Self-powered microclimate controlled mattress
09717638 · 2017-08-01
Assignee
Inventors
Cpc classification
A61G7/05715
HUMAN NECESSITIES
A61G7/05738
HUMAN NECESSITIES
A61G7/05784
HUMAN NECESSITIES
International classification
Abstract
Disclosed are apparatus and methodology for reducing humidity (i.e., moisture) and/or heat within and/or adjacent a patient support mattress, without requiring any electrical power. A spacer fabric is used to create a non-crushable area of support below a patient's core area, where moisture and heat more commonly buildup. Integrated air cells in the mattress have resilient elements such as open-celled foam interiors. The air cells are connected by air tubing to the spacer fabric, and the mattress is otherwise vented externally from the spacer fabric. As a result, the patient's movement causes air to be expelled from or drawn into the air cells, which in turn results in air movement in the spacer fabric below a patient or user, resulting in cooling effects by removing moisture and/or heat, all without requiring external or internal electrical power.
Claims
1. A patient support system for the prevention and treatment of decubitus ulcers, said patient support system comprising: a plurality of air cells; a foam shell defining an upper support surface and an internal cavity therebeneath for housing said plurality of air cells; a three-dimensional spacer fabric positioned above at least a portion of said upper support surface; and air passageways interconnecting said spacer fabric with said air cells so that, as a patient on said upper support surface moves, such movement causes air relative to said air cells to be circulated under at least a portion of the patient, to cause removal of heat and moisture from the body of the patient.
2. A patient support system as in claim 1, wherein said spacer fabric is aligned under an area intended to support a patient's back and buttocks.
3. A patient support system as in claim 2, wherein said air passageways comprise air tubing pneumatically interconnecting said spacer fabric with said air cells.
4. A patient support system as in claim 2, wherein: said plurality of air cells comprise a respective plurality of air cylinders oriented one of length-wise and laterally within said foam shell; and said foam shell is a multi-piece foam shell comprising a foam shell topper, foam bolsters, a foam header, and a foam footer.
5. A patient support system as set forth in claim 1, wherein said spacer fabric comprises two adjacently stacked layers of three-dimensional material.
6. A patient support system as in claim 2, wherein said spacer fabric comprises a non-crush, three-dimensional fabric, comprised of at least one of knit, cloth, polymeric film, foam, and extruded woven fibers.
7. A patient support system as in claim 2, wherein said spacer fabric comprises a material having fibers having lateral flexibility for reducing shear forces on a supported patient's skin by providing a degree of lateral flexing during movement of a patient.
8. A patient support system as in claim 2, wherein said spacer fabric comprises PES having a thickness of between about 0.5 to 0.6 inches.
9. A patient support system as set forth in claim 3, further comprising: a cover for removably encasing said foam shell, said air cells housed in said internal cavity thereof, said spacer fabric, and said air tubing; and wherein said cover includes vents formed therein for the passage of air therethrough.
10. A patient support system as in claim 9, wherein said vents comprise jersey mesh material sewn into said cover.
11. A patient support system as in claim 9, wherein said cover comprises joined separate bottom and top pieces.
12. A patient support surface as set forth in claim 1, wherein said patient support system is modularly integrated with one of a mattress, a wheelchair/seating cushion, a patient positioner, a mattress coverlet, and a consumer-oriented support.
13. A patient support system as set forth in claim 1, further comprising: a cover for removably encasing said foam shell, said air cells housed in said internal cavity thereof, said spacer fabric, and said air passageways; and wherein said cover includes vents formed therein for the passage of air therethrough; said spacer fabric is aligned under an area intended to support a patient's back and buttocks; said air passageways comprise air tubing pneumatically interconnecting said spacer fabric with said air cells; and said foam shell is a multi-piece foam shell comprising a foam shell topper, foam bolsters, a foam header, and a foam footer.
14. A patient support system as in claim 13, wherein said pieces of said foam shell comprise sections of foam having a 25 percent Indentation Load Deflection (ILD) characteristic in a range of from about 25 pounds to about 60 pounds.
15. A patient support system as in claim 1, wherein said foam shell includes an upper support surface having different respective sections for selected support characteristics.
16. A patient support system as in claim 15, wherein at least one of said sections comprises a gel material.
17. A self-powered microclimate controlled patient support surface, comprising: a resilient foam support for a patient with integrated air cells; a spacer fabric situated above said resilient foam support, positioned to be received below a patient's core area, to create a non-crushable area of support below such core area; and air tubing connected to the air cells and to the spacer fabric, so that air is vented to and from the spacer fabric as a patient's movement causes air to be expelled from or drawn into the air cells, which in turn results in air movement in the spacer fabric below the patient, resulting in cooling effects by removing moisture and/or heat, all without requiring external or internal power.
18. A patient support surface as in claim 17, wherein said patient support system is modularly integrated with one of a mattress, a wheelchair/seating cushion, a patient positioner, a mattress coverlet, and a consumer-oriented support.
