Beds and other body support devices with individually controllable cells comprising one or more air bladders

The system of individually controllable air bladders with rolling diaphragm design addresses the issue of uneven pressure distribution by dynamically adjusting pressure and height, reducing the risk of pressure ulcers and enhancing user comfort and safety.

JP2025172794APending Publication Date: 2025-11-26LEVISENSE MEDICAL INC
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Patent Information

Application Number
JP2025138505
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2020-12-29
Filing Date
2025-08-21
Publication Date
2025-11-26

AI Technical Summary

Technical Problem

Conventional support devices, such as mattresses and chairs, cause pressure ulcers and circulatory disorders due to uneven pressure distribution, requiring manual patient repositioning, which is labor-intensive and risky for both patients and caregivers, and existing air bladder systems lack individual control over pressure and height.

Method used

A system of individually controllable air bladders with rolling diaphragm design, equipped with pressure and height sensors, valves, and a controller, allowing precise adjustment of pressure and height to alleviate pressure points and prevent injuries.

Benefits of technology

The system provides customizable support, reducing the risk of pressure ulcers by dynamically adjusting pressure and height, enhancing comfort and safety for users.

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Abstract

To provide devices, systems, and methods for supporting a user's body.SOLUTION: Devices, systems and methods may employ a plurality of cells, where each of cells within the plurality of cells may include a bladder containing air or another compressible fluid supported by a base that forms a fluid-tight seal with the bladder. The base and the bladder may be constructed and arranged such that the bladder forms a rolling diaphragm portion with the base. A height and / or applied pressure, in response to an applied load of such bladder may be adjustable substantially independent of a cross-sectional shape and a dimension of the bladder. Each of the cells within the plurality of cells which may be a subset or all of the cells of a given support, can also comprise, or otherwise be operatively associated with its own pressure sensor, a height sensor, or both, and / or controllable inlet / outlet valves.SELECTED DRAWING: Figure 22
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Description

[Technical Field]

[0001] Related Applications This application claims priority under 35 U.S.C. §119(e) to U.S. Provisional Patent Application No. 63 / 023,805, entitled "Beds and Other Body Support Devices with Individually Controllable Air Bladders," filed May 12, 2020, and U.S. Provisional Patent Application No. 63 / 131,619, entitled "Beds and Other Body Support Devices with Individually Controllable Air Bladders," filed December 29, 2020, each of which is incorporated by reference in its entirety for all purposes.

[0002] Technical Field SUMMARY OF THE INVENTION Devices, systems, and methods for supporting a user's body are generally described, particularly supports that include a plurality of individually controllable air bladders that may be of the rolling diaphragm type. [Background technology]

[0003] background Various support devices, such as mattresses, cushions, and chair seats, armrests, etc., are known and used to support a user's body in medical care, skilled nursing, and personal care. For example, a conventional mattress may include an array of spring elements to provide support. When a user lies on such a conventional mattress, several springs are compressed. As the level of compression increases, the user's weight is placed on the mattress, resulting in increased resistance of the springs. This increased resistance tends to concentrate in protruding areas of the patient's anatomy, potentially leading to lesions such as pressure ulcers, e.g., stage III and stage IV pressure ulcers, or other local circulatory disorders, particularly in bedridden patients. Pressure ulcers or pressure injuries are localized damage to the skin and / or underlying tissue as a result of pressure or pressure combined with shear. Pressure injuries typically occur over bony prominences but may also be associated with medical devices or other objects. Prominent areas of the anatomy tend to embed themselves more deeply into the mattress and are subject to greater forces than adjacent areas, increasing the likelihood of localized reduced circulation or shear and therefore making pressure sores more likely to develop.

[0004] Areas of a patient's body that are exposed to higher pressures (i.e., pressure points) when placed on existing conventional support devices are undesirable and can potentially cause harm to the user. Current methods for reducing pressure points in bedridden patients include, for example, frequently moving or rotating the patient's position on the support device to prevent the pressure points from leading to the above-mentioned pathologies. While this approach can be somewhat useful, it requires an external user, such as a nurse, to physically move the patient. This additional effort is time-consuming, costly, and can potentially lead to injury to the nurse and / or patient.

[0005] Other devices, such as Air Floatation Treatment (AFT) patient support devices, are known for reducing pressure-related injuries to patients. These are typically used only as a last resort for serious illnesses and injuries because they are highly complex, expensive, and difficult to use and maintain. They also lack the ability to provide differential control of the support pressure and / or support height on different areas of the patient's body.

[0006] While air bladder mattresses and other patient support devices are known, such devices typically do not allow for individualized measurement or control of parameters such as the pressure and height of individual bladders and / or are unable to control the pressure applied to a user's body across various support heights or depths of the user's body or portions thereof into a support surface. Thus, improved devices, systems, and methods are needed. Summary of the Invention [Means for solving the problem]

[0007] overview Devices, systems, and methods are described for supporting the body of a user, such as a patient in a hospital, rehabilitation facility, other skilled nursing facility, or home health care. The devices, systems, and methods may employ a plurality of cells, each of which may include a bladder, and the bladder may be supported by a base that forms a seal under pressure (a "fluid-tight" seal) with the bladder, which may contain a compressible fluid, e.g., air. In certain preferred embodiments, the base and bladder are constructed and arranged, as described and illustrated herein, such that the base forms with the bladder, i.e., a portion of the bladder, a rolling diaphragm portion that rolls on and over at least a portion of the base as the bladder expands and contracts. As described in more detail below, such a design may enable the height and / or applied pressure of such a bladder to be adjusted in response to an applied load, substantially independent of the cross-sectional shape and dimensions of the bladder. In certain embodiments, each cell in the plurality of cells, which may be a subset or all of the cells of a given support, may also include or be operatively associated with its own pressure sensor, height sensor, or both, and / or controllable inlet / outlet valve. The bladder of the cell may be filled with a fluid (preferably a compressible fluid), and the pressure and height sensors may be used to measure the pressure of the fluid within the bladder and the height of the bladder of a particular cell. Control of each cell, or any selected group or subset of cells within the plurality of cells, may provide the patient with contact pressure relief at specific protruding locations and / or particularly sensitive areas of the patient's anatomy (e.g., catheters, orthopedic support devices, wounds, ulcers, burns, skin grafts, post-operative sites, etc.), while maintaining adequate and comfortable overall support for other areas of the patient's anatomy. The present invention, in some cases, includes interrelated products, alternative solutions to a particular problem, and / or multiple different uses of one or more systems and / or articles.

[0008] In one aspect, a device for supporting at least a portion of a user's body is described, the device including a plurality of cells, each individual cell in the plurality of cells including: a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder; and a base adjacent to, attached to, and forming a fluid-tight seal with the bladder and supporting the bladder, the bladder forming a rolling diaphragm portion with the base, the rolling diaphragm portion configured to roll along the base and reducing a volume and height of the bladder when a force is applied to the bladder by the user's body; the base including at least one valve operatively associated with the base and in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid; a pressure sensor adapted and configured to measure the pressure of the compressible fluid; and a height sensor configured to measure the height of the bladder over most of the bladder's range of motion.

[0009] In another aspect, a device for supporting at least a portion of a user's body is described, the device including a plurality of cells, each cell in the plurality of cells including: a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder; and a base adjacent to, attached to, and forming a fluid-tight seal with, the bladder supporting the bladder, the bladder forming a rolling diaphragm portion with the base, the rolling diaphragm portion configured to roll along the base and reducing a volume and height of the bladder upon application of a force to the bladder by the user's body; and at least one valve operatively associated with the base and in fluid communication with the bladder, the valve configured to control inflow and / or outflow of the compressible fluid; a pressure sensor adapted and configured to measure a pressure of the compressible fluid; and a height sensor configured to measure a height of the bladder to an accuracy within + / - 5 mm, + / - 4 mm, + / - 3 mm, or + / - 2 mm.

[0010] In another aspect, a device for supporting at least a portion of a user's body is described, the device including a plurality of cells, each cell in the plurality of cells including or operatively associated with a bladder configured to contain a compressible fluid, the bladder expandable with the compressible fluid within the bladder, and an optical sensor configured to determine a height of the bladder independent of light intensity.

[0011] In another aspect, a device for supporting at least a portion of a body of a user is described, the device including a plurality of cells, each cell in the plurality of cells including or operatively associated with a bladder configured to contain a compressible fluid, the bladder expandable with the compressible fluid within the bladder, and a time-of-flight optical sensor configured to determine a height of the bladder.

[0012] In yet another aspect, a device for supporting at least a portion of a user's body is described, the device including a plurality of cells, each cell in the plurality of cells including or operatively associated with a bladder configured to contain a compressible fluid, the bladder expandable with the compressible fluid within the bladder, and at least one piezoelectric valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid.

[0013] In yet another aspect, a device for supporting at least a portion of a user's body is described, the device including a plurality of cells, each cell in the plurality of cells including or operatively associated with a bladder configured to contain a compressible fluid, the bladder expandable with the compressible fluid within the bladder, and a light associated with each cell positioned to separately and controllably illuminate each bladder to indicate a state or status of the bladder.

[0014] Also disclosed is a processor-controlled system for providing adjustable and controllable support for at least a portion of a user's body. In one aspect, a system for providing adjustable and controllable support for at least a portion of a user's body is described, the system including: a plurality of cells, each cell in the plurality of cells including, or operatively associated with, a bladder configured to contain a compressible fluid, the bladder expandable with the compressible fluid within the bladder, at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid, a pressure sensor adapted and configured to measure the pressure of the compressible fluid, and a height sensor configured to measure the height of the bladder over a majority of the bladder's range of motion; and a controller operatively associated with each cell in the plurality of cells, the controller including a processor, the processor configured and programmed to independently control the pressure of the compressible fluid to at least 10 mmHg and the height of each bladder to an accuracy of + / - 20 mm, and to record and / or display the pressure and / or height of each bladder.

[0015] In another aspect, a system for providing adjustable and controllable support for at least a portion of a body of a user, the system comprising: a plurality of cells, each of the cells in the plurality of cells including, or operatively associated with, a bladder configured to contain a compressible fluid, the bladder being expandable with the compressible fluid therein; at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid; a pressure sensor adapted and configured to measure a pressure of the compressible fluid; and a height sensor configured to measure a height of the bladder over a majority of a range of motion of the bladder. and a controller operatively associated with each of the plurality of cells, the controller including a processor, the processor configured and programmed to control a height of a first set of vertically oriented bladders in the plurality of cells, the first set including at least one bladder, the first set configured to support a body of a user, and to control a height of a second set of vertically oriented bladders in the plurality of cells to maintain a height of the second set below a height of the first set and to provide clearance between the bladders in the second set and the body of a user, the second set including at least one bladder.

[0016] In yet another aspect, a system for providing adjustable and controllable support for at least a portion of a user's body is described, the system including: a plurality of cells, each cell in the plurality of cells including or operatively associated with a bladder configured to contain a compressible fluid, the bladder expandable with the compressible fluid therein; and a height sensor configured to measure a height of the bladder over a majority of the bladder's range of motion; and a controller operatively associated with each of the cells in the plurality of cells, the controller including a processor, the processor configured and programmed to enable a user and / or operator of the system to manually depress at least a subset of the plurality of vertically oriented bladders to a subset height and activate a height control setpoint for the subset height when at least a first set of the plurality of vertically oriented bladders are expanded with the compressible fluid, and to maintain the height of the subset of bladders to within + / - 5 mm, + / - 4 mm, + / - 3 mm, or + / - 2 mm of the subset height.

[0017] In another aspect, a system for supporting a user's body includes or is operatively associated with a plurality of cells adjacent to the user's body, each cell in the plurality of cells including a bladder having a top surface for supporting the user's body, and a base adjacent and forming a fluid-tight seal with a bottom portion of the bladder to support and maintain fluid pressure within the bladder, the bladder forming a rolling diaphragm portion with the base, the rolling diaphragm configured to roll along the support element upon application of force to the bladder by the patient's body, and a compressible fluid within the bladder that, in use, expands the bladder so that the top surface is at a height above the base, the base being in fluid communication with the bladder operatively associated with the base. A system is described that includes a plurality of cells, each cell including at least one valve through which a compressible fluid passes, the valve configured to control the inflow and / or outflow of a compressible fluid; a pressure sensor adapted and configured to measure the pressure of the compressible fluid; and a height sensor configured to measure the height of a top surface of the bladder above a base over a majority of the bladder's range of motion, wherein a body support surface topology of the plurality of cells is collectively defined by the height of the top surfaces of each of the plurality of cells, and a controller is in electronic communication with and operatively associated with each of the cells in the plurality of cells, the controller including a processor configured and programmed to measure, record, display, and / or control the body support surface topology.

[0018] In yet another aspect, a system for providing adjustable and controllable support for at least a portion of a user's body is described. The system includes a plurality of cells, each of which includes a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder, at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid, and a pressure sensor adapted and configured to measure a pressure of the compressible fluid. In some embodiments, the system also includes a controller operatively associated with each of the plurality of cells, the controller including a processor, the processor configured and programmed to: measure a length of time the compressible fluid is contained within the bladder of each cell, determine a pressure-time value for each cell, compare the pressure-time value for each cell with a predetermined threshold, and reduce pressure in cells of the plurality of cells whose pressure-time value exceeds the predetermined threshold, and maintain or increase pressure in cells of the plurality of cells whose pressure-time value does not exceed the predetermined threshold. In some embodiments, the predetermined threshold indicates a risk of injury to the user's body.

[0019] In another aspect, a system for providing adjustable and controllable support for at least a portion of a body of a user, the system including or operatively configured to include a plurality of cells, each cell in the plurality of cells including a bladder configured to contain a compressible fluid, the bladder being expandable with the compressible fluid therein, at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid, a pressure sensor adapted and configured to measure a pressure of the compressible fluid, and a height sensor configured to measure a height of the bladder over a majority of a range of motion of the bladder. A system is described that includes a plurality of cells and a controller operatively associated with each of the cells in the plurality of cells, the controller including a processor, the processor configured and programmed to: reduce a pressure of a compressible fluid in each of the plurality of cells to a minimum pressure; determine a height of each of the plurality of cells at the minimum pressure; calculate a target height setting and / or a target pressure setting for each of the plurality of cells to achieve a user or operator-selected support surface end-state topography; and selectively pressurize each of the plurality of cells based on the target height and / or target pressure setting for each of the plurality of cells.

[0020] In yet another aspect, a system for providing adjustable and controllable support for at least a portion of a user's body is described, further comprising the steps of: selectively pressurizing each cell of a plurality of cells based on a target height and / or target pressure setting for each cell; a. measuring the height of each cell of the plurality of cells adjusted to the target height and / or target pressure setting for each cell of the plurality of cells; b. comparing the minimum cell height determined in step (a) with a target minimum height threshold; and c. selectively adjusting the pressure of the compressible fluid within each cell; and subsequently repeating steps (a) and (b) until the minimum cell height determined in step (a) matches the target minimum height threshold.

[0021] In yet another aspect, a device for supporting at least a portion of a user's body is described, the device including a plurality of cells, each individual cell within the plurality of cells including a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder, and a base adjacent to the bladder and attached to the bladder to form a fluid-tight seal therewith and to support the bladder, the bladder forming a rolling diaphragm portion with the base, the rolling diaphragm portion configured to roll along the base to reduce a volume and height of the bladder upon application of a force to the bladder by the user's body, the bladder including a first end shaped and configured to be attached to the base and to form a fluid-tight seal with the base, and a second end including a user support surface configured to apply a support force to the user's body, the bladder shaped and configured to allow adjustment of the angular orientation of the user support surface without substantially changing the angular orientation of a longitudinal axis of the bladder relative to the base.

[0022] In yet another aspect, a system is disclosed for providing adjustable and controllable support for at least a portion of a body of a user, the system including a plurality of cells, each cell in the plurality of cells including or operatively associated with a bladder configured to contain a compressible fluid, the bladder being expandable with the compressible fluid within the bladder, at least one valve in fluid communication with the bladder, the valve configured to control inflow and / or outflow of the compressible fluid, and a pressure sensor adapted and configured to measure a pressure of the compressible fluid; and a controller operatively associated with each of the cells in the plurality of cells, the controller including a processor, the processor configured and programmed to: measure a length of time the compressible fluid is contained within the bladder of each cell; determine a pressure-time value for each cell; compare the pressure-time value of each cell to a predetermined threshold; and reduce the pressure in cells in the plurality of cells whose pressure-time value exceeds the predetermined threshold indicative of a risk of injury to the body of the user, and maintain or increase the pressure in cells in the plurality of cells whose pressure-time value does not exceed the predetermined threshold indicative of a risk of injury to the body of the user.

[0023] In yet another aspect, a system is disclosed for providing adjustable and controllable support for at least a portion of a body of a user, the system including a plurality of cells including or operatively associated with: a plurality of cells, each cell in the plurality of cells being a bladder configured to contain a compressible fluid, the bladder being expandable with the compressible fluid in the bladder; at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid; a pressure sensor adapted and configured to measure the pressure of the compressible fluid; and a height sensor configured to measure the height of the bladder over a majority of the bladder's range of motion; and a controller operatively associated with each of the cells in the plurality of cells. The controller includes a processor configured and programmed to reduce the pressure of the compressible fluid in each cell of the plurality of cells to a predetermined pressure (e.g., a minimum operating pressure or a maximum operating pressure), determine a height of each cell of the plurality of cells at the predetermined pressure, calculate a target height setting and / or a target pressure setting for each cell of the plurality of cells to achieve a user- or operator-selected support surface end-state topography, and selectively pressurize each cell of the plurality of cells based on the target height and / or target pressure setting for each cell.

[0024] In yet another aspect, a device for supporting at least a portion of a user's body is disclosed, the device including a plurality of cells, each individual cell in the plurality of cells including a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder, and a base adjacent to the bladder and attached to the bladder to form a fluid-tight seal therewith and to support the bladder, the bladder forming a rolling diaphragm portion with the base, the rolling diaphragm portion configured to roll along the base to reduce a volume and height of the bladder upon application of a force to the bladder by the user's body, the bladder including a first end shaped and configured to be attached to the base and to form a fluid-tight seal with the base, and a second end including a user support surface configured to apply a support force to the user's body, the bladder shaped and configured such that the angular orientation of the user support surface can be adjusted without substantially changing the angular orientation of a longitudinal axis of the bladder relative to the base.

[0025] In yet another aspect, a device includes a plurality of cells including at least one cell including 2 to 20 (in some embodiments, e.g., 3, 8, or 16) bladders configured to contain a compressible fluid and expandable by the compressible fluid within the bladders, and a common base adjacent to and attached to each bladder, forming a fluid-tight seal with each bladder, and supporting each bladder, wherein each bladder forms a rolling diaphragm portion with the base, and the rolling diaphragm portion is configured to roll along the base, and when a force is applied to the bladders by a user's body, the rolling diaphragm portion expands. A device for supporting at least a portion of a user's body is disclosed, the device reducing the volume and height of the bladders, the base containing or including at least one valve operatively associated with the base and in fluid communication with the bladders, the valve configured to control the inflow and / or outflow of compressible fluid, at least one pressure sensor adapted and configured to measure the pressure of the compressible fluid, and a height sensor associated with each bladder and configured to measure the height of each bladder over most of the range of motion of each bladder.

[0026] In yet another aspect, an improved bladder is disclosed that includes an improved bladder configured to be attached to a base support and form a fluid-tight seal therewith, the bladder forming a rolling diaphragm portion with the base that reduces the volume and height of the bladder when a force is applied to the bladder, the bladder being shaped to have a first open end that is attached to the base support and configured to form a fluid-tight seal with the base support, and a second closed end that includes a person support surface configured to apply a support force to a body of a user of a support device with which the bladder is being used, the bladder being shaped and configured such that when the bladder is attached to the base support, the angular orientation of the person support surface can be adjusted without substantially changing the angular orientation of a longitudinal axis of the bladder relative to the base support.

[0027] In yet another aspect, a bladder is disclosed that is configured to be attached to a base support and form a fluid-tight seal therewith, the bladder forming a rolling diaphragm portion with the base that reduces the volume and height of the bladder when a force is applied to the bladder, the bladder being shaped to have a first open end that is attached to the base support and configured to form a fluid-tight seal with the base support, and a second closed end that provides a person support surface configured to apply a support force to the body of a user of a support device in which the bladder is being used. The bladder further includes an improvement that includes being shaped and configured such that the angular orientation of the person support surface can be adjusted when the bladder is attached to the base support without substantially changing the angular orientation of a longitudinal axis of the bladder relative to the base support.

[0028] Also disclosed is a method of supporting a user's body. In one aspect, the method includes: positioning the user's body adjacent to a plurality of cells, each cell in the plurality of cells including a bladder, a compressible fluid within the bladder, and a base adjacent to, attached to, and forming a fluid-tight seal with the bladder and supporting the bladder, the bladder forming a rolling diaphragm portion with the base, the rolling diaphragm configured to roll along the base upon application of a force to the bladder by the user's body; measuring, for each cell, the pressure of the compressible fluid within the bladder with a pressure sensor; measuring the height of the bladder with a height sensor configured to determine the height of the bladder over a majority of the bladder's range of motion; and adjusting the height and / or pressure of the cell.

