HEADGEAR TENSIONING FOR RESPIRATORY MASK
20210178198 · 2021-06-17
Inventors
- Robert Edward Henry (Sydney, AU)
- Philip Rodney Kwok (Sydney, AU)
- Philip John GUNNING (Sydney, AU)
- Karthikeyan Selvarajan (Sydney, AU)
- James Morrison (Sydney, AU)
- Paul Anthony GREEN (Sydney, AU)
- Christopher Kingsley Blunsden (Sydney, AU)
- Gregory Robert Peake (Sydney, AU)
- Christopher John BAXTER (Sydney, AU)
Cpc classification
A61M2205/0227
HUMAN NECESSITIES
A62B18/084
HUMAN NECESSITIES
A61M2205/0216
HUMAN NECESSITIES
A61M2205/14
HUMAN NECESSITIES
International classification
Abstract
A patient interface assembly is configured to deliver a positively pressurized flow of breathable gas to a patient's airways. The patient interface assembly includes a patient interface configured to sealingly engage the patient's face and comprises a chamber configured to receive the pressurized flow of breathable gas. The patient interface assembly also includes headgear configured to support the patient interface on the patient's head and be tightened to one of a plurality of discrete tension settings. The headgear includes a tensioning element that is configured to contract in length to one of a plurality of discrete lengths when subjected to an electrical signal. Each discrete length of the tensioning element corresponds to a respective one of the plurality of discrete headgear tension settings.
Claims
1-20. (canceled)
21. A patient interface assembly configured to deliver a positively pressurized flow of breathable gas to a patient's airways, the patient interface assembly comprising: a patient interface configured to sealingly engage the patient's face, the patient interface comprising a chamber configured to receive the pressurized flow of breathable gas; and headgear configured to support the patient interface on the patient's head and be tightened to one of a plurality of discrete tension settings, the headgear comprising a tensioning element, wherein the tensioning element is configured to contract in length to one of a plurality of discrete lengths when subjected to an electrical signal, and wherein each discrete length of the tensioning element corresponds to a respective one of the plurality of discrete headgear tension settings.
22. The patient interface assembly of claim 21, wherein each one of the plurality of discrete lengths of the tensioning element corresponds to a respective magnitude of electrical energy.
23. The patient interface assembly of claim 21, wherein the patient interface is configured to deliver the breathable gas to the patient at one of a plurality of therapy pressures, and wherein each discrete headgear tension setting corresponds to a respective one of the plurality of therapy pressures and is a minimum headgear tension capable of maintaining a seal between the patient interface and the patient's face at the respective one of the therapy pressures.
24. The patient interface assembly of claim 21, wherein the tensioning element is configured to increase the tension in the headgear when the tensioning element is actuated.
25. The patient interface assembly of claim 21, wherein the tensioning element is a piezo element.
26. The patient interface assembly of claim 25, wherein the tensioning element is an electro-active polymer.
27. The patient interface assembly of claim 21, wherein the tensioning element is incorporated into a rear portion of the headgear.
28. The patient interface assembly of claim 21, wherein the tensioning element is incorporated into a side portion of the headgear.
29. The patient interface assembly of claim 21, wherein each one of the plurality of discrete lengths of the tensioning element corresponds to a respective magnitude of electrical energy, wherein the patient interface is configured to deliver the breathable gas to the patient at one of a plurality of therapy pressures, and wherein each discrete headgear tension setting corresponds to a respective one of the plurality of therapy pressures and is a minimum headgear tension capable of maintaining a seal between the patient interface and the patient's face at the respective one of the therapy pressures, wherein the tensioning element is configured to increase the tension in the headgear when the tensioning element is actuated, wherein the tensioning element is an electro-active polymer, and wherein the tensioning element is incorporated into a side portion of the headgear or a rear portion of the headgear.
