.e., % oxygen in the gas), flow rate, and / or humidity (e.g., dew point or relative or absolute humidity) based on changes in the respiratory index. Examples of how therapy settings (i.e., therapy parameters) may be changed are described below. Therapy settings, specifically, for example, high-flow respiratory assistance device settings, can be changed and transmitted to the respiratory assistance device 10 via the network 56 as a new prescription. The respiratory assistance device 10 can incorporate these changes and begin operating based on the new prescription (i.e., updated therapy settings, i.e., updated therapy parameters). Alternatively, a clinician or healthcare professional may implement changes to therapy settings in the remote monitoring system 57 based on changes in respiratory indices. These clinician changes are transmitted to the respiratory assistance device 10 via the network 56. The new settings are transmitted as a new prescription. The respiratory assistance device implements the changes defined in the new prescription (i.e., updates its therapy settings) to operate based on the new settings.
[0219] The process of monitoring the respiratory index can be continuous. This remote monitoring provides an effective method for hospitals to monitor patients. It allows clinicians to assess the patient's respiratory status and determine whether high-flow therapy will assist the patient by checking for changes in the respiratory index. Changes in the respiratory index indicate changes in the patient's respiratory status. The present disclosure provides an effective method for hospitals to monitor patients. It allows clinicians to remotely change therapy settings on the respiratory assistance device associated with the patient based on the assessed changes in the respiratory index.
[0220] Once the decision is made (triggered), a decision is made to change the respiratory support. The decision to change the respiratory support can be made by a clinician and / or by an evaluation device.
[0221] This may result in one or more changes to the use of the respiratory support device, which may include: Operational changes (automatic or clinician initiated) such as increasing the flow or oxygen ratio provided to the patient; Changes in usage, including, for example, the delivery of an entirely different therapy such as ventilation (such as intubating the patient instead of delivering high flow through an unsealed cannula); the need to implement changes; How and / or when to change therapy; Configuration changes Providing instructions (e.g., alerts, alarms, and / or instructions) to the clinician. is.
[0222] These are not intended to be limiting of the respiratory support modification options available.
[0223] As part of the evaluation phase, whether performed by a person and / or by a device, instructions and / or therapy changes can be used to indicate that there has been a determination made and / or that there should be a therapy change and / or what the therapy change should be, for example: Audible alarm: This can be implemented to indicate that a determination has been made, what the determination is (e.g., worsening), and / or that some therapy change will or is occurring. The alarm can be implemented on the therapy device or a separate device (e.g., physician phone). Different sounds can indicate different patient conditions (or different changes to the patient condition). Visual alarm: This can be implemented to indicate that a determination has been made, what the determination is (e.g., worsening), and / or that some therapy change will or is occurring. The alarm can be on the therapy device or a separate device. Different visual outputs can indicate different patient states (or different changes to the patient state). Message: This can be implemented to indicate that a determination has been made, what the determination is (e.g., worsening), and / or that some therapy change will or is occurring. The message can be sent to one or more recipients / devices (each recipient / device can receive a different message or the same message). The message can include a warning and / or suggest a change to one or more device set points. The message can include a suggestion of one or more specific values that require a change to one or more set points. The calculation of these specific values can be performed on the therapy device or on a separate device. Automatic changes to one or more device set points: After determining (e.g., a worsening patient condition), a controller associated with the device can change one or more set points if the index value / slope suggests that the patient needs different assistance, e.g., more flow. Calculation of the appropriate change or changes can be performed on the therapy device or on a separate device. Device Turn-Off: After determining (e.g., patient device improvement), the controller associated with the device can turn off the therapy / device if the index value / slope suggests that the patient no longer requires therapy (i.e., the index value / slope is on the low-risk side of the threshold and / or moving in a favorable direction).
[0224] This content can be provided on the device itself or remotely to another device, in which case the clinician can be located at a remote location.
[0225] This list is not exhaustive.
[0226] The assessment device may be located near the clinician or may be owned by the clinician. It may be located, for example, in a hospital environment. Alternatively, the assessment device may be located remotely from the clinician. It would have communications capabilities to allow communication to the remote clinician. It may be located, for example, in a home environment, where the clinician is not co-located with the patient / respiratory apparatus and / or assessment device. In another alternative, the respiratory apparatus may be located with the patient, but the assessment device is remote somewhere else with the remote clinician.
[0227] As noted above, the described embodiments will typically be associated (at least initially) with the use of a nasal or high-tracheal flow respiratory assistance device 10, as generally shown in FIG. 3. However, this is not intended to be limiting, and for example, the embodiments may be used in connection with NIV or other respiratory devices. There will be a device 10 that provides respiratory assistance and a device 20 that determines a diagnosis. These may be one and the same device (e.g., a respiratory assistance device) or may be different devices (e.g., a respiratory assistance device and a mobile device). If separate devices (as in FIG. 3), they may together form a respiratory assessment and assistance system 1.
[0228] For example, referring to FIG. 3 , there may be a respiratory assistance device having a controller (which may also be referred to as a processor) 19, an I / O interface 54, a flow generator 50, and a humidifier 52. The respiratory assistance device may be configured to receive auxiliary gases, such as air and / or oxygen. It may provide a flow of gas to a patient through a respiratory conduit 5 and a patient interface 51, such as, for example, an unsealed interface (such as, but not limited to, a nasal cannula) or a tracheal interface. The controller 19 may operate the device to provide the required flow rate and / or pressure, temperature, humidity, oxygen or other gas ratios, and the like, based on inputs from sensors 11 within or to which the system is connected. These may be non-invasive sensors.
[0229] The device acquires parameters for the operation of the device (such as temperature, humidity, pressure, flow sensors, etc.) and parameters for determining respiratory indices (such as SpO2, FiO2 (or FdO2 - the ratio of oxygen delivered to the patient) and respiratory rate). physiological parameters (which may include respiratory parameters), and Respiratory device parameters (which may include operating parameters) The device also has (integrated therein) and / or is connected to a sensor 12 that provides FiO2. Any reference to FiO2 can be replaced by a reference to FdO2, O2 ratio or any other oxygenation parameter, and vice versa - these variations can be used interchangeably. The physiological parameter can include pulmonary function and / or oxygenation parameters.
[0230] Note that, as a possible example, any of these may be wearable (see, for example, 54E in FIG. 6).
[0231] In the case of SpO2, the device may connect to a physiological sensor such as a pulse oximeter or other blood oxygen sensor. This may be a wearable device, see for example 54E in FIG. 6. A wireless pulse oximeter (SpO2 sensor) may be present. The wireless pulse oximeter may communicate via Bluetooth or infrared or other communication protocols. A wireless SpO2 allows for patient mobility; for example, the patient can walk around while still using SpO2, and the evaluation device still receives measurements. The SpO2 sensor connects to a respiratory or evaluation device. The respiratory device is a non-invasive sensing unit that also provides respiratory assistance. The respiratory device can process the sensor signal and calculate the index or / respiratory index changes.
[0232] Alternatively, the changes in the respiratory index can be implemented in a remote monitoring system.
[0233] In the case of respiratory rate, this can be measured / determined by using a pressure sensor or flow sensor or any other respiratory rate sensor from which the respiratory rate can be determined. For example, the respiratory rate can be calculated by using a flow sensor and then applying a mathematical process to the flow sensor readings to determine the respiratory rate. In one example, a respiratory assistance device is configured to use a flow sensor and process the flow sensor to filter out the flow signal from the blower. The frequency response of the filtered flow signal is determined (e.g., Fast Fourier Transform or other frequency response) to calculate a peak frequency. The peak frequency corresponds to the respiratory rate. Other frequency analysis techniques can be applied to the flow signal to determine the respiratory rate. For example, frequency analysis can determine one or more local maxima, and the maximum with the largest magnitude can be identified as the respiratory rate. Alternatively, the motor speed signal is processed (e.g., filtered) from the flow signal and frequency analysis is performed, in which case the frequency with the local maxima and largest magnitude is the respiratory rate. Alternatively, frequency analysis using the Geortzel algorithm / Geortzel analysis can be performed.
[0234] Alternatively, a measurement of respiration rate can be achieved by, for example, having a temperature sensor in the cannula built into the cannula and determining the temperature difference, which indicates the respiration rate. A similar measurement can be achieved with a pressure or flow sensor in the cannula, and changes in pressure or flow can indicate the respiration rate.
[0235] Alternatively, respiration rate may be determined from other sensors, such as (but not limited to) a pulse oximeter within the device, a respiration rate sensor, a pressure sensor or flow sensor within the tubing or patient interface, or a chest band sensor, or any combination thereof. One or more of these may optionally be a wearable or actigraphy device (e.g., see 54E in FIG. 6) configured to measure respiration rate. The wearable device may be, for example, a wrist-worn device in wireless communication with the flow generator or a smartphone.
[0236] For example, the respiratory rate is calculated based on a pressure signal. The pressure signal can be measured by using a pressure sensor or pressure path in the patient interface, or the sensor can be within the device and the pressure value can be transmitted back to the device. The pressure difference can be processed and the respiratory rate can be calculated by measuring the number of zero crossings. A similar approach can be used by using a flow reading. The cyclical characteristics of the P or F signal can be processed to obtain the respiratory rate.
[0237] Alternatively, a suitable sensor, such as, for example, a respirometer, can be used to measure gas exchange (e.g., CO2 exchange) at the interface to determine respiratory rate. Alternatively, a photoplethysmogram or electrocardiogram can be used to measure.
[0238] Alternatively, any sensor, such as an accelerometer, can be placed on the chest or abdominal wall to measure respiratory rate. The sensor can be separate from the device with wireless communication.
[0239] Alternatively, the respiratory rate can be determined as described in U.S. Patent Application Publication No. 202101133796, which is incorporated herein in its entirety.
[0240] In one example, the expiratory time can be calculated from a flow sensor signal, a pressure signal, or a combination of flow and pressure sensor signals. The following is an example of an expiratory time calculation for a non-sealed system providing high-flow respiratory assistance through an unsealed cannula, such as the device 10 disclosed herein. The method is performed by a controller. The device's controller receives a flow signal representing the flow rate of gas. The controller pre-processes and filters the flow signal. The controller then determines a primary respiratory parameter ratio, such as the ratio between inspiration time and total breathing time and / or expiration time and total breathing time, in the patient's respiratory cycle. The respiratory rate is determined or received. The respiratory rate can be determined as described above or can be received manually at the respiratory assistance device. The device uses the respiratory parameter ratio and the respiratory rate to determine the expiratory time. Additionally, minute ventilation can be determined from the respiratory rate and the measured flow rate. In a further example, the expiratory time can be calculated as described in U.S. Provisional Patent Application No. 63 / 146,184, filed February 5, 2021, the contents of which are incorporated herein in their entirety.
[0241] The measured or calculated respiratory rate is stored within the NHF therapy device. The FiO2 reading is also stored within the NHF device for a predetermined period of time. Alternatively or additionally, these and / or any other readings may be transmitted to and stored on another device, such as a smartphone.
[0242] Optionally, the respiratory rate can be manually entered via the user interface.
[0243] Other options are possible.
[0244] FiO2 can be found by measuring FdO2 or another measure of the concentration of O2 in the gas flow using any suitable sensor, such as an ultrasonic sensor or other gas concentration sensor. For example, this can be done with a flow sensor and an O2 concentration sensor, where optionally the flow sensor is an in-line flow sensor. This sensor can be positioned downstream of the ambient air and O2 mixer.
[0245] Ultrasonic sensors can be used to allow fast measurement of FiO2, i.e., FdO2. This allows for fast response and control of oxygen in the gas stream. As mentioned above, FdO2 can be a surrogate for FiO2. The measured FdO2 is reported and presented on the device screen as FiO2. During high-flow respiratory assistance, the flow rate is large enough so that ambient air is not drawn into the nasal cannula as the patient inhales. Therefore, the delivered oxygen ratio, FdO2, is expressed as equivalent to FiO2 (inspired oxygen ratio). Ultrasonic (i.e., ultrasonic) sensors allow for fast response, i.e., rapid measurement, and therefore fast response. A valve on the oxygen inlet can be controlled to change the oxygen ratio in the gas stream (thereby affecting FdO2).
[0246] Alternatively, any of the above parameters can be entered manually, and from this the respiratory index can be calculated.