[0029] Also disclosed is a device for providing adjustable and controllable support for at least a portion of a user's body, the device including, or operatively associated with, a plurality of cells, each cell in the plurality of cells being an airtight bladder configured to contain and expand with air supplied to and contained within the bladder, and at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of a compressible fluid; and a ventilation system configured to provide ventilation to spaces surrounding and between the bladders of the plurality of cells, wherein air is circulated by the ventilation system to provide the ventilation system, and the air circulated by the ventilation system is not air supplied to and contained within the bladders to expand the bladders.

[0030] Other advantages and novel features of the present invention will become apparent from the following detailed description of various non-limiting embodiments of the invention, considered in conjunction with the accompanying figures. In the event that a document incorporated by reference includes disclosure that conflicts and / or is inconsistent with this specification, the present specification shall control.

[0031] BRIEF DESCRIPTION OF THE DRAWINGS Non-limiting embodiments of the present invention will now be described, by way of example, with reference to the accompanying drawings, which are schematic and are not intended to be drawn to scale. In the drawings, each identical or nearly identical component shown will generally be represented by a single reference numeral. For the sake of clarity, not every component in every drawing will be labeled, and not every component in every embodiment of the present invention will be shown, unless explanation is necessary to enable those skilled in the art to understand the invention. [Brief explanation of the drawings]

[0032] [Figure 1A] 1 is a schematic diagram of a device for supporting a user's body with multiple cells, according to some embodiments. FIG. [Figure 1B] 1 is an image of a hospital bed incorporating a support system, according to one embodiment. [Figure 1C] 10A-10C schematically illustrate multiple cells of a support device mounted on a plate that can be attached to and detached from a support frame or bed frame, according to some embodiments. [Figure 2A] FIG. 1 is a schematic diagram of an individual rolling diaphragm cell including a bladder and a base with a valve, according to some embodiments. [Figure 2B] FIG. 2E is a schematic diagram of a first embodiment of a generally cylindrical bladder used in the rolling diaphragm cell shown in FIG. 2D, according to some embodiments. [Figure 2C] FIG. 2E is a schematic diagram of a second embodiment of a generally cylindrical bladder with a tapered bladder used in the rolling diaphragm cell shown in FIG. 2D, according to some embodiments. [Figure 2D] FIG. 10 is a schematic diagram of a complete cell comprising a support base and a bladder, the base including a height sensor, a pressure sensor, and a proportional valve, according to some embodiments. [Figure 3A] 10A-10C show schematic diagrams of articulating bladders for cells according to one set of embodiments. [Figure 3B]10A-10C show schematic diagrams of articulating bladders for cells according to one set of embodiments. [Figure 3C] 1 is a photographic image of a bladder, cell, and sensor unit exploded to show the internal components, according to one embodiment. [Figure 4A] FIG. 10 is a schematic diagram of a complete cell with three bladders, where a common support base serves as a common pressure manifold for the three bladders, and the base includes a separate height sensor, pressure sensor, and proportional valve associated with each bladder to measure the height of each bladder, according to some embodiments. [Figure 4B] FIG. 10 is a schematic diagram of a complete cell with three bladders, where a common support base serves as a common pressure manifold for the three bladders, and the base includes a separate height sensor, pressure sensor, and proportional valve associated with each bladder to measure the height of each bladder, according to some embodiments. [Figure 5A] FIG. 1 is a schematic diagram of a control system configured to control air pressure in a cell, according to some embodiments. [Figure 5B] FIG. 1 is a schematic diagram of a control system including a microprocessor configured in electronic communication with a pressure sensor, a height sensor, and a proportional valve to control the air pressure and / or height of the cell, according to certain embodiments. [Figure 6] FIG. 1 is a schematic diagram of an air supply and control system for supplying pressurized air to a cell having a proportional valve connected to a manifold, according to some embodiments. [Figure 7] 10A-10C illustrate schematically several zones of cells controlled at different heights to provide differently oriented support surfaces, according to one set of embodiments. [Figure 8A] 10 shows an image of a display of a graphical user interface of a system showing a color-coded height indication of a plurality of cells in which at least a portion of the cells are depressed to provide a gap area near a user, according to one set of embodiments. [Figure 8B]8B is a photographic image of a user lying on a support system of the present invention, where the support surface topology and cell height correspond to the color-coded representation shown in FIG. 8A. [Figure 9] 1 is a flowchart illustrating a cell height control and display process under the control of a controller configured to allow manual depression of a cell to be controlled to a pressure and / or height that is lower than the displayed overall setpoint pressure or height of the surrounding cells, according to some embodiments. [Figure 10] 10A and 10B illustrate a schematic representation of a support system having a toilet bowl resting within a void created by a controller in a depressurized cell while adjacent adjacent cells remain pressurized for support, according to one embodiment. [Figure 11A] 1A and 1B show schematic diagrams of the top surface of the support cells (top) and a graphical user interface (GUI) displaying the pressure in each cell (bottom), according to one embodiment. [Figure 11B] 10A-10C illustrate schematically zones of cells controlled to a lower pressure than adjacent neighboring cells according to a time-varying period, according to some embodiments. [Figure 11C] 10A-10C schematically illustrate zones of cells controlled at a lower pressure than adjacent neighboring cells to maintain localized pressure relief regions, according to some embodiments. [Figure 12] 1 illustrates several control mode options for a graphical user interface (GUI) of a controller of a support device, according to some embodiments. [Figure 13A] 14A-14C are schematic diagrams illustrating horizontal, coronal, and sagittal planes relative to a user, corresponding to the graphical data shown in FIGS. 14A-14C, in accordance with some embodiments. [Figure 13B] 10 is a graph showing the bladder height profile of a row of cells, including a cross section of the overall support surface taken in a horizontal plane, illustrating the results of applying a mathematical transformation used to change the height step size of one or more cells, according to some embodiments. [Figure 13C]10 is a graph showing the bladder height profile of a row of cells, including a cross section of the overall support surface taken in a horizontal plane, illustrating the results of applying a mathematical transformation used to change the height step size of one or more cells, according to some embodiments. [Figure 13D] 10 is a graph showing the bladder height profile of a row of cells, including a cross section of the overall support surface taken in the sagittal plane, illustrating the results of applying a mathematical transformation used to change the height step size of one or more cells, according to some embodiments. [Figure 13E] 13B-13D show cell height map views of the coronal plane of the support surface shown by an embodiment of a display associated with an embodiment of a control / display system, with overlays showing transverse plan and sagittal / craniocaudal plane sections used in the description of the graphs in FIGS. 13B-13D. [Figure 14] 1 is a flowchart illustrating a controller-mediated control algorithm for controlling occupant sinking by adjusting height by applying mathematical transformations to achieve a occupant or operator selected support profile or goal, according to one set of embodiments. [Figure 15] 10A-10C are images of a display showing three variations of a support device providing a body support topology map of the support surface showing the height and pressure of each of the cells comprising the support surface, according to one embodiment. [Figure 16] 10 shows a plot of contact pressure versus displacement for several cells containing different materials, according to one set of embodiments. [Figure 17] 10 shows a pressure distribution map of a patient lying on a submerged synthetic rubber rolling diaphragm support surface according to one set of embodiments. [Figure 18] FIG. 1 is a schematic diagram of a cell embodiment configured to promote airflow in the space adjacent the bladder between the top of the bladder and the patient-contacting surface to facilitate ventilation of the patient-cell interface and control of the patient-cell interface temperature, according to some embodiments. [Figure 19A]1 is a schematic cartoon showing a top-down view of a support device embodiment including a vent system for circulating air or another gas in the space between the bladders. [Figure 19B] FIG. 1 is a schematic diagram showing a top-down partial view of the portion of a support device (bladder and cells removed for clarity) near the foot including a ventilation system. [Figure 19C] FIG. 19B is a partial left side view of the support device of FIG. 19A with only one cell / bladder installed for illustrative purposes and showing the attached control system GUI. [Figure 19D] FIG. 19B is a cross-sectional view of the support device of FIG. 19A with five bladders / cells installed for illustrative purposes. [Figure 19E] 19B is a perspective partial view of the portion of the support device near the feet shown in FIG. 19A with the air supply header portion of the ventilation system made transparent to show the blower housed in the header and a GUI installed. [Figure 20A] FIG. 10 is a flowchart illustrating a basic pressure control algorithm for controlling pressure to a set point by a controller of the system, including a feedback loop of pressure measurement, pressure sensor calibration, and valve state control to control the pressure of the fluid in the bladder, according to some embodiments. [Figure 20B] FIG. 1 is a flowchart illustrating a height control algorithm for controlling the cell height to a set point by a controller of the system in response to an applied pressure, including a feedback loop of pressure measurement, pressure sensor calibration, and valve state control to control the pressure of the fluid in the bladder to maintain the cell at a selected cell height set point, according to some embodiments. [Figure 21A] FIG. 10 is a schematic diagram illustrating a piezoelectric valve configuration for controlling the expansion and contraction of a cell's bladder, according to one embodiment. [Figure 21B] FIG. 10 is a schematic diagram illustrating a piezoelectric valve configuration for controlling the expansion and contraction of a cell's bladder, according to one embodiment. [Figure 21C]FIG. 10 is a schematic diagram illustrating a piezoelectric valve configuration for controlling the expansion and contraction of a cell's bladder, according to one embodiment. [Figure 21D] FIG. 10 is a schematic diagram illustrating a piezoelectric valve configuration for controlling the expansion and contraction of a cell's bladder, according to one embodiment. [Figure 22] 1A and 1B illustrate schematically a support system in which a plurality of cells can be both oriented non-horizontally (e.g., vertically) or at an angle to the vertical, according to one embodiment. [Figure 23] 1 shows plots of Gefen's curve and Reswick & Rogers' curve showing pressure as a function of time in relation to the potential for tissue damage in a patient, according to one example set. [Figure 24] 10 is a flowchart illustrating a controller-mediated control algorithm for adjusting pressure in individual cells of a plurality of cells based on pressure-time measurements to reduce the risk of compression injury, according to some embodiments. DETAILED DESCRIPTION OF THE INVENTION

[0033] Detailed Description Described herein are devices, systems, and methods for supporting the body of a user (e.g., a patient in a hospital, rehabilitation center, assisted care facility, hospice, home health care setting, etc.). Various devices can be configured as beds, mattresses, seats, armrests, headrests, etc., depending on the application. Many of the following embodiments are described in the context of a hospital or medical facility bed for acute or chronic care of a patient, and certain embodiments provide features and advantages that improve over typical prior art and are particularly suited for such purposes. However, in other embodiments, the systems and devices described herein can be used for other purposes or applications, such as a home bed or mattress, general sleep aid use, seat cushion, wheelchair cushion, patient transport system, headrest, armrest, etc. Many of the features and advantages described below with respect to devices intended for medical applications, e.g., pressure control, height control, massage functions, user repositioning, etc., can also provide advantageous utility for other purposes, as will be understood by those skilled in the art having the benefit of this disclosure.

[0034] In certain embodiments, support for a user's body or at least a portion thereof may be provided by a plurality of cells, each cell including a base for supporting the cell and at least one expandable bladder that forms a substantially leak-proof (e.g., fluid-tight) seal (i.e., a "fluid-tight" or "pressure-tight" seal) at the operating pressure of the cell where it is attached to the base. In certain embodiments, the bladder is vertically oriented, meaning that its fully expanded height (i.e., measured in a first direction extending from the base to the top surface of the bladder that will be positioned adjacent the user's body in use) exceeds the maximum cross-sectional dimension of the fully expanded bladder measured in a direction perpendicular to the first direction by at least 1.5 times, preferably at least 2, 5, 10 times, or more.

[0035] In one particularly preferred embodiment, the vertically oriented bladder is designed with the base to form a rolling diaphragm thereon. Such a rolling diaphragm design can enable precise, substantially height-independent patient contact pressure control over all or most of the diaphragm's range of motion, allowing bladder deflection, infiltration, expansion, and contraction to result in large changes in cell diaphragm height without large changes in cell diaphragm width (i.e., the maximum cross-sectional dimension of the fully expanded bladder measured perpendicular to the height direction, as described above). Rolling diaphragm support cells of a type suitable for use in the present disclosure, along with their ability to accurately provide and control desired patient contact pressure, are described in the following commonly owned patents and published patent applications, which are incorporated herein by reference: U.S. Pat. No. 8,572,783 and WO 2014 / 153049. For example, FIG. 1A shows a device 100 for supporting at least a portion of a user's body 105. A user 105 rests horizontally on a plurality of vertically oriented cells 110. Various cells within the plurality of cells (e.g., cell 200a versus cell 200b) may be at different heights to provide support to the user 105, as shown in the figures. When a user is not reclining on the support system, the plurality of cells may have the same height, as shown in connection with FIG. 1B, and FIG. 1C schematically illustrates a set of the plurality of cells 110 within the support device 100.

[0036] In embodiments having a rolling diaphragm design, the diaphragm may be configured to roll along the base so that when a force (e.g., pressure) from a user (e.g., a patient, caregiver, or nurse) is applied to the bladder, the volume and height of the bladder decrease without substantially increasing the diameter of the bladder, and the bladder contains a compressible fluid, such as air, to provide an opposing force to support the user. For example, as shown in FIG. 2A , cell 200 includes bladder 210 filled with air 215. Bladder 210 forms a fluid-tight seal 201 with base 220, which may include a valve, such as valved fluid path 225, to provide inflow and outflow of fluid 215. Rolling diaphragm portion 230 allows bladder 210 to roll along base 220 without increasing diameter 202 of bladder 210. In some embodiments, the cell includes a generally cylindrically shaped bladder, as shown in FIG. 2B . In some embodiments, the cell includes a bladder that tapers toward the base of the cell (i.e., the bladder narrows along a direction from the top portion of the bladder to the bottom portion of the bladder), as shown schematically in FIG. 2C.

[0037] Various cell and bladder configurations are possible. For example, in some embodiments, the bladder may be adapted and configured to articulate or more easily conform to the contours of the body and reduce applied pressure when only a portion of the bladder is in contact with the body or when the body is positioned at an angle relative to the cell and bladder. For example, FIG. 3A shows a cell bladder 300 having a main body portion 310 and a base mating portion 315. The bladder main body portion 310 has a cylindrical shape that tapers downward as it approaches the base 315. A top portion 320 of the bladder 300 connects to the bladder main body portion 310 via a circumferentially recessed, articulatable joint region 322. The top portion 320 may include a peripheral beveled edge 321 that can conform to the contours of the user's body to enhance articulation between the cell 300 and the user's body. The joint region 322 is also configured to allow the top portion 320 to pivot angularly to provide greater articulation to follow the movements of the user's body. For example, in Figure 3B, joint area 322 is angled so that top portion 320 is at an angle relative to its position in Figure 3A. This feature can provide increased support and comfort for the user's body.

[0038] 3C shows a photographic image of an exemplary cell and bladder as described and illustrated herein in an exploded state. The figure also shows the associated sensor 330 and piezoelectric valve 334.

[0039] While both the pressure and height (see "H" in FIG. 2D ) of at least some of the cells of the plurality of cells can be controlled, in some embodiments, the pressure and / or height of each individual cell (e.g., at least one bladder associated with each cell, and, in the case of cells associated with a single bladder, each such individual bladder above its corresponding base) can be controlled independently of and / or together with adjacent cells in the plurality of cells. Furthermore, in certain embodiments, simultaneous and accurate determination of the height and pressure of individual cells in the plurality of cells can be determined by respective height and pressure sensors within each cell or remotely located but operatively associated with each cell. As described further below, this can provide several advantages over existing support systems for a user's body because certain cells or groups or zones of cells (i.e., a subset of all cells) can be controlled to different pressures and / or heights (e.g., can be depressed relative to adjacent, neighboring cells) to provide areas of reduced or no contact pressure against the user's body. This allows the patient to be relieved of contact pressure on protruding or sensitive areas of the patient's anatomy such as ulcers or open wounds, burns, post-surgical wound areas, attached devices such as breathing tube catheters, orthopedic devices, colostomy bags, negative pressure wound therapy devices, etc. This is a feature not typically provided by existing support systems.

[0040] In some embodiments, in addition to or instead of individual cells associated with a single bladder (thus providing height and pressure control with individual bladder resolution), as a cost-saving strategy and / or to simplify control / maintenance / manufacturing complexity, cells having a common base associated with two or more bladders may be included, e.g., in areas of the surface where the spatial resolution of independent height / pressure control may be less important. In such embodiments, multiple bladders may be grouped into a single cell that can be controlled independently of one another or together, with independent control of the pressure of such cells providing common pressure and pressure control for their associated bladders. The number of bladders associated with such a cell (and, in certain embodiments, with the common base of each such cell) may be any suitable number, such as 2, 3, 4, 5, 6, 7, 8, 9, 10, 16, 20 or more, 2-20, 2-16, 2-10, or 2-5, or in some cases 3, 8, or 16 bladders).

[0041] For example, FIG. 4A shows one embodiment of a three-bladder cell 400. The cell 400 includes three rolling bladders 410 that combine to form a triple-bladder configuration. The three bladders 410 are associated with a common base 419 that may house or be operatively associated with one or more sensors (e.g., pressure sensor, height sensor) and inlet / outlet valves for controlling the pressure within the cell and the three bladders. In a preferred embodiment (but optional), a separate height sensor, such as sensor 430, is associated with each individual bladder associated with the cell to independently measure its height. The common base 419 may include a bladder mounting portion 420 and a manifold / housing portion 440 that may enable the base to be connected to a manifold / plenum that provides pressurized fluid (e.g., compressed air) to the cell and all three bladders. FIG. 4B shows the assembled cell. In some embodiments, the triple-bladder cell configuration may be operated together such that the height and / or pressure of the bladders may be controlled together (i.e., as a unit). Grouping a set of multiple bladders together into a single cell can be beneficial, for example, for the reasons described above, without substantially compromising overall performance, particularly when such cells are positioned adjacent to portions of the user's body that may not require a high degree of pressure point resolution relative to the user's body (e.g., legs, arms) or in areas of the support surface infrequently occupied by the user (e.g., peripheral areas). Such grouping of multiple bladders into a single cell can reduce the number of valves required for the support system by grouping bladders together so that the bladders can share a valve, rather than each bladder having its own valve. In certain embodiments, cells associated with individual bladders (e.g., as shown in FIGS. 2D and 3C ) (i.e., allowing pressure and / or height control at the individual bladder resolution level) can be used in areas of the support surface typically adjacent more sensitive portions of the user's body (e.g., head, torso, buttocks, etc.).

[0042] In an alternative embodiment, rather than having bladders grouped under common pressure control to provide a single controllable cell, a common base associated with two or more bladders may be configured to allow fluid isolation and independent pressure measurement and control of each bladder, such that the common base with its associated two or more bladders functions as two or more (i.e., equal to the number of bladders) separately controllable cells of the support surface.

[0043] As noted above, in certain embodiments, the plurality of cells may be operatively associated with one or more pressure sensors adapted and configured to measure the pressure of a fluid (e.g., a compressible fluid) within a bladder of the plurality of cells, and in certain embodiments, may include one or more height sensors configured to measure the height of each bladder of one or more cells of the plurality of cells over most of its range of motion (e.g., in some cases, over substantially its entire range of motion). While in certain embodiments, all bladders of the plurality of cells may be fluidly connected to all, many, some, or at least one other bladder of the plurality of cells, and interconnected bladders are not independently controllable in terms of pressure and / or height setpoints relative to the other bladders, in preferred embodiments, the support device includes a plurality of cells associated with a single bladder, where each cell in the plurality of cells (i.e., each individual cell) is independently controllable in height and pressure from the others. In some cases, the cells of such individually controllable bladders form the total number of cells comprising the support surface. In other embodiments, multiple independently controllable single-bladder cells may be separated into one or more sections of the support device where more precise spatial control of pressure and / or height is desired (e.g., areas over which the patient's torso, head, pelvis, heels, etc. rest in use), while in other areas of the support device where less precise spatial control is needed and / or where precise and instantaneous control of multiple bladders as a unit may be desirable (e.g., peripheral areas, lower legs, etc.), additional cells or additional cells may be provided, each containing multiple bladders in unrestricted fluid interconnection and subject to a common pressure control. In contrast to separate pressure sensors, height sensors, and fluid control valves provided as part of or in functional association with each controllable cell associated with an individual single bladder, as described below, for cells associated with multiple bladders in unrestricted fluid communication with one another under common control, fewer or only one pressure sensor and control valve may be provided for each cell to measure pressure and control the expansion and contraction of such linked bladders as a unit.In certain embodiments, such linked bladders may include no height sensors, may include a single such sensor on behalf of the group, or may have individual height sensors associated with each individual bladder.

