Textile conduit containing windows

The patient interface with textile or foam materials and transparent conduits addresses discomfort and fit issues, enhancing compliance and effectiveness of respiratory therapy by securing a stable seal above the ear base, improving treatment outcomes.

JP7802662B2Active Publication Date: 2026-01-20RESMED PTY LTD
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Patent Information

Application Number
JP2022525419
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-10-31
Filing Date
2020-10-30
Publication Date
2026-01-20
Estimated Expiration
2040-10-30

AI Technical Summary

Technical Problem

Existing respiratory therapy devices, such as masks and humidifiers, suffer from discomfort, poor fit, complexity, and reduced patient compliance due to unsightly conduits and inadequate sealing mechanisms, leading to ineffective treatment of respiratory disorders.

Method used

A patient interface with a seal-forming structure and positioning and stabilizing structure, utilizing textile or foam material and transparent conduits, ensures a secure seal and comfortable fit by contacting the head above the ear base, minimizing leakage and improving compliance.

Benefits of technology

The solution provides a comfortable and effective seal at therapeutic pressures, reducing leakage and enhancing patient compliance by using textile or foam materials and transparent conduits that stabilize the seal-forming structure, thus improving therapy effectiveness.

✦ Generated by Eureka AI based on patent content.

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Abstract

The patient interface positioning and stabilizing structure includes a gas delivery tube with a tube wall having an internal passageway for pressurized air flow. A portion of the tube wall includes a patient-contacting portion and a non-patient-contacting portion. The patient-contacting portion includes a layer of textile or foam material configured to rest against the patient's head. At least a portion of the non-patient-contacting portion includes a transparent and / or translucent material. The layer of textile or foam material is joined to the transparent and / or translucent material such that the tube wall is formed as a one-piece structure. A plane extending generally transverse to the longitudinal axis includes both (1) the textile or foam material and (2) the transparent and / or translucent material, allowing a patient to view the internal passageway along a lateral axis extending through the plane.
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Description

[Technical Field]

[0001] 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.

[0002] 1 Cross-reference to related applications This application claims the benefit of Australian Provisional Patent Application No. 2019902272, filed October 31, 2019, each of which is incorporated by reference in its entirety herein. [Background technology]

[0003] 2. Technical Background 2.1 Technology field The present technology relates to one or more of the detection, diagnosis, treatment, prevention and amelioration of respiratory-related disorders. The present technology also relates to medical devices or apparatus and uses thereof.

[0004] 2.2 Description of Related Art 2.2.1 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.

[0005] 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, allowing oxygen from the air to enter the venous blood and carbon dioxide to leave. The trachea divides into the right and left main bronchi, which further divide into the terminal bronchioles. The bronchi constitute 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.

[0006] A range of respiratory disorders exists, and particular disorders may be characterized by particular manifestations such as apnea, hypopnea, and hyperpnea.

[0007] 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.

[0008] 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. As a result of this disorder, affected individuals experience breathing cessation 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. Pat. No. 4,944,310 (Sullivan).

[0009] Cheyne-Stokes respiration (CSR) is another form of sleep-disordered breathing. CSR is a disturbance in 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. 6,532,959 (Berthon-Jones).

[0010] Respiratory failure is a general term for respiratory disorders that refers to the inability of the lungs to take in enough oxygen or exhale enough CO2 to meet the patient's needs. Respiratory failure can include some or all of the following disorders:

[0011] Patients with respiratory failure (a type of respiratory insufficiency) may experience unusual shortness of breath during exercise.

[0012] 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.

[0013] 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.

[0014] 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 damage, resulting in inability to walk, wheelchair confinement, swallowing difficulties, respiratory muscle weakness, and ultimately death from respiratory failure. Neuromuscular disorders can be classified as rapidly progressive and slowly progressive: (i) rapidly progressive disorders, characterized by muscle damage worsening over months and resulting in death within years (e.g., amyotrophic lateral sclerosis (ALS) and Duchenne muscular dystrophy (DMD) in teenagers); (ii) variable or slowly progressive disorders, characterized by muscle damage worsening over years with only a minor reduction in 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.

[0015] 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.

[0016] A range of therapies are available to treat or ameliorate such diseases. In addition, otherwise healthy individuals can benefit from preventative therapies for respiratory disorders. However, these suffer from several deficiencies.

[0017] 2.2.2 Therapy A variety of therapies are used to treat one or more of the above-mentioned respiratory disorders, such as continuous positive airway pressure (CPAP) therapy, non-invasive ventilation (NIV), and invasive ventilation (IV).

[0018] 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 therapy if they perceive one or more of the following about the device used to deliver the therapy: uncomfortable, difficult to use, expensive, or aesthetically unappealing.

[0019] 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 therapies.

[0020] 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 therapies may be improved.

[0021] 2.2.3 Treatment System These therapies may be provided by a therapeutic system or device. Such systems and devices may also be used to diagnose a disease without treating it.

[0022] The treatment system may include a respiratory pressure therapy device (RPT device), an air circuit, a humidifier, a patient interface, and data management.

[0023] 2.2.3.1 Patient Interface A patient interface may be used to provide a wearer with an interface to a respiratory appliance, for example, by providing airflow to the airway entrance. Airflow may be provided via a mask to the nose and / or mouth, a tube to the mouth, or a tracheostomy tube to the patient's trachea. Depending on the therapy being applied, the patient interface may form a seal with, for example, an area of ​​the patient's face, thereby facilitating gas delivery at a pressure sufficient to disperse with ambient pressure for therapy implementation (e.g., at a positive pressure of about 10 cmH2O relative to ambient pressure). In other forms of therapy, such as oxygen delivery, the patient interface may not include a seal sufficient to facilitate delivery of a gas supply to the airways at a positive pressure of about 10 cmH2O.

[0024] 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.

[0025] 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).

[0026] In certain masks, the patient must insert part of the mask structure into their mouth and create and maintain a seal via their lips, which may be uncomfortable or impractical in this technology.

[0027] Certain masks may be impractical for use while sleeping (eg, when sleeping on your side in bed with your head resting on a pillow).

[0028] There are several 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 chin or mandible may move relative to the other bones of the skull. The entire head may move throughout the respiratory therapy session.

[0029] 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 therapy. This is especially true if the mask must be worn while sleeping.

[0030] 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.

[0031] 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.

[0032] For these reasons, patient interfaces for CPAP delivery during sleep form a distinct field.

[0033] 2.2.3.1.1 Seal-forming structure 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.

[0034] 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 to rest, for example, on the upper lip region and bridge of the nose 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 over 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 manufacturer, such as nasal masks, full face masks, nasal pillows, nasal puffs, and oronasal masks.

[0035] 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.

[0036] 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.

[0037] 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.

[0038] Another type of seal-forming structure uses a thin flap seal positioned around the periphery of the mask to provide a self-sealing seal 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 can leak. Furthermore, if the shape of the seal-forming structure does not match the shape of the patient, folds or buckles can occur during use, causing leakage.

[0039] Other types of seal-forming structures may include friction-fit elements that are inserted into the nostrils, for example, but some patients find these uncomfortable.

[0040] Another form of seal-forming structure may use adhesives to achieve a seal, as some patients find it inconvenient to constantly apply and remove adhesives from their face.

[0041] A range of patient interface seal forming structures are disclosed in the following patent applications (assigned to ResMed Limited: WO1998 / 004,310; WO2006 / 074,513; and WO2010 / 135,785).

[0042] 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 U.S. Pat. No. 4,782,832 (Trimble et al.), assigned to Puritan-Bennett Corporation.

[0043] 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 MIRAGELIBERTY™ Full Face Mask. Examples of nasal pillow masks are described in the following patent applications assigned to ResMed Limited: International Patent Application WO 2004 / 073,778 (which describes, among other things, aspects of ResMed Limited's SWIFT® Nasal Pillows); U.S. Patent Application No. 2009 / 0044808 (which describes, among other things, aspects of ResMed Limited's SWIFT® LT Nasal Pillows); International Patent Applications WO 2005 / 063,328 and WO 2006 / 130,903 (which describe, among other things, aspects of ResMed Limited's MIRAGE LIBERTY™ Full Face Mask); and International Patent Application WO 2009 / 052,560 (which describes, among other things, aspects of ResMed Limited's SWIFT® FX Nasal Pillows).

[0044] 2.2.3.1.2 Positioning and stabilization The seal-forming structures of patient interfaces used in positive air pressure therapy are subjected to corresponding air pressure forces 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.

[0045] One technique involves the use of adhesives, see, for example, U.S. Patent Application Publication No. US2010 / 0000534, but adhesives can be uncomfortable.

[0046] 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.

[0047] 2.2.3.1.3 Pressurized air conduits In one type of treatment system, a flow of pressurized air is provided to the patient interface through a conduit in the air circuit that fluidly connects to the patient interface, the conduit extending forward from the patient interface in a direction away from the patient's face when the patient interface is positioned on the patient's face in use. This may also be referred to as an "elephant trunk" style interface.

[0048] Some patients may find such interfaces unsightly, which can lead to poor patient compliance and a lack of adherence to wearing the interface. Additionally, connecting the conduit to the interface in front of the patient's face can increase the likelihood of entanglement in bedding.

[0049] 2.2.3.1.4 Pressurized air conduits used to position / stabilize seal-forming structures Another type of treatment system that attempts to address these issues includes a patient interface in which the tubing that delivers pressurized air to the patient's airway also functions as part of a structure (also called "headgear") that positions and stabilizes the seal-forming portion of the patient interface against the appropriate portion of the patient's face. This type of patient interface may be referred to as employing "headgear tubing" or "conduit headgear." Such a patient interface allows a conduit in an air circuit that provides pressurized airflow from a respiratory pressure therapy device to connect to the patient interface at a location other than in front of the patient's face. An example of such a treatment system is disclosed in U.S. Patent Publication No. 2007 / 0246043, which is incorporated herein by reference. In this publication, the conduit connects to a tube in the patient interface through a port positioned on the top of the patient's head.

[0050] Philips' DreamWear™ mask includes such headgear tubing. The length of this DreamWear™ headgear tubing is not adjustable. Therefore, DreamWear™ headgear is supplied in three different sizes to accommodate different sized patient faces. Providing more different sizes would increase the complexity and cost of headgear manufacturing and lead to larger packaging. Furthermore, supplying masks in individual sizes would limit the range of masks that can accommodate different sized patient heads. If patients can only choose from individual sizes that are not adjustable in length, they may be less likely to achieve what they consider to be the "perfect" fit.

[0051] Patient interfaces employing headgear tubing may have some advantages (e.g., avoiding conduits connecting to the patient interface in front of the patient's face, which can be unsightly and conspicuous), but it is desirable for a patient interface employing headgear tubing to be comfortably worn by the patient for longer periods of time while the patient is asleep (while forming an effective seal against the patient's face).

[0052] 2.2.3.2 Respiratory Pressure Therapy (RPT) Devices Respiratory pressure therapy (RPT) devices can be used to deliver one or more of the above-mentioned therapies, for example, by generating an airflow that is delivered to an entrance to the airways. This airflow can be pressurized. Examples of RPT devices include CPAP devices and mechanical ventilators.

[0053] 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.

[0054] 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.

[0055] 2.2.3.3 Humidifier Delivery of airflow without humidification can lead to dryness of the airway. When a humidifier is used with an RPT device and patient interface, humidified gas is produced, minimizing drying of the nasal mucosa and increasing patient airway comfort. Additionally, in cooler climates, the application of warm air to the facial area surrounding the patient interface generally provides more comfort than cool air.

[0056] A range of artificial humidification devices and systems are known, but they do not meet the special requirements of medical humidifiers.

[0057] 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.

[0058] 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.

[0059] 2.2.3.4 Ventilation technology Some forms of treatment systems may include a vent for pushing out exhaled carbon dioxide, which may allow gas flow from an interior space of the patient interface (e.g., a plenum chamber) to an exterior of the patient interface (e.g., ambient).

[0060] 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. Summary of the Invention [Means for solving the problem]

[0061] 3. Brief description of the technology The present technology relates to the provision of medical devices for use in the diagnosis, amelioration, treatment or prevention of respiratory disorders, which medical devices have one or more of improved comfort, cost, effectiveness, ease of use and manufacturability.

[0062] A first aspect of the present technology relates to devices for use in the diagnosis, amelioration, treatment or prevention of respiratory disorders.

[0063] Another aspect of the present technology relates to methods for use in the diagnosis, amelioration, treatment or prevention of respiratory disorders.

[0064] One aspect of certain forms of the present technology is to provide methods and / or devices that improve patient compliance with respiratory therapy.

[0065] One aspect of the present technology includes a patient interface for delivering a supply of pressurized breathable gas to an entrance of a patient's airways.

[0066] Another aspect of the present technology relates to a patient interface including: a seal-forming structure constructed and arranged to form a seal with an area of ​​a patient's face surrounding an entrance to the patient's airways, in use to sealedly deliver a flow of pressurized air at a therapeutic pressure of at least 6 cmH2O above ambient air pressure throughout the patient's respiratory cycle; a plenum chamber pressurizable to a therapeutic pressure of at least 6 cmH2O above ambient air pressure; and a positioning and stabilizing structure that provides a force to hold the seal-forming structure in a therapeutically effective position on the patient's head.

[0067] Another aspect of the present technology relates to a patient interface comprising: a plenum chamber; a seal-forming structure; a venting structure; and a positioning and stabilizing structure that provides a force to hold the seal-forming structure in a therapeutically effective position on a patient's head, the positioning and stabilizing structure including at least one gas delivery conduit that receives an airflow from a connection port and delivers the airflow through the seal-forming structure to an entrance to the patient's airway, the gas delivery conduit constructed and arranged to contact at least a region of the patient's head above the superior ear-base point of the patient's head in use.