30. A respiratory device configured to deliver a flow of positive pressure gas to a patient's airways, the respiratory device comprising: a flow generator configured to pressurize the flow of gas; the patient interface assembly of claim 21; an air delivery tube configured to be connected to the flow generator and the patient interface assembly and configured to deliver the pressurized gas to the patient interface; and a controller configured to actuate the tensioning element.
31. A patient interface assembly configured to deliver a positively pressurized flow of breathable gas to a patient's airways, the patient interface assembly comprising: a cushion configured to sealingly engage the patient's face; a frame to which the cushion is mounted, the cushion and the frame together forming a chamber configured to receive the pressurized flow of breathable gas, the frame comprising a plurality of headgear connectors; and headgear configured to support the cushion and the frame on the patient's head and be tightened to one of a plurality of discrete tension settings, the headgear comprising: at least one tensioning element configured to contract when subjected to an electrical signal; a pair of side straps configured to secure the headgear to the headgear connectors; and a rear strap connecting the pair of side straps and configured to engage a rear side of the patient's head, wherein the at least one tensioning element is configured to contract in length to one of a plurality of discrete lengths when subjected to an electrical signal, and wherein each discrete length of the at least one tensioning element corresponds to a respective one of the plurality of discrete headgear tension settings.
32. The patient interface assembly of claim 31, wherein each one of the plurality of discrete lengths of the at least one tensioning element corresponds to a respective magnitude of electrical energy.
33. The patient interface assembly of claim 31, wherein the patient interface is configured to deliver the breathable gas to the patient at one of a plurality of therapy pressures, and wherein each discrete headgear tension setting corresponds to a respective one of the plurality of therapy pressures and is a minimum headgear tension capable of maintaining a seal between the patient interface and the patient's face at the respective one of the therapy pressures.
34. The patient interface assembly of claim 31, wherein the at least one tensioning element is configured to increase the tension in the headgear when the at least one tensioning element is actuated.
35. The patient interface assembly of claim 31, wherein the at least one tensioning element is a piezo element.
36. The patient interface assembly of claim 35, wherein the at least one tensioning element is an electro-active polymer.
37. The patient interface assembly of claim 31, wherein the at least one tensioning element is incorporated into the rear strap of the headgear.
38. The patient interface assembly of claim 31, wherein the at least one tensioning element is incorporated into the side straps of the headgear.
39. The patient interface assembly of claim 31, wherein each one of the plurality of discrete lengths of the at least one tensioning element corresponds to a respective magnitude of electrical energy, wherein the patient interface is configured to deliver the breathable gas to the patient at one of a plurality of therapy pressures, and wherein each discrete headgear tension setting corresponds to a respective one of the plurality of therapy pressures and is a minimum headgear tension capable of maintaining a seal between the patient interface and the patient's face at the respective one of the therapy pressures, wherein the at least one tensioning element is configured to increase the tension in the headgear when the at least one tensioning element is actuated, wherein the at least one tensioning element is an electro-active polymer, and wherein the at least one tensioning element is incorporated into the side straps of the headgear or the rear strap of the headgear.
40. A respiratory device configured to deliver a flow of positive pressure gas to a patient's airways, the respiratory device comprising: a flow generator configured to pressurize the flow of gas; the patient interface assembly of claim 31; an air delivery tube configured to be connected to the flow generator and the patient interface assembly and configured to deliver the pressurized gas to the patient interface; and a controller configured to actuate the at least one tensioning element.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0031] The accompanying drawings facilitate an understanding of the various embodiments of this invention. In such drawings:
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
DETAILED DESCRIPTION OF ILLUSTRATED EMBODIMENTS
[0039]
[0040] The mask 100 is connected to a positive airway pressure (PAP) device or flow generator device (not shown) which provides breathable gas to the mask for treatment of sleep apnea.
[0041] As shown in
[0042] The hook material 22 may be ‘one way’ hook material so that it does not catch on itself in the process of overlaying the straps before they are brought into engagement.
[0043] In other, unillustrated, prior art arrangements, the straps 20, 30 may be adapted to fit to a male clip connector which clips into a female connector moulded into the mask frame of mask 100.
