Methods and devices for respiratory therapy
The method and device enhance NIV therapy by dynamically adjusting EPAP based on respiratory flow estimation, addressing airway instability and comfort issues in sleep-disordered breathing patients.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2020-07-30
- Publication Date
- 2026-03-11
AI Technical Summary
Existing respiratory therapies face challenges in providing effective and comfortable non-invasive ventilation (NIV) due to upper airway instability, difficulty in titrating base positive airway pressure (EPAP), and the need for automated adjustments to accommodate dynamic changes in airway conditions, especially in sleep-disordered breathing patients.
A method and device that estimates respiratory flow rates using a controller with sensors for pressure and motor speed, combined with environmental factors, to adjust EPAP dynamically and improve the accuracy and comfort of NIV therapy.
Enhances the reliability and effectiveness of NIV therapy by automatically adjusting EPAP in response to changing airway conditions, improving patient comfort and therapy efficacy.
Smart Images

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Abstract
Description
[Technical Field]
[0001] 1 Cross-reference to related applications This application claims the benefit of U.S. Provisional Patent Application No. 62 / 880,533, filed July 30, 2019, which is hereby incorporated by reference in its entirety.
[0002] 2. Technical Background 2.1 Technology field The present technology relates to one or more of screening, diagnosing, monitoring, treating, preventing, and ameliorating respiratory-related disorders. The present technology relates to medical devices or apparatus and uses thereof, such as methods and devices useful in estimating flow (e.g., assessing the accuracy of a flow sensor, detecting a system or respiratory state, and / or controlling an action). Such processes may be performed in the absence of a flow sensor or a properly operating flow sensor. [Background technology]
[0003] 2.2 Description of Related Art 2.2.1 The human respiratory system and its diseases The body's respiratory system facilitates gas exchange. The nose and mouth form the entrance to a patient's airways.
[0004] These airways contain a series of branching tubes that become narrower, shorter, and more numerous the deeper they travel into the lungs. The lungs' primary function is gas exchange, allowing oxygen from the air to enter the venous blood and carbon dioxide to leave. The trachea divides into right and left main bronchi, which further divide into terminal bronchioles. The bronchi constitute conducting airways and do not participate in gas exchange. The airways further divide into respiratory bronchioles and ultimately into alveoli. Gas exchange occurs in the alveolar region of the lung, which is called the respiratory region. See "Respiratory Physiology," by John B. West, Lippincott Williams & Wilkins, 9th Edition, 2011.
[0005] There are a variety of respiratory diseases. Particular diseases can be characterized by particular symptoms, such as apnea, hypopnea, and hyperpnea.
[0006] Obstructive sleep apnea (OSA), a form of sleep-disordered breathing (SDB), is characterized by episodes of upper airway closure or obstruction during sleep. It results from a combination of an abnormally small upper airway and normal muscle tone in the tongue region, soft palate, and posterior oropharyngeal wall. This condition causes affected individuals to experience breathing pauses typically lasting 30 to 120 seconds, sometimes 200 to 300 times per night. This can result in excessive daytime sleepiness, which can contribute to cardiovascular disease and brain damage. This condition is common, particularly among middle-aged, overweight men, but patients often experience no symptoms. See U.S. Pat. No. 4,944,310 (Sullivan).
[0007] Cheyne-Stokes respiration (CSR) is another form of sleep-disordered breathing. CSR is a disorder of a patient's respiratory regulator, characterized by alternating periods of waxing and waning ventilation, known as the CSR cycle. CSR is characterized by repeated deoxygenation and reaeration of arterial blood. CSR can be harmful due to repeated hypoxia. In some patients, CSR is associated with recurrent sleep arousals, which can cause severe insomnia, increased sympathetic activity, and increased afterload. See U.S. Patent No. 6,532,959 (Berthon-Jones).
[0008] Respiratory failure is a general term for respiratory disorders in which patients are unable to ventilate adequately to balance CO2 in their blood when metabolic activity significantly exceeds resting levels. Respiratory failure encompasses all of the following disorders:
[0009] Obesity-hypopnea syndrome (OHS) is defined as the combination of severe obesity and chronic awake hypercapnia in the absence of other known causes of hypoventilation. Symptoms include dyspnea, morning headache, and excessive daytime sleepiness.
[0010] Chronic obstructive pulmonary disease (COPD) encompasses any of a group of lower respiratory tract diseases that share certain common characteristics, including increased resistance to air movement, prolonged expiratory phase of breathing, and a decrease in normal lung elasticity. Examples of COPD include emphysema and chronic bronchitis. Causes of COPD include chronic smoking (the primary risk factor), occupational exposure, air pollution, and genetic factors. Symptoms include dyspnea on exertion, chronic cough, and sputum production.
[0011] Neuromuscular disease (NMD) is a broad term encompassing numerous diseases and illnesses that impair muscle function directly through intrinsic muscle pathology or indirectly through neuropathology. Some NMD patients are characterized by progressive muscle impairment, resulting in the inability to walk, wheelchair confinement, difficulty swallowing, respiratory muscle weakness, and ultimately death from respiratory failure. Neuromuscular disorders can be categorized as rapidly progressive or slowly progressive: (i) rapidly progressive disorders, characterized by muscle impairment that worsens over months and leads to death within years (e.g., amyotrophic lateral sclerosis (ALS) and Duchenne muscular dystrophy (DMD) in teenagers); (ii) variable or slowly progressive disorders, characterized by muscle impairment that worsens over years and only modestly reduces life expectancy (e.g., limb-girdle, facioscapulohumeral, and myotonic muscular dystrophy). Symptoms of respiratory failure in NMD include increasing general weakness, difficulty swallowing, difficulty breathing on exertion and at rest, fatigue, drowsiness, morning headache, and difficulty concentrating and mood changes.
[0012] Chest wall disorders are a group of thoracic deformities that result in ineffective connections between the respiratory muscles and the rib cage. These disorders are primarily characterized by restrictive obstruction and share the potential for long-term hypercapnic respiratory failure. Scoliosis and / or kyphoscoliosis can lead to severe respiratory failure. Symptoms of respiratory failure include exertional dyspnea, peripheral edema, orthopnea, recurrent chest infections, morning headache, fatigue, poor sleep quality, and loss of appetite.
[0013] A range of treatments are available to treat or ameliorate these conditions. Additionally, otherwise healthy individuals can benefit from preventative treatments for respiratory disease. However, these suffer from several deficiencies.
[0014] 2.2.2 Therapy Continuous positive airway pressure (CPAP) therapy is used in the treatment of obstructive sleep apnea (OSA). Its mechanism of action is that CPAP functions as a pneumatic splint, for example, by pushing the soft palate and tongue forward or backward against the posterior oropharyngeal wall, thereby preventing upper airway closure. Because treatment of OSA with CPAP therapy can be voluntary, patients may choose not to adhere to treatment if they find the device used to deliver the treatment to be one or more of the following: uncomfortable, difficult to use, expensive, or aesthetically unattractive.
[0015] Noninvasive ventilation (NIV) provides ventilatory support to a patient through the upper airway to assist the patient in breathing and / or maintain adequate oxygen levels in the body by performing some or all of the respiratory functions. Ventilatory support is provided through a noninvasive patient interface. NIV is used to treat CSR and respiratory failure in forms such as OHS, COPD, NMD, and chest wall disorders. In some forms, it can improve the comfort and effectiveness of these treatments.
[0016] Non-invasive ventilation in patients, especially those who are asleep and / or sedated, often leads to upper airway instability and collapse, such as in OSA, which can compromise the effectiveness of ventilation therapy by reducing or even ineffectively reducing the pressure actually reaching the lungs from the ventilator.
[0017] The upper airway can be stabilized by maintaining a base positive airway pressure (EPAP) and subsequently providing superimposed ventilatory support. Ineffective EPAP can lead to upper airway collapse, while excessive EPAP may completely stabilize the upper airway but adversely affect comfort, promote mask leakage, or lead to cardiovascular complications. The task of selecting an EPAP sufficient to maintain upper airway stability across sleep states, postures, sedation levels, and disease progression while avoiding adverse side effects (a task known as EPAP titration) presents significant challenges even for experienced clinicians who have studied polysomnography (PSG). A properly titrated EPAP is a balance between extremes and does not necessarily avoid all obstructive events. Despite the continued widespread use of NIV worldwide, only a small proportion of patients undergoing NIV benefit from PSG studies of EPAP titration. In more acute settings, recognition of the effects of sleep and sedation on the efficacy of noninvasive ventilation has historically been limited.
[0018] Therefore, there is a pressing need for NIV therapy that can automatically adjust EPAP (i.e., perform "EPAP auto-titration") in dynamic response to changes in the upper airway condition of NIV patients.
[0019] 2.2.3 Treatment System These treatments may be provided by a therapeutic system or device. Such systems and devices may also be used to diagnose disease without treating it.
[0020] The treatment system may include a respiratory treatment device (RPT device), an air circuit, a humidifier, a patient interface, and data management.
[0021] 2.2.3.1 Patient Interface A patient interface may be used to provide a wearer with an interface to a respiratory appliance, for example, by providing airflow to the airway entrance. Airflow may be provided via a mask to the nose and / or mouth, a tube to the mouth, or a tracheostomy tube to the patient's trachea. Depending on the therapy being applied, the patient interface may form a seal with, for example, an area of the patient's face, thereby facilitating gas delivery at a pressure sufficient to disperse with atmospheric pressure for therapy implementation (e.g., at a positive pressure of about 10 cmH2O relative to atmospheric pressure). In other forms of therapy, such as oxygen delivery, the patient interface may not include a seal sufficient to facilitate delivery of a gas supply to the airways at a positive pressure of about 10 cmH2O.
[0022] 2.2.3.2 Respiratory Therapy (RPT) Devices Air pressure generators are known for a wide range of applications (e.g., industrial-scale ventilation systems). However, air pressure generators for medical applications have specific requirements that cannot be met by more common air pressure generators (e.g., the reliability, size, and weight requirements of medical equipment). In addition, even devices designed for medical treatment may suffer from deficiencies related to one or more of comfort, noise, ease of use, effectiveness, size, weight, manufacturability, cost, and reliability.
[0023] One known RPT device used to treat sleep-disordered breathing is the S9 Sleep Therapy System (manufactured by ResMed Limited). Another example of an RPT device is a mechanical ventilator. Mechanical ventilators (e.g., the ResMed Stellar® series of adult and pediatric ventilators) can provide invasive and non-invasive independent respiratory support for patients for a range of treatments for multiple conditions (including, but not limited to, NMD, OHS, and COPD).
[0024] The ResMed Elisee® 150 ventilator and ResMed VSIII® ventilator can provide invasive and non-invasive dependent respiratory support suitable for adult or pediatric patients for the treatment of multiple conditions. These ventilators offer volumetric and pressure ventilation modes using single or dual limb circuits. RPT devices typically include a pressure generator (e.g., an electric or motor-operated blower or compressed gas reservoir) and are configured to deliver airflow to the patient's airway. In some cases, the delivery of airflow to the patient's airway can be at positive pressure (e.g., using a pressure control loop of a controller according to a pressure setpoint or a flow control loop of a controller according to a flow setpoint). The outlet of the RPT device is connected via an air circuit to a patient interface, as described above.
[0025] An RPT device may include, for example, a high-flow therapy device configured to provide high-flow therapy. In this regard, some respiratory therapies contemplate the delivery of a prescribed respiratory volume by delivering an inspiratory flow profile (perhaps superimposed on a positive baseline pressure) for a targeted duration. In other cases, the interface to the patient's airway is "open" (unsealed), and respiratory therapy with a flow of conditioned or concentrated gas may be used solely to support the patient's spontaneous breathing. In one example, high-flow therapy (HFT) involves the delivery of a continuous, heated, humidified airflow through an unsealed or open patient interface at a "therapeutic flow" that remains nearly constant throughout the respiratory cycle. The therapeutic flow is nominally set to exceed the patient's peak inspiratory flow. HFT has been used to treat OSA, CSR, respiratory failure, COPD, and other respiratory disorders. One mechanism of action is that delivering a high flow of air to the airway inlet improves ventilation efficiency by allowing the flushing or displacement of exhaled CO2 from the patient's anatomical dead space. Therefore, HFT is sometimes referred to as dead space therapy (DST). Other benefits may include improved warmth and humidification (possibly through the benefit of secretory control) and a gradual increase in airway pressure. As an alternative to a constant flow rate, the therapeutic flow rate may follow a profile that varies over the respiratory cycle.
[0026] 2.2.3.3 Humidifier Delivery of airflow without humidification can lead to dryness of the airway. When a humidifier is used with an RPT device and patient interface, humidified gas is produced, minimizing drying of the nasal mucosa and increasing comfort of the patient's airway. Additionally, in cooler climates, the application of warm air to the facial area surrounding the patient interface generally provides more comfort than cool air. A range of artificial humidification devices and systems are known, but they do not meet the specialized requirements of medical humidifiers.
[0027] 2.2.4 Monitoring System In general, screening and diagnosis involve identifying disease through signs and symptoms of a disorder. Screening typically produces a true or false result indicating whether a patient's disorder warrants further investigation, while diagnosis often produces clinically actionable information. Screening and diagnosis tend to be one-time procedures, whereas monitoring the progression of a disorder can continue indefinitely. Some screening and diagnostic systems are specifically adapted for screening or diagnosis, while some can also be used for monitoring.
[0028] Polysomnography (PSG) is a conventional system for diagnosing and monitoring cardiopulmonary diseases, but it typically requires expert clinical staff for system application. PSG typically involves placing 15–20 contact sensors on the human body to record various biosignals (e.g., electroencephalography (EEG), electrocardiography (ECG), electrooculography (EOG), and electromyography (EMG)). PSG for sleep-disordered breathing requires patients to be observed for two nights at a specialized hospital: the first night for pure diagnosis and the second night for clinician-directed titration of treatment parameters. Clinical experts can adequately diagnose or monitor patients based on visual observation of PSG signals. However, there are situations where clinical experts are unavailable or cannot be paid for. This makes PSG expensive and inconvenient. In particular, it is not suitable for home diagnosis or monitoring.
[0029] A simpler home screening, diagnostic, and monitoring system includes a nasal cannula, a pressure sensor, a processing device, and a recording means. The nasal cannula is a device containing hollow, open-ended prongs. These prongs are configured for near-invasive insertion into a patient's nostrils to minimize interference with the patient's breathing. These hollow prongs are in fluid communication with a pressure transducer via a Y-shaped tube. The pressure transducer provides a data signal indicative of the pressure at the entrance to the patient's nostrils (nasal pressure). Because the nasal pressure signal is similar in shape to the nasal flow signal, the nasal pressure signal has been found to be an adequate proxy for the nasal flow signal generated by a flow transducer in wired communication with a sealed nasal mask. The processing device may be configured to perform real-time or near-real-time analysis of the nasal pressure signal from the pressure transducer to detect and classify SDB events for monitoring the patient's condition. Similar analysis may be required for screening or diagnosis, but not necessarily in real-time or near-real-time. As such, the recording means is configured to record the nasal pressure signal from the pressure transducer for subsequent off-line or "batch" analysis by a processing device for screening or diagnostic purposes.
