Method of controlling a pressurized mattress system for a support structure

Information

  • Patent Grant
  • 9504620
  • Patent Number
    9,504,620
  • Date Filed
    Wednesday, July 23, 2014
    10 years ago
  • Date Issued
    Tuesday, November 29, 2016
    7 years ago
Abstract
A method for automatically varying the internal air pressure in at least one inflatable air bladder associated with at least one zone of a pressurized mattress system to achieve an optimal zone air pressure for a patient. The method includes a step of incrementally decreasing the zone air pressure of the at least one zone until more than a predetermined percentage or portion of the patient is directly supported by a substrate disposed below the at least one inflatable air bladder. The method then determines the appropriate increase in zone air pressure to achieve the optimal zone air pressure for the patient.
Description
FIELD OF THE INVENTION

The present invention relates generally to support structures for supporting patients, and more particularly, to a pressurized mattress system for use on a support structure.


BACKGROUND OF THE INVENTION

Patients are sometimes placed on support structures, e.g., beds, operating room tables, examination tables, etc., for extended periods of time. However, the longer the patient remains on the support structure, the greater the likelihood that the patient will become uncomfortable. Moreover, it is believed that stationary patients are at an increased risk of decreased blood circulation that may lead to the development of pressure ulcers or nerve damage.


In the past, medical personnel were required to move the patient frequently in order to help make the patient comfortable and to aid in maintaining adequate blood circulation. Recently, the use of pressurized mattress systems has shown to aid medical personnel in accomplishing the aforementioned goals. In general, a pressurized mattress system includes a mattress having a plurality of inflatable air bladders. The pressure of the air in the plurality of inflatable air bladders is adjustable to allow a user to vary the firmness of the mattress.


The present invention addresses the foregoing issues and provides a pressurized mattress system that includes a controller for monitoring the pressure at an interface between a patient and the pressurized mattress system (hereinafter referred to as an “interface pressure”) and automatically adjusting the pressure in the plurality of inflatable air bladders.


SUMMARY OF THE INVENTION

In accordance with the present invention, there is provided a method for controlling a pressurized mattress system. The pressurized mattress system has an upper surface for receiving a patient thereon. The pressurized mattress system includes at least one zone having at least one inflatable air bladder. A substrate is disposed below the at least one inflatable air bladder. A pressure sensor measures a zone air pressure of the at least one zone. A plurality of interface pressure sensors is disposed on an upper surface of the at least one inflatable air bladder. Each of the plurality of interface pressure sensors measures an interface pressure at a discrete location along the upper surface of the at least one inflatable air bladder. A source of pressurized air is provided. A controller receives signals from the pressure sensor and the plurality of interface pressure sensors and controls the flow of pressurized air to/from the at least one inflatable air bladder based on the signals. The controller calculates a zone interface pressure for the at least one zone based on the signals from the plurality of interface pressure sensors. The method includes the steps of:

    • a) inflating the at least one inflatable air bladder to an initial zone air pressure;
    • b) reducing the zone air pressure by a predetermined first value and calculating a zone interface pressure;
    • c) repeating step b) until the zone interface pressure meets a predetermined criterion and storing the zone air pressure as a bottoming point zone air pressure; and
    • d) pressurizing the at least one zone to an optimal zone air pressure based on the bottoming point zone air pressure.


In accordance with another aspect of the present invention, there is provided a method for controlling a pressurized mattress system. The pressurized mattress system has an upper surface for receiving a patient thereon. The pressurized mattress system includes at least one zone having at least one inflatable air bladder. A pressure sensor measures a zone air pressure of the at least one zone. A plurality of interface pressure sensors is disposed on an upper surface of the at least one inflatable air bladder. Each of the plurality of interface pressure sensors measures an interface pressure at a discrete location along the upper surface of the at least one inflatable air bladder. A source of pressurized air is provided. A controller receives signals from the pressure sensor and the plurality of interface pressure sensors and controls the flow of pressurized air to/from the at least one inflatable air bladder based on the signals. The controller calculates a zone interface pressure for the at least one zone based on the signals from the plurality of interface pressure sensors. The method includes the steps of:

    • a) inflating the at least one inflatable air bladder to an initial zone air pressure;
    • b) calculating a zone interface pressure and storing as a first zone interface pressure;
    • c) reducing the zone air pressure by a predetermined first value;
    • d) calculating a zone interface pressure and storing as a second zone interface pressure;
    • e) repeating steps b)-d) until the second zone interface pressure exceeds the first zone interface pressure by a predetermined amount;
    • f) storing the second zone air pressure as a zone air pressure at a bottoming point;
    • g) increasing the zone air pressure by a predetermined second value;
    • h) calculating a zone interface pressure and storing as a third zone interface pressure; and
    • i) comparing the third zone interface pressure to the first zone interface pressure and inflating the at least one zone to the zone air pressure associated with the lower zone interface pressure.


An advantage of the present invention is a support structure that includes a pressurized mattress system for adjusting the air pressure in a plurality of inflatable air bladders disposed below a patient.


Another advantage of the present invention is a support structure as described above having a plurality of interface pressure sensors disposed on a plurality of inflatable air bladders for measuring interface pressures between the patient and a top surface of the pressurized mattress system.


Another advantage of the present invention is a support structure as described above having a controller for automatically varying a zone air pressure in the plurality of inflatable air bladders.


Another advantage of the present invention is a support structure as described above having a mode that assists a user in transferring a patient to/from the support structure.


Another advantage of the present invention is a support structure as described above having a mode that assists a user in performing cardiopulmonary resuscitation (CPR) on a patient.


Yet another advantage of the present invention is a support structure as described above having a mode wherein the temperature of the pressurized mattress system can be controlled by a user.


Still yet another advantage of the present invention is a support structure having a pressurized mattress system that provides a pressure mapping of the interface pressures between a patient and a surface of the pressurized mattress system.


Another advantage of the present invention is a support structure having a pressurized mattress system that does not require user input to control the interface pressure between a patient and a surface of the pressurized mattress system.


These and other advantages will become apparent from the following description of a preferred embodiment taken together with the accompanying drawings and the appended claims.





BRIEF DESCRIPTION OF THE DRAWINGS

The invention may take physical form in certain parts and arrangement of parts, a preferred embodiment of which will be described in detail in the specification and illustrated in the accompanying drawings which form a part hereof, and wherein:



FIG. 1 is a perspective view of a support structure having a pressurized mattress system disposed thereon;



FIG. 2 is an exploded view of a head zone of the pressurized mattress system of FIG. 1;



FIG. 3 is an exploded view of a control unit of the pressurized mattress system of FIG. 1;



FIG. 4 is an exploded view of a handheld control unit of the pressurized mattress system of FIG. 1; and



FIG. 5 is a flow chart illustrating the steps in the operation of the pressurized mattress system of FIG. 1 during an Auto Adjust Mode.





DETAILED DESCRIPTION OF PREFERRED EMBODIMENT

Referring now to the drawings wherein the showings are for the purpose of illustrating a preferred embodiment of the invention only and not for the purpose of limiting the same, FIG. 1 shows a support structure 10 (e.g., an operating room table, a patient bed, etc.) illustrating a preferred embodiment of the present invention. Support structure 10 includes a pressurized mattress system 100 that is mounted on a patient support 20. Patient support 20 is mounted to a support column 12 that extends upward from a base 14. Support column 12 and base 14 are conventionally known and, therefore, shall not be described in great detail. Support column 12 is a telescoping structure that allows for vertical adjustment of patient support 20. Base 14 includes wheels 16 for allowing support structure 10 to be moved along a floor 18. It is also contemplated that support structure 10 may be permanently fixed to floor 18.


In the embodiment shown, patient support 20 is comprised of a head section 20A, a scapula (upper torso) section 20B, a sacrum (seat and thighs) section 20C and a leg section 20D. Sections 20A, 20B, 20C, 20D are moveable relative to each other so that a user may vary the position of a patient laying on support structure 10. Each section 20A, 20B, 20C, 20D has an upper surface 22a, 22b, 22c, 22d, respectively.