[0247] The evaluation device and / or the respiratory support device may also have individual communications capabilities. This may be a modem or other transceiver. This allows the evaluation device and the respiratory support device to communicate with each other, whether remote or co-located, and / or with a remote clinician. This may allow the clinician to remotely monitor the patient and their respiratory support and / or changes as needed. There may be a remote server that receives information from the evaluation device and / or the respiratory support device that is accessible to the clinician. For example, the clinician may access the information via a web browser / web server. The evaluation device may be a server, a respiratory device, a mobile device, and / or another evaluation device.
[0248] For example, with reference to FIG. 3, a high flow respiratory device 10 will be generally described. Generally speaking, the device has a main housing 10 containing a flow generator 50 in the form of a motor / impeller arrangement, an optional humidifier 52, a controller 19, and a user I / O interface (e.g., including a display and one or more input devices, such as one or more buttons, a touchscreen, or the like). An input for supplemental oxygen or other supplemental gas may be provided. A valve (e.g., a proportional valve) may be provided in fluid communication with the supplemental gas inlet and configured to control the amount of supplemental gas introduced into the device. The screen may be a removable screen. The controller 19 is configured or programmed to control the components of the device, including operating the flow generator to generate a flow of gas (gas flow) for delivery to the patient, operating the humidifier (if present) to humidify and / or heat the generated gas flow, receiving user input from the I / O interface for device reconfiguration and / or user-defined operation, and outputting information to the user (e.g., on a display). The user may be a patient, a healthcare professional, or someone else interested in using the device. A patient respiratory conduit is coupled to a gas flow output within the housing of the flow therapy device and is coupled to a patient interface 51, such as a nasal cannula having a manifold and nasal prongs. The patient respiratory conduit may have a heater wire 5 for heating the gas flow passing through to the patient.
[0249] Some examples of high flow respiratory apparatus are disclosed in International Patent Application No. PCT / NZ2016 / 050193, filed December 2, 2016, entitled "Flow Path Sensing for Flow Therapy Apparatus," and International Patent Application No. PCT / IB2016 / 053761, filed June 24, 2016, entitled "Breathing Assistance Apparatus," which are incorporated herein by reference in their entireties. Examples of high flow respiratory apparatus configurations that may be used with aspects of the present disclosure are also described further below.
[0250] The respiratory assistance device can determine the respiratory index and / or changes in the respiratory index and can perform an evaluation that results in any changes in respiratory assistance. Alternatively, relevant information can be transmitted to a separate evaluation device, where the determination of the respiratory index, changes in the respiratory index, the patient's respiratory status, and / or any changes in respiratory assistance can be performed. Information regarding changes in respiratory assistance can then be transmitted back to the clinician and / or the respiratory assistance device for appropriate action. Additionally or alternatively, the information can be transferred to the physician server 100 or a remote server. For example, the clinician can access the information via a web browser / web server. The evaluation device can be a server, a respiratory device, a mobile device, and / or any other evaluation device. There can be wired and / or wireless communication between the respiratory assistance device and the clinical device, such as a smartphone.
[0251] The respiratory assistance device may have a controller configured to control the blower to provide bilevel pressure therapy. The respiratory assistance device may be coupled to a sealed interface, such as a full-face mask. Optionally, NIV tubing having a smaller resistance to flow than the high-flow tubing (as shown in the figure) may be coupled. A user may manually select an NIV mode (e.g., bilevel pressure therapy or CPAP therapy mode), and the controller is configured to operate in the selected mode. Alternatively, the respiratory assistance device may be configured to detect the connection of the sealed interface and / or the connection of the NIV tubing and automatically change control.
[0252] In a further alternative, the patient may be physically coupled to a suitable pressure support device, such as, for example, an NIV device.
[0253] Generally speaking, there are various embodiments of the respiratory index and the manner in which changes in the respiratory index are used to assess changes in the patient's respiratory status and / or respiratory assistance, and any of these embodiments may include: an evaluation phase, and optionally, Respiratory support phase (information on respiratory support and / or changes thereto) The respiratory assistance device and (optionally) a separate assessment device may be used in combination with any of the various embodiments to perform the above.
[0254] 2. Evaluation Method 2.1 Overview of the evaluation method 1, changes in respiratory index are used to determine appropriate respiratory assistance actions. As an interim step, the patient's respiratory status may be determined from changes in respiratory index, although this is not required.
[0255] Respiratory indices can be determined from / are a function of one or more pulmonary function parameters (such as respiratory rate, expiratory time, minute ventilation, etc.) and one or more oxygenation parameters (such as SpO2, FiO2, FdO2, O2 ratio, etc.).
[0256] The respiratory index is physiological parameters (which may include respiratory parameters), and Respiratory device parameters (which may include operating parameters) The parameter f(x) may be a unitless numerical value that is a function f(x) of one or more patient parameters, where f(x) is the function of one or more patient parameters.
[0257] The physiological parameters may include pulmonary function and / or oxygenation parameters.
[0258] The respiratory index can be calculated based on sensor inputs and / or user inputs providing the above data. As an example, the respiratory index is based on respiration rate (breathing rate) and FiO2 (oxygen concentration delivered to the patient). The index is preferably related to 1 / RR and / or 1 / FiO2. In one example, the index = A / B(RR*FiO2), where A and B can be constants or other values.
[0259] An example of a respiratory index is the ROX index.
[0260] The ROX index is ROX(x)=f(FiO2,SpO2,RR) and is calculated as follows: ROX = (SpO2 / FiO2) / RR where: SpO2 is the set point saturation (%) of oxygen in the patient's blood, or alternatively the actual saturation (%) of oxygen in the patient's blood; FiO2 is the percentage of oxygen inspired by the patient (FdO2 can be used as a proxy), and Respiratory rate is the respiratory rate in breaths per minute.
[0261] These are the "input parameters" received or pre-configured via sensors and / or the user via the I / O interface, see step 10.
[0262] The SpO2 may be received, for example, from a sensor such as a pulse oximeter or from the SpO2 setpoint of the device. The respiratory rate may be received, for example, from a sensor as described above. The FiO2 may be measured, for example, via a sensor, or may be estimated from the oxygen concentration (e.g., FdO2) provided by the device to the patient. These are examples only. Further details of how the information is obtained are described in connection with device embodiments.
[0263] When the ROX index is used, in a preferred embodiment, the ROX index threshold for respiratory failure is 4.88, which is determined by empirical data. In this case, if the ROX index is 4.88 or greater, the patient is considered to have a low risk of respiratory failure. However, if the ROX index is less than about 4.88, the patient is considered to have a high risk of respiratory failure. It should be noted that clinically insignificant deviations from 4.88 as the threshold are possible and should not be excluded from the scope of the embodiments. Obviously, the threshold can be a different value as appropriate.
[0264] However, simply having a single instance in time of the ROX index relative to a threshold value, by itself, may not be enough information to determine whether the current therapy settings will result in effective treatment for the patient. Trends in the ROX index (or respiratory index more generally) over time and / or its relationship to a threshold value may also be useful.
[0265] In the assessment phase step 20, a respiratory index (e.g., ROX index) can be calculated in step 21, and changes in the respiratory index over time can then be determined and used in step 22 to determine the success of high-flow respiratory support and whether changes are required. In the case of the ROX index, if the FiO2 and respiratory rate increase, the ROX index begins to drop in value. Increases in FiO2 and respiratory rate indicate a deterioration in the patient. Continuous monitoring of the ROX index (which results in a change in the ROX index) is useful when the patient is in an unstable state.
[0266] As an example, referring to FIG. 1 , the device receives input parameters at step 10 and determines, for example through calculation, a respiratory index (e.g., ROX index) and the change in the respiratory index over time at step 21. Optionally, an assessment of the patient's respiratory status is then performed based on the change in the respiratory index over time. This can be done by determining the relationship of the change in the respiratory index over time to other information. For example, the change in the respiratory index over time is compared to a threshold to determine whether the patient's respiratory status is "dyspnea" or possibly a more severe level of difficulty (e.g., the patient is at high risk of respiratory failure).
[0267] Optionally, in step 22, the assessment of a change in respiratory support can be determined based on the patient's respiratory status (or directly from the ROX index or other respiratory index as it changes over time) (because the patient's respiratory status can be assessed based on the relationship of the change in the respiratory index over time to a threshold, and then steps 22 and 23 can alternatively consider determining the assessment of a change in respiratory support based on the relationship of the change in the respiratory index over time to the threshold). The change in respiratory support in step 23 using the ROX index over time and the threshold can be an escalation of respiratory support or a de-escalation of respiratory support. Details of the change in respiratory support (escalation, de-escalation, or other) are described below in connection with device embodiments.
[0268] The above examples refer to the use of a respiratory index to determine a patient's respiratory status. As noted above, in one alternative, a patient parameter (which may be a component of the respiratory index) may be used to perform the assessment. Thus, more generally, one or more respiratory parameters may be used instead of and / or in addition to a respiratory index to assess patient status.
[0269] In many cases, it is the clinician who will assess the respiratory status based on the information displayed on the assessment device. Displaying various combinations of graphical and numerical representations of parameters and respiratory indices allows the clinician to obtain an indication of the respiratory status and, in particular, the direction of the respiratory status and any interventions that may be required.
[0270] In the case of evaluation by a clinician, the display of information assists the clinician both in terms of the information being displayed in a way that can be observed and evaluated.
[0271] Generally speaking, the assessment can be performed by graphically and / or numerically displaying respiratory indices, change indicators, patient parameters and / or thresholds, etc. in various combinations to provide supporting information for the clinician's decision making, examples of which are provided later in this specification.
[0272] To aid the clinician in their assessment, any one or more of the following parameters may be displayed numerically and / or graphically in any appropriate combination. Any particular parameter may not warrant action by itself, but may indicate that action is needed when considered in combination with other information. For example, the ROX index may not by itself flag any concern, but a worsening change in ROX over time may. Or, a worsening change in the ROX index over time may not be cause for concern unless accompanied by a concerning change in some other parameter, such as respiratory rate, SpO2, or FiO2. Absolute or relative changes in any of the above may not be cause for concern unless they exceed a certain threshold. By providing access to various combinations of such information, the clinician obtains a richer set of information for assessing respiratory status.
[0273] Some of the following parameters (evaluation information, evaluation criteria and / or relationship information) can be used alone or in combination. ·Respiratory index, Changes in respiratory indices over time, Patient parameters (e.g., respiratory rate, SpO2, FiO2), Changes in patient parameters over time, A change indicator (such as a slope, vector, magnitude, difference, angle, etc.) showing change (of any parameter herein) over time or across another scale Respiratory index threshold, · Change indicator threshold, These include, for example: Respiratory index vs. time, Change in respiratory index versus time, Patient parameters versus time, · Changing patient parameters versus time, Respiratory index threshold, Change Indicator Threshold Some of the parameters may be displayed graphically (i.e., as 2D and / or 3D plots / graphs or other suitable visual output) or numerically. Input can be received from the user to manipulate the graphical information to gain more insight. For example, this - Zoom in and / or move the graph, Drilling into graphs to obtain further graphs for underlying parameters, such as selecting a respiratory index versus time graph and then obtaining a patient parameter versus time plot may include:
[0274] The above is not intended to be limiting, and various examples are described below.
[0275] Below follows a possible example, which should not be seen as a limitation on the more general embodiment above.
[0276] 2.2 Embodiment 1 - Evaluation Method - Respiratory Index Trends In this embodiment, and with reference to FIG. 1, a respiratory index is determined over time and the change in the respiratory index over time is used to assess changes in respiratory status and / or respiratory assistance.
[0277] The respiratory index is one parameter describing pulmonary function and one parameter describing oxygen exchange, or Respiratory rate - e.g., RI (RR), or Function of respiratory rate and FiO2 - e.g., RI(FiO2,RR), or Functions of respiratory rate, FiO2 and SpO2 - e.g., RI(SpO2,FiO2,RR) It can be any of those mentioned above, such as a function of
[0278] In step 20, changes in the respiratory index over time are evaluated. Optionally, the patient's respiratory status is evaluated, and the trend in the change in the respiratory index is used, for example, to substantially indicate the patient's respiratory status. With reference to FIG. 2 or FIG. 5, an assessment can be made that the patient's respiratory status is good or improving if the respiratory status trends toward better values (e.g., progressing toward, crossing, or exceeding a threshold value) and / or trends toward better values at or above a threshold rate. In contrast, an assessment can be made that the patient's respiratory status is poor or deteriorating if the respiratory status trends toward worse values (e.g., moving in the other direction away from, crossing, or exceeding a threshold value) and / or trends toward worse values at or above a threshold rate. From this, a decision regarding any changes in respiratory assistance can be made. Note that it is not necessary to actually determine the respiratory status. The decision regarding changes in respiratory assistance in steps 22 and 23 can be made from changes in the respiratory index over time without explicitly determining the respiratory status. However, the relationship between respiratory indices and respiratory status can be used to prescribe appropriate respiratory assistance actions when a particular respiratory index or change (eg, trend) in the respiratory index occurs.