[0030] Additionally, obtaining a measurement of patient respiratory flow can be useful when monitoring respiratory status during respiratory therapy (e.g., in determining whether to change therapy control and / or condition detection). Such a measurement of patient respiratory flow can be derived from a total flow signal provided by a flow sensor in the RPT generator. For example, a measurement of patient respiratory flow can be used to detect a patient's inspiration-to-expiration or expiration-to-inspiration transition to determine when to deliver an expiratory or inspiratory therapy setting. Similarly, a measured patient respiratory flow signal can be used to detect conditions or events associated with patient flow limitation, apneas, hypopneas, and other respiratory- or sleep-disordered breathing-related conditions or events. These detected events enable an assessment of the patient's condition, and can be applied within an automatic control system, for example, to make therapy adjustments (e.g., changing pressure control parameters (e.g., pressure setpoints) or flow control parameters (e.g., flow setpoints) used in controlling a respiratory therapy device). Examples of such adjustments are illustrated in U.S. Patent Nos. 5,704,345 and 10,350,379. For these purposes, a measured flow signal may be derived from a flow sensor (eg, a differential pressure transducer or pneumotachograph).
[0031] It may be desirable to develop additional methods and devices for estimating flow signals to improve existing methods and devices, or to develop new treatment and detection methods and devices, or both. For example, it may be desirable to develop methods for monitoring or detecting sensor accuracy before and / or during use of the sensor, for example to detect flow sensor failures and / or system conditions or respiratory conditions (e.g., in the absence of a flow sensor or in the absence of a properly operating flow sensor), to ensure high accuracy performance by respiratory apparatus. [Prior art documents] [Patent documents]
[0032] [Patent Document 1] U.S. Patent No. 6,532,959 [Patent Document 2] U.S. Patent No. 5,704,345 [Patent Document 3] U.S. Patent No. 10,350,379 Summary of the Invention [Means for solving the problem]
[0033] 3. Brief description of the technology
[0034] The present technology relates to the provision of medical devices that can be used in the screening, diagnosis, monitoring and treatment of respiratory diseases, which medical devices have one or more of improved comfort, cost, effectiveness, ease of use and manufacturability.
[0035] Some versions of the present technology may involve determining an estimate of the flow rate of breathable gas associated with a flow generator.
[0036] Some versions of the present technology may include a method in a controller for generating a signal indicative of an estimate of a flow rate of a flow of breathable gas associated with a respiratory treatment device. The respiratory treatment device may include a motor-operated blower. The method may include receiving at the controller an electronic signal indicative of a measured pressure of the breathable gas from a pressure sensor. The method may include receiving at the controller an electronic signal indicative of a measured speed of the motor from a speed sensor. The method may include calculating at the controller an entrained air density function. The method may include generating at the controller a signal indicative of an estimate of the flow rate of the breathable gas using a flow estimation function. The flow estimation function may include a function of (1) a signal indicative of the measured pressure, (b) a signal indicative of a measured speed of the motor, and (c) the entrained air density function.
[0037] In some versions, the entrained air density function may include an air density value and an air density reference value. The entrained air density function may include a first ratio of the air density value and the air density reference value. The entrained air density function may include a second ratio of the air density value and the air density reference value. The method may include estimating the flow rate of breathable gas by controlling a motor. electric The determined estimate of the flow rate of breathable gas may further include calculating a force applied to the motor. electric The entrained air density function may include a function of ambient pressure, temperature, and relative humidity values.
[0038] In some versions, the method may further include evaluating a signal from an oxygen sensor to calculate the entrained air density function. The method may include receiving at the controller from an ambient pressure sensor an electronic signal indicative of a measurement of ambient pressure of the breathable gas, where the ambient pressure value may be a measurement of ambient pressure of the breathable gas. The method may include receiving at the controller from a gas temperature sensor an electronic signal indicative of a measurement of gas temperature of the breathable gas, where the gas temperature value may be a measurement of gas temperature of the breathable gas, and the method may include receiving at the controller from an ambient relative humidity sensor an electronic signal indicative of a measurement of ambient relative humidity of the breathable gas, where the ambient relative humidity value may be a measurement of ambient relative humidity of the breathable gas.
[0039] In some versions, the function of the ambient pressure value, the temperature value, and the relative humidity value may include a saturated vapor pressure function as a function of temperature. The saturated vapor pressure function as a function of temperature may be defined as:
[0040]
number
[0041] Here, Temp local_DegCmay be the temperature value. The function of the atmospheric pressure value, the temperature value, and the relative humidity value may include a vapor pressure function as a function of temperature and relative humidity. The vapor pressure function as a function of temperature and relative humidity may be defined by multiplying (a) the result of the saturated vapor pressure function as a function of temperature by (b) the relative humidity value, as follows:
[0042]
number
[0043] where RH local may be the relative humidity value, and Psv(Temp local_DegC ) can be a saturated vapor pressure function depending on the temperature.
[0044] In some versions, the function of the ambient pressure value, the temperature value, and the relative humidity value may be defined by:
[0045]
number
[0046] where P0 = 103 hectopascals, T0 = 15 degrees Celsius or 288.15 degrees Kelvin.
number
number
[0047] In some versions, the flow estimation function may include a set of frequency functions. The set of frequency functions may include a first rotational frequency function, the first rotational frequency function being a function of the measured speed of the motor and the entrained air density function. The set of frequency functions may include a second rotational frequency function, the second rotational frequency function being a function of the measured speed of the motor. The set of frequency functions may include a third rotational frequency function, the third rotational frequency function being a function of the measured speed of the motor and the entrained air density function. The first rotational frequency function may be defined by:
[0048]
number
[0049] RPM may be a measure of the speed of the motor;
number
[0050]
number
[0051] RPM may be a measure of the speed of the motor, and C3, C4, and C5 are empirically derived constants. In some versions, the third rotational frequency function may be defined by:
[0052]
number
[0053] RPM may be a measure of the speed of the motor;
number
[0054]
number
[0055] A may be the first rotational frequency function, B may be the second rotational frequency function, C may be the third rotational frequency function, and Pres_meas may be a measurement of the pressure of the breathable gas from the pressure sensor.
[0056] In some versions, the method may include receiving at the controller from a flow sensor an electronic signal indicative of a measured value of the breathable gas flow rate. The method may include comparing at the controller the electronic signal indicative of the measured value of the breathable gas flow rate with a generated signal indicative of an estimate of the breathable gas flow rate. The method may include generating by the controller an output indicator indicative of an assessment of accuracy of the flow sensor based on the comparison. The method may include varying, by the controller, a control parameter for operating the motor-operated blower based on the output indicator. The method may include varying, by the controller, a control parameter for operating the motor-operated blower based on the generated signal indicative of the estimate of the breathable gas flow rate. The control parameter may be one of a pressure setpoint and a flow setpoint.
[0057] Some versions of the present technology may include a processor-readable medium having stored thereon processor-executable instructions that, when executed by a processor controller of a motor-operated blower in a respiratory treatment device, cause the processor to generate an estimate of the flow rate of breathable gas associated with the respiratory treatment device. The processor-executable instructions may include instructions for controlling operation according to any of the methods described herein.
[0058] Some versions of the present technology may include a respiratory treatment device. The respiratory treatment device may include a motor-operated blower adapted to couple to a patient respiratory interface and adapted to generate respiratory treatment. The respiratory treatment device may include a flow of breathable gas through the patient respiratory interface. The respiratory treatment device may include a pressure sensor configured to generate an electronic signal indicative of a measurement of the pressure of the breathable gas. The respiratory treatment device may include a speed sensor configured to generate an electronic signal indicative of a measurement of the speed of the motor. The respiratory treatment device may include a controller that may include one or more processors and is coupled to the motor-operated blower, the pressure sensor, and the speed sensor. The controller may be configured to receive an electronic signal indicative of a measurement of the pressure of the breathable gas. The controller may be configured to receive the electronic signal indicative of the measurement of the speed of the motor. The controller may be configured to calculate an entrained air density function. The controller may be configured to generate a signal indicative of an estimate of the flow rate of the breathable gas using a flow estimation function, which may include (1) a signal indicative of the measured pressure, (b) a signal indicative of a measured speed of the motor, and (c) a function of the entrained air density function.
[0059] In some versions, the entrained air density function may include an air density value and an air density reference value. The entrained air density function may include a first ratio of the air density value and the air density reference value. The entrained air density function may include a second ratio of the air density value and the air density reference value. 31. In some versions of the respiratory treatment device, for determining an estimate of the flow rate of breathable gas, the controller derives a motor flow rate from one or more sensor signals. electric The determined estimate of the flow rate of breathable gas may be used to calculate a force applied to the motor. electric The entrained air density function may be based on a force. The entrained air density function may include a function of an ambient pressure value, a temperature value, and a relative humidity value. The controller may be further configured to evaluate a signal from an oxygen sensor to calculate the entrained air density function.
[0060] In some versions, the respiratory treatment device may include an ambient pressure sensor configured to generate an electronic signal indicative of a measurement of ambient pressure of the breathable gas, where the ambient pressure value may be a measurement of ambient pressure of the breathable gas. The respiratory treatment device may include a gas temperature sensor configured to generate an electronic signal indicative of a measurement of gas temperature of the breathable gas, where the gas temperature value may be a measurement of gas temperature of the breathable gas. The respiratory treatment device may include an ambient relative humidity sensor, where an electronic signal indicative of a measurement of ambient relative humidity of the breathable gas, where the ambient relative humidity value may be a measurement of ambient relative humidity of the breathable gas. The controller may be configured to receive the electronic signal indicative of the measurement of ambient pressure. The controller may be configured to receive the electronic signal indicative of the measurement of gas temperature. The controller may be configured to receive the electronic signal indicative of the measurement of ambient relative humidity.
[0061] In some versions, the function of the atmospheric pressure value, the temperature value, and the relative humidity value may include a saturated vapor pressure function as a function of temperature. The saturated vapor pressure function as a function of temperature may be defined as described herein. The function of the atmospheric pressure value, the temperature value, and the relative humidity value may include a vapor pressure function as a function of temperature and relative humidity. The vapor pressure function as a function of temperature and relative humidity may be defined by multiplying (a) the result of the saturated vapor pressure function as a function of temperature by (b) the relative humidity value as described herein. The function of the atmospheric pressure value, the temperature value, and the relative humidity value may be defined as described herein.
[0062] In some versions, the flow estimation function of the respiratory treatment device may include a set of frequency functions. The set of frequency functions may include a first rotational frequency function, the first rotational frequency function being a function of the measured speed of the motor and the entrained air density function. The set of frequency functions may include a second rotational frequency function, the second rotational frequency function being a function of the measured speed of the motor. The set of frequency functions may include a third rotational frequency function, the third rotational frequency function being a function of the measured speed of the motor and the entrained air density function. The first rotational frequency function may be defined as described herein. The second rotational frequency function may be defined as described herein. The third rotational frequency function may be defined as described herein. The flow estimation function may be defined by:
[0063]
number
[0064] A may be the first rotational frequency function, B may be the second rotational frequency function, C may be the third rotational frequency function, and Pres_meas may be a measurement of the pressure of the breathable gas from the pressure sensor.
[0065] In some versions, the respiratory treatment device may further include a flow sensor configured to generate an electronic signal indicative of a measured value of the breathable gas flow rate. The controller may be further configured to receive the electronic signal indicative of the measured value of the breathable gas flow rate. The controller may be further configured to compare the electronic signal indicative of the measured value of the breathable gas flow rate with a generated signal indicative of an estimate of the breathable gas flow rate. The controller may be further configured to generate an output indicator indicative of an assessment of accuracy of the flow sensor based on the comparison. The controller may be further configured to alter a control parameter for operating the motor-operated blower based on the output indicator. The controller may be further configured to alter a control parameter for operating the motor-operated blower based on the generated signal indicative of the estimate of the breathable gas flow rate. The control parameter may be one of a pressure setpoint and a flow setpoint.
[0066] Some versions of the present technology may include a respiratory treatment device as described herein and may further include a processor-readable medium having processor-executable instructions stored thereon that, when executed by one or more processors of a controller of the motor-operated blower, cause the one or more processors to generate an estimate of the flow rate of the breathable gas, the processor-executable instructions including instructions to control operation according to any of the methods described herein.
[0067] The methods, systems, devices, and apparatus described herein may enable improved processor functionality (e.g., processors of special purpose computers, respiratory monitors, and controllers (e.g., controllers of respiratory treatment devices)). Furthermore, the described methods, systems, devices, and apparatus enable advances in the art of automated management, monitoring, and treatment of respiratory conditions (e.g., sleep disordered breathing). In this regard, the techniques described herein may help address issues related to improving the reliability of automated determinations of respiratory flow and gas flow rates in respiratory devices.
[0068] Of course, some of the above aspects may form sub-aspects of the present technology, and various sub-aspects or one or both of the aspects may be combined in various ways to form further aspects or sub-aspects of the present technology.
[0069] Other features of the present technology will become apparent in light of the information contained in the following detailed description, abstract, drawings, and claims. [Brief explanation of the drawings]
[0070] The present technology is illustrated by way of example and not by way of limitation in the accompanying drawings, in which like reference numerals include like elements as follows: 4.1 Treatment System [Figure 1] The system includes a patient 1000 wearing a patient interface 3000. The patient interface 3000 takes the form of a full face mask and receives a supply of air at positive pressure from an RPT device 4000. Air from the RPT device may be humidified by a humidifier 5000 and travel along an air circuit 4170 to the patient 1000. 4.2 Respiratory System and Facial Anatomy [Figure 2] Figure 2 shows an overview of the human respiratory system, including the nose and oral cavity, larynx, vocal folds, esophagus, trachea, bronchi, lungs, alveolar sacs, heart, and diaphragm. 4.3 Patient Interface [Figure 3]Figure 3 shows a patient interface in the form of a nasal mask in accordance with one form of the present technology. 4.4 RPT Device [Figure 4A] 1 shows an RPT device in accordance with one form of the present technology. [Figure 4B]
[0023] Fig. 12 is a schematic diagram of an air circuit of an RPT device in accordance with one form of the present technology, with upstream and downstream directions indicated. [Figure 4C] FIG. 1 is a schematic diagram of the electrical components of an RPT device in accordance with one aspect of the present technology. [Figure 4D] 4D is a schematic diagram of an algorithm executed in an RPT device in accordance with one form of the present technology. 4.5 Humidifier [Figure 5A] FIG. 5A is an isometric view of a humidifier in accordance with one form of the present technology. [Figure 5B] 5B is an isometric view of a humidifier in accordance with one form of the present technology, showing the humidifier reservoir 5110 removed from the humidifier reservoir dock 5130. 4.6 Respiratory Waveforms [Figure 6A] A typical model of a human respiratory flow waveform during sleep is shown. The horizontal axis is time, and the vertical axis is respiratory flow. Because parameter values can vary, a typical breath may have approximately the following values: tidal volume, Vt, 0.5 L; inspiratory time, Ti, 1.6 seconds; peak inspiratory flow, Qpeak, 0.4 L / s; expiratory time, Te, 2.4 seconds; peak expiratory flow, Qpeak, -0.5 L / s. The total duration of the breath, Ttot, is approximately 4 seconds. Humans typically breathe at approximately 15 breaths per minute (BPM), with a ventilation rate, Vent, of approximately 7.5 L / min. The typical duty cycle, Ti, to Ttot, is approximately 40%. [Figure 6B] 1 shows the scaled inspiratory portion of the respiratory flow waveform, where the patient is experiencing an example of "classical flat" inspiratory flow limitation. [Figure 6C] The scaled inspiratory portion of the respiratory flow waveform is shown, where the patient is experiencing an example of "chair-shaped" (late flattened) inspiratory flow limitation. [Figure 6D]The scaled inspiratory portion of the respiratory flow waveform is shown, where the patient is experiencing an example of "inverted chair" (early flattening) inspiratory flow limitation. [Figure 6E] The scaled inspiratory portion of the respiratory flow waveform is shown, where the patient is experiencing an example of "M-shaped" inspiratory flow limitation. [Figure 6F] The scaled inspiratory portion of the respiratory flow waveform is shown, where the patient is experiencing a significant "M-shaped" example of inspiratory flow limitation. 4.7 Flow Signal Estimation [Figure 7] 1 is an exemplary diagram illustrating a method, system, or method that may be used in implementing the generation of a signal that estimates flow (e.g., by methods described in more detail herein). [Figure 8A] 10 is an exemplary flowchart illustrating a process for generating a flow estimation signal based on input signals (e.g., a gas pressure signal, a motor speed signal, and a calculated entrained air density function). [Figure 8B] 8 is an exemplary flowchart illustrating a process for generating an entrained air density function to generate a flow estimation signal, such as in the example of FIG. 7. [Figure 8C] 8 is an exemplary process for using a flow estimation signal in a respiratory apparatus (e.g., an RPT device), for example, using the system of FIG. 7. [Figure 9A] 1 includes graphs showing a comparison of flow signals measured by a flow sensor and flow estimation signals generated using the fan curve of an exemplary RPT device at various altitudes. [Figure 9B] 1 includes graphs showing a comparison of flow signals measured by a flow sensor and flow estimation signals generated using the fan curve of an exemplary RPT device at various altitudes. [Figure 10A] 1 includes graphs showing a comparison of both the flow signal measured by the flow sensor and the flow estimate signal generated when using an exemplary RPT device at various altitudes. [Figure 10B]1 includes graphs showing a comparison of both the flow signal measured by the flow sensor and the flow estimate signal generated when using an exemplary RPT device at various altitudes. DETAILED DESCRIPTION OF THE INVENTION
[0071] 5 Detailed Description of the Embodiments of the Present Technology Before describing the present technology in further detail, it is to be understood that the present technology is not limited to the specific embodiments described herein, which may vary. It is also to be understood that the terminology used in the present disclosure is for the purpose of describing the specific embodiments described herein, and is not intended to be limiting.