19. A patient support surface as in claim 17, wherein said resilient foam support comprises a mattress and said foam thereof comprises open-celled foam.
20. A patient support surface as in claim 17, further comprising a cover with at least one vent for passage of air therethrough either expelled from said spacer fabric or drawn therein.
21. A patient support surface as in claim 20, wherein: said patient support surface is integrated into a mattress system; said cover comprises a moisture permeable material; and said spacer fabric comprises a material less than about 1.0 inches thick.
22. Methodology for providing a self-powered microclimate controlled patient support surface for the prevention and treatment of decubitus ulcers, comprising: providing a resilient support for a patient with at least one integrated air cell; providing a spacer fabric situated above said resilient support, positioned to be received below a patient's core area, to create a non-crushable area of support below such core area; and pneumatically interconnecting said spacer fabric with said at least one integrated air cell, so that movement of a patient received on said resilient support causes air to be expelled from or drawn into said at least one integrated air cell, which in turn results in air movement in said spacer fabric below the patient's core area, resulting in cooling effects by removing moisture and/or heat from adjacent the patient.
23. Methodology as in claim 22, further including modularly integrating said patient support surface with one of a mattress, a wheelchair/seating cushion, a patient positioner, a mattress coverlet, and a consumer-oriented support.
24. Methodology as in claim 22, further comprising providing a cover around said resilient support and said spacer fabric with at least one vent through said cover for passage of air therethrough either expelled from said spacer fabric or as drawn therein.
25. Methodology as in claim 24, wherein: said patient support surface is integrated into a mattress system; said cover comprises a moisture permeable material; and said spacer fabric comprises a material less than about 1.0 inches thick.
26. Methodology as in claim 25, wherein: said at least one integrated air cell comprises a plurality of air cylinders oriented one of length-wise and laterally within said resilient support, with said air cylinders positioned to be manipulated by patient movement on said resilient support; and said patient's core area encompasses the patient's back and buttocks.
27. Methodology as in claim 22, wherein: providing said resilient support comprises providing a multi-piece foam shell having a foam shell topper, foam bolsters, a foam header, and a foam footer; and said pneumatically interconnecting comprises interconnecting air tubing between said spacer fabric and said at least one integrated air cell.
Description
BRIEF DESCRIPTION THE DRAWINGS
(1) A full and enabling disclosure of the presently disclosed subject matter, including the best mode thereof, directed to one of ordinary skill in the art, is set forth in the specification, which makes reference to the appended figures, in which:
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(11) Repeat use of reference characters throughout the present specification and appended drawings is intended to represent same or analogous features, elements, or steps of the presently disclosed subject matter.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(12) As discussed in the Summary of the Disclosure section, the presently disclosed subject matter is particularly concerned with apparatus and methodology for controlling the level of moisture and/or heat within a therapeutic mattresses or similar apparatus (or other context, such as wheel chair or other patient or consumer support) provided in accordance with presently disclosed subject matter.
(13) Selected combinations of aspects of the disclosed technology correspond to a plurality of different embodiments of the presently disclosed subject matter. It should be noted that each of the exemplary embodiments presented and discussed herein should not insinuate limitations of the presently disclosed subject matter. Features or steps illustrated or described as part of one embodiment may be used in combination with aspects of one or more other present embodiment to yield yet further embodiments. Additionally, certain features or steps may be interchanged with similar devices, features or steps not expressly mentioned but which perform the same or similar function.
(14) Referring collectively to
(15) Location 144 (shown by present
(16) The cross section of present
(17) Such figures variously illustrate an additionally presently disclosed feature, relating to a spacer or three-dimensional fabric portion generally 148 which may be positioned above at least a portion of upper support surface 154 or 120. Preferably, as illustrated (particularly by present
(18) As illustrated by such features, tubing generally 168 may interconnect the ends of air cells 135 (for example, on the foot support end of mattress 102), and then communicate air (in either direction) to spacer fabric 148 such as by respective tubing lines 160 and 162, all as illustrated. Different arrangements of tubing or similar devices may be utilized, so long as air passages are formed between the interior of the air cells 135 and the interior of spacer material 143, and spacer material 148 is in turn vented to (in air communication with) the exterior of mattress 102.
(19) Other features may also be varied in particular embodiments. For example, the exploded view of present
(20) Various alternative spacer fabrics may likewise be practiced, so long as sufficient space is created below a patient for the air movement described herein. In one exemplary preferred embodiment, such spacer fabric may comprise Pressless article SFE 15 W220 made out of 100% PES (Polyethersulfone, a thermoplastic polymer) at a thickness of 15 mm (0.6″). Such spacer fabric has favorable characteristics also for preventing shear effects. As understood by those of ordinary skill in the art, the durometer (hardness) of such fabric may be controlled by thickness and density of the internal fibers, and the density of the outer layers being connected by such internal fibers. More generally, it may be appreciated that such spacer layer may comprise a generally non-crush, three-dimensional fabric, such as a knit, cloth, polymeric film, foam or extruded woven fibers. The structure of the spacer layer results not only in its non-crush characteristic, which is taken advantage of per the presently disclosed subject matter, but also the favorable shear effects referenced herein. Specifically, lateral flexibility of fibers or internal structure of the spacer fabric reduce shear forces on a supported patient's skin by providing a degree of upper surface lateral flexing during movement of a patient or user.