[0068] According to one aspect of the present technology, there is provided a positioning and stabilizing structure that provides a force to hold a seal-forming structure in a therapeutically effective position on a patient's head, the seal-forming structure constructed and arranged to form a seal with an area of ​​the patient's face surrounding an entrance to the patient's airway in use to hermetically deliver airflow at a therapeutic pressure of at least 6 cmH2O above ambient air pressure throughout the patient's respiratory cycle, the positioning and stabilizing structure comprising: at least one gas delivery tube for receiving an air flow from a connection port on the patient's head and delivering the air flow to an entrance of the patient's airway through a seal-forming structure, the gas delivery tube constructed and arranged to contact, in use, at least one area of ​​the patient's head above an upper ear base point of the patient's head, the gas delivery tube including a tube wall defining a hollow interior for allowing air to flow to the seal-forming structure, the tube wall including: a patient-contacting portion including a first outer layer including a textile material or a foam material configured to rest against the patient's head in use; and The non-patient-contacting portion of the gas delivery tube includes a second outer layer opposite the first outer layer, the second outer layer including a textile material or a foam material.

[0069] According to one aspect of the present technology, there is provided a positioning and stabilizing structure that provides a force to hold a seal-forming structure in a therapeutically effective position on a patient's head, the seal-forming structure constructed and arranged to form a seal with an area of ​​the patient's face surrounding an entrance to the patient's airway in use to hermetically deliver airflow at a therapeutic pressure of at least 6 cmH2O above ambient air pressure throughout the patient's respiratory cycle, the positioning and stabilizing structure comprising: at least one gases delivery tube for receiving an air flow from a connection port on the patient's head and delivering the air flow to an entrance of the patient's airway through a seal-forming structure, the gases delivery tube constructed and arranged to contact, in use, at least an area of ​​the patient's head above an upper ear base point of the patient's head, the gases delivery tube including a tube wall defining a hollow interior for allowing air to flow to the seal-forming structure, at least a portion of the tube wall including: a patient-contacting portion including a layer of textile or foam material configured to rest against the patient's head in use; and A non-patient-contacting portion, wherein at least a portion of the non-patient-contacting portion comprises a transparent material.

[0070] In accordance with one aspect of the present technology, a patient interface includes: a seal-forming structure constructed and arranged to form a seal with an area of ​​a patient's face surrounding an entrance to the patient's airway, in use to sealably deliver a flow of pressurized air at a therapeutic pressure of at least 6 cmH2O above ambient air pressure throughout the patient's respiratory cycle; a plenum chamber pressurizable to a therapeutic pressure of at least 6 cmH2O above ambient air pressure; and and a positioning and stabilizing structure that provides a force to hold the seal-forming structure in a therapeutically effective position on the patient's head, the seal-forming structure constructed and arranged to, in use, form a seal with an area of ​​the patient's face surrounding an entrance to the patient's airway for sealed delivery of airflow at a therapeutic pressure of at least 6 cmH2O above ambient air pressure throughout the patient's respiratory cycle, the positioning and stabilizing structure comprising: and at least one gas delivery tube connected to the plenum chamber and configured to receive a pressurized air flow from a connection port on top of the patient's head and to deliver the pressurized air flow to an entrance of the patient's airway through the plenum chamber, the at least one gas delivery tube constructed and arranged to contact at least one region of the patient's head above the superior ear base point of the patient's head in use, the at least one gas delivery tube including a tube wall having an internal passage for transferring the pressurized air flow along a longitudinal axis of the tube to the seal-forming structure, at least a portion of the tube wall being a patient-contacting portion including a layer of textile or foam material configured to rest against the patient's head in use; and a non-patient-contacting portion, at least a portion of which comprises a transparent and / or translucent material that allows for external visualization of the passageway; The layer of textile material is bonded to the transparent and / or translucent material such that the tube wall is formed as a one-piece structure; The plane extending generally transverse to the longitudinal axis includes both (1) a textile or foam material and (2) a transparent and / or translucent material, allowing the patient to visualize the passageway along a transverse axis extending through the plane.

[0071] In examples, the patient-contacting portion may include more than one layer. In these examples, the patient-contacting portion may include an outer layer of a textile or foam material configured to rest against the patient's head in use, and at least a first inner layer of a thermoplastic material that forms at least a portion of the air path within the at least one gas delivery conduit. The first inner layer is bonded to the outer layer.

[0072] In examples, the patient-contacting portion comprises a single layer of textile material or foam material, in which (a) the material properties of the textile material or its foam material are impermeable; and / or (b) the textile material or foam material is coated with an impermeable substance along at least one surface to form the interior surface of at least one gas delivery tube configured to contact the pressurized gas flow.

[0073] In an example, the textile or foam material can include: (a) a blend of polyamides (e.g., nylon, polyester, and / or spandex); (b) a blend of polyamides (e.g., nylon, polyester, and / or spandex and one or more laminate coats of silicone). In this example, the thickness of each laminate coat of silicone can be 5 to 75 microns. In a further example, the thickness of each laminate coat of silicone can be 20 to 30 microns, preferably 25 microns.

[0074] In examples, the patient-contacting portion can include a transparent and / or translucent material portion configured to receive a textile or foam material. In these examples, the transparent and / or translucent material portion of the non-patient-contacting portion includes an adhesive layer configured to be bonded to the textile or foam material.

[0075] In examples, the non-patient-contacting portion may include a portion configured to receive a portion of transparent and / or translucent material. In examples of the present technology, the textile or foam material of the non-patient-contacting portion may include: (a) an adhesive layer configured to be bonded to the portion of transparent and / or translucent material; or (b) a layer of hook-and-loop material configured to cooperatively engage with a complementary layer of hook-and-loop material bonded to the portion of transparent and / or translucent material.

[0076] In examples, one of the patient-contacting portion or the non-patient-contacting portion is configured to receive: (a) an adhesive layer to which the other of the patient-contacting portion or the non-patient-contacting portion can be joined; or (b) a layer of hook-and-loop material configured to cooperatively engage with a complementary layer of hook-and-loop material joined to the other of the patient-contacting portion or the non-patient-contacting portion.

[0077] In examples, the non-patient-contacting portion may include two additional layers: an outer layer of transparent and / or translucent material and at least a first inner layer of thermoplastic material that defines at least a portion of the air path within the at least one gas delivery tube.

[0078] In an example, at least a portion of the transparent and / or translucent material portion: (a) is configured as a stiffening element; and / or (b) includes a concertina portion; and / or (c) includes a series of corrugations. In this example, (a) the textile or foam material is overmolded onto the concertina portion; (b) the textile or foam material is provided on the patient-contacting portion and configured to contact the patient; and / or (c) the textile or foam material is provided on the non-patient-contacting portion.

[0079] In one example of the present technology, the portion of transparent and / or translucent material may extend substantially the length of the at least one gas delivery tube. In another example of the present technology, the portion of transparent and / or translucent material may extend only a portion of the length of the at least one gas delivery tube. In yet another example of the present technology, the transparent and / or translucent material may be arranged in separate portions, each portion separated along the length of the at least one gas delivery tube by a portion of non-transparent and / or translucent material (e.g., textile material or foam material).

[0080] In one example, the patient-contacting portion and the non-patient-contacting portion may each be elongated and include a side that faces forward in use (the front side of the at least one gas delivery tube in use) and a side that faces rearward in use (the rear side of the at least one gas delivery tube in use). The front and rear sides of the patient-contacting portion and the non-patient-contacting portion are joined along the length of the at least one gas delivery tube. In this example, at least one or both of the non-patient-contacting front and rear sides include a transparent and / or translucent material.

[0081] In this example, the front portion of the non-patient-contacting portion may have a different stiffness than the rear portion; (a) the front portion of the non-patient-contacting portion may be stiffer than the rear portion of the non-patient-contacting portion; (b) the stiffness of the front portion of the non-patient-contacting portion and / or the rear portion of the non-patient-contacting portion may vary along the length of the at least one gas delivery tube; and (c) the stiffness of the front portion of the non-patient-contacting portion and / or the rear portion of the non-patient-contacting portion may be higher at the bottom of the at least one gas delivery tube than at the top of the at least one gas delivery tube.

[0082] In examples, the transparent and / or translucent material portion of the second outer layer may be formed from an elastomer, which may be one or more of the following: a) silicone; b) thermoplastic elastomer (TPE); or c) thermoplastic polyurethane (TPU).

[0083] In further examples: (a) the patient-contacting portion and / or the non-patient-contacting portion may be shaped by thermoforming; (b) the at least one gas delivery tube may include a substantially D-shaped cross-section; (c) the at least one gas delivery tube may include a substantially rectangular cross-section with two or more curved corners; (d) the width of the at least one gas delivery tube may vary from 34 mm to 18 mm along the length of the at least one gas delivery tube; (e) the height of the at least one gas delivery tube may vary from 8 mm to 6 mm along the length of the at least one gas delivery tube; and / or (f) the non-patient-contacting portion comprises only transparent material. In these examples, (i) the D-shaped cross-section includes a substantially flat surface and an arcuate surface, the flat surface forming the patient-contacting portion and the arcuate surface forming the non-patient-contacting portion; (ii) the arcuate surface includes a first portion and a second portion, the first portion constructed from a transparent and / or translucent material and the second portion constructed from a textile material or a foam material; and / or (iii) the first portion is directly connected to the flat surface and the second portion is disposed opposite the flat surface.

[0084] In examples, the manufacturing method includes positioning a textile or foam material in a mold; introducing a transparent and / or translucent material into the mold; bonding the transparent and / or translucent material to the textile and / or foam material to form at least one gas delivery tube; and connecting the at least one gas delivery tube to the plenum chamber and / or seal-forming structure. In these examples, (a) the mold includes semicircular protrusions, and the transparent and / or translucent material flows around the semicircular protrusions to create semicircular recesses along the hollow interior; and / or (b) the semicircular protrusions direct the transparent and / or translucent material toward the textile or foam material to allow bonding between the transparent and / or translucent material and the textile or foam material after the non-patient-contacting portion is formed.

[0085] According to one aspect of the present technology, there is provided a positioning and stabilizing structure that provides a force to hold a seal-forming structure in a therapeutically effective position on a patient's head, the seal-forming structure constructed and arranged to form a seal with an area of ​​the patient's face surrounding an entrance to the patient's airway in use to hermetically deliver airflow at a therapeutic pressure of at least 6 cmH2O above ambient air pressure throughout the patient's respiratory cycle, the positioning and stabilizing structure comprising: at least one gas delivery tube for receiving an air flow from a connection port on the patient's head and delivering the air flow to an entrance of the patient's airway through a seal-forming structure, the at least one gas delivery tube constructed and arranged to contact, in use, at least an area of ​​the patient's head above an upper ear base point of the patient's head, the at least one gas delivery tube including a tube wall defining a hollow interior for allowing air to flow to the seal-forming structure, at least a portion of the tube wall including: a patient-contacting portion including an outer layer of textile or foam material configured to rest against the patient's head in use; and a non-patient contacting portion comprising at least a portion of a transparent material; A stiffening element that is part of the transparent material. In one example, the transparent material of the non-patient-contacting portion can be an elastomer, which can be one or more of the following: a) silicone; b) thermoplastic elastomer (TPE); or c) thermoplastic polyurethane (TPU).

[0086] In one example of the present technology, the transparent portion can extend substantially the length of the at least one gas delivery tube. In another example of the present technology, the transparent portion extends only a portion of the length of the at least one gas delivery tube. In yet another example of the present technology, the transparent portion is spaced at regular intervals along the length of the at least one gas delivery tube.

[0087] In one example, the patient-contacting portion and the non-patient-contacting portion each may be elongated and include a side that faces forward in use (the front side of the at least one gas delivery tube in use) and a side that faces rearward in use (the rear side of the at least one gas delivery tube in use). The front and rear sides of the patient-contacting portion and the non-patient-contacting portion are joined along the length of the at least one gas delivery tube. In this example, at least one or both of the non-patient-contacting front and rear sides comprise a transparent material.

[0088] In one example, the stiffening element may be provided on one of the front edge and rear side of the at least one gas delivery tube.

[0089] In this example, the front side of the at least one gas delivery tube may have a different stiffness than the rear side of the at least one gas delivery tube; (a) the front side of the at least one gas delivery tube may include a higher stiffness than the rear side of the at least one gas delivery tube; (b) the stiffness of the front side of the at least one gas delivery tube and / or the rear side of the at least one gas delivery tube may vary along the length of the at least one gas delivery tube; (c) the stiffness of the front side of the at least one gas delivery tube and / or the rear side of the at least one gas delivery tube may be higher at a lower part of the at least one gas delivery tube than at an upper part of the at least one gas delivery tube.

[0090] In some examples, the stiffening element is formed by: a) a thickness of the transparent material portion being thicker than the second portion of the at least one gas delivery tube relative to the first portion of the at least one gas delivery tube; and b) a width of the transparent material portion being thicker than the second portion of the at least one gas delivery tube relative to the first portion of the at least one gas delivery tube. In these examples, the first portion is a lower portion of the at least one gas delivery tube and the second portion is an upper portion of the at least one gas delivery tube. In other examples, the first portion is an upper portion of the at least one gas delivery tube and the second portion is a lower portion of the at least one gas delivery tube. In further examples, the first portion is a front portion of the at least one gas delivery tube and the second portion is a rear portion of the at least one gas delivery tube, or the first portion is a rear portion of the at least one gas delivery tube and the second portion is a front portion of the at least one gas delivery tube.