[0072] The following description is provided in connection with various embodiments that may share one or more common characteristics. It should be understood that one or more features of any one embodiment may be combined with one or more features of another embodiment or other embodiments. In addition, any single feature or combination of features in any of these embodiments may constitute an additional embodiment.
[0073] 5.1 Treatment In one form, the present technology includes a method of treating a respiratory disorder, the method including the step of delivering air at positive pressure or a high flow rate to the entrance of the airways of a patient 1000.
[0074] In certain embodiments of the present technology, a supply of air at positive pressure or high flow is provided to the patient's nasal passages via one or both nostrils.
[0075] 5.2 Treatment System In one form, the present technology includes an apparatus or device for the treatment of disordered breathing. The apparatus or device may include an RPT device 4000 that delivers pressurized air to the patient 1000 via an air circuit 4170 to a patient interface 3000. In some versions, the RPT device may be a high-flow therapy device, delivering a controlled airflow to the patient (through an open patient interface (e.g., a cannula)) at a rate generally higher than typical inspiratory flow.
[0076] 5.3 Patient Interface A non-invasive patient interface 3000 in accordance with one aspect of the present technology includes the functional aspects of a seal-forming structure 3100, a plenum chamber 3200, a positioning and stabilizing structure 3300, a vent 3400, a form of connection port 3600 for connection to an air circuit 4170, and a forehead support 3700. In some forms, the functional aspects may be provided by one or more physical components. In some forms, one physical component may provide one or more functional aspects. In use, the seal-forming structure 3100 is positioned to surround the entrance to the patient's airway to facilitate delivery of air at positive pressure to the airway. Other patient interface devices may be used depending on the type of therapy provided by the RPT.
[0077] 5.4 RPT Device An RPT device 4000 in accordance with one aspect of the present technology includes mechanical and pneumatic components 4100, electrical components 4200, and is configured to execute one or more algorithms 4300. The RPT device may have an outer housing 4010. The outer housing 4010 is formed by two portions, an upper portion 4012 and a lower portion 4014. Further, the outer housing 4010 may include one or more panel(s) 4015. The RPT device 4000 includes a chassis 4016 that supports one or more internal components of the RPT device 4000. The RPT device 4000 may include a handle 4018.
[0078] The air pressure path of the pneumatic RPT device 4000 may include one or more air circuit items (e.g., an inlet air filter 4112, an inlet muffler 4122, a pressure generator 4140 (e.g., a blower 4142) capable of delivering air at positive pressure, an outlet muffler 4124) and one or more transducers 4270 (e.g., a pressure sensor 4272 and a flow sensor 4274).
[0079] One or more of the air path items may be located within a removable, unitary structure called a pneumatic block 4020. The pneumatic block 4020 may be located within the outer housing 4010. In one form, the pneumatic block 4020 is supported by or formed as part of the chassis 4016.
[0080] The RPT device 4000 can have a power supply 4210, one or more input devices 4220, a central controller 4230, a therapy device controller 4240, a pressure generator 4140, one or more protection circuits 4250, a memory 4260, a transducer 4270, a data communication interface 4280, and one or more output devices 4290. The electrical components 4200 can be mounted on a single printed circuit board assembly (PCBA) 4202. In an alternative, the RPT device 4000 can include more than one PCBA 4202.
[0081] 5.4.1 RPT Device Mechanical and Pneumatic Components The RPT device may include one or more of the following components in an integral unit: In an alternative, one or more of the following components may be arranged as their own separate units.
[0082] 5.4.1.1 Air filter(s) An RPT device in accordance with one form of the present technology may include an air filter 4110 or multiple air filters 4110.
[0083] In one form, the inlet air filter 4112 is located at the beginning of the air pressure path upstream of the pressure generator 4140 .
[0084] In one form, an outlet air filter 4114 (eg, an antibacterial agent) is located between the outlet of the pneumatic block 4020 and the patient interface 3000.
[0085] 5.4.1.2 Mufflers In one form of the present technology, an inlet muffler 4122 is positioned above a pressure generator 4140 in the pneumatic path.
[0086] In one form of the present technology, the outlet muffler 4124 is positioned in the pneumatic path between the pressure generator 4140 and the patient interface 3000.
[0087] 5.4.1.3 Pressure generator In one form of the present technology, the pressure generator 4140 that generates the air flow or delivery at a positive pressure is a controllable blower 4142. For example, the blower 4142 may include a brushless DC motor 4144 with one or more impellers housed within a volute. The blower may deliver the air supply at a rate of, for example, up to about 120 liters / minute, at a positive pressure ranging from about 4 cmH2O to about 20 cmH2O, or in other forms up to about 30 cmH2O. Blowers may be described in any one of the following patents or patent applications: U.S. Patent No. 7,866,944; U.S. Patent No. 8,638,014; U.S. Patent No. 8,636,479; and PCT Patent Application Publication No. WO 2013 / 020167, all of which are incorporated herein by reference in their entirety.
[0088] The pressure generator 4140 is under the control of the therapy device controller 4240 .
[0089] In other forms, pressure generator 4140 can be a piston-driven pump, a pressure regulator connected to a high pressure source (eg, a pressurized air reservoir), or a bellows.
[0090] 5.4.1.4 Transducer(s) The transducer may be internal to the RPT device or external to the RPT device. An external transducer may, for example, be located on the air circuit or form part of the air circuit (e.g., a patient interface). An external transducer may take the form of a non-contact sensor (e.g., a Doppler radar motion sensor that transmits or moves data RPT device).
[0091] In one form of the present technology, one or more transducers 4270 may be placed upstream or downstream or both of the pressure generator 4140. The one or more transducers 4270 may be constructed and arranged to measure a property (e.g., flow rate, pressure, or temperature at that point in the pneumatic path).
[0092] In one form of the present technology, one or more transducers 4270 may be positioned proximate the patient interface 3000.
[0093] In one form, the signal from the converter 4270 may be filtered (eg, by low-pass, high-pass, or band-pass filtering).
[0094] 5.4.1.4.1 Flow Sensor The flow sensor 4274 according to the present technology may be based on a differential pressure transducer (e.g., an SDP600 series differential pressure transducer from SENSIRION). In some versions, the present technology may be implemented without a flow sensor (e.g., when the flow estimation signal is generated based on other sensor signals (i.e., not a flow sensor signal)).
[0095] In one form, a signal representing the flow rate (e.g., the total flow rate Qt from the flow sensor 4274, or an estimate thereof, or both) may be received by the central controller 4230.
[0096] 5.4.1.4.2 Pressure Sensors A pressure sensor 4272 according to the present technology can be placed in fluid communication with the pneumatic path. The pressure sensor 4272 thus measures the pressure characteristic of the gas in the pneumatic path (e.g., the pressure generated by the blower of the RPT). One example of a suitable pressure transducer is a sensor from the HONEYWELL ASDX series. Another suitable pressure transducer is a sensor from the NPA series from GENERAL ELECTRIC.
[0097] In one form, the signal from the pressure sensor 4272 is received by the central controller 4230.
[0098] 5.4.1.4.3 Motor Speed Converter In one form of the present technology, a motor speed transducer 4276 or sensor may be used to determine the rotational speed of the motor 4144 and / or the blower 4142. The motor speed signal from the motor speed transducer 4276 may be provided to the therapy device controller 4240. The motor speed transducer 4276 may be, for example, a speed sensor (e.g., a Hall effect sensor).
[0099] 5.4.1.4.4 Gas Temperature Sensor In some versions of the present technology, this is a gas temperature sensor 4275. In some such implementations, the gas temperature sensor may be a component of another sensor (e.g., a Sensirion SDP-872 flow sensor) (e.g., a hot wire sensor) (which may generate temperature and flow signals but may be a standalone temperature sensor or other temperature-sensing device). Such a sensor may generate a signal (e.g., electronic) indicative of the gas (air) temperature measured in or relative to the gas in the RPT's pneumatic path. Such a measurement may also be indicative of the gas surrounding the RPT's pneumatic flow path. Such a sensor may be located, for example, on the RPT's PCB. The sensor may generate the sensed temperature in an analog and / or digital signal that can be accessed by the controller 4230's processor (via a memory containing sampled signals and / or temperature values from such sensor signals).
[0100] 5.4.1.4.5 Ambient pressure sensor In some versions of the present technology, an ambient pressure sensor 4277. For example, an ambient pressure sensor on the RPT (e.g., on the RPT's PCB) is configured to measure ambient pressure (i.e., pressure outside the RPT's pneumatic flow path). This sensor may generate the sensed ambient pressure in an analog and / or digital signal that can be accessed by the processor of the controller 4230 (via a memory containing sampled signals and / or ambient pressure values from such sensor signals).
[0101] 5.4.1.4.6 Ambient Relative Humidity Sensor In some versions of the technology, an ambient relative humidity sensor 4279. For example, a relative humidity sensor of the RPT (e.g., on the RPT) is configured to measure the ambient relative humidity (i.e., the relative humidity outside the pneumatic flow path of the RPT). The sensor may generate the sensed relative humidity in an analog or digital signal or both, which may be accessed by the processor of the controller 4230 (via a memory containing sampled signals and / or relative humidity values (e.g., percentage values from such sensor signals)).
[0102] 5.4.1.4.7 Oxygen Sensor Some versions of the present technology may optionally include one or more oxygen sensors (e.g., for generating an oxygen sensor signal 7021). These oxygen sensors are adapted to determine the oxygen concentration of gas passing through a pneumatic path of a device such as an RPT. In an implementation, an estimate of the oxygen concentration of gas passing through a respiratory conduit is made using the oxygen sensor 7023. An oxygen sensor is a device configured to measure the oxygen concentration in a gas. Non-limiting examples of oxygen sensors include ultrasonic oxygen sensors, electrical oxygen sensors, chemical oxygen sensors, and optical oxygen sensors. In one implementation, the oxygen sensor 7023 may be an ultrasonic oxygen sensor including an ultrasonic emitter and an ultrasonic receiver.
[0103] 5.4.1.4.8 Other Motor Parameter Sensor(s) Some versions of the present technology may optionally include one or more sensors or circuit elements that determine or sense other motor parameter signal(s) 7021 (e.g., at least one of motor current, motor voltage, and motor power). For example, one or more sense resistor(s) may be used to measure the current and / or voltage supplied to the blower motor. In some versions, for example, using the measured current and known or measured voltage, the instantaneous power of the motor may be calculated (e.g., by a central controller of the device) (e.g., current x voltage = power).
[0104] 5.4.1.5 Anti-spillback valves In one form of the present technology, an anti-spillback valve may be located between the humidifier 5000 and the pneumatic block 4020. The anti-spillback valve is constructed and positioned to reduce the risk of water flowing upstream from the humidifier 5000 (e.g., to the blower motor 4144).
[0105] 5.4.1.6 Air Circuit An air circuit 4170 in accordance with one aspect of the present technology is a conduit or tube that is constructed and arranged such that, in use, air flow travels between two components (e.g., the pneumatic block 4020 and the patient interface 3000).
[0106] In particular, the air circuit 4170 may be fluidly connected to the outlet of the pneumatic block and the patient interface. The air circuit may be referred to as an air delivery tube. In some cases, there may be separate limbs of the circuit for inhalation and exhalation. In other cases, a single limb is used.
[0107] In some forms, the air circuit 4170 may include one or more heating elements configured to heat the air in the air circuit (e.g., to maintain or increase the air temperature). The heating elements may take the form of a heated wire circuit and may include one or more transducers (e.g., temperature sensors). In one form, the heated wire circuit may be spirally wound around the axis of the air circuit 4170. The heating elements may be in communication with a controller (e.g., the central controller 4230 or the humidifier controller 5250). One example of an air circuit 4170 including a heated wire circuit is described in U.S. Patent Application No. US / 2011 / 0023874, which is incorporated herein by reference in its entirety.
[0108] 5.4.1.7 Oxygen delivery In one form of the present technology, supplemental oxygen 4180 can be delivered to one or more points in the pneumatic pathway (e.g., upstream of the pneumatic block 4020), the air circuit 4170, and / or the patient interface 3000.
[0109] 5.4.2 RPT Device Electrical Components 5.4.2.1 Power supply The power supply 4210 may be located inside or outside the external housing 4010 of the RPT device 4000.
[0110] In one form of the present technology, the power supply 4210 powers only the RPT device 4000. In another form of the present technology, power is provided from the power supply 4210 to both the RPT device 4000 and the humidifier 5000.
[0111] 5.4.2.2 Input Devices In one form of the present technology, the RPT device 4000 includes one or more input devices 4220 in the form of buttons, switches, or dials to allow a human to interact with the device. The buttons, switches, or dials may be physical or software devices accessible via a touchscreen. The buttons, switches, or dials may be physically connected to the external housing 4010 in one form, or may communicate wirelessly with a receiver electrically connected to the central controller 4230 in another form.
