Storing, controlling, and porting respiratory therapy settings from remote server
The system automates the porting of respiratory treatment settings and enhances compliance by using prescription servers and patient interface updates, addressing manual porting issues and improving comfort and usability in respiratory therapies.
Patent Information
- Application Number
- JP2025122152
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2019-03-29
- Filing Date
- 2025-07-22
- Publication Date
- 2025-10-22
AI Technical Summary
Existing respiratory therapies face challenges with manual porting of prescription settings for new devices, lack of patient compliance due to device discomfort, complexity, and inefficiencies in data communication and management, particularly in home settings.
A system and method for automatically porting respiratory treatment settings using a prescription server, integrating image and audio analysis for patient status updates, and enabling easy-to-use, portable devices with home-cleanable interfaces.
Enhances patient compliance and simplifies the transition to new devices by automating setting porting, improves comfort and usability, and streamlines data management for respiratory therapies.
Smart Images

Figure 2025160286000001_ABST
Abstract
Description
[Technical Field]
[0001] 1. Technical Background 1.1 Technology field The present technology relates to one or more of screening, diagnosing, monitoring, treating, preventing, and ameliorating respiratory-related disorders. The technology also relates to medical devices or apparatus and uses thereof. The technology also relates to porting respiratory settings between respiratory treatment devices. [Background technology]
[0002] 1.2 Description of Related Art 1.2.1 The human respiratory system and its diseases The body's respiratory system facilitates gas exchange. The nose and oral cavity form the entrance to a patient's airways.
[0003] 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 the right and left main bronchi, which further divide into the 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 zone. See: "Respiratory Physiology," by John B. West, Lippincott Williams & Wilkins, 9th edition published 2012.
[0004] There is a range of respiratory diseases. Particular diseases can be characterized by particular manifestations such as apnea, hypopnea and hyperpnea.
[0005] Examples of respiratory diseases include obstructive sleep apnea (OSA), Cheyne-Stokes respiration (CSR), respiratory failure, obesity hyperventilation syndrome (OHS), chronic obstructive pulmonary disease (COPD), neuromuscular diseases (NMD), and chest wall diseases. 1.2.2 Therapy
[0006] A variety of therapies (e.g., continuous positive airway pressure (CPAP) therapy, non-invasive ventilation (NIV), and invasive ventilation (IV)) are used to treat one or more of the above respiratory conditions. 1.2.2.1 Respiratory Pressure Therapy
[0007] Continuous positive airway pressure (CPAP) therapy is used in the treatment of obstructive sleep apnea (OSA). Its mechanism of action is that continuous positive airway pressure acts as a pneumatic splint, for example, by pushing the soft palate and tongue forward or backward against the posterior oropharyngeal wall, thereby preventing closure of the upper airway. Because treatment of OSA with CPAP therapy can be voluntary, patients may choose not to adhere to treatment if they perceive one or more of the following about the device used to deliver the treatment: uncomfortable, difficult to use, expensive, or aesthetically unappealing.
[0008] 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. Ventilation 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.
[0009] Invasive ventilation (IV) provides ventilatory support to patients who are no longer able to breathe effectively on their own and may be provided using a tracheostomy tube. In some forms, the comfort and effectiveness of these treatments may be improved. 1.2.2.2 Flow therapy
[0010] Not all respiratory therapies are intended to deliver a prescribed therapeutic pressure. Some respiratory therapies aim to deliver a prescribed respiratory volume, perhaps by targeting a flow profile over a desired duration. In other cases, the interface to the patient's airway is "open" (unsealed), and respiratory therapy 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, 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 exhaled CO2 to be flushed or displaced from the patient's anatomical dead space. Therefore, HFT is sometimes referred to as dead-space therapy (DST). In other flow therapies, the therapeutic flow rate may follow a profile that varies over the respiratory cycle.
[0011] Another form of flow therapy is long-term oxygen therapy (LTOT), or supplemental oxygen therapy. A physician may prescribe a continuous flow of oxygen-enriched gas to be delivered to a patient's airways at a specified oxygen concentration (between 21% and 100% of the oxygen fraction in ambient air) at a specified flow rate (e.g., 1 liter per minute (LPM), 2 LPM, or 3 LPM). 1.2.2.3 Supplemental oxygen
[0012] For certain patients, a combination of oxygen therapy and respiratory pressure therapy or HFT can be achieved by adding supplemental oxygen to the pressurized air stream. When oxygen is added to respiratory pressure therapy, this is called RPT with supplemental oxygen. When oxygen is added to HFT, the resulting therapy is called HFT with supplemental oxygen. 1.2.3 Treatment System
[0013] These respiratory therapies may be provided by treatment systems or devices. Such systems and devices may also be used to screen, diagnose, or monitor disease without treating it.
[0014] The respiratory therapy system may include a respiratory pressure therapy device (RPT device), an air circuit, a humidifier, a patient interface, an oxygen breathing source, and data management. 1.2.3.1 Patient Interface
[0015] 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. 1.2.3.2 Respiratory Pressure Therapy (RPT) Devices
[0016] Respiratory pressure therapy (RPT) devices can be used individually or as part of a system to deliver one or more of the therapies described above, for example, by activating the device to generate an air delivery flow to an interface with the airway. The air flow can be pressure-controlled (for respiratory pressure therapy) or flow-controlled (for flow therapy such as HFT). As such, RPT devices can also function as flow therapy devices. Examples of RPT devices include CPAP devices and mechanical ventilators. Examples of RPT devices include CPAP devices and mechanical ventilators. 1.2.3.3 Humidifier
[0017] 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. 1.2.3.4 Data Management
[0018] For clinical reasons, data may be obtained to determine whether a patient prescribed respiratory therapy is "compliant" (e.g., whether the patient adheres to one or more "compliance rules" with their RPT device). An example of a compliance rule for CPAP therapy may require a patient to use the RPT device for at least four hours per night for at least 21 days out of 30 consecutive days to be considered compliant. To determine patient compliance, a provider of the RPT device (e.g., a healthcare provider) may manually obtain data describing the patient's treatment with the RPT device, calculate usage rates over a given period, and compare this to the compliance rules. Once the healthcare provider determines that the patient has used their RPT device in accordance with the compliance rules, the healthcare provider may notify a third party that the patient is compliant.
[0019] There may be other aspects of patient care that benefit from communication of treatment data to third parties or external systems.
[0020] Existing processes for communicating and managing such data can be costly, time consuming, and / or error prone. 1.2.3.5 Mandibular repositioning
[0021] A mandibular repositioning device (MRD) or mandibular advancement device (MAD) is one treatment option for sleep apnea and snoring. It is an adjustable oral appliance available from dentists or other suppliers that holds the mandible (lower jaw) in an anterior position during sleep. MRDs are removable devices that are inserted into the mouth before a patient goes to sleep and removed afterward. As such, MRDs are not designed for full-time wear. MRDs can be custom-made or manufactured in standard forms and include bite impression sections designed to fit the patient's teeth. This mechanical protrusion from the mandible expands the space behind the tongue and applies tension on the pharyngeal walls, reducing airway collapse and palatal vibration.
[0022] In certain embodiments, the mandibular advancement device may include an upper splint intended to engage or mate with teeth on the upper jaw or maxilla, and a lower splint intended to engage or mate with teeth on the upper jaw or mandible. The upper and lower splints are laterally connected to each other via a pair of connecting rods that are fixed symmetrically on the upper and lower splints.
[0023] In such a design, the length of the connecting rod is selected so that the mandible is held in a forward position when the MRD is placed in the patient's mouth. The length of the connecting rod can be adjusted to change the level of mandibular protrusion. The dentist can determine the level of protrusion required for the mandible, and the length of the connecting rod is determined accordingly.
[0024] Some MRDs are configured to push the mandible forward relative to the maxilla, while others, such as the ResMed Narval CC® MRD, are designed to hold the mandible in a forward position. The devices also reduce or minimize dental and temporomandibular joint (TMJ) side effects. As such, the devices are configured to minimize or prevent any movement of one or more teeth. 1.2.3.6 Ventilation Technology
[0025] Some forms of treatment systems may include a vent to push out exhaled carbon dioxide, which may allow gas flow from an interior space of the patient interface (e.g., a plenum chamber) to an exterior of the patient interface (e.g., ambient). 1.2.4 Screening, diagnostic, and surveillance systems
[0026] Polysomnography (PSG) is a conventional system for diagnosing and monitoring cardiopulmonary diseases, but it typically requires specialized clinical staff for system application. PSG typically involves placing 15–20 contact sensors on the human body to record various body signals (e.g., electroencephalography (EEG), electrocardiography (ECG), electrooculography (EOG), and electromyography (EMG)). PSG for sleep-disordered breathing requires patients to be observed for two nights in a specialized hospital: the first night for pure diagnosis and the second night for clinician-assisted titration of treatment parameters. Therefore, PSG is expensive and inconvenient. Screening, diagnosing, and monitoring sleep-disordered breathing is particularly unsuitable for home use.
[0027] In general, screening and diagnosis involve identifying disease through signs and symptoms. Screening typically produces a true / false result indicating whether a patient's SDB warrants further investigation, while diagnosis often produces clinically actionable information. Screening and diagnosis tend to be one-time procedures, whereas monitoring the progression of disease can continue indefinitely. While some screening / diagnostic systems are adapted solely for screening / diagnosis, some can also be used for monitoring.
[0028] A clinical expert may adequately screen, diagnose, or monitor a patient based on visual observation of the PSG signal. However, there are situations where a clinical expert is not available or cannot be paid for. Different clinical experts may have different opinions about a patient's condition. Furthermore, some clinical experts may apply different criteria at different times. Summary of the Invention [Means for solving the problem]
[0029] 2. Brief description of the technology The present technology relates to the provision of medical devices for use in screening, diagnosing, monitoring, ameliorating, treating or preventing respiratory diseases, which medical devices have one or more of improved comfort, cost, effectiveness, ease of use and manufacturability.
[0030] A first aspect of the present technology relates to devices used in screening, diagnosing, monitoring, ameliorating, treating or preventing respiratory disease.
[0031] Another aspect of the present technology relates to methods used in the screening, diagnosis, monitoring, amelioration, treatment or prevention of respiratory disorders.
[0032] An aspect of certain forms of the present technology is to provide methods and / or devices that improve patient compliance with respiratory therapy.
[0033] One form of the present technology includes methods and systems for automatic porting of respiratory treatment settings for new respiratory treatment devices. Currently, when a patient receives a replacement, upgraded, or additional or new type of respiratory treatment device, the prescription settings must be manually ported, requiring human intervention.
[0034] For example, to get a new device if a patient already has an existing device and prescription (REPAP), the patient must order the new device from a provider, and the provider may need to install the settings, or the provider may manually update its cloud-based database to add the new device and ensure that the patient's prescription is still valid. Thus, typically, a patient can simply order a new device from their current provider, who has their prescription information, and not face a difficult or lengthy installation process.
[0035] In accordance with another aspect of one form of the present technology, a system may check therapy quality indicators (e.g., oximetry readings) to determine whether a therapy prescription setting should be auto-ported. For example, when auto-porting a therapy setting, a concern exists where a patient's prescription has suboptimal, poor therapy quality, and therefore the prescription should not be ported. Thus, systems and methods are disclosed for automatically checking and determining whether a patient's prescription is valid (e.g., by checking therapy quality indicators and validity indicators disclosed herein).
[0036] Another aspect of one form of the present technology features auto-porting the prescription after checking the prescription date, converting settings between ventilators, and checking for changes in patient information or other relevant factors. As described herein, auto-porting the prescription treatment settings can be problematic when two different models are used. Thus, disclosed herein are systems and methods for converting treatment settings.
[0037] Another aspect of one form of the present technology is a method for automatically determining changes in patient status that involves updating prescriptions (such as, but not limited to, weight, age, BMI, facial changes) through image recognition software that indicates changes, audio changes through sound analysis, or other relevant patient changes (which can be detected automatically or through the application of a questionnaire).