Pressurized mattress system 100 includes four (4) zones or sections, namely, a head zone 100A, a scapula zone 100B, a sacrum zone 100C and a leg zone 100D, a control unit assembly 140 and a handheld control unit 160. Head zone 100A, scapula zone 100B, sacrum zone 100C and leg zone 100D of pressurized mattress system 100 are respectively disposed on sections 20A, 20B, 20C, 20D of patient support 20. The aforementioned zones 100A, 100B, 100C, 100D of pressurized mattress system 100 are similar and only head zone 100A will be described in detail.


Head zone 100A supports a head of a patient. Referring now to FIG. 2, head zone 100A is best seen. Head zone 100A generally includes a foam substrate 102, a plurality of inflatable air bladders 112, an interface pressure sensor assembly 122, a heating pad assembly 132 and a cover 136.


Foam substrate 102 is disposed on upper surface 22a of head section 20A. In general, foam substrate 102 is an elongated U-shape structure having side walls 102a and a bottom wall 102b. Notches or openings 104 are formed in bottom wall 102b for allowing hoses and cables (not shown) to pass therethrough. Side walls 102a and bottom wall 102b define a cavity 102c for receiving a support fabric 106 and the plurality of inflatable air bladders 112. Foam substrate 102 is made from urethane foam.


Support fabric 106 is disposed on foam substrate 102. In general, support fabric 106 is formed to have a bottom 106a and sides 106b extending upward from bottom 106a. Notches 108a and holes 108b are formed in sides 106b of support fabric 106 for allowing hoses and cables (not shown) to pass therethrough..


The plurality of inflatable air bladders 112 is disposed on an upper surface of bottom wall 106a of support fabric 106. Each inflatable air bladder 112 is made of an elastomeric material that allows each inflatable air bladder 112 to increase in size when supplied with a pressurized fluid, e.g., air. In the embodiment shown, each inflatable air bladder 112 is generally cylindrical in shape with an inlet port 114 disposed at one end thereof. A tubular sleeve 116 is disposed around each inflatable bladder 112 for limiting the expansion thereof. A pressure sensor 118 is fluidly connected to the plurality of inflatable bladders 112 of head zone 100A for providing a signal indicative of a “zone air pressure (ZAP)” for head zone 100A. All of the inflatable air bladders 112 for head zone 100A are fluidly connected together such that all the inflatable air bladders 112 are maintained at the same zone air pressure. In this regard, pressure sensor 118 provides a single value for the zone air pressure (ZAP) for head zone 100A.


In the embodiment shown, head zone 100A of mattress system 100 includes two (2) inflatable air bladders 112. In one example embodiment, each zone 100A, 100B, 100C, 100D includes four (4) to ten (10) inflatable air bladders. However, it is contemplated that the foregoing zones 100A, 100B, 100C, 100D may include any number of inflatable air bladders 112 based on the dimensions of support structure 10.


Interface pressure sensor assembly 122 is disposed on an upper external surface of each inflatable air bladder 112. Interface pressure sensor assembly 122 includes a mounting strip 124 and a plurality of interface pressure sensors 126 mounted thereon. Each interface pressure sensor 126 provides a signal indicative of the pressure applied thereto. In the embodiment shown, each interface pressure sensor assembly 122 includes sixteen (16) interface pressure sensors 126. As such, in the embodiment shown, head zone 100A includes thirty-two (32) interface pressure sensors 126. In one example embodiment, each zone 100A, 100B, 100C, 100D may have sixteen (16) to eighty (80) interface pressure sensors 126, depending on the dimensions of support structure 10 and the desired accuracy of pressurized mattress system 100.