[0044]
[0045] The indicia 40 comprise a set of ellipses of successively greater aspect ratios, having vertical major axes. The indicia 40 may be labelled with tension settings, e.g., 1, 2, 3, 4, etc. In an embodiment, the indicia may be labelled in mirror image so that they are readable by the wearer in the mirror. It should be appreciated that any suitable number of ellipses may be provided, and the ellipses may be spaced apart from one another in any suitable manner to indicate the setting.
[0046] In one alternative form of this embodiment, the setting labels may indicate treatment pressures for which the corresponding headgear adjustment setting is recommended.
[0047] As the headgear strap (e.g., strap 20 of headgear 102) is placed under tension by tightening of the headgear (tension indicated by arrows), the headgear material stretches in the direction normal to the ellipse axes and the ellipses become more circular. As the tension increases, first one then the next ellipse become approximately circular, with the most circular ellipse indicating the tension setting. The wearer adjusts the headgear until the desired tension setting is reached. That is, ellipse 1 will become circular as tension is initially applied, ellipse 2 will become circular as more tension is applied, etc., with ellipse 4 becoming circular at the highest tension setting.
[0048] In a further embodiment shown in
[0049] In an embodiment shown in
[0050]
[0051] In a further unillustrated embodiment, the indicia may comprise an contact pressure film located between the rim and cushion of the mask, which changes colour with changes to the pressure on the seal as the headgear is tightened or otherwise adjusted. The film may provide an indication of excessive pressure between the mask rim and the seal, and the dispersion of that pressure. Examples of suitable contact pressure films include Pressurex tactile force indicating films from Sensor Products Inc of USA., and FilmLOC colour changing PET film from Austik Technologies of USA.
[0052] Further headgear tension sensing means may include electrical sensors such as strain gauges or capacitance sensors which vary capacitance depending on the distance between the capacitor plates. The sensor readings are fed back to the flow generator, the processor of which is programmed with an algorithm for converting the signal into a tension setting for display on the flow generator display, and/or to provide an audible or visible signal when the desired headgear tension is reached.
[0053] Further aspects of the invention relate to tightening mechanisms for adjustment of the headgear tension.
[0054] In one embodiment, the side straps 20,30 may be connected to the mask by means of connectors which clip onto the mask frame of mask 100. The connection between the mask and the headgear connectors is adapted to provide a visual, tactile or audible signal on reaching the desired tension, and/or to release when the desired tension is exceeded.
[0055]
[0056] The connector 330 (in the form of a female connector or clip receptacle) on the mask frame has a pair of opposed sides 332 each with inward projections 334 having a sloping front surface 336 and a more upright rear surface 338.
[0057] The clip 300 has a body 302 and a pair of spring arms 304 with outward projections, i.e., front projection 306 and centre projection 308 which form two recesses 310, 312 for receiving the projections 334 of the connector 330.
[0058] The clip connection comprises a two stage latch arrangement in which the clip 300 clicks into the connector 330 on the mask in a first stage connection in which the clip travels from the position of
[0059] For example, the clip 300 is engaged with connector 330 so that the sloping front surface 336 of the inward projections 334 engage the front projections 306 to flex the spring arms 304 inwardly towards the body 302 until the front projections 306 move past the inward projections 334 and into the position of
[0060] The user then starts to tighten the headgear using the hook and loop tabs on the side straps 20,30. As the user continues to tighten the headgear, the desired tension is reached and the spring arms 304 flex inwards so that the centre projections 308 ride past the projections 334 of the connector and the clip releases to the position of
[0061] The release tension for which the clip is designed may be controlled by varying the stiffness of the spring arms 304 and the face angle and height of the centre projections 308.
[0062] Optionally, the clip connectors may be interchangeable for similar clips having different release tensions, so that the headgear tension, may be varied according to the treatment pressure and the patient's requirements or preferences.
[0063] In an embodiment, the clip and connector may be structured such that excessive tension applied to clip allows the clip to completely release from the connector. This quick release arrangement allows the patient to quickly remove the mask without manually flexing the spring arms, e.g., for emergency situation, panic situation, claustrophobia, to prevent excessive tension applied to the straps, which could be uncomfortable or even be harmful to the patient, etc. The release force may be controlled, e.g., by varying the stiffness of the spring arms, the face angle of the rear surface 338 of the inward projections 334, and/or the face angle of the rear surface of the front projections 306 (i.e., the surface of the front projection 306 adapted to face and/or engage the rear surface 338 when the clip is coupled to the connector). This quick release arrangement may be used with the multiple stage arrangement discussed above, or this quick release arrangement may be used independently.
[0064] Further tightening mechanisms according to embodiments of the invention include the use of piezo materials or artificial muscles (e.g., devices which contract lengthwise upon activation, for example of the types used in robotic control systems) incorporated into the rear or side portions of the headgear.
[0065] One example of a suitable artificial muscle apparatus is one or more pneumatic muscles incorporated into the headgear, i.e., tubular portions which contract lengthwise upon inflation, which may be inflated by air pressure from the flow generator. Examples of suitable air muscles include the Shadow Air Muscles available from Shadow Robot Company Ltd of UK and described at the website http://www.shadowrobot.com/airmuscles.
[0066] Alternative artificial muscle apparatus which may be employed include electro-active polymers (EAPs) which contract upon application of electrical energy. Suitable electro-active polymers may include electronic or ionic, with electronic EAPs being preferred due to ability to hold strain with DC activation and their relatively high actuation forces. Examples of electronic EAPs include ferroelectric polymers such as poly(vinylidene fluoride), dielectric EAPs having low elastic stiffness and high dielectric constants (also known as electrostatically stricted polymers or ESSPs), electrostrictive graft elastomers, electrostrictive papers, electro-viscous elastomers or liquid crystal elastomer (LCE) materials. Examples of ionic EAPs include ionic polymer gels, ionomeric polymer-metal composites, conductive polymers or carbon nanotubes. Further discussion of each of these types of EAPs may be found in the article “ElectroActive Polymers—EAPs” at the website “The A to Z of Materials”, by Dr. Yoseph Bar-Cohen, at www.azom.com/details.asp?ArticleID=885, the contents of which article are incorporated herein by reference.
[0067] A yet further automated headgear adjustment mechanism includes a magnetic adjustment mechanism, for example by varying the distance between magnets of constant field strength, such as permanent magnets, or by varying the field strength of electromagnetic apparatus.
[0068] A further headgear adjustment mechanism includes a bladder mounted on or incorporated in the headgear, or a plurality of such bladders at different locations on the headgear, inflatable to increase the headgear tension. In one exemplary form, the bladder or bladders are inflated by air delivered by the flow generator. In one embodiment, the bladder or bladders are formed by comoulding with the material of the headgear.
[0069] In this specification, the word “comprising” is to be understood in its “open” sense, that is, in the sense of “including”, and thus not limited to its “closed” sense, that is the sense of “consisting only of”. A corresponding meaning is to be attributed to the corresponding words “comprise, comprised and comprises where they appear.
[0070] While the invention has been described in connection with what are presently considered to be the most practical and preferred embodiments, it is to be understood that the invention is not to be limited to the disclosed embodiments, but on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the invention. Also, the various embodiments described above may be implemented in conjunction with other embodiments, e.g., aspects of one embodiment may be combined with aspects of another embodiment to realize yet other embodiments. Further, each independent feature or component of any given assembly may constitute an additional embodiment. In addition, while the invention has particular application to patients who suffer from OSA, it is to be appreciated that patients who suffer from other illnesses (e.g., congestive heart failure, diabetes, morbid obesity, stroke, bariatric surgery, etc.) can derive benefit from the above teachings. Moreover, the above teachings have applicability with patients and non-patients alike in non-medical applications.