[0038] Another aspect of one form of the present technology is a patient interface that is molded or otherwise constructed with a peripheral shape that is complimentary to the shape of the intended wearer.
[0039] One aspect of the present technology is a method for manufacturing a device.
[0040] One aspect of certain forms of the present technology is a medical device that is easy to use, for example, by individuals without medical training, individuals with limited dexterity or acumen, or individuals with limited experience using such medical devices.
[0041] One aspect of one form of the present technology is a portable RPT device that can be carried by a person (e.g., around the home).
[0042] An aspect of one form of the present technology is a patient interface that can be cleaned at the patient's home, for example with soapy water, without the need for special cleaning equipment.An aspect of one form of the present technology is a patient interface that can be cleaned at the patient's home, for example with soapy water, without the need for special cleaning equipment.
[0043] The described methods, systems, devices, and apparatus may be implemented to enable improved functionality in a processor (e.g., a processor in a special purpose computer, a respiratory monitor, and / or a respiratory treatment device). Further, the described methods, systems, devices, and apparatus enable advancements in the art of automated management, monitoring, and / or treatment of respiratory conditions (e.g., sleep disordered breathing).
[0044] Of course, some of the above aspects may form sub-aspects of the present technology, and various sub-aspects and / or aspects may be combined in various ways to form further aspects or sub-aspects of the present technology.
[0045] Other features of the present technology will become apparent in light of the information contained in the following detailed description, abstract, drawings, and claims.
[0046] Another aspect of the present technology may include a prescription database with prescribed treatment settings, the prescribed treatment settings referenced to a patient account ID, the patient account ID including a unique identifier for each patient in the database in communication with a prescription server, a first respiratory treatment device, a second respiratory treatment device, an interface, a memory including a machine-readable medium. The machine-readable medium includes machine-executable code having instructions stored thereon for performing a method, wherein a control system is connected to the memory including one or more processors, the control system being configured to execute the machine-executable code to cause the control system to: receive input from the interface indicating that the patient wishes to port settings from the first respiratory treatment device; receive through the interface an account ID associated with the patient and a hardware identifier of the first respiratory treatment device; and send a request to the prescription server including the account ID and the hardware identifier to retrieve prescribed treatment settings from the prescription server; receive from the prescription server prescribed treatment settings referenced for the account ID if the hardware identifier is validated; and store the prescribed treatment settings in the memory of the second respiratory treatment device.
[0047] In another aspect of the present technology, the prescribed treatment setting further includes: retrieving a respiratory quality indicator referenced for the account ID based on respiratory treatment data output from the first respiratory device; determining whether the respiratory quality indicator exceeds a threshold; and, if the respiratory quality indicator is below the threshold, flagging the patient for follow-up and denying the request to port the prescribed treatment setting.
[0048] In another aspect of the present technology, the respiratory quality indicator is an apnea-hypopnea index. In another aspect of the present technology, receiving a prescribed treatment setting from the prescription server further includes: determining a time window that has expired since a last update of the prescribed treatment setting; determining whether the time window exceeds a threshold; and if the time window exceeds the threshold, flagging the patient for follow-up and denying the request to port the prescribed treatment setting.
[0049] In another aspect of the present technology, the prescription treatment setting further includes requesting a set of information from the patient; evaluating the information to determine whether a significant change has occurred related to the patient's prescription treatment setting; and, if the significant change has occurred, flagging the patient for follow-up and denying the request to port the prescription treatment setting.
[0050] In another aspect of the present technology, the set of information includes at least one of the following: weight change, BMI change, muscle tone change. In another aspect of the present technology, receiving the prescribed treatment settings from the prescription server further includes: requesting a set of oximeter data output from a pulse oximeter; processing the oximeter data to determine whether the prescribed treatment settings should be updated; and if the settings should not be updated, flagging the patient in the prescribed treatment database for follow-up and denying the request to port the prescribed treatment settings.
[0051] In another aspect of the present technology, the set of information includes audio data received through a microphone, and the audio data is processed to determine whether there is a significant change in the patient's tone. In another aspect of the present technology, the set of information includes facial image data, and the facial image data is compared to previously captured image data to identify significant facial changes. In another aspect of the present technology, the significant facial changes are indicative of a significant change in BMI.
[0052] In another aspect of the present technology, the prescribed treatment settings are received via a cellular antenna connected to the first respiratory treatment device.
[0053] In another aspect of the present technology, the prescribed treatment settings are received via a Bluetooth or Wi-Fi connection to a device connected to the first respiratory treatment device, and the prescribed treatment settings are encrypted from the prescription server to the first respiratory treatment device.
[0054] In another aspect of the present technology, the prescribed treatment settings include minimum and maximum pressure and a treatment mode, and the general treatment settings include humidity, RAMP, EPR, or a treatment mode (e.g., CPAP, APA, bi-level).
[0055] In another aspect of the present technology, receiving the interface, an account ID associated with the patient's account, and a serial number associated with the second respiratory treatment device through the interface further includes: displaying a code on a display of the first respiratory treatment device; requesting entry of the code on the interface; and, if the code is validated, receiving only the general settings and prescribed treatment settings.
[0056] In another aspect of the present technology, receiving the prescribed treatment settings further includes converting the prescribed treatment settings by a predetermined conversion factor based on differences between the first and second respiratory treatment devices.
[0057]
[0010] In accordance with another aspect of the present technology, a system includes: a prescription database with prescribed treatment settings, the prescribed treatment settings referenced to a patient account ID, the patient account ID including a unique identifier for each patient in the database in communication with a prescription server; a patient database in communication with a patient server including general patient data referenced to a set of patient account IDs; a first respiratory treatment device; an interface; a memory including a machine-readable medium, the machine-readable medium including machine-executable code having instructions stored thereon for performing a method; and a control system coupled to the memory including one or more processors, the control system configured to cause the control system to: configured to execute the machine-executable code to: receive input from the interface indicating that the patient wishes to port settings from a second respiratory treatment device; receive through the interface an account ID associated with the patient and a serial number associated with the second respiratory treatment device; and send a request to the patient server including the account ID and the serial number to retrieve prescribed treatment settings from the prescription server; if the serial number is validated, receive from the patient server prescribed treatment settings sent from the prescription server referenced for the prescription ID referenced for the account ID; and store the prescribed treatment settings in memory of the second respiratory treatment device.
[0058] A method according to another aspect of the present technology includes: receiving input from an interface indicating that a patient wishes to port prescribed treatment settings to a respiratory treatment device; receiving from the interface an account ID associated with the patient and a serial number associated with the respiratory treatment device; sending a request including the account ID and the serial number to a prescription server to retrieve prescribed treatment settings from the prescription server; if the serial number is validated, receiving from the prescription server prescribed treatment settings referenced for the account ID; and storing the prescribed treatment settings in a memory of the respiratory treatment device.
[0059] In another aspect of the present technology, storing the prescribed treatment settings in a memory of the respiratory treatment device further comprises storing the prescribed treatment settings for a single session of use. The method of claim 19, wherein storing the prescribed treatment settings in a memory of the respiratory treatment device further comprises storing the prescribed treatment settings for a single session of use.
[0060] In another aspect of the present technology, a single use session includes deleting the prescribed treatment settings in the memory of the respiratory treatment device after a particular time window has expired.
[0061] In another aspect of the present technology, a single use session includes deleting the prescribed treatment settings in the memory of the respiratory treatment device after the respiratory treatment device is powered off.
[0062] In another aspect of the present technology, a single use session includes deleting the prescribed treatment settings in the memory of the respiratory treatment device after 24 hours or deleting the prescribed treatment settings in the memory of the respiratory treatment device after notification that the patient has checked out of a partner hotel.
[0063] According to another aspect of the present technology, a method includes receiving at a prescription server from a patient computing device a request to port prescribed treatment settings to a respiratory treatment device, the request including an account ID associated with the patient and a serial number associated with the respiratory treatment device; querying a prescription database by the prescription server for the account ID and the serial number and retrieving a set of prescribed treatment settings from the prescription database; processing by the prescription server the serial number to determine whether the serial number is validly associated with the account ID; and, if the serial number is valid, transmitting the set of prescribed treatment settings referenced for the account ID to the respiratory treatment device.
[0064] According to another aspect of the present technology, a system includes: a prescription database with prescribed treatment settings, the prescribed treatment settings referenced to a patient account ID, the patient account ID including a unique identifier for each patient in the database, in communication with a prescription server; an interface; an input module that receives input from the interface indicating that a patient wishes to port settings from a first respiratory treatment device; a receiving interface module that receives through the interface an account ID associated with the patient and a hardware identifier of the first respiratory treatment device; a sending module that sends a request to the prescription server including the account ID and the hardware identifier to retrieve prescribed treatment settings from the prescription server; a receiving server module that receives from the prescription server prescribed treatment settings referenced to the account ID when the hardware identifier is validated; and a storage module that stores the prescribed treatment settings in a memory of the second respiratory treatment device.
[0065] According to another aspect of the present technology, a system includes: a prescription database with prescribed treatment settings, the prescribed treatment settings referenced to a patient account ID, the patient account ID containing a unique identifier for each patient in the database communicated with a prescription server; a patient database in communication with a patient server containing general patient data referenced to a set of patient account IDs; an interface; an input module that receives input from the interface indicating that a patient wishes to port settings from a second respiratory treatment device; a receiving interface module that receives through the interface an account ID associated with the patient and a serial number associated with the second respiratory treatment device; a sending module that sends a request to the patient server including the account ID and the serial number to retrieve prescribed treatment settings from the prescription server; a receiving server module that receives from the patient server prescribed treatment settings referenced to a prescription ID referenced to the account ID if the serial number is validated; and a storage module that stores the prescribed treatment settings in a memory of the second respiratory treatment device.
[0066] Another aspect of the present technology includes a computer program product comprising instructions that, when executed by a computer, cause the computer to perform the steps of the above-described method. [Brief explanation of the drawings]
[0067] 3 Brief description of the drawings The present technology is illustrated by way of example and not limitation in the accompanying drawings, in which like reference numerals include like elements: 3.1 Treatment System
[0068] [Figure 1A]A system is shown including a patient 1000 wearing a patient interface 3000, which takes the form of nasal pillows and receives air at positive pressure supplied by an RPT device 4000. The air from the RPT device 4000 is humidified by a humidifier 5000 and travels along an air circuit 4170 to the patient 1000. A bed companion 1100 is also shown. The patient is sleeping in a supine sleeping position.
[0069] [Figure 1B] A system is shown including a patient 1000 wearing a patient interface 3000, which takes the form of a nasal mask and receives air at positive pressure supplied by an RPT device 4000. The air from the RPT device is humidified by a humidifier 5000 and travels along an air circuit 4170 to the patient 1000.
[0070] [Figure 1C] 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 is humidified by a humidifier 5000 and travels along an air circuit 4170 to the patient 1000. The patient is sleeping in a lateral sleep position. 3.2 Respiratory System and Facial Anatomy
[0071] [Figure 2A] 3.3 Patient Interface
[0072] [Figure 3A] 3.4 RPT Device
[0073] [Figure 4A] 1 shows an RPT device in accordance with one form of the present technology.
[0074] [Figure 4B] 1 is a schematic diagram of an air circuit of an RPT device in accordance with one form of the present technology. Upstream and downstream directions are indicated relative to the blower and patient interface. Regardless of the actual flow direction at any particular moment, the blower is defined as being upstream of the patient interface, and the patient interface is defined as being downstream of the blower. Items located in the air pressure path between the blower and the patient interface are downstream of the blower and upstream of the patient interface.
[0075] [Figure 4C] FIG. 1 is a schematic diagram of electrical components of an RPT device in accordance with one form of the present technology.
[0076] [Figure 4D] FIG. 10 is a schematic diagram of an algorithm executed in an RPT device in accordance with one form of the present technology.
[0077] [Figure 4E] 4D in accordance with one aspect of the present technology.
[0078] [Figure 5A]
[0023] Fig. 10 shows an isometric view of a humidifier in accordance with one form of the present technology.