Heating pad assembly 132 is disposed above interface pressure sensor assembly 122. Heating pad assembly 132 includes a generally rectangular-shaped substrate 134, a plurality of heating elements (not shown) and a plurality of temperature sensors (not shown). The heating elements and the temperature sensors are embedded within substrate 134. The heating elements are electrical devices that heat substrate 134 when the heating elements are supplied with an electric current. The temperature sensors provide signals indicative of the temperature of substrate 134 at a plurality of discrete locations on substrate 134.


Cover 136 is disposed above heating pad assembly 132. Cover 136 is generally rectangular-in-shape with side walls 136a and a top wall 136b. Side walls 136a and top wall 136b define a cavity 136c. Cover 136 is made from a flexible material and is dimensioned to fit securely over heating pad assembly 132, the plurality of inflatable air bladders 112 and foam substrate 102.


Referring now to FIG. 3, control unit assembly 140 is best seen. In general, control unit assembly 140 includes a housing 142, a controller 146, an air compressor 152 and an air manifold assembly 154. A power cable 156 connects control unit assembly 140 to a wall outlet (not shown).


Housing 142 defines an internal cavity 142a for holding various electrical components within control unit assembly 140. An upper portion of housing 142 is formed to define a handle 144 for allowing a user to easily carry control unit assembly 140. Housing 142 includes a mounting bracket (not shown) for attaching housing 142 to support structure 10.


Controller 146 is disposed within internal cavity 142a of housing 142. In general, controller 146 is a computer that is programmed to control the operation of pressurized mattress system 100. Controller 146 includes inputs for receiving signals from the plurality of interface pressure sensors 126, pressure sensor 118 and the temperature sensors in heating pad assembly 132. Controller 146 includes outputs for controlling the operation of various components of pressurized mattress system 100, as described in detail below.


It is also contemplated that controller 146 may optionally be connected to other accessories, e.g., a heating blanket (not shown), so that controller 146 may control the operation of these accessories. For example, a heating blanket may be disposed over the patient to provide additional heat to the patient. Similar to heating pad assembly 132, the heating blanket may include heating elements and a plurality of temperature sensors embedded therein. The heating elements and the plurality of temperature sensors may be connected to controller 146 so that controller 146 may monitor and control the operation of the heating blanket.


Air compressor 152 is connected to and controlled by controller 146. Air compressor 152 provides pressurized air to air manifold 154. In the embodiment shown, air compressor 152 is disposed within internal cavity 142a of housing 142. It is contemplated that air compressor 152 may be disposed outside of internal cavity 142a of housing 142.


Air manifold assembly 154 includes a plurality of control valves 154a. Control valves 154a control the flow of pressurized air from air compressor 152 to the plurality of inflatable air bladders 112 and the flow of pressurized air from the plurality of inflatable air bladders 112 to the surrounding environment. Control valves 154a are connected to controller 146 such that controller 146 controls the operation of control valves 154a. Control valves 154a may take the form of solenoid valves.


Pressurized mattress system 100 includes a handheld control unit 160, best seen in FIG. 4 that allows a user to control pressurized mattress system 100. Handheld control unit 160 includes a lower housing 162a and an upper housing 162b. Lower housing 162a and upper housing 162b define a cavity 162c for receiving a display unit 164. Display unit 164 is an input/output device that provides feedback to the user regarding the status of pressurized mattress system 100 and allows the user to input commands into controller 146 to control the operation of pressurized mattress system 100. Handheld control unit 160 is connected to control unit assembly 140 by a communications cable 166. In this respect, handheld control unit 160 allows a user to move about a room while still controlling the operation of pressurized mattress system 100.


The operation of pressurized mattress system 100 will now be described with reference to FIGS. 1-5. As noted above, controller 146 of pressurized mattress system 100 is programmed to control the operation of pressurized mattress system 100. In particular, controller 146 is programmed to control pressurized mattress system 100 in several “modes” of operation, namely, an “Auto Adjust Mode,” a “Custom Mode,” a “Transfer Mode,” a “CPR Mode” and a “Temperature Control Mode.” While in the foregoing modes, display unit 164 shows a contour mapping of the zone interface pressure (ZIP) and/or temperature at discrete locations in each zone. The foregoing contour mappings allow a user to see the distribution of interface pressures and temperatures for each zone and to verify that pressurized mattress system 100 is functioning properly.