[0091] In examples, the non-patient-contacting side includes a forward-facing side and a rear-facing side configured to face the forward and rearward directions, respectively, in use. In these examples, (a) the forward-facing side and the rear-facing side are each constructed from a transparent and / or translucent material; and / or (b) the horizontal axis extends generally from the forward direction to the rearward direction and includes only transparent and / or translucent material.

[0092] In one embodiment, at least one gas delivery tube is configured to be selectively coupled to the plenum chamber and detached to allow the patient to clear the interior of the tube.

[0093] In accordance with another aspect of the present technology, there is provided a positioning and stabilizing structure that provides a force to hold a seal-forming structure in a therapeutically effective position on a patient's head, the seal-forming structure constructed and arranged to form a seal with an area of ​​the patient's face surrounding an entrance to the patient's airway in use to hermetically deliver airflow at a therapeutic pressure of at least 6 cmH2O above ambient air pressure throughout the patient's respiratory cycle, the positioning and stabilizing structure comprising: at least one gas delivery tube for receiving an air flow from a connection port on the patient's head and delivering the air flow to an entrance of the patient's airway through a seal-forming structure, the at least one gas delivery tube constructed and arranged to contact, in use, at least an area of ​​the patient's head above an upper ear base point of the patient's head, the at least one gas delivery tube including a tube wall defining a hollow interior for allowing air to flow to the seal-forming structure, the at least one gas delivery tube comprising, in use: an upper tube portion and a lower tube portion; the tube wall of the upper tube section includes a patient-contacting portion including an elastomer and a non-patient-contacting portion including an elastomer; The tube wall of the lower tube section includes a patient-contacting portion including a first layer of textile or foam material configured to be placed against the patient's head in use, and a non-patient-contacting portion including a second outer layer, at least a portion of which includes a transparent material.

[0094] In examples, the first layer of textile material is one or more of the following fabric materials: a) nylon; b) polyester; c) spandex.

[0095] In an example, the first layer of textile material is a) adhesively joined to the second outer layer; and b) joined to the second outer layer by a hook and loop material.

[0096] In one example, a first layer of textile material is also provided on the upper tube portion.

[0097] In one example, the transparent material of the second outer layer can be an elastomer, the elastomer being one or more of the following: a) silicone; b) thermoplastic elastomer (TPE); or c) thermoplastic polyurethane (TPU).

[0098] According to one aspect of the present technology, a plenum chamber pressurizable to a therapeutic pressure of at least 6 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; a seal-forming structure constructed and arranged to form a seal with an area of ​​a patient's face surrounding an entrance to the patient's airways, said seal-forming structure having holes therein so that airflow at said therapeutic pressure is delivered to at least the entrance to the patient's nares, said seal-forming structure constructed and arranged to maintain said therapeutic pressure in the plenum chamber throughout the patient's respiratory cycle in use; The positioning and stabilizing structure of any one of the preceding aspects; and a venting structure that allows a continuous flow of gases exhaled by the patient from the interior of a plenum chamber to the surroundings, the venting structure being sized and shaped to maintain a therapeutic pressure in the plenum chamber in use; The patient interface is configured to allow the patient to mouth breathe from the environment in the absence of pressurized air flow through the plenum chamber inlet port, or the patient interface is configured to leave the patient's mouth exposed.

[0099] Another aspect of some forms of the present technology is a system for treating disordered breathing including a patient interface according to any one or more of the other aspects of the present technology, an air circuit, and a source of positive pressure air.

[0100] According to one aspect of the present technology, there is provided a method of manufacturing a positioning and stabilizing structure that provides a force to hold the seal-forming structure in a therapeutically effective position on a patient's head, the seal-forming structure being constructed and arranged to form a seal with an area of ​​the patient's face surrounding an entrance to the patient's airway in use to hermetically deliver airflow at a therapeutic pressure of at least 6 cmH2O above ambient air pressure throughout the patient's respiratory cycle, the positioning and stabilizing structure comprising: at least one gases delivery tube for receiving an air flow from a connection port on the patient's head and delivering the air flow to an entrance of the patient's airway through a seal-forming structure, the gases delivery tube constructed and arranged to contact, in use, at least an area of ​​the patient's head above an upper ear base point of the patient's head, the gases delivery tube including a tube wall defining a hollow interior for allowing air to flow to the seal-forming structure, at least a portion of the tube wall including: a patient-contacting portion including an outer layer of textile or foam material configured to rest against the patient's head in use; and A non-patient-contacting portion, wherein at least a portion of the non-patient-contacting portion comprises a transparent material.

[0101] 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.

[0102] One aspect of the present technology is a method for manufacturing a device.

[0103] 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.

[0104] 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).

[0105] An aspect of one form of the present technology is a patient interface that can be cleaned in the patient's home, for example with soap and water, without the need for special cleaning equipment.

[0106] In accordance with one aspect of the present technology, a patient interface includes: a seal-forming structure constructed and arranged to form a seal with an area of ​​a patient's face surrounding an entrance to the patient's airway, in use to sealably deliver a flow of pressurized air at a therapeutic pressure of at least 6 cmH2O above ambient air pressure throughout the patient's respiratory cycle; a plenum chamber pressurizable to a therapeutic pressure of at least 6 cmH2O above ambient air pressure; and A positioning and stabilizing structure that provides a force to hold the seal-forming structure in a therapeutically effective position on the patient's head.

[0107] In accordance with one aspect of the present technology, there is provided at least one gas delivery tube coupled to a plenum chamber and configured to receive a pressurized air flow from a connection port on an upper portion of a patient's head and to deliver the pressurized air flow to an entrance of the patient's airway via the plenum chamber, the at least one gas delivery tube constructed and arranged to contact at least one region of the patient's head above a superior ear base point of the patient's head in use, the at least one gas delivery tube including a tube wall having an internal passageway for transferring the pressurized air flow along a longitudinal axis of the tube to a seal-forming structure, at least a portion of the tube wall comprising: a patient-contacting portion including a layer of textile or foam material configured to rest against the patient's head in use; and a non-patient-contacting portion, at least a portion of which comprises a transparent and / or translucent material that allows for external visualization of the passageway; The layer of textile material is bonded to the transparent and / or translucent material such that the tube wall is formed as a one-piece structure; The plane extending generally transverse to the longitudinal axis includes both (1) a textile or foam material and (2) a transparent and / or translucent material, allowing the patient to visualize the passageway along a transverse axis extending through the plane.

[0108] 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.

[0109] 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]

[0110] 4 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:

[0111] [Figure 1A] 4.1 Treatment System: A system is shown including a patient 1000 wearing a patient interface 3000. The system takes the form of nasal pillows and receives air at positive pressure supplied by an RPT device 4000. The air from the RPT device 4000 is humidified by a humidifier 5000 and travels along an air circuit 4170 to the patient 1000. A bed companion 1100 is also shown. The patient is sleeping in a supine sleeping position. [Figure 1B] A system is shown including a patient 1000 wearing a patient interface 3000, which takes the form of a nasal mask and receives air at positive pressure supplied by an RPT device 4000. The air from the RPT device is humidified by a humidifier 5000 and travels along an air circuit 4170 to the patient 1000. [Figure 1C]The system includes a patient 1000 wearing a patient interface 3000. The patient interface 3000 takes the form of a full face mask and receives a 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. 4.2 Respiratory System and Facial Anatomy [Figure 2A] An outline of the human respiratory system including the nasal and oral cavities, larynx, vocal folds, esophagus, trachea, bronchi, lungs, alveolar sacs, heart and diaphragm. [Figure 2B] 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 indicated. [Figure 2C] 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 2D] Further lateral views of the head. The approximate positions of the Frankfort horizontal and nasolabial angle are noted. The coronal plane is also noted. 3.3 Patient Interface [Figure 3] 1 shows a patient interface in the form of a nasal mask and conduit headgear in accordance with one form of the present technology. [Figure 4] 14 shows one form of conduit headgear in accordance with another form of the present technology. [Figure 5] 1 is a cross-sectional view of an example of a gas delivery tube in accordance with one form of the present technology; [Figure 6] FIG. 6 is a perspective view of the gas delivery tube of FIG. 5. [Figure 7] FIG. 10 is an end view of another example gas delivery tube in accordance with another aspect of the present technology; [Figure 8] FIG. 10 is a side view of another example of a gas delivery tube in accordance with another form of the present technology. [Figure 9]FIG. 10 is a perspective view of a lower portion of a gas delivery tube in accordance with another form of the present technology; [Figure 10] FIG. 13 is a front view of one form of conduit headgear in accordance with another form of the present technology. [Figure 11] FIG. 10 is a perspective view of a top of a gas delivery tube in accordance with another form of the present technology; [Figure 12] FIG. 12 is a perspective view of the lower portion of the gas delivery tube of FIG. 11. DETAILED DESCRIPTION OF THE INVENTION

[0112] 5 Detailed description of examples 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.

[0113] 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.

[0114] 5.1 Therapy 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.

[0115] 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.

[0116] In certain instances of the present technology, mouth breathing is restricted, limited or prevented.

[0117] 5.2 Treatment System In one form, the present technology includes an apparatus or device for the treatment of disordered breathing. The apparatus or device may include an RPT device 4000 that supplies pressurized air to the patient 1000 via an air circuit 4170 to a patient interface 3000.

[0118] 5.3 Patient Interface 3, a non-invasive patient interface 3000 according to one aspect of the present technology includes the following functional aspects: a seal-forming structure 3100, a plenum chamber 3200, a positioning and stabilizing structure 3300, a vent 3400, and one form of connection port 3600 for connection to an air circuit (e.g., air circuit 4170 shown in FIGS. 1A-1C ). In this example, the seal-forming structure 3100 and the plenum chamber 3200 are provided by a cushion module 3150. In this example, the cushion module 3150 is a cradle cushion module. In other examples, the cushion module may be a nasal pillows cushion module or another type of cushion module.

[0119] 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.

[0120] A patient interface 3000 in accordance with one form of the present technology is constructed and arranged to provide an air supply at a positive pressure of at least 6 cmH2O relative to ambient.

[0121] A patient interface 3000 in accordance with one form of the present technology is constructed and arranged to provide an air supply at a positive pressure of at least 10 cmH2O relative to ambient.

[0122] A patient interface 3000 in accordance with one form of the present technology is constructed and arranged to provide an air supply at a positive pressure of at least 20 cmH2O relative to ambient.

[0123] 5.3.1 Seal formation structure In one form of the present technology, the seal-forming structure 3100 provides a target seal-forming area and may further provide a cushioning function. The target seal-forming area is the area where a seal may 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).

[0124] In one form, the target seal-forming area is located on an exterior surface of the seal-forming structure 3100 .

[0125] In certain forms of the present technology, the seal-forming structure 3100 is constructed from a biocompatible material (eg, silicone rubber).

[0126] A seal-forming structure 3100 according to the present technology may be constructed from a soft, flexible and resilient material (eg, silicone).

[0127] 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.

[0128] 5.3.1.1 Sealing mechanism In one form, the seal-forming structure includes a sealing flange that is pressure actuated and assisted using a pressure-assisted sealing mechanism. In use, the pressure-assisted sealing flange can readily respond to positive system pressure within the plenum chamber 3200 and act on its underside to form a tight sealing engagement with the surface. The pressure-assisted mechanism can work in conjunction with elastic tension in the positioning and stabilizing structure.

[0129] In one form, the seal-forming structure 3100 includes a sealing flange and a support flange. The sealing flange includes a relatively thin member having a thickness of less than about 1 mm (e.g., about 0.25 mm to about 0.45 mm) that extends around the peripheral length of the plenum chamber 3200. The support flange may be relatively thicker than the sealing flange. The support flange is disposed between the sealing flange and the peripheral edge of the plenum chamber 3200 and extends around at least a portion of the peripheral length. The support flange is or includes a spring-like element that functions to support the sealing flange against buckling during use.

[0130] 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.

[0131] In one form, the seal-forming structure includes a tensioning portion that, in use, is held taut by, for example, an adjacent region of the sealing flange.

[0132] In one form, the seal-forming structure includes an area having a sticky or adhesive surface.

[0133] 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.

[0134] In one form, the non-invasive patient interface 3000 includes a seal-forming structure that, in use, forms a seal on the nasal bridge or nasal ridge region of the patient's face and with the upper lip region of the patient's face. In these forms, the seal-forming structure may be referred to as a nasal mask. This is true, for example, of the patient interface 3000 shown in FIG. 1B. This seal-forming portion delivers a supply of air or breathable gas to both nares of the patient 1000 through a single orifice. This type of seal-forming structure may be referred to as a "nasal cushion" or "nasal mask." In some examples of the present technology, the positioning and stabilizing structure 3300 shown in FIG. 3 or 4 may be used to hold the nasal cushion in a sealing position on the patient's face.

[0135] In one form, as shown in FIG. 3, for example, the seal-forming structure 3100 is configured to form a seal against the underside of the nose around the nostrils and optionally the upper lip of the patient 1000 in use. This type of seal-forming structure may be referred to as a "cradle cushion" or "under-the-nose mask." The shape of the seal-forming structure may be configured to conform to or closely follow the underside of the patient's nose (i.e., the profile and angle of the seal-forming structure may be substantially parallel to the patient's nasolabial angle). In one form of a nasal cradle cushion, the seal-forming structure includes a bridge portion that defines two orifices. Each of these two orifices provides air or breathable gas to a different one of the patient's nares in use. The bridge portion may be configured to contact or seal against the patient's columella in use. In some forms of the present technology, the seal-forming structure 3100 is configured to form a seal against the underside of the patient's nose (without contacting the bridge region of the patient's nose). In some examples, the patient interface may include a seal-forming structure 3100 in the form of a cradle cushion as described in PCT Application No. PCT / AU2018 / 050289, filed March 29, 2018, which is incorporated herein by reference.