[0044] As noted, in preferred embodiments, the support device includes a plurality of cells, each of which is individually controllable and fluidly isolable from the other cells, e.g., by providing separate inlet / outlet valves. In certain embodiments, the support device includes a plurality of individually controllable cells, each associated with a single expandable bladder and controlling the height and pressure of the single expandable bladder, and may include additional cells within the overall device (e.g., having multiple connected bladders). In certain embodiments, and particularly preferred with respect to individually controllable and fluidly isolable cells, each of the plurality of cells may include a pressure sensor incorporated into the cell (e.g., as part of the support base, as described and illustrated below) or otherwise operatively associated therewith, adapted and configured to measure the pressure of the fluid (e.g., the compressible fluid within the bladder), and a height sensor configured to measure the height of the bladder above the base (or equal to a depth below the height of maximum expansion) over most of the bladder's range of motion. That is, each cell of the plurality of cells may include a pressure sensor and a height sensor to determine the pressure of the compressible fluid within the bladder and the height of such bladder (e.g., the height of the bladder above the base).

[0045] For example, referring again to FIG. 2D , individually controllable cell 200 includes a single bladder 210 and has a base 220 including a height sensor 205 and a pressure sensor 207 for measuring the bladder's height and pressure, respectively. In contrast, a typical prior art system may provide only a pressure sensor, and may provide only the pressure of the fluid within the cell. In certain known systems, a proximity sensor may be included to detect complete or near-complete deflation of the bladder, but may not be able to measure the bladder's height over most of its range of motion. Furthermore, unlike prior art systems that provide only pressure sensors associated with large groups of bladders, certain disclosed embodiments include both a pressure sensor and a height sensor associated with each individual bladder (or a small group of commonly controlled bladders, e.g., 2, 3, 4, 5, 6, 7, 8, 9, 10, 16, 20, 2-20, 2-16, or 2-5, or in some cases, 3, 8, or 16 bladders) for each cell of a plurality of cells. One advantage of providing both height and pressure sensors associated with each individual cell and its associated bladder, as described in some embodiments of the present disclosure, is that such a configuration can provide a user (e.g., patient) or external operator with real-time pressure and height measurements of each bladder of each cell, which can be useful for identifying fine-resolution areas of the patient's body experiencing higher or lower pressure and enabling height and / or pressure readjustments to meet the patient's particular needs, as described in further detail below. Another advantage is that the data provided by the height and pressure sensors of the individual cells can be used by various automated controllers and control systems to provide programmable and / or self-automated control of the device or system, as described below, and to facilitate various control schemes and algorithms and programmed therapeutic treatment methods.Additionally, in certain embodiments, data provided by the height and pressure sensors of individual cells may be collected, recorded, processed, displayed, and / or transmitted for various purposes, such as monitoring patient positioning / repositioning, verifying compliance with care protocol standards, providing a complete record of pressure-position-time information for patient evaluation and diagnostic purposes, etc. For example, separate inlet / outlet valves (e.g., proportional valves 209) may be provided for each individual cell of a plurality of cells to facilitate individualized expansion and contraction control for each such cell to control the pressure and / or height applied to the user's body independently from other cells.

[0046] In some embodiments, the pressure sensor and / or height sensor and / or control valve may be located within the cell, e.g., integrated into base 220 as shown in FIG. 2D , although other positions or locations of the pressure sensor and / or height sensor and / or control valve within or remote from the cell are possible. In some embodiments, the pressure sensor and / or control valve may be located remote from the cell but fluidly connected to the cell to provide the same functionality as if they were part of the cell itself. For example, the sensor and valve may be grouped together in a common housing that is easily accessible by a user or maintenance technician for maintenance or replacement. The pressure sensor and / or control valve may be functionally associated with a particular cell, for example, via a fluid conduit. In some embodiments, the height sensor, or at least a portion of the height sensor, may also be located remote from the cell or the base of the cell. In such cases, light may be transmitted to and from the cell to facilitate height measurements, for example, via fiber optic conduits. In some embodiments, both the pressure sensor and the height sensor may be located away from the cell or the base of the cell, and in certain embodiments, the pressure sensor and the height sensor and the control valve may each be functionally associated with the cell, but located away from the cell or the base of the cell.

[0047] As mentioned, and as described in more detail below, a controller configured to receive, display, convert, and / or transmit data and / or control the cells of the device may be provided as part of the overall support system. For example, as shown in FIG. 5A , system 500 includes a controller 510 associated with a representative cell 520 and an air pressure source 525 that supplies pressurized air to the cell. In some embodiments, controller 510 may be operatively associated with each of the cells in the plurality of cells, and height and pressure sensors may provide height and pressure measurements, respectively, to the controller. In such embodiments, the controller may receive height and pressure data from the height and pressure sensors, respectively, and may relay this information to a user, an external operator, or an external processor.

[0048] In some embodiments, the controller may include a computer processor that can be used to control the bladder height and / or pressure of an individual cell or a subset of cells within the plurality of cells based at least in part on data received from the pressure and height sensors. Referring again to FIG. 5A , controller 510 may be configured and programmed to control the bladder height and / or pressure of cell 520 in response to measured pressure and / or height data received from pressure and / or height sensors operatively associated with cell 520, for example, by opening inlet valve 209 a (with outlet valve 209 b closed) to expand the bladder with pressurized air from source 525, and by opening outlet valve 209 b (with inlet valve 209 a closed) to deflate the bladder by venting air pressure from cell 520 to the ambient atmosphere or a vacuum source (collectively shown as 527). The air source may be one or more of any suitable air fluid pressurization system or pressurized air source, such as an air compressor, fan, pump, pressurized tank, etc., capable of providing air at sufficient pressure to fill the bladder. Some embodiments utilize air as the fluid in the bladder. It is also contemplated that other gases may be used. It should also be understood that the fluid may be temperature controlled.

[0049] An alternative system control schematic to that shown in Figure 5A is shown in Figure 5B. Referring to Figure 5B, system 550 includes a cell controller 510 including a processor 515 electrically connected to pressure sensor 207 and height sensor 205. Processor 515 controls the operation of motor driver 540, which is in electrical communication with and operates proportional valve 209 and solenoid directional control valve 512, which selectively places proportional valve 209 in fluid communication with either pressurized air source 527 for inflation or ambient pressure (vent) 527 for deflation. Controller 510 is configured, and processor 515 is programmed, to enable controller 510 to measure and control bladder height and pressure of cell 520. This may enable a user, external operator, and / or remote clinician with communication access to the controller to access pressure and height information regarding settings (e.g., bladder height, pressure) for a cell, some cells, each cell, or multiple cells, and / or all cells of the support, and adjust these settings and / or input or change operating modes, treatment protocols, or physically intervene to reposition or assist the patient, etc., performed by processor 515 in response to measured bladder height and / or pressure provided by the height and pressure sensors of the individual cells, and / or other suitable patient-related information that may be measured by or input into the system, such as pulse, heart rate, respiratory rate, body temperature, exercise history, blood oxygen level, etc.

[0050] In certain embodiments, in cells operatively associated with one or more height sensors, the height sensors may be selected and / or configured to provide greater measurement accuracy and reduce the need for a reference light emitter when compared to typical conventional light intensity measuring optical sensors used to measure bladder height in pneumatic bladder support systems. In some embodiments, each cell of a plurality of cells includes a height sensor, and in certain embodiments having a cell including multiple bladders, each such cell includes a separate height sensor for independently measuring the height of each bladder in the cell. In some embodiments, the height sensors are configured to measure the bladder height over most of the bladder's range of motion (e.g., over 50%, 60%, 70%, 80%, 90%, 95%, 99%, or the full range of motion of the bladder). Exemplary dimensions and fully expanded heights (i.e., defining the maximum range of motion) of bladders for certain support surface embodiments are described in more detail below. In some embodiments, the height sensor is configured to measure the bladder height to an accuracy within + / −100 mm, + / −50 mm, + / −30 mm, + / −20 mm, + / −10 mm, + / −7 mm, + / −5 mm, + / −4 mm, + / −3 mm, + / −2 mm or less. For example, in such embodiments, the bladder height can be set (e.g., by a user, an external operator, or a controller) to a value of 16 mm, and the true value of the bladder height can be controlled to be no greater than 20 mm and at least 12 mm. By providing a high degree of accuracy, the height sensor can enable control of multiple cells to provide a precisely controlled surface topology that can improve the comfort and protection of a user, such as a patient in a clinical or home care environment, compared to existing support systems.As described in more detail elsewhere herein, accurate bladder height sensing of individual cells within the plurality of cells can advantageously allow one or more cells to control the height of their associated bladder to a different height (e.g., a lower height) relative to immediately adjacent / surrounding cells within the plurality of cells to provide user relief in specific areas of the body such as ulcers, wounds, burns, post-surgical sites, or protrusions, and / or provide clearance / access for medical or comfort devices such as orthopedic stabilizers, catheters, arterial / venous ports, colostomy bags, CPAP masks, bedpans, NPWT devices, dressings, etc.

[0051] According to some embodiments, each cell in the plurality of cells of the support device, and possibly all cells of the support device, includes or is functionally associated with at least one optical sensor, and in preferred embodiments, a separate optical sensor for each bladder associated with such cell. In some embodiments, the support base of each cell includes such an optical sensor integrated into or functionally associated with the support base of each cell. The optical sensor may function as a height sensor to determine the height of the top of the bladder above the base and / or the degree of depression of the bladder in response to an applied force (e.g., from the user's body). In some embodiments, the height sensor may be an inductance- or capacitance-based sensor, as opposed to an optical sensor, although an optical sensor is preferred. Preferred optical sensors are configured to determine bladder height independently of the intensity of reflected light. While optical sensors may be suitable in some embodiments, they suffer from certain drawbacks, such as loss of accuracy over time as the emitter ages and the emitted light intensity decreases, necessitating frequent calibration and / or the inclusion of a reference emitter. A preferred optical sensor found to be suitable in the context of the present disclosure and that does not suffer from the above-mentioned drawbacks is based on time-of-flight (TOF) measurements. For example, in a TOF optical sensor, light can travel from an initial position beginning at the location of the optical sensor within the base of the cell to the top of the bladder where the light is reflected back to the optical sensor, and the time it takes for the light to return to the optical sensor is measured and used to provide a measurement of the bladder height. As noted above, optical sensors that rely on measurements of changes in the intensity of light traveling back from the optical sensor to determine cell height, and thus determine height by the intensity of the incident light relative to the initial intensity of the departing light compared to a calibration standard, become increasingly inaccurate over time and require frequent recalibration of the sensor and / or the inclusion of a reference sensor, whereas TOF sensors rely on the time and speed of flight of light, which are invariant with intensity, and do not require comparison to a calibration standard. Thus, TOF sensors require little or no calibration and remain accurate even as light intensity decreases over time.

[0052] In certain embodiments, the support base of the cell may include or be functionally associated with at least one TOF optical height sensor configured to determine the height of the bladder. As used herein, a "time-of-flight" (or TOF) sensor refers to a sensor that determines the distance of an object from a sensor by measuring the time it takes for light traveling from its light source to its detector, after the light travels from the source and reflects off the object whose distance from the source and detector is being measured and returns to the detector. A TOF sensor can accurately measure the time it takes for light (e.g., infrared (IR) or visible light) to travel to the nearest object and be reflected back to the sensor. The TOF sensor may be located at the base of the bladder and positioned to direct light such that the light travels from the base to the inner surface of the top of the bladder, where it reflects back to the detector in the base; the height of the bladder may be determined from measuring the time it takes for the light to travel from the base of the bladder to the top of the bladder and return to the detector. In contrast, intensity-based measurement systems that estimate distance by measuring the amount of light reflected from an object, in addition to the drift and calibration drawbacks mentioned above, may also be more significantly affected by the color, reflectivity, and surface texture of the bladder's interior surface than certain TOF sensors. In some embodiments, the TOF sensor includes an IR emitter, a distance sensor, and an ambient light sensor. The IR emitter can emit infrared light toward the top of the bladder, and the distance sensor can detect the time it takes for the IR light to reach the bladder surface (e.g., the top surface of the bladder) and reflect back to measure the bladder height. The ambient light sensor can subtract the effects of stray light from the measurement to reduce noise received by the distance sensor. In certain embodiments, the TOF sensor uses a VCSEL (vertical cavity surface-emitting laser) as the emitter. One example of a suitable TOF sensor is the model VL6180X TOF sensor by STMicroelectronics®.

[0053] The time it takes for a TOF sensor to measure the bladder height may depend on the distance from the emitter (e.g., an emitter at the base of the bladder) to the furthest point (from the emitter) of the bladder portion where the light strikes and reflects (typically the interior surface at the top of the bladder, e.g., surface 211 in FIG. 2D ), and also the reflectivity of this portion of the bladder. The inventors have recognized and appreciated, in the context of the present disclosure, the advantages of using a TOF optical sensor to improve the accuracy and reliability of determining the bladder height of a support surface. In some embodiments, the TOF sensor emits a short infrared pulse, and the TOF sensor measures the return time of the infrared light after reflecting off a surface (e.g., the surface of the bladder). However, it should be understood that the TOF optical sensor can also measure light intensity in addition to measuring the elapsed time for the light to travel from the sensor and return. Another advantage, as noted above, in certain embodiments, a time-of-flight optical sensor may be used in conjunction with a pressure sensor and / or inlet / outlet valves to enable measurement and control of both the height and pressure of a cell or multiple cells independently of other cells of a support device. Suitable pressure sensors and valves are described in more detail below and elsewhere herein.

[0054] The time required for a TOF sensor to measure bladder height depends on several factors, including the distance to be measured, optical conditions, and the desired degree of accuracy. Some TOF sensors do not base distance / height determinations on a single measurement, but rather emit many light pulses and perform many measurements in rapid succession until the degree of deviation from measurement to measurement is less than a set level for a particular degree of accuracy desired. In some embodiments, a TOF sensor can provide bladder height measurements in a relatively short amount of time (e.g., 250 milliseconds (ms) or less per height measurement) compared to certain existing systems. In some embodiments, a time-of-flight sensor determines bladder height in 5 ms or less, 10 ms or less, 20 ms or less, 30 ms or less, 40 ms or less, 50 ms or less, 75 ms or less, 100 ms or less, 150 ms or less, 200 ms or less, or 250 ms or less. In some embodiments, the time-of-flight sensor determines bladder height in times between 5 ms and 250 ms, 10 ms and 150 ms, 20 ms and 150 ms, 30 ms and 150 ms, 40 ms and 150 ms, 50 ms and 150 ms, 75 ms and 150 ms, or about 100 ms. Other ranges (e.g., between about 100 ns and 1 s) are possible depending on the desired measurement speed and accuracy.

[0055] The controller may be configured to receive height data from the TOF sensor. In some embodiments, the controller may be configured and programmed to receive height data from a TOF sensor within or functionally associated with each cell of the plurality of cells, preferably each bladder of each cell of the plurality of cells. For example, a plurality of cells (e.g., a subset of cells) may be configured such that each cell of the plurality of cells is associated with a TOF sensor associated with each of one or more bladders of the cells, and the controller may be configured and programmed to receive height data from each TOF sensor of at least some of the cells (e.g., all of the cells). Because each TOF sensor may require a time interval to determine the height of its corresponding bladder, the controller may be programmed to interrogate the TOF sensor and collect height data from the TOF sensor at a time interval (interrogation time) long enough to allow the TOF sensor to determine the height measurement with a desired degree of accuracy. For each TOF sensor to determine height data for its associated bladder within the range, an interrogation time at least as long as the sensor's determination time allows the interrogated TOF sensor sufficient time to complete a height measurement. Thus, this interrogation time can advantageously be longer than the time required for the TOF sensor to determine the height of each individual bladder. For example, in some embodiments, the interrogation time is at least 250 ms, at least 300 ms, or more, and in an exemplary embodiment, the interrogation time is 330 ms. In some embodiments, the interrogation time is 1 second or less, 800 ms or less, 600 ms or less, 400 ms or less, 330 ms or less, 300 ms or less, 250 ms or less, or less. In some embodiments, the interrogation time is at least 1 millisecond, at least 10 ms, at least 50 ms, at least 100 ms, at least 200 ms, at least 200 ms, at least 400 ms, at least 600 ms, at least 800 ms, at least 1 second, or more.Other ranges (e.g., approximately 250 ms to 500 ms) are possible depending on desired measurement accuracy, processor speed, power consumption, data storage capacity, desired data display refresh rate, etc. The selection of the query time may take into account non-limiting considerations such as desire for real-time data / adjustment, controller and / or processor performance, power consumption, among other considerations.

[0056] As noted above, according to some embodiments, the base of an individually controllable cell may include or be operatively associated with at least one valve in fluid communication with the bladder and configured to control fluid inflow and / or outflow (e.g., to admit compressed air to the bladder for inflation and expel air from the bladder for deflation). As will be understood by those skilled in the art, and as described above and in connection with FIGS. 5A and 5B, single or multiple valves may be used in parallel or in series. For example, the embodiment shown in FIG. 5A uses two proportional valves 209a and 209b per cell in parallel, with the first proportional valve 209a functioning as an inlet valve and the second proportional valve 209b functioning as an outlet valve. Alternatively, the embodiment of FIG. 5B uses a single proportional valve 209 in series with a solenoid directional control valve 512 that selectively places the proportional valve 209 in fluid communication with either the pressurized air source 525 or the exhaust 527.

[0057] Similarly, Figure 6 illustrates a cell embodiment configured with a proportional control valve 209 associated with cell 620 via a bottom portion of base 622. Proportional valve 209 is in series fluid communication with exhaust line 527 and a three-way selector valve 512, which is in fluid communication with a manifold 625 that supplies pressurized air to all of the cells, and is further in fluid communication with a manifold pressure sensor 627, a regulator 629, a pressure tank 525, and a compressor 630 that ultimately provides pressurized air to system 600. Base 622 includes pressure sensor 207 and height sensor 205. Based on signals from pressure sensor 207 and / or height sensor 205, manifold 625 can provide higher pressure to the cell, for example, via pressure tank 525, or can release fluid from the cell via exhaust 527 to reduce the pressure and / or cell bladder height to a controlled set point by appropriate controlled operation of valves 209 and 512. Valve 209 and valve 512, and indeed any of the other valves in any of the systems described and illustrated herein, may be independently controllable from one another in some embodiments. Valve 209 and / or valve 512 may include electronically controllable valves that are regulated, for example, automatically or semi-automatically, by a controller, such as controller 510 of Figures 5A and 5B.

[0058] While the various controllable and electronically actuable valves of the system can be any of a variety of known valve types, including, but not limited to, solenoid valves, which can be proportional or non-proportional, including, for example, sliding stem valves, rotary valves, pinch valves, diaphragm valves, etc., in some preferred embodiments, the control valves included as part of or operatively associated with the cells are piezoelectric valves. Such piezoelectric valves have certain advantages recognized by the inventors in the context of this disclosure that make them particularly attractive for use in certain embodiments of the support devices and systems described herein. For example, such valves can have fast response times, improved proportionality, low power consumption, low wear, low maintenance requirements, and long lifespans, and can be exceptionally quiet compared to traditional valve types used in similar applications, which can be particularly advantageous for use in hospitals or other clinical care or home use environments. As just one example of an advantage, using a typical commercially available non-piezo proportional valve can result in power surges in excess of 15 amps when opening and closing the valve. Piezoelectric valves can keep surges below 15 amps in a bed containing, for example, 500 cells / valve, making such beds usable for home healthcare and general residential power circuit load limits. As used herein, "piezoelectric" refers to an object (e.g., a valve component) that generates an electric charge in response to an applied mechanical force and undergoes the opposite, i.e., a mechanical deflection or deformation in response to and proportional to the voltage applied to the piezoelectric element (this is known as the "inverse piezoelectric effect" and is the operating principle of piezoelectric valves). Thus, the piezoelectric valves described herein can respond to a voltage applied to the piezoelectric element of the valve, causing the element to deflect proportionally within the valve body, allowing an inflow or outflow proportional to the applied voltage. In some embodiments, a controller operatively associated with each cell in a plurality of cells can be in electrical communication with the piezoelectric valve such that the controller sends a voltage signal to the piezoelectric valve to operate the valve to adjust the bladder height and / or pressure in response to a force applied to the bladder by a user to maintain or achieve a desired pressure and / or height setpoint for the particular cell.In this way, piezoelectric valves can advantageously provide a low-cost, low-noise, reliable and quiet solution suited to the degree of automation and response time desired for a particular embodiment of the support system.

