AREA SUPPORT SURFACE SEATING SYSTEM
20200037779 ยท 2020-02-06
Inventors
Cpc classification
A47C27/001
HUMAN NECESSITIES
A47C27/082
HUMAN NECESSITIES
A47C27/10
HUMAN NECESSITIES
International classification
Abstract
An area support surface seating system designed to optimize conditions that will avoid interrupting the healing procedure of pressure injuries in the area of the buttocks while an individual is placed in the seated position through the control of individual cells within the support surface to create a lower than capillary pressure site under an open wound and modulate external pressure over time on different regions of the buttocks to minimize secondary causes of pressure injuries. The area support surface also provides through its operation the means to restrain the progress of spinal deformities.
Claims
1. An area support surface seating system, comprising: a cushion base having a top surface and constructed of a rigid material, wherein said top surface is defined by at least a lower elevation section, a higher elevation section, and a lower ledge, with said lower ledge being positioned on a distinct plane relative to the lower elevation section and the higher elevation section; wherein said cushion base includes a hollow space underneath the higher elevation section and above the plane of the lower ledge; wherein said lower ledge extends outwardly from and completely around a combined perimeter of the lower elevation section and the higher elevation section so as to enclose both the lower elevation section and the higher elevation section; a support adjustment aspect adapted to receive the buttocks of a user that is seated and modulate pressure on the regions of the buttocks of a user subject to substantially all of the pressure created by the upper body of a user, wherein said support adjustment aspect is defined by a plurality of discrete, inflatable air cells which may be inflated and deflated independently, each mounted directly on the top surface on the lower elevation section; a power supply system integral with said cushion base and connected to each of the air cells, wherein said power supply system is configured to selectively direct fluid material into each of the air cells individually, selectively cause fluid material to be released from each of the air cells individually, selectively seal each of the air cells individually such that fluid material cannot go in or out, and measure the internal pressure for each of the air cells individually; a discrete control device having at least one user interface and configured to communicate electrical signals with the power supply unit wirelessly, wherein said control device is configured cause the power supply system to modify parameters of the support adjustment aspect by selectively directing fluid material into one or more selected air cells among the plurality of air cells, selectively causing fluid material to be released from the one or more selected air cells, and selectively sealing the one or more selected air cells based on input received through the at least one user interface; and wherein said control device is additionally configured to generate on the at least one user interface a real time visual output related to internal pressure of each of the air cells from the measurements of the power supply system and allow internal pressure for a plurality of intended air cells among the plurality of air cells to be selectively adjusted based on a spatial proximity of each the plurality of intended air cells to a target location that is defined by one or more zero internal pressure air cells among the plurality of air cells such that there is an incremental increase in internal pressure among the plurality of intended air cells as spatial proximity from the target location increases, thereby reducing friction and shear on the skin of a user adjacent to the target location.
2. The area support surface seating system of claim 1, wherein said control device is configured to enable selective modification of parameters of the support adjustment aspect while a user is seated so as to cause a reduction in interface pressure at a target location on the support adjustment aspect.
3. (canceled)
4. The area support surface seating system of claim 1, wherein said power supply system includes at least a power source, control circuitry, a pressure sensor, a selector valve, and a pump.
5. The area support surface seating system of claim 4, wherein at least said control circuitry, pressure sensor, selector valve, and pump are positioned in the hollow space under the higher elevation section.
6. The area support surface seating system of claim 4, wherein the pressure sensor of the said power supply system is configured to uninterruptedly measure the pressure in one or more specified air cells among the plurality of air cells that are open to receive fluid material, the power supply system is configured to store data from the measurements of the pressure sensor, and the real time visual output of the control device reflects the measurements of the pressure sensor.
7. The area support surface seating system of claim 1, additionally comprising at least one speaker that is electrically connected to the power supply system and operative to generate an audible alert in response to an electrical signal from the control circuitry that is generated when a bottoming out condition is created in the cushion base.
8. The area support surface seating system of claim 1, additionally comprising at least one speaker that is electrically connected to the power supply system and operative to generate an audible alert in response to the modification to parameters of the support adjustment aspect operation.