[0136] In one form, the patient interface 3000 includes a seal-forming portion that forms a seal over the chin, nasal, and cheek areas of the patient's face when in use. This is the case, for example, with the patient interface 3000 shown in FIG. 1C . This seal-forming portion delivers a supply of air or breathable gas to both the patient's 1000 nostrils and mouth through a single orifice. This type of seal-forming structure may be referred to as a "full face mask." In some examples of the present technology, the positioning and stabilizing structure 3300 shown in FIG. 3 or 4 may be used to hold a full face cushion in a sealing position on the patient's face. Alternatively, the positioning and stabilizing structure 3300 of FIG. 3 or 4 may be used in conjunction with the patient interface 3000. The patient interface 3000 includes a nasal seal-forming structure in the form of a nasal cushion or nasal cradle cushion, and an oral seal-forming structure (which may be referred to as an "oral cushion" or "oral mask") configured to form a seal around the patient's mouth when in use. In such a mask, air or breathable gas is delivered through orifices to the patient's nares and mouth during use. This type of seal-forming structure 3100 may be referred to as an "oral-nasal cushion," with separate seals provided around the mouth and nose, or as a "micro-full face cushion," with nasal sealing occurring around or adjacent the patient's nares. In one form, the nasal and oral seal-forming structures are formed as a single component. In some examples, the patient interface may include a seal-forming structure 3100 in the form of a cradle cushion, as described in U.S. Patent No. 62 / 649,376, which is incorporated herein by reference in its entirety.

[0137] 5.3.2 Plenum chamber The plenum chamber 3200 has a periphery shaped to be complementary to the surface contours of an average human face in the area where a seal is formed in use. In use, the periphery of the plenum chamber 3200 is positioned in close proximity to the adjacent surface of the face. Actual contact with the face is provided by the seal-forming structure 3100. The seal-forming structure 3100 may extend around the entire edge of the plenum chamber 3200 in use. In some forms, the plenum chamber 3200 and the seal-forming structure 3200 are formed from a single, homogenous piece of material.

[0138] In certain forms of the present technology, such as the patient interface 3000 of Figure 3, the plenum chamber 3200 does not cover the patient's eyes during use. In other words, the eyes are outside the pressurized volume defined by the plenum chamber. Such forms may improve therapy compliance, often resulting in less intrusiveness and / or greater wearer comfort.

[0139] In certain forms of the present technology, the plenum chamber 3200 is 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 therapy. The use of a transparent material may help the clinician see the placement and function of the patient interface.

[0140] In certain forms of the present technology, the plenum chamber 3200 is constructed from a translucent material, which can make the patient interface less intrusive and help improve compliance with therapy.

[0141] 5.3.3 Positioning and stabilizing structures The seal-forming structure 3100 of the patient interface 3000 of the present technology may be held in a sealed position in use by the positioning and stabilizing structure 3300. The positioning and stabilizing structure 3300 may be referred to as "headgear" because it engages with the patient's head to hold the patient interface 3000 in a sealed position.

[0142] In one form, the positioning and stabilizing structure 3300 provides at least enough holding force to overcome the effect of the positive pressure in the plenum chamber 3200 to lift off the face.

[0143] In one form, the positioning and stabilizing structure 3300 provides a holding force sufficient to overcome the attractive force on the patient interface 3000.

[0144] In one form, the positioning and stabilizing structure 3300 provides 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).

[0145] In one form of the present technology, there is provided a positioning and stabilizing structure 3300 configured to be worn by a patient while sleeping. In one example, the positioning and stabilizing structure 3300 has a low profile or cross-sectional thickness to reduce the perceived or actual bulk of the device. In one example, the positioning and stabilizing structure 3300 includes at least one strap having a rectangular cross-section. In one example, the positioning and stabilizing structure 3300 includes at least one flat strap.

[0146] In one form of the present technology, a positioning and stabilizing structure 3300 is 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.

[0147] In one form of the present technology, a positioning and stabilizing structure 3300 is provided that is configured so that it is not 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.

[0148] In one form of the present technology, the positioning and stabilizing structure 3300 comprises a decoupling located between the front of the positioning and stabilizing structure 3300 and the back of the positioning and stabilizing structure 3300. The decoupling does not resist compression and can be a flexible or flimsy strap, for example. The decoupling is constructed and positioned such that when a patient lies with their head on a pillow, the presence of the decoupling prevents forces to the back side from being transmitted along the positioning and stabilizing structure 3300 and disrupting the seal.

[0149] In one form of the present technology, the positioning and stabilizing structure 3300 includes 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 is porous to allow moisture (e.g., sweat) to pass through the strap. In one form, the fabric outer layer includes loop material that engages with portions of hook material.

[0150] In certain forms of the present technology, the positioning and stabilizing structure 3300 includes stretchable (e.g., stretchable with elasticity) straps. For example, the straps can 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 can be configured as ties.

[0151] A tie is understood to be a structure designed to withstand tension. In use, the tie may be part of the positioning and stabilizing structure 3300 under tension. As described below, some ties add elasticity due to this tension. The tie may function to maintain the seal-forming structure 3100 in a therapeutically effective position on the patient's head.

[0152] In one form of the present technology, the positioning and stabilizing structure includes a first tie constructed and arranged such that, in use, at least a portion of its lower edge passes over and moves to the superior auricular point of the patient's head and covers a portion of the parietal bone without covering the occipital bone. The first tie may be provided as part of a patient interface including, for example, a cradle cushion, nasal pillows, nasal cushion, full face cushion, or oronasal cushion. For example, the positioning and stabilizing structure 3300 of FIG. 3 includes a first tie in the form of a gas delivery tube 3350 that rests on top of the patient's head. The gas delivery tube 3350 may also be known as a headgear tube 3350 because it provides the function of headgear.

[0153] In one form of the present technology suitable for a nasal-only mask or a full-face mask, the positioning and stabilizing structure includes a second tie. The second tie is constructed and arranged such that, in use, at least a portion of its upper edge passes under the lower ear base of the patient's head and covers or rests under the occipital bone of the patient's head. The second tie may be provided as part of a patient interface including, for example, a cradle cushion, nasal pillows, full-face cushion, nasal cushion, or oronasal cushion. For example, the positioning and stabilizing structure 3300 of FIG. 3 includes a second tie in the form of a strap 3310 that rests against the posterior surface of the patient's head.

[0154] In one form of the present technology suitable for a nasal-only or full-face mask, the positioning and stabilizing structure includes a third tie constructed and arranged to interconnect the first tie and the second tie in a manner that reduces the tendency of the first tie and the second tie to move apart from each other. Additionally, in some forms the positioning and stabilizing structure includes a fourth tie constructed and arranged to interconnect the second tie and the third tie in a manner that reduces the tendency of the second tie and the third tie to move apart from each other.

[0155]

[00130] In certain forms of the present technology, the positioning and stabilizing structure 3300 includes straps that are bendable, e.g., non-rigid. An advantage of this embodiment is that the straps are more comfortable when the patient lies down to sleep. The positioning and stabilizing structure 3300 of Fig. 3 includes a bendable strap 3310. The strap 3310 can be considered a back strap. The strap 3310 is sufficiently flexible to pass around the back of the patient's head and rest comfortably against the patient's head (even under tension in use).

[0156] In certain forms of the present technology, a system is provided that includes more than one positioning and stabilizing structure 3300. Each positioning and stabilizing structure 3300 is configured to provide a holding force to accommodate a range of different sizes and / or shapes. For example, the system may include one form of positioning and stabilizing structure 3300 that is suitable for large sized heads but not for small sized heads, and another form of positioning and stabilizing structure 3300 that is suitable for small sized heads but not for large sized heads.

[0157] 5.3.3.1 Headgear tubing 3 。 In some forms of the present technology, the positioning and stabilizing structure 3300 includes one or more tubes 3350 that deliver pressurized air received from a conduit forming part of the air circuit 4170 from the RPT device to the patient's airway (e.g., through the plenum chamber 3200 and the seal-forming structure 3100). In the form of the present technology shown in FIG. 3 , the positioning and stabilizing structure 3300 includes two separate gas delivery tubes 3350 that deliver air from the air circuit 4170 to the seal-forming structure 3100. The tubes 3350 are an integral part of the positioning and stabilizing structure 3300 of the patient interface 3000 and position and stabilize the seal-forming structure 3100 of the patient interface to the appropriate part of the patient's face (e.g., nose and / or mouth). This allows the conduit of the air circuit 4170 that provides the pressurized air flow to be connected to the connection port 3600 of the patient interface (at a location other than in front of the patient's face, which may be unsightly for some people). Although a pair of tubes 3350 has several advantages (discussed below), in some examples the positioning and stabilizing structure 3300 includes only a single tube 3350 configured to rest on one side of the patient's head. A strap or other stabilizing component may be provided on the other side of the patient's head between the upper end of the single tube 3350 and the seal-forming structure 3100 to balance the force on the seal-forming structure 3100.

[0158] The positioning and stabilizing structure 3300 may be described as inflatable because air may be contained therein and routed through the headgear tubing 3350 to deliver pressurized air from the air circuit 4170 to the patient's airway. It is understood that in an inflatable positioning and stabilizing structure 3300, not all components of the positioning and stabilizing structure 3300 need to be inflatable. For example, in the example shown in FIG. 3 , the positioning and stabilizing structure 3300 includes inflatable headgear tubing 3350 and non-inflatable straps 3310.

[0159] In certain forms of the present technology, the patient interface 3000 may include a connection port 3600. The connection port 3600 is located near the top, side, or back of the patient's head. For example, in the form of the present technology shown in FIG. 3, the connection port 3600 is located on the top of the patient's head. In this example, the patient interface 3000 includes an elbow 3610 with the connection port 3600. The elbow 3610 may pivot relative to the positioning and stabilizing structure 3300, thereby allowing movement of a conduit connected to the connection port 3600 to be decoupled from the positioning and stabilizing structure 3300. The connection port may be configured as a fluid connection opening 3390 in the headgear tubing 3350, as shown in FIG. 4, or relative to a component to which the headgear tubing 3350 is connected, as shown in FIG. 3. Additionally or alternatively, the conduit connected to the connection port 3600 may pivot relative to the elbow 3610. In the illustrated example, the elbow 3610 includes a swivel conduit connector that includes a connection port 3600 to which a conduit of the air circuit 4170 can be connected, allowing the conduit to rotate about a longitudinal axis relative to the elbow 3610. In the example of Figure 4, the air circuit 4170 can connect to a fluid connection opening. The elbow 3610 can rotatably connect to the fluid connection opening or to a ring received within the fluid connection opening.

[0160] A patient interface in which the connection port 3600 is not positioned in front of the patient's face may be advantageous where the patient considers it unsightly and / or too noticeable if the conduit connects to a patient interface 3000 that is in front of the face. For example, connecting a conduit to a patient interface 3000 that is in front of the face may increase the likelihood of entanglement with bedding or bed linens (particularly if the conduit extends downward from the patient interface in use). Forms of the technology that employ patient interfaces in which the connection port is positioned near the top of the patient's head in use may make it easier or more comfortable for the patient to lie or sleep in one or more of the following positions: lateral or sideways; supine position (i.e., on the back with the face generally facing upward); and prone position (i.e., on the stomach with the face generally facing downward). Furthermore, connecting the conduit to the front of the patient interface can exacerbate a problem known as tube drag, where the conduit can create undesirable drag on the patient interface, causing it to dislodge from the face.

[0161] 3 and 4, the positioning and stabilizing structure 3300 includes two tubes 3350. In use, each tube 3350 is positioned on a different side of the patient's head and extends above each ear (above the superior ear base of the patient's head as shown in FIG. 2C), across each cheek area, and up to the elbow 3610 at the top of the patient's 1000's head. This form of technology can be advantageous because if the patient is asleep in a recumbent position and one of the tubes is compressed, blocking or partially blocking gas flow along the tube, the other tube remains open, thereby providing pressurized gas to the patient. In other examples of the technology, the patient interface 3000 can include a different number of tubes (e.g., one tube, or three or more tubes). In one example, the patient interface is provided with one tube 3350, the single tube 3350 being positioned on one side of the patient's head in use (e.g., across one cheek area) and a strap forming part of the positioning and stabilising structure 3300 being positioned on the other side of the patient's head in use (e.g., across the other area) to assist in securing the patient interface 3000 on the patient's head.

[0162] Alternatively, the positioning and stabilizing structure may be provided as a single gas delivery tube having left and right arms as shown in Figure 4. In the example shown, the connection port 3600 is provided on the top side of the positioning and stabilizing structure rather than being a separate connection module as in the example of Figure 3.

[0163] In certain forms of the present technology, the patient interface 3000 is configured so that the connection port 3600 is positioned generally at the top of the patient's head. The connection port 3600 may be positioned in the sagittal plane and aligned with the superior auricular base point in a plane parallel to the coronal plane. The superior auricular base point is defined in FIG. 2C. In some forms of the present technology, the positioning and stabilizing structure 3300 may be configured to be worn in different positions such that the connection port 3600 may be positioned approximately 20 mm anterior or 20 mm posterior to the superior auricular base point near the top of the patient's head in the sagittal plane.