[0079] [Figure 5B] 5 shows 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. 3.6 Respiratory Waveforms
[0080] [Figure 6A] A model of a typical human respiratory waveform during sleep is shown. 3.7 Screening, Diagnostic, and Monitoring Systems
[0081] [Figure 7A]A patient undergoing polysomnography (PSG) is shown sleeping in a supine sleep position.
[0082] [Figure 7B] 3 shows a monitoring device for monitoring the condition of a patient. The patient is sleeping in a supine sleeping position. 3.8 Data Transmission
[0083] [Figure 8] 3.9 Treatment Settings Transfer
[0084] [Figure 9] 1 is a flowchart of an example of a method for storing prescribed treatment settings for a respiratory treatment device.
[0085] [Figure 10] FIG. 1 is a block diagram of a system for storing and updating prescribed treatment settings for a respiratory treatment device.
[0086] [Figure 11] 1 is a flowchart of an example method for storing and updating prescribed treatment settings for a respiratory treatment device. DETAILED DESCRIPTION OF THE INVENTION
[0087] 4 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.
[0088] The following description is provided in connection with various embodiments that may share one or more common characteristics and / or features. 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. 4.1 Treatment
[0089] In one form, the present technology includes a method of treating a respiratory disorder, the method including applying positive pressure to the entrance of the airways of a patient 1000.
[0090] In certain embodiments of the present technology, a supply of air at positive pressure is provided to the patient's nasal passages via one or both nostrils.
[0091] In certain embodiments of the present technology, mouth breathing is restricted, limited or prevented. 4.2 Treatment System
[0092] In one form, the present technology includes an apparatus or device for the treatment of respiratory disorders. The apparatus or device may include an RPT device 4000 that supplies compressed air to the patient 1000 via an air circuit 4170 to a patient interface 3000 or 3800. 4.3 Patient Interface
[0093] A non-invasive patient interface 3000 in accordance with one aspect of the present technology includes the following functional features: 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 features may be provided by one or more physical components. In some forms, a single physical component may provide one or more functional features. In use, the seal-forming structure 3100 is positioned to surround the entrance to the patient's airways to facilitate the delivery of air at positive pressure to the airways.
[0094] The non-sealing patient interface 3800 is in the form of a nasal cannula and includes nasal prongs 3810a and 3810b. The nasal prongs 3810a and 3810b may deliver air to each nostril of the patient 1000. Such nasal prongs often do not form a seal with the inner or outer skin surface of the nostrils. Air to the nasal prongs is delivered from one or more air supply lumens 3820a and 3820b, which are coupled to the nasal cannula 3800. The lumens 3820a and 3820b extend from the nasal cannula 3800, which in turn extends to an RT device that generates high flow rates of airflow. The non-sealing patient interface 3800 is provided with "vents" through which excess airflow can escape to the atmosphere. This "vent" is a passageway between the ends of prongs 3810a and 3810b of cannula 3800, which extends through the patient's nasal passages to the atmosphere.
[0095] If the patient interface cannot comfortably deliver a minimum level of positive pressure to the airway, the patient interface may be unsuitable for respiratory pressure therapy.
[0096] A patient interface 3000 in accordance with one form of the present technology is constructed and arranged to provide an air supply at a positive pressure of at least 6 cmH2O relative to ambient.
[0097] A patient interface 3000 in accordance with one form of the present technology is constructed and arranged to provide an air supply at a positive pressure of at least 10 cmH2O relative to ambient.
[0098] A patient interface 3000 in accordance with one form of the present technology is constructed and arranged to provide an air supply at a positive pressure of at least 20 cmH2O relative to ambient. 4.4 RPT Device
[0099] An RPT device 4000 according to one aspect of the present technology includes mechanical, pneumatic, and / or electrical components and is configured to execute one or more algorithms 4300 (e.g., any of the methods described herein, in whole or in part). The RPT device 4000 can be configured to generate an airflow that is delivered to a patient's airway for treatment of, for example, one or more of the respiratory conditions described anywhere herein.
[0100] In one form, the RPT device 4000 is constructed and arranged to deliver airflow in the range of -20 L / min to +150 L / min while maintaining a positive pressure of at least 6 cmH2O, or at least 10 cmH2O, or at least 20 cmH2O. 4.4.1 RPT Device Electrical Components 4.4.1.1 Power supply
[0101] The power supply 4210 may be located inside or outside the external housing 4010 of the RPT device 4000.
[0102] 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. 4.4.1.2 Input Devices
[0103] 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. In one form, the buttons, switches, or dials may be physically connected to the external housing 4010. Alternatively, the central controller 4230 may communicate wirelessly with a receiver electrically connected to the central controller 4230 in another form.
[0104] In one form, input device 4220 may be constructed and arranged to allow a human to select values and / or menu options. 4.4.1.3 Central Controller
[0105] In one form of the present technology, the central controller 4230 is one or more processors suitable for controlling the RPT device 4000.
[0106] 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.
[0107] In one form of the present technology, the central controller 4230 is a dedicated electronic circuit.
[0108] In one form, the central controller 4230 is an application specific integrated circuit. In another form, the central controller 4230 includes discrete electronic components.
[0109] The central controller 4230 may be configured to receive input signals from one or more transducers 4270, one or more input devices 4220 and the humidifier 5000.
[0110] 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 5000.
[0111] 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 on a non-transitory computer-readable storage medium such as the 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). 4.4.1.4 Clock
[0112] The RPT device 4000 may include a clock 4232 connected to the central controller 4230 . 4.4.1.5 Therapy Device Controller
[0113] 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.
[0114] In one form of the present technology, the therapy device controller 4240 includes a dedicated motor control integrated circuit For example, in one embodiment, the MC33035 brushless DC motor controller manufactured by ONSEMI is used. 4.4.1.6 Protection circuit
[0115] The one or more protection circuits 4250 according to the present technology may include electrical protection circuits, temperature and / or pressure safety circuits. 4.4.1.7 Memory
[0116] 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.
[0117] Memory 4260 may be located on PCBA 4202. Memory 4260 may take the form of EEPROM or NAND flash.
[0118] Additionally or alternatively, the RPT device 4000 includes removable memory 4260 (eg, a memory card made in accordance with the Secure Digital (SD) standard).
[0119] In one form of the present technology, the memory 4260 functions as a non-transitory computer-readable storage medium on which are recorded computer program instructions (e.g., one or more algorithms 4300) embodying one or more of the methods described herein. 4.4.1.8 Data communication systems
[0120] 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 and / or a local external communications network 4284. 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.
[0121] 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.
[0122] 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.
[0123] In one form, the local external communications network 4284 uses one or more communications standards (eg, Bluetooth or Consumer Infrared Protocol).
[0124] 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).
[0125] The local external device 4288 may be a personal computer, a cell phone, a tablet or a remote control. 4.4.1.9 Optional displays and output devices, including alarms
[0126] 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. 4.4.1.9.1 Display Driver
[0127] 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. 4.4.1.9.2 Display
[0128] 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. 4.4.2 RPT Device Algorithm
[0129] As noted above, in some forms of the present technology, the central controller 4230 may be configured to implement one or more algorithms 4300 expressed as a computer program stored in a non-transitory computer-readable storage medium (e.g., memory 4260). The algorithms 4300 are typically grouped into groups called modules. 4.4.2.1 Pre-processing module
[0130] 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).
[0131] In one form of the present technology, the output values include interface pressure Pm, respiratory flow Qr and leak flow Ql.
[0132] In various forms of the present technology, the pre-processing module 4310 includes one or more of the following algorithms: interface pressure estimation 4312, ventilation flow estimation 4314, leak flow estimation 4316, and respiratory flow estimation 4318. 4.4.2.1.1 Interface Pressure Estimation
[0133] In one form of the present technology, an interface pressure estimation algorithm 4312 receives as an input from a pressure sensor 4272 a signal indicative of the pressure in the pneumatic path near the outlet of the pneumatic block (device pressure Pd) and as an input from a flow sensor 4274 a signal indicative of the flow rate of the airflow exiting the RPT device 4000 (device flow Qd). The device flow Qd, which does not include any auxiliary gas 4180, may be used as the total flow Qt. The interface pressure estimation algorithm 4312 estimates the pressure drop ΔP through the air circuit 4170. The dependency of the pressure drop ΔP on the total flow Qt may be modeled for a particular air circuit 4170 by a pressure drop characteristic ΔP(Q). The interface pressure estimation algorithm 4312 then provides as an output the estimated pressure Pm in the patient interface 3000 or 3800. The pressure Pm in the patient interface 3000 or 3800 may be estimated as the device pressure Pd minus the air circuit pressure drop ΔP. 4.4.2.1.2 Estimation of ventilation flow rate
[0134] In one form of the present technology, an airflow estimation algorithm 4314 receives as input the estimated pressure Pm in the patient interface 3000 or 3800 from the interface pressure estimation algorithm 4312 and estimates the airflow Qv of air through the vent 3400 in the patient interface 3000 or 3800. The usage dependency of the airflow Qv on the interface pressure Pm at a particular vent 3400 may be modeled by an airflow characteristic Qv(Pm). 4.4.2.1.3 Estimation of leakage flow rate
[0135] 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 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).
[0136] 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 or 3800 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 square root of the pressure Pm and the quotient of the low-pass filtered non-ventilated flow equal to the difference between the total flow Qt and the ventilation flow Qv, 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. 4.4.2.1.4 Respiratory flow estimation
[0137] 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 leak flow Ql from the total flow Qt. 4.4.2.2 Treatment Engine Module
[0138] In one form of the present technology, the therapy engine module 4320 receives as inputs one or more of the pressure Pm in the patient interface 3000 or 3800 and the respiratory flow of air Qr to the patient and provides one or more therapy parameters as outputs.
[0139] In one form of the present technology, the treatment parameter is a treatment pressure, Pt.
[0140] In one form of the present technology, the treatment parameters are one or more of the amplitude of pressure change, base pressure, and target ventilation.
[0141] 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 determination 4324, apnea / hypopnea determination 4325, snoring determination 4326, airway patency determination 4327, target ventilation determination 4328, and therapy parameter determination 4329. 4.4.2.2.1 Phase Determination
[0142] In one form of the present technology, the RPT device 4000 does not determine the phase.
[0143] 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.
[0144] 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 inspiration or expiration. This value is represented, for example, as 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 and cycle points are the instants at which the phase changes from inspiration 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 (thereby "triggers" the RPT device 4000) when respiratory flow Qr has a value greater than a positive threshold, and a discrete value of 0.5 revolutions (thereby "cycles" the RPT device 4000) when respiratory flow Qr has a value greater than a negative threshold. The inspiration time Ti and expiration time Te may be typical values estimated over many respiratory cycles of the time spent with phase Φ equal to 0 (indicating inspiration) and 0.5 (indicating expiration), respectively.
[0145] Another implementation of the discrete phase determination provides a three-valued phase output Φ with one of the following values: inspiration, pause during inspiration, and expiration.
[0146] 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 continuous value of phase Φ is determined using fuzzy logic analysis of the respiratory flow Qr. The continuous value of phase implemented in this implementation is often referred to as the "fuzzy phase." In one implementation of the fuzzy phase determination algorithm 4321, the following rules are applied to the respiratory flow Qr: 1. If respiratory flow drops to zero and then increases rapidly, the phase is 0 revolutions. 2. If respiratory flow is large and positive and stable, the phase is 0.25 revolutions. 3. If respiratory flow is zero and then falls rapidly, the phase is 0.5 revolutions. 4. If respiratory flow is large and stable, the phase is 0.75 revolutions. 5. If respiratory flow is zero and stable and the 5 second low pass filtered absolute value of respiratory flow is large, the phase is 0.9 revolutions. 6. If respiratory flow is positive and the phase is exhalation, the phase is 0 revolutions. 7. Respiratory flow is negative, phase is inspiration, phase is 0.5 revolutions. 8. If the 5 second low-pass filtered absolute value of respiratory flow is large, the phase increases at a constant rate equal to the patient's respiratory rate low-pass filtered by a 20 second time constant.