9. The area support surface seating system of claim 1, wherein at least one of said plurality of air cells has a round cross section and the at least one of said plurality of air cells having the round cross section includes a rigid ring sealed inside and disposed at a bottom of the at least one of said plurality of air cells having the round cross section to prevent the at least one of said plurality of air cells having the round cross section from ballooning when fully inflated.
10. The area support surface seating system of claim 9, wherein each of said plurality of air cells is identical in size and shape.
11. The area support surface seating system of claim 1, wherein at least one of said plurality of air cells has an oval cross section.
12. The area support surface seating system of claim 9, wherein at least one of said plurality of air cells has a rectangular cross section.
13. The area support surface seating system of claim 1, wherein each of said plurality of air cells has a rectangular cross section.
14. The area support surface seating system of claim 1, wherein said power supply system is connected to each of the air cells through a plurality of flexible tubes which each run under the lower elevation of the base and pass through a hole in the lower elevation to connect to one of the air cells.
15. The area support surface seating system of claim 1, wherein a pair of target air cells which are among the plurality of air cells are (1) positioned in a location that corresponds to the ischials of a user and (2) enlarged relative to the other air cells in the plurality of air cells.
16. The area support surface seating system of claim 1, wherein a pair of target air cells which are among the plurality of air cells are (1) positioned in a location that corresponds to the coccyx of a user and (2) enlarged relative to the other air cells in the plurality of air cells.
17. The area support surface seating system of claim 3, wherein said lower ledge is positioned beneath the lower elevation section and the higher elevation section.
18. The area support surface seating system of claim 1, wherein a pair of target air cells which are among the plurality of air cells are (1) positioned in a location that corresponds to the ischials of a user and (2) enlarged relative to all of the other air cells in the plurality of air cells.
19. The area support surface seating system of claim 1, wherein a pair of target air cells which are among the plurality of air cells are (1) positioned in a location that corresponds to the coccyx of a user and (2) enlarged relative to all of the other air cells in the plurality of air cells.
20. The area support surface seating system of claim 7, wherein said power supply system is connected to each of the air cells through a plurality of flexible tubes which each run under the lower elevation of the base and pass through a hole in the lower elevation to connect to one of the air cells.
21. An area support surface seating system, comprising: a cushion base having a top surface and constructed of a rigid material, wherein said top surface is defined by at least a lower elevation section, a higher elevation section, and a lower ledge, with said lower ledge being positioned on a distinct plane relative to the lower elevation section and the higher elevation section; wherein said cushion base includes a hollow space underneath the higher elevation section and above the plane of the lower ledge; wherein said lower ledge extends outwardly from and completely around a combined perimeter of the lower elevation section and the higher elevation section so as to enclose both the lower elevation section and the higher elevation section; a support adjustment aspect adapted to receive the buttocks of a user that is seated and modulate pressure on the regions of the buttocks of a user subject to substantially all of the pressure created by the upper body of a user, wherein said support adjustment aspect is defined by a plurality of discrete, inflatable air cells which may be inflated and deflated independently, each mounted directly on the top surface on the lower elevation section; wherein at least one of said plurality of air cells has a round cross section and the at least one of said plurality of air cells having the round cross section includes a rigid ring sealed inside and disposed at a bottom of the at least one of said plurality of air cells having the round cross section to prevent the at least one of said plurality of air cells having the round cross section from ballooning when fully inflated; a power supply system integral with said cushion base and connected to each of the air cells, wherein said power supply system is connected to each of the air cells through a plurality of flexible tubes which each run under the lower elevation of the base and pass through a hole in the lower elevation to connect to one of the air cells, with the power supply system thereby configured to selectively direct fluid material into each of the air cells individually, selectively cause fluid material to be released from each of the air cells individually, selectively seal each of the air cells individually such that fluid material cannot go in or out, and measure the internal pressure for each of the air cells individually; a discrete control device having at least one user interface and configured to communicate electrical signals with the power supply unit wirelessly, wherein said control device is configured cause the power supply system to modify parameters of the support adjustment aspect by selectively directing fluid material into one or more selected air cells among the plurality of air cells, selectively causing fluid material to be released from the one or more selected air cells, and selectively sealing the one or more selected air cells based on input received through the at least one user interface; at least one speaker that is electrically connected to the power supply system and operative to generate an audible alert in response to an electrical signal from the control circuitry that is generated when a bottoming out condition is created in the cushion base; and wherein said control device is additionally configured to generate on the at least one user interface a real time visual output related to internal pressure of each of the air cells from the measurements of the power supply system and allow internal pressure for a plurality of intended air cells among the plurality of air cells to be selectively adjusted based on a spatial proximity of each the plurality of intended air cells to a target location that is defined by one or more zero internal pressure air cells among the plurality of air cells such that there is an incremental increase in internal pressure among the plurality of intended air cells as spatial proximity from the target location increases, thereby reducing friction and shear on the skin of a user adjacent to the target location.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0043] Applicant's area support surface seating system described herein provides for localized pressure relief for seated user in the form of a cushion for a wheelchair or other support for a seated user. The area support surface seating system is capable of optimizing conditions for a seated user to avoid interrupting the healing of pressure injuries in the area of the buttocks as well as to restrain the progress of spinal deformities while the user is in the seated position.