[0164] As noted above, in some examples of the present technology, the patient interface 3000 includes a seal-forming structure 3100 in the form of a cradle cushion. The seal-forming structure 3100 rests generally under the nose and seals around the underside of the nose. The positioning and stabilizing structure 3300 may be constructed and arranged to pull the seal-forming structure 3100 onto the patient's face under the nose with a sealing force vector in a posterior and superior direction (e.g., posterosuperior direction). Applying a sealing force vector in the posterosuperior direction may encourage the seal-forming structure 3100 to form a good seal both around the underside of the patient's nose and against the forward-facing surfaces of the patient's face on either side of the patient's nose and upper lip.

[0165] In some examples, the positioning and stabilizing structure 3300, in use, may apply a sealing force vector in a posterior-superior direction at an angle of approximately 35° relative to the patient's Frankfort horizontal (as shown in FIG. 2D ). The upper part of the tube 3350 (e.g., the portion of the tube 3350 above the strap 3310) may be oriented vertically, and the rear headgear straps 3310 may extend from the tube 3350 in a posterior-inferior direction at an angle of approximately 35° relative to the patient's Frankfort horizontal. In this particular setup, an angle θ of 125° is formed between the strap 3310 and the upper part of the tube 3350 (where the strap 3310 connects to the tube 3350). In other examples, θ may be greater than or less than 125°.

[0166] In the form of the technology shown in Figures 3 and 4, the two tubes 3350 are fluidly connected to each other and to a connection port 3600 at their upper ends. In Figure 3, the tubes 3350 are separate tubes and are connected to a crown connector 3360. The tubes 3350 are indirectly connected to each other by the crown connector 3360 and can be disconnected, for example, for cleaning, storage, or replacement. In Figure 4, the two tubes are integrally formed, and the connection port 3600 is provided as a fluid connection opening 3390 to which a swivel elbow connects. In other examples where separate, indirectly connected tubes are used, for example, each tube can be connected to a T-shaped conduit having two conduit arms each connectable to the tube 3350. The crown connector 3360 can include a third conduit arm. An elbow 3610, which can be included in the connection port 3600, is received in the fluid connection opening 3390 in the center of the crown connector 3360. The elbow 3610 may be received in a ring within the fluid connection opening 3390 and may be configured to pivot within the ring. The fluid connection opening 3390 may also be considered the connection port 3600 itself.

[0167] The tubes 3350 taking the form of the technology shown in Figures 3 and 4 each have a length of 15 to 30 cm (e.g., 20 to 27 cm, respectively). The length of the tube is selected to be appropriate for the size of a typical patient's head when following a generally arcuate path down the side of the head and across the patient's cheek area (e.g., the arcuate path taken by the tube 3350 shown in Figures 3 and 4) (e.g., the distance between the area near the top of the head (where the upper end of the tube 3350 is located) and the area near the opening to the patient's airway (where the lower end of the tube 3350 connects to the plenum chamber 3200)). In some examples, the patient interface 3000 may be configured such that the length of the tube 3350 is variable. It will be understood that the length of the tube 3350 will depend on the length of other components in the patient interface 3000 (e.g., the length of the crown connector 3360 to which the upper end of the tube 3350 connects and / or the size of the plenum chamber 3200).

[0168] The cross-sectional shape of the gas delivery tube 3350 can be circular, elliptical, oval, D-shaped, trapezoidal, or rounded rectangular, for example, as described in U.S. Patent No. 6,044,844, which is incorporated herein by reference. A cross-sectional shape that presents a flatter surface of the tube facing and contacting the patient's face or other portion of the head may be more comfortable to wear than, for example, a tube with a circular cross-section.

[0169] The cross-sectional width and / or height of the tube 3350 may be in the range of 8-35 mm. In some forms, these tubes have an approximately D-shaped cross-section, with the tube width being in the range of 15-25 mm and the height being in the range of 6-15 mm. The height may be considered the dimension of the tube extending away from the patient's face in use (i.e., the distance between the patient-contacting portion 3348 and the outermost portion of the non-patient-contacting portion 3349), and the width may be considered the dimension across the surface of the patient's head. The cross-sectional thickness of the material forming the tube 3350 may be in the range of 0.8-1.6 mm (e.g., 1.0-1.5 mm).

[0170] 5.3.3.1.1 Gas delivery pipe construction In an example of the present technology, Figure 5 shows a cross section through a gas delivery tube 3350 having a substantially D-shaped profile. In use, the flat side of the profile contacts the patient's face and head and should be understood as the patient-contacting portion of the gas delivery tube. The raised or arcuate side of the profile should be understood as the non-patient-contacting portion of the gas delivery tube. In some examples, the gas delivery tube may have a more squared or rectangular shaped profile configured with slightly rounded corners for patient comfort.

[0171] The gas delivery tube 3350 is constructed at least substantially of a textile material and / or foam material and a transparent material that at least substantially includes an elastomeric material. The transparency (i.e., light transmittance) of the elastomeric material allows for see-through. In some instances, the transparency can be high, resulting in minimal or no polarization of transmitted light, making the transparency of the elastomeric material similar to that of glass or film. In other instances, the transparency can limit polarization of transmitted light, resulting in a slight clouding of the elastomeric material, but sufficient to allow the patient to clearly detect dirt and mold.

[0172] In use, the gas delivery tube is constructed such that the patient-contacting portion of the gas delivery tube (i.e., the portion that contacts the patient's face and head) substantially comprises a textile material, and the transparent material comprises at least a portion of the non-patient-contacting side of the gas delivery tube.

[0173] This structure makes the gas delivery tube comfortable for the patient to wear as part of the positioning and stabilizing structure and also allows for inspection of the interior of the gas delivery tube. That is, it may be possible to visually detect buildup of dirt or mold inside the gas delivery tube. The patient can disconnect the gas delivery tube 3350 from the plenum chamber 3200 to remove any residue detected inside. The transparent material allows the patient to verify that all dirt and mold has been removed when the gas delivery tube is being cleaned.

[0174] In certain forms of the present technology, the gas delivery tube 3350 is constructed from a translucent material, which may function substantially the same as a transparent material and may be used in addition to or in place of a transparent material in any embodiment.

[0175] An additional benefit of this construction is that the textile and elastomeric materials may be combined for a unified look and feel, potentially resulting in a higher perceived quality compared to conventional gas delivery tubes constructed entirely of textile or elastomeric materials. Additionally, this one-piece construction may allow for lower cost and weight compared to conventional gas delivery tubes.

[0176] 5.3.3.1.2 Textile / foam materials The flat side 3351 of the gas delivery tube 3350 forms the patient-contacting side of the gas delivery tube. It comprises a textile material. In this example, the textile material may have at least two layers (i.e., an inner layer 3352 comprising a gas impermeable layer (e.g., formed from a film or laminate of silicone or another elastomeric plastic material (e.g., TPE or TPE)) and an outer textile layer 3353 forming the exterior of the gas delivery tube 3350). The inner layer 3352 is bonded to the outer textile layer 3353. In some other examples, an additional layer may be provided between the gas impermeable layer and the outer textile layer (e.g., an intermediate adhesive layer bonding the gas impermeable layer to the outer textile layer 3353). In further examples, the textile material may comprise a single layer. In these examples, the textile material may be inherently gas impermeable, eliminating the need for an additional film or laminate layer.

[0177] 3 and 4, the headgear tube 3350 includes a patient-contacting side formed at least in part from a textile material, as described above. Additionally or alternatively, the patient-contacting side of the gas delivery tube 3350 may be formed from a foam material. In some examples, the tube 3350 includes a combination of textile and foam material. Providing a textile and / or foam material on the patient-contacting side of the gas delivery tube may allow for: air retention under pressure, biocompatibility and suitability / approval for use in forming medical air pathways, lighter weight than silicone tubing, soft and flexible, generally retains its shape, and is cleanable and durable over a predetermined lifespan (e.g., 1 month, 3 months, 6 months, 1 year or more).

[0178] As previously mentioned, the arcuate side 3354 of the D-shaped profile defines the non-patient-contacting portion of the gas delivery tube. In one example, at least a portion of the non-patient-contacting portion is provided similarly to the patient-contacting side (i.e., a textile material having at least two layers (i.e., an inner layer including a gas-impermeable layer of elastomeric plastic material bonded to an outer textile layer)). However, in other examples, the textile material that may comprise a portion of the non-patient-contacting portion may be made sufficiently gas-impermeable that no inner layer is required, and a single layer of textile material and transparent material is included in the non-patient-contacting portion. The textile material of the non-patient-contacting side 3354 may be stiffened (e.g., by the addition of a gas-impermeable layer, stiffener) to help maintain the pointed shape. Alternatively, a stiffener may not be included, and the arcuate D-shaped shape may be formed only when pressurized air passes through the gas delivery tube 3350.

[0179] In one example, the textile material comprising the gas delivery tube can be a polyamide blend (e.g., nylon, polyester, and / or spandex) and can weigh between 50 g / m² and 250 g / m². In a further example, the textile material can be a material weighing 120 g / m². In some examples, the inner layer of the textile material can include two or more laminate coats of silicone. In one example, each laminate coat of silicone can be 5 to 75 microns thick. In a further example, each laminate coat of silicone can be 20 to 30 microns thick, preferably 25 microns thick.

[0180] It is advantageous to provide textiles on the exterior of both the patient-contacting and non-patient-contacting sides of the gas delivery tube. The patient-contacting side provides more comfort when in contact with the face, while the non-patient-contacting side reduces friction when the gas delivery tube comes into contact with other textiles (e.g., pillows or bed linens) when the patient interface is worn in bed. This provides a more pleasant feel and aesthetic appearance.

[0181] 5.3.3.1.3 Transparent Materials - Windows 5 and 6, the front 3355 and back 3356 of the D-shaped profile, where the patient-contacting side of the gas delivery tube 3350 and the non-patient-contacting side of the gas delivery tube 3350 meet, are formed from a transparent material. This transparent material creates a window in the gas delivery tube 3350 profile, allowing the user to visually inspect its interior. This makes it easier to detect mold and / or dirt buildup, facilitates cleaning of the interior, and also maintains the comfort of a substantially textile exterior.

[0182] 5 and 6, both the patient-contacting side 3351 and the non-patient-contacting side 3354 of the gas delivery conduit 3350 are each formed from a single strip of textile material. Additionally, the gas delivery conduit of FIGS. 5 and 6 is configured with two windows, one along each of the front 3355 and rear 3356 sides of the gas delivery conduit. In the illustrated example, a transverse axis TA may extend transversely to the longitudinal axis LA through both the front 3355 and rear 3356 sides and generally in the direction of flow of pressurized air along at least a portion of the gas delivery conduit 3350 (e.g., along the interface between the plenum chamber 3200 and the positioning and stabilizing structure 3300). The transverse axis may not pass through either strip of textile material. For example, the transverse axis may extend along the strip of textile material forming the patient-contacting side 3351 in the anterior / posterior direction, but does not intersect the strip of textile material forming the non-patient-contacting side 3354. When a patient looks along the transverse axis TA, they may be able to see entirely through the gas delivery conduit 3350. In other words, the gas delivery conduit 3350 does not include opaque material when viewed along the transverse axis TA. Because a clear line of sight along the transverse axis TA may be obstructed by residue within the gas delivery conduit 3350, the patient may be able to more clearly identify that residue. However, by providing both textile and transparent material along the periphery of the gas delivery conduit 3350, both the transparent material and the textile material are oriented to be exposed to the patient (e.g., for visual inspection) from the transverse plane (i.e., the plane containing the transverse axis TA) to the longitudinal axis LA (i.e., the cross section shown in FIG. 5 ).

[0183] Each strip of textile material has opposing edges along its long dimension; i.e., a window of transparent material is bonded by adhesive or heat welding techniques to each edge of the patient contacting side 3351 and non-patient 3354 contacting sides. In other examples, the windows can be overmolded onto the edges of the textile material on the patient contacting side 3351 and non-patient 3354 contacting sides.

[0184] In other examples, the non-patient-contacting side 3354 can be formed from two or more strips of textile material with a transparent material dispersed therein. For example, the non-patient-contacting side 3354 can be formed from two strips of textile material separated by a single strip of transparent material bonded or overmolded to each edge of the textile material. In addition to the windows 3355 and 3356 on either side of the D-shaped profile, a window is located in the center of the arcuate side of the D-shaped profile. In yet another example, the patient-contacting and non-patient-contacting sides of the gas delivery tube are formed from a single strip of textile material, with the edge of the textile material positioned substantially in the center or to one side of the non-patient-contacting side 3354 of the D-shaped profile. In this example, the window is positioned between the elongated edges of the textile material. In other words, the transparent material is positioned (e.g., overmolded) between the elongated edges of the textile material so that the edges are not fully connected. In this example, the patient has only a single viewing window and cannot see completely through the gas delivery tube 3350.

[0185] In these examples, the transparent material forming windows 3355 and 3356 is an elastomeric material. In one such example, the transparent material is medical-grade silicone. In some examples, the silicone may be selected from silicones having a Shore A durometer measurement range of 35 to 45 (i.e., soft to medium soft). In a further example, the silicone has a Shore A durometer measurement of 38 to 42. In one such example, the silicone has a Shore A durometer measurement of 40.

[0186] In some instances, a harder durometer measurement may be used to provide greater structural integrity to the gas delivery tube, but this may also increase the likelihood of increased pressure when the non-patient-contacting side of the positioning and stabilizing structure inadvertently comes into contact with the patient's face during donning, which may result in discomfort for the patient.

[0187] In another example, the transparent material can be a TPE or TPU of suitable softness. Advantages of TPE include its relatively low cost and lower operating temperature. For example, TPE can be molded at temperatures below 50°C with shorter cycle times than elastomeric materials such as silicone.