[0279] The trend can be characterized in any suitable manner in the form of a respiratory index change (trend) parameter, which characterizes the trend / change in terms of both magnitude and direction. As an example, the trend can be in the form of a vector indicating the change in the respiratory index (e.g., over time, but also in relation to another suitable parameter). In addition, information regarding thresholds indicating crossings between low and high risk values of the respiratory index can also be used to assess the trend. The vector can be found, for example, from the derivative of a respiratory index versus time plot, which gives the slope of the change and therefore its direction and magnitude. This can be the direction of any significant change, as well as the magnitude (i.e., rate of change) indicating how quickly the change occurs. The second derivative with respect to time can be used to observe the acceleration of the change. The second derivative can be displayed numerically and / or graphically.
[0280] Going a step further, one can also consider changes in trends over time. For example, the derivative of the respiration index versus time is evaluated over time, and optionally the second derivative (or some other measure of change in slope / trend) of the respiration index over time is evaluated. The first derivative is the trend, and the second derivative is the change in trend over time. The second derivative of the respiration index versus time can be evaluated in light of the relationship information of slope and / or magnitude. It is also not necessary to actually obtain the derivative versus time; it is just a consideration to obtain the change over time.
[0281] The change in the respiratory index over time includes determining a trend of the respiratory index. Furthermore, the trend can have multiple trends, each of which itself changes over time. Each trend will be an instantaneous trend that defines the trend (change over time) of the respiratory index at that time, and determining the trend can include determining multiple instantaneous trends over time. Each trend or instantaneous trend can be represented by trend parameters including magnitude (which itself indicates the rate of change of the respiratory index over time) and direction (of change), and optionally vector, or Slope (and optionally magnitude) The form may be:
[0282] A typical respiratory index versus time plot is shown with a typical respiratory index threshold in Figure 2. If the respiratory index progresses above the threshold, this indicates good respiratory status (normal breathing or only mild difficulty and / or low risk of respiratory failure), while if the respiratory index progresses below the threshold, this indicates poor respiratory status (e.g., worsening breathing, difficulty breathing and / or high risk of respiratory failure).
[0283] Referring to FIG. 2 , it can be seen that the patient starts at “A” with a patient respiratory condition that has a small respiratory index, which in itself indicates respiratory distress, such as a high risk of respiratory failure. However, referring to portion “A” of the graph, as can be seen from the slope and vector direction of the plot and from the general direction of the plot, the respiratory index tends to rise toward the threshold, meaning that the patient is improving. Therefore, in this situation, the patient in an escalated respiratory support state (because the patient is in a high-risk patient respiratory state) can be immediately released and de-escalated, even though the patient is still in a high-risk patient respiratory state, or the clinician can at least prepare to de-escalate the respiratory support. In situations where the patient is not in an escalated respiratory support state, the clinician can also decide not to escalate the respiratory support even though the patient is below the threshold, based on the trend toward the threshold, i.e., the respiratory condition is improving.
[0284] In contrast, referring to portion B of the graph, as can be seen from the slope and direction of the vector of the plot and from the general direction of the plot, the respiratory index has a tendency to decline toward the threshold, which means the patient is deteriorating. Therefore, in this situation, a patient in a de-escalated respiratory support state (because they are in a low-risk patient respiratory state) can be immediately placed in an escalated respiratory support state (even though they are still in a low-risk patient respiratory state), or the clinician can at least prepare to escalate the respiratory support. In a situation where a patient is in an escalated respiratory support state, the clinician can also decide not to de-escalate the respiratory support based on the patient's tendency to decline toward the threshold, even though they are above the threshold.
[0285] Various other trends and thresholds can be used in such analyses to assess the patient's respiratory status and whether to change respiratory support. The use of trends provides a better level of information, including some predictive information, to help react to and provide appropriate changes in respiratory support before they are actually needed.
[0286] Any information relating to respiratory indices, changes in respiratory indices over time, changes in respiratory status and / or respiratory assistance may be communicated in any suitable manner through the IO interface to enable a clinician to assess and determine the respiratory assistance required. The information may also be forwarded to the device, respiratory assistance device and / or server 100 or the like as needed.
[0287] 2.3 Embodiment 2 - Evaluation Method - ROX Index Trend 1, 4 and 5, in one possible embodiment of the use of the respiratory index over time, the change in the ROX index over time is used to assess the respiratory status of the patient.
[0288] The ROX index, as described above, is determined, for example, from the calculation of: ROX = (SpO2 / fiO2) / RR
[0289] As mentioned above, the ROX index can be calculated and used to determine the success of respiratory assistance.
[0290] The benefits of this scheme compared to the single value scheme can be seen from the table below.
[0291] [Table 1]
[0292] For example, two patients begin NHF therapy and both have an ROX value of 4.0. Because this is only the beginning of therapy, the ROX values can be monitored to see if the index improves. During the first six hours, patient 1 has a decrease in respiratory rate and the FiO2 is lowered, while patient 2 has an increase in respiratory rate and the FiO2 is increased. As a result, patient 1's ROX value at six hours is 6.0 and patient 2's is 3.0. Patient 1 has a high likelihood of success with NHF therapy and can be maintained on NHF. However, patient 2 has a tendency to decline and a low ROX, thus requiring consideration of escalation of care.
[0293] At the start, Patient 1 and Patient 2 both have an ROX index of 4.0, which is below 4.88 and therefore indicates a risk of respiratory failure. In both of these cases, a single-value ROX index assessment would indicate that the patient's respiratory status is at high risk for respiratory failure and escalation of respiratory support would be required. However, Patient 1 soon after actually improves, with ROX improving to 5.0, 6.0, and 7.0, well above the 4.88 threshold. Therefore, any escalation of respiratory support would be premature and unnecessarily endanger the patient's health without benefit. Conversely, Patient 2 deteriorates, as their ROX index drops to 3.5, 3.0, and then progresses to respiratory failure. As FiO2 and respiratory rate increase, ROX begins to drop in value. Increases in FiO2 and respiratory rate indicate a patient's deterioration. Continuous monitoring of the ROX index is useful when a patient is in an unstable condition. Clearly, escalation of respiratory support is warranted in this situation. A single value of the ROX index assessment does not capture this dynamic situation.
[0294] Thus, rather than comparing a single ROX index to a threshold, it is possible to determine the change in the ROX index over time (a trend parameter), and from the change in the ROX index over time, preferably relative to a threshold, an assessment can be made as to the patient's respiratory status, and from this, an assessment can be made as to any changes in respiratory support that may be required.
[0295] For example, changes in the ROX index over time may indicate a trend toward improvement in the ROX index, which may result in de-escalation of respiratory support, or alternatively may indicate a trend toward worsening of the ROX index, which may result in escalation of respiratory support.
[0296] This can be illustrated in relation to Figures 4 and 5, which show plots of ROX index versus time and respiratory rate versus FiO2, respectively, for two patients - Patient 1 (40) and Patient 2 (41). Each graph shows a threshold associated with the ROX index of 4.88 that delineates between patient respiratory conditions indicative of a high risk of respiratory failure and those indicative of a low risk of respiratory failure. The assessment of ROX (or other respiratory index) is also illustrated in relation to Figure 1, which shows a flow diagram of the assessment method.
[0297] The SpO2, FiO2 and respiratory rate are obtained in the usual way, for example from sensors, and the ROX index is calculated therefrom, for example in a controller. As mentioned above, devices for performing the evaluation method are described in more detail below. The ROX index is calculated over time. This may be calculated continuously or periodically in any suitable manner, and the values may be stored by the controller.
[0298] Furthermore, the change in the ROX index over time is determined in an appropriate manner. This can be, for example, by a trend parameter in the form of a vector showing the change in the ROX index over time, as shown in Figure 4, or alternatively by plotting the change in respiratory rate versus FiO2 at various times, as shown in Figure 5, both of which provide a measure of the magnitude and direction of the change. Figure 4 provides this in the form of a slope, while Figure 5 provides it in the form of a vector. It should be noted that these figures can be provided on the mobile device and / or respiratory device described in the following embodiments.
[0299] One can go a step further and consider changes in trends over time. For example, the derivative of the respiration index versus time is evaluated over time, and optionally the second derivative of the respiration index over time is evaluated. The first derivative is the trend, and the second derivative is the change in trend over time. The second derivative of the respiration index versus time can be evaluated in light of slope and / or magnitude relationship information.
[0300] For example, the trend may include multiple instantaneous trends, and determining the trend may include determining multiple instantaneous trends over time. Each trend and instantaneous trend may be represented, for example, as a vector including a magnitude and a direction. The instantaneous trend parameters provide an updated trend over time. Figure 5 shows vectors for Patient 1 (40) and Patient 2 (41) at different times obtained from the data in the table above.
[0301] Instead, any other suitable depiction or characterization of changes in the ROX index can be performed, and these two graphs are merely examples. The graphs and Figures 5 and 6 are for illustrative purposes only to illustrate the concept. It may not be necessary for the controller to actually determine and / or display the graphs as described above. Rather, the evaluation can be performed by processing the ROX index values in any suitable manner to obtain the same information.
[0302] Any information relating to the ROX index, changes in ROX over time, respiratory status and / or changes in respiratory support may be communicated (and / or stored) in an appropriate manner through the IO interface to enable a clinician to assess and determine the respiratory support required. The information may also be transferred to the device, respiratory support device and / or server 100 or the like as needed via wired or wireless transmission, including, for example, NFC.
[0303] 3. Respiratory support device and control method The respiratory index (and optionally respiratory status) assessment methods described in the embodiments herein can be used to determine the best method for providing respiratory assistance. In a preferred embodiment, the respiratory assistance is in the form of nasal / tracheal high-flow respiratory assistance using a suitable device. Accordingly, the present embodiments also relate to methods of providing and modifying respiratory assistance based on the respiratory status assessment method, and to respiratory devices that provide respiratory assistance, where respiratory assistance is provided based on the assessment method.
[0304] Based on the assessment phase, one or more of the following changes in respiratory support may occur: The changes in respiratory support referred to herein may be implemented by using the respiratory support device in different ways.
[0305] These can generally be divided into uses that provide escalation and de-escalation of respiratory support.
[0306] escalation: High-flow respiratory support is continued but provided at a higher or lower level, e.g., flow, O2 concentration, humidification, flow oscillation and / or other parameters are increased or decreased. Patients should: NIV pressure breathing support, Mechanical (invasive) ventilator respiratory support via intubation, and transferred to more invasive respiratory support such as
[0307] De-escalation: Remove invasive respiratory support, if used, and return to basic respiratory support (e.g., NIV respiratory support or nasal high flow), or Remove NIV respiratory support, if used, and return to basic respiratory support (e.g., nasal high flow), or De-escalate nasal hyper-flow if used.
[0308] Escalation and / or de-escalation can be triggered automatically and / or via a message, alert, or other indicator to the clinician to indicate that a change to respiratory support should be implemented based on an evaluation of a respiratory index that indicates a patient's condition is getting better or worse (such as entering or recovering from dyspnea and / or failure).
[0309] In one example, the flow rate is changed based on or in relation to a change or trend in the respiratory index.
[0310] When controlling a change in respiratory assistance, the respiratory device may receive instructions or information (e.g., respiratory index, respiratory status, trend parameters, or the like) from the evaluation device to implement the change or determine the change needed, and then implement the change. When controlling a change in respiratory assistance, the clinician may receive instructions or information (e.g., respiratory index, respiratory status, trend parameters, or the like) from the evaluation device to implement the change or determine the change needed from that information to implement the change.
[0311] 6, a high-flow therapy respiratory support device that can be used to provide respiratory support based on the assessment and that can implement the assessment method is described below. If the escalation or de-escalation involves changing the high-flow respiratory device, this can be manually configured by the clinician and / or the device can be configured to automatically make the change. If the escalation requires mechanical ventilation or NIV pressure respiratory support, the clinician provides it using the appropriate device.