[0044] Referring now to the drawings and, in particular, to
[0045] As illustrated in
[0046] The cushion base 13 is built with a lower ledge 16 on all four sides of the base, as shown in
[0047] The inflatable air cells 10 are made of light, soft, non-stretchable fabric. A ring of ABS or similar material may be placed and sealed inside the cell at the bottom to prevent the cell from ballooning when fully inflated. Each air cell 10 has an opening in the bottom in which a rubber or plastic fitting is inserted and sealed to the fabric of the cell 10. The fittings at the bottom of the respective cells 10 extend through holes 55 in base 13 to connect each respective cell 10 to the corresponding respective tube 64 from the selector valve 32. The grid of tubes 64 connecting the selector valve 32 to each individual air cell 10 is placed under the matrix of air cells 10 in the space of the low elevation 15.
[0048] In some embodiments of the present invention, the size, shape and amount of air cells in the support surface of the seating system may be of varying sizes and shapes in effort to promote healing in accordance with the method described below, including but not limited to round cells 10, specifically positioned oval cells 11 or specifically positioned rectangular cells 12, shown in
[0049] The most common location in the buttock area for the formation of pressure injuries are the ischial tuberosities. As previously mentioned, the average distance between the two ischial tuberosities. is 12.4 cm (4.88). The size of cells 10 in the preferred embodiment is calculated to correspond to the most common distance between the ischial tuberosities.
[0050]
[0051] The coccyx (tail bone) is another common spot for the formation of pressure sores. Frail people tend to slide down in their seat. Thus, if the individual treated has an open wound or is at a very high risk of developing a pressure injury at the coccyx location, oval cells or rectangular cells might be used as shown in
[0052] The pneumatic supply system, as shown in
[0053] It is contemplated that the compressor 31 may be an off-the-shelf item. Consideration is given to the size, power, noise and vibration, quality and price. In some embodiments, if the noise or vibration is too high, the compressor 31 may be located outside of the cushion base 13 in a separate case, with improved sound barrier, connected to the rest of the system by quick connectors.
[0054] It is contemplated that the pressure sensor 33 and the selector valve 32 may also be off-the-shelf items. The selector valve 32 will have plurality of channels to provide the best and most cost-effective results of the treatment. A tube 64 may provide pressurized air to a single air cell 10 and/or two or more air cells 10. For each channel, the selector valve 32 has three positions: open to receive air to the selected air cell; open to release air from the air cell to the atmosphere; and closed to maintain the pressure state of the selected cell. The opening and closing of the selector valve 32 channels, as well as the operation of the compressor 31 and pressure sensor 33 and the order and sequence of the operation is directed by the microprocessor 25.
[0055]
[0056] The PCB 22 has a connector 26 to the compressor 31; a connector 27 to the selector valve 32; a connector 28 to the battery 23; a connector 29 to the speaker 18 that provides an audio alarm signaling that a bottoming out condition has occurred and a connector 30 to the speaker 19 that audio signals when any parameter of operation (such as inflation level of an air cell or duration of an air cell deflation prior to an automatic change) is set or changed. The PCB 22 also has the pressure sensor 33 and the microprocessor 25.