[0059] The ability to independently control the bladder height and / or pressure of individual cells of support surfaces and devices according to certain embodiments allows, in certain embodiments, the ability to achieve functionality not possible with typical conventional devices for supporting medical patients and other users through automated control and / or programmed and user-customizable control algorithms. Further description of exemplary embodiments of such control and functionality is provided below. However, it should be understood that the described examples are only a few of the many ways in which the design features and control capabilities described in this disclosure may be utilized for the benefit of the patient or other user. An important feature of certain embodiments that may facilitate such functionality is that multiple cells (or in some cases all cells) of the support device may be configured such that one or more cells of the multiple cells may be controlled to have a different bladder height and / or different applied pressure / force against the user's body than any of their adjacent cells, and pressure and / or height control may be performed at the level of the individual cells (e.g., with resolution as fine as the level of the individual bladders of the cells, including a single bladder associated with a cell).

[0060] For example, FIG. 7 shows a plurality of bladders in cells 700, representing a subset of cells in one embodiment of a support device. As shown, each cell is associated with a single bladder such that each bladder can be controlled to have a different height than adjacent cells. For example, in a first state (top), the bladders in a first subset of cells 710 are at a different height than the bladders in a second subset of cells 720, providing an angled surface. Meanwhile, in the center panel, the bladders in all cells remain at the same height, while in the bottom panel, the relative bladder heights of cells 710 and 720 are reversed, providing a surface that the patient or user contacts at a different angle than the top panel. Such manipulation can be used, for example, to facilitate turning or repositioning a patient or to facilitate user entry and exit from a bed, seat, or other form of support device. Furthermore, such manipulation can be used to achieve “micro-repositioning,” the type used for patients whose condition is too fragile to withstand large repositioning adjustments.

[0061] In some embodiments, the plurality of cells are configured such that, for example, when at least a first set of the plurality of bladders is fully expanded, an operator of the system can manually depress at least one or a subset of the first set of bladders to a particular desired height / depression, initiate a height control setpoint in the controller (e.g., via a GUI), control the cells with the depressed bladders to the setpoint height, and maintain such height of the subset of bladders until such command is canceled by the operator. This can be advantageous, for example, when a portion of the user's body has, for example, a protrusion, a wound or ulcer, a burn, a surgical site, or a delicate skin graft that would be uncomfortable or undesirable to touch. Such functionality also allows for the ability to set and control a precise degree of depression in any desired area of ​​a surface, facilitating clearance for a medical device attached to the patient, placement and lifting of a toilet (e.g., see FIG. 10 ), and access to areas of the patient's body for injections, cleaning, etc., without having to remove the patient from the device or reposition the entire body. Of course, manual depression is one possible means for activating a height or pressure reduction set point, but as will be understood by those skilled in the art, certain embodiments may include other means, such as inputting the desired bladder height and / or pressure for the desired cell in a GUI or other user interface of the controller.

[0062] As another example, manually depressing the bladders of one or more cells to a particular height / depression can be used to create a custom surface. For example, FIG. 8A shows a bladder height and pressure GUI image in which the bladders of a subset 810 of cells have been manually depressed to create a custom depression in the surface. The depression can be useful, for example, to provide clearance for a healthcare provider to perform a procedure on a patient, such as a debridement or irrigation procedure, and / or to place a container to collect irrigation fluid applied to the user's body adjacent to one or more cells whose bladders have been depressed. FIG. 8B shows a photograph of a user positioned on the custom surface corresponding to the GUI image of FIG. 8A. Note that while in certain embodiments, the bladders of cells can be manually depressed to create an operator-defined set point, in some cases the bladders of cells can also or instead be depressed via operator input to a controller via the GUI or other means.

[0063] FIG. 9 shows a flowchart 900 of an exemplary control algorithm for a controller implementing the height / pressure control method described above, configured to provide manual depression of a cell's bladder to create a setpoint. The bladders of one or more cells of a plurality of cells can be depressed to a desired degree so that the bladders do not contact areas of the patient where contact is undesirable, while still maintaining patient support through the surrounding undepressed bladders. In step 910, the controller initializes the height control, e.g., at an operator prompt. In step 920, the control reads and displays the current bladder heights of all cells or selected groups / regions of cells. In step 930, a selected cell to receive local control is identified and selected by the operator, e.g., via a GUI or by touch activation. In step 940, the operator manually depresses the selected cell's bladder to a desired degree to create a control setpoint. Finally, in step 950, the controller maintains the target pressure of the cell with the depressed bladder at the level necessary to maintain the control set point until the command is canceled by the operator or another cancel trigger occurs (e.g., the timer stops if the operator sets a specific control time). In some embodiments, the controller can be used to depress bladders in cells or zones within the plurality of cells so that a user or external operator can provide clearance without having to make direct physical contact to depress the bladders. However, in other embodiments, as described above, a user or external operator can physically apply force to the bladder to be depressed so that the desired bladder can be manually depressed.

[0064] In some embodiments, a controller can be used to control the bladder height of each individual cell within the plurality of cells so that the bladder(s) an individual cell, or any subset of cells, is maintained at a lower height and / or lower pressure than the bladders of adjacent adjacent cells. That is, in some embodiments, a controller operatively associated with each of the cells within the plurality of cells can include a processor configured and programmed to: control the bladder height of a first set of bladders within the plurality of cells (the first set including at least one bladder configured to support a user's body) and control the height of a second set of bladders within the plurality of cells (the second set including at least one bladder) to maintain the height of the second set below the height of the first set to provide clearance between the bladders of the second set and the user's body. The clearance can be selected and set by a user (e.g., a patient) or other operator (e.g., a clinician), as described above. This clearance can provide relief, for example, to a protrusion, wound, ulcer, burn, or surgical site on the user's body. In some embodiments, the bladders of adjacent adjacent cells extend to their full support height so that the bladders of adjacent adjacent cells still support the user's body, while the gap is at least 1 mm away from the user's body so that they do not contact the user's body for the entire travel distance of the bladders or the minimum allowable height of the cell's bladders, as the case may be.

[0065] In some embodiments, the depressed bladder can provide clearance for an object. For example, in FIG. 10 , the cell 1010 of the bed device 1000 is maintained at a pressure and bladder height to support the patient's body, while the cell below the toilet bowl 1020 is controlled to a depressed (or possibly fully deflated) bladder height to accommodate the placement of the toilet bowl. The height difference (e.g., clearance) is created to provide space for the toilet bowl 1020. In certain embodiments, the cell below the toilet bowl 1020 can be operated to raise and lower the toilet bowl to further assist the toilet use process while avoiding leaks and the need to reposition the patient or cease supporting the patient's body with the cell 1010.

[0066] In some embodiments, each bladder of each cell may form part of the overall support surface of the device for the patient / user, and such overall support surface may have a topology that, in certain embodiments, may be measured, displayed (e.g., via a GUI), and controlled (e.g., display and control of the body support surface topology). In other words, in some embodiments, the body support surface topology of the multiple bladders of cells that make up the device may be collectively defined by the height and / or pressure of the top surfaces of each of the multiple bladders of cells that make up the support surface.

[0067] For example, FIG. 11A shows a representative portion 1100 of the top surface of a plurality 1100 of bladders in a cell 1115. Also shown is a controller GUI 1120 of a controller configured to display information about and control the cells. Pressure readings from each cell are displayed on this GUI display, while other views may display, for example, bladder height data for each cell. Cells of different bladder heights and / or pressures can then be mapped and displayed as appropriate, and respective set points can be entered by an operator. The controller may also provide a display on a user interface that can display information such as cell pressure and / or bladder height, and can also display tissue-interface pressure (TIP). In some embodiments, the controller (e.g., a processor within the controlled device) can be configured to maintain a maximum or minimum TIP that provides maximum therapeutic benefit to the patient / user.

[0068] As shown in FIGS. 11B-11C, various control algorithms and time-varying and automatic adjustments of cell pressure and / or bladder height can be programmed into the controller and, in certain embodiments, selectable for deployment by the operator (e.g., via a GUI). FIG. 11B illustrates, for example, a massage or time-varying pressure function that may benefit temporary, cyclical reductions in pressure, user comfort, or improved circulation. In condition #1, certain cells (light) are at a lower pressure and / or bladder height than other cells (dark). In condition #2, this pattern is reversed. The cycle reversal time can be fixed at a selected frequency / duration and / or variable in a predetermined or random pattern, depending on the user / operator's preference. In FIG. 11C, the central group of cells (light) are maintained at a lower pressure to provide a selected reduced TIP to certain areas of the patient / user's body, such as protruding or sensitive areas. Various additional modes may be programmed into and executed by the controller. In these modes, particular cells can be instructed to maintain particular pressures and / or bladder heights within particular regions or at particular times, and the pressure and / or bladder height can be adjusted to facilitate particular patient operations, safety, or emergency protocols. For example, with reference to Figure 12, various modes of operation can include an entry / exit mode in which cells are maintained at a pressure that provides a firm, relatively non-compliant surface; an auto-surface mode, which is a standard support mode for a user in which cell pressure is controlled to provide a desired TIP based on, for example, the user's weight; an easy transfer mode, which is an entry / exit mode except for certain short time intervals (e.g., 1 minute); a toilet assist mode, as described above in connection with Figure 10; a CPR mode in which all cells are commanded to quickly expand to their maximum allowable pressure and provide a firm, non-compliant surface that allows CPR to be safely applied to the user; and a custom surface mode programmable by the operator.

[0069] In one set of embodiments, the controller may implement custom and / or preset / predetermined modes configured to provide a specific degree of submersion or envelopment and / or a specific orientation and / or a specific posture and / or a specific relative movement of the user relative to the surface defined by the cells. In some embodiments, patient-independent calibration and setpoint determination may be used to provide strong submersion of the user's body while also minimizing pressure applied to specific parts of the user's body without the need to input detailed information about the user's size / weight or position. For example, the user's body may be positioned adjacent (e.g., directly adjacent) to and supported by bladders of multiple cells comprising the support surface, and the pressure of the bladders of the support cells may be reduced under the control of the controller to allow the user's body to move toward the base of the support cells to a limit, predetermined degree of submersion, setting a minimum bladder height / pressure setpoint. A setpoint or reference indentation is provided based on the minimum pressure applied to the support cells to avoid movement below this specific point. The system (e.g., the system's controller) can then use an algorithm to determine the pressure in the depressed cell and other cells of the surface to provide an additional uniform increase in minimum height according to the desired occupant subsidence, or to fix the bladder height / pressure setpoint and transform the baseline indentation to provide the occupant with a desired surface support topology and location-specific subsidence. In some embodiments, the desired subsidence / subsidence profile provides the ability to better minimize the pressure required to support the patient while maintaining a desired constant or location-specific bladder height determined by the controller by applying a mathematical transformation (e.g., in one embodiment, a simple pressure summation function if the goal is to create a uniform increase in minimum bladder height to provide a specific level of subsidence) to the pressure and / or bladder height readings taken at the baseline indentation. Advantageously, minimizing the applied pressure can reduce or eliminate the risk of occupant pressure injuries (e.g., pressure sores, pressure ulcers).

[0070] In some embodiments, a reference impression, referred to as form capture, can take the form of an impression made by a user's body and is determined by measuring the bladder height and / or pressure of multiple cells when the user's body is placed on a support surface and submerged to the point where the bladder of at least one cell reaches a minimum height / pressure set point. A user's form capture can be determined by reading and recording the bladder height and / or pressure at a specific time (e.g., after a specific set point or reference point is reached, e.g., when the bladder of at least one cell reaches a minimum height / pressure set point). For example, a user can be placed on a support surface, and the bladder height of the cells can be determined at one or more given set pressures of the cells supporting the user. In some embodiments, one or more individual bladder heights or a series of connected bladder heights of one or more cells supporting the user can then be used to define location-specific set points or establish location-specific references that collectively constitute the form capture. That is, form capture can be used to define a reference / initial point to which a mathematical transformation is applied. In some embodiments, the user can view the form capture via a display that receives information from a control system. The system may also include a processor, storage, and / or communication capabilities for recording and transmitting data related to form capture, mathematically transformed form capture, and the resulting surface topology and / or location-specific pressure distribution over the user's treatment period. In some embodiments, the controller (e.g., the controller's processor) may read and record bladder height and / or pressure using height and / or pressure sensors in a cell or set of cells or all cells of the device's support surface.

[0071] In some embodiments, the controller can be used to change the user's body position relative to form capture by uniformly adding or subtracting height increments (e.g., to / from the form capture height and / or any other desired reference point) for at least some (e.g., all) of the cells up to the maximum or minimum excursion of the cell's bladder. In some embodiments, the controller can increase or decrease the pressure within the cells until the desired bladder height for the cells is achieved, thereby adjusting the user's body position and changing the user's effective degree of submergence. The effective submergence is obtained by applying a mathematical transformation to the form capture height / pressure.

[0072] In some embodiments, the mathematical transformation is more complex than a uniform addition / subtraction function and may take the form of, for example, a linear function, a non-linear function, a trigonometric function, etc. In some embodiments, the mathematical transformation applies a trigonometric function to the form capture that adds or subtracts height increments to the bladder in a position-specific manner that maintains the partial contours of the user's recorded horizontal plane. In some such embodiments, application of an appropriate transformation can rotate the partial form capture position, thereby adjusting the user's posture and changing the user's effective angle along the vertical or cranio-caudal axis.

[0073] FIG. 13A illustrates the nomenclature used to describe specific planes relative to the user's body in the following discussion of FIGS. 13B-13D. In FIG. 13A, the plane that is coplanar with the plane of the user-contacting surfaces of the support cells when the bladders are fully expanded is referred to as the coronal plane. While there is essentially no translation or rotation about the coronal plane, the relative heights of the bladders of the various cells that make up the support surface, as described and illustrated elsewhere herein, produce a pressure / height topography in the coronal plane in response to translational and rotational adjustments made about their axes (as described below) in the other two planes. This can be displayed and / or recorded, for example, to verify compliance with a treatment / patient management protocol required for a particular patient / user specific indication. The horizontal plane traverses the user's body laterally, and the sagittal plane (i.e., craniocaudal plane) traverses the user's body longitudinally (i.e., head-to-toe). Adjusting a user's position that tends to rotate the body laterally (e.g., from back / stomach to side / side to back / stomach) requires rotation in the horizontal plane about an axis parallel to the sagittal (craniocaudal) plane (see Figures 13B and 13C). Adjusting head-to-toe position (e.g., elevating the head relative to the toes, or vice versa) requires rotation in the sagittal plane about an axis parallel to the horizontal plane (Figure 13D).

[0074] An exemplary depiction of such a control scheme is shown in Figures 13B-13D, which show plots of the relative position from the center point of the support surface to the edge of the support surface (x-axis) versus the cell's bladder height (y-axis) as measured by a height sensor within or associated with the cell, for a given horizontal or sagittal cross-section (see Figure 13E).

[0075] 13B is a plot of bladder heights for rows of cells of the support surface in cross sections taken in a horizontal plane, defining a partial horizontal profile of a user in a particular posture along the craniocaudal axis. The control system can measure and record bladder heights and pressures for multiple such horizontal planes along the craniocaudal axis to depict a form capture to "wrap" the user. For example, partial profiles of the user can be captured in other horizontal cross sections along axes parallel to the sagittal plane, and other cell heights / pressures can be measured and recorded to construct an overall topographic map of the surface relative to the coronal plane (i.e., a representation of the user's body profile is generated for every displayed bladder height representation of the cells).

[0076] FIGS. 13B-13D also illustrate the application of a mathematical transformation using (at least in part) trigonometric functions to add or subtract height increments based on the cell's bladders' positions to maintain the partial contours in the horizontal ( FIGS. 13B and 13C ) or sagittal ( FIG. 13D ) planes recorded by the user's controller during the posture adjustment determined by the mathematical transformation. In some such embodiments, the partial contours can be rotated, thereby adjusting the user's posture and changing the user's effective angle. For example, referring to FIGS. 13B and 13C , mathematical transformations are shown that result in maintaining a similar relative lateral subsidence profile and lateral pressure distribution while rotating the user counterclockwise from an initial supine sleeping position (line 1) toward a more side-sleeping position (lines 2 and 3). FIG. 14 below and the associated discussion describe one control scheme for making such adjustments using a mathematical transformation of initial bladder height-pressure-posture data.

[0077] FIG. 13C shows a situation in which a user is initially positioned with their weight distributed relatively evenly in a horizontal plane around the centerline of the support surface, which is an axis of rotation parallel to the sagittal plane (trace 1). The operator then selects (e.g., via a GUI) an operation to rotate the user to the left (e.g., by approximately 25 degrees). Following a programmed algorithm using mathematical transformations (see, e.g., FIG. 14 and the associated discussion below), the control system determines, for each row of cells along the sagittal axis (defining the horizontal plane), the height of each cell bladder (using one or more mathematical functions, such as additive functions, trigonometric functions, etc., or combinations of such functions) that produces the desired rotation while maintaining, to the extent possible, the same distribution of support relative to the user's body (see the discussion of FIG. 13B below). In the example shown in FIG. 13C, the resulting cell bladder height versus position trace after the calculations and adjustments are completed is shown as trace 2.

[0078] In certain cases, the desired operation may result in certain cells having bladder heights that exceed a controlled or safe setpoint (e.g., zero or negative heights or heights that exceed the maximum expansion height of the bladder) after application of the mathematical transformation. In certain embodiments, the control system may be programmed to recognize when such a condition occurs and apply an additive or subtractive correction to any cells whose converted bladder height falls outside the operating range to prevent travel limits from being exceeded. For example, the algorithm of FIG. 14 includes such a correction in step 1428 (showing a minimum height check / adjustment, but which could just as easily be applied to a maximum height deviation). However, if the adjusted height / pressure calculated by the transformation exceeds a maximum limit, it may be advantageous to program the controller to flag such a condition in step 22 of FIG. 14 and utilize a correction process (e.g., by subtracting the height enough to prevent overexpansion and possible damage to the involved bladder) prior to pressurization in step 24. Figure 13 shows a similar operation to that shown in Figure 13C, except that the operator-selected adjustment results in a series of transformed bladder heights that place the user's left side at "lowest" (trace 2 - see zero and negative values), requiring a bladder height (trace 3) that supports the right side above the maximum operating height (225 mm). In this situation, the control system has superimposed additive (left) and subtractive (right) transformations that result in trace 2, achieving the desired degree of operation possible within the bladder's design travel limits.

[0079] 13D shows a similar operational transformation to adjust a user's posture in the sagittal plane by rotation about a rotation axis parallel to the horizontal plane (the horizontal axis). In this case, the user is manipulated to angle the head higher and feet lower than the user's original posture position, otherwise maintaining a similar overall distribution of support pressure. In general, it is also possible to combine manipulations about both the horizontal and sagittal axes simultaneously, allowing the control system to accommodate complex movements and rotations about rotation axes that are not strictly parallel to either the horizontal or sagittal plane.

[0080] Thus, the control system can be programmed to implement "hands-free" repositioning and / or rotation of the user's body, useful as part of a care plan to offload various body segments to promote good tissue health and / or blood perfusion. The rotations of different sections need not be the same. For example, in certain embodiments, a manipulation may rotate the upper torso more than the lower extremities. These and similar manipulations may be applied to the original coronal height / depth control setpoints for purposes other than offloading, such as providing better comfort by accommodating patient positioning preferences. Generally, a target bladder height may be calculated from the "original" measured bladder height, and a corresponding pressure applied to the cell to achieve a "transformed" bladder height to provide a more uniform or other desired sinking profile, patient-specific offloading, patient movement / repositioning, etc.

[0081] In some cases, the mathematical transformation may be applied uniformly or to a selected plane to adjust the user's position in any desired plane or around a selected axis of rotation. The mathematical transformation may be applied across the length or width of the patient, or may be applied only to a cross-section of the surface. The cross-section may be defined horizontally or perpendicular to the surface, or a combination thereof.

[0082] FIG. 14 shows a flowchart 1400 of an exemplary control algorithm executed by a controller that implements the above-described subsidence control strategy using form capture mathematical transformations. In step 1410, the controller initializes, e.g., at an operator prompt. In step 1412, the operator selects end-state parameters, e.g., the user's desired subsidence level and / or final posture and / or cell-specific bladder height-pressure topography surface map. In step 1414, the controller reduces the surface pressure, e.g., to near zero. In step 1416, the user (e.g., patient) reaches a predetermined subsidence state (e.g., minimum operating pressure or reference point or maximum operating pressure or reference point). In step 1418, the controller measures and stores the bladder heights of at least some of the cells (e.g., all cells). In step 1420, the controller performs mathematical transformations on the measured bladder heights and / or pressures, e.g., as described above in connection with FIGS. 13B-13E. In step 1422, the controller stores the converted bladder height and / or pressure and generates a new set of bladder heights and / or pressures based on the mathematical transformation. In step 1424, the controller increases (or decreases, as appropriate) the pressure of the cell to elevate (or lower, as appropriate) the patient to achieve the converted bladder height / pressure setpoint of the cell. In certain embodiments, additional adjustment and optimization steps 1426-1432 may be performed. In step 1426, the controller may verify that the user is at or above the minimum set height (e.g., selected in step 1414); if not, step 1424 may be repeated. If the minimum height measured in step 1426 exceeds the minimum set height (e.g., by a set or user-defined amount), in step 1428, the pressure may be decreased, for example, to a preset pressure, to achieve the converted height / pressure setpoint. In step 1430, the user's comfort may be accessed, for example, by querying the user via a GUI and / or determining based on changes in the user's posture indicating discomfort (e.g., determined by user or operator input).If discomfort or pain is indicated, then in step 1432 the current height / pressure mathematical transformation may optionally be recalibrated / redetermined by returning to step 1410, or a new height / pressure mathematical transformation may be applied.