[0312] FIG. 6 illustrates a respiratory assistance device 10 for providing high-flow respiratory assistance to a patient. The device is configured to provide a device gas flow having a specific ratio of air and an auxiliary gas, such as oxygen. The device 10 may be based on integrated or separate components, as shown schematically within the dotted box in FIG. 6. In some configurations, the device may be a modular arrangement of components. Thus, the device may be referred to as a "system," although these terms may be used interchangeably, without limitation. Hereinafter, it will be referred to as a device, but this should not be considered limiting. The device is illustrated as a nasal high-flow respiratory device 10, but it could also be a tracheal high-flow respiratory device with a tracheal user interface.
[0313] The device has a flow source 50 for providing a high flow gas 31, such as oxygen or air or a mixture of air and oxygen and / or one or more other gases. Alternatively, the device may have connections for coupling to the flow source. Thus, depending on the circumstances, the flow source may be considered as forming part of the device or as being separate therefrom, or possibly a portion of the flow source forming part of the device and a portion of the flow source being external to the device.
[0314] The flow source may be an in-wall supply of oxygen, a tank of oxygen 50A, a tank of other gases, or a high-flow therapy device with a blower / flow generator 50B. FIG. 6 shows a flow source 50 with an optional air inlet 50C and a flow generator 50B with an optional connection to an O2 source 50A (such as a tank or O2 generator) via a shut-off valve and / or regulator and / or other gas flow control device 50D. The flow source inlet may be referred to as an auxiliary gas inlet. The description from here on may refer to either embodiment. The flow source may be one or a combination of the described flow generator, O2 source, and air source. While the flow source 50 is shown as part of the device 10, in the case of an external oxygen tank or in-wall source, it may be considered a separate component, in which case the device would have a connection port for connecting to such a flow source. The flow source provides a flow of gas (preferably at a high flow rate) that may be delivered to the patient via a supply conduit and a patient interface 51. Depending on the end use, the patient interface 51 may be a non-sealing (also referred to as "non-sealing") interface, such as a nasal interface (cannula) (e.g., when used in high-flow therapy), or a sealed interface, such as a nasal mask, full-face mask, or nasal pillows (e.g., when used in CPAP). The device may also be used with a tracheal interface for high tracheal flows to the patient. The patient interface 51 is preferably a non-sealing patient interface, for example, to help prevent barotrauma (e.g., tissue damage to the lungs or other organs of the respiratory apparatus due to pressure differences relative to the atmosphere). The patient interface may be a nasal interface (cannula) with a manifold and nasal prongs, and / or a face mask and / or a nasal pillows mask and / or a nasal mask and / or a tracheostomy interface, or any other suitable type of patient interface. The flow source may provide a therapeutic gas flow rate, for example, from 0.5 liters / minute to about 375 liters / minute, or any range within this range, or possibly with higher or lower limits. Perhaps the flow ranges are described in more detail in the definitions in the Terms section above.
[0315] The flow rate may have a therapeutic flow rate component, in which case the therapeutic flow rate is from about 375 liters / minute to about 0 liters / minute, or from about 150 liters / minute to about 0 liters / minute, or preferably from about 120 liters / minute to about 15 liters / minute, or more preferably from about 90 liters / minute to about 30 liters / minute.
[0316] A humidifier 52 can optionally be provided between the flow source 50 and the patient to provide humidification of the delivered gas. This humidifier can have, for example, a heater plate, an area for receiving a humidifier chamber (tub), and a humidifier chamber for holding water. This can be a humidifier integrated with the flow source 10 to form an integrated device 59 (see dotted line), or it can be separate but attachable to the flow source 10. Alternatively, the humidifier 52 can be a stand-alone humidifier having a chamber and a base, in which case the humidifier is coupled to the flow source 10 via a conduit or other suitable means. One or more sensors 53A, 53B, 53C, 53D, such as flow rate, oxygen or other gas ratio, total or partial pressure, humidity, temperature, or other sensors, can be located throughout the device and / or on or near the patient 16. Alternatively or additionally, sensors from which such parameters can be derived can be used. Additionally or alternatively, sensors 53A-53D may be one or more physiological sensors for sensing a patient's physiological parameters, such as heart rate, oxygen saturation (e.g., pulse oximeter sensor 54E), partial pressure of oxygen in the blood, respiratory rate, FiO2, partial pressure of O2 and / or CO2 in the blood, etc. Alternatively or additionally, sensors from which such parameters can be derived may be used. Other patient sensors may include EEG sensors, torso bands for detecting respiration, and any other suitable sensors. Sensors may be considered part of the device or separate from it depending on where they are positioned. For example, and without limitation, physiological sensors may be considered separate from the device, while sensors for measuring device parameters may be considered part of it. In some configurations, a humidifier may be optional or may be preferred due to the benefits of humidified gas in helping to maintain airway health. Humidification is preferably used in conjunction with high-flow gas flows to increase patient comfort, compliance, assistance, and / or safety. One or more of the sensors may form part of the device or may be located external to the device, with the device having inputs for any external sensors.The sensor may be non-invasive.
[0317] In some configurations, there is at least one ultrasonic sensor. This is advantageous because it is a fast acting sensor that provides fast readings of O for FiO or FdO readings. The ultrasonic sensor allows for better and more accurate control of the O ratio due to its speed of response.
[0318] In some configurations, the SpO2 sensor may be wireless.
[0319] Output from the sensors is sent to a controller to assist in controlling the device, including, among other things, modifying the gas flow and / or oxygen ratio. This allows for modification of device usage based on the evaluation. The controller is coupled to the flow source, humidifier, and sensor. It controls these and other aspects of the device, as described below. The controller can operate the flow source to provide a flow of delivered gas. It can also operate one or more gas flow modulators (including the flow source) to control the flow rate, pressure, volume, O2 ratio, and / or other parameters of the gas provided by the flow source based on feedback from the sensors, or optionally without feedback (e.g., using default settings). The controller can also control any other suitable parameters of the flow source to meet or increase oxygenation requirements and / or CO2 removal. The controller 19 can also control the humidifier 52 based on feedback from sensors 53A-53D. Using inputs from the sensors, the controller can determine oxygenation requirements and provide information to a medical professional (who may control components of the respiratory apparatus to provide the desired therapy, such as flow rate, O2 ratio, humidity, etc.), and / or control parameters of the flow source, one or more gas flow modulators, and / or humidifier as needed. Alternatively, embodiments can be provided as a stand-alone monitoring device independent of the respiratory apparatus that provides information to a medical professional and / or communicates with and controls components of the respiratory apparatus to provide the desired therapy. The medical professional can then control the respiratory apparatus to provide the desired therapy. Thus, the controller does not have to constantly determine oxygenation requirements and control device parameters.
[0320] The controller 19 is also configured to operate the device so that the device gas flow has a flow rate that provides the flow rate as described. It can also operate the flow source to control the flow, pressure, volume, and / or other parameters of the gas provided by the flow source based on feedback from sensors, or optionally without feedback. The controller can also control any other suitable parameters of the flow source to meet oxygenation requirements.
[0321] The controller 19 is also configured to operate the device so that the device gas flow has gas ratios (such as O2 ratios or other gas ratios) that provide the described gas ratios (such as gas ratios and / or gas partial pressures). This can be done through any suitable means, such as control of a proportional valve coupled to the O2 source 50A or any other means described above. In one embodiment, a single proportional valve is used in front of the impeller to control the O2 ratio into the inlet of the impeller with ambient air, and the impeller controls the flow rate. The controller 19 can control the proportional valves to operate as needed to achieve the gas ratios described herein.
[0322] An input / output interface 54 (such as a display and / or input devices) is provided. The IO interface is for receiving information from a user (e.g., a clinician or patient) that can be used to determine oxygenation requirements. The IO interface can include a display and one or more input devices, such as, for example, one or more buttons, a touch screen, or the like. The screen can be a detachable screen. It can display numerical and / or graphical information (such as 2D / 3D plots).
[0323] The controller may also be configured to determine and implement the above-described evaluation methods based on other information, such as input from sensors (from the device itself and / or the patient) and pre-configured information and / or information input via an I / O interface.
[0324] The nasal high flow respiratory assistance device is controlled in the usual manner known to those skilled in the art to provide flow and / or control oxygen fraction to the patient, in addition to providing other operating parameters for providing respiratory assistance.
[0325] Nasal high flow therapy respiratory support devices are configured to attempt to control SpO2 to a predetermined concentration of peripheral arterial oxyhemoglobin, i.e., 95%. Typically, SpO2 in patients with hypoxemic respiratory failure is controlled to 92-96%. In patients with hypercapnia, SpO2 is typically controlled to 88-92%. The NHF device is configured to control the oxygen fraction, FiO2, to attempt to achieve the set SpO2. The device measures the delivered FiO2 and the patient's respiratory rate (RR).
[0326] Additionally, the nasal high flow respiratory support device may be operated to change the respiratory support when the evaluation method (according to the embodiments described above) determines that a change in respiratory support is needed, as will be described below.
[0327] The respiratory assistance device may optionally comprise a communications module for communication to a separate evaluation device, see below. The communications module may include a WiFi module, a Bluetooth module, a mobile telecommunications module (such as a GSM module) and / or an NFC communications module. The NFC communications module comprises a coil and associated processor configured to allow NFC communications of data.
[0328] The respiratory device acquires parameters for the device's operation (such as temperature, humidity, pressure, flow sensors, etc.) and parameters for determining respiratory indices (such as SpO2, FiO2 (or FdO2), respiratory rate, etc.). physiological parameters (which may include respiratory parameters), and Respiratory device parameters (which may include operating parameters) The sensor may include and / or be connected to a sensor that provides
[0329] To provide a change in respiratory assistance, the device can control itself, or can be controlled by a clinician, to continue high-flow respiratory assistance, but at a higher or lower level. For example, flow, O2 concentration, humidification, flow oscillation, and / or other parameters are increased or decreased. Any of the changes in respiratory assistance described herein can be implemented in any of the embodiments relating to the respiratory device.
[0330] 4. Evaluation equipment An embodiment of an apparatus for implementing the evaluation device will now be described.
[0331] 4.1 Embodiment 1 - Evaluation device portion of respiratory support device In one embodiment, a respiratory assistance device implements any of the assessment methods described herein. Preferably, the controller of the respiratory assistance device shown in Figure 6 is used. It is pre-configured with any data and / or instructions needed to carry out the method and can receive the required inputs from sensors, user input, and any other sources. This allows for non-invasive monitoring and offers the advantage of integrated sensors and inputs for sensors, including a single device that can measure various parameters and provide / modify the required respiratory assistance.
[0332] The controller is programmed to calculate the respiratory index by using a suitable formula such as one of those described above, in this case preferably the ROX index. Formulas for respiratory indices, including the ROX index, are described above.
[0333] Alternative means of determining a respiratory index may be used, such as a look-up table, database, or the like that correlates input data to an appropriate respiratory index. From this point on, the apparatus will be described with reference to calculating the ROX index using the equations set forth above, but this should not be seen as limiting, and any of the following discussion may equally apply to determining another respiratory index, which may be calculated based on receiving appropriate input parameters, or which may be determined in other ways.
[0334] See Figure 1, which illustrates the operation of the controller and device. This is similar to the flow diagram described above that describes the assessment method, but this diagram focuses on the actual actions performed by the controller. Referring to the flow diagram in Figure 1, the controller receives various physiological and / or operational parameters, such as respiratory rate, SpO2, FiO2, etc., from appropriate sensors.
[0335] The controller then uses these input parameters to calculate the ROX index and the change in the ROX index over time. For dynamic assessments, the ROX index is calculated continuously and periodically to provide a sequence of values that can be used for trend assessment, as shown in Figure 4. Optionally, as described in the above embodiments, the device may determine the change in the respiratory index over time to obtain a trend parameter or multiple trend parameters.
[0336] The patient's respiratory status is then optionally assessed by processing the change in ROX index values over time and / or trend parameters. The assessment of the patient's respiratory status need not be a single step per se, but rather the result of a series of steps. The result may be an actual determination of the patient's respiratory status, or it may simply be some information related to the patient's respiratory status but not actually determined. However, the information can be used to assess changes in respiratory support needed that are consistent with improving patient outcomes based on what the patient's respiratory status would be if actually and specifically determined. However, for purposes of explanation, reference will be made to assessing the patient's respiratory status. Alternatively, the information may be obtained by directly processing the change in ROX index values over time and / or trend parameters.
[0337] In the case of dynamic assessment of a respiratory index determined continuously or periodically, the controller determines a trend parameter (or multiple trend parameters) of the respiratory index over time to provide the magnitude (amount of rate of change) and direction of change. For example, a time series of measurements is taken, and a trend is determined based on changes in subsequent index calculations. This, along with threshold information, can be used to provide an assessment of respiratory status, such as, for example, difficulty and / or change in respiratory status, or difficulty and / or trend or difficulty (e.g., worsening) in respiratory status. For example, a high or low risk of respiratory failure can be determined as described above.