[0188] In one example, the windows 3355 and 3356 are formed by overmolding silicone onto strips of textile material, thereby forming the patient contacting side 3351 and the non-patient contacting side 3354. In some examples, the gas impermeable layer is formed by laminating or coating the textile material, and then the gas impermeable layer is cut into strips, while in other examples, the strips may be knitted, for example by weft knitting, and then laminated.

[0189] In one example of manufacturing, strips of textile material are inserted into a mold, and windows 3355 and 3356 are molded onto the textile material. This allows a one-piece structure to be formed between the textile material and the transparent material. In FIGS. 5 and 6, windows 3355 and 3356 may have a complementary shape to semicircular contour 3357, which includes the contour 3357 on the hollow interior of the gas delivery tube. This may help direct the flow of silicone during molding, thereby promoting bonding to the textile strips before filling the window-forming portions. This urges the textile strips on either side of the window toward each other, creating a stronger bond. Conversely, the formation of the windows may initially urge the textile strips apart, which may affect the quality and appearance of the gas delivery tube.

[0190] In some examples, a portion of the length of the gas delivery tube may be configured with one or more windows, and in other examples, the entire length of the gas delivery tube 3350 may be configured with one or more windows 3355 and 3356. In further examples, the length of the gas delivery tube may be configured with a series of windows spaced at specific intervals and / or strategically located. For example, in certain configurations, the lower portion of the gas delivery tube 3350 near the plenum chamber 3200 may be provided with one or more windows, while the upper portion of the gas delivery tube near the connection port to the air supply may not. In some of these examples, at least some of the individual windows may be separated from adjacent windows by sections of textile or foam material.

[0191] 5.3.3.1.4 Transparent Materials - Non-Patient Contact Side 7 shows a gas delivery tube 3350 having a substantially D-shaped profile. The curved portion of the profile is the non-patient-contacting side 3354 of the gas delivery tube 3350 and may be formed entirely from a transparent material, while the flat portion of the profile is the patient-contacting side 3351 of the gas delivery tube and comprises entirely a textile or foam material. The patient-contacting portion 3351 and the non-patient-contacting portion 3354 are joined at flanges that define the front and back sides, respectively, of the gas delivery tube 3350 when in use.

[0192] In other examples, instead of the D-shaped profile of Figure 7, the gas delivery tube may have a substantially square or rectangular profile (including rounded corners for patient comfort). Rounded corners, as opposed to sharp corners, may help reduce potential failure points (e.g., locations where failure may occur in the gas delivery tube 3350 due to repeated pressurization and depressurization).

[0193] The arrangement and described example of Figure 7 may be advantageous because the conduit headgear provided is comfortable to wear and the interior of at least a portion of the gas delivery tube (if not the entire length) is visible to the patient. Inspection and cleaning of the gas delivery tube may be easier to perform. In other examples, only a portion of the non-patient-contacting length may be formed from a transparent material. For example, only the non-patient-contacting side of the lower end of the gas delivery tube may include a transparent material. In another example, the non-patient-contacting side of the upper end of the gas delivery tube may include a transparent material.

[0194] In these examples, the transparent material forming the non-patient-contacting side 3354 is an elastomeric material. In one such example, the transparent material is medical-grade silicone. In some examples, the silicone may be selected from silicones having a Shore A durometer measurement range of 35 to 45 (i.e., soft to medium soft). In a further example, the silicone has a Shore A durometer measurement of 38 to 42. In one such example, the silicone has a Shore A durometer measurement of 40.

[0195] In another example, the transparent material may be a TPE or TPU of suitable softness. The harder the durometer measurement, the greater the potential for increased pressure if the non-patient-contacting side 3354 of the patient interface positioning and stabilizing structure inadvertently comes into contact with the patient's face during donning, which may result in discomfort for the patient.

[0196] In this example, for patient comfort, the patient-contacting side 3351 of the gas delivery tube 3350 is constructed from an opaque textile material as described above. In Figure 7, the textile layer includes an inner layer in the form of a gas impermeable layer 3352, for example, of a silicone laminate. In some examples, an additional layer of adhesive or an additional laminate layer may be provided. A flow path is formed between the inner gas impermeable layer 3352 and the non-patient-contacting side 3354, which in this example comprises an elastomeric material entirely and is therefore medically compatible for clean gas flow, as previously described.

[0197] Additionally or alternatively, the patient-contacting side 3351 may be formed from or include a foam material. In some examples, the tubing 3350 may include a combination of a textile material and a foam material. The textile and / or foam material comprising the patient-contacting side 3351 of the gas delivery tubing may allow for air retention under pressure, biocompatibility and suitability / approval for use in forming medical air pathways, lighter weight than silicone tubing, soft and flexible, generally retains its shape, and is cleanable and durable over a predetermined lifespan (e.g., 1 month, 3 months, 6 months, 1 year or more).

[0198] In some examples, the non-patient contacting side 3354 of the gas delivery tube 3350 may at least partially include one or more concertina sections 3358, as shown in Figure 8. Each concertina section 3358 may include a portion of the gas delivery tube 3350 having one or more folds, pleats, corrugations, or bellows, as described in PCT Application No. PCT / AU2019 / 050874, which is incorporated herein by reference.

[0199] In some instances, the concertina portion may extend only a portion of the length of the non-patient-contacting side of the gas delivery tube, as shown in FIG. 8, while in other instances, the concertina portion may extend the entire length of the non-patient-contacting side of the gas delivery tube. In further instances, the concertina portion 3358 may be positioned at strategic points along the length of the gas delivery tube. For example, the concertina portion may be positioned at points that correspond to the curves of the patient's head (e.g., around the crown and chin, below the mouth line), but not on a substantially flat portion of the head (e.g., the sides of the head between the superior and inferior ear base points), thereby assisting the positioning and stabilizing structure to conform to the shape of the patient's head.

[0200] In another example, the concertina portion may extend partially around the non-patient-contacting side of the gas delivery tube. In an example, the concertina portion may extend to include the rear and front sides of the gas delivery tube. In a further example, the concertina portion may extend around the entire circumference of the gas delivery tube. In this example, the concertina portion may encompass both the patient-contacting and non-patient-contacting sides of the gas delivery tube. In this example, the concertina portion may provide greater elongation capability for increasing the length of the gas delivery tube compared to other examples in which the concertina portion extends only around or only partially around the non-patient-contacting side.

[0201] In the examples of Figures 11 and 12, the concertina portion 3358 of the gas delivery tube 3350 comprises at least partially a textile or foam material and at least partially a transparent material (e.g., silicone, TPE, or TPU, as described in the examples above). In some examples, the textile or foam material may be provided only on the patient-contacting side of the gas delivery tube, leaving the non-patient-contacting side partially or entirely comprised of the transparent material. The stretch characteristics of the textile and transparent materials may be similar, allowing both the patient and non-patient sides to stretch (e.g., the concertina does not curve when stretched). However, in the examples of Figures 11 and 12, the non-patient-contacting side comprises a long strip of textile material in the form of a textile pad 3308 that extends the length of the gas delivery tube. In this example, the gas delivery conduit 3350 comprises entirely of a transparent material, and the textile pad 3308 is joined (e.g., by overmolding, adhesive) to the non-patient-contacting side of the gas delivery conduit 3350. In other words, in this example, the textile material does not come into contact with the pressurized air as it passes through the gas delivery conduit 3350.

[0202] In some further examples, the concertina portion comprises both a non-patient-contacting side and a patient-contacting side, in which case the patient-contacting concertina portion may also include a textile material or foam material for patient comfort.

[0203] The use of a gas delivery tube 3350 having one or more concertina sections may be advantageous in providing conduit headgear that can better conform to the shape of a patient's head by allowing for some lengthening and bending capability in the gas delivery tube 3350. For example, in FIG. 10 , the upper portion of the gas delivery tube 3350 of the positioning and stabilizing structure 3300 includes a concertina section 3358. This may be advantageous because it allows for some stretchability and / or bending capability in the gas delivery tube to conform to the upper portion of the patient's head.

[0204] 8, the concertina portion 3358 may include a series of external ridges 3359A and grooves 3359B that are alternately formed along at least a portion of the non-patient-contacting side 3351 of the gas delivery tube 3350. In some instances, corresponding ridges and grooves may be provided on the interior of the gas delivery tube, but this may result in cost-effective manufacturing compromises.

[0205] In some examples, the alternating ridges 3359A and grooves 3359B may function like folds or bellows, folding and unfolding independently or in concert to shorten or lengthen the concertina portion 3358 and thus each gas delivery tube 3350. Increasing the groove depth (or ridge height) may result in a more stretchable or flexible tube 3350. When tension is applied to the tube 3350, the ridges 3359A and grooves 3359B of the stretchable concertina portion 3358 may be pulled away from each other, straightening the tube walls and lengthening the tube 3350. In this example, the concertina portion 3358 is biased back to its original (e.g., unstretched) length. When tension on the headgear is released, the ridges 3359A and grooves 3359B are biased back to their original configuration. In this original configuration, the concertina portion 3358 and tube 3350 have their original length, which may assist in conforming the gas delivery tube to the shape of the patient's head. The stretch or elongation of the concertina portion on the gas delivery tube 3350 may be substantially elastic, so that a similar force is provided to the plenum chamber 3200 with each successive use.

[0206] In another example, the alternating ridges 3359A and grooves 3359B of the concertina portion may be formed as a corrugated structure, thereby allowing the gas delivery tube to deform and bend. In this example, the concertina portion may have limited or no ability to shorten or lengthen. The ridges 3359A and grooves 3359B may assist the concertina portion 3358 of the gas delivery tube 3350 in changing shape, thereby assisting the gas delivery tube in conforming to the patient's head.

[0207] 5.3.3.1.5 Rigidity In some examples of the present technology, the gas delivery conduit 3350 or a portion of the gas delivery conduit of the positioning and stabilizing structure 3300 may be configured to provide more resistance in or about some directions or axes than in other directions or axes. Providing relatively stiff sections of the conduit 3350 on both the front and back sides of the conduit 3350 may be advantageous because it provides more resistance to bending in both the front and back sides of the conduit 3350 during use. However, in some examples, a stiff section is provided on only one of the front or back sides of the conduit 3350, as the stiffness may be such that a stiff section on only one side provides sufficient resistance to bending in both directions. In other examples, a stiff section may be provided along the entire length of the gas delivery conduit 3350, while in further examples, a stiff section is provided along only a portion of the length of the gas delivery conduit 3350. For example, a stiff section may be provided on one of the lower or upper parts of the conduit. For example, the top of each tube 3350 of the positioning and stabilizing structure 3300 shown in Figures 3 and 4 may be more flexible in a particular direction than in an orthogonal direction. For example, making the top of the gas delivery tube more flexible may assist in the conformance of the positioning and stabilizing structure to the shape of the patient's skull, particularly around the curvature of the crown.

[0208] Each gas delivery tube 3350 of the positioning and stabilizing structure 3300 may include an upper tube portion 3304 that, in use, extends from the top of the patient's head in a posterior direction, for example, around a line of the superior ear base point, and is configured to rest on the upper region of the patient's head when in use. Conversely, the lower portion 3306 of each tube 3350 of the positioning and stabilizing structure 3300 shown in Figures 3 and 4 (which extends posteriorly from the superior ear base point of the patient's head when in use) may be more flexible in a particular direction than in an orthogonal direction.

[0209] In some examples of the present technology, the upper tube section 3304 may also include one or more stiffening sections relative to the lower tube section 3306. These stiffening section(s) may be configured to provide more resistance to relative movement in the forward and / or rearward directions than in the upward and / or downward directions. This may be advantageous, for example, when dealing with any drag arising from the air circuit. The stiffening sections may, in some examples, be provided along the entire length of the tube 3350 and in some examples may provide different stiffness along the length of the tube 3350.

[0210] In examples, the stiffening portion(s) of the gas delivery tube may be provided by a window portion, which, being formed from an elastomeric material, may inherently have a higher stiffness than the textile or foam material forming at least a substantial portion of the remainder of the gas delivery tube.

[0211] In some examples, the relative stiffness of the gas delivery tube may be determined by the configuration of the windows. In the embodiment of FIG. 5, for example, increased stiffness of the gas delivery tube 3350 may be achieved by increasing the thickness of one or both of the windows 3355 and 3356. In another example, increased stiffness of the gas delivery tube may be achieved by reducing the thickness of one of the windows 3355 relative to the other window 3356. Depending on the desired stiffness, the thickness of the window(s) may be increased or decreased along the length of the gas delivery tube 3350. This may impart different stiffness to the lower portion 3306 and upper portion 3304 of the gas delivery tube.

[0212] Increasing the relative width of one or both of the windows 3355 and 3356 (i.e., reducing the amount of textile material present and increasing the amount of silicone present within the windows (i.e., increasing the ratio of the surface area of ​​the windows relative to the textile material on the non-patient-contacting side of the gas delivery tubing)) can similarly increase the stiffness of the gas delivery tubing. The ratio of window to textile material can range from 1:10 to 1:1. For example, in FIG. 5, the windows 3355 and 3356 are approximately one-eighth the width of the textile strip forming the non-patient-contacting side 3354 (i.e., a 1:8 ratio). Doubling the width of the windows 3355 and 3356 with a corresponding reduction in the width of the textile material forming the non-patient-contacting side 3354 can lead to an increase in the stiffness of the gas delivery tubing. The width of the windows can increase or decrease along the length of the gas delivery tubing 3350, thereby providing differential stiffness to the lower and upper portions 3306 and 3304 of the gas delivery tubing.

[0213] Adding stiffening screws to the textile material (e.g., by stitching) can also increase the stiffness of the gas delivery tube 3350. The stiffening screws allow for stiffening of the textile material (without substantially increasing the weight of the textile material). Stiffening screws can be used in place of wider windows to reduce weight and improve patient compliance.