[0083] In some embodiments, a controller in electronic communication with and operatively associated with each or all of the cells in the plurality of cells of a support device may include a processor configured and programmed to measure, record, display, and / or control the body support surface topology formed by the top surfaces of the bladders of the plurality of cells. For example, FIG. 15 schematically illustrates a GUI 1500 of a controller configured and programmed to display three different views of a color-coded pressure and height map of the overall support surface representing the body support topology. Cell 1510A and cell 1510B may be at different heights and pressures and are shown in the top display with different heights and colors that may represent pressure levels or sinking depths. The bottom left display shows data converted into a pressure map displaying the distribution of TIP applied to the user's body, and the bottom right display is a topographical mapping of sinking depths. The processor may also be programmed to store and / or transmit such data for a particular patient in real time, facilitating medical record-keeping and compliance with standards of care. The top portions of the bladders of the cells of the support device may collectively define a surface topology. That is, in some embodiments, the body support surface topology of a plurality of cells is collectively defined by the height of the top surface of the bladder of each of the plurality of cells. In certain embodiments, the body support surface topology can be used to monitor, for example, the overall representative spatial distribution of tissue interface pressure and TIP and the depth of body immersion into the support surface.

[0084] The bladders of the cells of the support device can have a variety of sizes. For example, in some embodiments, the bladders have cross-sectional diameters of at least 25 mm, 50 mm, or about 100 mm or more. In one particular embodiment, the bladders have a cross-sectional diameter of 65 mm. In some embodiments, the bladders have a maximum height of at least 5 cm, 10 cm, 20 cm, 30 cm, and in some cases, about 50 cm or more. The bladders can also have a conical or tapered shape, for example, as shown in FIG. 2C. The bladder dimensions described above and in more detail below are generally, but particularly, suitable for support cell embodiments using rolling diaphragms. For other embodiments using expandable bladder supports not in the form of rolling diaphragms, or for support device embodiments that may include rolling diaphragm cells but also include regions or portions with non-rolling air chambers, such non-rolling air chambers or diaphragms may typically be larger than rolling diaphragm bladders, e.g., 120 cm x 20 cm x 15 cm in an exemplary embodiment.

[0085] Referring again to FIGS. 2A-2D , in one embodiment, the bladders 210 may have a cross-sectional width 202 of approximately 50 mm, such that the 800 bladders in the 20x40 bladder array have a surface area of ​​approximately 40 inches wide and 80 inches long, similar to a conventional mattress. Other bladder sizes are possible, and different sized bladders may be arranged in the same array. In the attachment system, the bladders 210 may be formed so that the cross-sectional width 203 at their opening tapers smaller than the width 202 of the main portion of the bladder and may have a collar region 207 with a rim 201 a for attachment to a post 219 in the base 220. The support device may include one or more sections, and each section may include multiple bladders where the bladder material and / or size and / or shape vary from one section to a second, different section. In some embodiments, each of the multiple cells may include a post 219 configured and sized to support and form a seal with the collar region of the bladder. The post may include a lumen 225 that is in fluid communication with its corresponding bladder. The post and base may generally be made of any suitable structural material, such as aluminum, plastic, metal (other than aluminum), ceramic, wood, and combinations thereof.

[0086] Each of the base's multiple posts may include a recessed area 201b for forming a pressure-tight seal (e.g., with an O-ring, such as O-ring 201 in FIG. 2A). The recessed area 201b may also be shaped and configured to initiate the rolling of the rolling diaphragm portion 230 of its corresponding bladder. The recessed area 201b may be one or more notches such that the rolling diaphragm portion of its corresponding bladder can rest within the one or more notches and be secured to the recessed area 201b, for example, via an O-ring.

[0087] In certain embodiments, the diameter 202 of the bladder 210 can range from about 1 cm to about 15 cm, e.g., about 6 cm. In certain embodiments, the wall thickness of the bladder 210 can range from about 250 microns to about 2 mm, depending on the construction material and the expected pressures and loads. The bladder wall thickness and material can be selected to prevent or inhibit the bladder 210 from buckling, collapsing, spontaneously expanding and bursting, and / or rolling at low pressures. In some embodiments, the functional length of the bladder 210 can range from about 5 cm to 50 cm, e.g., about 15 cm. The burst pressure of the bladder 210 can be greater than about 80 mmHg, e.g., greater than about 300 mmHg. The operating strain of the bladder 210 at the rolling diaphragm portion 211 can range from about 5% to 100%, e.g., about 30%.

[0088] For example, if the bladder 210 includes a taper 212 configured to limit, e.g., reduce or eliminate, interference between the rolled and non-rolled portions of the bladder 210, the bladder 210 may include a conical shape, e.g., as shown in FIG. 2C , where the cone widens upward. In some embodiments, the diameter 202 of the upper portion of the bladder 210 may be larger than the diameter of the lower portion of the bladder 210 to create a taper in the range of approximately 0.2 degrees to 5.0 degrees, e.g., approximately 1.0 degrees. The bladder 210 may include various cross-sectional shapes, including, but not limited to, circular, oval, square, rectangular, trapezoidal, polygonal, and combinations thereof. For example, the size, shape, and material of the bladder 210 may vary from section to section and / or from cell to cell to create individual regions, zones, or for containment of bladders in other zones, e.g., to change the performance characteristics of the support device, or to reduce or increase the number of bladders per unit area. Bladder 210 may be attached to post 219 via one or more O-rings (such as O-ring 201) that surround bladder 210 at rim portion 201a and rest in notch 201b of post 219. In certain embodiments, bladder 210 can roll between a nearly fully expanded height and at least half of the total length of the expanded bladder during a normal support mode of operation (as described above) for control at a reduced height, such as for toilet bowl placement. In some embodiments, the total length of bladder 210 may include additional extra length (e.g., 1 cm to 3 cm) to reduce tension on bladder 210 when bladder 210 moves its maximum distance, i.e., when fully compressed.

[0089] As described above and elsewhere herein, each cell of the plurality of cells can include a bladder (i.e., at least one bladder). The bladder is configured to contain and be expandable by a compressible fluid, such as air. The bladder can be configured to be attached to a support base and form a pressure-tight seal therewith, and can be configured to form a rolling diaphragm portion such that the rolling diaphragm portion can roll along the base and reduce the volume and height of the bladder when a force is applied to the bladder. The bladder can roll through a range of motion. For example, the bladder can have a maximum expandable volume, and the height of the bladder measured above the top of the support base can define its maximum range of motion, while the height when the bladder is fully deflated can define its minimum range of motion. In some embodiments, the bladder has the maximum range of motion described immediately above while also having a second range of motion within the maximum range of motion when operating in a user body support mode (as opposed to a deflated or depressed clearance mode). In some embodiments, the height sensor is configured to measure the height of the bladder over most of its range of motion, and in some cases over most or all of its range of motion.

[0090] In some embodiments, the width or diameter of the bladder can remain substantially constant while rolling along the base. Thus, in some embodiments, the bladder has a width of at least about 1 cm to about 15 cm, e.g., about 6 cm. In certain embodiments, the bladder has a width of 65 mm. In some embodiments, the bladder has a width or diameter of 15 cm or less, 12 cm or less, 10 cm or less, 8 cm or less, 7 cm or less, 6 cm or less, 5 cm or less, 4 cm or less, 3 cm or less, or 2 cm or less. In some embodiments, the width or diameter of the bladder is at least 1 cm, at least 2 cm, at least 3 cm, at least 4 cm, at least 5 cm, at least 6 cm, at least 7 cm, at least 8 cm, at least 10 cm, or at least 12 cm. Combinations of the above referenced ranges are also possible (e.g., at least 4 cm and no more than 8 cm). Other ranges are also possible.

[0091] The bladders can be formed from a variety of deformable materials. For example, the bladders can be made from a variety of flexible, substantially fluid-impermeable materials, including, but not limited to, rubber and various polymeric materials (e.g., plastic materials). One or more of the multiple bladders can also include a lubricious material coating or a lubricious material incorporated into the bladder material to reduce rolling friction. In some embodiments, a portion or the entire inner and / or outer surface of the bladder can include such a coating. For example, the inner and / or outer surfaces of the bladders may include a PTFE (polytetrafluoroethylene) coating to prevent the bladders from sticking upon deflation and re-expansion. Other non-limiting examples of bladder coatings include other, non-PTFE, fluoropolymers, silicone polymers, sol-gels, oils and greases, certain ceramic coatings, and the like.

[0092] One or more of the multiple bladders may comprise a material selected from the group consisting of rubber, plastic, non-latex elastomers such as neoprene or urethane, polyethylene film, polypropylene blends, silicone, urethane laminates, latex laminates, and combinations thereof. In some embodiments, the bladder comprises a fabric coated with or molded to an elastomer. In such embodiments, the elastomer may be natural rubber or a synthetic compound and may have a hardness, as measured by a durometer, of, for example, about Shore 30-90D. The fabric may be cotton, polyester (e.g., polyethylene, KEVLAR®). In certain embodiments, the bladder is made from an elastomer such as neoprene with a cotton-padded fabric. In some embodiments, the bladder is made from latex, synthetic rubber, and / or block copolymers. Other bladder materials are also possible.

[0093] The following describes one example of a bladder suitable for at least certain embodiments of the support cells and devices described and associated performance data. This exemplary embodiment is illustrative of rolling diaphragm configurations and materials useful in certain embodiments, but does not exemplify the full range of bladders that may be suitable for practicing the present disclosure. The following exemplary embodiment demonstrates that bladders (e.g., cell bladders) can be made by from a variety of elastomeric materials using blow molding or dipping processes.

[0094] It is recognized and understood within the context of the present disclosure that cell performance can be improved if rolling friction is reduced or minimized. In some embodiments, the bladder material can be selected to reduce rolling friction of the cell (e.g., between the bladder and the base, relative to adjacent bladders of the cell or to the bladders of adjacent cells, etc.). For example, in FIG. 16, a bladder of a cell such as cell 200 shown in FIG. 2D made of latex formed by a dipping process is compared with a synthetic rubber bladder formed by a dipping process and a blow-molded polyolefin bladder. Although the diaphragms used to generate the data in FIG. 16 have slightly different geometries, the ability of each diaphragm to maintain reasonably constant contact pressure over nearly the entire range of displacement demonstrates that diaphragms made from a variety of materials, e.g., latex rubber, synthetic rubber, and polyolefin, using different manufacturing techniques (e.g., dip molding and blow molding), can achieve the desired functional characteristics of certain embodiments of the disclosed support cells and devices.

[0095] For example, synthetic rubber immersion cells have been found to advantageously exhibit very low resistance to rolling friction, resulting in more similar contact pressures during loading and unloading, minimizing the initial peak typically observed as rolling begins. Figure 17 shows a pressure map for a patient lying on a multi-cell support surface with cells having bladders containing immersion-molded rolling diaphragms made of synthetic rubber.

[0096] It can be concluded that there are many satisfactory material and geometric options available to optimize the performance and economic value of the support surfaces described herein. Ultimately, the selection of the material, manufacturing method, and / or geometry and other design parameters of the ideal surface will depend on the particular application under consideration and the associated clinical needs, functional requirements, and cost and durability goals.

[0097] The bladder can be of a particular thickness, which will depend on the strength, modulus, and / or flexural modulus, and / or burst resistance of the material from which the bladder is made, as will be understood by those skilled in the art. As will be understood, the thickness of the bladder should be selected to be able to withstand the expansion pressure and forces applied during operation while allowing sufficient deformability for smooth operation and user comfort. The thickness of the bladder refers to the thickness of the wall forming the bladder itself. As noted above, in some embodiments, the bladder thickness is at least 250 microns, at least 500 microns, at least 1 mm, at least 1.2 mm, or at least 2 mm. In some embodiments, the bladder thickness is 2 mm or less, 1.2 mm or less, 1 mm or less, 500 microns or less, or 250 microns or less. Combinations of the above referenced ranges are also possible (e.g., at least 250 microns and 1 mm or less). Other ranges are also possible.

[0098] As mentioned, the support base and the cell's bladder can be attached to one another to form a seal. Preferably, the attachment and bladder and support base design result in the formation of a rolling diaphragm. The base can form a fluid-tight seal with the bladder so that fluid (e.g., compressible fluid) does not excessively leak through the seal. The seal may be formed in a variety of conventional ways, including through the use of O-rings, adhesives, stretching the bladder base opening to cover a larger diameter post in the support base, compression collars, etc., as described above, or any combination of the foregoing. As described above and elsewhere herein, in embodiments including a rolling diaphragm design, the rolling diaphragm (e.g., rolling diaphragm portion) is configured to roll along the base when the volume and height of the bladder decrease when a force is applied to the bladder, for example, a force from the user's body or an external operator that creates a height control setpoint as described above.

[0099] While some preferred embodiments utilize rolling diaphragms and provide certain advantages as described herein, other embodiments may utilize expandable bladders that can be oriented vertically or horizontally within the support device and that are not rolling diaphragm-type, and in some cases do not include support bases associated with individual bladders or small groups of bladders as described elsewhere herein, or a combination of rolling and non-rolling bladder types may be used within a single support device, with rolling diaphragm cells used in areas where greater TPI control is desired and non-rolling bladders used in less critical areas, such as the periphery of the support. That is, in some embodiments, a support device may lack a rolling diaphragm configuration and still benefit from the other components and features of the present disclosure. One skilled in the art will be able to construct cell and other bladder configurations and combine these configurations with any of the inventive components described herein.

[0100] In some embodiments, the bladder may be designed and / or used in combination with a surface cover to promote ventilation, e.g., to assist in temperature control of the support device or the surface in contact with the user. In certain cases, instead of making the diaphragm entirely from a gas-impermeable material, all or a portion (e.g., the top surface) may be gas-permeable, allowing air used to inflate the bladder to exit the bladder in such areas to provide ventilation. In another embodiment, such as that shown in FIG. 18 , a fluid-tight bladder 210 is used, but the top 211 of the bladder is fitted with an air-porous spacer 1805, which may be made of, for example, an open-cell foam material, to promote airflow 1820 between the top 211 of the bladder 210 and a surface cover 1825 that contacts the user's body. In some such embodiments, a fan and air distribution system may be included within the support device to circulate air within the space surrounding the cells and bladder and between the bladder and the support cover. In certain embodiments, a friction control element 1830, e.g., a sheet-like material formed of a low-friction plastic such as PTFE, may be placed between the porous spacer and the bottom of the face cover to reduce wear and improve performance. Airflow that may pass near the top portion of the bladder may be useful for reducing the temperature of the face cover through convective cooling.

[0101] In some embodiments, such as those shown in FIGS. 19A-19E, a ventilation system configured to provide ventilation to spaces surrounding and between the multi-cell bladders may be provided to provide (for example) cooling and / or humidity control to a surface supporting a user via a support system. In some embodiments, the ventilation system may be associated with and / or provide ventilation to one or more cells and associated bladders (e.g., all or a selected set of the cells) of the support system. In preferred embodiments, and advantageously, the ventilation system may be separate from the system used to supply the fluid contained within the bladder, such that ventilation fluid (typically air) can be supplied as needed or required independently of the supply used to expand the bladder. This is in contrast to conventional bladder support surfaces that provide ventilation above or around the bladder through the use of permeable / leaky bladders. In embodiments in which the ventilation system circulates air or other fluid independently from the fluid used to inflate the bladder, the system can be programmed and controlled to provide ventilation to all or a portion of the support system and / or the user in a manner that does not affect the operation and control of bladder pressure / height maintenance. In some such embodiments, the ventilation system may advantageously have one or more dedicated blowers or pumps to provide air (or other fluid) for ventilation, while the compressible fluid provided to the cell (i.e., the cell's bladder) is provided by a separate pump or supply. In contrast, certain existing ventilation support systems that use the same pump / supply to provide bladder pressure and ventilation can create unnecessary disturbances for the user (e.g., noise, degree of ventilation, pressure / height response accuracy, or time lag) when ventilation is desired but pressure increase / decrease is not, or vice versa. It has been found that by separating the control of the fluid used to provide ventilation from bladder pressurization in the support systems and methods described herein, these unnecessary disturbances can be avoided and improved ventilation performance can be provided.

[0102] A wide variety of suitable gas movement and guidance components can be used to create a ventilation system for providing ventilation to the support device (and to a user residing on or adjacent to the support system in embodiments where the cover separating the user-facing bladder surfaces from the user on whom the user is positioned is gas permeable, allowing air or other gases provided in the space between the bladders to exit through the cover to ventilate the area below / around the user). For example, the ventilation system may be or include one or more fans, ducts, valves / baffles, and / or pumps, or any other components suitable for providing a flow of air (or any suitable fluid) to the device or support system. In some embodiments, the ventilation system may also include heating and / or cooling components to adjust the temperature of the air (or other suitable fluid) within the support system as desired. Also advantageously, in certain embodiments, a control system used to control operation of a support surface as described herein (or a separate control system dedicated solely to the ventilation system) may include a processor configured and programmed to respond to user or operator input (e.g., via use of a GUI or other controller / user interface) to control the ventilation system to selectively supply air or other fluid to multiple distinct regions of the ventilation space surrounding the bladder of the cells of the support device (e.g., by use of controllable baffles, septa, and / or gas flow control valves positioned to selectively supply and direct air / fluid to specific regions of / adjacent to the support surface. In certain embodiments, temperature and / or humidity sensors may be provided in one, some, or all of the ventilation regions of the support device / surface. In such embodiments, the ventilation system controller may be configured and programmed to control one or more of the flow rate, flow direction, flow distribution, and / or air / fluid temperature to maintain a desired set of conditions within the device (e.g., temperature / humidity in the region adjacent to the patient / user).In certain such embodiments, the controller may be configured and programmed to control such parameters based on one or more of: set point adjustments by a user or operator (e.g., made via a GUI); measured temperatures of distinct regions of the ventilated space and / or portions of the support surface adjacent to such regions; and / or measured humidity of distinct regions of the ventilated space and / or portions of the support surface adjacent to such regions.

[0103] 19A-19E show examples of support devices including a ventilation system. FIG. 19A is a cartoon schematic of the basic configuration. System 1900 includes a cell / bladder 1920 and a vent space 1910 surrounding the bladder. System 1900 also includes one or more ducts 1930 connected to one or more fans 1940. Fans 1940 are configured to provide airflow through ducts 1930 to vent space 1910. Airflow 1942 is shown providing ventilation to space 1910 surrounding bladder 1920.

[0104] 19B-19E show an exemplary ventilation schematic of one embodiment of an actual support device 1901. FIG. 19B shows a top-down view of the portion of the support device 1901 near the feet, with the bladders / cells normally present in the ventilation space removed for clarity. The ventilation system includes a blower manifold 1945 with two air fans / blowers (not shown, see FIG. 19E) inside. GUI mounting bracket 1949 during normal operation typically includes a GUI attached thereto (see FIGS. 19C and 19E), although the GUIs have been removed in this view for clarity. As noted above, setpoint control of the blowers can be under the control of a control system including such GUIs. Each blower includes a manual control arrangement including an on-off and / or flow direction switch 1946 and a fan speed control dial 1947. The blower manifold 1945 is in fluid communication via flexible hoses 1930 with two distribution ducts 1935 located along each side of the vent space. Each distribution duct 1935 contains multiple fluid flow ports / holes 1960 located along its length. Also visible are rubber bumpers 1950 which prevent damage to the bed from contact with surrounding objects when the bed is moved.

[0105] 19C is a side view of the complete support device (other than the ground-contacting support portion) with the bladders / cells normally present in the ventilation space removed for clarity (except for one reference numeral 1920). The device 1901 includes an upper body support portion that can be controllably angled relative to the lower body portion of the support device. To facilitate relative angular movement of the upper body support portion, a second pair of distribution ducts 1935' fluidly connected to the lower body portion distribution ducts 1935 via a pair of flexible hoses 1931' are included to provide ventilation to the upper body support portion. As shown, a GUI 1970 is shown mounted to a GUI mounting bracket 1949.

[0106] 19D shows a partial cross-sectional view of support device 1901 with the bladders / cells normally present in the vent space removed for clarity, except for five 1920. This side view more clearly shows the distribution of fluid flow ports / holes 1960 located along the length of distribution duct 1935. As noted above, there will typically be a cover or sheet over or adjacent to the bladders 1920 on the support surface (not shown) that the user contacts, and the fluid flow ports / holes 1960 can, in certain embodiments, provide ventilation or airflow to the user through the sheet or cover in selected, controllable positions.