[0147] The output of each rule can be represented as a vector whose phase is the result of the rule and whose magnitude is the fuzzy range for which the rule is true. The fuzzy range for respiratory flow, such as "high" or "stable," is determined by an appropriate membership function. The results of the rules are represented as vectors and then combined by some function, such as taking the centroid. In such combinations, the rules may be weighted equally or differently.
[0148] In another implementation of continuous phase determination, phase Φ, like inspiration time Ti and expiration time Te, is first estimated separately from respiratory flow Qr as described above. Continuous phase Φ at any instant in time 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). 4.4.2.2.2 Waveform determination
[0149] In one form of the present technology, the therapy parameter determination algorithm 4329 provides a nearly constant therapy pressure throughout the patient's respiratory cycle.
[0150] In another form of the present technology, the therapy control module 4330 controls the pressure generator 4140 to provide a therapy pressure Pt that varies as a function of the phase Φ of the patient's respiratory cycle according to a waveform template Π(Φ).
[0151] 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 treatment parameter determination algorithm 4329.
[0152] In one embodiment, suitable for a discrete or continuous phase, 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 embodiment, suitable for a continuous phase, 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). In one embodiment, suitable for a continuous phase, the waveform template Π(Φ) is based on a square wave, but has a smooth rise from 0 to 1 for phase values up to a "rise time" below 0.5 revolutions, and a smooth fall from 1 to 0 for phase values within a "fall time" after 0.5 revolutions, with a "fall time" below 0.5 revolutions.
[0153] 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. 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., the time constant of an exponential curve portion). The parameters of the functional form may be predetermined or may depend on the current state of the patient 1000.
[0154] 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: JPEG2025160286000002.jpg1983
[0155] where Πi(t) and Πe(t) are the inspiratory and expiratory portions of the waveform template Π(Φ,t). In one such form, the inspiratory portion of the waveform template Πi(t) is a smooth rise from 0 to 1 parameterized by the rise time, and the expiratory portion of the waveform template Πe(t) is a smooth fall from 1 to 0 parameterized by the fall time. 4.4.2.2.3 Ventilation determination
[0156] In one form of the present technology, a ventilation determination algorithm 4323 receives respiratory flow Qr as an input and determines a measurement indicative of the current patient ventilation Vent.
[0157] In some implementations, the ventilation determination algorithm 4323 determines a measure of ventilation, Vent, that is an estimate of the actual patient ventilation. One such implementation may take half the absolute value of the respiratory flow, Qr, which is optionally filtered by a low pass filter (e.g., a second order Bessel low pass filter with a corner frequency of 0.11 Hz).
[0158] In other embodiments, the ventilation determination algorithm 4323 determines a measurement of ventilation Vent that is highly proportional to the actual patient ventilation. In one such embodiment, the peak respiratory flow rate Qpeak is estimated during the inspiratory portion of the cycle. Through the above and many other procedures including sampling of the respiratory flow rate Qr, a measurement highly proportional to ventilation is obtained, where the variation in the flow waveform shape is not very large (where the shapes of two breaths are taken to be similar when the flow waveforms of the breaths normalized in time and amplitude are similar). To give some simple examples, there are the median of the positive respiratory flow rates, the median of the absolute values of the respiratory flow rates, and the standard deviation of the flow rates. Any linear combination of any order statistics of the absolute values of the respiratory flow rates using positive coefficients (and even some using both positive and negative coefficients) is approximately proportional to ventilation. As another example, it is the average of the respiratory flow rates at the central K-th percentage (with respect to time) of the inspiratory portion, where 0 < K < 1. When the flow shape is constant, there are any number of measurements that are highly proportional to ventilation. 4.4.2.2.4 Determination of Inspiratory Flow Limitation
[0159] In one form of the present technology, the central controller 4230 executes an inspiratory flow limitation determination algorithm 4324 for determining the range of inspiratory flow limitation.
[0160] In one form, the inspiratory flow limitation determination algorithm 4324 receives the respiratory flow rate signal Qr as an input and provides as an output a measure of the range in which the inspiratory portion of the breath indicates an inspiratory flow limitation.
[0161] In one form of the present technology, the inspiration portion of each breath is identified by a zero-crossing detector. A number of evenly spaced points (e.g., 65) representing time points are interpolated by an interpolator along the inspiration flow-time curve for each breath. The curve described by these points is then scaled to have unit length (duration / period) and unit area by a scaler, thereby eliminating the effects of changes in breathing rate and depth. The scaled breath is then compared in a comparator to a pre-stored template (similar to the inspiration portion of the breath shown in FIG. 6A) representing a normal, unobstructed breath. If, at any time during inspiration, the breath deviates from this template due to, for example, coughing, exhaling, swallowing, and hiccuping, as determined by a test element, beyond a specified threshold (typically one scale unit), the breath is rejected. For data without rejection, a running average of the first such scaled point is calculated by the central controller 4230 for several preceding inspiration events. This is repeated for the second such point over the same inspiration event, and so on. Thus, for example, 65 scaled data points may be generated by the central controller 4230 to represent a moving average of several preceding inspiratory events (e.g., three events). Hereinafter, this moving average of continuously updated (e.g., 65) point values will be referred to as the "scaled flow rate" and denoted by Qs(t). Alternatively, a single inspiratory event may be used instead of the moving average.
[0162] From the scaled flow rate, two geometric factors relevant to determining partial occlusion can be calculated.
[0163] Form factor 1 is the ratio of the mean of the median (e.g., 32) scaled flow points to the mean of the global (e.g., 65) scaled flow points. If this ratio exceeds 1, the breath is considered normal. If this ratio is less than 1, the breath is considered obstructed. A ratio of approximately 1.17 is considered the threshold between partially obstructed and unobstructed breathing, and equates to a level of obstruction that allows for the maintenance of adequate oxygenation in a typical patient.
[0164] Shape factor 2 is calculated as the mean square deviation from unit scaled flow over the mean (e.g., 32) points. A mean square deviation of approximately 0.2 units is considered normal. A mean square deviation of zero is considered a totally flow-limited breath. The closer the mean square deviation is to zero, the more the breath is considered to be flow-limited.
[0165] Shape elements 1 and 2 may be used alternatively or in combination. In other forms of the present technology, the number of sampled points, breaths, and midpoints may be different from those described above. Additionally, the thresholds may also be different from those described above. 4.4.2.2.5 Apnea and Hypopnea Determination
[0166] In one form of the present technology, the central controller 4230 executes an apnea / hypopnea determination algorithm 4325 for determining the presence of apneas and / or hypopneas.
[0167] In one form, the apnea / hypopnea detection algorithm 4325 receives as an input the respiratory flow signal Qr and provides as an output a flag indicating whether an apnea or hypopnea has been detected.
[0168] In one form, apnea is detected when a function of respiratory flow Qr falls below a flow threshold for a predetermined period of time. This function may determine peak flow, a relatively short-term average flow, or a flow intermediate between the relatively short-term average and peak flow (e.g., RMS flow). The flow threshold may be a relatively long-term measurement of flow.
[0169] In one form, hypopnea is detected when a function of respiratory flow Qr falls below a second flow threshold for a predetermined period of time. This function may determine peak flow, a relatively short-term average flow, or a flow intermediate between the relatively short-term average and peak flow (e.g., RMS flow). The second flow threshold may be a relatively long-term measurement of flow. The second flow threshold is higher than the flow threshold used to detect apnea. 4.4.2.2.6 Snoring Determination
[0170] In one form of the present technology, a central controller 4230 executes one or more snore determination algorithms 4326 for determining the snore range.
[0171] In one form, the snore detection algorithm 4326 receives as an input the respiratory flow signal Qr and provides as an output a measure of the extent to which snoring is present.
[0172] The snore detection algorithm 4326 may include determining the strength of the flow signal within the range of 30-300 Hz. Additionally, the snore determination algorithm 4326 may include filtering the respiratory flow signal Qr to reduce background noise (e.g., airflow noise in the system from the blower). 4.4.2.2.7 Determining Airway Patency
[0173] In one form of the present technology, the central controller 4230 executes one or more airway patency determination algorithms 4327 for determining the extent of airway patency.
[0174] In one form, the airway patency determination algorithm 4327 receives as input the respiratory flow signal Qr and determines the output of the signal within a frequency range of about 0.75 Hz to about 3 Hz. The presence of a peak within this frequency range is taken as indicative of an airway patency. The absence of a peak is taken as an indication of an airway closure.
[0175] In one embodiment, the frequency range in which the peak is sought is the frequency range of a small forced oscillation at the therapeutic pressure Pt. In one embodiment, the forced oscillation is at a frequency of 2 Hz with an amplitude of approximately 1 cmH2O.
[0176] In one form, the airway patency determination algorithm 4327 receives the respiratory flow signal Qr as an input and determines the presence or absence of a cardiogenic signal, the absence of which is taken as an indication of airway obstruction. 4.4.2.2.8 Determining target ventilation
[0177] In one form of the present technology, the central controller 4230 takes as input a measurement of the current ventilation, Vent, and executes one or more target ventilation determination algorithms 4328 for the determination of a target value, Vtgt, for the ventilation measurement.
[0178] In some forms of the present technology, there is no target ventilation determination algorithm 4328 and the target value Vtgt is predetermined, for example obtained by hard coding during configuration of the RPT device 4000 or by manual entry via the input device 4220.
[0179] In other forms of the present technology, such as adaptive servo ventilation (ASV), the target ventilation determination algorithm 4328 calculates a target value Vtgt from a value Vtyp indicative of the patient's typical recent ventilation.
[0180] In some forms of adaptive servo-ventilation, the target ventilation Vtgt is calculated as a high percentage and less than the typical recent ventilation Vtyp. The high percentage in such forms can be in the range (80%, 100%), or (85%, 95%), or (87%, 92%).
[0181] In other forms of adaptive servo-ventilation, the target ventilation, Vtgt, is calculated as a value slightly greater than one multiple of the typical recent ventilation, Vtyp.
[0182] Typical recent ventilation Vtyp is a value that current ventilation Vent measurements over multiple time instants over some predetermined time scale tend to be close together (i.e., a measure of the central tendency of current ventilation measurements in recent history). In one implementation of the target ventilation determination algorithm 4328, the recent history is on the order of minutes, but in any case should be longer than the time scale of the Cheyne-Stokes ramp-up and ramp-down cycles. The target ventilation determination algorithm 4328 may determine typical recent ventilation Vtyp from current ventilation Vent measurements using any of a variety of well-known measures of central tendency. One such measure is the output of a low-pass filter on current ventilation Vent measurements, with a time constant equal to 100 seconds. 4.4.2.2.9 Determination of treatment parameters
[0183] 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.
[0184] 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 using the following equation: JPEG2025160286000003.jpg1060 (1)
[0185] where: ● A is the amplitude, ● Π(Φ,t) is the waveform template value (ranging from 0 to 1) at the current value of phase Φ and time t; ● P0 is the base pressure.
[0186] If the waveform determination algorithm 4322 provides the waveform template Π(Φ) as a lookup table of values Π indexed by the phase Φ, 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 between two entries that span the current value Φ of the phase.
[0187] The values of amplitude A and base pressure P0 may be set by the treatment parameter determination algorithm 4329 depending on the selected respiratory pressure treatment mode. 4.4.2.3 Treatment Control Module
[0188] 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.
[0189] In one form of the present technology, the treatment parameter is a treatment pressure Pt, and the treatment control module 4330 controls the pressure generator 4140 to deliver an airflow such that the interface pressure Pm at the patient interface 3000 or 3800 is equal to the treatment pressure Pt. 4.4.2.4 Detecting Fault Conditions
[0190] In one form of the present technology, the central controller 4230 executes one or more methods 4340 for detecting a fault condition. The fault condition detected by the one or more methods 4340 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 outside the recommended range (e.g., pressure, flow, temperature, PaO2) ● Failure of test alarms to generate a detectable warning signal.
[0191] When a fault condition is detected, the corresponding algorithm 4340 signal the presence of the fault by one or more of the following: ● Initiation of audible, visual and / or kinetic (e.g., vibration) warnings. ● Sending messages to external devices Incident logging 4.5 Air Circuit
[0192] The air circuit 4170 according to one aspect of the present technology is a conduit or tube constructed and arranged such that, in use, air flow travels between two components (e.g., the RPT device 4000 and the patient interface 3000 or 3800). 4.6 Humidifier 4.6.1 Humidifier Overview
[0193] 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.
[0194] 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. 4.6.2 Humidifier Components 4.6.2.1 Heating elements
[0195] In some cases, a heating element 5240 may be provided to the humidifier 5000 to provide heat input to one or more of the volume of water in the humidifier reservoir 5110 and / or the volume of water to the airflow. The heating element 5240 may include a heat-generating component such as an electrical resistance heating track. One suitable example of the heating element 5240 is a layered heating element, for example, as described in PCT Patent Application Publication No. WO2012 / 171072, the entirety of which is incorporated herein by reference.
[0196] In some forms, the heating element 5240 may be provided in the humidifier base 5006. In the humidifier base 5006, heat may be transferred to the humidifier reservoir 5110 primarily by conduction, as shown in Figure 5B. 4.6.2.2 Humidifier Controller
[0197] According to one arrangement of the present technology, the humidifier 5000 may include a humidifier controller 5250 as shown in FIG. 5C. In one form, the humidifier controller 5250 may be part of the central controller 4230. In another form, the humidifier controller 5250 may be a separate controller that may communicate with the central controller 4230.
[0198] In one form, the humidifier controller 5250 may receive measurements of properties (e.g., temperature, humidity, pressure, and / or flow rate) as inputs (e.g., measurements of airflow, water in the reservoir 5110 and / or in the humidifier 5000). The humidifier controller 5250 may also be configured to run or implement a humidifier algorithm and / or deliver one or more output signals.
[0199] As shown in FIG. 5C, the humidifier controller 5250 may include one or more controllers (e.g., a central humidifier controller 5251, a heated air circuit controller 5254 configured to control the temperature of the heated air circuit 4171, and / or a heating element controller 5252 configured to control the temperature of the heating element 5240). 4.7 Respiratory waveform
[0200] Figure 6A shows a model of a typical human respiratory waveform during sleep. The horizontal axis is time, and the vertical axis is respiratory flow. Because parameter values can vary, a typical breath may have the following approximate values: tidal volume, Vt, 0.5 L; inspiratory time, Ti, 1.6 seconds; peak inspiratory flow, Qpeak, 0.4 L / sec; expiratory time, Te, 2.4 seconds; peak expiratory flow, Qpeak, -0.5 L / sec. The total duration of the breath, Ttot, is approximately 4 seconds. Humans typically breathe at approximately 15 breaths per minute (BPM), with a ventilation, Vent, of approximately 7.5 L / min. A typical duty cycle, the ratio of Ti to Ttot, is approximately 40%. 4.8 Screening, diagnostic and surveillance systems 4.8.1 Polysomnography
[0201] 7A shows a patient 1000 undergoing polysomnography (PSG). The PSG system includes a headbox 2000. The headbox 2000 receives and records signals from the following sensors: EOG electrodes 2015, EEG electrodes 2020, ECG electrodes 2025, submental EMG electrodes 2030, a snoring sensor 2035, a respiratory inductance plethysmogram (respiratory effort sensor) 2040 on a chest cuff, a respiratory inductance plethysmogram (respiratory effort sensor) 2045 on an abdominal cuff, an oronasal cannula with oral thermistor 2050, a photoplethysmograph (pulse oximeter) 2055, and a body position sensor 2060. The electrical signal is referred to the ground electrode (ISOG) 2010, which is positioned at the center of the forehead. 4.8.2 Non-obstructive monitoring systems
[0202] An example of a monitoring device 7100 for monitoring the breathing of a sleeping patient 1000 is shown in Figure 7B. The monitoring device 7100 includes a non-contact motion sensor directed primarily towards the patient 1000. The motion sensor is configured to generate one or more signals indicative of the body movements of the patient 1000. From these signals, a signal indicative of the patient's respiratory movements can be derived. 4.8.3 Respiratory polygraphy
[0203] Respiratory polygraphy (RPG) is a term that refers to a simple form of PSG that does not use electrical signals (EOG, EEG, EMG), snoring, or body position sensors. RPG includes at least the following: a chest movement signal from a respiratory inductance plethysmogram (motion sensor) on a chest band (e.g., motion sensor 2040), a nasal pressure signal sensed via a nasal cannula, and an oxygen saturation signal from a pulse oximeter (e.g., pulse oximeter 2055). These three RPG signals or channels are received by an RPG headbox, which is similar to PSG headbox 2000.
[0204] In certain configurations, the nasal pressure signal is similar in shape to the nasal flow signal and is therefore a good proxy for the nasal flow signal generated by a flow transducer in wired connection with a sealed nasal mask. As a result, when the patient's mouth remains closed (i.e., there is no mouth leakage), the nasal flow rate will be equal to the respiratory flow rate. 4.9 Respiratory Therapy Mode
[0205] A variety of respiratory therapy modes can be performed by the RPT device 4000. 4.9.1 CPAP treatment
[0206] In some implementations of respiratory pressure therapy, the central controller 4230 sets the therapy pressure Pt according to the therapy pressure equation (1) as part of the therapy parameter determination algorithm 4329. In some such implementations, the amplitude A is equal to zero, so that the therapy pressure Pt (representing the target value achieved by the interface pressure Pm at the current instant in time) is 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 to determine the phase Φ or waveform template Π(Φ) is not required.
[0207] In CPAP therapy, the base pressure P0 may be a constant value, hard-coded or manually entered into the RPT device 4000. The central controller 4230 may iteratively calculate the base pressure P0 as a function of sleep disorder breathing indicators or measurements (e.g., one or more of flow limitation, apnea, hypopnea, patency, and snoring) returned from each algorithm in the therapy engine module 4320. This alternative is also referred to as APAP therapy.
[0208] 4E is a flow chart illustrating a method 4500 executed by the central controller 4230. In the method 4500, when the pressure support A is equal to zero, the base pressure P0 is continuously calculated as part of the APAP therapy implementation of the therapy parameter determination algorithm 4329.
[0209] Method 4500 begins at step 4520. In step 4520, the central controller 4230 compares the measurement of the presence of apnea / hypopnea to a first threshold to determine whether the measurement of the presence of apnea / hypopnea exceeds the first threshold for a predetermined period of time (indicating an occurrence of apnea / hypopnea). If the measurement of the presence of apnea / hypopnea exceeds the first threshold for the predetermined period of time, method 4500 proceeds to step 4540; if the measurement of the presence of apnea / hypopnea does not exceed the first threshold for the predetermined period of time, method 4500 proceeds to step 4530. In step 4540, the central controller 4230 compares the measurement of airway patency to a second threshold. If the measurement of airway patency exceeds the second threshold, indicating a patent airway, the detected apnea / hypopnea is considered central, and method 4500 proceeds to step 4560. If the measure of airway patency does not exceed the second threshold, the apnea / hypopnea is deemed obstructive and method 4500 proceeds to step 4550 .
[0210] In step 4530, the central controller 4230 compares the measure of flow limitation to a third threshold. If the measure of flow limitation exceeds the third threshold, it indicates that the inspiratory flow is limited. In that case, the method 4500 proceeds to step 4550. If the measure of flow limitation does not exceed the third threshold, the method 4500 proceeds to step 4560.
[0211] In step 4550, if the resulting therapeutic pressure Pt does not exceed the maximum therapeutic pressure Pmax, the central controller 4230 increases the base pressure P0 by a predetermined pressure increment ΔP. In one implementation, the predetermined pressure increment ΔP and the maximum therapeutic pressure Pmax are 1 cmH2O and 25 cmH2O, respectively. In another implementation, the pressure increment ΔP can be as low as 0.1 cmH2O and as high as 3 cmH2O, or as low as 0.5 cmH2O and as high as 2 cmH2O. In other implementations, the maximum therapeutic pressure Pmax can be as low as 15 cmH2O and as high as 35 cmH2O, or as low as 20 cmH2O and as high as 30 cmH2O. The method 4500 then returns to step 4520.
[0212] In step 4560, if the reduced base pressure P is not below the minimum therapeutic pressure P, the central controller 4230 reduces the base pressure P by a decrement. The method 4500 then returns to step 4520. In one implementation, the decrement is proportional to the value of P minus P, so that in the absence of a detected event, the reduction of P to the minimum therapeutic pressure P is exponential. In one implementation, the proportionality constant is set so that the time constant τ of the exponential reduction of P is 60 minutes and the minimum therapeutic pressure P is 4 cmH2O. In other implementations, the time constant τ can be as short as 1 minute and as long as 300 minutes, or as short as 5 minutes and as long as 180 minutes. In other implementations, the minimum therapeutic pressure P can be as low as 0 cmH2O and as high as 8 cmH2O, or as low as 2 cmH2O and as high as 6 cmH2O. Alternatively, the decrement of P0 may be predetermined such that the decrease of P0 to the minimum therapeutic pressure Pmin is linear in the absence of a detected event. 4.9.2 Bilevel therapy
[0213] In other implementations of this form of the present technology, the value of the amplitude A in equation (1) can be positive. Such implementation is known as bilevel therapy because when the treatment pressure Pt is determined using equation (1) with a positive amplitude A, the treatment parameter determination algorithm 4329 oscillates the treatment pressure Pt between two values or levels in synchronization with the patient's 1000 spontaneous breathing efforts. That is, based on the exemplary waveform template Π(Φ,t) described above, the treatment parameter determination algorithm 4329 increases the treatment pressure Pt to P0+A (known as IPAP) at the beginning of or during inspiration and decreases the treatment pressure Pt to the base pressure P0 (known as EPAP) at the beginning of or during expiration.
[0214] In some forms of bilevel therapy, IPAP is the same therapeutic pressure as in CPAP therapy, and EPAP is IPAP minus amplitude A, a "small" value (a few cmH2O) also known as expiratory pressure release (EPR). This form is also known as EPR-assisted CPAP therapy and is generally considered more comfortable than direct CPAP therapy. For EPR-assisted CPAP therapy, either or both of IPAP and EPAP may be constant values, hard-coded or manually entered into the RPT device 4000. Alternatively, the therapy parameter determination algorithm 4329 may iteratively calculate IPAP and / or EPAP during EPR-assisted CPAP. In this alternative, the therapy parameter determination algorithm 4329 iteratively calculates EPAP and / or IPAP as a function of sleep disorder breathing indicators or measurements returned from the respective algorithms in the therapy engine module 4320. This is done similarly to the calculation of base pressure P0 in APAP therapy, as described above.
[0215] In other forms of bilevel therapy, the amplitude A is large enough that the RPT device 4000 performs some or all of the breathing work for the patient 1000. In this form, known as pressure support ventilation therapy, the amplitude A is referred to as pressure support or swing. In pressure support ventilation therapy, IPAP is the base pressure P0 plus pressure support A, and EPAP is the base pressure P0.
[0216] In some forms of pressure support ventilation therapy, known as constant pressure support ventilation therapy, the pressure support A is fixed at a predetermined value (e.g., 10 cmH2O). The predetermined pressure support value is a setting of the RPT device 4000 and may be set, for example, by hard-coded during configuration of the RPT device 4000 or by manual entry via the input device 4220.
[0217] In another form of pressure support ventilation therapy, broadly known as servo ventilation, the therapy parameter determination algorithm 4329 takes as inputs certain currently measured or estimated parameters of the respiratory cycle (e.g., the current measurement of ventilation, Vent) and a target value for that respiratory parameter (e.g., the target value of ventilation, Vtgt), and continuously adjusts the parameters of equation (1) to bring the current measurement of the respiratory parameter closer to the target value. In a form of servo-ventilation used in CSR therapy known as adaptive servo ventilation (ASV), the respiratory parameter is ventilation, and the target ventilation, Vtgt, is calculated by the target ventilation determination algorithm 4328 from a typical recent ventilation, Vtyp, as described above.
[0218] In some forms of servo-ventilation, the therapy parameter determination algorithm 4329 applies a control method that iteratively calculates pressure support A to drive the current measurement of the respiratory parameter towards a target value. One such control method is proportional-integral (PI) control. In one implementation of PI control suitable for ASV mode, where the target ventilation Vtgt is set to be slightly lower than the typical recent ventilation Vtyp, pressure support A is iteratively calculated as follows: JPEG2025160286000004.jpg1478 (2)
[0219] where G is the gain of the PI control. Larger values of gain G may result in positive feedback in the therapy engine module 4320. Smaller values of gain G may result in some residual untreated CSR or central sleep apnea. In some embodiments, gain G is fixed at a predetermined value (e.g., −0.4 cmH2O / (L / min) / sec). Alternatively, gain G may be varied between treatment sessions (starting at a low value and increasing between sessions) until a value is reached that substantially eliminates CSR. Conventional means for retrospectively analyzing treatment session parameters to assess the severity of CSR during a treatment session may be used in such embodiments. In yet other embodiments, gain G may vary depending on the difference between the current measured ventilation, Vent, and the target ventilation, Vtgt.
[0220] Other servo-ventilation control methods that may be applied by the therapy parameter determination algorithm 4329 include proportional (P), proportional differential (PD), and proportional integral differential (PID).
[0221] The value of pressure support A calculated via equation (2) may be clipped to a range defined as [Amin, Amax]. In this embodiment, pressure support A defaults to minimum pressure support Amin until the current ventilation, Vent, is measured below the target ventilation, Vtgt. At that point, A begins to increase, decreasing to Amin only if Vent again exceeds Vtgt.
[0222] The pressure support limits Amin and Amax are settings of the RPT device 4000 and are set, for example, by hard-coded or manual entry through the input device 4220 when the RPT device 4000 is configured.
[0223] In pressure support ventilation therapy mode, EPAP is the base pressure P0. Similar to the base pressure P0 in CPAP therapy, EPAP can be a constant value, defined or determined during titration. Such a constant EPAP can be hard-coded during configuration of the RPT device 4000 or manually entered through the input device 4220. This alternative is also referred to as fixed EPAP pressure support ventilation therapy. Titration of the EPAP for a given patient can be performed by a clinician during a titration session using PSG for the purpose of preventing obstructive apnea, thereby maintaining an open airway for pressure support ventilation therapy in a manner similar to titration of the base pressure P0 in constant CPAP therapy.
[0224] Alternatively, the therapy parameter determination algorithm 4329 may iteratively calculate a base pressure P0 during pressure support ventilation therapy. In such an embodiment, the therapy parameter determination algorithm 4329 iteratively calculates EPAP as a function of sleep disordered breathing indicators or measurements (e.g., one or more of flow limitation, apnea, hypopnea, patency, and snoring) returned from each algorithm in the therapy engine module 4320. Because the continuous calculation of EPAP is similar to a clinician's manual adjustment of EPAP during EPAP titration, this process is also referred to as auto-titration of EPAP, and the therapy mode is known as auto-titration EPAP pressure support ventilation therapy or automatic EPAP pressure support ventilation therapy. 4.9.3 High flow treatment
[0225] In other forms of respiratory therapy, the pressure of the airflow is not controlled as it is used for respiratory pressure therapy. That is, the central controller 4230 controls the pressure generator 4140 to deliver an airflow (where the device flow Qd is controlled to be the therapeutic or target flow Qtgt). Such forms are primarily grouped under the heading of flow therapy. In flow therapy, the therapeutic flow Qtgt may be a constant value, hard-coded or manually entered into the RPT device 4000. When the therapeutic flow Qtgt is sufficient to exceed the patient's peak inspiratory flow, the therapy is primarily referred to as high flow therapy (HFT). Alternatively, the therapeutic flow may be a profile Qtgt(t) that varies over the respiratory cycle. 4.10 Data Transmission
[0226] FIG. 8 shows a block diagram illustrating one implementation of an RPT system according to the present technology. The RPT system includes an RPT device 4000 configured to provide respiratory pressure therapy to a patient 1000, a data server 7100, and a patient computing device 7050 associated with the patient 1000. The patient computing device 7050 may be co-located with the patient 1000 and the RPT device 4000. In the implementation shown in FIG. 8, the RPT device 4000, the patient computing device 7050, and the data server 7100 are connected to a wide area network 7090 (e.g., the Internet, an intranet, the cloud, or the Internet). The connection to the network may be wired or wireless. The network may be identified with the remote external communications network 4282 in FIG. 4C, and the data server 7100 may be identified with the remote external device 4286 in FIG. 4C. The patient computing device 7050 may be a personal computer, a mobile phone, a tablet computer, or other device. The patient computing device 7050 is configured to interface between the patient 1000 and the data server 7100 over a wide area network 7090. In one implementation, this intermediation is performed by a software application program 7060 executing on the patient computing device 7050. The patient program 7060 may be a dedicated application called a "patient application" that interacts with a complementary process hosted by the data server 7100. In another implementation, the patient program 7060 is a web browser that interacts with a secure portal through a website hosted by the data server 7100. In yet another implementation, the patient program 7060 is an email client.
[0227] In another example, the RPT device 4000 communicates with the patient computing device 7050 via a local (wired or wireless) communication protocol (e.g., a local network protocol (e.g., Bluetooth®)). In an alternative implementation, the local network may be identified with the local external communication network 4284 of FIG. 4C and the patient computing device 7050 may be identified with the local external device 4288 of FIG. 4C. In an alternative implementation, the patient computing device 7050 is configured via the patient program 7060 to mediate between the patient 1000 and the data server 7100 via the network 7090, and between the RPT device 4000 and the data server 7100 via the network 7090.
[0228] The RPT system may include other RPT devices (not shown) associated with each patient that also has an associated computing device. Additionally, the RPT system 7000 may include other monitoring or treatment devices that may interface with the controller 4230 or patient computing device 7050. All patients in the RPT system 7000 are managed by the data server 7100.
[0229] The RPT device 4000 is configured to store the therapy data delivered to the patient 1000 from each RPT session in memory 4260. The therapy data for an RPT session includes settings of the RPT device 4000 and therapy variable data indicating one or more variables of the respiratory pressure therapy throughout the RPT session.
[0230] The data server 7100 may also be configured to receive data from the patient computing device 7050. Such may include data entered by the patient 1000 into the patient program 7060 or treatment / usage data in the alternative implementation 7000B described above.
[0231] The data server 7100 is also configured to send electronic messages to the patient computing device 7050. These messages may take the form of detailed emails, SMS messages, automated voice messages or notifications within the patient program 7060.
[0232] The RPT device 4000 may be configured to be alerted about its therapy mode or settings for a particular therapy mode when a corresponding command is received over its wide area network connection or local area network connection. In such an implementation, the data server 7100 may be configured to send such commands directly to the RPT device 4000 (in implementation 7000) or indirectly to the RPT device 4000 for relay via the patient computing device 7050 (in implementation 7000B).
[0233] The server 7100 and database 7200 may be a single server and database combination or may include multiple combinations of servers 7100 and databases 7200 at different locations. For example, the RPT device 4000 may be connected to one or more server 7100 and database 7200 combinations that store and communicate various data features (e.g., treatment settings or parameters) and other data over the network 7090.
[0234] For example, the system may include a general patient system 8100 and a prescription system 8200, each of which includes a combination of a server 7100 and a database 7200. In this example, the prescription system 8200 may store prescriptions for patient 1000 referenced to a unique identifier for patient 1000. The prescription data stored in database 7200 may include data indicating prescribed pressure levels (e.g., minimum and maximum pressures), treatment modes, and other respiratory treatment parameters.
[0235] In some examples, additional data and preference information related to the patient's treatment (not including the patient's prescribed treatment parameters) may be stored on the generic patient system 8100 (rather than the prescription system 8200) on an associated database 7200. For example, the patient's 1000 profile data, other preference information, account information, etc. may all be stored on a separate database 7200. This may be advantageous because if any database 8200 and system contains data indicating a physician's prescribed treatment parameters, compliance with privacy laws and / or compliance with certain regulations may be required. Thus, storing non-prescribed settings on the generic patient system 8100 may avoid the need to comply with as many regulations. In other examples, both prescription-related and non-prescription-related parameters are stored on the same server 7100 and database 7200. Treatment Setting
[0236] Generally, the therapy settings stored on the database 7200 may include data indicating a therapy pressure Pt. The therapy pressure Pt may be implemented by the controller 4230 using different therapy parameter determination algorithms 4329 to set the pressure. In some cases, the therapy pressure may include a minimum and maximum pressure. These therapy settings may also include a fixed pressure for CPA, or the therapy system may enable calculation of a therapy pressure and a base pressure based on various indices, such as those described above, for APAP therapy.
[0237] These therapy settings may include various modes (e.g., CPAP, APAP, bilevel therapy, high-flow therapy), and may also include humidification or temperature settings and other features or characteristics of respiratory therapy that can be controlled or manipulated.
[0238] These treatment settings may be stored in database 7200 referenced to patient 1000 (e.g., via a unique identifier) and may also reference the type and / or model number of respiratory treatment device 4000 for which the treatment setting is valid. In some examples, prescription settings, including treatment pressure, may be referenced to: (1) the date of prescription, (2) the prescribing physician, (3) the prescribed treatment mode, (4) the prescribed type, model, and serial number of respiratory treatment device 4000, and (5) other information. 4.11 Transferring Treatment Settings
[0239] One form of the present technology includes a method and system for automatically porting respiratory treatment settings to a new respiratory treatment device 4000. Currently, when a patient 1000 receives a replacement respiratory treatment device 4000, an upgraded respiratory treatment device 4000, or an additional / new type of respiratory treatment device 4000, human intervention is required to manually port the prescribed settings. For example, to obtain a new RPT device 4000 when the patient 1000 already has an existing device and prescription (REPAP), the patient 1000 must order the new device from a provider, and the provider must manually install the settings on the RPT device 4000, or the provider may manually update their database 7200 via server 7100 to include the new RPT device 4000. This includes adding the model number, network address, and prescribed treatment settings corresponding to the new RPT device 4000. As such, the patient 1000 does not face a difficult or lengthy installation process when ordering a new device from their current provider.
[0240] Therefore, the inventors have developed a new technique for automatically porting respiratory therapy settings to new RPT devices 4000. This is highly advantageous because it provides the opportunity to purchase RPT devices 4000 from any vendor without pre-installed prescription therapy settings or units pre-registered with the provider's server 7100 and database 7200. This allows for automation of ordering and installation of new RPT devices 4000, reducing the need for human intervention.
[0241] Additionally, the inventors have developed several features for the implementation of this technology, including: (1) Converting a treatment setting to a different make or model of RPT Device 4000 (2) the process for determining whether a prescription is valid; (3) the process for determining whether a prescription is valid; (4) A process for validating the patient's 1000 identification information and determining whether the patient 1000 has an existing RPT device 4000 . (5) a process for validating data for other patients 1000 and identifying changes in data for patients 1000 that may require new prescriptions; (6) monitoring the treatment quality indicators of the RPT device 4000 after porting of the treatment setting to determine whether the prescription is appropriate for the new RPT device 4000; and (7) Other things. These novel features are described in several examples herein, and various combinations of these features may be employed in the present technology.
[0242] 9 is a flow diagram of one method for transferring treatment settings to a new RPT device 4000. First, the system may receive a request 9000 to port treatment settings to the new RPT device 4000. This may be done through the patient computing device 7050, through an interface 4229 on the new RPT device 4000, or through another computing device. In some examples, the new RPT device 4000 is locked until new settings (e.g., a key to unlock the device for use) are received from the cloud. This allows the device to be shipped to a patient without settings already configured based on the patient's prescription. Additionally, different labeling or regulatory restrictions may be possible for certain products in the future.
[0243] In some examples, the patient 1000 may log into their account on their patient computing device 7050 using a unique user ID and password 9100 and indicate through the interface that they have received an additional RPT device 4000 and would like to port settings. In other examples, when the patient 1000 powers on a new RPT device 4000, the new device may request account information or otherwise begin the process of porting treatment settings.
[0244] In some examples, the patient computing device 7050 or other computing device may request the serial number of the replacement RPT device 9200. In other examples, the computing device may send a request for the serial number of the existing RPT device 9200 to verify that the patient 1000 owns the device. In other examples, the existing RPT device 4000 may display a new and unique code on the display 4294. This new and unique code is the code that the patient 1000 must enter into the patient computing device 7050 or other computing device to verify that the patient 1000 now owns the existing RPT device 4000 associated with their account.
[0245] In one example, one of the server 7100 and the database 7200 may check information including a serial number or code to determine if it matches information associated with a patient ID stored in the database 7200.
[0246] The server 7100 then transmits the prescribed treatment settings to the RPT device 4000 if the information is valid (9300), and the prescribed treatment settings are saved in the memory of the new RPT device 4000. Various methods can be used to transfer the settings to the new RPT device 4000 (e.g., porting the settings via a Bluetooth® connection 9450 between the patient computing device 7050 and the new RPT device 4000). In this example, if a patient account is logged in on the patient computing device 7050, the patient computing device 7050 can establish a connection to the new RPT device 4000 via Bluetooth®. In other examples, the setting data can be transmitted via a cellular network to the cellular antenna 9460 of the RPT device 4000 or can be transmitted to the new RPT device 4000 via a Wi-Fi connection 9470. In some examples, these settings are sent in encrypted form from the server 7100 to the RPT device 4000 (using the patient computing device 7050 as a conduit via Bluetooth). In this example, the patient computing device 7050 is not able to decrypt or store these settings, so these settings are sent in encrypted form from at least one of the servers 7100 to the new RPT device 4000. Treatment Configuration Porting Conversion and Activation Processes
[0247] 10 shows a block diagram illustrating one embodiment of an RPT system according to the present technology. In this example, the technology includes prescription settings translator 10020 and portability check 10030 programs. These programs reside in one of the database 7200 and server 7100 combinations, or reside in the RPT device 4000 or patient computing device 7050. The check 10030 program and translator 10020 program are used to process prescription treatment settings 10060 and any other general patient data 10050, preference information, or other information that needs to be ported to the new RPT device 4000.
[0248] 11 shows an exemplary method for performing the conversion and check. For example, in some examples, referring to FIG. 9, after the serial number and account ID are validated (9100 and 9200), the technology performs the check and conversion before pairing the treatment setting 11400. Treatment Settings Porting Enablement Process
[0249] The system may perform the following checks 11400 or validation processes, if any of these fail, the patient 1000 may be flagged for follow-up and the settings will not be ported 11400: (1) Valid prescription; (2) prescription date; (3) changes in patient data; (4) treatment quality indicators; (5) oximeter reading 11460; and (6) Other things. For example, before the server 7100 transmits prescribed treatment settings, comfort settings, or other settings, the technology may check various data (e.g., data output from the RPT device 4000) to verify whether the treatment settings should be ported. If the server 7100 determines that any of these checks fail, the server 7100 sends a response to the new RPT device 4000 or patient computing device 7050 that the treatment settings cannot be ported and that the patient 1000 has been flagged for follow-up so that they can receive an updated prescription.
[0250] For example, the date associated with the current prescription treatment setting (e.g., the timestamp of the date the prescription was entered, written, or received in database 7200) may be checked against the current date to ensure that a time threshold has not passed (e.g., 1 year, 2 years, 5 years, etc. since the prescription was first entered or dispensed), thereby preventing the patient 1000 from continuing to use an expired prescription or putting the patient at risk of denials or delays from insurance providers or payers due to an expired prescription.
[0251] Additionally, the patient data changes 11480 may be evaluated to determine if there have been any significant changes in the patient 1000 associated with prescription changes. For example, the system may perform an age check of the patient 1000 based on the patient's profile data to determine if the patient 1000 has reached any milestones that typically require treatment setting updates due to physiological changes associated with aging. This may be checked by checking the birth date on the patient's 1000 profile data 10050 stored on the general patient system 8100 and comparing it to the current date.
[0252] Additionally, patient data changes 11480 may be information or data obtained by sending a questionnaire to a patient interface (on any of the various computing devices or RPT device inputs 4220) when a port of configuration is initiated. For example, the questionnaire may ask the patient 1000 questions to assess: (1) Weight; (2) BMI; (3) subjective sleep quality; (4) changes in mattress or other sleep environment; (5) relocation; and (6) Other information. For example, if it is determined that the patient's 1000 weight or BMI has changed relative to a threshold amount, an assessment of pressure may need to be made based on a known threshold change in BMI or patient's 1000 location on the weight or BMI curve (if gender, race, etc. are known) that requires a new pressure or other treatment parameter change. Additionally, other factors that may affect the settings may also be queried.
[0253] In some examples, these factors may be automatically assessed using a variety of image or other data processing techniques to estimate relevant characteristics of the patient 1000. For example, a selfie tool may process an image of the patient 1000 and compare it to a previous image of the patient 1000 to determine if changes in the image indicate a change in BMI. This may include methods for determining the relative size and shape of the patient 1000 (e.g., measuring the diameter of eye features (which do not change over time) such as the pupil or iris). Additionally, the selfie tool may use measurements of eye features to determine relative size (e.g., scale compensation based on differences in the distance of the camera from the face between images).
[0254] In some examples, the selfie tool may require the patient 1000 to move the camera closer to the patient's 1000 face until eye measurements (or other common features) determine that the patient 1000 is holding the camera at an acceptable distance, a predetermined distance, or the same distance as the previous image. In some examples, the camera may include depth sensor technology, which may improve estimation of changes in the patient's face related to changes in treatment.
[0255] In some examples, the technology may first check indicators of treatment quality before porting the treatment settings. For example, if the treatment quality indicators are below an acceptable threshold or indicate a problem with the treatment of the patient 1000, the technology may reject the porting of the settings 11500 and flag the patient for follow-up. The treatment quality indicators may include: (1) Output of usage data from the RPT device 4000 - usage patterns may indicate the patient's 1000 prescription or other settings that are causing the patient's 1000 to discontinue or minimize use; (2) treatment quality index; (3) hypoventilatory events; (4) other sleep disturbances; (5) sleep score; (6) data output from a pulse oximeter; and (7) Other things.
[0256] In some examples, the technology may present questions to the patient 1000 to determine or evaluate whether the patient 1000 can switch to a new RPT device 4000 without a physician's evaluation and prescription. For example, if the patient 1000 wants to switch from a full mask to a nasal-only mask, the technology may request that a photograph be taken to evaluate the nasal region or that audio data be processed while the patient 1000 is sleeping to determine whether they are breathing through their mouth or nose. In these cases, the technology may automatically deny porting of the configuration 11500 if there are any issues.
[0257] Additionally, in accordance with the present technology, an initial check of the patient's 1000 quality may be performed using the same parameters on the replacement RPT device 4000, further checking the same treatment quality indicators over a specified period of time after the new RPT device 4000 begins use. This may include a time window of one day, two days, one week, one month, or other suitable period. Thus, in accordance with the present technology, a baseline level of respiratory treatment quality or a threshold amount of degradation in respiratory treatment quality may be checked relative to the respiratory treatment quality of the current respiratory treatment device 4000. Setting converter
[0258] In addition to flagging problems prior to porting of treatment settings, the present technology may also convert, calibrate, or adjust settings for a new unit, model, or type of respiratory treatment device 4000. The prescription settings translator 10020 may include various features for mapping, converting, calibrating, or otherwise adapting settings from an existing RPT device 4000 to a new device 4000.
[0259] For example, the database 7200 may include mappings between models, types, and units of the RPT device 4000. For example, the treatment pressure may be adjusted slightly to compensate for pressure differences between particular units. This may include listing and mapping to a database spreadsheet or other ontology for mapping multiple units, and equations for converting pressure or other modes and settings to a form for the new device.
[0260] Additionally, adjustments to non-prescription settings, modes, and other features can be made with known calibration amounts between devices. For example, the strength of the RAMP feature in the auto-increase algorithm or the rate at which pressure increases and / or decreases can be varied between different model types of devices if, for example, it is known that a particular model has slightly higher pressures or that patients respond better to lower pressures.
[0261] In some examples, the technology may learn non-prescription features and the like between units over time based on patient adjustments of these features after use. Thus, the technology may be able to predict mapping between units for specific types of patients based on patient data and context. 4.12 Glossary
[0262] 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. 4.12.1 General
[0263] 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).
[0264] 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.
[0265] 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.
[0266] In another example, the ambient pressure may be the pressure immediately surrounding or external to the body.
[0267] 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.
[0268] Automatic Positive Airway Pressure (APAP) Therapy: 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.
[0269] 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 exhalation and decreases slightly during inhalation. 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).
[0270] Flow Rate: The instantaneous amount (or mass) of air delivered per unit time. Flow rate can refer to an instantaneous quantity. Sometimes, when referring to flow rate, it refers to a scalar quantity (i.e., a quantity that has only magnitude). In other cases, when referring to flow rate, it refers to a vector quantity (i.e., a quantity that has both magnitude and direction). Flow rate may be given the symbol Q. "Flow rate" may also be called "flow" or "airflow" for shorthand.
[0271] In the example of a patient's breathing, the flow rate may be nominally positive for the inspiratory portion of the patient's breathing cycle, and therefore negative for the expiratory portion of the patient's breathing cycle. The device flow rate Qd is the flow rate of air exiting the RPT device. The total flow rate Qt is the flow rate of air and any supplemental gases that reach the patient interface via the air circuit. The ventilator flow rate Qv is the flow rate of air exiting the vent to allow for the outflow of exhaled gases. The leakage flow rate Ql is the flow rate of leakage from the patient interface system or elsewhere. The respiratory flow rate Qr is the flow rate of air received into the patient's respiratory system.
[0272] Humidifier: The word "humidifier" is construed to mean a humidifying device constructed, arranged, or configured with a physical structure capable of providing a therapeutically beneficial amount of water (H2O) vapor to an air stream to improve the medical respiratory condition of a patient.
[0273] Leak: The term "leak" refers to unintended airflow. 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 to the perimeter.
[0274] Noise Conduction (Acoustic): In this document, conducted noise refers to noise that is carried to the patient by the pneumatic pathway (e.g., the air circuit and patient interface and the air therein). In one form, conducted noise can be quantified by measuring the sound pressure level at the end of the air circuit.
[0275] Noise Emission (Acoustic): In this document, radiated noise refers to noise carried by the ambient air to the patient. In one form, radiated noise can be quantified by measuring the sound power / pressure level of the target in accordance with ISO 3744.
[0276] Ventilation noise (acoustic): In this document, ventilation noise refers to the noise generated by airflow through any ventilation (eg, ventilation holes in the patient interface).
[0277] Patient: A person with or without a respiratory disease.
[0278] Pressure: Force per unit area. Pressure can be expressed in a variety of units (e.g., cmH2O, gf / cm 2 , and hectopascals). 1cmH2O is 1g-f / cm 2 is equal to approximately 0.98 hectopascals (1 hectopascal = 100 Pa = 100 N / m 2= 1 millibar to 0.001 atm). In this specification, pressures are given in units of cmH2O unless otherwise specified.
[0279] The pressure in the patient interface is designated by the symbol Pm, and the therapeutic pressure, which represents the target value that the interface pressure Pm should reach at this time, is designated by the symbol Pt.
[0280] Respiratory Pressure Therapy (RPT): The application to the airway entrance of an air supply at therapeutic pressure, typically positive pressure relative to atmosphere.
[0281] Ventilator: A mechanical device that provides pressure support to a patient while they perform some or all of the work of breathing. 4.12.1.1 Materials
[0282] Silicone or Silicone Elastomer: Synthetic rubber. In this specification, when silicone is mentioned, it refers to liquid silicone rubber (LSR) or compression molded silicone rubber (CMSR). One form of commercially available LSR is SILASTIC (in a family of products sold under this registered trademark) manufactured by Dow Corning. Another LSR manufacturer is Wacker.
[0283] Polycarbonate: A thermoplastic polymer of bisphenol A carbonate. 4.12.2 Breathing Cycle
[0284] Apnea: According to some definitions, 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. Central apnea is said to refer to a condition in which apnea is detected due to reduced or absent respiratory effort despite a patent airway. Mixed apnea is said to refer to a condition in which reduced or absent respiratory effort occurs simultaneously with airway obstruction.
[0285] Respiratory rate: The patient's spontaneous breathing rate, usually measured in breaths per minute.
[0286] Duty cycle: The ratio of inspiration time Ti to total breathing time Ttot.
[0287] Exercise (Respiration): Respiratory effort is said to refer to the movement made by the spontaneous breathing of a person trying to breathe.
[0288] Expiratory portion of the respiratory cycle: the period from the start of expiratory flow to the start of inspiratory flow.
[0289] Flow limitation: Flow limitation is understood to be a condition 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 can be referred to as inspiratory flow limitation. If flow limitation occurs during the expiratory portion of the respiratory cycle, the flow limitation can be referred to as expiratory flow limitation.
[0290] Flow-limited inspiration waveform types: (i) Flattening: An upswing followed by a relatively flat area, followed by a downswing. (ii) M-shaped: has two local peaks, one at the rise and one at the fall, with a relatively flat region between these two peaks. (iii) Chair-like: A single local peak occurs at the rising part, followed by a relatively flat region. (iv) Inverted chair: A relatively flat region is followed by a single local peak, which occurs on the trailing edge.
[0291] Hypopnea: By some definitions, hypopnea refers to a reduction in flow, rather than 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. When hypopnea is detected due to a decrease in respiratory effort, central hypopnea is said to occur. In one form, hypopnea may be considered when any of the following occur in adults: (i) A 30% decrease in patient respiration for at least 10 seconds plus an associated 4% desaturation, or (ii) A reduction in patient respiration (less than 50%) lasting at least 10 seconds and associated desaturation of at least 3% or arousal occurs.
[0292] Hyperventilation: An increase in flow to a level higher than normal.
[0293] 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.
[0294] 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).
[0295] Positive end-expiratory pressure (PEEP): The pressure above atmosphere in the lungs that exists at the end of expiration.
[0296] Peak flow (Qpeak): The maximum value of flow during the inspiratory portion of the respiratory flow waveform.
[0297] Respiratory airflow, airflow, patient airflow, respiratory airflow (Qr): These terms 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.
[0298] Tidal volume (Vt): The volume of air inhaled or exhaled during normal breathing without extra effort. In principle, the inhaled volume Vi (volume of air inhaled) is equal to the exhaled volume Ve (volume of air exhaled), so a single tidal volume Vt can be defined as equal to either volume. In practice, the tidal volume Vt is estimated as some combination (e.g., the average of the inhaled volume Vi and the exhaled volume Ve).
[0299] (Inspiration) Time (Ti): The duration of the inspiratory portion of the respiratory flow waveform.
[0300] (Expiratory) Time (Te): The duration of the expiratory portion of the respiratory flow waveform.
[0301] (Total) Time (Ttot): The total duration between the start of one inspiratory portion of the respiratory flow waveform and the start of the next inspiratory portion of the respiratory flow waveform.
[0302] Typical Recent Ventilation: The ventilation value around which recent values of ventilationVent over a given time scale tend to cluster (i.e., the degree to which recent values of ventilation tend to be centered).
[0303] Upper Airway Obstruction (UAO): Includes both partial and total upper airway obstruction. May be associated with a state of flow limitation in which flow may increase or decrease slightly with increasing pressure differential across the upper airway (Starling resistor behavior).
[0304] Vent: A measure of the rate of gas exchange performed by a patient's respiratory system. Measurements of ventilation may include either or both inspiratory and expiratory flow per unit time. When expressed as volume per minute, this quantity is often referred to as "minute ventilation." Minute ventilation is sometimes given simply as volume and is understood as volume per minute. 4.12.3 Ventilation
[0305] Adaptive servo-ventilator (ASV): A servo-ventilator that does not have a fixed target ventilation but is variable. The variable target ventilation can be learned from some characteristic of the patient (e.g., the patient's breathing characteristics).
[0306] 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).
[0307] Cycle: 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.
[0308] Expiratory Positive Airway Pressure (EPAP): The base pressure to which varying pressures are added within a breath to produce the desired interface pressure that the ventilator attempts to achieve at a given moment.
[0309] End Expiratory Pressure (EEP): The desired interface 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.
[0310] Inspiratory Positive Airway Pressure (IPAP): The maximum desired interface pressure that the ventilator attempts to achieve during the inspiratory portion of the breath.
[0311] 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 maximum inspiratory 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).
[0312] 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.
[0313] 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.
[0314] Swing: A term equivalent to pressure assistance.
[0315] Triggered: 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. 4.13 Other Notes
[0316] 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.
[0317] 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.
[0318] 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.
[0319] 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.
[0320] 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.
[0321] 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.
[0322] All publications mentioned herein are incorporated by reference to disclose and describe the methods and / or materials that are the subject of these publications. The publications mentioned herein are provided solely for their disclosure prior to the filing date of this application. Nothing herein should be construed as an admission that the present technology does not antedate such publications by virtue of prior patents. Furthermore, the dates of publications mentioned may differ from the actual publication dates, which may require independent confirmation.
[0323] 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.
[0324] 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.
[0325] 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 / or aspects can be performed simultaneously or even synchronously.
[0326] 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.
Claims
1. 1. A system comprising: a prescription database containing prescription treatment settings referencing patient account IDs; a first respiratory treatment device; an interface; a memory including a machine-readable medium containing machine-executable code, wherein instructions for performing a method are stored on the machine-executable code; a control system coupled to the memory; Including, The control system includes one or more processors, and the control system executes the machine-executable code to enable the control system to: From said interface, (i) receiving an input indicating that the patient wishes to transfer prescribed treatment settings from a second respiratory treatment device to the first respiratory treatment device; and (ii) receiving an identifier of the first respiratory treatment device; retrieving a prescription treatment setting for the patient from the prescription database based on a patient account ID associated with the patient; determining whether the patient's prescribed treatment setting is valid for the first respiratory treatment device based on the patient's prescribed treatment setting and an identifier of the first respiratory treatment device; and If the patient's prescribed treatment settings are valid for the first respiratory treatment device, storing the patient's prescribed treatment settings in a memory of the first respiratory treatment device.
2. 10. The system of claim 1, wherein the machine-executable code further comprises causing the control system to refuse to save the patient's prescribed treatment settings to the memory of the first respiratory treatment device if the prescribed treatment settings are not valid for the first respiratory treatment device.
3. 3. The system of claim 1 or claim 2, wherein the machine-executable code further comprises causing the control system to flag the patient for follow-up if the prescribed treatment settings are not valid for the first respiratory treatment device.
4. 4. The system of claim 3, wherein the machine-executable code further causes the control system to, if the prescribed treatment settings are not valid for the first respiratory treatment device, send a notification indicating the invalidity of the patient's prescribed treatment settings to: (i) the first respiratory treatment device; (ii) the second respiratory treatment device; (iii) a mobile device associated with the patient; or (iv) any combination of (i)-(iii).
5. 2. The system of claim 1, wherein the machine-executable code further causes the control system to convert the patient's prescribed treatment settings so that the patient's prescribed treatment settings are valid for the first respiratory treatment device if the prescribed treatment settings are not valid for the first respiratory treatment device; and, after conversion, store the patient's prescribed treatment settings in a memory of the first respiratory treatment device.
6. 6. The system of claim 5, wherein converting the patient's prescribed treatment settings comprises (i) translating the patient's prescribed treatment settings, (ii) calibrating the patient's prescribed treatment settings, (iii) adjusting the patient's prescribed treatment settings, (iv) mapping the patient's prescribed treatment settings, or (v) any combination of (i)-(iv).
7. 7. The system of claim 1, wherein the determination of whether the prescribed treatment settings are effective is based on (i) prescription factors, (ii) factors associated with the first respiratory treatment device, (iii) factors associated with the second respiratory treatment device, (iv) changes in patient data, (v) treatment quality indicators, (vi) questionnaires completed by the patient, (vii) images of the patient, or (viii) any combination of (i)-(vii).
8. 8. The system of claim 7, wherein the prescription factors include (i) prescription validity, (ii) prescription date, or (iii) both (i) and (ii).
9. 9. The system of claim 7 or claim 8, wherein the changes in patient data include (i) weight, (ii) BMI, (iii) subjective sleep quality, (iv) changes in sleep environment, (v) new place of residence, or (vi) any combination of (i) to (v).
10. 10. The system of any one of claims 1, 5-9, wherein the machine-executable code further comprises causing the control system to determine a treatment quality indicator associated with the first respiratory treatment device after a period of time since the patient's prescribed treatment settings are stored in the memory of the first respiratory treatment device.
11. 1. A method comprising: In the control system, from the interface, (i) receiving an input indicating that the patient wishes to transfer prescribed treatment settings from a second respiratory treatment device to a first respiratory treatment device and (ii) an identifier of the first respiratory treatment device; retrieving, by the control system, prescribed treatment settings for the patient from a prescribed treatment database storing prescribed treatment settings based on a patient ID associated with the patient; determining, by the control system, based on the prescribed treatment settings for the patient and the identifier of the first respiratory treatment device, whether the prescribed treatment settings for the patient are valid for the first respiratory treatment device; and If the patient's prescribed treatment settings are valid for the first respiratory treatment device, causing the control system to store the patient's prescribed treatment settings in a memory of the first respiratory treatment device.
12. 12. The method of claim 11, comprising refusing to store the patient's prescribed treatment settings in the memory of the first respiratory treatment device if the prescribed treatment settings are not valid for the first respiratory treatment device.
13. 13. The method of claim 11 or claim 12, comprising causing the patient to be flagged for follow-up if the prescribed treatment settings are not valid for the first respiratory treatment device.
14. 14. The method of claim 13, comprising, if the prescribed treatment settings are not valid for the first respiratory treatment device, causing a notification indicating the invalidity of the patient's prescribed treatment settings to be sent to: (i) the first respiratory treatment device; (ii) the second respiratory treatment device; (iii) a mobile device associated with the patient; or (iv) any combination of (i)-(iii).
15. If the prescribed treatment settings are not valid for the first respiratory treatment device, converting the patient's prescribed treatment settings so that the patient's prescribed treatment settings are valid for the first respiratory treatment device; and 12. The method of claim 11, further comprising, after conversion, causing the patient's prescribed treatment settings to be stored in a memory of the first respiratory treatment device.
16. 16. The method of claim 15, wherein converting the patient's prescribed treatment settings comprises (i) translating the patient's prescribed treatment settings, (ii) calibrating the patient's prescribed treatment settings, (iii) adjusting the patient's prescribed treatment settings, (iv) mapping the patient's prescribed treatment settings, or (v) any combination of (i)-(iv).
17. 17. The method of any one of claims 11-16, wherein the determination of whether the prescribed treatment settings are effective is based on (i) prescription factors, (ii) factors associated with the first respiratory treatment device, (iii) factors associated with the second respiratory treatment device, (iv) changes in patient data, (v) treatment quality indicators, (vi) questionnaires completed by the patient, (vii) images of the patient, or (viii) any combination of (i)-(vii).
18. 18. The method of claim 17, wherein the prescription factors include (i) prescription validity, (ii) prescription date, or (iii) both (i) and (ii).
19. 19. The method of claim 17 or claim 18, wherein the changes in patient data include (i) weight, (ii) BMI, (iii) subjective sleep quality, (iv) changes in sleep environment, (v) new place of residence, or (vi) any combination of (i)-(v).
20. 20. The method of any one of claims 11, 15-19, comprising determining a treatment quality indicator associated with the first respiratory treatment device after a period of time since the patient's prescribed treatment settings were stored in the memory of the first respiratory treatment device.
Citation Information
Patent Citations
MONITORING CONTROL METHOD AND MONITORING AND CONTROL DEVICE FOR MEDICAL DEVICES
JP2003527160A
Management of Remote Respiratory Therapy Devices
JP2017519292A