[0214] In embodiments in which windows 3355 and 3356 are positioned along the rear and front sides of the gas delivery tube (e.g., those shown in FIGS. 5 and 6), one or the other of these windows may be configured to be more rigid than the other. For example, the window on the front side of the gas delivery tube may be configured to be more rigid than the window on the rear side of the gas delivery tube. That is, the gas delivery tube 3350 has a higher resistance to forces applied from the rearward direction (e.g., those that occur when the air circuit is dragged or caught on bedding). In another example, the window on the rear side of the gas delivery tube may be configured to be more rigid than the window on the front side of the gas delivery tube. That is, the gas delivery tube 3350 has a higher resistance to forces applied from the forward direction.

[0215] 5.3.3.1.6 Alternative gas delivery piping configurations In another example of the present technology, Figure 9 shows the lower portion 3306 of the gas delivery tube 3350 when decoupled from the plenum chamber 3200. In contrast to the example above, both the patient-contacting side 3351 and the non-patient-contacting side 3354 of the gas delivery tube 3360 are constructed primarily from a transparent material in the form of an elastomer. That is, the flow path (or a substantial portion thereof) within the gas delivery tube 3350 is defined entirely by the elastomer. In the example, the elastomer is silicone, and therefore gas-impermeable and medically suitable for defining a hygienic flow path. Other examples of elastomers can be TPE or TPU.

[0216] The patient-contacting side 3351 is configured to permanently or temporarily receive the textile pad 3308, thereby providing a comfortable, softer surface in contact with the patient's face during use. In other words, the textile pad 3308 does not form part of the passageway through which pressurized air flows. In examples, the textile pad 3308 may be added during manufacture or may be separately provided on the gas delivery tube for fastening to the gas delivery tube by the patient, if desired. This may allow the conduit headgear to be provided in a non-textile form, allowing the patient to place the textile pad on a particular area of ​​the patient-contacting side of the gas delivery tube according to their preference. For example, the textile pad may be added to the top of the gas delivery tube 3350 that contacts the crown of the patient's head.

[0217] Because the textile pad 3308 need not be configured with surfaces that form part of the flow path of the gas delivery conduit 3350, this function may be accomplished entirely by the transparent material that forms at least a substantial portion of the flow path in the gas delivery conduit, eliminating the need for a textile that includes a gas impermeable layer. The textile pad 3308 may comprise one or more fabrics (e.g., nylon, polyester, or spandex or blends thereof). In some examples, the textile pad 3308 may comprise a material that is sufficiently stretchable and elastic so that bendability of the conduit headgear 3300 (e.g., to accommodate movement of the concertina portion 3358 of the conduit headgear of FIGS. 10-12) is not impeded.

[0218] In these examples, the textile pad 3308 is bonded to the transparent material through the use of an adhesive or similar bonding agent. In other examples, the textile pad 3308 may be secured to the transparent material by, for example, a hook and loop material (e.g., VELCRO®). In a further example, the transparent material may be overmolded onto the textile pad 3308.

[0219] In some examples, to aid in placement of the textile pad 3308, the patient-contacting side 3351 of the gas delivery conduit 3350 may be molded or otherwise formed to include a partial recess or indentation. This may be advantageous in that it may lead to a more consistent look and feel of the gas delivery conduit 3350, which may lead to increased consumer appeal. In some examples, the recess may comprise one piece of hook and loop material, with another piece of hook and loop material on the opposite side of the textile pad 3308. This allows the textile pad to be removed for cleaning to remove skin oils and dirt that may develop due to contact with the patient's face.

[0220] 9, the textile pad 3308 extends upwardly from the lower end of the gas delivery tube 3350 as far as possible, similar to the tab 3312 extending rearward from the gas delivery tube. In some examples, the textile pad 3308 may be configured with a corresponding tab to cover the tab 3312 of the gas delivery tube 3350. This may provide increased comfort when the tab 3312 of the gas delivery tube comes into contact with the patient's face and / or hair (when the positioning and stabilizing structure is being worn).

[0221] While Figure 9 illustrates only the lower portion 3306 of the gas delivery tube with a textile pad 3308, in other examples, the upper portion 3304 of the gas delivery tube 3350 may additionally or alternatively be configured with a textile pad 3308. This may be a separate textile pad from the textile pad provided on the lower portion 3306 of the gas delivery tube, or, as shown in Figure 10, a single textile pad may cover both the upper and lower portions 3304, 3306 of the gas delivery tube 3350. Covering both the upper and lower portions 3304, 3306 with textile material may be particularly useful for patients who have little hair on the scalp or sides of their head and who dislike having elastomeric material in contact with their skin. There is also less risk of the elastomeric material getting caught in the patient's hair if the positioning and stabilizing structure is accidentally moved on the patient's head.

[0222] 11 and 12, the patient-contacting side of the gas delivery tube 3350 includes a textile pad 3308, and a textile pad may also be applied to the non-patient-contacting side of the gas delivery tube 3350, exposing windows 3355 and 3356. In this example, a transparent material forms at least a substantial portion of the flow path within the gas delivery tube. The use of a textile pad 3350 attached through the use of adhesives, molding techniques, or hook-and-loop materials (e.g., VELCRO®) may provide an aesthetically pleasing and tactile finish to the non-patient-contacting side of the gas delivery tube in cases where the patient may need to touch it (e.g., when applying or removing the positioning and stabilizing structure).

[0223] 5.3.4 Ventilation In one form, the patient interface 3000 includes a vent 3400 constructed and arranged to allow for the expulsion of exhaled gases (eg, carbon dioxide).

[0224] In certain forms, the vent 3400 is configured to allow continuous ventilation flow from the interior of the plenum chamber 3200 to the ambient when the pressure within the plenum chamber is positive relative to the ambient. The vent 3400 is 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.

[0225] Ventilation section 3400 in one form according to the present technology includes 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).

[0226] The vent 3400 may be located within the plenum chamber 3200. Alternatively, the vent 3400 is located within a decoupling structure (e.g., an elbow swivel).

[0227] 5.3.5 Decoupling Structures (Singular or Plural) In one form, the patient interface 3000 includes at least one decoupling structure (eg, a swivel or a bulb).

[0228] 5.3.6 Connection Port The connection port 3600 allows connection to the air circuit 4170 .

[0229] 5.3.7 Anti-asphyxiation valve In one form, the patient interface 3000 includes an anti-asphyxiation valve.

[0230] 5.3.8 Ports In one form of the present technology, the patient interface 3000 includes one or more ports that allow access to the volume within the plenum chamber 3200. In one form, this allows a clinician to provide supplemental oxygen. In one form, this allows a property of the gas (e.g., pressure) within the plenum chamber 3200 to be directly measured.

[0231] 5.4 RPT Device 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. The RPT device 4000 can be configured to generate an airflow that is delivered to a patient's airway for the treatment of one or more of the respiratory ailments, for example, as described anywhere herein.

[0232] In one form, the RPT device 4000 is constructed and arranged to deliver airflow in the range of -20 L / min to +150 L / min while maintaining a positive pressure of at least 6 cmH2O, or at least 10 cmH2O, or at least 20 cmH2O.

[0233] 5 Glossary For purposes of this disclosure, in certain aspects of the technology, one or more of the following definitions may apply. In other aspects of the technology, other definitions may apply.

[0234] 5.1 General Air: In certain forms of the present technology, air may refer to atmospheric air, while in other forms of the present technology, air may refer to a combination of other breathable gases (e.g., oxygen-rich atmospheric air).

[0235] 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.

[0236] For example, the ambient humidity for a humidifier may be the humidity of the air immediately surrounding the humidifier (e.g., the humidity inside the room where the patient is sleeping). Such ambient humidity may differ from the humidity outside the room where the patient is sleeping.

[0237] In another example, the ambient pressure may be the pressure immediately surrounding or external to the body.

[0238] 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.

[0239] Automatic Positive Airway Pressure (APAP) Therapy: CPAP therapy that is capable of automatically adjusting therapeutic pressure between minimum and maximum limits, for example, between breaths, depending on the presence or absence of signs of an SDB episode.

[0240] 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).

[0241] Flow Rate: The instantaneous amount (or mass) of air delivered per unit time. Flow rate can refer to an instantaneous quantity. In some cases, reference to flow rate refers to a scalar quantity (i.e., a quantity that has only magnitude). In other cases, reference to flow rate 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 simply called "flow."

[0242] In the example of patient breathing, flow may be nominally positive during the inspiratory portion of the patient's respiratory cycle and negative during the expiratory portion of the patient's respiratory cycle. Total flow, Qt, is the flow of air exiting the RPT device. Vent flow, Qv, is the flow of air exiting the vent due to exhalation washout. Leakage flow, Ql, is the flow of leakage from the patient interface system or elsewhere. Respiratory flow, Qr, is the flow of air received into the patient's respiratory system.

[0243] 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.

[0244] Leak: The term "leak" refers to unintended airflow. In one example, a leak can occur due to an imperfect seal between the mask and the patient's face. In another example, a leak can occur at the elbow to the perimeter.

[0245] Patient: A person with or without a respiratory disease.

[0246] 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 2which is approximately 0.98 hectopascals. In this specification, pressures are given in units of cmH2O unless otherwise specified.

[0247] The pressure in the patient interface is designated by the symbol Pm, and the therapeutic pressure, which represents the target value that the mask pressure Pm should achieve at this time, is designated by the symbol Pt.

[0248] Respiratory Pressure Therapy (RPT): The application to the airway entrance of an air supply at therapeutic pressure, typically positive pressure relative to atmosphere.

[0249] Ventilator: A mechanical device that provides pressure support to a patient while they perform some or all of the work of breathing.

[0250] 5.1.1 Materials 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, as measured by ASTM D2240, in the range of about 35 to about 45.

[0251] Polycarbonate: A thermoplastic polymer of bisphenol A carbonate.

[0252] 5.1.1.1 Mechanical properties Elasticity: The ability of a material to absorb energy during elastic deformation and to release the energy when unloaded.

[0253] Elastic: Releases substantially all of the energy upon unloading. Examples include certain silicone and thermoplastic elastomers.

[0254] 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.

[0255] 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.

[0256] 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.

[0257] 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.

[0258] 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.

[0259] 5.1.2 Respiratory cycle 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.

[0260] Respiratory rate: The patient's spontaneous breathing rate, usually measured in breaths per minute.

[0261] Expiratory portion of the respiratory cycle: the period from the start of expiratory flow to the start of inspiratory flow.

[0262] 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.

[0263] Patency (Airway): The degree to which the airway is open or the extent to which the airway is open. An open airway is open. Airway patency can be quantified, for example, using a value of 1 to indicate open and a value of 0 to indicate closed (obstructed).

[0264] Ventilation (ventilation): 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 of 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.

[0265] 5.1.3 Anatomy 5.1.3.1 Facial Anatomy Pinna: the entire visible part of the ear.

[0266] (Nasal) skeleton: The nasal skeleton includes the nasal bones, the frontal process of the maxilla, and the nasal portion of the frontal bone.

[0267] (Nasal) cartilaginous rami: The cartilaginous rami of the nose include the septal cartilage, lateral cartilage, greater cartilage, and lesser cartilage.

[0268] 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.

[0269] Glabellar: Located in the soft tissue, the most prominent point in the midsagittal plane of the forehead.

[0270] Lip, lower (labrale inferius): point on the face between the mouth and the supramentum, lying in the midsagittal plane.

[0271] Lips, upper (labrale superius): The point on the face between the mouth and nose, lying in the midsagittal plane.

[0272] Nostrils (nose holes): Generally ellipsoidal alar openings that form the entrance to the nasal cavity. The singular form of nostril is nostril (nares). These nostrils are separated by the nasal septum.

[0273] Inferior ear point: lowest point of attachment of the pinna to the facial skin.

[0274] Superior auricular point: the highest point of attachment of the pinna to the facial skin.

[0275] 5.1.3.2 Skull anatomy Frontal bone: The frontal bone contains the squama frontalis, a large vertical portion that corresponds to the area known as the forehead.

[0276] Mandible: The mandible forms the lower jaw. The mental protuberance is a bony protuberance in the jaw that forms the chin.

[0277] 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.

[0278] Nasal bones: The nasal bones are two small, rectangular bones that vary in size and shape between individuals. They lie side by side in the middle and upper parts of the face and together form the "bridge" of the nose.

[0279] Nasion: the intersection of the frontal bone and the two nasal bones, a concave area directly between the eyes and the upper side of the bridge of the nose.

[0280] 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.

[0281] Orbit: bony cavity in the skull that contains the eyeball.

[0282] Parietal bones: The parietal bones are bones that, when joined together, form the top and sides of the skull.

[0283] 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.

[0284] Cheekbones: The two cheekbones in the face are located in the upper and outer parts of the face and form the cheek ridges.

[0285] 5.1.3.3 Respiratory system anatomy Diaphragm: A sheet of muscle that runs over the lower rib cage. The diaphragm separates the thoracic cavity, which contains the heart, lungs, and ribs, from the abdominal cavity. When the diaphragm contracts, it increases the volume of the thoracic cavity and draws air into the lungs.

[0286] Larynx: The larynx or voice box that houses the vocal cords and connects the lower part of the pharynx (hypopharynx) to the trachea.

[0287] Lung: respiratory organ in humans. The conductive zone of the lung includes the trachea, bronchi, bronchi, and terminal bronchioles. The respiratory zone includes the respiratory bronchi, alveolar ducts, and alveoli.

[0288] 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. The sides of the nasal cavity contain three horizontal extensions called turbinates (singular "concha") or nasal bones. The anterior part of the nasal cavity is the nose, and the posterior part opens into the nasopharynx via the choanae.