Auto Adjust Mode


When pressurized mattress system 100 is in the “Auto Adjust Mode,” controller 146 controls the components of pressurized mattress system 100 to automatically vary the zone air pressure within the plurality of inflatable air bladders 112 based on the interface pressures measured by the plurality of interface pressure sensors 126. In particular, controller 146 implements a control algorithm to separately adjust the zone air pressure of each zone 100A, 100B, 100C, 100D in order to redistribute or minimize high interface pressure points between a patient and the plurality of inflatable air bladders 112. FIG. 5 is a flow chart identifying the steps of the “Auto Adjust Mode.”


The Auto Adjust Mode of pressurized mattress system 100 is designed to determine an “optimal point (OP)” or “optimal zone air pressure (OZAP).” The term “optimal point” refers to the condition wherein the zone air pressures in zones 100A, 100B, 100C, 100D are low enough that pressurized mattress system 100 is soft for a patient laying thereon, but not so low that more than a predetermined percentage or portion of the patient is directly supported by substrate 102 disposed below the plurality of inflatable air bladders 112. The zone air pressure at which the predetermined percentage or portion of the patient contacts substrate 102 is referred to as a “bottoming point (BP).” In general, the Auto Adjust Mode first determines the “bottoming point” and then determines the “optimal point” based on the determined “bottoming point.” The following is a detailed description of the steps of the Auto Adjust Mode of pressurized mattress system 100.


After a patient has been placed on support structure 10, a user initiates the Auto Adjust Mode. Once pressurized mattress system 100 is in the Auto Adjust Mode, a user does not need to input data or commands into controller 146. During the Auto Adjust Mode, controller 146 energizes air compressor 152, as needed, to maintain a desired air pressure for operation of pressurized mattress system 100. The present invention will be described hereinafter with reference to controlling the zone air pressure in head zone 100A, but applies equally to the remaining zones 100B, 100C, 100D of pressurized mattress system 100.


Referring now to Step 200A in FIG. 5, controller 146 energizes control valves 154a to cause head zone 100A to be inflated to an initial zone air pressure (ZAP1). In one example embodiment, the initial zone air pressure is approximately 30 mmHg. Once the zone air pressure for head zone 100A has stabilized, controller calculates a “zone interface pressure (ZIP1)” at ZAP1.


The term “zone interface pressure (ZIP)” is used hereinafter to refer to a value that controller 146 calculates based on the interface pressures (IP) measured by the plurality of interface pressure sensors 126 of head zone 100A. In one example embodiment, controller 146 uses only a predetermined number of the measured interface pressures (IP). For example, controller 146 may use only the highest 25% of the measured interface pressures (IP) at a given ZAP. In yet another example embodiment, controller 146 averages a predetermined number of the measured interface pressures (IP) for head zone 100A to calculate a ZIP for a given ZAP.


Referring now to STEP 200B, after ZAP1 stabilizes and controller 146 calculates ZIP1, controller 146 causes the zone air pressure for head zone 100A to be reduced by a predetermined first value. In one example embodiment, the zone air pressure is decreased by approximately 2.5 mmHg. The new zone air pressure is stored as ZAP2. Controller 146 then calculates ZIP2 at ZAP2. ZIP2 is calculated in the same manner described above for ZIP1. In particular, controller 14 uses the measured interface pressures (IP) at ZAP2 to calculate ZIP2.


Referring now to STEP 200C, controller 146 compares ZIP1 to ZIP2. If the comparison of ZIP1 to ZIP2 meets a predetermined criterion, controller 146 proceeds to STEP 200E. If the comparison of ZIP1 to ZIP2 does not meet the predetermined criterion, then controller proceeds to STEP 200D. In one example embodiment, the criterion use in STEP 200C is that ZIP2 is greater than ZIP1 by a predetermined value. For example, the predetermined criterion may be that ZIP2 is at least 10% greater than ZIP1.