[0112] In one form, input device 4220 may be constructed and arranged to allow a human to select a value and / or menu option.
[0113] 5.4.2.3 Central Controller In one form of the present technology, the central controller 4230 is one or more processors suitable for controlling the RPT device 4000.
[0114] Suitable processors may include x86 INTEL processors, processors based on the ARM® Cortex®-M processor from ARM Holdings (e.g., the S®32 series of microcontrollers from ST Micro Electronics). In certain alternative forms of the present technology, 32-bit RISC CPUs (e.g., the STR9 series microcontrollers from ST Micro Electronics) or 16-bit RISC CPUs (e.g., processors from the MSP430 family of microcontrollers manufactured by Texas Instruments) may also be suitable.
[0115] In one form of the present technology, the central controller 4230 is a dedicated electronic circuit.
[0116] In one form, the central controller 4230 is an application specific integrated circuit. In another form, the central controller 4230 includes discrete electronic components.
[0117] The central controller 4230 may be configured to receive input signal(s) from one or more transducers 4270 and one or more input devices 4220.
[0118] The central controller 4230 may be configured to provide output signal(s) to one or more of the output device 4290, the therapy device controller 4240, the data communication interface 4280, and the humidifier controller 5250.
[0119] In some forms of the present technology, the central controller 4230 is configured to implement one or more methods described herein (e.g., one or more algorithms 4300 expressed as a computer program stored in a non-transitory computer-readable recording medium (e.g., memory 4260)). In some forms of the present technology, the central controller 4230 may be integrated with the RPT device 4000. However, in some forms of the present technology, some methods may be performed by a remotely located device. For example, the remotely located device may determine ventilator control settings or detect respiratory-related events through analysis of recorded data (e.g., from any of the sensors described herein).
[0120] 5.4.2.4 Clock The RPT device 4000 may include a clock 4232 connected to the central controller 4230 .
[0121] 5.4.2.5 Therapy Device Controller In one form of the present technology, the therapy device controller 4240 is a therapy control module 4330 and forms part of the algorithm 4300 executed by the central controller 4230.
[0122] In one form of the present technology, the therapy device controller 4240 is a dedicated motor control integrated circuit. For example, in one form, the MC33035 brushless DC motor controller manufactured by ONSEMI is used.
[0123] 5.4.2.6 Protection circuit The one or more protection circuits 4250 according to the present technology may include electrical protection circuits, temperature and / or pressure safety circuits.
[0124] 5.4.2.7 Memory In accordance with one form of the present technology, the RPT device 4000 includes memory 4260 (e.g., non-volatile memory). In some forms, the memory 4260 may include battery-powered static RAM. In some forms, the memory 4260 may include volatile RAM.
[0125] Memory 4260 may be located on PCBA 4202. Memory 4260 may take the form of EEPROM or NAND flash.
[0126] Additionally or alternatively, the RPT device 4000 includes removable memory 4260 (eg, a memory card made in accordance with the Secure Digital (SD) standard).
[0127] In one form of the present technology, memory 4260 functions as a non-transitory computer-readable storage medium on which are recorded computer program instructions representing one or more of the methods described herein (e.g., one or more algorithms 4300, including, for example, the methods described with respect to flow rate estimation, as described in more detail herein). Memory 4260 may also function as a volatile or non-volatile storage medium for data obtained, collected, utilized, or generated when one or more of the methods described herein are executed (as instructions by one or more processors).
[0128] 5.4.2.8 Data communication systems In one form of the present technology, a data communications interface 4280 is provided and connected to the central controller 4230. The data communications interface 4280 may be connectable to a remote external communications network 4282 or a local external communications network 4284, or both. The remote external communications network 4282 may be connectable to a remote external device 4286. The local external communications network 4284 may be connectable to a local external device 4288.
[0129] In one form, the data communication interface 4280 is part of the central controller 4230. In another form, the data communication interface 4280 is separate from the central controller 4230 and may include an integrated circuit or processor.
[0130] In one form, remote external communications network 4282 is the Internet. Data communications interface 4280 may use wired communications (e.g., via Ethernet or fiber optics) or may use wireless protocols (e.g., CDMA, GSM, LTE) to connect to the Internet.
[0131] In one form, the local external communications network 4284 uses one or more communications standards (eg, Bluetooth or Consumer Infrared Protocol).
[0132] In one form, the remote external device 4286 is one or more computers (e.g., a cluster of networked computers). In one form, the remote external device 4286 may be a virtual computer rather than a physical computer. In either case, such a remote external device 4286 may be accessible by an appropriately authorized person (e.g., a clinician).
[0133] The local external device 4288 may be a personal computer, a cell phone, a tablet or a remote control.
[0134] 5.4.2.9 Optional displays and output devices, including alarms Output devices 4290 according to the present technology may take the form of one or more of visual, audio and tactile units. The visual display may be a liquid crystal display (LCD) or a light emitting diode (LED) display.
[0135] 5.4.2.9.1 Display Driver The display driver 4292 receives as input characters, symbols or images to be displayed on the display 4294 and converts them into commands that cause the display 4294 to display those characters, symbols or images.
[0136] 5.4.2.9.2 Display Display 4294 is configured to visually display characters, symbols, or images in response to commands received from display driver 4292. For example, display 4294 may be an eight-segment display, in which case display driver 4292 converts each character or symbol (e.g., the digit "0") into eight logic signals indicating which of the eight segments should be activated to display the particular character or symbol.
[0137] 5.4.3 RPT Device Algorithm 5.4.3.1 Pre-processing module A pre-processing module 4310 in accordance with one form of the present technology receives as input a signal from a transducer 4270 (e.g., a flow sensor 4274 or a pressure sensor 4272) and performs one or more process steps to calculate one or more output values that are used as inputs to another module (e.g., a therapy engine module 4320).
[0138] In one form of the present technology, the output values include interface or mask pressure Pm, respiratory flow Qr, and leak flow Ql.
[0139] In various forms of the present technology, the pre-processing module 4310 includes one or more of the following algorithms: pressure compensation 4312, ventilation flow estimation 4314, leak flow estimation 4316, flow signal estimation 4317, and respiratory flow estimation 4318.
[0140] 5.4.3.1.1 Pressure compensation In one form of the present technology, a pressure compensation algorithm 4312 receives as an input a signal indicative of the pressure in the pneumatic path proximal to the outlet of the pneumatic block. The pressure compensation algorithm 4312 estimates the pressure drop through the pneumatic circuit 4170 and provides as an output the estimated pressure Pm in the patient interface 3000.
[0141] 5.4.3.1.2 Estimation of ventilation flow rate In one form of the present technology, an airflow estimation algorithm 4314 receives as input an estimated pressure Pm in the patient interface 3000 and estimates the airflow Qv of air out of the vent 3400 in the patient interface 3000.
[0142] 5.4.3.1.3 Estimation of leakage flow rate In one form of the present technology, a leak flow estimation algorithm 4316 receives as input the total flow Qt and the ventilation flow Qv and provides as output an estimate of the leak flow Ql, hi one form, the leak flow estimation algorithm 4316 estimates the leak flow Ql by calculating the average difference between the total flow Qt and the ventilation flow Qv over a period long enough to include several respiratory cycles (e.g., about 10 seconds).
[0143] In one form, the leak flow estimation algorithm 4316 provides a leak flow Ql as an output and receives as inputs the total flow Qt, ventilation flow Qv, and estimated pressure Pm in the patient interface 3000 by calculating the leak conductance and determining the leak flow Ql as a function of the leak conductance and the pressure Pm. The leak conductance is calculated as the low-pass filtered quotient of the non-ventilated flow equal to the difference between the total flow Qt and the ventilation flow Qv and the low-pass filtered square root of the pressure Pm, with the low-pass filter time constant having a value sufficient to include several respiratory cycles (e.g., about 10 seconds). The leak flow Ql may be estimated as a function of the product of the leak conductance and the pressure Pm.
[0144] 5.4.3.1.4 Respiratory flow estimation In one form of the present technology, the respiratory flow estimation algorithm 4318 receives as inputs the total flow Qt, the ventilation flow Qv and the leak flow Ql, and estimates the respiratory flow Qr of air to the patient by subtracting the ventilation flow Qv and the estimated leak flow Ql from the total flow Qt.
[0145] 5.4.3.1.5 Flow signal estimation In one form of the present technology, the flow signal may be estimated by a flow signal estimation algorithm 4317 (e.g., to generate estimates of the total flow Qt, ventilator flow Qv, and leak flow Ql), and further provide an estimate of the patient's respiratory flow Qr of air (by subtracting the ventilator flow Qv and the estimated leak flow Ql from the estimated total flow Qt). Such a flow signal estimation process is described in more detail herein. Such a flow signal estimate may be used in place of the flow signal from the flow sensor (e.g., if a fault in the operation of the flow sensor is detected). Similarly, such a flow signal estimate may be used to detect a fault in the operation of the flow sensor or otherwise to assess the accuracy of the flow sensor, as described in more detail herein.
[0146] 5.4.3.2 Treatment Engine Module In one form of the present technology, the therapy engine module 4320 receives as input one or more of the pressure Pm in the patient interface 3000 and the air respiratory flow Qr to the patient (e.g., derived from a flow estimation signal) and provides one or more therapy parameters as output.
[0147] In one form of the present technology, the treatment parameter is a treatment pressure, Pt.
[0148] In various embodiments, the therapy engine module 4320 includes one or more of the following algorithms: phase determination 4321, waveform determination 4322, ventilation determination 4323, inspiratory flow limitation detection 4324, apnea detection 4325, inspiratory M-shape detection 4326, airway patency determination 4327, typical recent ventilation determination 4328, and therapy parameter determination 4329.
[0149] 5.4.3.2.1 Phase Determination In one form of the present technology, a phase determination algorithm 4321 receives as an input a signal indicative of respiratory flow Qr and provides as an output Φ the phase of the patient's 1000 current respiratory cycle.
[0150] In some forms, the phase output Φ, known as discrete phase determination, is a discrete variable. One implementation of discrete phase determination results in a binary phase output Φ with a value of either inspiration or expiration. This value is represented, for example, as values of 0 and 0.5 revolutions when the onset of spontaneous inspiration and expiration, respectively, is detected. The RPT device 4000 that "triggers" and "cycles" effectively performs discrete phase determination because the trigger point and cycle instant are the instants at which the phase changes from expiration to inspiration and inspiration to expiration, respectively. In one implementation of binary phase determination, the phase output Φ is determined to have a discrete value of 0 (indicating inspiration) when respiratory flow Qr exceeds a "trigger threshold" (thereby triggering the RPT device 4000 to deliver a "spontaneous breath") and a discrete value of 0.5 revolutions (indicating expiration) when respiratory flow Qr falls below a "cycle threshold" (thereby "spontaneously cycling" the RPT device 4000). In some such implementations, the trigger and cycling thresholds may vary over time during breathing according to respective trigger and cycling threshold functions, such as those described in Patent Cooperation Treaty Patent Application No. PCT / AU2005 / 000895 (published as WO2006 / 000017 to ResMed Limited), which is incorporated herein by reference in its entirety.
[0151] In some such implementations, cycling may be avoided within a "non-responsive period" (denoted as "Timin") after the final trigger instant, and an absence of spontaneous cycling must occur within an interval (denoted as "Timax") after the final trigger instant. The values of Timin and Timax are settings of the RPT device 4000 and may be hard-coded during configuration of the RPT device 4000 or set by manual entry via the input device 4220, for example.
[0152] In other forms, known as continuous phase determination, the phase output Φ is a continuous variable, varying, for example, between 0 and 1 revolution or 0 and 2π radians. An RPT device 4000 with continuous phase determination may trigger and cycle when the continuous phase reaches 0 and 0.5 revolutions, respectively. In one implementation of continuous phase determination, the inspiration time Ti and expiration time Te are first estimated from the respiratory flow Qr. The phase Φ is then determined as half the fraction of inspiration time Ti that has elapsed since the previous trigger instant or 0.5 revolutions plus the fraction of expiration time Te that has elapsed since the previous cycle instant (whichever is more recent).
[0153] In some implementations suitable for ventilation therapy (described below), the phase determination algorithm 4321 is configured to be triggered even when respiratory flow Qr is insignificant, for example, during apnea. As a result, the RPT device 4000 delivers a "backup breath" in the absence of spontaneous respiratory effort from the patient 1000. In this configuration, known as spontaneous / timed (ST) mode, the phase determination algorithm 4321 may utilize a "backup rate" Rb. The backup rate Rb is a setting of the RPT device 4000 and may be hard-coded during configuration of the RPT device 4000 or set manually via the input device 4220, for example.
[0154] The phase determination algorithm 4321 (discrete or continuous) may implement ST mode using a backup rate Rb in a manner known as timed backup. Timed backup may be implemented as follows: The phase determination algorithm 4321 attempts to detect the onset of inspiration due to spontaneous breathing efforts, for example, by comparing the respiratory flow Qr to a trigger threshold, as described above. If the onset of spontaneous breathing is not detected within a fixed interval after the final trigger instant whose duration is equal to or inversely equal to the reciprocal of the backup rate Rb (an interval called the backup timing threshold, Tbackup), the phase determination algorithm 4321 sets the phase output Φ to a zero value, thereby triggering the RPT device 4000 to deliver a backup breath. The phase determination algorithm 4321 then attempts to detect the onset of spontaneous exhalation, for example, by comparing the respiratory flow Qr to a cycle threshold, as described above. The cycle threshold for backup breaths may be different from that for spontaneous breaths. As with spontaneous breathing, spontaneous cycling during backup breaths may be avoided within a "no-response period" of duration Timin after the final trigger instant.
[0155] Similar to spontaneous breathing, if during backup breathing the onset of spontaneous exhalation is not detected within Timax seconds after the final trigger instant, the phase determination algorithm 4321 sets the phase output Φ to a value of 0.5, thereby cycling the RPT device 4000. The phase determination algorithm 4321 then attempts to detect the onset of spontaneous inspiration by comparing respiratory flow Qr to the trigger threshold as described above.
[0156] 5.4.3.2.2 Waveform determination In one form of the present technology, the waveform determination algorithm 4322 provides a nearly constant therapy pressure throughout the patient's respiratory cycle.
[0157] In another form of the present technology, the waveform determination algorithm 4322 controls the pressure generator 4140 to provide a therapy pressure Pt that varies throughout the phases of the patient's respiratory cycle according to a waveform template.
[0158] In one form of the present technology, the waveform determination algorithm 4322 provides a waveform template Π(Φ) having values in the range [0,1] for the domain of the phase values Φ provided by the phase determination algorithm 4321 to be used by the waveform determination algorithm 4322.
[0159] In one form, suitable for discrete or continuously-valued phases, the waveform template Π(Φ) is a square wave template having a value of 1 for phase values up to 0.5 revolutions and a value of 0 for phase values above 0.5 revolutions. In one form, suitable for continuously-valued phases, the waveform template Π(Φ) includes two smoothly curved sections (i.e., a smoothly curved (e.g., raised cosine) rise from 0 to 1 for phase values up to 0.5 revolutions, and a smoothly curved (e.g., exponential) fall from 1 to 0 for phase values above 0.5 revolutions).