[0338] Generally speaking, escalation of respiratory support is provided if dyspnea and / or a worsening of the patient's respiratory status (e.g., risk of respiratory failure) is present, and de-escalation is provided if dyspnea is not present and / or there is improvement in respiratory status (e.g., no respiratory failure), both of which are described in more detail in connection with the evaluation methods above. The actions taken should not be limited to specific respiratory conditions / trends, and these are merely examples. Determined actions based on respiratory indices or changes / trends in respiratory indices (which may correspond to specific respiratory conditions or trends) may be used.
[0339] If it is determined that escalation of respiratory support is required, the controller may also determine the type of escalation, which may include: High-flow respiratory support continues but is provided at a higher level, e.g., flow, O2 concentration, humidification, flow oscillation and / or other parameters are increased or decreased. Patients should: NIV pressure breathing support, Mechanical ventilator respiratory support via intubation, transferred to more invasive respiratory support such as It can be one or more of:
[0340] Depending on the escalation method required, the device may: the controller controls the device to escalate respiratory support, and / or The device communicates information in the form of instructions, status, alarms, or the like, thereby advising the clinician to escalate respiratory support. One or more of the following may be performed:
[0341] Information may also be provided on an I / O interface, such as a display screen, to inform and / or instruct the clinician, for example, the graphs of Figures 5 and 6 may be displayed. The screen may be detachable, meaning that it may be moved to eye level.
[0342] The controller continuously repeats the method to continuously assess the patient's respiratory index (and / or condition) and continuously adjust the operation of the respiratory assistance device accordingly, and / or to continuously communicate information regarding escalation and / or de-escalation of respiratory assistance to the clinician.
[0343] The respiratory assistance device may optionally comprise a communications module for communication to a separate evaluation device, see below. The communications module may include a WiFi module, a Bluetooth module, a mobile telecommunications module and / or an NFC communications module. The NFC communications module comprises a coil and associated processor configured to allow NFC communications of data.
[0344] Below are some further operational details of the respiratory assistance device. The device preferably uses a start-up period. The start-up period allows the patient to acclimate to the high flow respiratory assistance being provided to the patient. Additionally, the start-up period can establish a baseline respiratory index value. This is the baseline index. The start-up period can be from 30 minutes to 3 hours. Preferably, this is 1 to 2 hours of initial readings and acclimation to therapy.
[0345] The device may have an update period. The update period allows the respiratory assistance device to take measurements and calculate new respiratory indices (e.g., ROX index values) and calculate vectors (or other trend parameters). The vectors are calculated between two consecutive ROX index value calculations. The update period may be 5 to 30 minutes or any other period. The respiratory assistance device preferably takes measurements of respiratory rate and FiO2. These can be transmitted to a mobile device or stored within the device. The sampling period may be 10 seconds to 20 minutes.
[0346] The change in flow rate can be a smooth transition or a continuous change. Alternatively, the change in flow rate can be a step change based on the trend of the respiratory index. As the ROX changes, the flow is changed stepwise within the update period. ROX is calculated after the flow rate is changed in the update period. The flow is changed up to a threshold that is uncomfortable.
[0347] As a further alternative, the respiratory assistance device may not automatically vary the flow rate, but instructions to the clinician to vary the flow based on the respiratory index are implemented from the assessment device, and the instructions may include a video or series of images showing how to vary the flow rate and by how much.
[0348] 4.2 Embodiment 2 - Evaluation device separate from the respiratory support device Referring to Figure 3, in an alternative embodiment, the evaluation method is performed in a device 20 separate from the respiratory apparatus. The evaluation device is in communication with the respiratory apparatus, sensors, and / or patient. The evaluation device may operate in much the same manner, albeit with some differences, to perform the evaluation as described above in connection with Figure 1 and the respiratory apparatus. In such an embodiment, the separate evaluation device and respiratory assistance device and / or sensors may form a respiratory evaluation and assistance system.
[0349] The evaluation device has a controller programmed to calculate a respiratory index using a suitable equation such as one of those described above, in this case preferably the ROX index. The respiratory index equation described above or a look-up table, database or the like described above can be used.
[0350] See Figure 1, which illustrates the operation of the controller and device. This is similar to the flow diagram described above describing the assessment method, but this diagram focuses on the actual actions performed by the controller. Referring to the flow diagram in Figure 1, the controller receives various physiological and operational parameters, such as respiratory rate, SpO2, FiO2, etc., from appropriate sensors.
[0351] The controller then uses these input parameters to calculate the ROX index and the change in the ROX index over time. For dynamic assessments, the ROX index is calculated continuously or periodically to provide a sequence of values that can be used for the assessment shown in Figure 1. Optionally, as described in the above embodiments, the device can determine the change in the respiratory index over time to obtain a trend parameter or multiple trend parameters.
[0352] The controller may be pre-configured with any data and / or instructions needed to carry out the method and may receive required input from the breathing device, sensors, user input and / or any other source.
[0353] Once the controller has the required information, it can assess the patient's respiratory status as described above with reference to FIG. 1 in the method and / or as described for the respiratory assistance device.
[0354] Once an assessment of respiratory status and / or respiratory assistance response has been performed, the device may display appropriate actions and / or communicate with the respiratory device and / or clinician to provide instructions and / or information for the controller to determine and implement appropriate respiratory assistance changes by the controller and / or clinician.
[0355] In one specific, non-limiting embodiment, the assessment device is in the form of a mobile device such as a smartphone 20, tablet, or other handheld and / or mobile communication device, such as that shown in Figure 7. The mobile device runs an assessment app on the controller, which has an IO interface for presenting information, including alarms.
[0356] The mobile device is programmed with an app that communicates with the respiratory assistance device and performs the evaluation method as described above. In this embodiment, the ROX index is used, but it should be understood that the same technique can be configured to work with any other respiratory index described above. The mobile communication device has an app that receives inputs of respiratory rate, FiO2, and SpO2 setpoint (alternatively, actual measured SpO2) from a clinician and / or received from the respiratory assistance device and / or a sensor (e.g., an SpO2 sensor or others described above—wearable or otherwise) via, for example, Bluetooth™, NFC, or other wireless or wired communication modes. A healthcare professional using a portable device such as a phone or tablet can additionally or alternatively download data via NFC by using an application that allows for fast and reliable downloading of data. Inputs are entered or requested at time intervals. The mobile device calculates a current value of the ROX index based on the input. Furthermore, the mobile communication device app calculates trend parameters (e.g., vectors) of the ROX index based on the input from the user. Furthermore, the mobile device can calculate multiple such trend parameter vectors over time, where each is an instantaneous vector and each indicates the trend of change in the ROX index at that time. The vectors are displayed on the I / O interface of the mobile device, such as those shown in Figures 5 and 7, which show vectors at various time points over 2 hours, 6 hours, and 12 hours, thereby indicating the change in the ROX index.
[0357] The app / mobile communication device provides an assessment (diagnostic) tool for clinicians to quickly determine changes in a patient's condition based on changes in the ROX index and the trend of the ROX index change over time. This visual plot of the ROX index vector, such as that shown in FIG. 5, allows clinicians to make objective decisions about the patient's condition and allows clinicians to escalate or de-escalate the patient's respiratory support sooner. If the trend of the ROX index vector is toward deterioration, the earlier the patient is escalated, the better the outcome may be, resulting in reduced mortality due to earlier intervention and escalation to mechanical ventilation.
[0358] When the ROX index trend is improving, the sooner the patient is de-escalated, the less risk the patient faces from unnecessarily escalated respiratory support.
[0359] As an alternative, the assessment performed by the app can be communicated to the respiratory assistance device, and the respiratory assistance device can make appropriate changes and implement respiratory assistance.
[0360] The clinician can determine the required change in respiratory support. Alternatively, the app can determine the appropriate change in respiratory support and provide it to the respiratory device and / or communicate it to the clinician via the mobile communication device. As described above, this change in respiratory support can be implemented by the clinician and / or the respiratory device. High-flow respiratory support is continued but provided at a higher level, e.g., flow, O2 concentration, humidification, flow oscillation and / or other parameters are increased or decreased; Patients should: NIV pressure breathing support, Mechanical ventilator respiratory support via intubation, be transferred to more invasive respiratory support such as It can be any one or more of:
[0361] In one example, the flow rate is altered based on or in relation to a change or trend in the respiratory index. For example, the change in flow may be proportional to the slope of the vector of the change in the respiratory index.
[0362] Depending on the escalation method required, the device may: The controller controls the breathing apparatus to escalate breathing assistance, and / or The device communicates information in the form of instructions, status, alarms, or the like, thereby advising the clinician to escalate respiratory support. One or more of the following may be performed:
[0363] For example, the flow rate provided to the patient via the respiratory device may be evaluated as needing a change. The mobile communication app is configured to calculate the required change in the flow rate provided to the patient. The app is configured to calculate a new set flow rate based on either the ROX index or a vector of ROX indices (i.e., the trend of change in the ROX index) and / or one or more other parameters. The app provides instructions to the clinician via the I / O interface of the mobile communication device, along with information on the required new flow rate or change in flow rate that is different from the initial set flow rate. Alternatively, the information can be communicated directly to the respiratory device. Set flow rate data is also transmitted from the NHF device to the phone via NFC or Bluetooth as part of the phone interacting with the device.
[0364] The separate assessment device may communicate with the respiratory assistance device via a communication interface on the respiratory assistance device, which may include a WiFi module, a Bluetooth module, and an NFC communication module, which has a coil and an associated processor configured to allow NFC communication of data.
[0365] In one alternative, parts of the evaluation method are carried out partly in a separate device and partly in the respiratory assistance device.
[0366] Alternatively, the plot and ROX vectors can be calculated within the NHF device and displayed on the I / O interface of the NHF device.
[0367] 5. Exemplary embodiments using ROX index and separate evaluation device The method and device embodiments described herein can be combined in any suitable order to provide a device and / or system for providing respiratory assessment and assistance.
[0368] 5.1 Illustrative examples with use cases One non-limiting illustrative example will now be described with reference to the apparatus of Figures 3, 6 and 7 and the flow diagram of Figure 1.
[0369] This implements respiratory assessment by using a mobile telecommunications device with an app that utilizes changes (trends) in the ROX index (preferably over time) and a nasal high-flow respiratory support device that is controlled at least in part based on the assessment of the ROX index trend. Alternatively, an NIV device can be used.
[0370] The ROX index is calculated and used to determine the success of high-flow respiratory support, such as nasal or tracheal high-flow respiratory support. Changes in the ROX index over time are used to predict whether a patient will improve or deteriorate. Specifically, the present disclosure is directed to determining temporal changes in the value of the ROX index or using one or more vectors of the ROX index over time to determine the manner in which the ROX index changes and providing an indication of whether the patient is deteriorating or improving. If the FiO2 and respiratory rate are increasing, the ROX index will begin to drop in value. Increases in the FiO2 and respiratory rate indicate a patient's deterioration. Continuous monitoring of the ROX index is useful when the patient is in an unstable condition. The nasal high-flow device is controlled to modify the flow rate and / or control the oxygen fraction provided to the patient. The nasal high-flow respiratory support device is configured to attempt to control peripheral arterial oxyhemoglobin at a predetermined concentration (i.e., 95% SpO2). Typically, SpO2 in patients with hypoxemic respiratory failure is controlled to 92-96%. In patients with hypercapnia, SpO2 is typically controlled to 88-92%. The NHF device is configured to control the oxygen fraction, FiO2, to attempt to achieve the set SpO2. The device measures the delivered FiO2 and the patient's respiratory rate (RR).
[0371] A mobile device, such as a smartphone or tablet 20, may be used by, for example, a clinician, see Figure 7. The mobile device of Figure 7 has the controller and IO interface of the device of Figure 3, and has the IO interface as a touchscreen that displays information and allows input of information, for example, through a touchscreen keyboard. It may also have a speaker for communicating alarms, prompts, spoken messages, and the like.
[0372] The mobile device is configured to wirelessly communicate with a respiratory assistance device such as that shown in FIG. 3 or 6. This forms a respiratory assessment device and system such as that shown in FIG. 3. The mobile device receives the required information from the sensor as described above and calculates a current ROX index value based on the input. The mobile communication device app then calculates a trend parameter (e.g., vector) of the ROX index based on the input from the user. The mobile device can then calculate multiple such trend parameter vectors over time, each of which is an instantaneous vector and indicates the trend of change in the ROX index at that time. The vectors are displayed on an I / O interface of the mobile device such as those shown in FIG. 5 or 7. In one example, the mobile device is configured to communicate with the NHF device using an NFC protocol. The user can tap the mobile device on the NHF device at a predefined location, which is the location of the NFC communication module. Other communication options are possible.