Referring now to STEP 200D, if the comparison of ZIP1 to ZIP2 does not meet the predetermined criterion in STEP 200C, controller 146 stores the value of ZAP2 as ZAP1 and the value of ZIP2 as ZIP1. Controller 146 then repeats STEP 200B. As noted above, during STEP 200B, controller 146 reduces the zone air pressure for head zone 100A by a predetermined value and calculates ZIP2. Controller 146 then proceeds to STEP 200C and compares ZIP1 to ZIP2, as described in detail above.


STEPS 200B, 200C, 200D basically are a “loop” wherein the zone air pressure for head zone 100A decreases in predetermined increments of pressure. As the zone air pressure decreases, the patient begins to “sink” into the plurality of inflatable air bladders 112 of head zone 100A. As the patient “sinks” into the plurality of inflatable air bladders 112, portions of the patient begin to be directly supported by foam substrate 102 disposed below the plurality of inflatable air bladders 112. The interface pressures associated with the portions of the patient that are directly support by foam substrate 102 begin to increase due to foam substrate 102 being stiffer than the plurality of inflatable air bladders 112. Because the zone interface pressure (ZIP) at each zone air pressure is calculated based on the measured interface pressures (IP), the calculated zone interface pressure also will increase with the increase in the measured interface pressures (IP).


When controller 146 determines that ZIP1 and ZIP2 meet the predetermined criterion, controller 146 proceeds to STEP 200E. In STEP 200E, controller 146 sets as a “Zone Air Pressure at the Bottoming Point (ZAPBP)” equal to ZAP2 and a “Zone Interface Pressure at the Bottoming Pont (ZIPBP)” equal to ZIP2. Controller 146 also sets a “Zone Air Pressure Close to the Optimal Point (ZAPCTOP)” equal to ZAP1 and a Zone Interface Pressure at Close to Optimal Point (ZIPCTOP) equal to ZIP1.


According to the present invention, STEPS 200B, 200C, 200D and 200E are designed to determine the aforementioned “bottoming point.” As described above, the term “bottoming point” refers to the condition wherein the zone air pressure in the plurality of air bladders 112 of head zone 100A is low enough such that a portion of the patient is directly supported by substrate 102. The remaining steps of the Auto Adjust Mode are designed to compare the zone interface pressures (ZIP) at two (2) different zone air pressures (ZAP) and determine the zone air pressure that is closest to the “optimal point.”


Referring now to STEP 200F, controller 146 causes control valves 154a to increase the zone air pressure of head zone 100A by a predetermined second value. The zone air pressure is stored as ZAP3 and controller 146 then calculates a zone interface pressure (ZIP3) at ZAP3. In one example embodiment, the zone air pressure is increased by about 4 mmHg such that ZAP3 is greater than ZAPCTOP.


Referring now to STEP 200G, controller 146 compares ZIP3 to ZIPCTOP to determine the zone air pressure that is closest to the optimal point. In particular, controller 146 determines whether the comparison of ZIP3 to ZIPCTOP meets a predetermined criterion. In one example embodiment, the predetermined criterion is that ZIP3 is less than or equal to ZIPCTOP.


If the comparison of ZIP3 to ZIPCTOP meets the predetermined criterion, controller 146 proceeds to STEP 200H. In STEP 200H, controller 146 sets a “Zone Air Pressure at the Optimal Point (ZAPOP)” equal to ZAP3 and a “Zone Interface Pressure at the Optimal Point (ZIPOP)” equal to ZIP3. In other words, controller 146 determines that ZAP3 is closest to the optimal point.


If the comparison of ZIP3 to ZIPCTOP in STEP 200G does not meet the predetermined criterion, then controller proceeds to STEP 200I. In STEP 200I, controller sets “Zone Air Pressure at the Optimal Point (ZAPOP)” equal to ZAPCTOP and a “Zone Interface Pressure at the Optimal Point (ZIPOP)” equal to ZIPCTOP. In other words, controller 146 determines that ZAPCTOP is closest to the optimal point. Once ZAPOP is determined, controller 146 causes the zone air pressure for head zone 100A to be maintained at ZAPOP.