[0107] 19E is a perspective view of the footrest area of ​​device 1901. In this view, GUI 1970 is shown attached to GUI mounting bracket 1949, with blower manifold 1945 made transparent to show the placement of blower 1953 in power and data communication with the power supply and control system via electrical connector 1951, as shown.

[0108] As described herein, "fluid" is given its ordinary meaning to refer to a substance, such as a gas or liquid, that does not have a fixed shape and that readily yields to external pressure. In some embodiments, a fluid includes an incompressible fluid. "Incompressible fluid" is given its ordinary meaning in the art to refer to a fluid whose density does not change substantially when pressure changes. In contrast, a compressible fluid is a fluid that can undergo significant density changes during its flow. In some embodiments, the fluid is compressible. In some embodiments, the fluid includes air. However, other fluids are possible. Non-limiting examples of fluids include oxygen gas, CO2, and inert gases such as nitrogen and argon. In some embodiments, the fluid (e.g., compressible fluid) may be temperature controlled. In some embodiments, the humidity (i.e., the amount of water or water vapor) of the fluid may be controlled.

[0109] Each cell of the plurality of cells can include a base that serves to provide mechanical support to the bladder and / or the cell. In addition to providing support, the base can include, and be operatively associated with, at least one valve in fluid communication with the bladder, the pressure sensor, and the at least one height sensor.

[0110] The base of the cell can provide rigidity to the cell and therefore can comprise materials such as plastic, metal, and wood, hi some embodiments, the base comprises acrylonitrile butadiene styrene (ABS), polycarbonate, polyvinyl chloride (PVC), and / or styrene.

[0111] Various pressure measurement devices, such as manometers and pressure sensors, may be suitable for use with the disclosed cells and devices. As described, in preferred embodiments, the pressure measurement device is configured and arranged to measure the pressure of fluid within the bladders of one or more cells of the device and / or the gas supply or gas distribution manifold of the system. In preferred embodiments as described, the support device includes multiple cells, or all of the cells include or are operatively associated with separate pressure sensors for independently measuring and / or controlling the pressure within the bladders of each such cell. The pressure sensors may be operatively associated with a controller. The controller may provide a user or external operator with pressure readings, such as a map of tissue interface pressures for each of the multiple cells, and may use the measured pressures to operate valves to increase or decrease the pressure within the bladders to desired levels, preferably in real time. By providing such measurements, displays, and controls, the TIP may be maintained by the controller at or below a specific threshold predetermined for the safety and comfort of the user or patient, and may be automatically and / or manually adjusted by the user or external operator.

[0112] In some embodiments, an electronic pressure sensor is configured to calibrate the measured bladder pressure to the pressure of the surrounding environment. Figures 20A-20B show a flow chart illustrating a control algorithm for cell calibration and pressure control.

[0113] For example, FIG. 20A illustrates a calibration and control process performed by a controller that can adjust and control only the pressure setting. In step 2010, the controller and system are powered up and / or initialized. In step 2020, the pressure sensors are calibrated relative to the surrounding ambient pressure. In step 2030, a target pressure for each controlled cell is set, for example, according to automatic operating mode conditions and / or user / operator input. In step 2040, the pressure of the air in the bladder is measured and compared to the target pressure. In step 2050, the calculated error is compared to previous determinations, and an adjusted error 2060 is determined using an appropriate mathematical algorithm, such as by applying an algorithm that accounts for proportional, integral, and derivative terms (a PID controller). Based on the adjusted error, the controller adjusts the state of the valve to incrementally decrease or increase the pressure in the bladder until the control setpoint is reached within the desired degree of accuracy.

[0114] 20B shows a similar control scheme for the system and control program in which the cell is also controlled to a height set point, with the additional steps 2065 and 2075 included to compare the measured bladder height or depth to the set point and adjust the valve state and pressure accordingly.

[0115] In some embodiments, the pressure sensor may be a piezoresistive pressure sensor. The term "piezoresistive" describes an object (e.g., the measuring element of a pressure sensor) whose electrical resistance changes when mechanical strain is applied. The piezoresistive valve can provide a digital output for reading pressure over a specified full pressure and temperature range. In some embodiments, the piezoresistive pressure sensor can be calibrated to ambient pressure to provide an accurate pressure reading. Examples of piezoresistive pressure sensors suitable for use in some embodiments are those selected from the Honeywell © Microprocessor MPR Series, etc. In some embodiments, the piezoelectric valve includes commercially available proportional, two-way, or three-way piezoelectric valves.

[0116] In some embodiments, the pressure sensor (e.g., a piezoresistive pressure sensor) can determine gauge pressures over a range of expected operating pressures for the support device. For example, in some embodiments, the pressure sensor can determine gauge pressures of at least 5 mbar, 6 mbar, at least 8 mbar, at least 10 mbar, at least 20 mbar, at least 30 mbar, at least 40 mbar, at least 50 mbar, at least 60 mbar, at least 70 mbar, at least 80 mbar, at least 90 mbar, at least 100 mbar, at least 200 mbar, or at least 500 mbar. In some embodiments, the pressure sensor can determine pressures as low as 1 mbar or less, 5 mbar or less, or 10 mbar or less.

[0117] The operating pressure can be configured for a particular mode. In some embodiments, the operating pressure (bladder expansion gauge pressure) in the float mode can be approximately 5 mbar to 50 mbar. Generally, the operating pressure can be selected to provide sufficient pressure to support a patient of a given weight, and thus the operating pressure in the float mode will vary depending on the patient's weight, position, etc. Generally, the average contact support pressure for a given patient can be determined as (patient weight) divided by (contact area between the body and the support cell surface); for example, for a 200 lb. patient with a 600 square inch contact area, the average float pressure is 0.333 psig, or 17.2 mmHg or 22.9 mbar. In some embodiments, the operating pressure in the float mode can be approximately 10 mmHg (13.3 mbar) to approximately 32 mmHg (42.7 mbar). In some embodiments, the operating pressure in the safety bed mode can be approximately 26 mmHg (34.7 mbar). In some embodiments, the transition mode operating pressure can be between about 66 mbar and 140 mbar (50 mmHg and about 100 mmHg). A gauge pressure of 50 mbar to 500 mbar results in a more elevated support mode, such as the CPR mode or entry-exit assistance described above. Other operating pressure ranges are possible.

[0118] The pressure sensor (e.g., a piezoresistive pressure sensor) should be able to operate accurately at temperatures expected for use in the support device. For example, in some embodiments, the pressure sensor is suitable for measuring pressure at temperatures of at least 0°C, at least 5°C, at least 10°C, at least 15°C, at least 20°C, at least 25°C, at least 30°C, at least 40°C, or at least 50°C. In some embodiments, the pressure sensor is suitable for measuring pressure at temperatures below 50°C, below 40°C, below 30°C, below 25°C, below 20°C, below 15°C, or below 10°C. Combinations of the above reference ranges are also possible (e.g., 0°C to 40°C). Other ranges are also possible.

[0119] The pressure sensors (e.g., piezoresistive pressure sensors) described herein can provide pressure within a high degree of accuracy (i.e., a low degree of error). For example, in some embodiments, the error in the measured pressure is within + / -10.00%, + / -5.00%, + / -2.00%, + / -1.00%, or + / -0.50%.

[0120] As noted above, in certain embodiments, each cell of the support device, or at least a plurality of cells of the support device, may include a height sensor, preferably a separate height sensor, for measuring the height of each bladder in each cell. The height sensor may be housed within the base of the cell or elsewhere within the cell or device such that it is operable to measure the height of the bladder of the cell. In some embodiments, the height sensor is an optical sensor. In some preferred embodiments, the height sensor includes a time-of-flight sensor, as noted above. In certain embodiments, a cell including an optical height sensor may include a bladder where the interior surface, or at least a portion thereof, such as the interior surface of the top portion of the bladder that applies force to the user and defines the maximum height, is made of, coated with, or the like, a reflective material to improve the performance of the optical sensor.

[0121] As described above, in certain embodiments, each cell of the support device, or at least a plurality of cells of the support device, may include at least one valve. The valve may be housed within the base of the cell or elsewhere within the cell or device so as to be operable to allow the inflow and outflow of fluid contained within the bladder of the cell. The valve may be configured to control the flow of fluid within the bladder of the cell and may be located within or adjacent to the base of the cell. Each valve may be operatively associated with an individual cell within the plurality of cells. The valve may be associated with a manifold to provide pressure to the plurality of cells. In some embodiments, the valve may be arranged to control the flow of fluid between the cell and its surrounding environment or between the cell and a vacuum source to allow deflation, thereby facilitating the reduction of the height of the bladder of the cell even in the absence of external pressure (e.g., from the body of a supported user or the hand of a user or operator pressing down on the bladder to create a height control set point). The valve may be arranged to control the flow of inflation fluid between the cell and a pressurized fluid source. In some embodiments, there may be multiple valves (e.g., inlet and outlet valves or proportional and switching valves; see FIGS. 5A and 5B ) for each cell, each independently controllable. Preferred valves are electronically controllable, allowing them to be automatically or semi-automatically adjusted by a controller. The valves or other pressure adjustment components may include pumps, such as pumps fabricated and configured to pump fluid into and / or out of the cells, to independently adjust the pressure maintained within individual cells or groups of cells. In some cases, it may be desirable to maintain the pressure in the bladder at a pressure higher than the pressure of the fluid source or to change the pressure to a level higher than the source pressure. In such cases, the fluid may be pumped or otherwise compressed before being introduced into the bladder. Similarly, in certain embodiments, fluid may be removed from the cell bladders via a pumping mechanism.In some embodiments, devices, systems, and methods may include a second, separate system, an air supply system, including, for example, a controllable pressure regulator and valves and / or pumps, which may be configured to supply pressurized air to one or more gas distribution plenums or manifolds configured to supply pressurized air to selected groups of cells within the support device. In some embodiments, a blow-off valve may be incorporated into each cell or group of cells to allow for "failure" of the control or sensing system. In the event of a failure, the blow-off valve is configured to release pressure (i.e., release fluid within the failed cell) to avoid over-expansion or harm to the device or user.

[0122] As described above and elsewhere herein, the valves may include piezoelectric actuators configured to deflect in response to an applied electrical potential. Piezoelectric valves offer low cost, low power consumption, facilitate fail-safe operation (the bed remains expanded), and can enable quiet operation. In some embodiments, the use of piezoelectric valves provides a more compact design compared to alternatives of typical existing valve designs. However, other valve types are also suitable. For example, in some embodiments, one or more valves are proportional and / or non-proportional solenoid valves. Combinations of valve types (e.g., piezoelectric and non-proportional solenoid valves) are also possible. Valve selection may vary from cell to cell, or may vary with respect to valves connecting gas supplies to plenums or manifolds that supply individual cells.

[0123] In certain preferred embodiments, the piezoelectric valve is located within each cell (e.g., within the base of the cell) or is separate from the base of the cell but functionally associated with the cell by fluid communication to the base of the cell, for example, via a flexible tubing connection. FIGS. 21A-21D show several configurations of piezoelectric valve designs that may be used, each including one or more deflectable piezoelectric elements 2110. For example, in FIG. 21A , the piezoelectric element 2110 of the valve body 2120 may be located within the cell or external to the cell, for example, adjacent to the base of the cell and fluidly interconnected to the base of the cell via tubing connected to the inlet 2125 and outlet 2130. In some embodiments, the valve is located external to the cell, in a physically separate location from the surface of the device to which the multiple cells are attached. In use, the valve is biased to the closed position as shown by the piezoelectric element 2110 pressing the sealing gasket 2140 against the sealing surface of the air outlet line 2130. When activated by the controller, an electrical potential is applied to the piezoelectric element 2110 by electrical contacts 2150, causing the piezoelectric element 2110 to deflect upward and release pressurized air through outlet 2130. Figure 21B shows two piezoelectric element designs for independent control of both inflow and outflow. Figures 21C and 21D show other single piezoelectric element designs.

[0124] The devices, systems, and methods described herein may further include a manifold configured to fluidly connect each individual cell of the plurality of cells, or a selected set of cells within the plurality of cells, to a pressure source so that the pressure within each cell can be independently controlled. In certain embodiments including cells having one or more support bases, each such cell, or multiple cells sharing a base, may be independently connected to the manifold via the corresponding base. Each base may be electrically and / or fluidly connected to the manifold via a valved or valveless connection, depending on whether the base so connected is associated with a single individually controllable cell (in which case the bases are grouped together for common control (i.e., via a valveless connection)) or multiple separate individually controllable cells (in which case separate controllable valved connections are shown). The manifold may also be configured to provide structural or mechanical support to the cell bases directly or via other support elements. The devices, systems, and methods may further include a plurality of such manifolds, with a first group of the plurality of bases connected to a first manifold and a second group of the plurality of bases connected to a second manifold. A group may include a section, a zone, a subset of a section, one or more rows, one or more columns, and / or a geometric group, etc.

[0125] The devices, systems, and methods described herein may further include one or more sections or subsections having cells secured via their corresponding bases to a support including a mounting plate configured to support each individual base of the plurality of cells or a selected set of cells within the plurality of cells. Each base associated with one or more cells may be electrically connected to the mounting plate depending on whether it is desired that the connected base be associated with a single, individually controllable cell and / or monitored by a controller. The mounting plate may also be configured to provide structural or mechanical support to the cell bases directly or via other support elements, fasteners, support brackets, mounting structures, etc., and may be configured as separate modules to facilitate removal for maintenance and / or replacement. The devices, systems, and methods may further include a plurality of such mounting plates, with a first group of cells or bases of a plurality of cells connected to a first mounting plate and a second group of cells or bases of a plurality of cells connected to a second mounting plate. A group may include a section, a zone, a subset of a section, one or more rows, one or more columns, a geometric grouping of cells, etc.

[0126] Each individual cell of a plurality of cells of a support device may be individually functioned and controlled. That is, an individual cell of the plurality of cells may have a pressure and / or bladder height that is controlled differently from other cells of the plurality of cells. In certain embodiments, at least some of the cells, or even a majority of the cells of a device (e.g., all of the cells), may include multiple bladders linked together such that they function together and may be collectively controlled to have the same pressure and / or bladder height. Thus, in some embodiments, a group of cells (e.g., a first set of cells, a subset of cells) or a zone within a plurality of cells may include multiple bladders that are grouped together and controlled together to a different pressure and / or bladder height than other cells with such a group of linked bladders (e.g., cells with a second set of linked bladders). The use of multiple zones (e.g., first zone, second zone, third zone, fourth zone), each containing cells having multiple, and possibly many (e.g., more than 10 or more than 20) bladders connected together, can facilitate more uniform, simpler, and less costly cell designs of cells within such regions, and can be useful and cost-effective for sections of a support device where discrete, highly granular spatial control and status indication is less important.

[0127] FIG. 22 illustrates an exemplary hospital bed embodiment of a support device. One advantage of the disclosed support device embodiment of FIG. 22 is that it can provide precise control of TIP applied to a patient in discrete regions with the spatial granularity of cell-level control, with each cell containing an individual bladder, as in an AFT device, but unlike an AFT device, the cells can be arranged to operate to provide a non-horizontally oriented support surface, for example, an angled or even vertically oriented support surface. The adjustable bed 2200 includes, for example, a first horizontal support surface portion 2210 having vertically oriented cells 200v and an adjustable upper body portion 2220 providing a second support surface that can be adjusted from horizontal and flush with the support surface portion 2210 to a substantially vertical position as shown with horizontally oriented cells 200h.

[0128] Generally, the disclosed devices, methods, and systems for supporting at least a portion of a user's body can be used in a variety of settings for a variety of purposes or applications. In some cases, for example, the device can be used to support a patient in a hospital environment, and the external operator can be a nurse or caregiver. In some embodiments, the device, method, or system can be configured for use in connection with a bed, mattress, or support cushion for home use, or as a seat or armrest for a chair, such as a wheelchair. Other applications are possible, as the disclosure is not so limited.

[0129] controller The devices, systems, and methods may utilize at least one controller configured to control one or more components of the device or system. (When referred to hereinafter as a "controller" or a "computer-implemented control system," it should be understood that such description also applies to each of at least one or several separate controllers / computer-implemented control systems in embodiments employing separate controllers / computer-implemented control systems or distributed control, unless otherwise indicated.) For example, a controller may be configured to independently control each of multiple cells of a device or system. A device or system may include one or more sections or zones, each containing one or more individually controllable cells, and one or more controllers may be provided and configured to separately and / or independently control each of the one or more sections or zones. At least one of the one or more sections may include one or more subsections, and the same or separate controllers may be configured to separately and / or independently control each of one or more subsets, independently or cooperatively. In some cases, separate controllers or controller components or processors or processing elements may be included within at least one, some, or all of the cells of a device or system. In some embodiments, the controller may measure, record, and / or display the bladder height and / or pressure received from the height and / or pressure sensors.

[0130] The controller may be configured to control the pressure and / or bladder height in each of the plurality of cells at a constant or variable rate. The controller may communicate with the valves (e.g., piezoelectric valves) or pressure distributors via cables or wirelessly.

[0131] In some embodiments, the controller includes a processor configured and programmed to measure the length of time a cell or set of cells maintains a particular bladder height and / or pressure. For example, in some embodiments, the controller is configured and programmed to measure the length of time a cell or set of cells applies a force / pressure measured by a pressure sensor to a user's body. The controller may also be configured and programmed to measure the length of time a particular cell or set of cells maintains a particular bladder height measured by one or more height sensors.

[0132] A controller that measures a particular length of time for a bladder height and / or pressure value of a cell or set of cells may advantageously be configured to compare such value to a set point or injury threshold to predict and prevent injury to a user. For example, typical mattresses and patient support devices can cause wounds or pressure sores resulting from pressure above a particular level being applied to a portion of a user's body for an extended period of time. The allowable time before injury occurs depends on the applied pressure, and vice versa. Advantageously, certain embodiments of the devices and systems described herein are configured not only to measure, and optionally record and / or transmit, cell pressure and bladder height data, but also to determine, and optionally record and / or transmit, the length of time for one, several, or all cells characterized by any particular applied pressure. Such embodiments are configured to monitor how long a particular portion of the body is subjected to a particular applied force / pressure. Advantageously, in some such embodiments, the controller may be configured and programmed to adjust the bladder height and / or pressure cell or set of cells in response to a portion of the body being subjected to a particular applied pressure for a particular length of time. In some embodiments, the controller may be configured to periodically or automatically adjust (e.g., by adjusting the bladder height of one or more cells) the pressure applied to one, some, or each contact point with the cells of the device and the user's body at time intervals to ensure that the pressure-time damage threshold is not exceeded. In certain embodiments, the controller and processor may be configured to provide continuous and dynamic pressure-time internal control at the level of individual cells.For example, for each cell within the support surface or subsection thereof, the control system can measure, and optionally record and / or transmit, the length of time that each particular cell applies a measured pressure to the portion of the patient's body adjacent to the cell, and for each cell, if an injury pressure-time threshold is reached, the control system can one or more of: alert the device operator, or adjust the pressure / bladder height of the cell (and / or surrounding or distant cells) to reduce the applied pressure below the threshold and / or reposition the patient to redistribute the applied force and achieve a similar effect. In this manner, certain devices and systems described herein can advantageously minimize or eliminate pressure injuries to the user (e.g., pressure sores, wounds) with less disruption and adjustment action than in situations where only a pressure level threshold is used as a control parameter without taking into account the exposure time length. As an additional advantage, a controller programmed with pressure-time measurement and adjustment functions can enable the user to be repositioned and / or cell pressure to be adjusted automatically at desired intervals without external operator intervention. In some embodiments, the controller is programmed and configured to notify the user and / or caregiver if a pressure x time value (i.e., a pressure-time measurement or value) for at least a portion of the body exceeds a certain value (e.g., as shown in FIG. 23 and described below).

[0133] The length of time that a particular measured cell pressure can be tolerated without triggering an alarm or readjustment varies depending on the measured pressure. For example, in some embodiments, the controller may measure the cell pressure, determine the pressure / force applied to the patient's body by such cell, and allow a length of time at such pressure of greater than 12 hours when a pressure of up to 20 mmHg is applied to the body, up to 8 hours when a pressure of up to 50 mmHg is applied to the body, up to 5 hours when a pressure of up to 75 mmHg is applied to the body, up to 3 hours when a pressure of up to 90 mmHg is applied to the body, up to 2 hours when a pressure of up to 125 mmHg is applied to the body, and up to 60 minutes when a pressure of up to 200 mmHg is applied to the body. (Note: These values ​​are for illustrative purposes only and are taken from the Reswick and Rogers and Gefen curve shown in FIG. 23, based on data published in Linder-Ganz E, Engelberg S, Scheinowitz M, Gefen A. “Pressure-time cell death threshold for albino rat skeletal muscles as related to pressure sore biomechanics.” J Biomech. 2006;39(14):2725-32, and Gefen A. “Bioengineering models of deep tissue injury.” Adv Skin Wound Care.” 2008 Jan;21(1):30-6, each of which is incorporated by reference.) Alarms can be tailored to meet the patient's needs as determined by the treating caregiver's knowledge of the patient's skin health, comfort, and other health concerns.)