[0373] The mobile communication device has an app configured to launch when the mobile device is tapped on the NHF device. Tapping the mobile device on the NHF device transmits RR data, FiO2 data, and a preset SpO2 setpoint (or actual measured SpO2) to the mobile device. The mobile device is configured to receive input of the respiration rate, FiO2, and SpO2 setpoint (or alternatively, actual measured SpO2) from a clinician and / or received from a respiratory assistance device and / or sensor (e.g., SpO2 sensor), e.g., via Bluetooth™, NFC, or other wireless or wired communication mode. The input is entered or requested at time intervals. The respiration rate and FiO2 data can be measured at predefined time intervals. The time interval can be from about 1 minute to about 2 hours, or any other suitable time interval. In one example, measurements are taken every 15 minutes. In another example, measurements are taken every hour or every two hours. Alternatively or additionally, the app can receive respiratory rate, FiO2 and SpO2 set point inputs from a clinician via an I / O interface, with the inputs being entered or requested at regular time intervals.
[0374] The app is configured to calculate a ROX index value from the data received at each interval. A vector of ROX index values is calculated based on the respiratory rate and FiO2 at various time intervals. A sum of the ROX index calculations over a period of time, such as 12 hours, is calculated by the phone app. A plot is generated. The app also calculates the change in the ROX index and the trend of the change in the ROX index.
[0375] An increase in respiratory rate and FiO2 indicates a worsening of the patient's condition. A decrease in respiratory rate and FiO2 indicates an improvement. Furthermore, a decrease in FiO2 alone is an indication of improvement. A decrease in respiratory rate is an indication of patient improvement.
[0376] The app is configured to generate the plot shown in Figure 5 and present it on an I / O interface for the user as shown in Figure 7. ROX index values are plotted, and a vector of ROX index showing the change in ROX index over time is plotted. The trend of change in ROX index is plotted on a plot of respiratory rate versus FiO2.
[0377] Referring to Table 1 above, the raw measurements for Patient 1 and Patient 2 are shown. The app calculates the ROX index and the ROX index vector between the various ROX index values at various time intervals for each patient and plots the ROX index and vector on a plot. This plot is shown in Figure 5. This plot would be presented to the clinician on the screen of the mobile device in Figure 7 to allow for a quick diagnosis.
[0378] In this example, the threshold ROX value, 4.88, is plotted as a threshold line. The line indicates a successful ROX index, i.e., it delineates between good and poor patient respiratory status. Movement or trend of the ROX index toward the upper right indicates a worsening of the patient's condition. This ROX index movement corresponds to a decrease in the ROX index value, which also relates to a worsening of the patient's condition.
[0379] The plot of Figure 5 on the screen of the device of Figure 7 shows three vectors for Patient 1 (40), one for each instantaneous trend at 2 hours, 6 hours, and 12 hours. Each instantaneous vector shows a magnitude and a direction indicating that the patient is trending toward lower ROX values (i.e., the vector points toward them) and is therefore improving. Over time, each vector shows a continuing trend toward improvement. The first vector shows that the patient is trending toward the ROX threshold of 4.88 (below which the risk of respiratory failure has disappeared or at least significantly decreased), and the second 6-hour vector shows that the patient's respiratory rate is similar, but the ROX index has dropped below the ROX threshold, meaning the risk of respiratory failure has disappeared or at least significantly decreased.
[0380] The plot of Figure 5 on the screen of the device of Figure 7 shows two vectors for Patient 2 (41), one showing the instantaneous trends at 2 hours and one showing the instantaneous trends at 6 hours. Each instantaneous vector shows a magnitude and a direction indicating that the patient is trending toward (i.e., the vector points toward) higher ROX values and is therefore deteriorating. Over time, each vector shows a continuing worsening trend. The first and second vectors show that the patient is trending further away from the ROX threshold of 4.88 (below which the risk of respiratory failure disappears or at least becomes much smaller), meaning that the risk of respiratory failure is increasing.
[0381] As with other embodiments, the device may also display other parameters such as the ROX index, the patient's respiratory status, instructions on what to do (including any respiratory support changes), and any other information through the IO interface. It may also provide audible alarms and / or audible messages conveying the same information. Information may also be transferred (and / or stored) as needed to the device, the respiratory support device, and / or server 100 or the like, as needed, for example, through wired or wireless devices including NFC.
[0382] The app provides a tool for clinicians to quickly determine changes in a patient's condition based on the change in the ROX index over time and the trend of the ROX index change. This visual plot of the ROX index vector allows clinicians to make objective decisions about the patient's condition and allows clinicians to escalate the patient earlier. The earlier a patient is escalated when the trend of the ROX index vector is worsening, the better the outcome may be, resulting in reduced mortality due to earlier intervention and escalation to mechanical ventilation.
[0383] The phone app is configured to calculate the required change in respiratory support. For example, this can determine an increase in the flow rate provided to the patient. The phone app is configured to calculate a new set flow rate based on the ROX index or a vector of ROX indices (i.e., the trend of change in the ROX index). The phone app provides instructions to the patient via the I / O interface of the mobile device, along with information on the new flow rate or required change in flow rate away from the initial set flow rate. Set flow rate data is also sent from the NHF device to the phone via NFC or Bluetooth as part of the phone interacting with the device.
[0384] Alternatively, the plot and ROX vectors can be calculated within the NHF device and displayed on the I / O interface of the NHF device.
[0385] The clinician can determine the required change in respiratory support. Alternatively, the app can determine the appropriate change in respiratory support and provide it to the respiratory device and / or communicate it to the clinician via the mobile communication device. As described above, this change in respiratory support can be implemented by the clinician and / or the respiratory device. High-flow respiratory support continues but is provided at a higher level, e.g., flow, O2 concentration, humidification, flow oscillation, and / or other parameters are increased or decreased. Patients should: NIV pressure breathing support, Mechanical ventilator respiratory support via intubation, be transferred to more invasive respiratory support such as It can be any one or more of:
[0386] Depending on the escalation method required, the device may: the controller controlling the device to escalate respiratory support; and / or The device communicates information in the form of instructions, status, alarms or the like, thereby advising the physician to escalate respiratory support. One or more of the following may be performed:
[0387] Changes in the operation of the respiratory assistance device based on the clinician and / or the evaluation device are then implemented, and the respiratory assistance device is controlled or controls itself such that the flow based on the change in the respiratory index, i.e., trend, i.e., vector, may improve the respiratory index (and / or respiratory status).
[0388] In one implementation, the embodiment includes a mobile device receiving information from the wearable sensor, which is used as described above, and which is communicated (and / or stored) to a clinician and / or further to a respiratory assist device, for example, via wired and wireless transmission, including NFC, to control the device.
[0389] In one implementation, and referring to FIG. 5, the length of the vector is the magnitude. The magnitude determines how large the change in the ROX vector is over time. In one example, the maximum on the plot for an adult can be located approximately at (FiO2 1.0; respiration rate 45), and the minimum can be located approximately at (FiO2 0.21; respiration rate 15). The distance between these points is the maximum magnitude of the vector. The respiratory device can display the magnitude, i.e., from the start of therapy, in the form of a bar, dial, color, %, number, or the like. If the magnitude is large and the vector moves in the lower left corner (direction), the therapy is very effective. This can be a simple way for the device to display the effectiveness of therapy. The above content relates to the step of calculating the magnitude of the ROX index vector, i.e., defining the vector by magnitude and direction in an instantaneous trend. The magnitude is calculated based on FiO2 and respiration rate. More specifically, Magnitude = (FiO2 2 +RR 2) The magnitude and direction are used to define the effectiveness of the therapy. If the magnitude is large and the direction of the vector moves to the right, the therapy is very effective. The magnitude relates to how quickly the patient's health improves. The direction of the ROX vector can be color-coded. For example, the vector can be shown in a first color if the vector direction indicates that the patient's respiratory condition is improving. The vector can be shown in a second color if the vector direction indicates that the patient's respiratory condition is deteriorating, i.e., getting worse. Referring to FIG. 5, the vector is presented in a first color if the vector direction is toward the bottom left, i.e., toward improving respiratory condition. Alternatively, the vector is presented in a second color if the vector direction is toward the top right, i.e., toward worsening patient respiratory condition. Additionally, the vectors can be presented such that the length corresponds to the magnitude.
[0390] The presented magnitude and direction information is used by the clinician to determine whether to continue with a high flow rate or whether the patient requires escalation to a different therapy. Alternatively, the mobile device can issue an alarm if the magnitude is above a threshold and the direction of the vector trends toward a worsening of the patient's respiratory condition. Alternatively, the user interface of the respiratory assistance device can be configured to display the vector. The respiratory assistance device is configured to issue an alarm if the magnitude is above a threshold and the direction of the vector trends toward a worsening of the patient's respiratory condition. The respiratory assistance device can be configured to automatically increase the flow rate.
[0391] Some illustrative examples of respiratory assistance that may be provided based on respiratory index / status assessment (including, but not limited to, changes in respiratory assistance, among others) are as follows:
[0392] These may be applied to any of the embodiments described herein. The flow rate delivered to the patient is changed. The flow rate can be increased or decreased by a predetermined amount. Alternatively, the flow rate delivered to the patient can be changed based on the magnitude of the respiratory index vector. Increasing the flow rate helps reduce the respiratory rate because it increases expiratory resistance. While more flow can also increase the amount of oxygen (but not the FiO2), a higher flow rate can improve flushing and increase the amount of O2 delivered to the lungs. This can help oxygenate the patient, which can increase the ROX index value. If the respiratory index vector indicates a deterioration in the patient, the flow (e.g., flow rate) is increased. The flow is increased to a limit away from the baseline flow rate. Additionally, the flow can be decreased as the respiratory index vector indicates an improvement in the patient's health. The decrease can be away from the baseline to the minimum flow required, or the flow is decreased away from an increased flow rate value. In one example, the respiratory index is an ROX index based on the SpO2 set point, FiO2 and respiratory rate. The respiratory assistance device may also be configured to control flow based on changes in the ROX index. If the ROX index falls below a threshold, such as 4.88, flow can be increased to attempt to provide further respiratory assistance. The flow rate can be increased from a base set flow rate to a new flow rate based on the change in the ROX index. Alternatively, the rate of change of the flow rate can be proportional to the rate of change of the ROX index. In a further example, the NHF device can be configured to control the flow rate (and thus the blower motor speed) provided by the NHF device based on changes in respiratory rate. For example, if the respiratory rate increases, the flow rate can be increased to reduce the respiratory rate and thereby improve the ROX index. The change in flow rate can be proportional to the change in respiratory rate. Alternatively, the change in flow rate can be a function of the change in respiratory rate or a function of the respiratory rate. The flow rate is increased when the respiratory rate increases to provide more expiratory pressure, i.e., more resistance to exhalation, such that the user's respiratory rate slows. However, if the ROX index vector trends towards safe levels and above safe levels, i.e. towards a threshold indicating deterioration, the NHF device can issue an alarm to indicate that the patient needs to be escalated. The respiratory support device can also change the flow rate based on changes in FiO2 requirements. If the FiO2 requirement to meet the required SpO2 increases, the flow rate can be increased. The increase in flow rate can be proportional to or a function of the increase in FiO2. The increased flow rate acts to reduce the respiratory rate and increases the overall amount of O2 delivered. This can help reduce the FiO2 requirement and shift the ROX vector in a safe direction. The increase in flow rate can be in increments of 2 L / min to 10 L / min from a base flow rate of 30 L / min. If the maximum flow limit is reached, the respiratory support device can sound an alarm. In addition to the flow control described above, the respiratory assistance device can also provide a flow synchronized with the breath. The flow rate delivered during exhalation is less than the flow rate during inhalation. The patient's breathing phase is detected using a pressure sensor or a flow sensor or a combination of these. One example is a pressure sensor integrated in the patient interface. Another example is a flow sensor integrated in the patient interface. A further example is calculating the change in flow or the resistance to flow based on a pressure sensor of a flow sensor (integrated in the respiratory assistance device). In one example, the inspiratory and expiratory flows provided to the patient are predefined, for example, by a clinician or by the patient selecting a "comfort" level. The comfort level defines the difference between the expiratory and inspiratory flows. For example, comfort level 1 = expiratory flow is -10 L / min from the inspiratory flow; comfort level 2 = expiratory flow is -20 L / min, etc. The flow controller preferably uses feedback control to control the flow rate and to switch the flow rate between inspiration and expiration flow rates. If the trend (vector) of the ROX index (i.e., respiratory index) has a tendency to indicate a deterioration of the patient, the expiratory flow (i.e., the flow rate during exhalation) is increased away from the predefined expiratory flow rate. Increased flow (e.g., increased constant flow or increased expiratory flow) increases expiratory impedance. Increased expiratory impedance makes it more difficult for the patient to exhale. This reduces the patient's respiratory rate, thereby improving respiratory indices (e.g., ROX index). Further increasing the flow rate provided in exhalation can also help improve flushing of the upper airways and improve clearance of CO2 from the airways. This can improve the patient's oxygenation and can reduce the FiO2 requirement or make oxygenation more efficient. This can help improve respiratory indices or change them to indicate improved patient health. The increased flow rate also ensures that the flow rate delivered is equal to or greater than the inspiratory demand, thereby reducing ambient air entrainment. Reducing ambient air entrainment ensures that the FiO2 concentration is more consistent. The mobile device is configured to determine a change in flow provided by the respiratory device required to improve the respiratory index and to present instructions on the IO interface of the mobile device to modify the flow rate, e.g., the flow rate is increased to improve the respiratory index. The O2 valve of the breathing apparatus can be controlled to increase or maintain FiO2 while the flow rate is changed to accommodate the change in exponent. The FiO2 in the breathing device can be changed in response to changes in respiratory rate or in response to changes in the index. The mobile device is configured to determine the change in flow provided by the high flow breathing device required to improve the respiratory index and to present instructions on the mobile device UI for modifying the flow rate. · Flow is increased to improve respiratory index. The controller is configured to increase the flow from the base flow rate if the trend (or change) in the respiratory index indicates increasing respiratory deterioration. The controller is configured to reduce the flow to a base flow rate when the respiratory index indicates a reduction (or improvement) in respiratory deterioration. · Optionally, any change in flow rate is proportional to the change in respiratory index. Optionally, any change in flow rate is a function of the change in respiratory index or a function of the magnitude of the change. The display of the respiratory therapy device displays a vector of respiratory indices, where the vector shows changes and trends over a given period of time. If the NHF is increased and the respiratory rate drops without a concomitant decrease in FiO2, this may indicate only a temporary effect on expiratory resistance, and the device will maintain the NHF rate or decrease it by, for example, 5 L / min. If both FiO2 and respiratory rate decrease, this is an indication of positive momentum, and the NHF can begin to decrease slowly from 60 L / min to 40-35 L / min to make therapy more comfortable. Alternatively, with variable NHF, the device will begin to increase expiratory pressure relief.