[0160] In some forms of the present technology, the waveform determination algorithm 4322 selects a waveform template Π(Φ) from a library of waveform templates depending on the settings of the RPT device 4000. Each waveform template Π(Φ) in the library may be provided as a lookup table value Π for a phase value Φ. In other forms, the waveform determination algorithm 4322 calculates the waveform template Π(Φ) "on the fly" using a predetermined functional form, perhaps parameterized by one or more parameters (e.g., rise time and fall time). The parameters of the functional form may be predetermined or may depend on the current state of the patient 1000.
[0161] In some forms of the present technology suitable for the discrete binary phase of inspiration (Φ=0 revolutions) or expiration (Φ=0.5 revolutions), the waveform determination algorithm 4322 calculates the waveform template Π "on the fly" as a function of the discrete phase Φ and time t measured from the most recent trigger instant. In one such form, the waveform determination algorithm 4322 calculates the waveform template Π(Φ,t) in two parts (inspiration and expiration) as follows:
number
[0162] Here, Π i (t) and Π e (t) is the inspiratory and expiratory parts of the waveform template Π(Φ,t).
[0163] In one such embodiment, the inspiratory portion Π of the waveform template i (t) is a smooth rise from 0 to 1 in two successive sections. A linear increase through two-thirds of the first half of a parameter known as the "time scale" · Parabolic rise to 1 for the second half of the time scale.
[0164] Such an intake area Π i The "rise time" of (t) is Π i (t) can be defined as the time required for the temperature to rise to a value of 0.875.
[0165] The expiratory portion of the waveform template, Πe(t), is a smooth descent from 1 to 0 of two consecutive parabolic sections, with the inflection point occurring between 25% and 50% of the time scale. e The "fall time" of (t) is Π e (t) can be defined as the time required for the temperature to fall to a value of 0.125.
[0166] 5.4.3.2.3 Ventilation determination In one form of the present technology, the ventilation determination algorithm 4323 receives as input the respiratory flow Qr (which may be derived from the estimated flow signal, as described above) and determines a Vent measurement that is indicative of the current patient ventilation.
[0167] In some implementations, the ventilation decision algorithm 4323 calculates Vent as the "instantaneous ventilation," Vint, which is half the absolute value of the respiratory flow signal Qr.
[0168] In some implementations, the ventilation determination algorithm 4323 calculates Vent as a "very fast ventilation," VveryFast, by filtering the instantaneous ventilation, Vint, with a low pass filter (e.g., a fourth order Bessel low pass filter) with a corner frequency of approximately 0.10 Hz, which corresponds to a time constant of approximately 10 seconds.
[0169] In some implementations, the ventilation determination algorithm 4323 calculates Vent as a "very fast ventilation," VveryFast, by filtering the instantaneous ventilation, Vint, with a low pass filter (e.g., a fourth order Bessel low pass filter) with a corner frequency of approximately 0.05 Hz, which corresponds to a time constant of approximately 20 seconds.
[0170] In some implementations of the present technology, the ventilation determination algorithm 4323 determines Vent as a measure of alveolar ventilation. Alveolar ventilation is a measure of the actual amount of air that actually reaches the gas exchange surfaces of the respiratory system at a given time. Because a patient's respiratory system contains significant "anatomical dead space" (i.e., a volume where gas exchange does not occur), alveolar ventilation is less than the "gross" ventilation produced by the above calculation operating directly on respiratory flow Qr and is a more accurate measure of the patient's respiratory capacity.
[0171] In such an implementation, the ventilation decision algorithm 4323 may determine that the instantaneous alveolar ventilation is zero or half the absolute value of the respiratory flow Qr. The conditions for zero instantaneous alveolar ventilation are as follows: When respiratory flow changes from non-negative to negative, or When respiratory flow changes from negative to non-negative, and After a change in sign of respiratory flow for a period of time where the absolute value of the integer of respiratory flow Qr is below the patient's anatomical dead space volume.
[0172] The patient's anatomical dead space volume may be a setting of the RPT device 4000, for example, hard-coded when configuring the RPT device 4000 or set by manual input through the input device 4220.
[0173] In some such implementations, the ventilation decision algorithm 4323 may calculate Vent as "ultra-rapid alveolar ventilation" or "rapid alveolar ventilation" or both by low-pass filtering the instantaneous alveolar ventilation using each of the low-pass filters described above.
[0174] In the following description, the word "alveolar" will be omitted but is assumed to be present during some execution of the therapy engine module 4320. That is, when reference is made to "ventilation" and "tidal volume" in the following description, the reference can apply to alveolar ventilation and alveolar tidal volume as well as "gross" ventilation and tidal volume.
[0175] 5.4.3.2.4 Inspiratory flow limitation determination In one form of the present technology, the therapy engine module 4320 executes one or more algorithms that determine the extent of flow limitation (also referred to as partial upper airway obstruction of the inspiratory portion of the respiratory flow waveform (referred to herein for short as the "inspiration waveform"). In one form, the flow limitation determination algorithm 4324 receives as input the respiratory flow signal Qr (which may be derived from the estimated flow signal, as described above) and provides as output a measure of the extent to which each inspiratory waveform exhibits flow limitation.
[0176] A normal inspiratory waveform is rounded so that its shape resembles a sine wave (see Figure 6A). With sufficient upper airway muscle tone (or EPAP), the airway essentially functions as a rigid tube, within which flow increases in response to increased respiratory effort (or external ventilatory support). In some situations (e.g., sleep, sedation), the upper airway may be able to buckle in response to low ambient pressure within it, for example, from respiratory effort or even from added ventilation. This can lead to total obstruction (apnea) or a phenomenon known as "flow limitation." The term "flow limitation" includes behavior in which the airway simply narrows with increased respiratory effort, resulting in inspiratory flow being limited at a constant value independent of effort ("Starling register behavior"). Therefore, the inspiratory flow curve has a flat shape (see Figure 6B).
[0177] In reality, upper airway behavior is more complex, and a variety of flow shapes exist that indicate the presence of upper airway-related inspiratory flow limitation and even more widespread external ventilatory support (see Figures 6C-6F). As such, flow limitation determination algorithm 4324 may respond to one or more of the following types of inspiratory flow limitation: "classical flat" (see Figure 6B), "chair" (see Figure 6C), and "inverted chair" (see Figure 6D). ("M-shape" (see Figures 6E and 6F) is handled separately using M-detection algorithm 4326.)
[0178] 5.4.3.2.5 M-shape detection In one form of the present technology, the therapy engine 4320 module executes one or more algorithms to detect an "M-shape" in the inspiratory waveform. In one form, the M-shape detection algorithm 4326 receives as input the respiratory flow signal Qr and provides as output a measurement representative of the extent to which each inspiratory waveform exhibits an M-shape.
[0179] An M-shaped inspiratory waveform of tidal volume or other respiratory direction ventilation not significantly above typical recent values indicates flow limitation. Such inspiratory waveforms have relatively rapid rises and falls and dips or "notches" at the flow and center, the dips being due to flow limitation (see Figures 6E and 6F). As tidal volume or respiratory direction ventilation increases, such waveforms generally become behavioral (i.e., sleep microarousals or exhalations) and do not indicate flow limitation.
[0180] To detect M-shaped waveforms, the M-detection algorithm 4326 determines the similarity of the inspiration waveform to waveforms that are broadly M-shaped.
[0181] 5.4.3.2.6 Apnea detection In one form of the present technology, the therapy engine module 4320 executes an apnea detection algorithm 4325 to detect apnea.
[0182] In one form, the apnea detection algorithm 4325 receives as input the respiratory flow signal Qr and provides as output a series of events representing the beginning and end of detected apneas.
[0183] 5.4.3.2.7 Typical Recent Ventilation Decisions In one form of the present technology, the central controller 4230 takes as input the current ventilation Vent measurement and executes one or more typical recent ventilation determination algorithms 4328 to determine a value Vtyp representing the typical recent ventilation of the patient 1000.
[0184] Typical recent ventilation Vtyp is a value around which measurements of current ventilation Vent over multiple time instants over some predetermined time scale tend to be clustered (i.e., a measure of the central tendency of measurements of current ventilation in recent history). In one implementation of the typical recent ventilation determination algorithm 4328, the recent history is on the order of minutes, but in any case must be longer than the time scale of the Cheyne-Stokes ramp-up and ramp-down cycles. The typical recent ventilation determination algorithm 4328 may determine typical recent ventilation Vtyp from measurements of current ventilation Vent using any of a variety of well-known measures of central tendency. One such measure is the output of a low-pass filter on measurements of current ventilation Vent, with a time constant equal to 100 seconds.
[0185] 5.4.3.2.8 Airway patency determination In one form of the present technology, the central controller 4230 executes an airway patency determination algorithm 4327 to determine airway patency. In some implementations, the airway patency determination algorithm 4327 returns either "closed" or "open" or an equivalent Boolean value (e.g., "true" indicating closed and "false" indicating open).
[0186] 5.4.3.2.9 Determination of Treatment Parameters In some forms of the present technology, the central controller 4230 executes one or more treatment parameter determination algorithms 4329 for determining one or more treatment parameters using values returned from one or more of the other algorithms in the treatment engine module 4320.
[0187] In one form of the present technology, the treatment parameter is the instantaneous treatment pressure Pt. In one implementation of this form, the treatment parameter determination algorithm 4329 determines the treatment pressure Pt as follows:
number
[0188] By determining the therapy pressure Pt using equation (1) with a positive amplitude A and applying it as a setpoint in the controller 4230 of the RPT device 4000, the therapy parameter determination algorithm 4329 oscillates the therapy pressure Pt in synchronization with the spontaneous breathing efforts of the patient 1000. That is, based on the exemplary waveform template Π(Φ) described above, the therapy parameter determination algorithm 4329 increases the therapy pressure Pt at the beginning or during inspiration and decreases the therapy pressure Pt at the beginning or during expiration. The (non-negative) pressure support A is the amplitude of the oscillation.
[0189] If the waveform determination algorithm 4322 provides the waveform template Π(Φ) as a lookup table, the treatment parameter determination algorithm 4329 applies equation (1) by locating the closest lookup table entry to the current value Φ of the phase returned from the phase determination algorithm 4321 or by interpolating between two entries that span the current value Φ of the phase.
[0190] The values of pressure support A and base pressure P0 may be determined by the therapy parameter determination algorithm 4329 depending on the respiratory pressure therapy mode selected.
[0191] 5.4.3.3 Treatment Control Module The therapy control module 4330 according to one aspect of the present technology receives as input therapy parameters from the therapy parameter determination algorithm 4329 of the therapy engine module 4320 and controls the pressure generator 4140 to deliver airflow from the pressure generator 4140 in accordance with these therapy parameters.
[0192] In one form of the present technology, the therapy parameter is a therapy pressure Pt, and the therapy control module 4330 determines whether the mask pressure Pm at the patient interface 3000 is equal to the therapy pressure Pt or the interface flow F at the patient interface t is the therapeutic flow rate TF t The pressure generator is controlled to deliver an air flow from the pressure generator 4140 equal to
[0193] 5.4.3.4 Fault Condition Detection In one form of the present technology, the central controller 4230 executes one or more methods for detecting a fault condition. The fault condition detected by the one or more methods may include at least one of the following: Power outage (no power or power shortage) Converter failure detection Unable to detect the presence of a component Operating parameters are outside the recommended range (e.g., pressure, flow, temperature, PaO2) · Failure of a test alarm to produce a detectable warning signal. · Significant inequality between the flow signal from the flow sensor and the flow estimation signal from the process of flow signal estimation 4137
[0194] When a fault condition is detected, the corresponding algorithm signal signals the presence of the fault by one or more of the following: Initiation of audible, visual, and dynamic (e.g., vibration) warnings Sending messages to external devices Incident logging · Changing control parameters as described in more detail herein
[0195] 5.5 Humidifier In one form of the present technology, a humidifier 5000 is provided (for example as shown in FIG. 5A) for changing the absolute humidity of air or gas to be delivered to a patient relative to ambient air. Typically, the humidifier 5000 is used to increase the absolute humidity (relative to ambient air) and increase the temperature of the air stream before delivery to the patient's airways.
[0196] The humidifier 5000 may include a humidifier reservoir 5110, a humidifier inlet 5002 for receiving an airflow, and a humidifier outlet 5004 for delivering a humidified airflow. In some forms, such as shown in Figures 5A and 5B, the inlet and outlet of the humidifier reservoir 5110 may be the humidifier inlet 5002 and the humidifier outlet 5004, respectively. The humidifier 5000 may further include a humidifier base 5006. The humidifier base 5006 may be adapted to receive the humidifier reservoir 5110 and may include a heating element 5240.
[0197] 5.6 Respiratory Pressure Therapy Mode Depending on the values of the parameters A and P0 in the treatment pressure equation (1) used by the treatment parameter determination algorithm 4329 in one form of the present technology, various respiratory pressure treatment modes can be performed by the RPT device 4000.
[0198] 5.6.1 CPAP treatment In some implementations, the pressure support A is equally zero, so that the therapy pressure Pt is equally equal to the base pressure P0 throughout the respiratory cycle. Such implementations are primarily grouped under the heading of CPAP therapy. In such implementations, the therapy engine module 4320 is not required to determine the phase Φ or waveform template Π(Φ).
[0199] 5.6.2 Ventilation therapy In other embodiments, the value of pressure support A in equation (1) can be positive. Such embodiments are known as constant pressure support ventilation therapy. In some forms of ventilation therapy known as constant pressure support ventilation therapy, pressure support A is fixed at a predetermined value (e.g., 10 cmH2O). The predetermined value of pressure support A is a setting of the RPT device 4000 and can be, for example, hard-coded during configuration of the RPT device 4000 or set by manual entry via the input device 4220. In some versions, the pressure can be bi-level, for example, a higher pressure delivered when the patient inhales and a lower pressure delivered when the patient exhales.
[0200] The value of pressure support A may be limited to a range defined as [Amin, Amax]. The pressure support limits Amin and Amax are settings of the RPT device 4000, and are set, for example, hard-coded during configuration of the RPT device 4000 or by manual entry through the input device 4220. A minimum pressure support Amin of 3 cmH2O is on the order of 50% of the pressure support required to provide all of the respiratory effort of a typical patient in steady state. A maximum pressure support Amax of 12 cmH2O is nearly twice the pressure support required to provide all of the respiratory effort of a typical patient, and is therefore sufficient to assist the patient's breathing when the patient ceases any effort, but below a value that becomes uncomfortable or dangerous.
[0201] 5.7 Flow Therapy Mode In some versions, the RPT may be configured with a flow control loop, for example, using an estimated flow signal to provide respiratory therapy using an interface to an "open" (non-sealing) patient airway. The respiratory therapy may supplement the patient's spontaneous breathing with a controlled flow of conditioned or enriched gas. In one example, high flow therapy (HFT) is controlled through an unsealed or open patient interface with a "therapeutic flow" that remains approximately constant throughout the respiratory cycle. The therapeutic flow is nominally set to exceed the patient's peak inspiratory flow. As an alternative to a constant flow rate, the therapeutic flow may follow a varying profile over the respiratory cycle.