[0134] The pressure / force levels to be applied as a function of the length of time of skin exposure to avoid or reduce the risk of tissue damage have been determined and tabulated. For example, pressure-time thresholds that can inform the selection of appropriate cell pressure-time control parameters can be found in the above-referenced literature and may be represented by the Gefen curve or the Reswick & Rogers curve (e.g., as shown in FIG. 23). Such curves and data provided therein can be used as a guide to predict the exposure time of an occupant at risk of pressure ulcers at a particular applied pressure, although, as noted above, in preferred embodiments, thresholds are determined for a particular occupant / condition and selected conservatively. A particular controller may also be programmed and configured with the capability to measure, and optionally record and / or transmit, pressure-time data, and may further be programmed with Gefen curves or Reswick & Rogers curves or similar information (e.g., in the form of best-approximate calibration equations for pressure-time tissue damage / comfort data, similar data in look-up tables, etc.) to provide control set points defining the allowable length of time at measured cell pressure to avoid increased risk of pressure injury, and may further be programmed to adjust any cell pressure and / or height that exceeds the control set points to reduce (e.g., eliminate) risk to the user. Finally, the time and pressure thresholds may be set to any values ​​that the institution or organization deems appropriate for all patients or classes of patients.

[0135] 24 shows a flowchart 2400 of an exemplary control algorithm for a controller implementing the pressure-time product threshold control method described above. In step 2410, the controller is initialized. In step 2412, the controller reads at least some of the pressures (e.g., all pressures) and / or at least some of the bladder heights (e.g., all bladder heights) of one or more cells (e.g., all cells) at a specified time interval (e.g., every 10 minutes, 5 minutes, 2 minutes, 1 minute, 30 seconds, or more frequently) by addressing the pressure and / or height sensors of one or more cells. In step 2414, the pressure-time component of the interval since the last interrogation is added to a pressure input accumulator, for example, in the processor's memory, and in step 2416, the stored pressure-time value may be attenuated / damped, as appropriate. In step 2418, the pressure injury risk may be assessed (e.g., by comparing the pressure-time value / length to the limits of a sigmoid function stored, e.g., in a calibration equation, look-up table, etc.) to classify the risk of injury as low, medium, or high, taking into account exposure to such pressures until the time of the next interrogation. In some embodiments, a Gefen curve or a Reswick and Rogers curve may be used as the sigmoid function. Once a threshold for medium or high risk injury has been determined, the pressure in the cell in question and / or the broader pressure distribution in these and / or other cells may be adjusted to relieve areas exhibiting increased (i.e., medium or high) risk, as shown in step 2422. In certain embodiments, if an indication of high injury risk is determined, the controller may issue an alert 2420 to the occupant and / or caregiver identifying the condition and, optionally, the particular cell / area of ​​the occupant's body involved. In step 2424, the feedback loop ends and the process can return to step 2410 after a cycle time interval for a subsequent query and repetition of steps 2412-2424.

[0136] Regarding the components and further configuration of the control system, controller, and processor, the controller may include a user interface including a GUI and one or more controls. The controller may be configured to allow a user to input one or more input parameters via one or more input components. The one or more input components may be a touch screen, a keyboard, a joystick, an electronic mouse, an audio device (e.g., an audio recorder), a remote device such as a handheld wired or non-wired device, a telephone, and / or a mobile phone. Other input components are possible. The one or more input parameters may be pressure and / or height maintained within each cell of a plurality of cells; a section of cells; one or more zones of cells; one or more rows of cells; or any group of cells.Other controllable parameter functions of the controller include controlling the amount of gapping of a cell's bladder from its maximum expanded height to create a recession relative to adjacent cells; setting and controlling the time length of any pressure and / or height setting; aggregating, processing, displaying, storing, and / or transmitting information related to setting and / or controlling various modes; aggregating, processing, displaying, storing, and / or transmitting any patient parameters, such as patient vitals; providing notifications, such as notifications to inform an external operator (e.g., clinician) regarding specific user (e.g., patient) actions or adverse conditions, such as a patient attempting to exit the device without necessary assistance; and providing notifications to an external operator (e.g., clinician) regarding elevated temperatures in areas that may correlate to potential pressure ulcer sites. These tasks may include providing notifications, such as notifications to notify an external operator (e.g., clinician); providing notifications, such as notifications to notify an external operator (e.g., clinician) regarding pressure changes other than known or expected pressure changes; providing notifications, such as notifications to notify an external operator (e.g., clinician) regarding when a bladder comes into contact with its corresponding base or manifold portion; aggregating, processing, displaying, storing, and / or transmitting operator-specific information, such as operator name and / or employee ID, facility-specific information, environment-specific information, such as ambient pressure or humidity, security information, such as lockout codes, user permissions and / or restrictions, such as authorized patient controls; and combinations thereof. Other input parameters, control functions, and information aggregation, processing, displaying, storing, and / or transmitting tasks are also possible.

[0137] The device may further include one or more output components selected from the group consisting of a video display; a liquid crystal display; an alphanumeric display; an audio device such as a speaker; lighting such as a light emitting diode; tactile notification such as an assembly including a vibration mechanism; and combinations thereof.

[0138] The controller may be configured to generate one or more output signals configured to be received by one or more external electronic modules. The one or more output signals may be selected from the group consisting of an electrical current; an electrical signal; a telephone data stream; a Bluetooth or other wireless signal; and combinations thereof. The one or more external electronic modules may be selected from the group consisting of an off-site alarm; a computer processor; a memory; a video system; software; and combinations thereof.

[0139] The controller may be configured to allow a user to start, change, and / or stop one or more device functions and / or modes. The user and / or external operator may be selected from the group consisting of a patient; a clinician; a doctor; a nurse; a surgeon; any staff member of a hospital or medical facility; a family member; a caregiver; and combinations thereof.

[0140] As noted above, certain embodiments of the systems and devices include one or more controllers and / or computer-implemented control systems for operating the various components / subsystems of the systems and performing control and data aggregation, processing, display, and transmission functions, etc. (e.g., controller / computer-implemented control system 510 shown in FIGS. 5A and 5B . Any of the described computational methods, processes, simulations, algorithms, systems, and system elements may be performed and / or controlled using one or more computer-implemented control systems, such as the computer-implemented system embodiments described below. The described methods, processes, control systems, and control system elements are not limited to implementation on any particular computer system described; many other different machines may be used.

[0141] The controller and / or computer-implemented control system may be part of or may be operatively associated and coupled with the support device and / or other automated system components, and in some embodiments is configured and / or programmed to control and adjust operating parameters and to analyze and calculate values ​​such as those described above, e.g., pressure values, height, TIP, etc. In some embodiments, the controller and / or computer-implemented control system may send and receive reference signals to set and / or control operating parameters of the support device. In some embodiments, the controller and / or computer-implemented control system may be physically embedded in, physically connected to, or hardwired with other components of the support device. In embodiments, the controller and / or computer-implemented control system may be separate from and / or remotely located with respect to other system components and may be configured to receive data from one or more remote support devices of the present disclosure via indirect and / or portable means, such as a portable electronic data storage device such as a magnetic disk, or via communication over a computer network such as the Internet or a local intranet.

[0142] The controller and / or computer-implemented control system may include several known components and circuitry, including processing units (i.e., one or more processors), memory systems, input and output devices and interfaces (e.g., interconnection mechanisms), as described in more detail below, as well as other components such as transport circuitry (e.g., one or more buses), video and audio data input / output (I / O) subsystems, special purpose hardware, and other components and circuitry. Additionally, the controller and / or computer-implemented control system may be a multi-processor computer system or may include multiple computers connected by a computer network.

[0143] The controller and / or computer-implemented control system may include one or more processors, such as commercially available processors such as the series x86, Celeron, and Pentium processors available from Intel, similar devices from AMD and Cyrix, the 680X0 series microprocessors available from Motorola, and one of IBM's PowerPC microprocessors. Many other processors are available, and the controller and / or computer-implemented control system is not limited to a particular processor.

[0144] The processor typically runs a program called an operating system, examples of which include Windows NT, Windows 95 or 98, Windows XP, Windows Vista, Windows 7, Windows 10, UNIX, Linux, DOS, VMS, and MacOS, which controls the execution of other computer programs and provides scheduling, debugging, input / output control, accounting, compilation, storage allocation, data and memory management, communication control, and related services. The processor and operating system together define a computer platform whose application programs are written in a high-level programming language. The controller and / or computer-implemented control system are not limited to a particular computer platform.

[0145] The controller and / or computer-implemented control system may include a memory system, which typically includes a computer-readable and writable non-volatile storage medium, examples of which include magnetic disks, optical disks, flash memory, and tape. Such storage medium may be removable, such as a floppy disk, a read / write CD, or a memory stick, or may be permanent, such as a hard drive.

[0146] Such recording media store signals, typically in binary form (i.e., in a form that can be interpreted as a sequence of 1s and 0s). A disk (e.g., magnetic or optical) has several tracks on which such signals can be stored, typically in binary form, i.e., in a form that can be interpreted as a sequence of 1s and 0s. Such signals may define a software program, e.g., an application program, to be executed by a microprocessor, or information to be processed by the application program.

[0147] The memory system of the controller and / or computer-implemented control system may also include integrated circuit memory elements, which are typically volatile random access memory such as dynamic random access memory (DRAM) or static random access memory (SRAM). Typically, in operation, the processor loads programs and data from non-volatile storage media into the integrated circuit memory elements, which typically allows faster access of program instructions and data by the processor than from non-volatile storage media.

[0148] The processor typically manipulates data in the integrated circuit memory elements according to program instructions and then copies the manipulated data to non-volatile storage media after processing is complete. Various mechanisms for managing the movement of data between non-volatile storage media and integrated circuit memory elements are known, and the controller and / or computer-implemented control system that implements the above-described methods, processes, system control, and system element control is not limited to these. The controller and / or computer-implemented control system is not limited to any particular memory system.

[0149] At least a portion of such memory systems described above may store one or more data structures (e.g., lookup tables) or equations, such as calibration curve equations. For example, at least a portion of the non-volatile recording media may store at least a portion of a database including one or more such data structures. Such a database may be any of a variety of types of databases, such as a file system including one or more flat-file data structures in which data is organized into data units separated by delimiters, a relational database in which data is organized into data units stored in tables, an object-oriented database in which data is organized into data units stored as objects, another type of database, or any combination thereof.

[0150] The controller and / or computer-implemented control system may include video and audio data I / O subsystems. The audio portion of the subsystem may include an analog-to-digital (A / D) converter that receives analog audio information and converts it to digital information. The digital information may be compressed using known compression systems for storage on a hard disk for later use. A typical video portion of the I / O subsystem may include a video image compressor / decompressor, many of which are well known in the art. Such compressors / decompressors convert analog video information into compressed digital information, and vice versa. The compressed digital information may be stored on a hard disk for later use.

[0151] The controller and / or computer-implemented control system may include one or more output devices. Exemplary output devices include cathode ray tube (CRT) displays, liquid crystal displays (LCD), light-emitting diode (LED) displays, and other video output devices, communication devices such as printers, modems, or network interfaces, storage devices such as disks or tapes, and audio output devices such as speakers.

[0152] The controller and / or computer-implemented control system may also include one or more input devices. Exemplary input devices include keyboards, keypads, trackballs, mice, pens and tablets, communication devices as described above, and data input devices such as audio and video capture devices and sensors. The controller and / or computer-implemented control system is not limited to the particular input or output devices described.

[0153] It should be understood that any type of controller and / or computer-implemented control system or systems may be used to implement the various embodiments described. The functionality of the controller and / or computer-implemented control system may be implemented in software, hardware, or firmware, or any combination thereof. The controller and / or computer-implemented control system may include specially programmed, special-purpose hardware, such as an application-specific integrated circuit (ASIC). Such special-purpose hardware may be configured to perform one or more of the methods, processes, simulations, algorithms, system controls, and system element controls described above, either as part of the controller and / or computer-implemented control system described above or as an independent component.

[0154] The controller and / or computer-implemented control system and its components may be programmable using any of a variety of one or more suitable computer programming languages, which may include procedural programming languages ​​such as LabView, C, Pascal, Fortran, and BASIC, object-oriented languages ​​such as C++, Java, and Eiffel, and other languages ​​such as scripting languages ​​or even assembler languages.

[0155] The methods, processes, simulations, algorithms, system controls, and system element controls that may be executed by such computer systems may be implemented using any of a variety of suitable programming languages, including procedural programming languages, object-oriented programming languages, other languages, and combinations thereof. Such methods, processes, simulations, algorithms, system controls, and element controls may be implemented as separate modules of a computer program or individually implemented as separate computer programs. Such modules and programs may be executed on separate computers.

[0156] Such methods, processes, simulations, algorithms, system controls, and system element controls, either individually or in combination, may be implemented as a computer program product tangibly embodied as a computer-readable signal on a computer-readable medium, such as a non-volatile recording medium, an integrated circuit memory element, or a combination thereof. For each such method, process, simulation, algorithm, system control, or system element control, such a computer program product may include, for example, a computer-readable signal tangibly embodied on a computer-readable medium that defines instructions as part of one or more programs that, when executed by a computer, instruct a computer to perform the method, process, simulation, algorithm, system control, or system element control.

[0157] While several embodiments of the present invention have been described and illustrated herein, those skilled in the art will readily envision various other means and / or structures for performing the functions and / or results and / or obtaining one or more of the advantages described herein, and each such variation and / or modification is considered to be within the scope of the present invention. More generally, those skilled in the art will readily appreciate that all parameters, dimensions, materials, and configurations described herein are exemplary, and that the actual parameters, dimensions, materials, and / or configurations will depend on the particular application for which the teachings of the present invention are used. Those skilled in the art will recognize or be able to ascertain using no more than routine experimentation many equivalents to the specific embodiments of the invention described herein. Accordingly, it should be understood that the foregoing embodiments are presented by way of example only, and that, within the scope of the appended claims and their equivalents, the invention may be practiced otherwise than as specifically described and claimed. The present invention is directed to each individual feature, system, article, material, and / or method described herein. Furthermore, any combination of two or more such features, systems, articles, materials, and / or methods is included within the scope of the present invention, if such features, systems, articles, materials, and / or methods are not mutually inconsistent.

[0158] The indefinite articles "a" and "an," as used in this specification and claims, unless expressly stated otherwise, should be understood to mean "at least one."

[0159] The word "and / or," as used in the specification and claims, should be understood to mean "either or both" of the elements so conjoined, i.e., elements that are conjunctively present in some cases and disjunctively present in other cases. Unless expressly stated otherwise, other elements may optionally be present other than the elements specifically identified by the "and / or" clause, whether related or unrelated to the elements specifically identified. Thus, as a non-limiting example, a reference to "A and / or B," when used with open-ended language such as "comprising," can refer, in one embodiment, to A without B (optionally including elements other than B); in another embodiment, to B without A (optionally including elements other than A); in yet another embodiment, to both A and B (optionally including other elements), etc.

[0160] As used in the specification and claims, "or" should be understood to have the same meaning as "and / or," as defined above. For example, when separating items in a list, "or" or "and / or" shall be interpreted as inclusive, i.e., including not only at least one of the several or list elements, but also two or more, and optionally including additional unlisted items. Only when used in terms expressly stated otherwise, such as "only one of" or "exactly one of," or in the claims, "consisting of" refers to the inclusion of exactly one element of the several or list elements. In general, the term "or," as used herein, shall be interpreted as indicating exclusive alternatives (i.e., "either," "one of," "only one of," or "exactly one of") only when preceded by exclusive terms, such as "either," "one of," "only one of," or "exactly one of." "Consisting essentially of," when used in the claims, shall have its ordinary meaning as used in the field of patent law.

[0161] As used in this specification and claims, the phrase "at least one," when referring to a list of one or more elements, should be understood to mean at least one element selected from any one or more of the elements in the list of elements, and does not necessarily include at least one of each and every element specifically listed in the list of elements, nor does it exclude any combination of elements in the list of elements. This definition also allows for the optional presence of elements other than those specifically identified in the list of elements to which the phrase "at least one" refers, whether related or unrelated to the specifically identified elements. Thus, as a non-limiting example, "at least one of A and B" (or, equivalently, "at least one of A or B," or, equivalently, "at least one of A and / or B") may refer to, in one embodiment, at least one, optionally more than one, A, and no B (and optionally including elements other than B); in another embodiment, at least one, optionally more than one, B, and no A (and optionally including elements other than A); in yet another embodiment, at least one, optionally more than one, A, and at least one, optionally more than one, B (and optionally including other elements), etc.

[0162] Some embodiments may be embodied as methods, various examples of which have been described. The acts performed as part of the method may be ordered in any suitable manner. Thus, embodiments may be constructed in which acts are performed in an order different from that shown, which may include different (e.g., more or fewer) acts than those described, and / or which may involve performing some acts simultaneously, even though the acts are specifically shown in the above embodiments to be performed sequentially.

[0163] The use of ordinal terms such as "first," "second," "third," etc. in the claims to modify claim elements does not, per se, imply a priority, precedence, or ordering of one claim element relative to another, or a chronological order in which method actions are performed, but is merely used as a label to distinguish one claim element having a particular name from another element having the same name (apart from the use of ordinal terms).

[0164] In the claims and the above specification, all transitional phrases such as "comprising," "including," "carrying," "having," "containing," "involving," "holding," and the like, are to be understood to be open-ended, i.e., including but not limited to. Only the transitional phrases "consisting of" and "consisting essentially of," respectively, shall be closed or part-closed transitional phrases as defined in the United States Patent Office Manual of Patent Examining Procedures, Section 2111.03.

Claims

1. 1. A device for supporting at least a portion of a user's body, comprising: a plurality of cells, each individual cell within the plurality of cells comprising: a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder; a base adjacent to the bladder, attached to the bladder, forming a fluid-tight seal therewith, and supporting the bladder; and the bladder forms a rolling diaphragm portion with the base, the rolling diaphragm portion configured to roll along the base and reduce a volume and height of the bladder when a force is applied to the bladder by the body of the user; The base is operatively associated with the base. at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid; a pressure sensor adapted and configured to measure the pressure of the compressible fluid; a height sensor configured to measure the height of the bladder throughout most of the bladder's range of motion; Multiple cells, including Including, the device.

2. 1. A device for supporting at least a portion of a user's body, comprising: a plurality of cells, each of the cells in the plurality of cells comprising: a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder; a base adjacent to the bladder, attached to the bladder, forming a fluid-tight seal therewith, and supporting the bladder; and the bladder forms a rolling diaphragm portion with the base, the rolling diaphragm portion configured to roll along the base and reduce a volume and height of the bladder when a force is applied to the bladder by the body of the user; The base is operatively associated with the base. at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid; a pressure sensor adapted and configured to measure the pressure of the compressible fluid; a height sensor configured to measure the height of the bladder to within + / - 4 mm, or + / - 3 mm, or + / - 2 mm; Multiple cells, including Including, the device.

3. 1. A device for supporting at least a portion of a user's body, comprising: a plurality of cells, each of the cells in the plurality of cells comprising: a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder; an optical sensor configured to determine the height of the bladder independent of light intensity; comprising or operatively associated with, Multiple cells Including, the device.

4. 1. A device for supporting at least a portion of a user's body, comprising: a plurality of cells, each of the cells in the plurality of cells comprising: a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder; a time-of-flight optical sensor configured to determine the height of the bladder; comprising or operatively associated with, Multiple cells Including, the device.

5. 1. A device for supporting at least a portion of a user's body, comprising: a plurality of cells, each of the cells in the plurality of cells comprising: a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder; at least one piezoelectric valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid; comprising or operatively associated with, Multiple cells Including, the device.

6. 1. A system for providing adjustable and controllable support for at least a portion of a user's body, comprising: a plurality of cells, each of the cells in the plurality of cells comprising: a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder; at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid; a pressure sensor adapted and configured to measure the pressure of the compressible fluid; a height sensor configured to measure the height of the bladder throughout most of the bladder's range of motion; a plurality of cells including, or operatively associated with, a controller operatively associated with each of the cells in the plurality of cells, the controller including a processor, the processor comprising: independently controlling the pressure of the compressible fluid to at least 10 mmHg and the height of each bladder to an accuracy of + / - 5 mm, + / - 4 mm, + / - 3 mm, or + / - 2 mm; Recording and / or displaying the pressure and / or the height of each bladder configured and programmed to A controller; Including, the system.