[0393] In one alternative, there is no separate evaluation device and the above embodiments are all performed on the respiratory assistance device. Alternatively or additionally, the mobile device can be used as a remote control device to control the respiratory assistance device.
[0394] 5.2 Alternative Use Cases 8A-11E illustrate alternative use cases that may be implemented on the devices of this section, or any others described or included within the scope of this specification.
[0395] 8A-8C, consider an exemplary case in which ROX values for three patients 80A-80C are monitored over time. ROX is used as an example, and this use case can be generalized to any respiratory index.
[0396] t n The current ROX value of the first patient (patient 1) 80A at 84A is located on the high-risk side of the ROX value threshold 82 (i.e., below the threshold), but the ROX slope 83A (i.e., at time t nー1 84A to t n Derivative of ROX over time up to 85A or the current ROX data point t n 85A and the previous ROX data point 84At n-1 The slope between (the slope between) is on the low-risk side of the slope threshold (the slope is zero in this case).
[0397] The current ROX value 84B and ROX slope 83B of a second patient (Patient 2) 80B are both on the high-risk side of their respective thresholds. That is, ROX is less than the ROX threshold 82 and t n-1 84B to t n Derivative of ROX over time up to 85B or the current ROX data point t n 85B and the previous ROX data point 84Bt n-1 The slope between is negative and therefore tends to worsen.
[0398] The third patient (patient 3) had a current ROX value of 80C. n 84C is on the low-risk side of the value threshold 82 (below the threshold), but its ROX slope 83C is on the high-risk side of the slope threshold. n-1 84C to t n Derivative of ROX over time at 85C or the current ROX data point tn 85C and the previous ROX data point 84Ct n-1 The slope between is negative and therefore tends to worsen.
[0399] The ROX (values and slopes) for each of these patients 80A-80C may indicate different states of health and require different responses. For example, a first patient's ROX 85A may indicate that he or she is in a state requiring attention, but has not recently deteriorated (a physician can choose to prioritize other patients based on this information). A second patient's ROX 85C may indicate that his or her health is already in a high-risk state but may still deteriorate, requiring immediate attention from a physician. A third patient's ROX 85C may indicate that his or her health is rapidly deteriorating toward a high-risk state. This indication may allow a physician to intervene early and prevent the patient's health from actually reaching a high-risk state (i.e., prevent the patient's ROX value from decreasing to a high-risk value).
[0400] 9A and 9B, consider another exemplary case. Two patients (patient 1 and patient 2) have current ROX values t that are on the high-risk side of the ROX threshold 92 (i.e., below the threshold). n-1 94A and 94B.
[0401] The slope 93A for the first patient (Patient 1 90A) indicates that their ROX values 94A trend toward a lower risk value 95A (toward the threshold). The slope 93B for the second patient (Patient 2 90B) indicates that their ROX values 94B trend toward a higher risk value 95B. Again, the ROX (values and slopes) for each of these patients may indicate different states of health and require different responses. The first patient 90A appears to be improving (having a better / positive 93A trend), and therefore, the first patient 90A could benefit from more therapy time with the same settings. The second patient 90B appears to be getting worse (having a worse / negative 93B trend), and therefore, the second patient 90B may require a change in therapy settings.
[0402] In addition to identifying short-term changes in a patient's health, the system can use comparison to thresholds to identify long-term (ie, slower) changes in a patient's health.
[0403] Referring to FIG. 10, the ROX values 103 to 107 of the patient 101 were measured over several days (t n-4 ~t n Consider the exemplary case of a slow decline in ROX over a period of time. While this decline may ultimately result in the patient's ROX value dropping below the value threshold 102, the system may be able to identify a decline in the patient's health before this occurs. By examining multiple prior ROX value data points 103-107, the system may also identify a (slow) decline in ROX values when, for example, the individual slopes, such as 108 (between any two data points, e.g., 103-104), fall on the low-risk side of the slope threshold. As a result, the system may respond before the patient's ROX value actually drops below the value threshold, thereby enabling early (i.e., preemptive) intervention.
[0404] What this indicates is that it is not only the slope / change over time that is useful, but also the relative magnitude of the ROX drop over a given period of time.
[0405] One exemplary embodiment is as follows: The method and / or device allows for the determination of respiratory indices and / or respiratory status of a patient receiving high-flow or other respiratory assistance. This provides information about the patient's condition when the patient is receiving respiratory therapy (e.g., high-flow respiratory assistance such as nasal high flow). This provides information about whether the patient is stable, getting worse, or getting better. It can also indirectly serve as an indicator of the effectiveness of the respiratory assistance. The information can be displayed numerically and / or graphically, for example, as a vector. The information can be displayed, for example, as The change in the respiratory index over time, similar to the first derivative with respect to time, and / or The temporal trend of the change in respiratory index over time, which resembles the second derivative with respect to time It could be.
[0406] By examining the respiratory index and / or other parameters and changes in the respiratory index over time, Whether a change in respiratory support is required, and / or What kind of change could that be? An evaluation can be carried out on the following:
[0407] for example, that changes may be made; prompts / alarms to change therapy, and / or The device attempts to automatically change therapy Some action can be taken based on the information.
[0408] Finally, if the patient does not improve based on the index (ie, repeat assessment phase), an alarm can be raised to escalate treatment.
[0409] 6. Clinician's Assessment and Labeling Information As mentioned above, it is often the clinician who will assess the respiratory status based on the information displayed on the assessment device. By displaying various combinations of graphical and numerical representations of parameters and respiratory indices, a trained clinician can interpret these to obtain an indication of the respiratory status and, in particular, the direction of the respiratory status and any intervention that may be required.
[0410] Various examples are described below. These are not intended to be limiting and, rather, provide an indication of the information sources that may be displayed and how they may be used by a clinician to assist in respiratory status. Clinician assessments may include evaluation criteria, which are criteria that allow a clinician to evaluate respiratory indices, patient parameters, change indicators, and / or the evaluation information to determine a patient's respiratory status. Evaluation criteria may include and / or use related information, such as thresholds. These evaluations may be used with any of the embodiments described herein.
[0411] A user interface 54 may be used on the evaluation device (such as a mobile device and / or therapy device) and / or on the therapy device to display assessment information, assessment criteria, relationship information, and / or any other information. Numerical and graphical information may be displayed. The graphical information may be in the form of a graph / plot in 2D or 3D. In 3D, optionally, one axis may be a time axis to show changes in assessment information over time. User controls allow for manipulation of the display. A touch screen may be used.
[0412] In a more general case, such as that shown in Figure 2, the assessment method and apparatus includes displaying, for multiple time points, the change in the respiratory index over time for each of the multiple time points, which can then be reviewed by a clinician. A respiratory index threshold can be provided to help determine whether the respiratory condition is trending toward improvement or deterioration. Similarly, a change indicator, in this case a vector with a slope, can also indicate a trend.
[0413] Further information is provided with reference to Figure 5. In this case, a vector showing the change in respiratory index is plotted on a graph of respiratory rate versus FiO2. The ROX index threshold of 4.88 is also plotted on this graph. A positive slope (in this case) over time toward the upper right-hand corner of the diagram indicates that the patient is getting worse. Alternatively, a negative slope over time toward the lower left-hand corner indicates improvement (the ROX index starts in the "at risk" section, but it trends toward the improving section and passes the threshold toward its interior).
[0414] In either case, the clinician can monitor changes in respiratory indices over time by reference to thresholds, and with the benefit of further drill-down information in the case of Figure 5, where respiratory rate and FiO2 are also shown. This can add to the process of calculating various change information and comparing it to relational information (thresholds such as ROX thresholds and / or change indicator thresholds such as vector slope thresholds). The information in Figures 2, 4, and 5 show a combination of graphics (e.g., plots and vectors) in combination with numerical information.
[0415] More generally, the information may be displayed on an interface on either the respiratory device, mobile device and / or other assessment device and may include one or more vectors, slopes, angles, magnitudes, differences and / or other change indicators showing a respiratory index (e.g., ROX index) versus time, graphical and / or numerical, one or more components of a respiratory index (e.g., respiratory rate, SpO2, FiO2 or the like) and / or differences between two or more respiratory indices and / or components thereof over time or in other manners, either alone, in combination and / or alternatively, graphical and / or numerically.
[0416] In doing so, the clinician can determine the patient's respiratory status from changes in a respiratory index over time by observing a graphical and / or numerical respiratory index (e.g., ROX index) versus time, one or more components of the respiratory index (e.g., respiratory rate, SpO2, FiO2, or the like) graphically and / or numerically alone, in combination, and / or alternatively versus time, and / or one or more vectors, slopes, angles, magnitudes, differences, and / or other change indicators indicating the difference between two or more respiratory indices and / or their components over time or in other manners.
[0417] To aid in the evaluation of the information, a user can interact with and / or manipulate the graphical interface to better use the information. This can include devices and methods that receive input (e.g., user input) to modify the display and re-display information based on the user input, including one or more of the following steps: receiving input to display one or more components of a respiratory index and displaying one or more components of a respiratory index (e.g., respiratory rate, SpO2, FiO2, or the like) either graphically or numerically, alone, combined, and / or in a selection versus time; and / or receiving input to display, zoom, and / or move the display and displaying or re-displaying zoomed and / or moved versions of one or more components of a respiratory index (e.g., ROX index) versus time, either graphically and / or numerically, alone, combined, and / or in a selection versus time; and / or one or more vectors, slopes, angles, magnitudes, differences, and / or other change indicators that indicate changes between two or more respiratory indices and / or these components over time or otherwise.
[0418] As an example, the patient may be able to click on the information in Figure 2 to receive the information in Figure 5. The patient may then be able to zoom in on Figure 5 and / or move it to better observe the information.
