Claims
- 1. A patient distance sensing system, comprising:
a rigid frame; at least one inflatable chamber supported upon said rigid frame, wherein said at least one inflatable chamber forms a patient support surface; a heterodyning proximation detector device operably configured generally adjacent said at least one inflatable chamber for detecting the distance of a patient in relation to said at least one inflatable chamber; and, an air supply for providing a flow of air pressure to said at least one inflatable chamber, said air supply controllable by said heterodyning proximation detector device for varying the flow of air pressure to said at least one inflatable chamber, wherein said heterodyning proximation detector device maintains said at least one inflatable chamber at an optimal pressure.
- 2. The patient distance sensing system in claim 1, further comprising at least one force responsive distance sensing device disposed adjacent at least a portion of at least one inflatable chamber, wherein said at least one force responsive distance sensing device is operable to detect patient compressive forces, wherein said patient compressive forces alter the height of said patient support surface.
- 3. The patient distance sensing system in claim 1, further comprising at least one light responsive distance sensing device disposed adjacent at least a portion of at least one inflatable chamber, wherein said at least one light responsive distance sensing device is a deformable chamber operable to detect patient compressive forces, wherein said patient compressive forces alter the height of said patient support surface.
- 4. The patient distance sensing system in claim 1, wherein said at least one inflatable chamber is a plurality of inflatable chambers, the uppers surfaces of said plurality of inflatable chambers forming a patient support surface.
- 5. The patient distance sensing system in claim 1, wherein said heterodyning proximation detector device is a plurality of heterodyning proximation detector devices.
- 6. The light responsive distance sensing device in claim 3, wherein said deformable chamber includes a light emitting device attached to said deformable chamber at a position opposite a light detecting device attached to said deformable chamber, said light emitting device operably configured to emit light into the internal space of said deformable chamber and said emitted light being detected by said light detecting device, wherein deformation of said deformable chamber by patient compressive forces alters the quantity of emitted light received by said light detecting device, said alteration in detected light converted into a signal which thereby controls pressurized air flow to at least a portion of said air mattress.
- 7. The light responsive distance sensing device in claim 3, wherein said deformable chamber has an inner surface constructed of a light diffusing material.
- 8. The force responsive device in claim 2, wherein said force responsive distance sensing device includes a force transmitting member coupled to at least one force sensing resistor, said force transmitting member exerting force upon said at least one force sensing resistor in response to patient compressive forces, said at least one force sensing resistor converting said patient compressive forces into a signal which thereby controls pressurized air flow to at least a portion of said air mattress.
- 9. A patient distance sensing system, comprising:
a rigid frame; at least one inflatable chamber supported upon said rigid frame, wherein said at least one inflatable chamber forms a patient support surface; a heterodyning proximation detector device operably configured generally adjacent said at least one inflatable chamber for detecting the distance of a patient in relation to said at least one inflatable chamber; a force responsive distance sensing device disposed adjacent at least a portion of at least one inflatable chamber, wherein said at least one force responsive distance sensing device is operable to detect patient induced changes in the height of said patient support surface; a light responsive distance sensing device located generally adjacent said patient support surface, wherein said at least one light responsive distance sensing device is a deformable chamber operable to detect patient induced changes in the height of said patient support surface; and, an air supply for providing a flow of air pressure to said at least one inflatable chamber, said air supply cooperatively controlled by said heterodyning proximation detector device, said force responsive distance sensing device, and said light responsive distance sensing device for varying the flow of air pressure to said at least one inflatable chamber, wherein said at least one inflatable chamber is maintained at an optimal pressure.
- 10. A method for regulating the inflation of an air mattress assembly, comprising:
deflating an inflatable air mattress assembly to a substantially deflated condition; measuring and storing the distance from at least one heterodyning proximation detector to a patient, said inflatable air mattress assembly in a deflated condition; initiating inflation of said inflatable air mattress assembly when said heterodyning proximation detector detects said patient approaching through space said inflatable air mattress assembly; placing said patient on patient surface of said air mattress assembly; measuring and storing the minimum height distance from the heterodyning proximation detector to said patient on said patient surface when said air mattress assembly is in a substantially inflated condition; calibrating an optimal height distance for said patient resting above said patient surface using said stored height distances from said substantially deflated and said substantially inflated conditions; and, using said heterodyning proximation detector to control an air supply for maintaining said air mattress at an optimal pressure, wherein said patient is maintained at said optimal height distance.
- 11. The method for regulating the inflation of an air mattress assembly as claimed in claim 10, further comprising activating a force responsive distance sensing device for measuring height distance of said patient on said patient surface when said air mattress assembly is in a substantially inflated condition, said force responsive distance sensing cooperatively controlling an air supply for maintaining said air mattress at an optimal pressure, wherein said patient is maintained at said optimal height distance
- 12. The method for regulating the inflation of an air mattress assembly as claimed in claim 10, further comprising activating a light responsive sensing device for measuring height distance of said patient on said patient surface when said air mattress assembly is in a substantially inflated condition, said light responsive sensing device cooperatively controlling an air supply for maintaining said air mattress at an optimal pressure, wherein said patient is maintained at said optimal height distance
- 13. The force responsive device as claimed in 2, wherein said force transmitting member is made of a substantially resilient material.
RELATED APPLICATION
[0001] This application claims the benefit of prior U.S. Provisional Patent Application Ser. No. 60/066,771 filed Nov. 24, 1997.
Provisional Applications (1)
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Number |
Date |
Country |
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60066771 |
Nov 1997 |
US |