7. 1. A system for providing adjustable and controllable support for at least a portion of a user's body, comprising: a plurality of cells, each of the cells in the plurality of cells comprising: a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder; at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid; a pressure sensor adapted and configured to measure the pressure of the compressible fluid; a height sensor configured to measure the height of the bladder throughout most of the bladder's range of motion; a plurality of cells including, or operatively associated with, a controller operatively associated with each of the cells in the plurality of cells, the controller including a processor, the processor comprising: configured and programmed to control the height of a first set of vertically oriented bladders within the plurality of cells, the first set including at least one bladder, the first set configured to support the body of the user; configured and programmed to control a height of a second set of vertically oriented bladders in the plurality of cells to maintain the height of the second set below the height of the first set and to provide clearance between the bladders of the second set and the body of the user, the second set including at least one bladder. A controller; Including, the system.

8. 1. A system for providing adjustable and controllable support for at least a portion of a user's body, comprising: a plurality of cells, each of the cells in the plurality of cells comprising: a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder; a height sensor configured to measure the height of the bladder throughout most of the bladder's range of motion; a plurality of cells including, or operatively associated with, a controller operatively associated with each of the cells in the plurality of cells, the controller including a processor, the processor comprising: configured and programmed to allow the user and / or operator of the system to manually depress at least a subset of the first set of vertically oriented bladders to a subset height and activate a height control setpoint for the subset height when at least a first set of the vertically oriented bladders are expanded with the compressible fluid; configured and programmed to maintain the height of the subset of the bladders to within + / - 5 mm, + / - 4 mm, + / - 3 mm, or + / - 2 mm of the subset height; A controller; Including, the system.

9. 1. A system for supporting the body of a user, comprising: a plurality of cells adjacent the body of the user, each of the cells in the plurality of cells comprising: a bladder having a top surface for supporting the body of the user; a base abutting a bottom portion of the bladder and forming a fluid-tight seal to support and maintain fluid pressure within the bladder, the bladder forming a rolling diaphragm portion with the base, the rolling diaphragm configured to roll along the support element when force is applied to the bladder by the patient's body; a compressible fluid within the bladder that, in use, expands the bladder so that the top surface is at a height above the base; and The base is operatively associated with the base. at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid; a pressure sensor adapted and configured to measure the pressure of the compressible fluid; a height sensor configured to measure the height of the top surface of the bladder above the base throughout most of the bladder's range of motion; Multiple cells, including Including, a body support surface topology of the plurality of cells collectively defined by the height of the top surface of each of the plurality of cells; a controller in electronic communication with and operatively associated with each of the cells in the plurality of cells, the controller including a processor configured and programmed to measure, record, display, and / or control the body support surface topology; system.

10. 1. A device for supporting at least a portion of a user's body, comprising: a plurality of cells, each of the cells in the plurality of cells comprising: a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder; a light associated with each cell arranged to separately and controllably illuminate each bladder to indicate the state or status of said bladder; comprising or operatively associated with, Multiple cells Including, the device.

11. 1. A method of supporting a user's body, comprising: positioning the body of the occupant adjacent to a plurality of cells, each of the cells in the plurality of cells comprising: With Vlada, a compressible fluid within the bladder; a base adjacent to the bladder, attached to the bladder, forming a fluid-tight seal therewith, and supporting the bladder; and the bladder forms a rolling diaphragm portion with the base, the rolling diaphragm configured to roll along the base when force is applied to the bladder by the body of the user; For each cell, measuring the pressure of the compressible fluid in the bladder with a pressure sensor; measuring the height of the bladder with a height sensor configured to determine the height of the bladder over most of the range of motion of the bladder; adjusting the height and / or the pressure of the cell; A method comprising:

12. 10. The device or system of claim 1, 2, 6, 7, or 9, wherein the at least one valve is a proportional valve.

13. 10. The device or system of claim 1, 2, 6, 7, or 9, wherein the at least one valve comprises a piezoelectric element.

14. 10. The device or system of claim 1, 2, 6, 7, or 9, wherein any one or more of the valve, the pressure sensor, and / or the height sensor are located within and / or integrated into the base.

15. 10. The device or system of claim 1, 2, 6, 7, or 9, wherein any one or more of the valve, the pressure sensor, and / or the height sensor are located remotely from the base and operatively interconnected with the base.

16. 10. The device or system of claim 1, 2, 6, 7, or any one of claims 1 to 9, wherein at least the valve is located remotely from the base and operatively interconnected with the base.

17. 10. The device or system of claim 1, 2, 6, 7, or 9, wherein at least the valve and the pressure sensor are located remotely from the base and operatively interconnected with the base.

18. 10. The device or system of claim 1, 2, 6, 7, or 9, wherein the valve and / or the pressure sensor are fluidly interconnected with the base.

19. 12. The device of claim 1, wherein the height sensor is configured to measure the height of the bladder throughout a full range of motion of the bladder.

20. 11. The device or system of claim 3, wherein each of the cells in the plurality of cells further comprises a base adjacent to the bladder, attached to the bladder, forming a fluid-tight seal with the bladder, and supporting the bladder.

21. 11. The device or system of claim 3, wherein the bladder forms a rolling diaphragm portion with the base, the rolling diaphragm being configured to roll along the base and reducing the volume and height of the bladder when a force is applied to the bladder by the body of the user.

22. 4. The device of claim 3, wherein each of the cells in the plurality of cells further includes a base adjacent to, attached to, forming a fluid-tight seal with, and supporting the bladder, the base being operatively associated with the optical sensor.

23. 11. The device or system of claim 3, further comprising: at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid; and a pressure sensor adapted and configured to measure a pressure of the compressible fluid.

24. 5. The device of claim 4, wherein the time-of-flight sensor requires 200 ms or less to detect the height of the bladder.

25. 5. The device of claim 4, wherein the time required for the time-of-flight sensor to detect the height of the bladder is between 10 ms and 100 ms.

26. The device of claim 5 , wherein the base is operatively associated with the at least one piezoelectric valve.

27. 11. The device or system of claim 3, further comprising a pressure sensor adapted and configured to measure the pressure of the compressible fluid.

28. 6. The device of claim 3, further comprising a height sensor configured to measure the height of the bladder throughout most of the bladder's range of motion.

29. 10. The system of claim 6, 7, or 9, wherein the processor is configured and programmed to maintain the height of the subset of the bladders to within + / - 20 mm of the subset height.

30. 10. The system of claim 6, 7, or 9, wherein the processor is configured and programmed to maintain the height of the subset of the bladders to within + / - 5 mm of the subset height.

31. 10. The system of claim 6, 7, or 9, wherein the processor is configured and programmed to maintain the height of the subset of the bladders to within + / - 4 mm of the subset height.

32. 10. The system of claim 6, 7, or 9, wherein the processor is configured and programmed to maintain the height of the subset of the bladders to within + / - 2 mm of the subset height.

33. 33. The device, system or method of any one of claims 1 to 32, wherein the width of the bladder does not substantially change when a downward force is applied to the bladder.

34. 12. A device or method according to any one of claims 1 to 5 or 10 to 11, comprising a controller having a processor configured and programmed to individually control the height and / or the pressure of each of the plurality of cells.

35. 35. The device, system, or method of any one of claims 1 to 34, wherein the total range of motion of the bladder is 250mm or less.

36. 36. The device, system, or method of any one of claims 1 to 35, wherein the bladder has a total range of motion of at least 70mm.

37. 37. The device, system or method of any one of claims 1 to 36, wherein the bladder has a total range of motion of between 10cm and 18cm.

38. A device or method according to any one of claims 1 to 5 or 10 to 11, comprising a controller configured to display / record height / pressure data as a function of time for each cell.

39. 12. The device or method of any one of claims 1-5 or 10-11, comprising a controller configured to maintain a height of one or more cells of the plurality at a lower height to provide a gap area between the bladder and the body of the user.

40. 40. The device, system, or method of any one of claims 1 to 39, comprising additional cells that are differently sized, configured, and / or positioned from the plurality of cells.

41. 41. A device, system or method according to any preceding claim, comprising additional cells that are fluidly interconnected and configured to be controllable in groups.

42. 12. The device, system, or method of claim 1, 2, 6-9, or 11, wherein the height sensor comprises an optical sensor.

43. 12. The device, system, or method of claim 1, 2, 6-9, or 11, wherein the height sensor comprises a time-of-flight optical height sensor.

44. 12. The device, system, or method of claim 1, 2, 9, or 11, wherein the base includes an inflow / outflow valve.

45. 12. The device, system, or method of claim 1, wherein the base includes a pressure sensor.

46. 14. The device or system of claim 13, wherein the piezoelectric element is configured to control the inflow and / or outflow of the compressible fluid to maintain a desired pressure and / or height of the bladder.

47. The system of claim 7 , wherein the gap is 10 mm or less.

48. The system of claim 7 , wherein the gap is greater than 1 mm.

49. The system of claim 8 , comprising at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid.

50. The system of claim 8 , comprising at least one pressure sensor adapted and configured to measure a pressure of the compressible fluid within the bladder.

51. 9. The system of claim 8, wherein the subset height differs from the remaining undepressed cells of the first set by no more than 10 mm.

52. 9. The system of claim 8, wherein the subset height differs from the remaining undepressed cells of the first set by no more than 5 mm.

53. 9. The system of claim 8, wherein the subset height differs from the remaining undepressed cells of the first set by no more than 4 mm.

54. 9. The system of claim 8, wherein the subset height differs from the remaining undepressed cells of the first set by no more than 3 mm.

55. 9. The system of claim 8, wherein the subset height differs from the remaining undepressed cells of the first set by no more than 2 mm.

56. 9. The system of claim 8, wherein the subset height differs from the remaining undepressed cells of the first set by no more than 1 mm.

57. 9. The system of claim 8, wherein the height control set point is maintained by the controller until canceled or reset by the user and / or operator of the system.

58. The method of claim 11 , comprising adjusting a subset height of a subset of the plurality of cells.

59. The method of claim 11 , further comprising: placing a subset of the plurality of cells at a different height than the remainder of the plurality of cells.

60. The method of claim 11 , further comprising providing a reading for each cell of the plurality of cells, the reading indicating a height value and / or a pressure value.

61. 61. The device, method or system of any one of claims 1 to 60, wherein the compressible fluid is air.

62. 62. A device, method or system as claimed in any preceding claim adapted for use in connection with a support cushion for a bed, mattress or a seat or armrest of a chair such as a wheelchair.

63. The method of claim 6, wherein the pressure of the compressible fluid is from about 50 mmHg to about 100 mmHg.

64. 7. The method of claim 6, wherein the pressure of the compressible fluid is about 26 mmHg.

65. The method of claim 6, wherein the pressure of the compressible fluid is about 10 mmHg.

66. The method of claim 6, wherein the accuracy is + / - 10 mm.

67. The method of claim 6, wherein the accuracy is + / - 5 mm.

68. The system of claim 7 , wherein the gap is greater than or equal to 1 mm and less than or equal to 200 mm.

69. 1. A system for providing adjustable and controllable support for at least a portion of a user's body, comprising: a plurality of cells, each of the cells in the plurality of cells comprising: a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder; at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid; a pressure sensor adapted and configured to measure the pressure of the compressible fluid; a plurality of cells including, or operatively associated with, a controller operatively associated with each of the cells in the plurality of cells, the controller including a processor, the processor comprising: measuring the length of time the compressible fluid is contained within the bladder of each cell to determine a pressure-time value for each cell; comparing the pressure-time value for each cell to a predetermined threshold; reducing the pressure in cells within the plurality of cells where the pressure-time value exceeds the predetermined threshold indicative of a risk of injury to the body of the occupant; maintaining or increasing the pressure in cells within the plurality of cells where the pressure-time value does not exceed the predetermined threshold indicative of a risk of injury to the body of the occupant. a controller configured and programmed to: Including, the system.

70. 70. The system of claim 69, wherein the predetermined threshold indicative of a risk of injury to the body of the user is based at least in part on a Gefen curve and / or a Reswick & Rogers curve.

71. 70. The system of claim 69, wherein each of the cells in the plurality of cells further comprises a height sensor configured to measure the height of the bladder throughout most of the bladder's range of motion.

72. 72. The system of claim 71, wherein the processor of the controller is further configured and programmed to control the height of the cells within the plurality of cells whose pressure-time values ​​exceed the predetermined threshold indicative of a risk of injury to the body of the occupant and / or the cells within the plurality of cells whose pressure-time values ​​do not exceed the predetermined threshold indicative of a risk of injury to the body of the occupant.

73. 70. The system of claim 69, wherein the processor of the controller is further configured and programmed to notify an operator of the system when the pressure-time value of at least one cell exceeds the predetermined threshold.

74. 70. The system of claim 69, wherein the processor of the controller is further configured and programmed to record and / or report the pressure-time value history of each of the plurality of cells over the time period during which the user uses the system.

75. 70. The system of claim 69, wherein each of the plurality of cells includes a base adjacent to the bladder, attached to the bladder, forming a fluid-tight seal with the bladder, and supporting the bladder, the bladder forming a rolling diaphragm portion together with the base, the rolling diaphragm configured to roll along the base when force is applied to the bladder by the body of the user.

76. 70. The system of claim 69, wherein the predetermined threshold indicates a risk of injury to the body of the user.

77. 1. A system for providing adjustable and controllable support for at least a portion of a user's body, comprising: a plurality of cells, each of the cells in the plurality of cells comprising: a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder; at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid; a pressure sensor adapted and configured to measure the pressure of the compressible fluid; a height sensor configured to measure the height of the bladder throughout most of the bladder's range of motion; a plurality of cells including, or operatively associated with, a controller operatively associated with each of the cells in the plurality of cells, the controller including a processor, the processor comprising: adjusting the pressure of the compressible fluid in each of the plurality of cells to a predetermined pressure; determining a height of each cell of the plurality of cells at the predetermined pressure; calculating a target height setting and / or a target pressure setting for each cell of said plurality of cells to achieve a user or operator selected support surface end state topography; Selectively pressurizing each of the plurality of cells based on the target height setting and / or the target pressure setting for each cell. a controller configured and programmed to: Including, the system.

78. The processor may further include, after the step of selectively pressurizing each cell of the plurality of cells based on the target height setting and / or the target pressure setting for each cell: a. measuring the height of each cell of the plurality of cells adjusted to a target height setting and / or a target pressure setting for each cell of the plurality of cells; b. comparing the minimum cell height determined in step (a) with a target minimum height threshold; c. selectively adjusting the pressure of the compressible fluid within each cell, followed by repeating steps (a) and (b) until the minimum cell height determined in step (a) matches the target minimum height threshold.

78. A system for providing adjustable and controllable support for at least a portion of a user's body as recited in claim 77, configured and programmed to:

79. 79. The system of claim 78, wherein calculating a target height setting and / or a target pressure setting for each cell of the plurality of cells to achieve a user or operator selected support surface end state topography comprises applying a mathematical transformation to the height of each cell of the plurality of cells measured at the minimum pressure.

80. 80. The system of claim 79, wherein the mathematical transformation comprises a trigonometric function.

81. 80. The system of claim 79, wherein the mathematical transformation comprises an arithmetic function.

82. 79. The system of claim 78, wherein each of the plurality of cells includes a base adjacent to, attached to, and forming a fluid-tight seal with, the bladder, and supporting the bladder, the bladder forming a rolling diaphragm portion with the base, the rolling diaphragm configured to roll along the base when force is applied to the bladder by the body of the user.

83. 1. A device for supporting at least a portion of a user's body, comprising: a plurality of cells, each individual cell within the plurality of cells comprising: a bladder configured to contain a compressible fluid, the bladder being expandable by the compressible fluid within the bladder; a base adjacent to the bladder, attached to the bladder, forming a fluid-tight seal therewith, and supporting the bladder; Multiple cells, including Including, the bladder forms a rolling diaphragm portion with the base, the rolling diaphragm portion configured to roll along the base and reduce a volume and height of the bladder when a force is applied to the bladder by the body of the user; the bladder includes a first end shaped and configured to attach to the base and form the fluid-tight seal with the base, and a second end including a person support surface configured to apply a support force to the body of the user, the bladder shaped and configured such that the angular orientation of the person support surface can be adjusted without substantially changing the angular orientation of a longitudinal axis of the bladder relative to the base. device.

84. a bladder configured to be attached to a base support and to form a fluid-tight seal with the base support, the bladder forming a rolling diaphragm portion with the base support, the bladder decreasing in volume and height upon application of a force to the bladder, the bladder being shaped to have a first open end configured to be attached to the base support and to form a fluid-tight seal with the base support, and a second closed end providing a person support surface configured to apply a support force to a body of a user of a support device in which the bladder is being used; when the bladder is attached to the base support, the bladder is shaped and configured such that the angular orientation of the person support surface can be adjusted without substantially changing the angular orientation of the longitudinal axis of the bladder relative to the base support; Including, bladder.

85. 84. A device, system, or method according to any preceding claim, wherein the plurality of cells includes at least one cell containing between 2 and 20 bladders.

86. 86. The device, system, or method of claim 85, wherein the plurality of cells includes at least one cell containing between 2 and 10 bladders.

87. 87. The device, system, or method of claim 86, wherein the plurality of cells includes at least one cell containing between 2 and 5 bladders.

88. 88. The device, system, or method of claim 87, wherein the plurality of cells includes at least one cell that includes three bladders.

89. 86. The device, system, or method of claim 85, wherein the plurality of cells comprises 16 bladders.

90. 78. The system of claim 77, wherein the predetermined pressure is a minimum operating pressure.

91. 78. The system of claim 77, wherein the predetermined pressure is a maximum operating pressure.

92. 1. A device for supporting at least a portion of a user's body, comprising: at least one cell including 2 to 20 bladders configured to contain a compressible fluid, the 2 to 20 bladders being expandable by the compressible fluid within the bladders; a common base adjacent to each bladder, attached to each bladder, forming a fluid-tight seal therewith, and supporting each bladder; Multiple cells, including Including, each bladder forming a rolling diaphragm portion with the base, the rolling diaphragm portion configured to roll along the base to reduce the volume and height of the bladder when a force is applied to the bladder by the body of the user; The base is operatively associated with the base. at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid; at least one pressure sensor adapted and configured to measure the pressure of the compressible fluid; a height sensor associated with each bladder and configured to measure the height of each bladder throughout most of the range of motion of each bladder; containing or including, device.

93. 93. The device of claim 92, wherein the plurality of cells includes at least one cell containing between 2 and 10 bladders.

94. 94. The device of claim 93, wherein the plurality of cells includes at least one cell containing between 2 and 5 bladders.

95. 95. The device of claim 94, wherein the plurality of cells includes at least one cell that includes three bladders.

96. 93. The device of claim 92, wherein the plurality of cells comprises 16 bladders.

97. 1. A device for providing adjustable and controllable support for at least a portion of a user's body, comprising: a plurality of cells, each of the cells in the plurality of cells comprising: an airtight bladder configured to contain and be inflated by air supplied to and accommodated in the bladder; at least one valve in fluid communication with the bladder, the valve configured to control the inflow and / or outflow of the compressible fluid; comprising or operatively associated with, A plurality of cells; a ventilation system configured to provide ventilation to spaces surrounding the bladders of the plurality of cells and between the bladders of the plurality of cells, wherein air is circulated by the ventilation system to provide the ventilation, and the air circulated by the ventilation system is supplied to the bladders to expand the bladders and is not the air contained within the bladders; Including, the device.

98. 98. The device of claim 97, further comprising a vent space surrounding the bladder of the plurality of cells.

99. 98. The device of claim 97, wherein the ventilation system is configured to selectively provide airflow to multiple separate regions of the ventilation space surrounding the bladders of the multiple cells, and the device is part of a support system further including a controller operatively associated with each of the cells in the multiple cells and the ventilation system, the controller including a processor, the processor configured and programmed to control the expansion of the bladders and to control the operation of the ventilation system.

100. A device according to any one of claims 97 to 99, wherein the ventilation system comprises at least one duct and at least one fan.

101. Each of the cells in the plurality of cells comprises: a pressure sensor adapted and configured to measure the pressure of the compressible fluid; a height sensor configured to measure the height of the bladder throughout most of the bladder's range of motion; 101. A device according to any one of claims 97 to 100, further comprising or operatively associated with:

102. 101. The device of any one of claims 97 to 100, wherein the bladder forms a rolling diaphragm portion with a base support, causing the bladder to reduce in volume and height when a force is applied to the bladder, the bladder being shaped to have a first open end configured to attach to the base support and form a fluid-tight seal with the base support, and a second closed end providing a user support surface configured to apply a support force to the body of a user of the device.

103. the controller includes a processor, the processor responsive to user or operator input via a graphical user interface (GUI); a. User or operator set point adjustments made via the GUI; b. A measured temperature of a discrete region of the ventilation space or a portion of the support surface adjacent to a discrete region of the ventilation space; and / or c. a measured humidity in a discrete region of the ventilation space or a portion of a support surface adjacent to the discrete region of the ventilation space; configured and programmed to control the ventilation system to selectively supply air to one or more of the plurality of discrete regions of the ventilation space surrounding the bladder of the plurality of cells in response to at least one of 100. The device of claim 99.