(21) Still further, those of ordinary skill in the art will appreciate that variations of nearly all dimensions shown or suggested herewith may be practiced to provide or accommodate for specifically desired embodiments, to satisfy different ranges of patient needs, such as pediatric patients or even bariatric patients. All such variations are intended as coming within the spirit and scope of the presently disclosed subject matter, and dimensional examples herewith are presented without limitation on such alternatives.
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(24) Such spacer fabric(s) has a cover material generally 146 with a relatively high MVTR (Moisture Vapor Transmission Rate) to facilitate passage of moisture/sweat while still being water resistant. Other additional layers may comprise a waterproof, vapor impermeable sheet for protection of the underlying mattress 102. Such additional layer or layers may also additionally comprise a zippered sheath for encasing the mattress 102. Notably, the spacer fabric arrangement with the remaining structure herewith would offer some degree of benefit of cooling (such as in a consumer context) even if air cells were not utilized as represented herewith for moving air in response to the user's movements on the support surface.
(25) Thus, in some present exemplary embodiments of the presently disclosed subject matter, an integrated mattress system may be provided for circulating air relative to a patient by involving inclusion of a three-dimensional or spacer material in a main patient support structure, such structure having at least one air port or vent thereof coupled through such three-dimensional material with one or more air cylinders positioned to be manipulated by patient movement on an upper support surface. Such air cylinder or cylinders may have resilient internal structures, such as open-celled foam, so that air is exhausted out of such cylinder structures through tubing, into patient-supporting three-dimensional material, and out from such mattress via one or more an air ports. Similarly, with less patient pressure on a given location of the air cylinder structures, expansion of the cylinders may result, so that air is drawn back into such cylinder structures through one or more air ports, through the patient-supporting three-dimensional material, and through tubing into such cylinder structures. All such air movement beneath a supported patient in and through such three-dimensional material, tends to beneficially reduce moisture and/or heat generated by such supported patient. The cross sectional view of present
(26) As also represented by the various figures, while air cells 135 may assume particular shapes or locations, a generally rectangular shape (with or without rounded edges) forms a useful and effective arrangement of such air cells for the various air cell purposes related herein.
(27) In general, present
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(30) The top cover material piece generally 190 as represented in present
(31) TABLE-US-00001 TABLE 1 re FIG. 8 Exemplary Dimensions Reference No. (in inches) 204 45.0 206 4.75 208 35.5 210 4.75 212 4.75 214 4.75 216 90.5 218 67.25 220 67.25 222 0.75 224 0.75 226 14.5 228 4.0 230 4.0 232 4.0 234 35.5 236 4.0
(32) The bottom cover material piece generally 192 as represented in present
(33) TABLE-US-00002 TABLE 2 re FIGS. 9A & B Exemplary Dimensions Reference No. (in inches) 238 4.75 240 35.5 242 4.75 244 4.75 246 14.0 248 14.0 250 37.0 252 1.0 254 1.0 256 37.0 258 38.0 260 16.25 262 16.25 264 14.5 266 14.5 268 4.0 270 4.0 272 1.5 274 4.0 276 35.5 278 4.0
(34) The bottom cover material piece generally 192 as represented in present
(35) TABLE-US-00003 TABLE 3 re FIGS. 10A-C Exemplary Dimensions Reference No. (in inches) 280 21.0 282 6.75 284 21.0 286 6.75 288 1.0 290 8.0 292 1.0 294 1.0 296 8.0
(36) The enlarged illustration of present
(37) In various other embodiments, as referenced above, the presently disclosed subject matter may be integrated with other supports including various mattresses, wheelchair/seating cushions, and/or patient positioners (whether pre-existing, disclosed herewith, or later developed). Several exemplary such support surfaces can be found in commonly owned U.S. Pat. No. 5,568,660 to Raburn et al; U.S. Pat. No. 5,797,155 to Maier et al.; and U.S. Design Pat. No. D355,488 to Hargest et al., the disclosures of which are fully incorporated herein by reference, for all purposes.
(38) While the presently disclosed subject matter has been described in detail with respect to specific embodiments thereof, it will be appreciated that those skilled in the art, upon attaining an understanding of the foregoing may readily produce alterations to, variations of, and equivalents to such embodiments. Accordingly, the scope of the present disclosure is by way of example rather than by way of limitation, and the subject disclosure does not preclude inclusion of such modifications, variations and/or additions to the presently disclosed subject matter as would be readily apparent to one of ordinary skill in the art.