[0419] Clinicians should: Comparing one or more respiratory indices and / or changes in respiratory indices against one or more thresholds - see e.g., Figures 2, 4, 5 comparing one or more change indicators against one or more thresholds; comparing one or more respiratory indices and / or changes in respiratory indices to one or more other respiratory indices and / or changes in respiratory indices and / or to one or more other change indicators; comparing one or more change indicators to one or more change indicators and / or one or more respiratory indices and / or changes in respiratory indices; respiratory index, Changes in respiratory indices over time, Changes in respiratory indices over time, and / or Change Indicators Considering one or more of The respiratory status of the patient is determined from changes in the respiratory index over time by any one or combination of the above.
[0420] Specific, non-limiting examples are shown in Figures 11A-11E.
[0421] The clinician determines the patient's respiratory status as "at risk but improving" if the ROX index is below the threshold but the ROX index change indicator shows a trend toward lower risk. See FIG. 11A. If so determined, the assessment device may also provide an indication, such as an early alarm and display message, indicating that the patient is at risk but improving.
[0422] The clinician determines the patient's respiratory condition as "at risk and deteriorating" if the ROX index is below the threshold and the ROX index change indicator indicates a trend toward higher risk. See FIG. 11B. If so determined, the assessment device provides an indication, such as an alarm and a display message, that the patient is at risk and deteriorating.
[0423] The clinician determines the patient's respiratory status as "not at risk (or at low risk) but deteriorating" if the ROX index is above the threshold but the ROX index change indicator indicates a trend toward higher risk. See FIG. 11C. If so determined, the evaluation device provides an indication, such as a quiet alarm, and then sounds a loud alarm if / when the ROX index drops below the threshold.
[0424] If the respiratory rate is trending upward (by more than a threshold slope or other indicator of change) even when the SpO2 is stable, the clinician determines that the patient's respiratory status has not changed significantly, but still evaluates for potential issues, see Figure 11D, and if so, an appropriate message is displayed on the screen.
[0425] The clinician determines the patient's respiratory status as "worsening" if the respiratory rate is trending upward (by more than a threshold slope or other indicator of change) and the SpO2 is trending downward. See FIG. 11E. If so, an appropriate alarm is activated.
[0426] The clinician determines the patient's respiratory status from the ROX index in comparison to one or more thresholds. See, for example, FIG. 2.
[0427] The clinician may determine, based on one or more thresholds, breathing rate, SpO2, and / or FiO2 The patient's respiratory status is determined from this.
[0428] Clinicians determine the patient's respiratory status from changes over time in patient parameters such as respiratory index and / or respiratory rate, SpO2 and / or FiO2, see FIG.
[0429] The clinician determines the patient's respiratory status from the slope, magnitude and / or angle between the respiratory index values at multiple time points, see FIG.
[0430] The clinician determines the patient's respiratory status from change indicators such as slope, magnitude and / or respiratory rate, angle between patient parameters such as SpO2 and / or FiO2 at multiple time points.
[0431] The clinician determines the patient's respiratory status from the length of time it takes for the respiratory index and / or change indicator to change and / or the magnitude of the threshold change over time.
[0432] The clinician determines the patient's respiratory status from the time it takes for the respiratory index and / or change indicator to change by a threshold amount.
[0433] The evaluation information is based on information obtained at multiple time points. These may be continuous time points. These may be discontinuous (discrete) time points. Similarly, the display of the evaluation information may be continuous time points and / or on a display. Alternatively, the display of the information may be discontinuous in time and / or on a display. When the information or display is discontinuous in time, the time points may be separated by less than one second, one second, multiple seconds, less than one minute, one minute, several minutes, or any time point between 1 and 59 minutes, less than one hour, one hour, multiple hours, or any time point between 1 and 24 hours, less than one day, one day, or multiple days. The three time points may be regular or irregular.
[0434] If the respiratory index improves by a certain threshold, the flow rate may be reduced to a base flow rate, and the flow rate may be reduced based on the rate of change of the respiratory index. For example, the change in flow may be proportional or may be defined by a function relating the change in flow rate to the change in the respiratory index. The function may be a decaying function, or a logarithmic function, or a hyperbolic function. The clinician, upon performing the respiratory status / index assessment, may also define appropriate changes in respiratory support, if necessary.
[0435] When the device performs a respiratory status / index assessment, it may alert the clinician via a message, alert, alarm, information, or other indicator described herein. This alerts the clinician to the requirement for a change in respiratory support, but may not actually suggest what the change should be. The clinician may implement the change manually by operating the respiratory support device. Alternatively or in addition, the assessment device may suggest what the change in respiratory support should be. This may be through any kind of indicator, such as an alert, alarm, message information, or the like. Again, the clinician may implement the change. Furthermore, the respiratory support device may also implement the required change automatically.
[0436] Optionally, the respiratory device may have a communications interface configured to transmit information to a mobile device (e.g., a smartphone or tablet) associated with a clinician or medical professional and / or to transmit information to a remote patient monitoring system. The remote patient monitoring system may have one or more servers, client devices, memory units, databases, and / or other components that allow management of patient information, generation of reports of patient health status, and that allow alerts to be transmitted to and / or accessed by patients and / or clinicians. Changes in respiratory indices may be transmitted to the mobile device and / or to the remote patient monitoring system.
[0437] The respiratory index measurements and changes in respiratory index can be incorporated into a patient report that includes measured patient parameters such as SpO2, flow rate, humidity set point and time of use as well as changes in respiratory index and measurements of respiratory index over time.
[0438] Changes in the respiratory index allow a clinician to assess whether the current therapy being provided is effective and further allow the clinician to implement changes in the therapy being provided. In one example, the operating parameters (e.g., prescription settings) of the respiratory assistance device can be remotely updated based on changes in the respiratory index.
[0439] 7. Advantages One or more of the above-described embodiments may provide one or more of the following advantages. Visual tracking of respiratory trends to enable clinicians to make decisions regarding respiratory support. For example, embodiments may indicate trends that are negative and / or negative trends that are above a threshold. Providing an alarm that the patient is trending in a bad direction so that a decision can be made regarding respiratory support. Device-guided decisions based on respiratory trends that suggest the patient is likely to have adverse health effects and requires a particular level or type of respiratory support, including escalating to more invasive respiratory support. The device controller may automatically change the level of respiratory support or generate an alarm. Allowing decisions regarding escalation of respiratory support to be implemented quickly enough that escalation provides a good outcome, but not so quickly that escalation may be provided unnecessarily early. An automated method for determining a patient's respiratory status and changes in respiratory status based on changes or rates of change in respiratory indices, which provides an early warning compared to more time-consuming and / or invasive diagnostic methods. An automated, minimally invasive method for determining respiratory indices and assessing respiratory status. A respiratory support device that acts as an integrated sensing unit that can be used for the assessment phase in hospital or at home. · Improved decision making. · Faster escalation of respiratory support if respiratory status and / or respiratory indices worsen. Remote monitoring of condition to aid in therapy management (e.g., monitoring of home care patients). Embodiments can support assessment of patients remotely from a clinician based on changes in respiratory indices. The respiratory device acts as a non-invasive sensing block / device for controlling the device. The respiratory index is calculated within the device. Changes in the respiratory index can also be calculated within the respiratory support device or in a remote patient monitoring device. Evaluate the effectiveness of NHF therapy and also help determine if patients in remote environments may be in respiratory failure and provide early warning thereof. Knowing where to set the respiratory index threshold (to discriminate between predicting NHF success and predicting NHF failure under current therapy conditions) requires empirical data from different patient groups. This is because a threshold that effectively discriminates between predicted success or failure for patients with COPD may not effectively discriminate for patients with, for example, pneumonia. Using changes in respiratory index values to assess patients overcomes this challenge because a threshold respiratory index value is not required. Clinicians may miss potentially problematic changes in a patient's condition if they only monitor the value of a patient's respiratory index (and non-real-time changes in this value). For example, a potentially problematic increase in a patient's respiratory rate may not result in a change in its respiratory index value if the FiO2 is simultaneously decreased. By displaying a plot of a patient's respiratory rate against its SpO2 divided by its FiO2, a clinician can observe that the patient's respiratory rate is increasing even when the index value is not. Similarly, when such a change in respiratory rate occurs, an alarm can be triggered based on the slope of one or more vectors connecting data points on such a plot.
Claims
1. 1. An apparatus for providing respiratory assistance, comprising: Housing and a flow generator within the housing; an auxiliary gas inlet; a valve in fluid communication with the auxiliary gas inlet and configured to control the amount of auxiliary gas introduced into the apparatus; an outlet located within or on top of the housing; a gas path extending through the housing from the auxiliary gas inlet to the outlet, the flow generator configured to receive auxiliary gas from the auxiliary gas inlet and to generate a flow of gas, the flow of gas traveling through the gas path; one or more sensors; a controller in electronic communication with and receiving signals from the one or more sensors, the sensors being non-invasive sensors, the controller comprising: determining pulmonary function parameters and oxygenation parameters from the sensor signals; determining a respiratory index based on the pulmonary function parameter and the oxygenation parameter; determining a change in said respiratory index over time; modifying respiratory support based on changes in respiratory indices over time; The controller configured to 1. An apparatus comprising:
2. The device of claim 1 further comprising a humidifier.
3. 3. The apparatus of claim 2, wherein the humidifier is positioned downstream of the flow generator, and the humidifier is configured to humidify the flow of gas.
4. The apparatus of any one of claims 1 to 3, wherein the change in the respiratory index comprises a trend or rate of change or a second derivative of the rate of change.
5. 5. An apparatus according to any preceding claim, wherein the varying of the respiratory support comprises varying flow rate in response to changes in a respiratory index over time.
6. 6. Apparatus according to any one of claims 1 to 5, wherein the alteration of respiratory support improves the patient's respiratory status and / or respiratory index.
7. The device according to any one of claims 1 to 6, wherein the respiratory index is an ROX index.
8. The apparatus of any one of claims 1 to 7, wherein the respiratory index is determined from one or more lung function parameters and one or more oxygenation parameters.
9. The device according to any one of claims 1 to 8, wherein the pulmonary function parameter is a parameter indicative of pulmonary function.
10. 10. The apparatus of claim 9, wherein the pulmonary function parameter is indicative of respiratory rate, expiratory time, or minute ventilation.
11. The device according to any one of claims 1 to 10, wherein the oxygenation parameter is a parameter indicative of oxygenation.
12. 12. The apparatus of claim 11, wherein the oxygenation parameter is indicative of SpO2, FiO2, FdO2, or O2 ratio.
13. 13. An apparatus according to any preceding claim, wherein modifying respiratory support comprises indicating the results of the assessment phase and / or implementing any modifications determined in the assessment phase.
14. The apparatus of claim 13 , wherein indicating a result of the evaluation phase comprises indicating an alert, alarm, message, or other indicator.
15. 15. Apparatus according to any one of claims 1 to 14, wherein the respiratory support is high flow respiratory support or non-invasive (NIV) pressure respiratory support.
16. The change in respiratory support may include: increasing or decreasing high flow therapy; escalating from high-flow therapy to NIV; de-escalating from the NIV; increasing pressure during NIV; 16. The device according to any one of claims 1 to 15, comprising one of:
17. 17. Apparatus according to any preceding claim, wherein the alteration of respiratory assistance comprises escalating respiratory assistance by providing high flow respiratory assistance at a higher level.
18. Providing high flow respiratory support at a higher level includes: Increasing the flow or rate of flow; Increasing or providing O2 concentration; Increasing or providing humidification; Increasing or providing flow oscillations; Increasing or providing other high flow parameters; 18. The apparatus of claim 17, comprising one or more of:
19. 19. Apparatus according to any preceding claim, wherein the alteration of respiratory support comprises escalating respiratory support by transferring the patient to more invasive respiratory support.
20. The more invasive respiratory support includes: NIV pressure breathing support, Mechanical ventilator respiratory support via intubation, 20. The apparatus of claim 19, comprising one of:
21. The change in respiratory support may include: controlling the device to escalate respiratory assistance; and / or communicating to a clinician to escalate or consider escalating respiratory support; 21. The apparatus of claim 1, further comprising the step of escalating respiratory assistance by
22. 22. The apparatus of claim 21, wherein the step of communicating to the clinician includes communicating in the form of a message, a status, or an alarm.
23. The change in respiratory support may include: escalating respiratory support if a change in said respiratory index indicates that the patient has deteriorated; or de-escalating respiratory support if the change in the respiratory index indicates that the patient has improved.
23. The apparatus of any one of claims 1 to 22, comprising: