Patient interface with foam cushion
The patient interface with a plenum chamber, seal-forming structure, and stabilizing structure enhances respiratory therapy efficacy by improving comfort and compliance through a stable seal and ambient breathing option, addressing the limitations of existing devices.
Patent Information
- Application Number
- JP2025147659
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-09-05
- Publication Date
- 2025-12-25
AI Technical Summary
Existing respiratory therapy devices, particularly patient interfaces and RPT devices, suffer from issues such as discomfort, poor fit, difficulty in use, high cost, and reduced patient compliance due to inadequate seal-forming structures and air pressure management, leading to ineffective treatment of respiratory disorders.
A patient interface with a plenum chamber, seal-forming structure, and positioning and stabilizing structure, featuring a foam cushion and elastomeric support flange, designed to maintain therapeutic pressure and allow ambient breathing, while minimizing leakage and discomfort, thereby enhancing treatment efficacy.
The design improves patient compliance and treatment effectiveness by providing a comfortable, effective seal and stable air pressure delivery, addressing the limitations of existing devices.
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Figure 2025188071000001_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 present technology also relates to medical devices or apparatus and uses thereof. [Background technology]
[0002] 1.2 Description of Related Art 1.2.1 The human respiratory system and its disorders The body's respiratory system facilitates gas exchange. The nose and mouth 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 primary function of the lungs is gas exchange, transferring inhaled air oxygen into the venous blood and carbon dioxide out. The trachea divides into the right and left main bronchi, which further divide into the terminal bronchioles. The bronchi constitute the 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, known as the respiratory zone. See: "Respiratory Physiology," by John B. West, Lippincott Williams & Wilkins, 9th edition published 2012.
[0004] A range of respiratory disorders exists, and particular disorders may be characterized by particular manifestations such as apnea, hypopnea, and hyperpnea.
[0005] Examples of respiratory disorders 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 disorders.
[0006] Obstructive sleep apnea (OSA) is a form of sleep-disordered breathing (SDB) characterized by episodes of upper airway closure or obstruction during sleep. This is the result of an abnormally small upper airway combined with the normal loss of muscle tone in the tongue region, soft palate, and posterior oropharyngeal wall during sleep. This condition causes affected patients to experience breathing pauses typically lasting 30 to 120 seconds, sometimes 200 to 300 times per night. This can result in excessive daytime sleepiness, which can lead to cardiovascular disease and brain damage. This syndrome is common, particularly among middle-aged, overweight men, but patients often experience no symptoms. See U.S. Patent No. 6,244,999 (Sullivan).
[0007] Cheyne-Stokes respiration (CSR) is another form of sleep-disordered breathing. CSR is a disorder of a patient's respiratory control system, resulting in alternating periods of waxing and waning ventilation, known as the CSR cycle. CSR is characterized by repeated deoxygenation and reaeration of arterial blood. CSR can be harmful due to repeated hypoxia. In some patients, CSR is associated with recurrent sleep arousals, which can cause severe insomnia, increased sympathetic activity, and increased afterload. See U.S. Patent No. 5,929,999 (Berthon-Jones).
[0008] Respiratory failure is a general term for respiratory disorders that refers to the inability of the lungs to inhale enough oxygen or exhale enough CO2 to meet the patient's needs. Respiratory failure can include some or all of the following disorders:
[0009] Patients with respiratory failure (a type of respiratory insufficiency) may experience unusual shortness of breath during exercise.
[0010] Obesity hyperventilation syndrome (OHS) is defined as the combination of severe obesity and chronic awake hypercapnia in the absence of any other clear cause of hypoventilation. Symptoms include dyspnea, morning headache, and excessive daytime sleepiness.
[0011] Chronic obstructive pulmonary disease (COPD) encompasses any of a group of lower respiratory tract diseases that share certain common characteristics, including increased resistance to air movement, prolonged expiratory phase of breathing, and a decrease in normal lung elasticity. Examples of COPD include emphysema and chronic bronchitis. Causes of COPD include chronic smoking (the primary risk factor), occupational exposure, air pollution, and genetic factors. Symptoms include dyspnea on exertion, chronic cough, and sputum production.
[0012] Neuromuscular disease (NMD) is a broad term encompassing numerous diseases and illnesses that impair muscle function directly through intrinsic muscle pathology or indirectly through neuropathology. Some NMD patients are characterized by progressive muscle impairment, resulting in the inability to walk, wheelchair confinement, difficulty swallowing, respiratory muscle weakness, and ultimately death from respiratory failure. Neuromuscular disorders can be divided into rapidly progressive and slowly progressive: (i) rapidly progressive disorders characterized by muscle impairment that worsens over months and leads to death within years (e.g., amyotrophic lateral sclerosis (ALS) and teenage Duchenne muscular dystrophy (DMD)); and (ii) degenerative or slowly progressive disorders characterized by muscle impairment that worsens over years but only mildly shortens life expectancy (e.g., limb-girdle, facioscapulohumeral, and myotonic muscular dystrophy). Symptoms of respiratory failure in NMD include: increasing general weakness, difficulty swallowing, difficulty breathing on exertion and at rest, fatigue, drowsiness, morning headache, and difficulty concentrating and mood changes.
[0013] Chest wall disorders are a group of thoracic deformities that result in ineffective connections between the respiratory muscles and the rib cage. These disorders are primarily characterized by restrictive obstruction and share the potential for long-term hypercapnic respiratory failure. Scoliosis and / or kyphoscoliosis can lead to severe respiratory failure. Symptoms of respiratory failure include: dyspnea on exertion, peripheral edema, orthopnea, recurrent chest infections, morning headache, fatigue, poor sleep quality, and loss of appetite.
[0014] A range of treatments are available to treat or ameliorate these conditions, and preventative treatments for respiratory disorders can also be beneficially utilized by otherwise healthy individuals. However, these suffer from several deficiencies. 1.2.2 Treatment
[0015] A variety of respiratory therapies (e.g., continuous positive airway pressure (CPAP) therapy, non-invasive ventilation (NIV), invasive ventilation (IV), and high-flow therapy (HFT)) are used to treat one or more of the above-mentioned respiratory disorders. 1.2.2.1 Respiratory Pressure Therapy
[0016] Respiratory pressure therapy is the application of air to the entrance of the airways at a controlled target pressure, which is usually positive relative to atmosphere, throughout the patient's respiratory cycle (as opposed to negative pressure therapy, e.g., tank ventilators or positive-negative pressure extracorporeal ventilators (cuirass)).
[0017] Continuous positive airway pressure (CPAP) therapy is used in the treatment of obstructive sleep apnea (OSA). Its mechanism of action is that the 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: it is uncomfortable, difficult to use, expensive, or aesthetically unattractive.
[0018] Noninvasive ventilation (NIV) provides ventilatory support to a patient through the upper airway to assist the patient in breathing and / or maintain adequate oxygen levels in the body by performing some or all of the respiratory functions. Ventilatory support is provided through a noninvasive patient interface. NIV is used to treat CSR and respiratory failure in forms such as OHS, COPD, NMD, and chest wall disorders. In some forms, it can improve the comfort and effectiveness of these treatments.
[0019] 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
[0020] Not all respiratory therapies are intended to deliver a prescribed therapeutic pressure. Some respiratory therapies aim to deliver a prescribed respiratory volume by delivering an inspiratory flow profile (perhaps superimposed on a positive baseline pressure) for a targeted duration. In other cases, the interface to the patient's airway is "open" (unsealed), and respiratory therapy with a flow of conditioned or concentrated gas may be used only to support the patient's spontaneous breathing. In one example, high-flow therapy (HFT) is 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 is used to treat OSA, CSR, respiratory failure, COPD, and other respiratory disorders. One mechanism of action is that delivering a high flow of air to the airway inlet improves ventilation efficiency by allowing exhaled CO2 to be flushed or swept away from the patient's anatomical dead space. Therefore, HFT is sometimes referred to as dead space therapy (DST). Other benefits may include improved warmth and humidification (possibly through the benefit of secretory control) and a gradual increase in airway pressure. As an alternative to a constant flow rate, the therapeutic flow rate may follow a profile that varies over the respiratory cycle.
[0021] 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
[0022] 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 referred to as RPT with supplemental oxygen. When oxygen is added to HFT, the resulting therapy is referred to as HFT with supplemental oxygen. 1.2.3 Respiratory Treatment Systems
[0023] These respiratory therapies may be provided by respiratory treatment systems or devices. Such systems and devices may also be used to screen, diagnose, or monitor disease without treating it.
[0024] The respiratory therapy system may include a respiratory pressure therapy device (RPT device), an air circuit, a humidifier, a patient interface, an oxygen source, and data management. 1.2.3.1 Patient Interface
[0025] 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 treatment 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 distribute the gas supply with ambient pressure for treatment implementation (e.g., at a positive pressure of approximately 10 cmH2O relative to ambient pressure). In other forms of treatment, such as oxygen delivery, the patient interface may not include a seal sufficient to facilitate delivery of the gas supply to the airways at a positive pressure of approximately 10 cmH2O. For flow treatments, such as nasal HFT, the patient interface is configured to insufflate the nares (and specifically avoid a complete seal). One example of such a patient interface is a nasal cannula.
[0026] Certain other mask systems may be functionally inadequate in this field. For example, masks intended for purely decorative purposes may not be able to maintain adequate pressure. Mask systems used for underwater swimming or diving may be configured to protect against water intrusion from higher external pressures and not maintain internal air at pressures higher than ambient.
[0027] Certain masks may be clinically unsuitable for this technology (for example, if the mask blocks airflow through the nose and only allows airflow through the mouth).
[0028] In certain masks, the patient must insert part of the mask structure into their mouth to create and maintain a seal via their lips, which may be uncomfortable or impractical in this technology.
[0029] Certain masks may be impractical for use while sleeping (eg, when sleeping on your side in bed with your head resting on a pillow).
[0030] There are multiple challenges in designing a patient interface. The face has a complex three-dimensional shape. The size and shape of the nose and head vary greatly between individuals. Because the head contains bone, cartilage, and soft tissue, different regions of the face respond differently to mechanical forces. That is, the jaw or mandible can move relative to the other bones of the skull. The entire head can move throughout the respiratory treatment period.
[0031] These challenges can lead to one or more of the following: some masks can be intrusive, aesthetically undesirable, costly, poor fit, difficult to use, and uncomfortable, especially if worn for extended periods or if the patient is unfamiliar with the system. If the wrong size mask is used, this can lead to reduced compliance, reduced comfort, and poor patient outcomes. While masks specifically designed for aviators, personal protective equipment (e.g., filter masks), SCUBA masks, or anesthesia administration masks may be durable for their intended use, such masks may be undesirably uncomfortable to wear for extended periods (e.g., several hours). Such discomfort can reduce patient compliance with treatment. This is especially true if the mask must be worn while sleeping.
[0032] CPAP therapy is highly effective in treating certain breathing disorders when patients comply with the therapy. If the mask is uncomfortable or difficult to use, patients may not comply with the therapy. Because patients are often encouraged to clean their masks regularly, if the mask is difficult to clean (e.g., difficult to assemble or disassemble), patients may not be able to clean the mask, which may affect patient compliance.
[0033] Masks for other uses (e.g., aviators) may be unsuitable for use in treating sleep-disordered breathing, and masks designed for use in treating sleep-disordered breathing may be suitable for other uses.
[0034] For these reasons, patient interfaces for CPAP delivery during sleep form a distinct field. 1.2.3.1.1 Seal-forming structure
[0035] The patient interface may include a seal-forming structure. Because the patient interface is in direct contact with the patient's face, the shape and configuration of the seal-forming structure may have a direct impact on the effectiveness and comfort of the patient interface.
[0036] Patient interfaces can be characterized in part according to the design intent of where the seal-forming structure engages with the face during use. In one form of patient interface, the seal-forming structure can include a first sub-portion for forming a seal around the left nostril and a second sub-portion for forming a seal around the right nostril. In one form of patient interface, the seal-forming structure can include a single element that surrounds both nostrils during use. Such a single element can be designed, for example, to rest on the upper lip region and nasal bridge region of the face. In one form of patient interface, the seal-forming structure can include an element that surrounds the mouth region during use, for example, by forming a seal on the lower lip region of the face. In one form of patient interface, the seal-forming structure can include a single element that surrounds both nostrils and the mouth region during use. These different types of patient interfaces can be known by various names depending on their manufacturers, such as nasal masks, full face masks, nasal pillows, nasal puffs, and oronasal masks.
[0037] A seal-forming structure that may be effective in one area of a patient's face may be inappropriate in another area due to, for example, different shapes, structures, variability, and sensitive areas of the patient's face. For example, the seal of swimming goggles that rests on the patient's forehead may be inappropriate for use on the patient's nose.
[0038] A particular seal-forming structure may be designed for mass production so that one design is compatible, comfortable, and effective for a wide range of different face shapes and sizes. To the extent there is a mismatch between the shape of the patient's face and the seal-forming structure of the mass-manufactured patient interface, one or both must be adapted to form a seal.
[0039] One type of seal-forming structure extends around the periphery of the patient interface and is intended to seal against the patient's face when force is applied to the patient interface with the seal-forming structure engaging against the patient's face. This seal-forming structure may include an air or fluid-filled cushion, or may include a molded or shaped surface of a resilient sealing element constructed of an elastomer such as rubber. With this type of seal-forming structure, if the fit is improper, a gap will form between the seal-forming structure and the face, requiring additional force to press the patient interface against the face to achieve a seal.
[0040] Another type of seal-forming structure uses a thin flap seal positioned around the periphery of the mask to provide a self-sealing effect against the patient's face when positive pressure is applied within the mask. As with the previous type of seal-forming portion, poor fit between the face and the mask can require additional force to achieve a seal or the mask may leak. Furthermore, if the shape of the seal-forming structure does not match the shape of the patient, it may fold or buckle during use, causing leakage.
[0041] Other types of seal-forming structures may include friction-fit elements that are inserted into the nostrils, for example, but some patients find this uncomfortable.
[0042] Another form of seal-forming structure may use adhesives to achieve the seal, as some patients find it inconvenient to constantly apply and remove adhesives from their face.
[0043] A range of patient interface seal forming structures are disclosed in the following patent applications (assigned to ResMed Limited): US Pat. No. 5,629,999; US Pat. No. 5,629,999; and US Pat. No. 5,629,999.
[0044] One form of nasal pillow is found in the Adam line manufactured by Puritan Bennett. Another nasal pillow or nasal puff is the subject of US Pat. No. 6,223,999 (Trimble et al.), assigned to Puritan-Bennett Corporation.
[0045] ResMed Limited manufactures the following products that use nasal pillows: SWIFT® nasal pillows mask, SWIFT® II nasal pillows mask, SWIFT® LT nasal pillows mask, SWIFT® FX nasal pillows mask, and MIRAGE LIBERTY™ full face mask. Examples of nasal pillows masks are described in the following patent applications assigned to ResMed Limited: U.S. Patent No. 5,623,999 (depicting, among other things, aspects of ResMed Limited's SWIFT® nasal pillows), U.S. Patent No. 5,623,999 (depicting, among other things, aspects of ResMed Limited's SWIFT® LT nasal pillows), U.S. Patent No. 5,623,999 and U.S. Patent No. 5,623,999 (depicting, among other things, aspects of ResMed Limited's MIRAGE LIBERTY™ full face mask), and U.S. Patent No. 5,623,999 (depicting, among other things, aspects of ResMed Limited's SWIFT® FX nasal pillows). 1.2.3.1.2 Positioning and stabilization
[0046] The seal-forming structures of patient interfaces used in positive air pressure therapy are subjected to corresponding forces of air pressure that disrupt the seal, and therefore a variety of techniques are used to position the seal-forming structures and maintain a seal against the appropriate portion of the face.
[0047] In one technique, adhesives are used, see, for example, US Patent No. 5,929,999, however, adhesives can be uncomfortable.
[0048] Another technique involves the use of one or more straps and / or stabilizing harnesses, many of which suffer from one or more of the following problems: poor fit, bulky, uncomfortable, and cumbersome. 1.2.3.2 Respiratory Pressure Therapy (RPT) Devices
[0049] 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.
[0050] Air pressure generators are known for a wide range of applications (e.g., industrial-scale ventilation systems). However, air pressure generators for medical applications have specific requirements that cannot be met by more common air pressure generators (e.g., reliability, size, and weight requirements of medical devices). In addition, even devices designed for medical treatment may suffer from deficiencies related to one or more of the following: comfort, noise, ease of use, effectiveness, size, weight, manufacturability, cost, and reliability.
[0051] One example of a special requirement for a particular RPT device is acoustic noise.
[0052] Table of noise output levels of conventional RPT devices (measured on one sample only at 10cmH2O in CPAP mode using the test method specified in ISO3744).
[0053] [Table 1]
[0054] One known RPT device used to treat sleep-disordered breathing is the S9 Sleep Therapy System (manufactured by ResMed Limited). Another example of an RPT device is a ventilator. Ventilators (e.g., the ResMed Stellar™ series of adult and pediatric ventilators) can provide invasive and non-invasive independent ventilation support for patients for a range of conditions, including, but not limited to, NMD, OHS, and COPD.
[0055] The ResMed Elisee™ 150 ventilator and ResMed VSIII™ ventilators can provide invasive and non-invasive dependent ventilatory support suitable for adult or pediatric patients for the treatment of multiple conditions. These ventilators offer volumetric and pressure ventilation modes using single or dual limb circuits. RPT devices typically include a pressure generator (e.g., an electric blower or compressed gas reservoir) and are configured to deliver airflow to the patient's airway. In some cases, the airflow can be delivered to the patient's airway at positive pressure. The outlet of the RPT device is connected via an air circuit to a patient interface, as described above.
[0056] A device designer may be presented with a myriad of choices. Often, conflicting design criteria may make certain design choices unconventional or unavoidable. Furthermore, the comfort and effectiveness of a particular implementation may be significantly affected by minor changes in one or more parameters. 1.2.3.3 Air Circuit
[0057] An air circuit is a conduit or tube constructed and arranged so that, in use, airflow travels between two components of a respiratory therapy system (e.g., an RPT device and a patient interface). In some cases, there may be separate limbs of the air circuit for inhalation and exhalation. In other cases, a single limb air circuit is used for both inhalation and exhalation. 1.2.3.4 Humidifier
[0058] Delivery of the 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 for 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. Therefore, humidifiers often have the ability to humidify the airflow in addition to heating it.
[0059] A range of artificial humidification devices and systems are known, but they do not meet the special requirements of medical humidifiers.
[0060] Medical humidifiers are typically used when a patient is sleeping or resting (e.g., in a hospital) to increase the humidity and / or temperature of an air stream relative to the ambient air when needed. Bedside medical humidifiers may be compact. Medical humidifiers may be configured to only humidify and / or heat the air stream delivered to the patient, not the patient's surroundings. For example, while room-based systems (e.g., saunas, air conditioners, or evaporative coolers) may also humidify the air breathed into the patient's body, these systems also humidify and / or heat the entire room, which may be uncomfortable for occupants. Additionally, medical humidifiers may have more stringent safety constraints than industrial humidifiers.
[0061] Although many medical humidifiers are known, such medical humidifiers may suffer from one or more deficiencies, such that some provide inadequate humidification or are difficult or inconvenient for the patient to use.
[0062] 1.2.3.5 Ventilation Technology
[0063] Some forms of treatment systems may include a vent for expelling 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).
[0064] The vents may include orifices through which gas can flow when the mask is in use. Many such vents are noisy. Others may become blocked during use, resulting in insufficient pumping. Some vents may disrupt sleep for the patient 1000 and bed companion 1100, for example, due to noise or concentrated airflow.
[0065] ResMed Limited has developed several improved mask ventilation technologies, see: US Patent Nos. 5,629,999; ... and 5,629,999.
[0066] Conventional mask noise table (ISO17510-2:2007, 10cmH2O pressure at 1m)
[0067] [Table 2]
[0068] ( * (Only one sample was measured at 10cmH2O in CPAP mode using the test method specified in ISO3744)
[0069] The sound pressure values of various objects are listed below
[0070] [Table 3] [Prior art documents] [Patent documents]
[0071] [Patent Document 1] U.S. Patent No. 4,944,310 [Patent Document 2] U.S. Patent No. 6,532,959 [Patent Document 3] International Publication No. 1998 / 004310 [Patent Document 4] International Publication No. 2006 / 074513 [Patent Document 5] International Publication No. 2010 / 135785 [Patent Document 6] U.S. Patent No. 4,782,832 [Patent Document 7] International Publication No. 2004 / 073778 [Patent Document 8] U.S. Patent Application No. 2009 / 0044808 [Patent Document 9] International Patent Application No. WO2005 / 063328 [Patent Document 10] International Publication No. 2006 / 130903 [Patent Document 11] International Publication No. 2009 / 052560 [Patent Document 12] US Patent Application Publication No. 2010 / 0000534 [Patent Document 13] International Patent Application Publication No. 1998 / 034665 [Patent Document 14] International Patent Application Publication No. 2000 / 078381 [Patent Document 15] U.S. Patent No. 6,581,594 [Patent Document 16] US Patent Application Publication No. 2009 / 0050156 [Patent Document 17] US Patent Application Publication No. 2009 / 0044808 Summary of the Invention
[0072] 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 disorders, which medical devices have one or more of improved comfort, cost, effectiveness, ease of use and manufacturability.
[0073] A first aspect of the present technology relates to devices used in screening, diagnosing, monitoring, ameliorating, treating or preventing respiratory disorders.
[0074] Another aspect of the present technology relates to methods used in the screening, diagnosis, monitoring, amelioration, treatment or prevention of respiratory disorders.
[0075] An aspect of certain forms of the present technology is to provide methods and / or devices that improve patient compliance with respiratory therapy.
[0076] Another aspect of one form of the present technology relates to a patient interface that may include a plenum chamber, a seal-forming structure, and a positioning and stabilizing structure. The patient interface may further include a venting structure. The patient interface may be further configured to leave the patient's mouth exposed, or, if the seal-forming structure is configured to seal around the patient's nose and mouth, the patient interface may be further configured to allow the patient to breathe ambiently through their mouth in the absence of pressurized air flow through the plenum chamber inlet port.
[0077] Another aspect of one form of the present technology relates to a patient interface that includes: a plenum chamber pressurizable to a therapeutic pressure of at least 4 cmH2O above ambient air pressure, said plenum chamber including a plenum chamber inlet port sized and configured to receive a flow of air at the therapeutic pressure for breathing by a patient; and a seal-forming structure constructed and arranged to seal against an area of the patient's face surrounding an entrance to the patient's airways, said seal-forming structure having holes therein such that the flow of air at said therapeutic pressure is delivered to at least an entrance to the patient's nares, and wherein the seal-forming structure is configured to, in use, transfer said therapeutic pressure in the plenum chamber to a patient's breathing pressure. a positioning and stabilizing structure configured to hold the seal-forming structure in a therapeutically effective position on the patient's head, the positioning and stabilizing structure including a tie, the tie constructed and arranged to rest at least partially on an area of the patient's head above an upper ear-base point of the patient's head in use; and a venting structure configured to allow a continuous flow of gases exhaled by the patient to move from the interior of the plenum chamber to the ambient air, the venting structure being sized and shaped to maintain a therapeutic pressure within the plenum chamber in use. The patient interface is configured to leave the patient's mouth exposed, or alternatively, when the seal-forming structure is configured to seal around the patient's nose and mouth, the patient interface is configured to allow the patient to breathe from the ambient air through the plenum chamber inlet port in the absence of a flow of pressurized air.
[0078] Another aspect of one form of the present technology relates to a patient interface that may include: an elastomeric support wall, an elastomeric flange at an end of the elastomeric support wall, and a foam cushion mounted on the elastomeric support flange.
[0079] Another aspect of the present technology may relate to a patient interface configured to deliver a flow of respiratory gas at positive pressure to an entrance of a patient's airways, including at least the entrances of the patient's nares. The patient interface is configured to maintain a therapeutic pressure within a range of about 4 cmH2O to about 30 cmH2O above ambient pressure throughout the patient's respiratory cycle when in use while the patient is sleeping for the purpose of improving sleep-disordered breathing. The patient interface may include an elastomeric support wall forming at least a portion of a plenum chamber configured to receive the flow of respiratory gas at positive pressure. The patient interface may also include an elastomeric support flange positioned at an end of the elastomeric support wall and extending radially inward from the support wall, the support flange including a flap portion at a central upper region of the support flange that extends radially inward further than the remainder of the support flange. A foam cushion may be mounted on the support flange, the foam cushion configured to form a seal with the patient's face and including a mounting surface in contact with an outer surface of the support flange.
[0080] In further examples of any of the embodiments of the preceding paragraphs: (a) the foam cushion may have an attachment surface in contact with an outer surface of the support flange, the attachment surface of the foam cushion being widest at a location corresponding to the flap portion; (b) the outer surface of the support flange at the flap portion may have a positive curvature; (c) a central lower region of the support flange may have a positive curvature; (d) the curvature of the support flange within the flap portion may be greater than the curvature of the support flange within the central lower region; and (e) the central lower region of the support flange is located between a first pair of negative curvature regions of the support flange. (f) the flap portion may be disposed between a second pair of negative curvature regions of the support flange; (g) the support flange may include eight transition regions where the curvature of the outer surface of the support flange transitions from positive to negative or negative to positive; (h) the foam cushion may include a sealing surface configured to contact the patient's face in use; (i) the sealing surface of the foam cushion may have a positive curvature where the outer surface of the support flange has a positive curvature; (j) the sealing surface of the foam cushion may have a negative curvature where the outer surface of the support flange has a negative curvature; and (k) the flap portion. (l) the outer surface of the support flange in the central lower region may have a saddle shape, (m) the outer surface of the support flange in the flap portion may be disposed between a first pair of dome regions, (n) the outer surface of the support flange in the central lower region may be disposed between a second pair of dome regions, (o) the foam cushion may overhang the support flange, (p) the patient interface may further include a shell with an inlet opening configured to receive a flow of breathing gas at positive pressure, (q) the support wall may be attached to the shell, (r) the patient The interface may further include a positioning and stabilizing structure configured to support the shell, the support wall, and the foam cushion on the patient's head, (s) the positioning and stabilizing structure may be removably attachable to the shell, (t) the positioning and stabilizing structure may include a shroud and a plurality of headgear straps, (u) the shroud may be removably attachable to the shell at the inlet opening, and / or (v) the patient interface may further include an air delivery tube connectable to the shroud and the shell.
[0081] Another aspect of the present technology may relate to a patient interface configured to deliver a flow of respiratory gas at positive pressure to an entrance of a patient's airways, including at least the entrances of the patient's nares. The patient interface is configured to maintain a therapeutic pressure within a range of about 4 cmH2O to about 30 cmH2O above ambient pressure throughout the patient's respiratory cycle when in use while the patient is sleeping for the purpose of improving sleep-disordered breathing. The patient interface may include an elastomeric support wall forming at least a portion of a plenum chamber configured to receive the flow of respiratory gas at positive pressure. The patient interface may also include an elastomeric support flange positioned at an end of the elastomeric support wall and extending radially inward from the support wall. A foam cushion may be mounted on the support flange, the foam cushion configured to form a seal with the patient's face. The elastomeric wall thickness of the support flange may vary from a central upper region of the support flange to a central lower region of the support flange.
[0082] In further examples of any of the embodiments of the preceding paragraphs: (a) the elastomeric wall thickness of the support flange may be thinner in the central upper region and the central lower region than in an intermediate region between the central upper region and the central lower region; (b) the elastomeric wall thickness of the support flange may be thinner in the central upper region than in the central lower region; (c) the elastomeric wall thickness of the support wall may vary from the central upper region of the support wall to the central lower region of the support wall; and (d) the elastomeric wall thickness of the support wall may be thinner in an intermediate region between the central upper region and the central lower region. (e) the elastomeric wall thickness of the support wall may be thinner in the central upper region than in the central lower region; (f) the central upper region of the support wall may include an upper gusset; (g) the central lower region of the support wall may include a lower gusset; (g) the lower gusset may be more collapsible than the upper gusset; (h) the foam cushion thickness may be consistent throughout the foam cushion; and (i) the patient interface further includes a pair of compressible ribs in the lower region of the patient interface. (j) the compressible ribs may be attached to the support wall and the support flange, respectively, and may be configured to prevent deflection of at least a portion of the support flange due to positive pressure in the plenum chamber; (k) the support flange may include a flap portion at a central upper region of the support flange that extends further radially inward than the remainder of the support flange; (l) the flap portion may be configured to prevent deflection of at least a portion of the support flange due to positive pressure in the plenum chamber; and (m) the foam cushion may overhang the support flange. , (n) the patient interface may further include a shell with an inlet opening configured to receive a flow of breathing gas at positive pressure, (o) the support wall may be attached to the shell, (p) the patient interface may further include a positioning and stabilizing structure configured to support the shell, the support wall, and the foam cushion on the patient's head, (q) the positioning and stabilizing structure may be removably attachable to the shell, (r) the positioning and stabilizing structure may include a shroud and a plurality of headgear straps, and (s) the shroud(t) the patient interface may be removably attachable to the shell at the inlet opening, and (t) the patient interface may further include an air delivery tube connectable to the shroud and the shell.
[0083] Another aspect of the present technology relates to a patient interface that may include: a shell with an inlet opening configured to receive a flow of breathing gas, a support wall mounted on the shell, a support flange positioned at an end of the support wall, and a foam cushion mounted on the support flange.
[0084] Another aspect of the present technology may relate to a patient interface configured to deliver a flow of respiratory gas at a positive pressure to an entrance of a patient's airways, including at least the entrances of the patient's nares. The patient interface is configured to maintain a therapeutic pressure within a range of about 4 cmH2O to about 30 cmH2O above ambient pressure throughout the patient's respiratory cycle when in use while the patient is sleeping for the improvement of sleep-disordered breathing. The patient interface may include a shell with an inlet opening configured to receive the flow of respiratory gas at a positive pressure. The patient interface may also include an elastomeric support wall attached to the shell. The shell and the elastomeric support wall may cooperate to form at least a portion of a plenum chamber configured to receive the flow of respiratory gas at a positive pressure. An elastomeric support flange may be positioned at an end of the elastomeric support wall and may extend radially inward from the support wall. A foam cushion may be attached on the support flange. The foam cushion may be configured to form a seal with the patient's face. The elastomeric support wall and foam cushion may be configured such that a portion of the central longitudinal axis of the entrance opening outer than the patient interface extends at least partially downwardly when the patient interface is placed on the patient's face.
[0085] In further examples of any of the embodiments of the preceding paragraphs: (a) the support wall may be configured to pivot about a lateral axis extending through a lateral side of the support wall; (b) the support wall may be configured such that when the support wall pivots from a neutral position, the inlet opening in the shell rotates such that a portion of the inlet opening's central longitudinal axis outer than the patient interface rotates downward; (c) a lower portion of the support wall may include a lower gusset; (d) the lower gusset may be configured such that when the lower gusset collapses, the support wall pivots about the lateral axis; and (e) an upper portion of the support wall includes an upper gusset. (f) the patient interface may further include a positioning and stabilizing structure configured to support the shell, the support wall, and the foam cushion on the patient's head; (g) the positioning and stabilizing structure may be removably attachable to the shell; (h) the positioning and stabilizing structure may include a shroud and a plurality of headgear straps; (i) the shroud may be removably attachable to the shell at the inlet opening; and / or (j) the patient interface may further include an air delivery tube connectable to the shroud and the shell.
[0086] Another aspect of the present technology may relate to a patient interface configured to deliver a flow of respiratory gas at positive pressure to an entrance of a patient's airways, including at least the entrances of the patient's nares. The patient interface is configured to maintain a therapeutic pressure within a range of about 4 cmH2O to about 30 cmH2O above ambient pressure throughout the patient's respiratory cycle when in use while the patient is sleeping for the purpose of improving sleep-disordered breathing. The patient interface may include an elastomeric support wall forming at least a portion of a plenum chamber configured to receive the flow of respiratory gas at positive pressure. The patient interface may further include an elastomeric support flange positioned at an end of the elastomeric support wall and extending radially inward from the support wall. A foam cushion may be mounted on the support flange. The foam cushion may include a mounting surface configured to attach to the support flange and may include a sealing surface configured to contact and form a seal with the patient's face. The foam cushion may bend about a bisecting surface that bisects the foam cushion and extends through a central upper region and a central lower region of the foam cushion. The mounting and sealing surfaces may be wider at the bisecting surface than at the remainder of the foam cushion.
[0087] In further examples of any of the embodiments of the preceding paragraphs: (a) the foam cushion may include a perimeter surface extending from the mounting surface to the sealing surface; (b) the perimeter surface may be concave in a central lower region; (c) the mounting surface and the sealing surface may have the same width throughout the foam cushion; (d) the foam cushion may overhang the support flange by the same amount throughout the foam cushion; (e) the patient interface may include a shell with an inlet opening configured to receive a flow of breathing gas at positive pressure; (f) the support wall may be attached to the shell; and (g) the patient interface may include a support wall. The patient interface may further include a positioning and stabilizing structure configured to support the shell, the support wall, and the foam cushion on the patient's head; (h) the positioning and stabilizing structure may be removably attachable to the shell; (i) the positioning and stabilizing structure may include a shroud and a plurality of headgear straps; (j) the shroud may be removably attachable to the shell at the inlet opening; and / or (k) the patient interface may further include an air delivery tube connectable to the shroud and the shell.
[0088] 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.
[0089] One aspect of the present technology is a method for manufacturing a device.
[0090] 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.
[0091] 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).
[0092] 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 humidifier tank that can be cleaned at the patient's home, for example with soapy water, without the need for special cleaning equipment.
[0093] 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 disorders (e.g., sleep-disordered breathing).
[0094] 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.
[0095] Other features of the present technology will become apparent in light of the information contained in the following detailed description, abstract, drawings, and claims. [Brief explanation of the drawings]
[0096] 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 as follows: 3.1 Respiratory Treatment Systems [Figure 1] 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. [Figure 2]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 positive pressure air supply 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 [Figure 3] Outline of the human respiratory system including nose and oral cavity, larynx, vocal folds, esophagus, trachea, bronchi, lungs, alveolar sacs, heart and diaphragm. [Figure 4] Diagram of the human upper respiratory tract including the nasal cavity, nasal bones, lateral nasal cartilages, greater alar cartilages, nostrils, upper lip, lower lip, larynx, hard palate, soft palate, oropharynx, tongue, epiglottis, vocal folds, esophagus, and trachea. [Figure 5] A front view of the face including several features of the surface anatomy including upper lip, vermilion, lower lip, mouth width, medial canthus, alae of the nose, nasolabial folds, and corners of the mouth. The superior, inferior, radially inward, and radially outward directions are also described. [Figure 6] A lateral view of the head including several features of the surface anatomy, including the glabella, serrion, nasal tip, subnasal point, upper lip, lower lip, supramenton, nasal ridge, alar crest, superior and inferior ear base points. The directions of superior and inferior, and anterior and posterior are also indicated. [Figure 7]
[0023] Figure 1 is a further lateral view of the head, showing the approximate locations of the Frankfort horizontal and nasolabial angle. The coronal view is also shown. [Figure 8] A bottom view of the nose including several features including the nasolabial fold, lower lip, upper lip vermilion, nostrils, subnasal point, columella, nasal tip, major axis of the nostrils and midsagittal plane. [Figure 9] FIG. 1 is a side view of the surface features of the nose. [Figure 10] Shown are the subcutaneous structures of the nose, including the lateral nasal cartilages, nasal septum cartilage, greater alar cartilage, lesser alar cartilage, nasal sesamoid cartilage, nasal bones, epidermis, adipose tissue, frontal process of the maxilla, and fibro-adipose tissue. [Figure 11]The mid-nasal incision is shown approximately a few millimeters from the midsagittal plane, with particular attention paid to the septal cartilage and the medial crus of the greater alar cartilage. [Figure 12] FIG. 1 is a frontal bony view of the skull, including the frontal, nasal, and cheekbones, with the nasal turbinates shown along with the maxilla and mandible. [Figure 13] This is a side view of the skull, showing the outline of the head surface and some muscles. The following bones are shown: frontal, sphenoid, nasal, zygomatic, maxilla, mandible, parietal, temporal, and occipital. The mental protuberance is shown. The following muscles are shown: digastric, masseter, sternocleidomastoid, and trapezius. [Figure 14] An anterior lateral view of the nose is shown. 3.3 Patient Interface [Figure 15] 14 shows a patient interface in the form of a nasal mask in accordance with one form of the present technology. [Figure 16] FIG. 1 is a perspective view of an exemplary patient interface. [Figure 17] FIG. 10 is another perspective view of an exemplary patient interface. [Figure 18] 1 illustrates an exploded view of an exemplary patient interface. [Figure 19] FIG. 1 is a side view of an exemplary foam cushion. [Figure 20] FIG. 10 is a rear view of an exemplary patient interface. [Figure 21] FIG. 10 is a rear view of an exemplary foam cushion in an installed state. [Figure 22] FIG. 10 is another rear view of the exemplary foam cushion in an unattached state. [Figure 23] FIG. 10 is another side view of an exemplary patient interface. [Figure 24] FIG. 1 is a side view of an exemplary patient interface being installed on a patient's face. [Figure 24A] FIG. 25 is a side view of the patient interface of FIG. 24 without the patient's face. [Figure 24B] FIG. 25 is a side view of the patient interface of FIG. 24 when the patient interface is pivoted. [Figure 25] FIG. 1 is a perspective view of an exemplary frame assembly. [Figure 26] An exemplary positioning and stabilization system is shown. 3.3.1 Surface Geometry and Reference Points [Figure 27] 28 is a schematic cross-sectional view of the structure cut at a point, with the outward normal at this point shown. The curvature at this point has a positive sign and a relatively large magnitude compared to the magnitude of the curvature shown in FIG. 28. [Figure 28] 27 is a schematic cross-sectional view of the structure cut at a point, with the outward normal at this point shown. The curvature at this point has a positive sign and a relatively small magnitude compared to the magnitude of the curvature shown in FIG. [Figure 29] Schematic cross-section of a structure cut at a point, where the outward normal at this point is shown and the curvature value at this point is zero. [Figure 30] 31 is a schematic cross-sectional view of the structure cut at a point, with the outward normal at this point shown. The curvature at this point has a negative sign and a relatively small magnitude compared to the magnitude of the curvature shown in FIG. [Figure 31] 30 is a schematic cross-sectional view of the structure cut at a point, with the outward normal at this point shown, and the curvature at this point having a negative sign and a relatively large magnitude compared to the magnitude of the curvature shown in FIG. [Figure 32] 1 shows a mask cushion including two pillows, the outer surface of the cushion is shown, the edge of the surface is shown, and the dome and saddle regions are shown. [Figure 33] 1 shows a cushion for a mask. The outer surface of the cushion is illustrated. The edge of the surface is illustrated. The path on the surface between points A and B is illustrated. The linear distance between A and B is illustrated. Two saddle regions and a dome region are illustrated. [Figure 34] The surface of a structure is shown, with a one-dimensional hole drilled into the surface. The planar curves shown form the boundary of the one-dimensional hole. [Figure 35]35 is a cross-sectional view through the structure of Figure 34. The surfaces shown bound a two-dimensional hole in the structure of Figure 34. [Figure 36] 35 is a perspective view of the structure of FIG. 34 including two-dimensional and one-dimensional holes, and the surfaces bounding the two-dimensional holes in the structure of FIG. 34 are also shown. [Figure 37] 1 shows a mask with an inflatable bladder as a cushion. [Figure 38] 38 is a cross-sectional view of the mask of FIG. 37 showing the inner surface of the bladder, which bounds the two-dimensional hole in the mask. [Figure 39] 38 shows a further cross section through the mask of Figure 37. The interior surface is also shown. [Figure 40] Demonstrates the left-hand rule. [Figure 41] Demonstrates the right-hand rule. [Figure 42] 1 shows the left ear including the left ear helix. [Figure 43] The right ear is shown, including the right ear helix. [Figure 44] Shows a right-handed spiral. [Figure 45] 1 is a diagram of a mask including the signature of the twist of the space curve defined by the edges of the sealing membrane in different regions of the mask. [Figure 46] FIG. 30 is a diagram of the patient interface 3000 showing the sagittal and medial contact surfaces. [Figure 47] A posterior view of the plenum chamber of Figure 46. Directions in the view are perpendicular to the central contact plane. In Figure 47, the sagittal plane bisects the patient interface 3000 into a left hand side and a right hand side. [Figure 48] 48 is a cross-sectional view through the patient interface of FIG. 47, the cross-section being taken in the sagittal plane shown in FIG. 47. The "central contact" plane is shown. The central contact plane is perpendicular to the sagittal plane. The orientation of the central contact plane corresponds to the orientation of the tendon 3210. This tendon rests on the sagittal plane and only contacts the cushion of the patient interface at two points on the sagittal plane (i.e., superior point 3220 and inferior point 3230). Depending on the geometry of the cushion in this region, the central contact plane may contact both the superior and inferior points. [Figure 49] The patient interface 3000 of Figure 46 is shown in use position on the face. The sagittal plane of the patient interface 3000 generally coincides with the mid-sagittal plane of the face when the patient interface is in use position. The central contact surface generally corresponds to the "plane of the face" when the patient interface is in use position. In Figure 49, the patient interface 3000 is of a nasal mask, with the upper point 3220 resting approximately on the selion and the lower point 3230 resting on the upper lip. 3.4 RPT Device [Figure 50] 1 shows an RPT device in accordance with one form of the present technology. [Figure 51] 1 is a schematic diagram of an air pressure path 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. [Figure 52] FIG. 1 is a schematic diagram of the electrical components of an RPT device in accordance with one aspect of the present technology. [Figure 53] 3.5 Humidifier [Figure 54] FIG. 10 is an isometric view of a humidifier in accordance with one form of the present technology. [Figure 55] FIG. 10 is an isometric view of a humidifier in accordance with one form of the present technology, showing the humidifier reservoir 5110 removed from the humidifier reservoir dock 5130. [Figure 56] FIG. 1 is a schematic diagram of a humidifier in accordance with one form of the present technology. DETAILED DESCRIPTION OF THE INVENTION
[0097] 4 Detailed description of an example of this technology Before describing the present technology in further detail, it should be understood that the present technology is not limited to the specific examples described herein, which may vary. It should also be understood that the terminology used in the present disclosure is for the purpose of describing the specific examples described herein, and is not intended to be limiting.
[0098] The following description is provided in connection with various examples that may share one or more common characteristics and / or features. It should be understood that one or more features of any one example may be combined with one or more features of another example or other examples. In addition, any single feature or combination of features in any of these examples may constitute an additional example. 4.1 Treatment
[0099] In one form, the present technology includes a method for treating disordered breathing, the method including applying positive pressure to the entrance of the airways of a patient 1000.
[0100] In a particular example of the present technology, a supply of air at positive pressure is provided to the patient's nasal passages via one or both nostrils.
[0101] In certain instances of the present technology, mouth breathing is restricted, limited or prevented. 4.2 Respiratory Treatment Systems
[0102] In one form, the present technology includes a respiratory treatment system for the treatment of respiratory disorders. The respiratory treatment system may include an RPT device 4000 that delivers airflow to a patient 1000 via an air circuit 4170 and a patient interface 3000 or 3800. 4.3 Patient Interface
[0103] A non-invasive patient interface 3000 in accordance with one aspect of the present technology may include the following functional features: a seal-forming structure 3100, a shell or chassis 3200, a frame assembly 3300, a positioning and stabilizing structure 3400, a vent 3500, and a form of connection port 3210 for connection to an air circuit 4170. In some forms, the functional features may be provided by one or more physical components. In some forms, one physical component may provide one or more functional features. In use, the seal-forming structure 3100 may be positioned to surround the entrance(s) to the patient's 1000 airway so as to maintain positive pressure at the entrance(s) to the airway. Thus, the sealed patient interface 3000 may be suitable for delivery of positive pressure therapy.
[0104] 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.
[0105] A patient interface 3000 in accordance with one form of the present technology may be constructed and arranged to provide an air supply at a positive pressure of at least 6 cmH2O relative to ambient.
[0106] A patient interface 3000 in accordance with one form of the present technology may be constructed and arranged to provide an air supply at a positive pressure of at least 10 cmH2O relative to ambient.
[0107] A patient interface 3000 in accordance with one form of the present technology may be constructed and arranged to provide an air supply at a positive pressure of at least 20 cmH2O relative to ambient. 4.3.1 Seal formation structure
[0108] In one form of the present technology, the seal-forming structure 3100 may provide a target seal-forming area and may further provide a cushioning function. The target seal-forming area may be the area where a seal will occur in the seal-forming structure 3100. The area where a seal actually occurs (i.e., the actual sealing surface) may vary from patient to patient in a given treatment session and from day to day, depending on a range of factors (e.g., placement of the patient interface on the face, tension in the positioning and stabilizing structure, and the shape of the patient's face).
[0109] In one form, the target seal-forming area may be located on an exterior surface of the seal-forming structure 3100 .
[0110] In certain forms of the present technology, the seal-forming structure 3100 may be constructed (at least in part) from a biocompatible material (eg, silicone rubber).
[0111] A seal-forming structure 3100 according to the present technology may be constructed from a soft, flexible and resilient material (eg, silicone).
[0112] In certain forms of the present technology, a system is provided that includes more than one seal-forming structure 3100. Each seal-forming structure 3100 is configured to accommodate a different size and / or shape range. For example, the system may include one form of seal-forming structure 3100 that is suitable for large head sizes but not small head sizes, and another that is suitable for small head sizes but not large head sizes. 4.3.1.1 Sealing mechanism
[0113] In one form, the seal-forming structure may include a compression seal or gasket seal that is constructed and arranged to be in compression in use due to, for example, elastic tension in the positioning and stabilizing structure.
[0114] In certain forms of the present technology, the seal-forming structure may include one or more of a pressure-assisted sealing flange, a compression seal, a gasket seal, a tension section, and a section having a sticky or adhesive surface. 4.3.1.2 Nasal bridge or nasal ridge area
[0115] In one form, the non-invasive patient interface 3000 may include a seal-forming structure that, in use, forms a seal on the nasal bridge or nasal ridge region of the patient's face.
[0116] In one form, the seal-forming structure may include a saddle-shaped region constructed to form a seal over the nasal bridge or nasal ridge region of the patient's face in use. 4.3.1.3 Upper lip area
[0117] In one form, the non-invasive patient interface 3000 may include a seal-forming structure that, in use, forms a seal over the upper lip region of the patient's face (ie, the upper lip).
[0118] In one form, the seal-forming structure may include a saddle-shaped region constructed to form a seal over the upper lip region of the patient's face in use. 4.3.1.4 Jaw area
[0119] In one form, the non-invasive patient interface 3000 may include a seal-forming structure that, in use, forms a seal over the chin area of the patient's face.
[0120] In one form, the seal-forming structure may include a saddle-shaped region constructed to form a seal over the chin region of the patient's face in use. 4.3.1.5 Foam cushions and undercushions
[0121] As shown in FIGS. 16-24B , the seal-forming structure 3100 may include a foam cushion 3105 mounted on an undercushion 3110, which may be mounted on a shell or chassis 3200. When the seal-forming structure 3100 is attached to a patient's face, the foam cushion 3105 may sealingly engage with the patient's face. The undercushion 3110 may provide support for the foam cushion 3105 and assist in forming a seal with the patient's face. The shell or chassis 3200 may provide rigid support for maintaining the shape of the seal-forming structure 3100. The shell or chassis 3200 may also provide an interface for retention of the frame assembly 3300.
[0122] The foam cushion 3105 can be a soft memory foam. For example, the foam cushion 3105 can be made of a polyether and / or polyurethane material. Additionally, the foam cushion 3105 can be configured to maintain a compressive seal against the patient's skin.
[0123] FIG. 22 illustrates the foam cushion 3105 prior to attachment and / or securing to the undercushion 3110. As shown, the foam cushion 3105 may have a sealing surface 3115 configured for sealing engagement with the patient's face. The attachment surface 3120 may face the sealing surface 3115 and engage with a corresponding surface of the undercushion 3110. When the foam cushion 3105 is in an unattached state, the sealing surface 3115 and the attachment surface 3120 may be substantially planar. Manufacturing the foam cushion 3105 as a substantially planar component may make the manufacturing process simpler and easier. Additionally, the thickness of the foam cushion 3105 may be substantially consistent throughout the foam cushion 3105, such that the distance between the sealing surface 3115 and the attachment surface 3120 may be substantially the same throughout the foam cushion 3105. Having a consistent thickness for the foam cushion 3105 may simplify the manufacturing process for the foam cushion 3105, making it easier and more cost-effective to manufacture the foam cushion 3105. Such a consistent thickness may also facilitate assembly of the foam cushion 3105 to the undercushion 3110.
[0124] The hole 3125 may be formed through a central region of the foam cushion 3105 and may be bounded by an inner surface 3126, thereby forming a gas flow path through the foam cushion 3105. At the same time, the periphery of the foam cushion 3105 may be formed by a peripheral surface 3127. Additionally, the sealing surface 3115 may meet the inner surface 3126 at a first rim 3130 at one end of the hole 3125, and the mounting surface 3120 may meet the inner surface 3126 at a second rim 3135 at the other end of the hole 3125. The widths of the sealing surface 3115 and the mounting surface 3120 (i.e., the distance between the rims of the hole 3125 and the peripheral surface 3127 of the foam cushion 3105) may vary.
[0125] 22, the width of the sealing surface 3115 and the mounting surface 3120 may be greater in a central upper region (or nasal bridge region) 3140 of the foam cushion 3105 and a central lower region (or upper lip region) 3142 of the foam cushion 3105 than in other regions of the foam cushion 3105. The central upper region 3140 may be configured to engage the bridge of the patient's nose, and the central lower region 3142 may be configured to engage the patient's upper lip region (upper lip) and / or the patient's bridge of the nose.
[0126] The increased width (wider regions 3145 and 3150) may form a depression within the hole 3125, causing the hole 3125 to become narrower in the central upper region 3140 and central lower region 3142. Additionally, the perimeter 3127 of the foam cushion 3105 may turn inward in the central lower region 3142, creating a concave (or positive curvature) portion of the perimeter 3127. By turning the perimeter 3127 inward, a depression may be created within the foam cushion 3105, which may assist in providing increased comfort in the patient's upper lip area. The remaining portion of the perimeter 3127 may be convex (or have a negative curvature). At the same time, the inner surface 3126 in the central upper region 3140 and the central lower region 3142 may be convex (or may have a negative curvature), while the remainder of the inner surface 3126 may be concave (or may have a positive curvature).
[0127] As can be seen in FIG. 22, the shape of the hole 3125 may differ from the shape of the periphery of the foam cushion 3105 due to the recess in the periphery at the central lower location and due to the wider portions of the mounting surface 3115 and the sealing surface 3120 in the central upper region 3140 and the central lower region 3142.
[0128] The shape of the foam cushion 3105 may conform to the nuances and / or undulations in the user's face. Additionally, when attached to the undercushion 3110 (as shown in FIG. 21 ), the foam cushion 3105 may fold or bend along the bisecting plane 3155. The bisecting plane 3155 bisects the foam cushion 3105 and extends through the central upper region 3140 and the central lower region 3142. When attached to the undercushion 3110, the central upper region 3140 of the foam cushion 3105 may be positioned to engage the patient's nasal bridge. Additionally, the central lower region 3142 of the foam cushion 3105 may be positioned to engage the patient's upper lip region (upper lip) and / or bridge of the nose. Thus, the foam cushion 3105 may have an enlarged sealing area in the widened regions 3145 and 3150 (i.e., at the patient's nasal bridge and upper lip region (or upper lip)). The sealing area of the foam cushion 3105 in the remaining areas (ie, the portion of the foam cushion 3105 that contacts and forms a seal against the patient's face) may be smaller than in the wide regions 3145 and 3150.
[0129] The increased sealing area in the wider regions 3145 and 3150 may result in additional surface area engaging the user's nasal bridge and upper lip region (or upper lip). Additionally, the additional surface area in the central upper region 3140 of the foam cushion 3105 (i.e., the portion configured to engage the patient's nasal bridge) may improve the seal between the foam cushion 3105 and the patient's nasal bridge and upper side by providing sufficient surface area to maintain a seal with the patient's nose in dynamic situations (e.g., when the seal-forming structure 3100 moves relative to the user's nose). The additional surface area in the central lower region 3142 may also form a ridge that may prevent the foam cushion 3105 from occluding the patient's nostrils (e.g., when the seal-forming structure 3100 moves relative to the patient's nose (e.g., when the mask rides up)). In particular, the ridges may engage the bridge of the patient's nose before the remainder of the lower portion of the foam cushion 3105 can reach the patient's nostril openings, thereby preventing the remainder of the lower portion of the foam cushion 3105 from reaching and blocking the patient's nostril openings. Without the ridges, there would be nothing to block the lower portion of the foam cushion 3105 from reaching the patient's nostril openings when the patient interface is raised.
[0130] When mounted on the undercushion 3110, the shape of the foam cushion 3105 may deform, such that the curvature of the sealing surface 3115 (which may be configured to sealingly engage the bridge of the nose and / or upper lip of the patient) in the central lower region 3142 may be positive across the bisecting plane 3155. It is contemplated that the central lower region 3142 may also be a saddle region. A pair of lower corner regions 3156 may be provided on the sides of the central lower region 3142 that are configured to engage the lower corners of the patient's nose. The sealing surface 3115 in the pair of lower corner regions 3156 may have a negative curvature. Additionally, it is contemplated that each of the pair of lower corner regions 3156 may be dome-shaped.
[0131] The sealing surface 3115 in the central upper region 3140 (which may be formed to sealingly engage the bridge of the patient's nose) may be folded along the bisecting plane 3155. Alternatively, the sealing surface 3115 in the central upper region 3140 may have a positive curvature across the bisecting plane 3155. It is contemplated that the central upper region 3140 may be saddle-shaped. It is further contemplated that the positive curvature in the central upper region 3140 may be greater than the positive curvature in the central lower region 3142. In addition, a pair of upper regions 3157 are provided on the sides of the central upper region 3140 and are configured to engage the upper side of the patient's nose. The sealing surface 3115 in the upper regions 3157 may have a negative curvature. In addition, it is contemplated that each of the pair of upper regions 3157 may be dome-shaped.
[0132] The upper left region 3157 and the lower left corner region 3156 can be separated from one another by a middle region of positive curvature 3158. Similarly, the upper right region 3157 and the lower right corner region 3156 can be separated from one another by a middle region of positive curvature 3159. The positive curvature of both middle regions 3158 and 3159 can span a lateral axis 3161 extending from middle region 3158 to middle region 3159. Additionally, both middle regions 3158 and 3159 can be saddle-shaped.
[0133] As noted above, the sealing surface 3115 of the foam cushion 3105 may have four dome-shaped regions, four saddle-shaped regions (or three saddle-shaped regions (if the central upper region 3140 is not saddle-shaped)), and eight transition regions between the dome and saddle regions where the shape of the sealing surface 3115 transitions from a saddle to a dome or vice versa.
[0134] The undercushion 3110 may be constructed of a single-wall translucent silicone rubber. The elastomeric wall thickness of the undercushion wall may be varied in different sections to ensure a wider fit range and to fine-tune the spring force generated by the undercushion 3110 to maximize compression of the foam cushion 3105. The undercushion 3110 itself cannot create a seal with the patient's face (i.e., the seal may be created between the foam cushion 3105 and the patient's face). Instead, the undercushion 3110 may provide additional refractive properties, allowing the seal-forming structure 3100 to dynamically move with the patient's face (while minimizing compression losses to the foam cushion 3105). Purposefully thinning the undercushion 3110 in sensitive areas of the patient's face (particularly the patient's nose bridge area and / or the patient's upper lip area) may optimize comfort.
[0135] The undercushion 3110 may include a support wall 3160 that extends from the chassis 3200 to the foam cushion 3105 and provides structural support to the foam cushion 3105. The support wall 3160 may terminate in a support flange 3165. The support flange 3165 may be cantilevered from the support wall 3160. Additionally, the support flange 3165 may extend radially inward from the support wall 3160 to the center of the air flow path within the patient interface 3000. The support flange 3165 may have an outer surface 3162. The mounting surface 3120 of the foam seal 3105 may be secured to the outer surface 3162. The securing of the mounting surface 3120 to the support flange 3165 may be by bonding or adhesive. The adhesive may be liquid silicone rubber.
[0136] The support wall 3160 may include an upper gusset 3170 in an upper region of the support wall 3160 that corresponds to the bridge of the patient's nose. The upper gusset 3170 may straddle the bisecting plane 3155. Additionally, the thickness of the support wall 3160 in the central upper region (or apex or nasal bridge region) 3140 may be thinner than the thickness in other regions of the support wall 3160. Additionally, the thickness of the support wall 3160 in the central upper region (or apex or nasal bridge region) 3140 may decrease from the upper gusset 3170 to the support flange 3165. For example, the thickness of the support wall 3160 at the upper gusset 3170 (or at least the recessed portion of the gusset 3170) may be 0.70 to 0.75 mm (e.g., 0.72 mm), while the thickness of the portion of the support wall 3160 between the upper gusset 3170 and the support flange 3165 may be 0.40 to 0.45 mm (e.g., 0.42 mm).
[0137] The upper gusset 3170 and thinner elastomeric wall may allow for increased refractive power in the nasal bridge portion of the seal-forming structure 3100 (without increasing compression of the foam cushion 3105). Such increased refractive power may lead to increased comfort, reduced pressure across the bridge of the patient's nose, and reduced redness on the patient's face.
[0138] The support wall 3160 may include a pair of thickened regions 3175 on the sides of the upper gusset 3170. The thickened regions 3175 may provide stable support for a proper seal at the patient's alar / facial junction. The thickened regions 3175 may be the thickest portion of the support wall 3160. For example, the thickness of the thickened regions 3175 may be 1.80 to 1.90 mm (e.g., 1.85 mm). The thickened regions 3175 may not extend all the way to the support flange 3165. Alternatively, the thickened regions 3175 may not extend all the way to the support flange 3165. The thickened regions 3175 may increase seal stability in areas where leakage and discomfort are most likely to occur.
[0139] The lower gusset 3180 can be positioned opposite the upper gusset 3170 in the central lower region 3142 of the seal-forming structure 3100. The lower gusset 3180 can straddle the bisection plane 3155. The elastomeric wall thickness of the support wall 3160 in the lower gusset 3180 and central lower region (soft upper lip region) 3142 can be thinner than the elastomeric wall thickness in the remainder of the support wall 3160 (excluding the portion of the support wall 3160 in the upper gusset 3170 and central upper region 3140). For example, the elastomeric wall thickness 3160 of the support wall in the central lower region 3142 and the lower gusset 3180 can be in the range of 0.55 mm to 0.85 mm. It is contemplated that the bottom of the support wall 3160 (e.g., the central portion of the lower gusset 3180) may be 0.55 mm thick, and the portion of the support wall 3160 spanning the bottom (e.g., the lateral portion of the lower gusset 3180) may be 0.85 mm thick.
[0140] The remaining portion of the support wall 3160 may be 1.50 to 1.70 mm (e.g., 1.60 mm). The upper gusset 3170 and the lower gusset 3180 may be arranged such that collapse of the lower gusset 3180 may cause the seal-forming structure 3100 to pivot about an axis 3185 extending through the seal-forming structure 3100 between the upper gusset 3170 and the lower gusset 3180. It is contemplated that in some configurations, the axis 3185 and the lateral axis 3161 may be the same axis. In other configurations, these axes may be parallel to one another. It is further contemplated that the thickened region 3175 may form a pivot point on the support wall 3160 about which the seal-forming structure 3100 may pivot. Alternatively, the pivot point on the support wall 3160 may be located between the thickened region 3175 and the bottom gusset 3180 (ie, outside the thickened region 3175).
[0141] It is contemplated that the depth of the one or more indentations in the bottom gusset 3185 may be consistent or may vary. For example, the depth of the one or more indentations may increase approaching the lateral sides of the bottom gusset 3185, so that the one or more indentations in a central region of the bottom gusset 3185 are shallower than in the lateral regions. Alternatively, the one or more indentations may be deepest in the central region and shallower approaching the lateral regions.
[0142] Additionally, if there are multiple indentations, the depths of the indentations may vary. For example, the depth of one or more of the indentations may be consistent, while the thickness of one or more of the indentations may vary as described in the paragraph above. As noted above, it should also be understood that the depth of one or more of the indentations in the top gusset 3170 may vary or may be consistent.
[0143] The support flange 3165 may have a surface (i.e., outer surface 3162) to which the foam cushion 3105 may be attached. It is contemplated that the angle α between the support wall 3160 and the support flange 3165 may be 90 degrees or less. Additionally, the support flange 3165 may extend from the periphery of the seal-forming structure 3100 into the interior of the seal-forming structure 3100 (i.e., inward from the periphery). Additionally, the support flange 3165 may be flexible, which may allow the angle α between the support flange 3165 and the support wall 3160 to vary depending on the amount of force acting on the foam cushion 3105 (and thus the amount of force acting on the support flange 3165). In a neutral state (i.e., when there is no force acting on the seal-forming structure 3100), the angle α may vary in different regions of the support flange 3165. Such different angles α may allow the foam cushion 3105 to follow the contours of the patient's face.
[0144] The support flange 3165 may be constructed of the same material as the support wall 3160. Additionally, the support flange 3165 may be integrally formed with the support wall 3160. It is contemplated that the support flange 3165 may simply be an extension of the support wall 3160 that is bent radially inwardly into the interior of the seal-forming structure 3100. Alternatively, the support flange 3165 may be formed separately from the support wall 3160 and assembled to the support wall 3160. In this configuration, the support flange 3165 may be secured to the support wall 3160 by mechanical fasteners, adhesive, or bonding.
[0145] Because the support flange 3165 is flexible, the support flange 3165 may flex due to the pressure of breathing gas within the patient interface 3000. When the support flange 3165 flexes in this manner, the angle α between the support flange 3165 and the support wall 3160 exceeds a predetermined threshold, creating an undesirable condition known as "burst." The occurrence of "burst" may lead to a compromise of the sealing ability of the foam cushion 3105. The threshold angle may be greater than 90 degrees. In some cases, the threshold angle may be less than 90 degrees. It is contemplated that the threshold angle may be any angle that may compromise the seal-forming ability of the foam cushion 3105. Alternatively, the threshold angle may be the angle α that exists between the support flange 3165 and the support wall 3160 when the seal-forming structure 3100 is in a neutral state (i.e., when there is no force acting on the support flange 3165).
[0146] To prevent "blowout," the seal-forming structure 3100 may include a preventative component. For example, the seal-forming structure 3100 may include one or more ribs 3190 connected to the support flange 3165 and the support wall 3160. The ribs 3190 may prevent the portion of the support flange 3165 attached to the ribs from flexing outward, which would increase the angle α. The ribs 3190 may also reduce the amount of outward flexing of the support flange 3165 in areas adjacent the ribs 3190. It is contemplated that the ribs 3190 may be flexible and / or compressible, thereby allowing the support flange 3165 to move relative to the support wall 3160 when the foam cushion 3105 is subjected to a compressive force. For example, the ribs 3190 may allow the support flange 3165 to move, reducing the angle α between the support wall 3160 and the support flange 3165.
[0147] 20, a pair of ribs 3190 may be positioned adjacent to the bottom gusset 3180 (the second rib 3190 of the pair is covered by the foam cushion 3105). It is contemplated that the thickness of each rib 3190 may be 0.60 to 0.80 mm (e.g., 0.70 mm). Additionally, a bisecting surface 3155 may be provided on the side of the rib 3190 within the lower region of the foam cushion 3105.
[0148] As can be seen in FIGS. 20 and 23 , the support flange 3165 can extend a certain distance from the support wall 3160. The distance the support flange 3165 extends from the support wall 3160 is the width of the support flange 3165. The width of the support flange 3165 can provide a platform or surface to which the mounting surface 3120 of the foam cushion 3105 can attach. As can be seen in FIG. 23 , the width of the support flange 3165 can be less than the width of the mounting surface 3120 of the foam cushion 3105. Thus, a portion of the mounting surface 3120 can overhang the support flange 3165. Allowing the foam cushion 3105 to overhang the support flange 3165 can facilitate rotation of the foam cushion 3105 and help resist "pop-out." However, rotating too far inward can cause discomfort due to contact with the undercushion 3110 and can also increase the load on the patient's face. Therefore, overhang in areas where discomfort is likely to occur (for example, the bridge of the nose area and the upper lip area (or upper lip)) can be relatively reduced.
[0149] Another component configured to prevent "bursting" of the seal-forming structure 3100 may be an extension region (or flap portion) 3195 of the support flange 3165. The extension region 3195 may be located in a central upper region of the seal-forming structure 3100 (i.e., the portion of the seal-forming structure 3100 configured to engage the bridge of the patient's nose) and may be the region of the support flange 3165 within which the width of the support flange 3165 is greatest. The extension region 3195 may take the form of a flap, extending beyond the width of an adjacent portion of the support flange 3165.
[0150] Additionally, the extended region 3195 may span a bisecting plane 3155 that bisects the seal-forming structure 3100 through the central upper region 3140 and the central lower region 3142 of the seal-forming structure 3100. The extended region 3195 may have a positive curvature (i.e., a concave shape) across the bisecting plane 3155. Additionally, it is contemplated that the outer surface 3162 of the extended region 3195 may have a saddle shape. The increased width and curved surface of the extended region 3195 may assist in resistance to "blowout" by withstanding a reversal of the curvature of the extended region 3195 (i.e., the positive curvature of the outer surface 3162 changing to a negative curvature) due to pressure within the plenum chamber. Thus, the extended region 3195 may eliminate the need for ribs in the upper region of the seal-forming structure 3100. 23, the increased width of the extended region 3195 may result in the overhang of the central upper region 3140 of the foam cushion 3105 being less than the overhang of the central lower region 3142 of the foam cushion 3105. Alternatively, the increased width of the widened region 3145 may result in the overhang over the support flange 3165 of the foam cushion 3105 being consistent throughout the seal-forming structure 3100.
[0151] The extension region 3195 of the support flange 3165 can correspond to the central upper region 3140 of the foam cushion 3105. In addition, the upper region 3157 can overlap the lateral sides of the extension region 3195 of the support flange 3165. Alternatively, the upper region 3157 can be adjacent to the extension region 3195 of the support flange 3165.
[0152] It is contemplated that the elastomeric wall thickness of the support flange 3165 may be different in different regions. For example, the elastomeric wall thickness of the support flange 3165 may be thinner in the central upper region 3140 and the central lower region 3142 than in other regions of the support flange 3165. A thinner elastomeric wall of the support flange 3165 may allow the foam cushion to be more flexible in areas that are more sensitive to pressure. Additionally, providing ribs 3190 in the lower region of the seal-forming structure 3100 and providing extension regions 3195 in the central upper region 3140 may allow the support flange 3165 to be thinner in these regions without compromising resistance to "blowout."
[0153] It is further contemplated that the elastomeric wall thickness of the support flange 3165 may increase as it approaches the support wall 3160. For example, the end of the support flange 3165 most distal from the support wall 3160 (i.e., the cantilever end) may be thinner than the end of the support flange 3165 attached to the support wall 3160. The elastomeric wall thickness of the support flange 3165 may change in an abrupt "step" or may gradually taper. Additionally, the support flange 3165 may taper or "step" in certain regions of the support flange 3165 (e.g., the central lower region 3145) and have a consistent elastomeric wall thickness in other regions (e.g., the middle region). Alternatively, the elastomeric wall thickness of all regions of the support flange may be consistent. By thickening the support flange 3165 where it connects to the support wall 3160, the support flange 3165 may be reinforced or made more resistant to flexing or "bursting".
[0154] The curvature of the outer surface 3162 of the support flange 3165 may correspond to the curvature of the sealing surface 3115 of the foam cushion 3105. For example, as noted above, the outer surface 3162 in the extension region 3195 may have a positive curvature (concave shape) that straddles the bisecting surface 3155 (similar to the curvature of the sealing surface 3115 in the central upper region 3140). Additionally, it is contemplated that the extension region 3195 may be saddle-shaped.
[0155] The outer surface 3162 in the central lower region 3142 may have a positive curvature (concave shape) that straddles the bisecting surface 3155 (similar to the curvature of the sealing surface 3115 in the central lower region 3142). Additionally, it is contemplated that the central lower region 3142 of the support flange 3165 may be saddle-shaped.
[0156] A pair of lower corner regions 3196 may be provided on the sides of the central lower region 3142 of the support flange 3165 at locations corresponding to the lower corner regions 3156 of the foam cushion 3105. The outer surface 3162 at the lower corner regions 3196 may have a negative curvature (convex shape). Additionally, it is contemplated that the lower corner regions 3196 may be dome-shaped.
[0157] It is further contemplated that the positive curvature of the outer surface 3162 in the extension region 3195 may be higher than the positive curvature of the outer surface 3162 in the central lower region 3142. In addition, a pair of upper regions 3197 may be provided on the sides of the extension region 3195 at locations corresponding to the upper regions 3157 of the foam cushion 3105. The outer surface 3162 in the upper regions 3197 may have a negative curvature (convex shape). In addition, it is contemplated that the upper regions 3197 may be dome-shaped.
[0158] The upper left region 3197 and the lower left corner region 3196 can be separated from one another by a middle region of positive curvature 3198. Similarly, the upper right region 3197 and the lower right corner region 3196 can be separated from one another by a middle region of positive curvature 3199. The positive curvature of both middle regions 3198 and 3199 can be provided across the lateral axis 3161. Additionally, both middle regions 3198 and 3199 can be saddle-shaped.
[0159] As described above, the outer surface 3162 of the support flange 3165 can have four dome-shaped regions, four saddle-shaped regions, and eight transition regions between the dome and saddle regions where the outer surface 3162 transitions from a saddle-shaped to a dome-shaped or vice versa.
[0160] 4.3.2 Shell or Chassis
[0161] The shell or chassis 3200 has a perimeter shaped to be complimentary to the surface contours of an average human face in the area where a seal will be formed in use. Actual contact with the face may be provided by the seal-forming structure 3100. The seal-forming structure 3100 may extend around the entire edge of the shell or chassis 3200 in use.
[0162] The connection of the shell or chassis 3200 to the undercushion 3110 may be permanent (e.g., co-molded, overmolded) or may be removable (e.g., mechanical interlock). It is contemplated that the undercushion 3110 may be constructed of a relatively flexible or pliable material (e.g., silicone) and the shell or chassis 3200 may be constructed of a relatively rigid material (e.g., polycarbonate). The shell or chassis 3200 and the undercushion 3110 may cooperate to form a plenum chamber 3205. Alternatively, the shell or chassis 3200 and the undercushion 3110 may be formed from a single, homogenous piece of material.
[0163] The shell or chassis 3200 does not cover the patient's eyes during use, in other words, the eyes may be outside of the pressurized space defined by the shell or chassis 3200. Such a configuration may improve treatment compliance, often resulting in less intrusiveness and / or greater wearer comfort.
[0164] The shell or chassis 3200 may be constructed from a transparent material (e.g., clear polycarbonate). The use of a transparent material may reduce the intrusiveness of the patient interface and may help improve compliance with treatment. The use of a transparent material may help the clinician see the placement and function of the patient interface.
[0165] Alternatively, the shell or chassis 3200 may be constructed from a translucent material. Using a translucent material may provide a less intrusive patient interface and may help improve compliance with treatment.
[0166] An opening 3211 may be included in the shell or chassis 3200 to allow breathable gas to be delivered to the plenum chamber 3205. The opening 3211 may be bounded by an annular flange 3215. The annular flange 3215 may be adapted to connect to the frame assembly 3300 and may be adapted to interface (e.g., seal) with the air circuit 4170.
[0167] The shell or chassis 3200 may provide a flexible sealing membrane or lip seal 3225 that provides a seal with the air circuit 4170. The lip seal 3225 may be attached to the rim of the opening 3211 and may include a free end that extends radially inward into the opening 3211. The end of the air circuit 4170 may be constructed and arranged to sealingly engage the lip seal 3225 to form a seal for the air flow path. It is contemplated that the sealing mechanism between the air circuit 4170 and the shell or chassis 3200 may be provided separate from the retention features by which the air circuit 4170 is coupled to the shell or chassis 3200 or frame assembly 3300.
[0168] The shell or chassis 3200 can form a plenum chamber 3205 for delivery of pressurized gas to the entrance of the patient's airway. The shell or chassis is a rigid structure that directs forces onto the seal-forming structure 3100 for sealing against the patient's face. Forces can be provided by tension generated from fastening the headgear straps of the positioning and stabilizing structure 3400. These forces can be transferred from a pair of upper and lower headgear straps to corresponding upper and lower arms of the frame assembly 3300.
[0169] The opening 3211 in the shell or chassis 3200 may be oriented relative to the foam cushion 3105 so that the opening 3211 faces downward (when worn by a user). As shown in FIGS. 24 and 24B , the central longitudinal axis 3212 of the opening 3211 may be oriented so that a portion of the central longitudinal axis 3212 outside the patient interface 3000 extends in a downward direction. As will be appreciated, the central longitudinal axis 3212 may form an angle β with the user's Frankfort horizontal 3213. It is contemplated that the angle β may be between 10 and 50 degrees (e.g., between 20 and 30 degrees). Orienting the opening 3211 in a downward direction may better orient the opening 3211 relative to the patient's nostrils for improved CO2 flushing.
[0170] As described above, the support wall 3160 may include a lower gusset 3180. The lower gusset 3180 may be configured to be more flexible than the upper gusset 3170 (i.e., to crush more easily than the upper gusset 3170), causing the support wall 3160 to bend about the lateral axis 3185. This bending of the support wall 3160 causes the orientation of the opening 3211 to shift, increasing angle β upon compression of the lower gusset 3180. Additionally, the portion of the central longitudinal axis 3212 of the opening 3211 that is outer than the patient interface 3000 may rotate downward.
[0171] Bending of the support wall 3160 due to the collapse of the lower gusset 3180 may occur when the patient interface 3000 is secured to the patient's face by the positioning and stabilizing structure 3400. Specifically, tension from the positioning and stabilizing structure 3400 may cause the seal-forming structure 3100 to press against the contours of the patient's face. When pressed against the contours of the patient's face, the lower gusset 3180 may experience a compressive force and at least partially collapse, causing the seal-forming structure 3100 to move (or pivot) away from its neutral position (i.e., a position where the lower gusset 3180 is not under compression). The pivoting of the seal-forming structure 3100 may cause a portion of the central longitudinal axis 3212 outer than the patient interface 3000 to rotate downwardly, increasing the angle β relative to the patient's Frankfort horizontal. 4.3.3 Frame Assembly
[0172] The frame assembly 3300 may include a shroud (or anchor wall) 3305 and a headgear connector 3310 attached to the shroud 3305, thereby providing a four-point connection to the positioning and stabilizing structure 3400. The shroud 3305 (e.g., constructed of a relatively rigid plastic material such as polycarbonate) may include an opening 3315 with an annular edge structured to engage with the air circuit 4170. A rear or back side of the shroud 3305 may include a plurality of locking tabs or spring arms 3320 (e.g., two, three, four, five, or more tabs or spring arms), spaced apart around the periphery of the opening 3315 and structured to provide a mechanical interlock (e.g., a snap-fit connection) with the shell or chassis 3200.
[0173] The headgear connector 3310 may include a shroud connection portion 3325 connected to the shroud 3305, a pair of (i.e., right and left) upper headgear connector arms 3330 structured to connect to each upper headgear strap of the stabilizing structure 3400, a pair of (i.e., right and left) lower headgear connector arms 3335 structured to connect to each lower headgear strap of the stabilizing structure 3400, and an intermediate portion 3340 for interconnecting the upper and lower arms 3330, 3335 with the shroud connection portion 3325.
[0174] Each upper headgear connector arm 3330 may include an upper headgear connection point in the form of a slot 3345 structured to receive a respective upper headgear strap of the stabilizing structure 3400. Each lower headgear connector arm 3335 may include a lower headgear connection point in the form of a magnetic connector 3350 structured to locate and connect to a magnet associated with a respective lower headgear strap of the stabilizing structure 3400. However, it should be understood that the upper and lower headgear connector arms 3330, 3335 may connect to the headgear straps of the headgear in other suitable manners.
[0175] The upper headgear connector arms 3330 and the lower headgear connector arms 3335 may be stiffened or rigidified so that they maintain a preformed 3D shape (not a floppy shape) (structured to fit the face profile and position the upper headgear connection points in the appropriate locations). The upper headgear connector arms 3330 and the lower headgear connector arms 3335 may each maintain their preformed shape due to their stiffness or rigidity (specifically, orientation). The upper headgear connector arms 3330 and the lower headgear connector arms 3335 may be structured to have low resistance (lower stiffness or less rigidity) to bending into and away from the face to fit a variety of face widths. The upper and lower headgear connector arms 3330, 3335 may be stiffened so that they do not substantially deform under tension applied from the headgear straps, thereby acting as an intermediary between the headgear straps and the chassis 3200 and translating tension from the headgear straps into compressive force applied on the seal-forming structure 3100 to provide a seal and stability on the face. The upper and lower headgear connector arms 3330, 3335 may also be shaped to apply an appropriate force vector through the shell or chassis 3200 onto the seal-forming structure 3100, resulting in a stable and comfortable seal. In an example, the seal-forming structure 3100 may be drawn into the patient's face under appropriate compressive force and may also coincide with the Frankfort horizontal 3213 (drawing directly into the face).
[0176] The upper and lower headgear connector arms 3330, 3335 may also be stiffened, providing torsional stiffness to resist deformation under twisting. The upper and lower headgear connector arms 3330, 3335 may also resist bending deformation in the vertical direction up and down along the face (e.g., remaining at the correct height relative to the ears). However, the upper and lower headgear connector arms 3330, 3335 may also be structured to provide a predetermined level of deformation to allow bending (toward / away from the face), thereby allowing adjustment to different face widths. Additionally, the upper and lower headgear connector arms 3330, 3335 may be resilient / elastic in this orientation, allowing the upper and lower headgear connector arms 3330, 3335 to return to their original position. This feature may also prevent discomfort by allowing for minimization of loads / forces applied from the frame assembly onto the face when the headgear straps are tightened (by absorbing some of these tensions with flexibility). In some locations, the upper and lower headgear connector arms 3330, 3335 may also provide stiffness / rigidity to avoid contact with the face, where they may act as struts to resist bending deformation or compression into the face from headgear tension. Conversely, in other locations, the flexibility of the upper and lower headgear connector arms 3330, 3335 may allow them to collapse under tension or compression from side loads (e.g., when the patient is sleeping on their side), which imparts the side load onto the patient interface. The upper headgear connector arms 3330 and the lower headgear connector arms 3335 may absorb compressive forces applied from side loads and may prevent the seal-forming structure 3100 from being dislodged.This flexibility may also lead to a better fit to the patient's face, which may increase comfort and prevent seal instability from side loads.
[0177] The lower headgear connector arms 3335 may optionally be relatively more flexible than the upper headgear connector arms 3330. For example, it is contemplated that the lower headgear connector arms 3335 may have a lower torsion resistance, such that they may twist along with the lower headgear straps of the stabilizing structure 3400. This flexibility may allow the lower headgear connector arms 3335 to twist and rotate along with the lower headgear straps, which may prevent the retaining features from disconnecting under these forces (i.e., the lower headgear connector arms 3335 maintain their connection with the lower headgear straps).
[0178] Each intermediate portion 3340 of the headgear connector 3310 assembly may include a flexible portion 3355 that conforms to various facial profiles (e.g., accommodates various facial widths). It is contemplated that the flexible portion 3355 may include a recess (on the front and / or rear) so that a hinge section is formed adjacent the shell or chassis 3200.
[0179] The headgear connectors 3310 may include multi-layer construction (e.g., layers of different materials to provide desired flexibility). It is contemplated that the headgear connectors may be stiffer than the headgear straps of the stabilizing structure 3400.
[0180] The inner surface (or rear surface) of the shroud 3305 may engage the outer surface of the shell or chassis 3200. The shell or chassis 3200 may include separate retention features or may be structured for removably coupling to the inner surface of the frame assembly 3300. The patient interface 3000 may be modular in that a single size frame assembly may be connected to shroud or chassis sizes (e.g., small to large). Thus, the shell or chassis 3200 may also be removably coupled to the frame assembly 3300, allowing the frame assembly 3300 to be connected in a predetermined configuration corresponding to each shell or chassis size. For example, the overall height of a smaller shell or chassis 3200 may be reduced relative to a medium to large cushion assembly. Thus, connecting the frame assembly 3300 relative to the cushion assembly positions the upper headgear attachment points 3345 in the correct location (between the eyes and ears) while providing attachment points for the upper headgear straps that avoid the ears. That is, the frame assembly 3300 may connect at a higher location on the shell or chassis 3200 compared to a medium or large size shell or chassis. In examples, the medium and / or large sizes may not have this requirement and may connect such that the frame assembly 3300 is positioned in substantially the same location. 4.3.4 Positioning and stabilizing structures
[0181] The seal-forming structure 3100 of the patient interface 3000 of the present technology may be held in a sealed position by the positioning and stabilising structure 3400 in use.
[0182] In one form, the positioning and stabilizing structure 3400 may provide at least enough holding force to overcome the effect of positive pressure in the plenum chamber to lift off the face.
[0183] In one form, the positioning and stabilizing structure 3400 may provide a holding force sufficient to overcome the attractive force on the patient interface 3000.
[0184] In one form, the positioning and stabilizing structure 3400 may provide a holding force as a safety margin to eliminate the possibility of destructive action on the patient interface 3000 (e.g., due to tube drag or inadvertent interference with the patient interface).
[0185] In one form of the present technology, a positioning and stabilizing structure 3400 may be provided that is configured to be worn by a patient while sleeping. In one example, the positioning and stabilizing structure 3400 may have a low-profile profile or cross-sectional thickness to reduce the perceived or actual bulk of the device. In one example, the positioning and stabilizing structure 3400 may include at least one strap having a rectangular cross-section. In one example, the positioning and stabilizing structure 3400 may include at least one flat strap.
[0186] In one form of the present technology, a positioning and stabilizing structure 3400 can be provided that is configured so that it is not excessively large or bulky in size that would interfere with a patient sleeping in a supine sleeping position with the posterior region of the patient's head resting on a pillow.
[0187] In one form of the present technology, a positioning and stabilizing structure 3400 may be provided that is configured so as not to be excessively large or bulky in size that would interfere with a patient sleeping in a lateral sleeping position with the side region of the patient's head resting on a pillow.
[0188] In one form of the present technology, the positioning and stabilizing structure 3400 may include a decoupling portion located between the anterior portion of the positioning and stabilizing structure 3400 and the posterior portion of the positioning and stabilizing structure 3400. This decoupling portion does not resist compression and may be a flexible or flimsy strap, for example. The decoupling portion may be constructed and positioned such that when a patient lies down with their head on a pillow, the presence of the decoupling portion prevents forces from being transmitted along the positioning and stabilizing structure 3400 to the posterior portion, disrupting the seal.
[0189] In one form of the present technology, the positioning and stabilizing structure 3400 may include a strap constructed from a laminate of a fabric patient-contacting layer, a foam inner layer, and a fabric outer layer. In one form, the foam may be porous to allow moisture (e.g., sweat) to pass through the strap. In one form, the fabric outer layer may include a loop material that engages with a hook material portion.
[0190] In certain forms of the present technology, the positioning and stabilizing structure 3400 may include stretchable (e.g., stretchable with elasticity) straps. For example, the straps may be configured to be tensioned in use to direct a force that seals the seal-forming structure against a portion of the patient's face. In one example, the straps may be configured as ties.
[0191] In one form of the present technology, the positioning and stabilizing structure may include a first tie constructed and arranged such that, in use, at least a portion of its lower edge passes over and moves to a superior-auricular point on the patient's head, covering a portion of the parietal bone without covering the occipital bone.
[0192] In one form of the present technology suitable for a nasal-only or full-face mask, the positioning and stabilizing structure may include a second tie constructed and arranged such that, in use, at least a portion of its upper edge passes below the inferior ear base point on the underside of the patient's head and covers or rests below the occipital bone of the patient's head.
[0193] In one form of the present technology suitable for a nasal-only or full-face mask, the positioning and stabilizing structure may include a third tie constructed and arranged to interconnect the first tie and second tie in a manner that reduces the tendency of the first tie and second tie to move apart.
[0194] In certain forms of the present technology, the positioning and stabilizing structure 3400 may include straps that are bendable and, for example, non-rigid. An advantage of this embodiment may be that the straps are more comfortable when the patient lies down to sleep.
[0195] In certain forms of the present technology, the positioning and stabilizing structure 3400 may include straps configured to be breathable to allow water vapor to pass therethrough.
[0196] In certain forms of the present technology, a system is provided that includes more than one positioning and stabilizing structure 3400. Each positioning and stabilizing structure is configured to provide a holding force to accommodate a different size and / or shape range. For example, the system may include one form of positioning and stabilizing structure 3400 that is suitable for large sized heads but not for small sized heads, and another form of positioning and stabilizing structure 3400 that is suitable for small sized heads but not for large sized heads.
[0197] In the illustrated example, the seal-forming structure 3100 of the patient interface 3000 of the present technology may be held in a sealed position by a stabilizing structure (headgear) 3400 during use. The headgear 3400 may include an upper side strap 3410 and a pair of lower side straps 3420 connected to a circular crown strap 3430 that encloses the crown of the patient's head. The upper side strap 3410 may connect to an upper headgear connector arm 3330 of the frame assembly 3300, and the lower side strap 3420 may connect to a lower headgear connector arm 3335 of the frame assembly 3300, for example, via a headgear clip. The side straps 3410 and 3420 may include adjustable hook-and-loop (Velcro®) connection mechanisms (e.g., Velcro®-like hook tabs) to facilitate connection and / or adjustment. Alternatively, the lower side strap 3420 may include a magnetic connector that corresponds to a corresponding magnetic connector on the lower headgear connector arm 3335 of the frame assembly 3300. 4.3.5 Ventilation
[0198] In one form, the patient interface 3000 may include a vent 3500 constructed and arranged to allow for the expulsion of exhaled gases (eg, carbon dioxide).
[0199] In certain forms, the vent 3500 may be configured to allow continuous ventilation flow from the interior of the plenum chamber to the ambient when the pressure within the plenum chamber is positive relative to the ambient. The vent 3500 may be configured such that the magnitude of the ventilation flow is sufficient to reduce rebreathing of exhaled CO2 by the patient while maintaining therapeutic pressure within the plenum chamber in use.
[0200] Ventilation section 3500 in one form according to the present technology may include a plurality of holes (eg, about 20 to about 80 holes, or about 40 to about 60 holes, or about 45 to about 55 holes).
[0201] The vent 3500 may be located within the shell or chassis 3200. Alternatively, the vent 3500 may be located within a decoupling structure (e.g., a swivel). 4.4 RPT Device
[0202] 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 airways for the treatment of, for example, one or more of the respiratory ailments described anywhere herein.
[0203] The RPT device may have an outer housing 4010. The outer housing 4010 is formed by two portions: an upper portion 4012 and a lower portion 4014. Additionally, the outer housing 4010 may include one or more panel(s) 4015. The RPT device 4000 includes a chassis 4016 that supports one or more internal components of the RPT device 4000. The RPT device 4000 may include a handle 4018.
[0204] The air pressure path of the pneumatic RPT device 4000 may include one or more air path items (e.g., an inlet air filter 4112, an inlet muffler 4122, a pressure generator 4140 (e.g., a blower 4142) capable of supplying air at positive pressure, an outlet muffler 4124) and one or more transducers 4270 (e.g., a pressure sensor 4272 and a flow sensor 4274).
[0205] One or more of the air path items may be disposed within a removable, unitary structure referred to as a pneumatic block 4020. The pneumatic block 4020 may be disposed within the outer housing 4010. In one form, the pneumatic block 4020 is supported by or formed as part of the chassis 4016.
[0206] The RPT device 4000 can have an electrical power source 4210, one or more input devices 4220, a central controller 4230, a therapy device controller 4240, a pressure generator 4140, one or more protection circuits 4250, a memory 4260, a transducer 4270, a data communication interface 4280, and one or more output devices 4290. The electrical components 4200 can be mounted on a single printed circuit board assembly (PCBA) 4202. In one alternative, the RPT device 4000 can include more than one PCBA 4202. 4.4.1 RPT Device Mechanical and Pneumatic Components
[0207] The RPT device may include one or more of the following components in an integral unit: In an alternative, one or more of the following components may be arranged as their own separate units. 4.4.1.1 Air filter(s)
[0208] An RPT device in accordance with one form of the present technology may include an air filter 4110 or multiple air filters 4110.
[0209] In one form, the inlet air filter 4112 is located at the beginning of the air pressure path upstream of the pressure generator 4140 .
[0210] In one form, an outlet air filter 4114 (eg, an antibacterial agent) is located between the outlet of the pneumatic block 4020 and the patient interface 3000 or 3800. 4.4.1.2 Muffler(s)
[0211] An RPT device in accordance with one form of the present technology may include a muffler 4120 or multiple mufflers 4120.
[0212] In one form of the present technology, an inlet muffler 4122 is positioned in the pneumatic path upstream of a pressure generator 4140 .
[0213] In one form of the present technology, the outlet muffler 4124 is positioned in the pneumatic path between the pressure generator 4140 and the patient interface 3000 or 3800. 4.4.1.3 Pressure generator
[0214] In one form of the present technology, the pressure generator 4140 that generates the air flow or supply at positive pressure is a controllable blower 4142. For example, the blower 4142 may include a brushless DC motor 4144 with one or more impellers. The impellers may be disposed within a volute. The blower may deliver the air supply at a rate of, for example, up to about 120 liters / minute, at a positive pressure ranging from about 4 cmH2O to about 20 cmH2O, or in other forms up to about 30 cmH2O, when administering respiratory pressure therapy. The blower may be described in any one of the following patents or patent applications, which are incorporated herein by reference in their entirety: U.S. Patent No. 7,866,944; U.S. Patent No. 8,638,014; U.S. Patent No. 8,636,479; and PCT Patent Application Publication WO 2013 / 020167.
[0215] The pressure generator 4140 is under the control of the therapy device controller 4240 .
[0216] In other forms, pressure generator 4140 can be a piston-driven pump, a pressure regulator connected to a high pressure source (eg, a compressed air reservoir), or a bellows. 4.4.1.4 Transducer(s)
[0217] The transducer may be internal to the RPT device or external to the RPT device. An external transducer may, for example, be located on the air circuit or form part of the air circuit (e.g., a patient interface). An external transducer may take the form of a non-contact sensor (e.g., a Doppler radar motion sensor that transmits or moves data RPT device).
[0218] In one form of the present technology, one or more transducers 4270 may be positioned upstream and / or downstream of the pressure generator 4140. The one or more transducers 4270 may be constructed and arranged to generate a signal indicative of a characteristic of the airflow (e.g., flow rate, pressure, or temperature at that point in the pneumatic path).
[0219] In one form of the present technology, one or more transducers 4270 may be placed proximate the patient interface 3000 or 3800.
[0220] In one form, the signal from the converter 4270 may be filtered (eg, by low-pass, high-pass, or band-pass filtering). 4.4.1.4.1 Flow Sensor
[0221] A flow sensor 4274 according to the present technology may be based on a differential pressure transducer (eg, SDP600 series differential pressure transducers from SENSIRION).
[0222] In one form, a signal generated by the flow sensor 4274 and representative of the flow rate is received by the central controller 4230. 4.4.1.4.2 Pressure Sensors
[0223] A pressure sensor 4272 according to the present technology can be placed in fluid communication with the pneumatic path. One example of a suitable pressure sensor is a transducer from the HONEYWELL ASDX series. Another suitable pressure sensor is a transducer from the NPA series from GENERAL ELECTRIC.
[0224] In one form, the signal generated by the pressure sensor 4272 is received by the central controller 4230. 4.4.1.4.3 Motor Speed Converter
[0225] In one form of the present technology, a motor speed transducer 4276 may be used to determine the rotational speed of the motor 4144 and / or blower 4142. A motor speed signal from the motor speed transducer 4276 may be provided to the therapy device controller 4240. The motor speed transducer 4276 may be, for example, a speed sensor (e.g., a Hall effect sensor). 4.4.1.5 Anti-spillback valves
[0226] In one form of the present technology, an anti-spillback valve 4160 may be located between the humidifier 5000 and the pneumatic block 4020. The anti-spillback valve is constructed and positioned to reduce the risk of water flowing upstream from the humidifier 5000 (e.g., towards the motor 4144). 4.4.2 RPT Device Electrical Components 4.4.2.1 Power Supply
[0227] The power supply 4210 may be located inside or outside the external housing 4010 of the RPT device 4000.
[0228] 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. 4.4.2.2 Input Devices
[0229] In one form of the present technology, the RPT device 4000 includes one or more input devices 4220 in the form of buttons, switches, or dials to allow a human to interact with the device. The buttons, switches, or dials may be physical or software devices accessible via a touchscreen. The buttons, switches, or dials may be physically connected to the external housing 4010 in one form, or may communicate wirelessly with a receiver electrically connected to the central controller 4230 in another form.
[0230] In one form, input device 4220 may be constructed and arranged to allow a human to select values and / or menu options. 4.4.2.3 Central Controller
[0231] In one form of the present technology, the central controller 4230 is one or more processors suitable for controlling the RPT device 4000.
[0232] Suitable processors may include x86 INTEL processors, such as processors based on the ARM™ Cortex™-M processor from ARM Holdings (e.g., the STM32 series of microcontrollers from ST MICROELECTRONIC). In certain alternative forms of the present technology, 32-bit RISC CPUs (e.g., the STR9 series microcontrollers from ST MICROELECTRONICS) or 16-bit RISC CPUs (e.g., processors from the MSP430 family of microcontrollers manufactured by TEXAS INSTRUMENTS) may also be suitable.
[0233] In one form of the present technology, the central controller 4230 is a dedicated electronic circuit.
[0234] In one form, the central controller 4230 is an application specific integrated circuit. In another form, the central controller 4230 includes discrete electronic components.
[0235] The central controller 4230 may be configured to receive input signal(s) from one or more transducers 4270, one or more input devices 4220 and the humidifier 5000.
[0236] 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.
[0237] In some forms of the present technology, the central controller 4230 is configured to implement one or more methods described herein (e.g., one or more algorithms 4300 expressed as a computer program stored in, such as, a non-transitory computer-readable storage medium (e.g., memory 4260)). In some forms of the present technology, the central controller 4230 may be integrated with the RPT device 4000. However, in some forms of the present technology, some methods may be performed by a remotely located device. For example, the remotely located device may determine ventilator control settings or detect respiratory-related events through analysis of recorded data (e.g., from any of the sensors described herein). 4.4.2.4 Clock
[0238] The RPT device 4000 may include a clock 4232 connected to the central controller 4230 . 4.4.2.5 Therapy Device Controller
[0239] 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.
[0240] In one form of the present technology, the therapy device controller 4240 is a dedicated motor control integrated circuit. For example, in one form, the MC33035 brushless DC motor controller manufactured by ONSEMI is used. 4.4.2.6 Protection circuit
[0241] The one or more protection circuits 4250 according to the present technology may include electrical protection circuits, temperature and / or pressure safety circuits. 4.4.2.7 Memory
[0242] 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.
[0243] Memory 4260 may be located on PCBA 4202. Memory 4260 may take the form of EEPROM or NAND flash.
[0244] Additionally or alternatively, the RPT device 4000 includes removable memory 4260 (eg, a memory card made in accordance with the Secure Digital (SD) standard).
[0245] 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. 4.4.2.8 Data communication systems
[0246] 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.
[0247] 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.
[0248] 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.
[0249] In one form, the local external communications network 4284 uses one or more communications standards (eg, Bluetooth or Consumer Infrared Protocol).
[0250] 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).
[0251] The local external device 4288 may be a personal computer, a cell phone, a tablet or a remote control. 4.4.2.9 Optional displays and output devices, including alarms
[0252] 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. 4.4.2.9.1 Display Driver
[0253] 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. 4.4.2.9.2 Display
[0254] 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. 4.5 Air Circuit
[0255] 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).
[0256] In particular, the air circuit 4170 may be fluidly connected to the outlet of the pneumatic block 4020 and the patient interface. The air circuit may be referred to as an air delivery tube. In some cases, there may be separate limbs of the circuit for inhalation and exhalation. In other cases, a single limb is used.
[0257] In some forms, the air circuit 4170 may include one or more heating elements configured to heat the air in the air circuit (e.g., to maintain or increase the air temperature). The heating elements may take the form of a heated wire circuit and may include one or more transducers (e.g., temperature sensors). In one form, the heated wire circuit may be spirally wound around the axis of the air circuit 4170. The heating elements may be in communication with a controller (e.g., central controller 4230). An example of an air circuit 4170 including a heated wire circuit is described in U.S. Patent Application No. 8,733,349, which is incorporated herein by reference in its entirety. 4.5.1 Refill Gas Delivery
[0258] In one form of the present technology, a supplemental gas, for example oxygen 4180, can be delivered to one or more points in the pneumatic pathway (e.g., upstream of the pneumatic block 4020), the air circuit 4170 and / or the patient interface 3000 or 3800. 4.6 Humidifier 4.6.1 Humidifier Overview
[0259] In one form of the present technology, a humidifier 5000 is provided for changing the absolute humidity of air or gas to be delivered to a patient relative to the ambient air (for example as shown in FIG. 54). 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.
[0260] The humidifier 5000 may include a humidifier reservoir 5110, a humidifier inlet 5002 that receives an airflow, and a humidifier outlet 5004 for delivering a humidified airflow. In some forms, such as shown in FIGS. 54 and 55 , 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 Water reservoir
[0261] According to one arrangement, the humidifier 5000 may include a water reservoir 5110 configured to contain or hold a quantity of liquid (e.g., water) to be evaporated for humidifying the airflow. The water reservoir 5110 may be configured to contain a predetermined maximum quantity of water to provide adequate humidification for at least the duration of a respiratory therapy session (e.g., a night's sleep). Typically, the reservoir 5110 is configured to contain several hundred milliliters of water (e.g., 300 milliliters (ml), 325 ml, 350 ml, or 400 ml). In another form, the humidifier 5000 may be configured to receive a water supply from an external water source (e.g., a building's water supply system).
[0262] According to one embodiment, the water reservoir 5110 is configured to humidify the air flow from the RPT device 4000 as the air flow passes through the RPT device 4000. In one form, the water reservoir 5110 can be configured to encourage the air flow to travel a tortuous path through the reservoir 5110 while the air flow contacts a certain amount of water in the reservoir 5110.
[0263] According to one form, the reservoir 5110 may be laterally removable from the humidifier 5000, for example as shown in FIGS.
[0264] The reservoir 5110 may also be configured to inhibit liquid release from the reservoir 5110, for example, when the reservoir 5110 is displaced and / or rotated from its normal operating orientation (e.g., through any aperture and / or between its subcomponents). Because the air stream to be humidified by the humidifier 5000 is often pressurized, the reservoir 5110 may also be configured to prevent loss of air pressure through leakage and / or flow impedance. 4.6.2.2 Conductive parts
[0265] According to one arrangement, the reservoir 5110 includes a conductive portion 5120 configured to allow efficient heat transfer from the heating element 5240 to the volume of liquid in the reservoir 5110. In one form, the conductive portion 5120 may be arranged as a plate, although other shapes may be suitable. All or part of the conductive portion 5120 may be constructed of a thermally conductive material such as aluminum (e.g., approximately 2 mm thick (e.g., 1 mm, 1.5 mm, 2.5 mm, or 3 mm)), another thermally conductive metal, or some plastic. In some cases, adequate thermal conductivity may be achieved with a less conductive material of appropriate geometry. 4.6.2.3 Humidifier Reservoir Dock
[0266] In one form, the humidifier 5000 may include a humidifier reservoir dock 5130 (as shown in FIG. 55) configured to receive the humidifier reservoir 5110. In some arrangements, the humidifier reservoir dock 5130 may include a locking feature (e.g., a locking lever 5135 configured to retain the reservoir 5110 within the humidifier reservoir dock 5130). 4.6.2.4 Water Level Indicator
[0267] The humidifier reservoir 5110 may include a water level indicator 5150 as shown in Figures 54-55. In some forms, the water level indicator 5150 may provide one or more indications to a user, such as the patient 1000 or a caregiver, about the amount of water in the humidifier reservoir 5110. These one or more indications provided by the water level indicator 5150 may include an indication of a maximum predetermined amount of water, any fraction thereof (e.g., 25%, 50%, or 75% or an amount (e.g., 200 ml, 300 ml, or 400 ml)). 4.6.2.5 Humidifier Transducer(s)
[0268] The humidifier 5000 may include one or more humidifier transducers (sensors) 5210 instead of or in addition to the transducer 4270 described above. The humidifier transducer 5210 may include one or more of an air pressure sensor 5212, an air flow transducer 5214, a temperature sensor 5216, or a humidity sensor 5218 as shown in FIG. 56. The humidifier transducer 5210 may generate one or more output signals. These output signals may be communicated to a controller (e.g., the central controller 4230 and / or the humidifier controller 5250). In some forms, the humidifier transducer may be located external to the humidifier 5000 (e.g., within the air circuit 4170) while communicating the output signal to the controller. 4.6.2.5.1 Pressure Transducers
[0269] One or more pressure transducers 5212 may be provided to the humidifier 5000 in addition to or instead of the pressure sensor 4272 provided in the RPT device 4000. 4.6.2.5.2 Flow Converter
[0270] In addition to or instead of the flow sensor 4274 provided in the RPT device 4000, one or more flow transducers 5214 may be provided in the humidifier 5000. 4.6.2.5.3 Temperature Converter
[0271] The humidifier 5000 may include one or more temperature transducers 5216. The one or more temperature transducers 5216 may be configured to measure one or more temperatures (e.g., the temperature of the heating element 5240 and / or the temperature of the air flow downstream of the humidifier outlet 5004). In some forms, the humidifier 5000 may further include a temperature sensor 5216 that detects the temperature of the ambient air. 4.6.2.5.4 Humidity Converter
[0272] In one form, the humidifier 5000 may include one or more humidity sensors 5218 that detect the humidity of a gas, such as ambient air. In some forms, the humidity sensor 5218 may be positioned toward the humidifier outlet 5004 to measure the humidity of the gas delivered from the humidifier 5000. The humidity sensor may be an absolute humidity sensor or a relative humidity sensor. 4.6.2.6 Heating elements
[0273] 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 a 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.
[0274] In some forms, the heating element 5240 may be mounted 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 FIG. 4.6.2.7 Humidifier Controller
[0275] According to one arrangement of the present technology, the humidifier 5000 may include a humidifier controller 5250 as shown in Fig. 56. 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 be in communication with the central controller 4230.
[0276] 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.
[0277] As shown in FIG. 56, 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 Glossary
[0278] 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. 4.7.1 General
[0279] 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).
[0280] Surroundings: In certain forms of the present technology, the term "surroundings" 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.
[0281] For example, the surroundings of the humidifier humidity The ambient humidity may be the humidity of the air immediately surrounding the humidifier (e.g., the humidity inside the room where the patient is sleeping). Such ambient humidity may differ from the humidity outside the room where the patient is sleeping.
[0282] In another example, the ambient pressure may be the pressure immediately surrounding or external to the body.
[0283] 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.
[0284] Automatic Positive Airway Pressure (APAP) Therapy: CPAP therapy that is capable of automatically adjusting the therapy pressure between minimum and maximum limits, for example, between breaths, depending on the presence or absence of signs of an SDB episode.
[0285] 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).
[0286] 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.
[0287] In the example of a patient 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 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.
[0288] Flow Therapy: Respiratory therapy that involves delivering airflow to the entrance to the airways at a controlled flow rate, called the therapeutic flow rate, which is usually positive pressure throughout the patient's respiratory cycle.
[0289] 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 ameliorate a medical respiratory condition in a patient.
[0290] Leakage: The term "leakage" 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 swivel elbow to the perimeter.
[0291] Noise Conduction (Acoustic): In this document, conducted noise refers to noise carried to the patient by the pneumatic path (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.
[0292] 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.
[0293] Noise, Ventilation (Acoustic): In this document, ventilation noise refers to noise generated by airflow through any ventilation (eg, ventilation holes in the patient interface).
[0294] Patient: A person with or without respiratory disease.
[0295] 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 mbar to 0.001 atm). In this specification, pressures are given in units of cmH2O unless otherwise specified.
[0296] 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.
[0297] Respiratory Pressure Therapy (RPT): The application to the airway entrance of an air supply at therapeutic pressure, typically positive pressure relative to atmosphere.
[0298] Ventilator: A mechanical device that provides pressure support to a patient while they perform some or all of the work of breathing. 4.7.1.1 Materials
[0299] Silicone or silicone elastomer: Synthetic rubber. References herein to silicone refer to liquid silicone rubber (LSR) or compression molded silicone rubber (CMSR). One commercially available form of LSR is SILASTIC (in a family of products sold under this trademark) manufactured by Dow Corning. Another LSR manufacturer is Wacker. Unless otherwise specified, exemplary forms of LSR have a Shore A (or Type A) indentation hardness of about 35 to about 45, as measured by ASTM D2240-15e1.
[0300] Polycarbonate: A thermoplastic polymer of bisphenol A carbonate. 4.7.1.2 Mechanical properties
[0301] Elasticity: The ability of a material to absorb energy during elastic deformation and to release the energy when unloaded.
[0302] Elastic: Releases substantially all of the energy upon unloading. Examples include certain silicone and thermoplastic elastomers.
[0303] Hardness: The ability of a material to resist deformation (e.g., as described by Young's modulus or the indentation hardness scale measured on a standardized sample size). - "Soft" materials may include silicone or thermoplastic elastomers (TPEs) and may easily deform under finger pressure, for example. • "Hard" materials may include polycarbonate, polypropylene, steel or aluminum and do not easily deform under finger pressure, for example.
[0304] Stiffness (or rigidity) of a structure or component: The ability of a structure or component to resist deformation when subjected to a load. The load can be a force or a moment (e.g., compression, extension, bending, or torsion). A structure or component may offer different resistance in different directions. The antonym of rigidity is flexibility.
[0305] Floppy structure or component: A structure or component that changes shape (e.g., flexes) within a relatively short period of time (e.g., 1 second) when forced to support its own weight.
[0306] Rigid structure or component: A structure or component that does not substantially change shape when subjected to loads typically encountered in use. An example of such an application would be setting up and maintaining a patient interface in a sealed manner against a patient's airway entrance under a pressure load of, for example, approximately 20-30 cmH2O.
[0307] As an example, an I-beam may have a different bending stiffness (resistance to bending load) in a first direction compared to a second, orthogonal direction. In another example, a structure or component may be floppy in a first direction and rigid in a second direction. 4.7.2 Respiratory cycle
[0308] 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.
[0309] Respiratory rate: The patient's spontaneous breathing rate, usually measured in breaths per minute.
[0310] Duty cycle: The ratio of inspiration time Ti to total breathing time Ttot.
[0311] Exercise (Respiration): Respiratory effort is said to refer to the movement made by the spontaneous breathing of a person trying to breathe.
[0312] Expiratory portion of the respiratory cycle: the period from the start of expiratory flow to the start of inspiratory flow.
[0313] 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 rate. 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.
[0314] Types of flow-limited inspiration waveforms: (i) Flattened: An upstroke followed by a relatively flat section, then a downstroke. (ii) M-shaped: Two local peaks, one on the upstroke and one on the downstroke, with a relatively flat section between them. (iii) Chair: A single local peak occurring on the upstroke followed by a relatively flat section. (iv) Inverted chair: A relatively flat section followed by a single local peak occurring on the downstroke.
[0315] 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 a reduction in flow below a threshold rate continues for a sustained period. Central hypopnea is said to occur when hypopnea is detected due to a decrease in respiratory effort. In one form, a hypopnea may be considered when any of the following occurs in adults: (i) a 30% reduction in patient respiration for at least 10 seconds plus an associated 4% desaturation, or (ii) a reduction (less than 50%) in patient respiration lasting at least 10 seconds with an associated desaturation of at least 3% or arousal.
[0316] Hyperventilation: An increase in flow to a level higher than normal.
[0317] 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.
[0318] 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).
[0319] Positive end-expiratory pressure (PEEP): The pressure above atmosphere in the lungs that exists at the end of expiration.
[0320] Peak flow (Qpeak): The maximum value of flow during the inspiratory portion of the respiratory flow waveform.
[0321] Respiratory flow, 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 flow," which is the patient's actual respiratory flow, usually expressed in liters / minute.
[0322] 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).
[0323] (Inspiration) Time (Ti): The duration of the inspiratory portion of the respiratory flow waveform.
[0324] (Expiratory) Time (Te): The duration of the expiratory portion of the respiratory flow waveform.
[0325] (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.
[0326] 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 the median of recent values of ventilation tend to be).
[0327] 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).
[0328] 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. 4.7.3 Ventilation
[0329] 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).
[0330] 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).
[0331] 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.
[0332] 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.
[0333] 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.
[0334] Inspiratory Positive Airway Pressure (IPAP): The maximum desired interface pressure that the ventilator attempts to achieve during the inspiratory portion of the breath.
[0335] 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).
[0336] 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.
[0337] 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.
[0338] Swing: A term equivalent to pressure assistance.
[0339] 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. 4.7.4 Anatomy 4.7.4.1 Facial Anatomy
[0340] Ala: The outer wall or "wing" of each nostril (plural: alar)
[0341] Alar angle:
[0342] Alare: The outermost point on the ala of the nose.
[0343] Alar curvature (or alar crest) point: The most posterior point on the curved baseline of each ala, found in the crease formed by the union of the ala and cheek.
[0344] Pinna: the entire visible part of the ear.
[0345] (Nasal) skeleton: The nasal skeleton includes the nasal bones, the frontal process of the maxilla, and the nasal portion of the frontal bone.
[0346] (Nasal) cartilaginous rami: The cartilaginous rami of the nose include the septal cartilage, lateral cartilage, greater cartilage, and lesser cartilage.
[0347] Columella: The piece of skin that separates the nostrils and extends from the tip of the nose to the upper lip.
[0348] Columella angle: the angle between a line drawn through the midpoint of the nostril and a line drawn perpendicular to the Frankfort horizontal while intersecting the subnasal point.
[0349] Frankfort horizontal plane: A line extending from the most inferior point of the orbital rim to the left auricular point, which is the deepest point of the auricle from the superior side of the notch to the tragus.
[0350] Glabellar: Located in the soft tissue, the most prominent point in the midsagittal plane of the forehead.
[0351] Lateral nasal cartilage: a generally triangular plate of cartilage whose upper margin is attached to the nasal bone and the frontal process of the maxilla, and whose lower margin is connected to the greater alar cartilage.
[0352] Lip, lower side (lower lip: labrale inferius):
[0353] Lip, upper side (upper lip: labrale superius):
[0354] Greater alar cartilage: a cartilaginous plate located below the lateral nasal cartilage. It curves around the anterior part of the nostril. Its posterior end is connected to the frontal process of the maxilla by a tough fibrous membrane containing three or four alar cartilages.
[0355] Nostrils (nares): Generally ellipsoidal alar openings that form the entrance to the nasal cavity. The singular form of nostrils is naris (nose hole). These nostrils are separated by the nasal septum.
[0356] Nasolabial fold or nasolabial crease: a fold or groove of skin that runs from each side of the nose to the corners of the mouth, separating the cheek from the upper lip.
[0357] Nasolabial angle: the angle between the bridge of the nose and the upper lip, intersecting with the subnasal point.
[0358] Inferior ear point: lowest point of attachment of the pinna to the facial skin.
[0359] Superior auricular point: the highest point of attachment of the pinna to the facial skin.
[0360] Nasal tip: The most prominent point or tip of the nose, which can be seen in a lateral view of the rest of the head.
[0361] Philtrum: midline groove extending from the lower border of the nasal septum to the top of the lip in the upper lip area.
[0362] Pogonion: The most anterior midpoint of the jaw, located on the soft tissue.
[0363] Nasal ridge: The nasal ridge is the midline prominence of the nose, extending from the serion to the apex.
[0364] Sagittal plane: A vertical plane running from anterior (front) to posterior (rear). The midsagittal plane is the sagittal plane that divides the body into right and left halves.
[0365] Cerion: Located on the soft tissue, it is the most concave point on the area of the frontonasal suture.
[0366] Septal cartilage (nose): The nasal septum cartilage is part of the septum, which divides the anterior part of the nasal cavity.
[0367] Nasal alar nasal basin: the point on the lower periphery of the alar base where it joins with the skin of the upper (top) lip.
[0368] Subnasal point: Located on the soft tissue, the point where the columella joins the upper lip in the midsagittal plane.
[0369] Supramenton: The most concave point in the midline of the lower lip between the lower lip midpoint and the soft tissue pogonion. 4.7.4.2 Skull anatomy
[0370] Frontal bone: The frontal bone contains the squama frontalis, a large vertical portion that corresponds to the area known as the forehead.
[0371] Mandible: The mandible forms the lower jaw. The mental protuberance is a bony protuberance in the jaw, forming the chin.
[0372] Maxilla: The maxilla forms the upper jaw and is located below the mandible and below the orbit. The frontal process of the maxilla projects upward by the sides of the nose and forms part of its lateral border.
[0373] Nasal bones: The nasal bones are two small, rectangular bones that vary in size and shape between individuals. They are positioned side by side in the middle and upper parts of the face and together form the "bridge" of the nose.
[0374] Nasal base: the intersection of the frontal bone and the two nasal bones, a concave area directly between the eyes and the upper bridge of the nose.
[0375] Occipital bone: The occipital bone is located at the back and lower part of the skull. It contains the foramen magnum, an oval hole through which the intracranial cavity communicates with the vertebral canal. The curved plate posterior to the foramen magnum is the squama occipitalis.
[0376] Orbit: A bony cavity in the skull that contains the eyeball.
[0377] Parietal bones: The parietal bones are bones that, when joined together, form the top and sides of the skull.
[0378] Temporal bone: The temporal bone is located on the base and sides of the skull and supports parts of the face known as the temples.
[0379] Cheekbones: The two cheekbones included in the face are located in the upper and outer parts of the face and form the cheek ridges. 4.7.4.3 Respiratory system anatomy
[0380] Diaphragm: A sheet of muscle that extends over the base of the rib cage. The diaphragm separates the thoracic cavity, which contains the heart, lungs, and ribs, from the abdominal cavity. When the diaphragm contracts, it increases the volume of the thoracic cavity and draws air into the lungs.
[0381] Larynx: The larynx or voice box that houses the vocal cords and connects the lower part of the pharynx (hypopharynx) to the trachea.
[0382] Lung: respiratory organ in humans. The conductive zone of the lung includes the trachea, bronchi, bronchi, and terminal bronchioles. The respiratory zone includes the respiratory bronchioles, alveolar ducts, and alveoli.
[0383] Nasal Cavity: The nasal cavity (or nasal fossa) is a large, air-filled space in the center of the face above and behind the nose. The nasal cavity is divided into two by a vertical fin called the nasal septum. On the sides of the nasal cavity are three horizontal extensions called nasal conchae (singular "concha") or turbinates. The nasal cavity is anteriorly connected to the nose, and posteriorly to the choanae, which open into the nasopharynx.
[0384] Pharynx: The part of the throat located immediately below (inferior to) the nasal cavity and above the esophagus and larynx. The pharynx is traditionally divided into three sections: the nasopharynx (upper pharynx) (nasal portion of the pharynx), the oropharynx (mid-pharynx) (oral portion of the pharynx), and the hypopharynx (low pharynx). 4.7.5 Patient Interface
[0385] Anti-asphyxiation valve (AAV): A component or subassembly of a mask system that vents to atmosphere in a fail-safe manner to reduce the risk of excessive CO2 rebreathing by the patient.
[0386] Elbow: An elbow is an example of a structure that directs the axis of airflow moving therethrough, changing direction through an angle. In one form, the angle may be approximately 90 degrees. In another form, the angle may be greater than or less than 90 degrees. The elbow may have a generally circular cross-section. In another form, the elbow may have an oval or rectangular cross-section. In certain forms, the elbow may be rotatable relative to the mating component, for example, approximately 360 degrees. In certain forms, the elbow may be detachable from the mating component, for example, via a snap connection. In certain forms, the elbow may be assembled to the mating component via a one-time snap during manufacturing, but cannot be removed by the patient.
[0387] Frame: Frame is taken to mean the mask structure that supports the tensile load between two or more points that connect the headgear. A mask frame can be a non-airtight load-bearing structure in the mask. However, some forms of mask frames may be airtight.
[0388] Functional Dead Space: The portion of the plenum chamber where CO2 can be collected (without being washed away).
[0389] Headgear: Headgear is taken to mean a form of positioning and stabilizing structure designed for use on the head. For example, the headgear may include a collection of one or more posts, ties, and stiffeners configured to position and hold the patient interface in place on the patient's face for delivery of respiratory therapy. Some ties are formed from a soft, flexible, elastic material (e.g., a layered composite of foam and fabric).
[0390] Membrane: Membrane is taken to mean a typically thin-walled element, preferably substantially non-resistant to bending and resistant to stretching.
[0391] Plenum Chamber: Mask plenum chamber is taken to mean a part of a patient interface having walls that at least partially enclose a volume of space, the air in the volume being pressurized to exceed atmospheric pressure in use. The shell may form part of the wall of the mask plenum chamber.
[0392] Seal: When used as a noun ("seal"), it can refer to a structure, and when used as a verb ("to seal"), it can refer to an effect. Two elements can be constructed and / or arranged to "seal" or achieve a "sealing" effect between them without the need for a separate "sealing" element itself.
[0393] Shell: A shell is taken to mean a curved, relatively thin structure that has bending, tensile, and compressive stiffness. For example, the curved structural wall of a mask may be a shell. In some forms, the shell may be faceted. In some forms, the shell may be airtight. In some forms, the shell may not be airtight.
[0394] Stiffener: A stiffener is taken to mean a structural component designed to increase the bending resistance of another component in at least one direction.
[0395] Strut: A strut is taken to mean a structural component designed to increase the compressive resistance of another component in at least one direction.
[0396] Swivel (noun): A subassembly of components configured to rotate, preferably independently, about a common axis, preferably under low torque. In one form, the swivel may be configured to rotate through an angle of at least 360 degrees. In another form, the swivel may be configured to rotate through an angle less than 360 degrees. When used in the context of an air delivery conduit, the subassembly of components preferably includes a mating cylindrical conduit. In use, there is little leakage of air flow from the swivel.
[0397] Tie (noun): A structure designed to resist tension.
[0398] Vent: (noun): A structure that allows airflow to the ambient atmosphere inside a mask or conduit, allowing clinically effective washout of exhaled gases. For example, for clinically effective washout, flow rates of about 10 liters / minute to about 100 liters / minute may be used depending on mask design and treatment pressure. 4.7.6 Structural Shape
[0399] Products of the present technology may include one or more three-dimensional mechanical structures (e.g., a mask cushion or impeller). The three-dimensional structures may be bounded by two-dimensional surfaces. These surfaces may be distinguished using labels to describe the orientation, location, function, or some other characteristic of the associated surfaces. For example, the structure may include one or more of a front surface, a back surface, an interior surface, and an exterior surface. In another example, the seal-forming structure may include a face-contacting (e.g., outer) surface and a separate non-face-contacting (e.g., lower or interior) surface. In another example, the structure may include a first surface and a second surface.
[0400] To facilitate the description of the shape and surface of a three-dimensional structure, we first consider a cross section at a point p through the surface of the structure. See Figures 27-31. Figures 27-31 show an example cross section at a point p on the surface and an example of the resulting planar curve. Figures 27-31 also show the outward normal vector at p. The outward normal vector at p points away from the surface. In some examples, the surface is described from the perspective of a fictitious little person standing upright on the surface. 4.7.6.1 Curvature in one dimension
[0401] The curvature of a plane curve at p can be described as having a sign (eg, positive, negative) and a magnitude (eg, 1 / radius of the circle tangent to the curve at p).
[0402] Positive curvature: If the curve at p bends toward the outward normal, the curvature at that point is taken to have a positive value (if our fictitious little person were to walk away from point p, they would have to walk uphill). See Figure 27 (relatively large positive curvature compared to Figure 28) and Figure 28 (relatively small positive curvature compared to Figure 3B). Such curves are often called concave.
[0403] Zero curvature: If the curve at p is a straight line, the curvature is taken as zero (if this imaginary little person walks away from point p, they can walk on a horizontal plane that is neither pointing up nor pointing down). See Figure 29.
[0404] Negative curvature: If the curve at p curves away from the outward normal, the curvature at that point and in that direction is taken to have a negative value (if our fictitious little person were to walk away from point p, they would have to walk downhill). See Figure 30 (relatively small negative curvature compared to Figure 31) and Figure 31 (relatively large negative curvature compared to Figure 30). Such curves are often called convex. 4.7.6.2 Two-dimensional surface curvature
[0405] A description of a shape at a given point on a two-dimensional surface according to the present technology may include multiple perpendicular cross sections. The multiple cross sections may cut the surface in a plane containing the outward normal (the "normal plane"), and each cross section may be taken in a different direction. Each cross section results in a plane curve with a corresponding curvature. The different curvatures at the point may have the same sign or different signs. Each curvature at the point has a (e.g., relatively small) magnitude. The plane curves in Figures 27-31 may be examples of such multiple cross sections at a particular point.
[0406] Principal curvature and direction: The directions of the normal plane in which the curvature of a curve takes its maximum and minimum values are called principal directions. In the example of Figures 27 to 31, the maximum curvature occurs in Figure 27 and the minimum occurs in Figure 31, so Figures 27 and 31 are cross sections in the principal directions. The principal curvature at p is the curvature in the principal direction.
[0407] Surface region: A collection of connected points on a surface. This set of points within a region may have similar properties (e.g., curvature or sign).
[0408] Saddle region: A region where the principal curvatures at each point have opposite signs (i.e., one positive sign and the other negative sign) (depending on the direction a hypothetical person who may be walking uphill or downhill is facing).
[0409] Dome area: an area where the principal curvatures at each point have the same sign: either both positive ("concave dome") or both negative ("convex dome")
[0410] Cylindrical region: A region in which one principal curvature is zero (or zero, for example, within a manufacturing tolerance) and the other principal curvature is non-zero.
[0411] Planar region: A region of a surface where both principal curvatures are zero (or are zero within a manufacturing tolerance, for example).
[0412] Surface Edge: The boundary or limit of a surface or area.
[0413] Path: In certain forms of the present technology, a "path" is taken to mean a path in the mathematical-topological sense (e.g., a continuous space curve from f(0) to f(1) on a surface). In certain forms of the present technology, a "path" may be described as a route or course that includes, for example, a set of points on a surface. (A hypothetical person's path is a place they walk on a surface, similar to a path in a garden.)
[0414] Path Length: In certain forms of the present technology, "path length" is taken to refer to the distance along the surface from f(0) to f(1) (i.e., the distance along a path on the surface). There may be more than one path between two points on the surface, and such paths may have different path lengths. (The path length of a fictional person is the distance walked along the path on the surface.)
[0415] Straight-line distance: Straight-line distance is the distance between two points on a surface, but does not take the surface into account. On a planar area, there is a distance on the surface edge that has the same path length as the straight-line distance between two points on the surface. On a non-planar surface, there cannot be a path that has the same path length as the straight-line distance between two points. (For a fictional person, straight-line distance corresponds to the distance as the crow flies.) 4.7.6.3 Space curve
[0416] Space Curve: Unlike a plane curve, a space curve does not necessarily exist within any particular plane. A space curve may be closed, i.e., it has no endpoint. A space curve may be considered a one-dimensional piece of three-dimensional space. A fictional character walking on a strand of DNA helix walks along a space curve. A typical human left ear contains a left-handed helix (see Figure 42). A typical human right ear contains a right-handed helix (see Figure 43). Figure 44 shows a right-handed helix. The edge of a structure (e.g., the edge of a membrane or impeller) may trace a space curve. In general, a space curve can be described by the curvature and twist at each point on the space curve. Torsion is a measure of the way the curve emanates from a plane. Twist has a sign and a magnitude. The twist at a point on a space curve can be characterized with respect to the tangent, normal, and binormal vectors at that point.
[0417] Tangent unit vector (or unit tangent vector): For each point on a curve, the vector at that point specifies the direction and magnitude from that point. A tangent unit vector is a unit vector that points in the same direction as the curve at that point. If a fictional character were flying along the curve and fell off their vehicle at a particular point, the direction of the tangent vector would be the direction they would be traveling.
[0418] Unit normal vector: As the fictional character moves along the curve, this tangent vector itself changes. The unit vector that points in the same direction as the tangent vector is changing is called the unit principal normal vector. It is perpendicular to the tangent vector.
[0419] Binormal unit vector: The binormal unit vector is perpendicular to both the tangent vector and the principal normal vector. Its direction can be determined by the right-hand rule (see, for example, Figure 41) or the left-hand rule (Figure 40).
[0420] Oscillating plane: A plane containing a unit tangent vector and a unit principal normal vector. See Figures 40 and 41.
[0421] Torsion of a Space Curve: The torsion at a point on a space curve is the magnitude of the rate of change of the binormal unit vector at that point. It measures the degree of deviation of the curve from the tangent plane. A space curve that lies within a plane has zero torsion. If the space curve deviates from the tangent plane by a relatively small amount, the magnitude of torsion of the space curve is relatively small (e.g., a gently sloping spiral path). If the space curve deviates from the tangent plane by a relatively large amount, the magnitude of torsion of the space curve is relatively large (e.g., a steeply sloping spiral path). Referring to Figure 44, the magnitude of torsion near the top coil of the spiral in Figure 44 is greater than the magnitude of torsion of the bottom coil of the spiral in Figure 44 because T2 > T1.
[0422] Referring to the right-hand rule in Figure 41, a space curve that bends towards the right-hand binormal can be considered to have a positive right-hand twist (e.g., a right-hand spiral as shown in Figure 44). A space curve that bends away from the right-hand binormal can be considered to have a negative right-hand twist (e.g., a left-hand spiral).
[0423] Similarly, with reference to the left-hand rule (see Figure 41), a space curve oriented in a left-handed binormal direction can be considered as having a positive left-handed twist (e.g., a left-handed spiral). Thus, a positive left-handed direction corresponds to a negative right-handed direction. See Figure 45. 4.7.6.4 Holes
[0424] A surface may have one-dimensional holes (e.g., holes bounded by a plane or space curve). In the case of a thin structure (e.g., a membrane) that contains holes, the structure may be described as having one-dimensional holes. See, for example, how the one-dimensional holes in the surface of the structure shown in Figure 34 are bounded by a plane curve.
[0425] A structure can have a two-dimensional hole (e.g., a hole bounded by a surface). For example, an inflatable tire has a two-dimensional hole bounded by the tire's inner surface. In another example, a bladder with a cavity for air or gel can have a two-dimensional hole. See, for example, the cushion in FIG. 37 and the exemplary cross-sectional views through its interior in FIGS. 38 and 39. The two-dimensional hole is shown bounded by an inner surface. In yet another example, a conduit can include a one-dimensional hole (e.g., at its inlet or its outlet) and can include a two-dimensional hole bounded by the inner surface of the conduit. See also the two-dimensional hole through the structure shown in FIG. 36 and bounded by a surface as shown. 4.8 Other Notes
[0426] 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.
[0427] 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.
[0428] 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.
[0429] 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.
[0430] 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.
[0431] It should be noted 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.
[0432] 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.
[0433] 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 can be present in, utilized with, or combined with other elements, components, or steps not specifically stated.
[0434] 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.
[0435] Although the technology herein has been described with reference to specific examples, it should be understood that these examples are merely illustrative of the principles and applications of the technology. In some cases, terms and symbols may indicate specific details that are not necessary for the implementation of the technology. For example, although the terms "first" and "second" 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 order, such an order is not required. Those skilled in the art will recognize that such an order can be changed and / or aspects thereof can be performed simultaneously or even synchronously.
[0436] It is therefore to be understood that numerous modifications may be made in the illustrative examples and that other arrangements may be devised without departing from the spirit and scope of the present technology. [Explanation of symbols]
[0437] 4.9 List of Reference Symbols 1000 patients 1100 Bedmate 3000 Patient Interface 3100 Seal forming structure 3105 Foam cushion 3110 Undercushion 3115 Sealed surface 3120 Mounting surface 3125 holes 3126 Interior 3127 Peripheral surface 3130 First Rim 3135 Second Rim 3140 Upper central area 3142 Lower central area 3145 Wide Area 3150 Wide Area 3155 Bisector 3156 Lower corner area 3157 Upper area 3158 Intermediate area 3160 Support wall 3161 Horizontal axis 3162 Exterior 3165 Support flange 3170 Upper gusset 3175 Thick area 3180 Lower gusset 3185 Horizontal axis 3190 Rib 3195 Extension area 3196 Lower corner area 3197 Upper area 3198 Intermediate area 3199 Intermediate area 3200 Chassis 3205 Plenum Chamber 3210 Tendon 3211 Opening 3212 shaft 3213 Frankfort Horizontal Plane 3215 Annular flange 3220 Upper point 3225 Lip seal 3230 Down 3300 Frame Assembly 3305 Shroud 3310 Headgear Connector 3315 Opening 3320 Spring Arm 3325 Shroud connection part 3330 Upper Headgear Connector Arm 3335 Lower Headgear Connector Arm 3340 Middle part 3345 Upper headgear attachment point 3350 Magnetic Connector 3355 Flexible part 3400 stabilizing structure 3410 Upper side strap 3420 Lower side strap 3430 Circular crown strap 3500 Ventilation section 3744 ISO 4000 RPT devices 4010 Outer Housing 4012 Upper 4014 part 4015 Panel 4016 chassis 4018 Handle 4020 Pneumatic Block 4110 Air Filter 4112 Inlet Air Filter 4114 Outlet air filter 4120 Muffler 4122 Inlet muffler 4124 Exit muffler 4140 Pressure Generator 4142 Blower 4144 Motor 4160 Anti-spillback valve 4170 Air Circuit 4200 Electrical Components 4202 PCBA 4210 Power supply 4220 input devices 4230 Central Controller 4232 Clock 4240 Therapy Device Controller 4250 protection circuit 4260 memory 4270 Converter 4272 Pressure Sensor 4274 Flow Sensor 4276 Motor Speed Converter 4280 data communications interface 4282 Remote External Communications Network 4284 Local External Communication Network 4286 Remote External Device 4288 Local Foreign Device 4290 output device 4292 display driver 4294 display 4300 Algorithm 4330 Treatment Control Module 5000 humidifier 5002 Humidifier inlet 5004 Humidifier outlet 5006 Humidifier Base 5110 Reservoir 5120 Conductive parts 5130 Humidifier Reservoir Dock 5135 Lock lever 5150 Water Level Indicator 5210 Humidifier Converter 5212 Pressure Transducer 5214 Flow Converter 5216 Temperature Sensor 5218 Humidity Sensor 5240 heating element 5250 Humidifier Controller 5251 Central Humidifier Controller 5252 Heating Element Controller 5254 Air Circuit Controller
Claims
1. 1. A patient interface configured to deliver a flow of breathing gas at a positive pressure to an entrance of a patient's airways, including at least the entrances of the patient's nares, the patient interface delivering a flow of breathing gas at a positive pressure of about 4 cmH above ambient pressure throughout the patient's breathing cycle when in use while the patient is sleeping for the purpose of ameliorating sleep-disordered breathing. 2 O ~ approx. 30cmH 2 10. The patient interface is configured to maintain a therapeutic pressure within a range of 0.
0. an elastomeric support wall forming at least a portion of a plenum chamber configured to receive said flow of breathing gas at positive pressure; an elastomeric support flange positioned at an end of the elastomeric support wall and extending radially inward from the elastomeric support wall, the elastomeric support flange including a flap portion at a central upper region of the elastomeric support flange that extends further radially inward than a remainder of the elastomeric support flange; and a foam cushion mounted on the elastomeric support flange, the foam cushion configured to form a seal with the patient's face and including a mounting surface in contact with an outer surface of the elastomeric support flange; a patient interface including:
2. 10. The patient interface of claim 1, wherein the foam cushion has a mounting surface that contacts an outer surface of the elastomeric support flange, the mounting surface of the foam cushion being widest at a location corresponding to the flap portion.
3. A patient interface according to claim 1 or 2, wherein an outer surface of the elastomeric support flange at the flap portion has a positive curvature.
4. The patient interface of claim 3 , wherein a central lower region of the elastomeric support flange has a positive curvature.
5. The patient interface of claim 4 , wherein the curvature of the elastomeric support flange in the flap portion is greater than the curvature of the elastomeric support flange in the central inferior region.
6. A patient interface according to any preceding claim, wherein a central lower region of the elastomeric support flange is provided between a first pair of negative curvature regions of the elastomeric support flange.
7. A patient interface according to any preceding claim, wherein the flap portion is provided between a second pair of negative curvature areas of the elastomeric support flange.
8. A patient interface according to any preceding claim, wherein the elastomeric support flange includes eight transition regions where the curvature of the outer surface of the elastomeric support flange transitions from positive to negative or negative to positive.
9. 9. A patient interface according to any one of claims 1 to 8, wherein the foam cushion includes a sealing surface configured to contact the patient's face in use, the foam cushion sealing surface having a positive curvature where the outer surface of the elastomeric support flange has a positive curvature, and the foam cushion sealing surface has a negative curvature where the outer surface of the elastomeric support flange has a negative curvature.
10. A patient interface according to any preceding claim, wherein an outer surface of the elastomeric support flange within the flap portion has a saddle shape.
11. A patient interface according to any preceding claim, wherein an outer surface of the elastomeric support flange in a central lower region has a saddle shape.
12. A patient interface according to any preceding claim, wherein an outer surface of the elastomeric support flange in the flap portion is disposed between a first pair of dome regions.
13. A patient interface according to any preceding claim, wherein an outer surface of the elastomeric support flange in the central lower region is disposed between a second pair of dome regions.
14. A patient interface according to any preceding claim, wherein the foam cushion overhangs the elastomeric support flange.
15. 15. A patient interface according to any preceding claim, further comprising a shell having an inlet opening configured to receive the flow of breathing gas at positive pressure, the elastomeric support wall being attached to the shell.
16. 16. The patient interface of claim 15, further comprising a positioning and stabilizing structure configured to support the shell, the elastomeric support wall, and the foam cushion on the patient's head, the positioning and stabilizing structure being removably attachable to the shell.
17. The patient interface of claim 16, wherein the positioning and stabilizing structure includes a shroud and a plurality of headgear straps.
18. 18. A patient interface according to claim 17, wherein the shroud is removably attachable to the shell at the inlet opening.
19. 20. The patient interface of claim 18, further comprising an air delivery tube connectable to the shroud and the shell.
20. 1. A patient interface configured to deliver a flow of breathing gas at a positive pressure to an entrance of a patient's airways, including at least the entrances of the patient's nares, the patient interface delivering a flow of breathing gas at a positive pressure of about 4 cmH above ambient pressure throughout the patient's breathing cycle when in use while the patient is sleeping for the purpose of ameliorating sleep-disordered breathing. 2 O ~ approx. 30cmH 2 10. The patient interface is configured to maintain a therapeutic pressure within a range of 0.
0. an elastomeric support wall forming at least a portion of a plenum chamber configured to receive said flow of breathing gas at positive pressure; an elastomeric support flange positioned at an end of the elastomeric support wall and extending radially inward from the elastomeric support wall; and a foam cushion mounted on the elastomeric support flange, the foam cushion configured to form a seal with the patient's face; wherein an elastomeric wall thickness of the elastomeric support flange varies from a central upper region of the elastomeric support flange to a central lower region of the elastomeric support flange.
21. 21. A patient interface according to claim 20, wherein the elastomeric wall thickness of the elastomeric support flange is thinner in the central upper and lower regions than in an intermediate region between the central upper and lower regions.
22. 22. A patient interface according to claim 20 or 21, wherein the elastomeric wall thickness of the elastomeric support flange is thinner in the central upper region than in the central lower region.
23. A patient interface according to any one of claims 20 to 22, wherein the elastomeric wall thickness of the elastomeric support wall varies from a central upper region of the elastomeric support wall to a central lower region of the elastomeric support wall.
24. 24. A patient interface according to claim 23, wherein the elastomeric wall thickness of the elastomeric support wall is thinner in a central upper region of the elastomeric support wall and in a central lower region of the elastomeric support wall than in an intermediate region between the central upper and lower regions.
25. 25. A patient interface according to claim 23 or 24, wherein the elastomeric wall thickness of the elastomeric support wall is thinner in the central upper region than in the central lower region.
26. A patient interface according to any one of claims 20 to 25, wherein a central upper region of the elastomeric support wall includes an upper gusset and a central lower region of the elastomeric support wall includes a lower gusset.
27. 27. A patient interface according to claim 26, wherein the lower gusset is more collapsible than the upper gusset.
28. A patient interface according to any one of claims 20 to 27, wherein the thickness of the foam cushion is consistent throughout the foam cushion.
29. 29. A patient interface according to any one of claims 20 to 28, further comprising a pair of compressible ribs in a lower region of the patient interface, the compressible ribs attached to the elastomeric support wall and the elastomeric support flange, respectively, and configured to prevent deflection of at least a portion of the elastomeric support flange due to positive pressure in the plenum chamber.
30. 30. A patient interface according to any one of claims 20 to 29, wherein the elastomeric support flange includes a flap portion at a central upper region thereof that extends further radially inward than a remainder of the elastomeric support flange, the flap portion being configured to prevent deflection of at least a portion of the elastomeric support flange due to positive pressure in the plenum chamber.
31. A patient interface according to any one of claims 20 to 30, wherein the foam cushion overhangs the elastomeric support flange.
32. 32. A patient interface according to any one of claims 20 to 31, wherein the foam cushion includes a mounting surface configured to attach to the elastomeric support flange and a sealing surface configured to contact and form a seal with the patient's face, the foam cushion being curved about a bisecting plane that bisects the foam cushion and extends through a central upper region and a central lower region of the foam cushion, the mounting surface and the sealing surface being wider at the bisecting plane than at the remainder of the foam cushion.
33. 33. A patient interface according to claim 32, wherein the foam cushion includes a perimeter surface extending from the mounting surface to the sealing surface, the perimeter surface being concave in the central lower region.
34. 34. A patient interface according to any one of claims 20 to 33, further comprising a shell having an inlet opening configured to receive the flow of breathing gas at positive pressure, the elastomeric support wall being attached to the shell.
35. 35. A patient interface as described in claim 34, further comprising a positioning and stabilizing structure configured to support the shell, the elastomeric support wall, and the foam cushion on the patient's head, the positioning and stabilizing structure.
36. 36. A patient interface according to claim 35, wherein the positioning and stabilizing structure includes a shroud and a plurality of headgear straps.
37. 37. A patient interface according to claim 36, wherein the shroud is removably attachable to the shell at the inlet opening.
38. 38. A patient interface according to claim 37, further comprising an air delivery tube connectable to the shroud and the shell.
39. 1. A patient interface configured to deliver a flow of breathing gas at positive pressure to an entrance of the patient's airways, including at least the entrances of the patient's nares, comprising: The patient interface provides a pressure of approximately 4 cmH above ambient pressure throughout the patient's breathing cycle when in use while the patient is sleeping to improve sleep-disordered breathing. 2 O ~ approx. 30cmH 2 configured to maintain a therapeutic pressure within a range of 0. The patient interface includes: a shell having an inlet opening configured to receive the flow of breathing gas at positive pressure; an elastomeric support wall attached to the shell, the shell and the elastomeric support wall cooperatively defining at least a portion of a plenum chamber configured to receive the flow of breathing gas at positive pressure; an elastomeric support flange positioned at an end of the elastomeric support wall and extending radially inward from the elastomeric support wall; and a foam cushion mounted on the elastomeric support flange, the foam cushion configured to form a seal with the patient's face; Including, the patient interface, wherein the elastomeric support wall and the foam cushion are configured such that a portion of a central longitudinal axis of the entrance opening that is outer than the patient interface extends downwardly when the patient interface is placed on the patient's face.
40. 40. A patient interface according to claim 39, wherein the elastomeric support wall is configured to pivot about a lateral axis extending through a lateral side of the elastomeric support wall.
41. 41. A patient interface according to claim 40, wherein the elastomeric support wall is configured such that when the elastomeric support wall pivots from a neutral position, the inlet opening in the shell rotates and a portion of the central longitudinal axis of the inlet opening outer than the patient interface rotates in the downward direction.
42. 42. A patient interface according to claim 41, wherein a lower portion of the elastomeric support wall includes a lower gusset configured such that upon collapse of the lower gusset, the elastomeric support wall deflects about the lateral axis.
43. A patient interface according to any one of claims 39 to 42, wherein an upper portion of the elastomeric support wall includes an upper gusset.
44. 44. A patient interface according to any one of claims 39 to 43, further comprising a positioning and stabilising structure configured to support the shell, the elastomeric support wall and the foam cushion on the patient's head, the positioning and stabilising structure being removably attachable to the shell.
45. 45. A patient interface according to claim 44, wherein the positioning and stabilizing structure includes a shroud and a plurality of headgear straps.
46. 46. A patient interface according to claim 45, wherein the shroud is removably attachable to the shell at the inlet opening.
47. 47. A patient interface according to claim 46, further comprising an air delivery tube connectable to the shroud and the shell.
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