[0057] The microprocessor 25 may be an off-the-shelf item encoded to communicate with the wireless control device 40, receive the information pre-set by the clinician in the wireless control device 40 and execute the program coordinating the operation of the supply system elements.
[0058] When a channel in the selector valve 32 is in the position open for air flow to cell 10, the pressure sensor 33 measures the combined pressure in tube 66 and the respective cell or group of cells 10 that are associated with the open channel. As the pressure reaches the level preset in the program, the pressure sensor 33 signals the microprocessor 25 which in turn signals to the selector valve 32 to switch this channel to the close position and signals the compressor 31 to cease pumping air. At the same time, the microprocessor 25 signals the selector valve 32 to open another channel to release air from its respective cell 10 or group of cells 10 to the atmosphere. As long as this line is open for the release of air to the atmosphere, there is no resistance in this line and therefore pressure does not build up in the cell or group of cells associated with this channel. After a preset duration of time, the micro-processor 25 signals the selector valve 32 to turn this line to the position of re-inflation (open for air flow to the cell), signals the compressor 31 to pump air and the selector valve 32 to open another line for deflation. The cycle continues according to the program set by the clinician using the external wireless control device 40.
[0059] In another embodiment of the present invention, the supply system is located in a separate case outside the cushion with a quick connector for the air supply system and another quick connector for the electrical system. In another embodiment of the present invention the air pump alone is located in a separate case outside the cushion with air supply and electrical quick connectors. In another embodiment of the present invention where there is enough space under the plurality of air cells such as in a bedside chair, or a home or office chair, the base is uniformly elevated to be covered on its entire surface with air cells 10 and all the elements of the supply system 20 are placed underneath the layer of air cells along with the grid of tubing 64. Other embodiments of the present invention where a larger cushion is required, such as chairs and wheelchairs for obese people, the support surface may be comprised of larger cells 10 or an increased number of cells 10.
[0060] The area support surface system may be operated and controlled using an external wireless control device 40 that uses Bluetooth low energy connectivity, such as a smart phone or a tablet. As illustrated in
[0061] The inflation pressure can be selected in intervals most desirable by the clinicians. In the preferred embodiment of the present invention the inflation pressure is selected in intervals of 0.25 PSI for all cells or groups of cells in the area support surface, by pointing to the cell on the screen 46, moving the slider 43 to the selected level of inflation and pressing the set button 48 when done. The duration of the deflation can be set between 1 and any number of seconds when touching window 44, using the slider to choose the desired figure and pressing the set window 48.
[0062] A software application for operating the area support surface system may be embedded in the micro-processor 25. An operator may use the wireless control device 40 to choose the features most suitable to the patient treated and conveys them to the micro-processor 25. The micro-processor processes the new data and transmits operating parameters to the various components of the supply system 20, including the compressor 31, the selector valve 32 and the pressure sensor 33.
[0063] Those skilled in the art will also appreciate the ability of the system to create higher pressure in one side and lower pressure in the other side of the support surface in order to compensate for the pressure produced by the spine misalignment, especially by individuals with C curvature in their spine. Taking this preventive measure at early stage of spinal deformity during school time and homework at home, might reduce the chance of progression of a curvature that exceeds 20 degrees at the risky age from 68 percent to a much lower level.
[0064] As illustrated in
[0065] Referring now to
[0066] In the case of an existing pressure sore at the ischial tuberosity on the right side of a seated user, air cell B2 that corresponds to the right ischial tuberosities of the seated person is set to zero and cell B4 is set for minimal inflation of 1 PSI. In the rare case of existing pressure sores on both sides of the ischial tuberosities, cells B2 and B4 would both be set for zero. The inflation level of the remaining cells may have to be increased or decreased to avoid bottoming out, depending on the size and the weight of the individual being treated.