[0289] Pharynx: The part of the throat located immediately below (inferior to) the nasal cavity and above the esophagus and larynx. The pharynx is traditionally divided into three parts: the nasopharynx (upper pharynx) (nasal part of the pharynx), the oropharynx (mid pharynx) (oral part of the pharynx), and the hypopharynx (low pharynx).

[0290] 5.1.4 Patient Interface 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.

[0291] 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.

[0292] 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.

[0293] 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 a patient interface in place on a 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).

[0294] Membrane: Membrane is taken to mean a typically thin-walled element, preferably substantially non-resistant to bending and resistant to stretching.

[0295] 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.

[0296] 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.

[0297] 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.

[0298] Stiffener: A stiffener is taken to mean a structural component designed to increase the bending resistance of another component in at least one direction.

[0299] Strut: A strut is taken to mean a structural component designed to increase the compressive resistance of another component in at least one direction.

[0300] 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 of 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.

[0301] Tie (noun): A structure designed to resist tension.

[0302] Venting: (noun): A structure that allows airflow into 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.

[0303] 5.1.5 Structural Shape 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.

[0304] To simplify the description of the shape and surface of a three-dimensional structure, consider a cross section through the surface of the structure at a point 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.

[0305] 5.1.5.1 Curvature in one dimension 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).

[0306] Positive curvature: If the curve at p bends outward toward the normal, the curvature at that point is taken to be positive (if our hypothetical little person were to walk away from point p, they would have to walk uphill). Such a curve is often called concave.

[0307] Zero curvature: If the curve at p is a straight line, the curvature is taken to be zero (if this imaginary little person were to walk away from point p, they would be able to walk on a horizontal plane that is neither pointing up nor pointing down).

[0308] 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 imaginary little person were to walk away from point p, they would have to walk downhill). Such a curve is often said to be convex.

[0309] 5.1.5.2 Two-dimensional surface curvature A description of the shape at a given point on a two-dimensional surface according to the present technique 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 planar curve with a corresponding curvature. The different curvatures at the point may have the same or different signs. Each curvature at the point has a (e.g., relatively small) magnitude.

[0310] Principal curvatures and directions: The directions of the normal planes in which the curvature of a curve has its maximum and minimum values ​​are called principal directions.

[0311] Surface region: A set of connected points on a surface. This set of points within a region may have similar properties (e.g., curvature or sign).

[0312] 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).

[0313] 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")

[0314] Cylindrical region: A region in which one principal curvature is zero (or, for example, zero within manufacturing tolerances) and the other principal curvature is non-zero.

[0315] Planar region: A region of a surface where both principal curvatures are zero (or are zero within a manufacturing tolerance, for example).

[0316] Surface Edge: The boundary or limit of a surface or area.

[0317] 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.)

[0318] 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.)

[0319] 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.)

[0320] 5.1.5.3 Holes 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.

[0321] 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. In yet another example, a conduit can include a one-dimensional hole (e.g., at its inlet or its outlet) and a two-dimensional hole bounded by the conduit's inner surface.

[0322] 5.2 Other Notes 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.

[0323] 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.

[0324] 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.

[0325] Additionally, the terms "approximately," "substantially," "about," or any similar term used herein means + / - 5 to + / - 10% of the stated value.

[0326] 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.

[0327] 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.

[0328] Please note that as used herein and in the appended claims, the singular forms "a," "an," and "the" include their plural equivalents unless the context clearly dictates otherwise.

[0329] All publications mentioned herein are incorporated by reference to disclose and describe the methods and / or materials that are the subject of these publications. 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.

[0330] The terms "comprises" and "comprising" should be construed as referring to elements, components, or steps in a non-exclusive sense, indicating that a described element, component, or step may be present in, utilized with, or combined with other elements, components, or steps not specifically described.

[0331] 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.

[0332] 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 practice of the technology. For example, although the terms "first" and "second" (etc.) are used, unless otherwise specified, these terms are not intended to indicate any order but are used to distinguish between separate elements. Furthermore, although the process steps in the method may be described or illustrated in an ordered manner, such an order is not required. Those skilled in the art will recognize that such an order can be changed and / or aspects thereof can be performed simultaneously or even synchronously.

[0333] 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]

[0334] 1000 patients 1100 Bedmate 3000 Patient Interface 3100 Sealing or seal-forming structures 3150 Cushion Module 3200 Plenum Chamber 3300 Positioning and Stabilizing Structure / Headgear 3304 Upper pipe section 3306 Lower pipe section 3308 Textile Pad 3310 Strap 3312 Tab (for strap) 3350 Headgear Pipe 3351 (patient-contacting end of headgear tube) 3352 Inner non-gas permeable layer 3353 outer textile layer 3354 (of headgear tube) non-patient contact side 3355 Window section (front side) 3356 Window section (rear side) 3357 (Window) semicircular outline 3358 Concertina section (of headgear pipes) 3359A (Concertina section) Ridge 3359B Groove (Concertina section) 3360 Crown Connector 3390 Fluid Connection Opening 3400 Ventilation section 3600 connection port 3610 Elbow 4000 RPT devices 4170 Air Circuit LA Longitudinal Axis TA horizontal axis θ angle

Claims

1. 1. A patient interface comprising: In use, the pressurized air flow must be at least 6 cmH above ambient air pressure throughout the patient's breathing cycle. 2 a seal-forming structure constructed and arranged to form a seal with an area of ​​the patient's face surrounding an entrance to the patient's airway for sealed delivery at a therapeutic pressure of O; At least 6 cmH above the ambient air pressure 2 a plenum chamber pressurizable to a therapeutic pressure of O; and a positioning and stabilizing structure that provides a force to hold the seal-forming structure in a therapeutically effective position on the patient's head, the positioning and stabilizing structure comprising: at least one gases delivery tube connected to the plenum chamber and configured to receive the pressurized air flow from a connection port on top of the patient's head and to deliver the pressurized air flow through the plenum chamber to an entrance of the patient's airway, the at least one gases delivery tube constructed and arranged to contact at least one region of the patient's head above an upper ear base point in use, the at least one gases delivery tube including a tube wall having an internal passage for transferring the pressurized air flow along a longitudinal axis of the tube to the seal-forming structure, at least a portion of the tube wall comprising: a patient-contacting portion including a layer of textile or foam material configured to rest against the patient's head in use; and a non-patient-contacting portion, at least a portion of which comprises a transparent and / or translucent material that allows external visibility of the internal passageway; the layer of textile or foam material is bonded to the transparent and / or translucent material such that the tube wall is formed as a one-piece structure; a plane extending generally transverse to the longitudinal axis including both (1) the textile or foam layer and (2) the transparent and / or translucent material, whereby the patient can visualize the interior passageway along a transverse axis extending through the plane; a portion of the transparent and / or translucent material portion configured as a stiffening element; the transparent and / or translucent material portion is formed from an elastomer; at least one of the gas delivery tubes includes a generally D-shaped cross section; A patient interface, wherein the generally D-shaped cross-section includes a generally flat surface and an arcuate surface, the generally flat surface forming the patient-contacting portion and the arcuate surface forming the non-patient-contacting portion.

2. 10. The patient interface of claim 1, wherein the patient-contacting portion includes an outer layer of textile or foam material configured to rest against the patient's head in use, and at least a first inner layer of thermoplastic material that forms at least a portion of an air path within at least one of the gas delivery conduits, the first inner layer being bonded to the outer layer.

3. The patient interface of claim 1 , wherein the patient-contacting portion comprises a single layer of textile or foam material.

4. the material properties of the textile material or the single layer of foam material are gas impermeable; and / or the single layer of textile or foam material is coated along at least one surface with a gas impermeable substance to form the inner surface of at least one of the gas delivery tubes configured to contact the pressurized air stream; and / or the single layer of textile or foam material comprises a blend of polyamides, and / or the single layer of textile or foam material comprises nylon, polyester and / or spandex; and / or The patient interface of claim 3 , wherein the single layer of textile or foam material also includes one or more laminate coats of silicone.

5. The patient interface of claim 1 , wherein the non-patient-contacting portion comprises a portion configured to receive the portion of transparent and / or translucent material.

6. The patient interface of claim 5 , wherein the transparent material portion includes an adhesive layer configured to be bonded to the single layer of textile or foam material.

7. 7. The patient interface of claim 1, wherein one of the patient contacting portion or the non-patient contacting portion is configured to receive an adhesive layer to which the other of the patient contacting portion or the non-patient contacting portion can be joined.

8. 8. A patient interface according to claim 1, wherein the non-patient-contacting portion comprises an outer layer of transparent material and at least a first inner layer of thermoplastic material that defines at least a portion of an air path within at least one of the gas delivery tubes.

9. A patient interface according to any one of claims 1 to 8, wherein part of the section of transparent and / or translucent material comprises a concertina portion.

10. The patient interface of claim 9 , wherein a textile or foam material is overmolded onto the concertina portion.

11. the textile material or the foam material is provided on the patient-contacting portion and configured to contact the patient; and / or The patient interface of claim 10 , wherein the textile material or the foam material is provided on the non-patient-contacting portion.

12. A patient interface according to any preceding claim, wherein a portion of the transparent and / or translucent material comprises a series of corrugations.

13. A patient interface according to any preceding claim, wherein the portion of transparent and / or translucent material extends substantially along the length of at least one of the gas delivery tubes.

14. The patient interface of claim 13 , wherein the portion of transparent and / or translucent material extends the entire length of at least one of the gas delivery tubes.

15. 13. The patient interface of any one of claims 1 to 12, wherein the portions of transparent and / or translucent material are arranged in separate sections, each section being separated by a section of opaque and / or non-translucent material.

16. The patient interface of claim 15 , wherein the portion of opaque and / or translucent material is a textile material or a foam material.

17. A patient interface according to any preceding claim, wherein the patient contacting portion and the non-patient contacting portion each include a front side that faces forward and a rear side that faces rearward in use.

18. the front and rear sides of the patient-contacting and non-patient-contacting portions are each joined along the length of at least one of the gas delivery tubes; and / or At least one or both of the front and rear sides of the non-patient-contacting portion comprise the transparent material; and / or the front side of the non-patient contacting portion has a different stiffness than the rear side; and / or the front side of the non-patient contacting portion is stiffer than the rear side of the non-patient contacting portion; and / or the stiffness of the front side of the non-patient contacting portion and / or the back side of the non-patient contacting portion varies along the length of at least one of the gas delivery conduits; and / or 18. The patient interface of claim 17, wherein the stiffness of the front side of the non-patient-contacting portion and / or the back side of the non-patient-contacting portion is greater at a lower portion of the at least one gas delivery conduit than at an upper portion of the at least one gas delivery conduit.

19. the transparent and / or translucent material portion is thicker than the at least one gas delivery tube first portion than the at least one gas delivery tube second portion; and / or 20. The patient interface of claim 18, wherein a width of the portion of transparent and / or translucent material is greater for the first portion of the at least one gas delivery tube than for the second portion of the at least one gas delivery tube.

20. 18. The patient interface of claim 17, wherein the non-patient-contacting portion includes forward-facing front and rear-facing back sides configured to face in a forward and rearward direction, respectively, in use.

21. the forward-facing side and the rear-facing side are each constructed from the transparent and / or translucent material; and / or 21. The patient interface of claim 20, wherein the transverse axis extending generally from the anterior direction to the posterior direction includes only the transparent and / or translucent material.

22. 22. The patient interface of claim 21, wherein the elastomer comprises one or more of: a) silicone; b) a thermoplastic elastomer; or c) a thermoplastic polyurethane.

23. A patient interface according to any one of claims 1 to 22, wherein the patient contacting portion and / or the non-patient contacting portion is a thermoformed part.

24. 10. The patient interface of claim 1, wherein the arcuate surface includes a first portion and a second portion, the first portion constructed from the transparent and / or translucent material and the second portion constructed from the textile or foam material.

25. 25. The patient interface of claim 24, wherein the first portion is directly coupled to the generally planar surface and the second portion is positioned opposite the generally planar surface.

26. At least one of the gas delivery tubes includes a generally rectangular cross-section with two or more curved corners; and / or the width of at least one said gas delivery tube is in the range of 34 mm to 18 mm along the length of the at least one said gas delivery tube; and / or 26. The patient interface of any one of claims 1 to 25, wherein the height of the at least one gas delivery conduit ranges from 8mm to 6mm along the length of the at least one gas delivery conduit.

27. 27. The patient interface of any one of claims 1 to 26, wherein the non-patient-contacting portion comprises only transparent material.

28. at least one of the gas delivery tubes is configured to be selectively coupled to and detached from the plenum chamber to allow the patient to clear the interior of the tube; and / or the stiffening element is arranged along the entire length of the tube and is configured to stiffen the entire tube; and / or 28. The patient interface of any one of claims 1 to 27, wherein the stiffening element is more resistant to bending in a first direction than in a second direction, the first direction being generally perpendicular to the second direction.

29. 30. The patient interface of claim 28, wherein, in use, the first direction is an anterior-posterior direction and the second direction is an orthogonal direction, and the tube is configured to flex in the orthogonal direction to conform to the shape of the patient's skull.

30. an upper portion of the tube adjacent the connection port has a higher resistance to movement than a lower portion of the tube adjacent the plenum chamber, the higher resistance to movement in the upper portion being configured to limit drag from an air circuit configured to connect to the connection port; and / or the first portion is the front portion and the second portion is the rear portion; and / or 20. The patient interface of claim 19, wherein the first portion is located above the second portion such that the first portion is adjacent to the connection port.

Citation Information

Patent Citations

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