[0202] 5.8 Flow Signal Estimation As noted above, a controller or processor (e.g., one or more of the RPTs) may perform flow signal estimation (e.g., without utilizing a signal from a flow sensor) by executing the process of flow signal estimation 4317 of FIG. 4D . One such exemplary flow estimation process is shown in estimation process 7002 of FIG. 7 . As shown, the process may employ a flow estimation unit 7004 (e.g., of a central controller or processor using control logic or processor control instructions as described above) to perform function(s), including a flow estimation function, that derives a flow estimation signal 7008 from a set of input signals 7010, which may include measurements from a set of sensors. In this example, the flow estimation unit 7004 may receive signals (e.g., by accessing data values directly from memory and / or sensors) and generate the flow estimation signal 7008. As shown, the input signals may include a pressure 7012 (e.g., from a pressure sensor 4272 in the air pressure path of the RPT) to be associated with the operation of a blower. The input signals may include motor speed 7014 (e.g., from speed sensor 4276), which may be associated with the RPT's blower motor. The input signals may include ambient pressure 7016 (e.g., from ambient pressure sensor 4277, which may be configured to measure ambient pressure). The input signals may include gas temperature 7018 (e.g., from gas temperature sensor 4275), which may be associated with gas within the RPT's pneumatic path. These input signals may include ambient relative humidity 7020 (e.g., from ambient relative humidity sensor 4279), which may be associated with gas outside (e.g., ambient) the RPT's pneumatic path. In some versions, the input signals may also optionally include signal(s) from an oxygen sensor (e.g., oxygen concentration 7021) or signal(s) from motor parameter sensor(s) (e.g., motor parameter 7023), or both. These input signals may be received from the sensors in real time or near real time for simultaneous generation of flow estimation signals repetitively over time. Furthermore, in some versions, such an estimated signal process may use one or more of all such signals from values stored in memory.
[0203] In some examples, the flow estimation unit 7004 may perform one or more of the processes shown in the flowcharts of FIGS. 8A and 8B. Additionally, the flow estimation unit 7004 may operate in conjunction with the treatment engine and fault condition detection 4340 process to perform the method shown in FIG. 8C. For example, as shown in FIG. 8A, in step or process 8002, the flow estimation unit 7004 may receive input signals (e.g., a measured ambient pressure signal and a measured motor speed signal), e.g., using one or more sensors and optionally other input signals as described above. In step or process 8004, the flow estimation unit 7004 may calculate an entrained air density function. In step or process 8006, the flow estimation unit 7004 may generate a flow estimation signal 7008 using a flow estimation function using, e.g., the gas pressure, motor speed, and entrained air density function. Optionally, for example in connection with the therapy engine process, fault condition detection engine, and flow estimation unit, the central controller may generate output indicators based on evaluation of the generated flow estimation signal and / or estimated signal in process or step 8008. In some versions, the flow estimation may involve evaluation of other motor parameters (e.g., motor speed, motor position, etc.) to generate an estimated flow signal (e.g., as described in U.S. Patent No. 6,237,593 to Brydon (ResMed Limited)). electric Such an estimated flow signal may be used, for example, when the flow rate in the system is negative (e.g., moving in one direction from the patient interface (e.g., away from the patient) towards the flow generator blower).
[0204] In some versions, the oxygen concentration (e.g., using a signal from an oxygen sensor) may be evaluated in determining the estimated flow rate, e.g., to take into account the concentration of the breathable gas being sensed. For example, if the gas composition of the breathable gas of the system is different or significantly different from ambient air, the gas may be other than that described (e.g., the gas is different from the ambient air used in the model for deriving the entrained air density function), and the function(s) for generating the estimated flow signal may be modified to account for this difference or use an aborted existing function. In some examples, multiple entrained air density functions, such as those described by the empirical models herein, may be derived at design time, with different concentrations of gas used, respectively. Thus, in some versions, the signal from the oxygen sensor may function to select an appropriate entrained air density function from multiple functions (depending on the gas concentration measured by the oxygen sensor at runtime), such that the selected function(s) are empirically pre-derived (e.g., by a fan curve) using similar or equivalent gas concentrations.
[0205] Thus, in some versions, for example, if the flow rate in the system is positive (e.g., moving in one direction from the flow generator blower to the patient interface (e.g., to the patient and the vent of the patient interface)), the performance of the flow estimation function may be calculated according to the following equation or function, which is a function of pressure, velocity, and air density:
number
[0206] where: Flow_est is the generated flow estimation signal, A, B and C are each a frequency-related function, e.g., a set of functions of at least the rotational frequency (e.g., the measured motor speed), Pressure_meas is a measurement of the pressure generated by the blower (eg, taken by pressure sensor 4272 in the air pressure path of the RPT).
[0207] In one such example, a set of rotational frequency functions may be implemented as follows:
[0208]
number
[0209]
number
[0210]
number
[0211] where:
[0212] r1, r2, r3, r4, r5, r6 and r7 are constants,
[0213] RPM is the measured motor speed (e.g., revolutions per minute),
[0214]
number
number
[0215] In an exemplary implementation, the constants (A, B, C) of the rotational frequency-related function may be empirically determined by the fan curve(s) at different altitudes and correlated with the operation of the RPT's blower (e.g., using at least part of pressure, flow, and RPM measurements (e.g., using a second-order polynomial) and polynomial modeling). For example, these values may be empirically discovered using, for example, a barometric chamber, comparing fan curves (e.g., at 5000, 10000, 15000, and 20000 RPM) at sea level, 2000 m altitude, and 3000 m altitude. In one such example, such constants may have values of 0.00000001, 0.00086500, 0.00000000005, 0.0000005119, 0.0130975, 0.000000038, 0.000070756, and 0.281905000, respectively. However, it will be understood that such constant values may be different depending on the type and configuration of the RPT device's blower. Furthermore, the values of these constants may be approximated or otherwise rounded to an appropriate number of digits as desired in any particular implementation, for example.
[0216] As noted above, the flow estimation unit 7004 described above uses an entrained air density function that may relate reference air density values and locally determined air density values. Such a function may use measurement signals (e.g., data from a memory indicative of such signals) from a set of sensors (e.g., gas temperature sensor 4275, ambient pressure sensor 4277, and relative humidity sensor).
[0217] An exemplary process for performing such a function of process or step 8004 of FIG. 8A is shown in FIG. 8B. In process or step 8022, the central controller or processor may receive signals indicating gas temperature, atmospheric pressure, and relative humidity. In process or step 8024, the central controller or processor may calculate a saturated vapor pressure function (Psv) in relation to temperature, where the measured temperature may be used. In process or step 8026, the central controller or processor may calculate a vapor pressure function (Pv) in relation to, for example, temperature and relative humidity, where the measured relative humidity may be used. In such a function, the saturated vapor pressure function (Psv) may be used, so that the vapor pressure function (Pv) is also a function of temperature. In process or step 8026, the central controller or processor may calculate an air density value based on the vapor pressure function (Pv), the saturated vapor pressure function (Psv), and the atmospheric pressure signal.
[0218] For example, in some versions, the saturated vapor pressure function (Psv) may be implemented as follows:
number
[0219] where:
[0220] Psv is the saturated vapor pressure value generated by the saturated vapor pressure function,
[0221] e is Euler's number or other value that approximates such a number to the desired number of digits,
[0222] Temp local_DegC is the measured temperature (e.g., in degrees Celsius or other suitable thermometric system).
[0223] K1, K2, and K3 are constants that may be empirically determined, but in some versions are, for example, 6.1078, 17.2693882, and 237.4, respectively. These values may, for example, be approximated or otherwise rounded to an appropriate number of digits as desired in any suitable implementation.
[0224] In some versions, the vapor pressure function (Pv) can be implemented as follows:
number
[0225] where:
[0226] Pv is the value of the vapor pressure generated by the vapor pressure function,
[0227]
number
[0228] Psv is the saturated vapor pressure value generated by the saturated vapor pressure function.
[0229] In calculating the local air density value in some versions, the entrained air density function is a function of ambient pressure, gas temperature and relative humidity and can be implemented as follows:
number
[0230] where:
[0231]
number
[0232] P0 is 1013.0 hectopascals,
[0233] T0 is 15.0 degrees Celsius or 288.15 degrees Kelvin,
[0234]
number
number
[0235] P atm_local is a measurement of the ambient pressure, for example from the signal generated by the ambient pressure sensor 4277,
[0236] Z1 is a constant that can be empirically determined and in some versions can be, for example, 0.3783 or other approximation thereof (e.g., rounded to a desired number of digits as desired in any particular implementation).
[0237] Temp local_DegK is the measured temperature (e.g., in degrees Kelvin or other suitable thermometric system),
[0238] Pv is the vapor pressure value generated by the vapor pressure function.
[0239] Such generated flow estimation signals may be executed by a controller (e.g., a central controller) or processor (e.g., of an RPT device) to perform a variety of operations, such as for device diagnostics (e.g., fault detection). Further, estimate signals may be generated for control or respiratory condition detection instead of or in addition to evaluating flow signals generated by a flow sensor. Examples of such automated operations may be considered in connection with step or process 8008 described above in connection with FIG. 8A and illustrated in more detail in the example of FIG. 8C.
[0240] For example, in step or process 8030, the controller or processor may optionally receive a measured flow signal from the flow sensor 4274. In step or process 8031, the controller or processor may receive a flow estimate signal 7008 from the flow estimation process 7002. In step or process 8032, the controller or processor may evaluate the flow estimate signal 7008. For example, in some versions, such evaluation may use any of the methods described herein or known in connection with analyzing a flow signal from a flow sensor and in place of using a flow estimate signal. For example, the estimate signal may be evaluated to determine the start of patient inspiration (e.g., for triggering IPAP, the start of patient exhalation for an EPAP cycle, or determining a phase variable as described herein). In some versions, the flow estimate signal may be evaluated in connection with the measured flow signal. For example, the flow estimate signal may be used as a diagnostic check on the measured flow signal. For example, the controller or processor may compare these two signals and generate an indicator (e.g., an error, fault, or no fault indicator) based on the comparison. In one such version, if the difference or differences from different times along the signal are significant (e.g., relative to one or more thresholds), the controller or processor may generate a fault signal. If the difference is no fault, confirmation that there is no fault in the flow sensor may be obtained, and an appropriate signal may be generated to enable operation relying on the flow sensor as an input signal to, for example, any of the methods or processes described above.
[0241] Optionally, the output from process 8034 (e.g., an error or fault signal) may be applied to control the respiratory apparatus (e.g., the RPT device in step or process 8036), for example, to modify operation, stop operation, or trigger an error warning or alarm (e.g., an audible, visual, or communication message). In some such examples, such output may be reported on a diagnostic display, for example, to indicate an error in a flow sensor failure or to indicate the relationship between an estimated signal and a measured signal. Comparative display examples may be considered in conjunction with the graphs of FIGS. 9 and 10. As a further example, upon indication of a flow sensor failure, the RPT's operating mode may be changed to reduce reliance on the flow signal. In some such control versions, an RPT in such an activated flow estimation operating mode may process a flow estimate signal (rather than a measured flow signal). In some such versions, the controller may determine ventilation control parameters (e.g., measurements of patient ventilation (e.g., tidal volume, minute ventilation)) for achieving control of the ventilation target for pressure support adjustment. As a further example, respiratory rate and respiratory flow may be determined from the estimated signal. Furthermore, pressure and / or flow control parameters (e.g., for the pressure or flow control loop of the RPT's controller) may be altered based on the flow estimation signal. In some such versions, a detected difference between the estimated signal and the measured flow signal may be applied as an error signal for calibration of the flow sensor. For example, such difference or error may be applied to adjust the measurement value from the flow sensor, whereby the calibrated, adjusted, or measured flow signal may be used in any of the control processes of the RPT's controller, as described throughout this specification. Such a calibration process may be performed by the device periodically during a therapy session or during an initialization process when the RPT is activated prior to a session of use.
[0242] Other actions may also be performed by the controller processor using the flow estimate signal. It will be appreciated that the flow sensor signal may be used as an input in place of the flow sensor signal and all other metrics or characteristics in other cases. For example, a conductance-based open circuit alarm may be implemented using such a flow estimate signal (rather than using the flow sensor signal). Thus, the conductance that serves as the basis for detecting an open circuit condition may be calculated from the measured pressure signal and the estimated flow signal (e.g., a ratio of the values of such signals). Furthermore, in some versions, the flow estimate signal may be used in conjunction with a target flow rate (e.g., a therapy flow rate) in a flow control loop (e.g., in an RPT configured as a high-flow therapy device). As such, this may serve as a substitute for providing a flow sensor (i.e., the flow sensor may be omitted) or as a backup in the event of a failure in an provided flow sensor.
[0243] The accuracy of such a flow estimation signal from the above method can be considered in comparison with the measured flow signal in the graphs of Figures 9 and 10. In Figures 9A and 9B, fan curves plotting measured and estimated flow versus RPT blower speed are presented at different altitudes. Figure 9A shows data for a device operating at an altitude of 2000 meters. Figure 9B shows data for a device operating at an altitude of 3000 meters. As shown, the estimated flow curve closely approximates the measured flow curve (over the speed range of the RPT blower fan curve).
[0244] A similar evaluation using an RPT (with breather simulation) in use can be considered in connection with FIG. 10. In FIGS. 10A and 10B, the gas flow of the RPT device includes a breathing component (rather than a fan curve). These graphs plot measured and estimated flow versus changing RPT device blower speed during breathing-related activity at different altitudes. FIG. 10A shows data for a device operating at an altitude of 2000 meters. FIG. 10B shows data for a device operating at an altitude of 3000 meters. As shown, the estimated flow curve closely approximates the measured flow, even when the RPT device blower adjusts in response to the simulated user's breathing effort.
[0245] 5.9 Glossary For purposes of this disclosure, in certain aspects of the technology, one or more of the following definitions may apply. In other aspects of the technology, other definitions may apply.
[0246] 5.9.1 General Air: In certain forms of the present technology, air may refer to atmospheric air, while in other forms of the present technology, air may refer to a combination of other breathable gases (e.g., oxygen-rich atmospheric air).
[0247] Atmosphere: In certain forms of the present technology, the term "atmosphere" should be taken to mean (i) that which is external to the treatment system or patient, and (ii) that which immediately surrounds the treatment system or patient or outside the pneumatic path of the RPT device.
[0248] For example, the ambient humidity for a humidifier may be the humidity of the air immediately surrounding the humidifier (e.g., the humidity inside the room where the patient is sleeping), which may differ from the humidity outside the room where the patient is sleeping.
[0249] In another example, the ambient pressure may be the pressure immediately surrounding or external to the body.
[0250] In certain embodiments, ambient (e.g., acoustic) noise can be considered the background noise level in the room the patient is in, other than noise emanating from, for example, the RPT device or from the mask or patient interface. Ambient noise can originate from sources outside the room.
[0251] Respiratory Pressure Therapy (RPT): The application to the airway entrance of an air supply at therapeutic pressure, typically positive pressure relative to atmosphere.
[0252] Continuous Positive Airway Pressure (CPAP) Therapy: Respiratory pressure therapy in which the therapeutic pressure is approximately constant throughout the patient's respiratory cycle. In some forms, the pressure at the entrance to the airways increases slightly during expiration and decreases slightly during inspiration. In some forms, the pressure varies during different respiratory cycles of the patient (e.g., increased in response to the detection of an indication of partial upper airway obstruction and decreased in the absence of notification of partial upper airway obstruction).
[0253] Patient: A person with or without a respiratory disease.