[0067] The relative pressure of each cell 10 is displayed with a number; in example being one of substantially 0, 1, 1.5, 2, and 2.5 PSI in a preferred non-limiting example. In an embodiment, the maximum air pressure allowed at any cell 10 may be 2.5 PSI. But in actuality, maximum pressure is limited only by the manufacturing tolerances of the materials of cell 10. Relatively lower pressures of 1 and 1.5 PSI are adjacent to the zero-pressure cell 10, and pressure is gradually increased as the cells 10 are farther away from the sore and the corresponding zero pressure cell 10. This provides a gradual interface pressure gradient from a target location of the zero-pressure cell 10 for reducing friction and shear forces applied to the skin of the buttocks of the individual seated on the cushion.
[0068] By utilizing a cushion constructed in accordance with the present invention, it becomes possible to selectively address individual inflatable cells within the array of cells to create an area at a target location which may be free of interface pressure at the site of an open wound on the buttocks, thus setting up the conditions for not tampering with the healing process of the wound. As a result of the unique structure of the present invention, the damaging intermittent pressure on a wound, which is a result of the prior art devices, may be eliminated. Because of the ability to embed a variety of patterns for individually addressed cells, it is possible to provide constant low pressure at a wound site, to avoid exceeding a desired healing pressure. Furthermore, optimum conditions may be created by an accredited user for faster healing of an open wound on the buttocks by providing a no pressure area under the wound while the rest of the support surface consisted of the remaining cells 10 performs a preventive protocol to avoid the development of new pressure sores.
[0069] Furthermore by providing an array of independent air cells, the resulting structure allows for the control of inflation and deflation of one cell at a time or a group of cells acting together at a time or both. In an embodiment, two of the active (non-deflated) cells may be inflated/deflated at a time, one on each side of the buttocks, for the purpose of maintaining equilibrium of the body seated. Deflating two out of, for example, twenty cell support surface makes very little difference, if at all, in comfort or in the increase of inner pressure required in the inflated cells. Furthermore, because the cells are operated independently, a zero-interface pressure can be produced at more than one location within the cushion if necessary to help heal more wounds. At the same time, even if no sores are present, the remaining area of cushion may operate in the prevention mode.
[0070] The system described herein also allows the clinician to personalize the preventive protocol to compensate for the persons weight and the severity of the risk for pressure sores. It allows the clinician to choose the rate of inflation between 1.5, 2 and 2.5 PSI and the duration of rest in the deflation mode from 0 seconds to any number.
[0071] Attaining a zero-interface pressure area between the cushion air cell and the sore under the open wound results in: [0072] a. Providing optimal conditions for healing by not obstructing blood flow to the open wound or affecting the wound with cyclical alternating pressure. [0073] b. eliminating the essential lifts and shifts which in most cases require the assistance of another person. [0074] c. providing a synergistic effect to other existing wound treatments such as creams and ointments.
[0075] The function of the support surface is controlled by the clinician using an electronic device such as a smart phone, a tablet or a handheld computer. It allows to: [0076] a. choose the air cell under the open wound to maintain it open to the atmosphere and have the interface pressure reduced to zero pressure [0077] b. set a lower level of inflation to the surrounding air cells in order to provide a gradual pressure gradient around the wound, minimizing forces which tear the skin adjacent to the wound [0078] c. set the level of inflation for all other air cells to avoid bottoming out [0079] d. set the duration of the time off in the deflation mode. [0080] e. set the level of inflation in a non-limiting embodiment to vary from zero pressure up to 2.5 PSI in increments of 0.25 PSI, thus compensate for the weight of the body supported and assure that no bottoming out occurs. [0081] f. set the time off in the deflated cycle in increments of 1 second from 2 up to 30 seconds or even more, depending on the severity of the wound and the purpose of the treatment. The shorter times increase the massage effect and the blood flow, while the longer times allows an increase supply of oxygen and nutrition to the risky parts of the body preventing sore creation in the first instance.
[0082] The ability to control the present invention through a smartphone or a tablet, with the wireless communication and the constant exchange of information and feedback between the pressure sensor, the microchip and the external controller, enable area support surface system in accordance with the present disclosure to be ready to be used for telemedicine, thus saving resources for the patients, providers and the entire medical system.
[0083] It will be understood that many additional changes in the details, materials, steps and arrangement of parts, which have been herein described and illustrated to explain the nature of the invention, may be made by those skilled in the art within the principle and scope of the invention as expressed in the appended claims.