[0254] Automatic Positive Airway Pressure (APAP) Therapy: A CPAP therapy that is capable of automatically adjusting therapeutic pressure between minimum and maximum limits, for example, between breaths, depending on the presence or absence of signs of an SDB episode.
[0255] 5.9.2 Aspects of the respiratory cycle Apnea: According to some definitions, an apnea is said to occur when flow below a predetermined threshold continues for a duration of, for example, 10 seconds. Obstructive apnea is said to occur when some airway obstruction does not allow airflow despite patient effort. Open apnea is said to refer to a condition in which apnea is detected due to reduced or absent respiratory effort despite an open (patent) airway. Mixed apnea is said to refer to a condition in which reduced or absent respiratory effort occurs simultaneously with airway obstruction.
[0256] Respiratory rate: The patient's spontaneous breathing rate, usually measured in breaths per minute.
[0257] Duty cycle, or inspiratory fraction: the ratio of inspiratory time, Ti, to total breathing time, Ttot.
[0258] Effort (breathing): Respiratory effort is said to refer to the movement made by a person's spontaneous breathing as they try to breathe.
[0259] Expiratory portion of the respiratory cycle: the period from the start of expiratory flow to the start of inspiratory flow.
[0260] Flow limitation: Flow limitation is understood to be a situation in a patient's breathing where an increase in patient effort does not result in a corresponding increase in flow. If flow limitation occurs during the inspiratory portion of the respiratory cycle, the flow limitation may be described as inspiratory flow limitation. If flow limitation occurs during the expiratory portion of the respiratory cycle, the flow limitation may be referred to as expiratory flow limitation.
[0261] Flow-limited inspiratory waveform types: (i) (Classical) flat shape: a rise followed by a relatively flat area, then a decline. (ii) M-shaped: two local peaks, one in the early part and one in the late part, with a relatively flat area between these two peaks. (iii) Chair shape: There is a single local peak, which is in the early part, followed by a relatively flat part. (iv) Inverted chair: A relatively flat section followed by a single local peak, the peak being located at the rear.
[0262] Hypopnea: refers to a reduction in flow, not an interruption of flow. In one form, hypopnea is said to occur when flow is reduced below a threshold rate for a sustained period of time. Central hypopnea is said to occur when hypopnea is detected due to a decrease in respiratory effort.
[0263] Hyperventilation: An increase in flow to a level higher than normal.
[0264] Hypoventilation: Hypoventilation is said to occur when the amount of gas exchange occurring over a given timescale falls below the patient's current demands.
[0265] Hyperventilation: Hyperventilation is said to occur when the amount of gas exchange occurring over a given time scale exceeds the patient's current demands.
[0266] Inspiratory portion of the respiratory cycle: The period from the start of the inspiratory flow to the start of the expiratory flow is taken as the inspiratory portion of the respiratory cycle.
[0267] Patency (Airway): The degree to which the airway is open or the extent to which it is open. Airway patency is an opening. Airway patency can be quantified, for example, with a value of 1 indicating open and a value of 0 indicating closed (obstructed).
[0268] Positive end-expiratory pressure (PEEP): The pressure above atmosphere in the lungs that exists at the end of expiration.
[0269] Peak flow (Qpeak): The maximum value of flow during the inspiratory portion of the respiratory flow waveform.
[0270] Respiratory airflow, airflow, patient airflow, respiratory airflow (Qr): These synonyms may be understood to refer to the RPT device's estimate of respiratory airflow, and are used in contrast to "true respiratory flow" or "true respiratory airflow," which is the patient's actual respiratory flow, usually expressed in liters / minute.
[0271] Tidal Volume (Vt): The volume of air inhaled or exhaled without extra effort with each breath during normal breathing. This volume is more specifically defined as the inspiratory tidal volume (Vi) or the expiratory tidal volume (Ve).
[0272] Inspiratory time (Ti): The duration of the inspiratory portion of the respiratory flow waveform.
[0273] Expiratory time (Te): The duration of the expiratory portion of the respiratory flow waveform.
[0274] Total (Respiratory) Time (Ttot): The total duration between the start of the inspiratory portion of one respiratory flow waveform and the start of the inspiratory portion of the next respiratory flow waveform.
[0275] Typical Recent Ventilation: The ventilation values around which recent values over a given time scale tend to cluster (i.e., the degree to which recent values of ventilation tend to be central).
[0276] Upper Airway Obstruction (UAO): Includes both partial and total upper airway obstruction. This can be associated with a state of flow limitation in which flow may increase or decrease slightly as the pressure difference across the upper airway increases (Starling resistor behavior).
[0277] Vent: A measure of the total amount of gas exchange performed by a patient's respiratory system. Ventilatory measurements may include either or both inspiratory and expiratory flow per unit time. When expressed as volume per minute, this amount is often referred to as "minute ventilation." Minute ventilation is sometimes given simply as volume and is understood as volume per minute.
[0278] 5.9.3 RPT Device Parameters Flow rate: The instantaneous volume (or mass) of air delivered per unit time. Flow rate and ventilation have the same magnitude of volume or mass per unit time, but flow rate is measured over a much shorter period of time. Sometimes, when referring to flow rate, it refers to a scalar quantity (i.e., a quantity with only magnitude). In other cases, when referring to flow rate, it refers to a vector quantity (i.e., a quantity with both magnitude and direction). When referred to as a signed quantity, flow rate can be nominally positive for the inspiratory portion of the patient's respiratory cycle and negative for the expiratory portion of the patient's respiratory cycle. Flow rate is given the sign Q. "Flow rate" is sometimes simply referred to as "flow." Total flow rate Qt is the flow rate of air exiting the RPT device. Ventilatory flow rate Qv is the flow rate of air exiting the vent to allow the outflow of exhaled gases. Leakage flow rate Ql is the flow rate of leakage from the patient interface system. Respiratory flow rate Qr is the flow rate of air received into the patient's respiratory system.
[0279] Leak: The term "leak" refers to an unintended flow of air. In one example, a leak can occur due to an imperfect seal between the mask and the patient's face. In another example, a leak can occur at the elbow swivel to the perimeter.
[0280] Pressure: Force per unit area. Pressure can be measured in a variety of units (e.g., cmH2O (centimeter of water), gf / cm 2 , and hectopascals (hPa). 1cmH2O is 1g-f / cm 2 which is approximately 0.98 hPa. Unless otherwise specified, pressures are given in units of cmH2O throughout this specification. The pressure in the patient interface is given the symbol Pm, and the therapeutic pressure, which represents the target value that the mask pressure Pm should achieve at this moment, is given the symbol Pt.
[0281] 5.9.4 Ventilator Terminology Backup Rate: A ventilator parameter that establishes the minimum respiratory rate (typically in breaths per minute) that will be delivered to the patient by the ventilator (when not triggered by spontaneous breathing efforts).
[0282] Cycling: The end of the inspiratory phase of a ventilator. When a ventilator delivers breaths to a spontaneously breathing patient, at the end of the inspiratory portion of the breathing cycle, the ventilator is said to be cycled to stop breath delivery.
[0283] Expiratory Positive Airway Pressure (EPAP): The base pressure to which varying pressures are added during a breath to produce the desired mask pressure that the ventilator attempts to achieve at a given moment.
[0284] End Expiratory Pressure (EEP): The desired mask pressure that the ventilator attempts to achieve at the end of the expiratory portion of the breath. If the pressure waveform template Π(Φ) has a value of zero at the end of expiration (i.e., Π(Φ)=0 when Φ=1), then EEP is equal to EPAP.
[0285] Inspiratory Positive Airway Pressure (IPAP): The maximum desired mask pressure that the ventilator attempts to achieve during the inspiratory portion of the breath.
[0286] Pressure Support: A number indicating the increase in pressure during ventilator inspiration compared to the corresponding ventilator expiration, and refers primarily to the pressure difference between the peak inhalation pressure and the base pressure (e.g., PS = IPAP - EPAP). In some contexts, pressure support refers to the difference the ventilator attempts to achieve (rather than the difference it actually achieves).
[0287] Servo-ventilator: A ventilator that has both patient ventilation and target ventilation, and adjusts the level of pressure support to bring the patient ventilation closer to the target ventilation.
[0288] Spontaneous / Timed (S / T): A mode of a ventilator or other device that attempts to detect the onset of a breath in a spontaneously breathing patient. However, if the device fails to detect a breath within a predetermined period of time, the device automatically begins breath delivery.
[0289] Swing: A term equivalent to pressure assistance.
[0290] Triggering: When a ventilator delivers a breath of air to a spontaneously breathing patient, the ventilator is said to be triggered to deliver a breath when the patient himself initiates the breathing portion of the breathing cycle.
[0291] Ventilator: A mechanical device that provides pressure support to a patient while they perform some or all of the work of breathing.
[0292] 5.9.5 Respiratory System Anatomy Diaphragm: A sheet of muscle that runs over the lower rib cage. The diaphragm separates the thoracic cavity, which contains the heart, lungs, and ribs, from the abdominal cavity. When the diaphragm contracts, it increases the volume of the thoracic cavity and draws air into the lungs.
[0293] Larynx: The larynx or voice box that houses the vocal cords and connects the lower part of the pharynx (hypopharynx) to the trachea.
[0294] Lung: respiratory organ in humans. The conductive zone of the lung includes the trachea, bronchi, bronchi, and terminal bronchioles. The respiratory zone includes the respiratory bronchi, alveolar ducts, and alveoli.
[0295] Nasal Cavity: The nasal cavity (or nasal fossa) is a large, air-filled space in the center of the face above and behind the nose. The nasal cavity is divided into two by a vertical fin called the nasal septum. On the sides of the nasal cavity are three horizontal extensions called nasal conchae (singular "concha") or turbinates. The nasal cavity is anteriorly connected to the nose, and posteriorly to the choanae, which open into the nasopharynx.
[0296] Pharynx: The part of the throat located immediately below (inferior to) the nasal cavity and above the esophagus and larynx. The pharynx is traditionally divided into three parts: the nasopharynx (upper pharynx) (nasal part of the pharynx), the oropharynx (mid pharynx) (oral part of the pharynx), and the hypopharynx (low pharynx). 5.10 Other Notes
[0297] A portion of the disclosure of this patent document contains material that is entitled to copyright protection. The copyright owner has no objection to the facsimile reproduction by anyone of this patent document or this patent disclosure, as it appears in the Patent and Trademark Office patent file or records, but reserves all copyright rights therefor for all other purposes.
[0298] Unless otherwise clearly indicated from the context and unless a range of values is provided, it is understood that each intervening value, to the tenth of the unit of the lower limit, between the upper and lower limits of the range, and for any other stated or intervening value in the stated range, is encompassed by the technology. The upper and lower limits of these intervening ranges, independently included in the intervening range, are also encompassed by the technology if they specifically exceed the limits in the stated range. If the stated range includes one or both of these limits, then ranges exceeding either or both of these stated limits are also encompassed by the technology.
[0299] Furthermore, when a value or values are embodied herein as part of the present technology, unless otherwise specified, it is understood that such values may be approximated and may be used to any appropriate significant figures to the extent practical technical practice permits or requires.
[0300] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this technology belongs. Although any methods and materials similar or equivalent to those described herein can be used in the practice or testing of this technology, a limited number of exemplary methods and materials are described herein.
[0301] Although particular materials are described as being suitable for use in the construction of components, obvious alternative materials having similar properties may be substituted. Furthermore, unless stated to the contrary, any and all components described herein are understood to be manufacturable and therefore may be manufactured collectively or separately.
[0302] Please note that as used herein and in the appended claims, the singular forms "a," "an," and "the" include their plural equivalents unless the context clearly dictates otherwise.
[0303] All publications mentioned herein are incorporated by reference to disclose and describe the methods and materials to which they are subject. Publications mentioned herein are provided solely for their disclosure prior to the filing date of the present application. Nothing herein should be construed as an admission that the present technology is not entitled to antedate such publications by virtue of prior patents. Further, the dates of publication mentioned may be different from the actual publication dates, which may require independent confirmation.
[0304] The terms "comprises" and "comprising" should be construed as referring to elements, components, or steps in a non-exclusive sense, indicating that a described element, component, or step may be present in, utilized with, or combined with other elements, components, or steps not specifically described.
[0305] The headings used in the detailed description are for the convenience of the reader and should not be used to limit the content found in the disclosure or claims as a whole. These headings should not be used in interpreting the scope of the claims or the claim limitations.
[0306] Although the technology herein has been described with reference to specific embodiments, it should be understood that these embodiments are merely illustrative of the principles and applications of the technology. In some cases, terms and symbols may indicate specific details unnecessary for the practice of the technology. For example, although the terms "first" and "second" (etc.) are used, unless otherwise specified, these terms are not intended to indicate any order but are used to distinguish between separate elements. Furthermore, although the process steps in the method may be described or illustrated in an ordered manner, such an order is not required. Those skilled in the art will recognize that such an order can be changed and aspects can be performed simultaneously or even synchronously.
[0307] It is therefore to be understood that numerous modifications may be made in the illustrative embodiments and that other arrangements may be devised without departing from the spirit and scope of the present technology. In order to maintain the disclosure of the present application as originally filed, the contents of claims 1 to 52 as originally filed are added below. (Claim 1) 1. A method of a controller generating a signal indicative of an estimate of a flow rate of a flow of breathable gas associated with a respiratory treatment device, the respiratory treatment device including a motor-operated blower; receiving by the controller an electronic signal from a pressure sensor indicative of a measurement of the pressure of the breathable gas; receiving by the controller an electronic signal from a speed sensor indicative of a measurement of the speed of the motor; said controller calculating an entrained air density function; said controller generating a signal indicative of an estimate of the flow rate of said breathable gas using a flow estimation function, wherein said flow estimation function comprises a function of (1) a signal indicative of said measured pressure, (b) a signal indicative of said measured speed of said motor, and (c) said entrained air density function; A method comprising: (Claim 2) The method of claim 1 , wherein the entrained air density function comprises an air density value and an air density reference value. (Claim 3) The method of claim 2 , wherein the entrained air density function comprises a first ratio of the air density value and the air density reference value. (Claim 4) The method of claim 3 , wherein the entrained air density function comprises a second ratio of the air density value and the air density reference value. (Claim 5) 5. The method of claim 1, wherein estimating the flow rate of breathable gas further comprises calculating a motor force, and the determined estimate of the flow rate of breathable gas is based on the motor force. (Claim 6) The method according to any one of claims 1 to 5, wherein the entrained air density function comprises a function of an ambient pressure value, a temperature value and a relative humidity value. (Claim 7) The method of claim 6 further comprising evaluating a signal from an oxygen sensor to calculate the entrained air density function. (Claim 8) receiving by the controller from an ambient pressure sensor an electronic signal indicative of a measurement of ambient pressure of the breathable gas, wherein the ambient pressure value is a measurement of ambient pressure of the breathable gas; receiving by the controller an electronic signal from a gas temperature sensor indicative of a gas temperature measurement of the breathable gas, wherein the gas temperature value is a gas temperature measurement of the breathable gas; receiving by the controller from an ambient relative humidity sensor an electronic signal indicative of a measurement of the ambient relative humidity of the breathable gas, wherein the ambient relative humidity value is a measurement of the ambient relative humidity of the breathable gas; 7. The method of claim 6, further comprising: (Claim 9) 9. The method according to claim 6, wherein the function of the atmospheric pressure value, the temperature value, and the relative humidity value includes a saturated vapor pressure function depending on temperature. (Claim 10) The saturated vapor pressure function according to the temperature is
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[0308] 5.11 List of Reference Symbols Patients:1000 Patient Interface: 3000 Non-invasive patient interface: 3000 Seal forming structure: 3100 Plenum chamber: 3200 Structure: 3300 Ventilation: 3400 Connection port: 3600 Frontal support: 3700 RPT devices: 4000 External housing: 4010 Top: 4012 Part:4014 Panel: 4015 Chassis: 4016 Handle: 4018 Pneumatic block: 4020 Pneumatic Components: 4100 Air filter: 4110 Inlet air filter: 4112 Outlet air filter: 4114 Inlet muffler: 4122 Exit muffler: 4124 Pressure generator: 4140 Controllable blowers: 4142 Motor: 4144 Air circuit: 4170 Supplemental oxygen: 4180 Electrical parts: 4200 Printed Circuit Board Assembly: 4202 Power: 4210 Input Device: 4220 Central controller: 4230 Clock: 4232 Treatment Device Controller: 4240 Protection circuit: 4250 Memory: 4260 Converter: 4270 Pressure sensor: 4272 Flow sensor: 4274 Gas temperature sensor: 4275 Motor speed converter: 4276 Ambient pressure sensor: 4277 Ambient Relative Humidity Sensor: 4279 Data communication interface: 4280 Remote external communication network: 4282 Local external communication network: 4284 Remote External Device: 4286 Local External Device: 4288 Output device: 4290 Display driver: 4292 Display: 4294 Algorithm: 4300 Pre-processing module: 4310 Pressure compensation algorithm: 4312 Estimated ventilation flow rate: 4314 Leakage flow rate estimation algorithm: 4316 Flow signal estimation: 4317 Respiratory flow estimation algorithm: 4318 Treatment Engine Module: 4320 Phase Determination Algorithm: 4321 Waveform determination algorithm: 4322 Ventilation decision algorithm: 4323 Intake flow restriction detection: 4324 Apnea detection algorithm: 4325 M-shape detection algorithm: 4326 Airway patency determination algorithm: 4327 Typical recent ventilation decisions: 4328 Treatment parameter determination algorithm: 4329 Treatment Control Module: 4330 Humidifier:5000 Humidifier inlet: 5002 Humidifier outlet: 5004 Humidifier base: 5006 Humidifier reservoir: 5110 Humidifier Reservoir Dock: 5130 Heating element: 5240 Humidifier controller: 5250 Estimated Process: 7002 Flow Estimation Unit: 7004 Flow rate estimation signal: 7008 Input signal: 7010 Pressure: 7012 Motor speed: 7014 Ambient pressure: 7016 Gas temperature: 7018 Ambient relative humidity: 7020 Motor parameters: 7021 Oxygen sensor signal: 7023 Step or Process: 8002-34
Claims
1. 1. A method for generating a signal indicative of an estimate of a flow rate of a flow of breathable gas associated with a respiratory treatment device, the respiratory treatment device including a controller and a motor-operated blower; receiving by the controller from a pressure sensor an electronic signal indicative of a measurement of the pressure of the breathable gas, the pressure being measured in a pneumatic path of the respiratory treatment device; receiving by the controller an electronic signal from a speed sensor indicative of a measurement of the speed of the motor; calculating an entrained air density function in said controller; said controller generating a signal indicative of an estimate of the flow rate of said breathable gas using a flow estimation function that uses (a) a signal indicative of said pressure measurement, (b) a signal indicative of said motor speed measurement, and (c) said entrained air density function as inputs to a computational process; the controller receiving an electronic signal from a flow sensor indicative of a measurement of the flow rate of the breathable gas; the controller comparing the electronic signal indicative of the measured value of the flow rate of the breathable gas with a generated signal indicative of an estimate of the flow rate of the breathable gas; the controller generating an output indicator indicative of an evaluation based on the comparison; and A method comprising:
2. The method of claim 1 , wherein the entrained air density function comprises an air density value and an air density reference value.
3. The method of claim 2 , wherein the entrained air density function comprises a first ratio of the air density value and the air density reference value.
4. 4. The method of claim 3, wherein the entrained air density function comprises a second ratio of the air density value and the air density reference value, the second ratio being the reciprocal of the first ratio.
5. 5. The method of claim 1, wherein estimating the flow rate of breathable gas further comprises calculating a motor power, the motor power being defined by a motor current multiplied by a motor voltage, and the determined estimate of the flow rate of breathable gas is based on the motor power.
6. The method of any one of claims 1 to 5, wherein the entrained air density function comprises a function of an ambient pressure value, a temperature value and a relative humidity value.
7. The method of claim 6 further comprising estimating oxygen concentration using a signal from an oxygen sensor to calculate the entrained air density function.
8. receiving by the controller an electronic signal from an ambient pressure sensor indicative of an ambient pressure value of the breathable gas, wherein the ambient pressure value is a measurement of the ambient pressure of the breathable gas; receiving by the controller an electronic signal from a gas temperature sensor indicative of a gas temperature value of the breathable gas, wherein the gas temperature value is a measurement of the gas temperature of the breathable gas; receiving by the controller an electronic signal from an ambient relative humidity sensor indicative of an ambient relative humidity value of the breathable gas, wherein the ambient relative humidity value is a measurement of the ambient relative humidity of the breathable gas; The method of claim 6 further comprising:
9. The method according to any one of claims 6 to 8, wherein the function of the ambient pressure value, the temperature value and the relative humidity value comprises a saturated vapor pressure function as a function of temperature.
10. The saturated vapor pressure function according to the temperature is [Equation 1] is defined by Temp local_DegC The method of claim 9 , wherein: is the temperature value.
11. The method according to any one of claims 6 to 10, wherein the function of the atmospheric pressure value, the temperature value and the relative humidity value comprises a vapor pressure function as a function of temperature and relative humidity.
12. The vapor pressure function as a function of temperature and relative humidity is calculated by: (a) the result of the saturated vapor pressure function according to temperature; and (b) the relative humidity value, [Equation 2] It is defined by multiplying RH local is the relative humidity value, Psv (Temp local_DegC 12. The method of claim 11 when dependent on any one of claims 9 to 10, wherein ∑ ∑ m ...
13. The function of the ambient pressure value, the temperature value, and the relative humidity value is: [Equation 3] is defined by P 0 = 103 hectopascals, T 0 = 15 degrees Celsius or 288.15 degrees Kelvin, [Equation 4] and P atm_local is the atmospheric pressure value, [Equation 5] is the vapor pressure function as a function of temperature and relative humidity, Temp local_DegK The method of claim 12 , wherein: is the temperature value.
14. The flow estimation function includes a first rotational frequency function, the first rotational frequency function being: [Equation 6] is defined by RPM is a measure of the speed of the motor; [Equation 7] is the entrained air density function, ρ ref is the reference air density, ρ local 14. The method of any one of claims 1 to 13, wherein: is the local air density; and C1 and C2 are empirically derived constants.
15. The flow estimation function includes a second rotational frequency function, the second rotational frequency function being: [Equation 8] is defined by RPM is a measure of the speed of the motor; 15. The method of claim 14, wherein C3, C4, and C5 are empirically derived constants.
16. The flow estimation function includes a third rotational frequency function, the third rotational frequency function being: [Equation 9] is defined by RPM is a measure of the speed of the motor; [Equation 10] is the entrained air density function, ρ ref is the reference air density, ρ local is the local air density, 16. The method of claim 14 or 15, wherein C6, C7 and C8 are empirically derived constants.
17. The flow estimation function is [0011] is defined by A is the first rotational frequency function; B is the second rotational frequency function; C is the third rotational frequency function; 17. The method of claim 16, wherein Pres_meas is a measurement of the pressure of the breathable gas from the pressure sensor.
18. A method according to any preceding claim, wherein the output indicator is indicative of an assessment of the accuracy of the flow sensor.
19. 20. The method of claim 18, further comprising the controller varying a control parameter for operating the motor-operated blower based on the power indicator.
20. 20. The method of claim 18, further comprising the controller varying control parameters for operating the motor-operated blower based on the generated signal indicative of the estimated amount of breathable gas.
21. 21. The method of claim 19, wherein the control parameter is one of a target pressure value and a target flow rate value.
22. A processor-readable medium having processor-executable instructions stored thereon, comprising: A processor-readable medium, the processor-executable instructions including instructions that, when executed by a processor controller of a motor-operated blower in a respiratory treatment device, cause the processor to generate an estimate of the flow rate of breathable gas associated with the respiratory treatment device, the processor-executable instructions causing the processor to control operation according to a method of any one of claims 1 to 21.
23. 1. A respiratory treatment device comprising: a motor-operated blower adapted to couple to a patient respiratory interface and adapted to generate a respiratory therapy including a flow of breathable gas through the patient respiratory interface; a pressure sensor configured to generate an electronic signal indicative of a measurement of the pressure of the breathable gas; a speed sensor configured to generate an electronic signal indicative of a measurement of the speed of the motor; a flow sensor configured to generate an electronic signal indicative of a measurement of the flow rate of the breathable gas; a controller including one or more processors, the controller coupled to the motor-operated blower, the pressure sensor, and the velocity sensor; Including, In the controller, receiving an electronic signal indicative of a measure of the pressure of the breathable gas, the measure being the pressure measured in a pneumatic path of the respiratory treatment device; receiving the electronic signal indicative of a measurement of the speed of the motor; calculating an entrained air density function; generating a signal indicative of an estimate of the flow rate of said breathable gas by a flow estimation function using (a) a signal indicative of said pressure value, (b) a signal indicative of a measured speed of said motor, and (c) said entrained air density function as inputs to a computational process; receiving the electronic signal indicative of a measure of the flow rate of the breathable gas; comparing the electronic signal indicative of the measured flow rate of the breathable gas with a generated signal indicative of an estimate of the flow rate of the breathable gas; generating an output indicator indicative of an evaluation based on said comparison; a respiratory treatment device configured to:
24. 24. The respiratory treatment device of claim 23, wherein the entrained air density function includes an air density value and an air density reference value.
25. 25. The respiratory treatment device of claim 24, wherein the entrained air density function comprises a first ratio of the air density value and the air density reference value.
26. 26. The respiratory treatment device of claim 25, wherein the entrained air density function comprises a second ratio of the air density value and the air density reference value, and the first ratio is the reciprocal of the second ratio.
27. 27. A respiratory treatment device according to any one of claims 23 to 26, wherein the controller is further configured to calculate motor power from one or more sensor signals to determine an estimate of the flow rate of breathable gas, the motor power being defined by the multiplication of motor current and motor voltage, and the determined estimate of the flow rate of breathable gas being based on the motor power.
28. A respiratory treatment device according to any one of claims 23 to 27, wherein the entrained air density function comprises a function of an ambient pressure value, a temperature value and a relative humidity value.
29. 30. The respiratory treatment device of claim 28, wherein the controller is further configured to estimate oxygen concentration using a signal from an oxygen sensor to calculate the entrained air density function.
30. an ambient pressure sensor configured to generate an electronic signal indicative of an ambient pressure value of the breathable gas, the ambient pressure value being a measurement of the ambient pressure of the breathable gas; a gas temperature sensor configured to generate an electronic signal indicative of a gas temperature value of the breathable gas, the gas temperature value being a measurement of the gas temperature of the breathable gas; an ambient relative humidity sensor configured to generate an electronic signal indicative of an ambient relative humidity value of the breathable gas, the ambient relative humidity value being a measurement of the ambient relative humidity of the breathable gas; further comprising The controller the electronic signal indicative of a measurement of the ambient pressure; said electronic signal indicative of a measurement of gas temperature; said electronic signal indicating a measurement of the ambient relative humidity; 30. The respiratory treatment device of claim 28 or 29 configured to receive:
31. A respiratory treatment device according to any one of claims 28 to 30, wherein the function of the ambient pressure value, the temperature value and the relative humidity value comprises a saturated vapor pressure function as a function of temperature.
32. The saturated vapor pressure function according to the temperature is [0012] is defined by Temp local_DegC 32. The respiratory treatment device of claim 31 , wherein: is the temperature value.
33. A respiratory treatment device according to any one of claims 23 to 32, wherein the function of the ambient pressure value, the temperature value and the relative humidity value comprises a vapor pressure function as a function of temperature and relative humidity.
34. The vapor pressure function as a function of temperature and relative humidity is calculated by: (a) the result of the saturated vapor pressure function according to temperature; and (b) the relative humidity value, [0013] It is defined by multiplying RH local is the relative humidity value, Psv (Temp local_DegC 34. A respiratory treatment device as claimed in claim 33 when dependent on claim 31, wherein ∑ ∑ m ...
35. The function of the ambient pressure value, the temperature value, and the relative humidity value is: [0014] is defined by P 0 = 103 hectopascals, T 0 = 15 degrees Celsius or 288.15 degrees Kelvin, [Equation 15] and P atm_local is the atmospheric pressure value, [0016] is the vapor pressure function as a function of temperature and relative humidity, Temp local_DegK 35. The respiratory treatment device of claim 34, wherein is the temperature value.
36. The flow estimation function includes a first rotational frequency function, the first rotational frequency function being: [Equation 17] is defined by RPM is a measure of the speed of the motor; [Equation 18] is the entrained air density function, ρ ref is the reference air density, ρ local is the local air density, A respiratory treatment device according to any one of claims 23 to 35, wherein C1 and C2 are empirically derived constants.
37. The flow estimation function includes a second rotational frequency function, the second rotational frequency function being: [Equation 19] is defined by RPM is a measure of the speed of the motor; 37. A respiratory treatment device as described in claim 36, wherein C3, C4 and C5 are empirically derived constants.
38. The flow estimation function includes a third rotational frequency function, the third rotational frequency function being: [Equation 20] is defined by RPM is a measure of the speed of the motor; [Equation 21] is the entrained air density function, ρ ref is the reference air density, ρ local is the local air density, 38. A respiratory treatment device as claimed in claim 36 or 37, wherein C6, C7 and C8 are empirically derived constants.
39. The flow estimation function is [Equation 22] is defined by A is the first rotational frequency function; B is the second rotational frequency function; C is the third rotational frequency function; 39. The respiratory treatment device of claim 38, wherein Pres_meas is a measurement of the pressure of the breathable gas from the pressure sensor.
40. A respiratory treatment device according to any one of claims 23 to 39, wherein the output indicator provides an assessment of the accuracy of the flow sensor.
41. 41. The respiratory treatment device of claim 40, wherein the controller is further configured to modify control parameters for operating the motor-operated blower based on the output indicator.
42. 41. The respiratory treatment device of claim 40, wherein the controller is further configured to alter control parameters for operating the motor-operated blower based on the generated signal indicative of the estimate of breathable gas.
43. 43. A respiratory treatment device according to claim 41 or 42, wherein the control parameter is one of a target pressure value and a target flow value.
44. further comprising a processor-readable medium having processor-executable instructions stored thereon; 44. A respiratory treatment device as described in any one of claims 23 to 43, wherein the processor executable instructions, when executed by one or more processors of a controller of the motor-operated blower, cause the one or more processors to generate an estimate of the flow rate of the breathable gas, the processor executable instructions including instructions to control operation according to a method as described in any one of claims 1 to 21.
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