Referring now to STEP 200J, controller 146 continues to periodically calculate the zone interface pressure (ZIP) for head zone 100A, while maintaining the zone air pressure at ZAPOP. It is believed that the zone interface pressure for head zone 100A may change if the patient moves or shifts their position while laying on pressurized mattress system 100. If the zone interface pressure for head zone 100A increases by a predetermined value within a predetermined time, then controller 146 will increase the zone air pressure of head zone 100A to the initial zone air pressure and repeat the foregoing steps of the Auto Adjust Mode, starting with STEP 200A. The present invention, thus, provides a method to redistribute the interface pressures for head zone 100A. In other words, the present invention reduces the maximum interface pressure points to a lower value by redistributing the interface pressure to some lower interface pressure points. In one example embodiment, controller 146 monitors the zone interface pressure for an increase of about 15% or more within one (1) minute. The remaining zones 100B, 100C, 100D of pressurized mattress system 100 are independently controlled in the same manner described above for head zone 100A.


Custom Mode


The “Custom Mode” of pressurized mattress system 100 allows a user to manually set the zone air pressure within the plurality of inflatable air bladders 112 for zones 100A, 100B, 100C, 100D of mattress system 100. The user selects a zone(s) 100A, 100B, 100C, 100D and inputs a desired zone air pressure(s) into controller 146 using handheld control unit 160. Controller 146 then controls air compressor 152 and air manifold assembly 154 to obtain the desired zone air pressure(s) in selected zone(s) 100A, 100B, 100C, 100D of pressurized mattress system 100. Display unit 164 provides an indication to the user when the desired zone air pressure(s) have been obtained.


Transfer Mode


The “Transfer Mode” of pressurized mattress system 100 allows a user to set the zone air pressure within the plurality of inflatable air bladders 112 to aid in transferring a patient to/from support structure 10. The user inputs the appropriate command into controller 146 using handheld control unit 160. Controller 146 then controls air compressor 152 and air manifold assembly 154 to achieve the zone air pressure(s) in zones 100A, 100B, 100C, 100D of mattress system 100 that are predetermined to be optimal for aiding in transferring a patient to/from support structure 10. In one example embodiment, controller 146 causes the plurality of inflatable air bladders 112 to be inflated to a maximum air pressure. In one example embodiment, the maximum air pressure is about 50 mmHg. Display unit 164 provides an indication to the user when the optimal zone air pressure(s) have been obtained.


CPR Mode


The “CPR Mode” of pressurized mattress system 100 allows a user to set the pressure within the plurality of inflatable air bladders 112 to aid in administering cardiopulmonary resuscitation (CPR) to a patient laying on support structure 10. As commonly known by those skilled in the art, administering CPR while a patient is laying on a soft mattress tends to be challenging because the soft mattress makes it difficult to apply effective chest compressions to the patient. The present invention allows the user to select a “CPR Mode” wherein controller 146 controls the zone air pressure in the plurality of inflatable air bladders 112 to achieve a zone air pressure that is predetermined to be optimal for performing CPR (hereinafter referred to as “the optimal CPR air pressure”). In one example embodiment, the optimal CPR air pressure is a maximum air pressure that the plurality of inflatable air bladders 112 can withstand. In another example embodiment, controller 146 causes the plurality air bladders 112 to be deflated such that the patient rests on substrate 102. Substrate 102 is designed to provide enough support such that the user can apply effective chest compressions to the patient.


When a user wishes to perform CPR on a patient, the user inputs the appropriate command into controller 146 using handheld control unit 160. Controller 146 then controls air compressor 152 and air manifold assembly 154 to achieve the optimal CPR air pressure in zones 100A, 100B, 100C, 100D of pressurized mattress system 100 in less than about thirty (30) seconds. Display unit 164 provides an indication to the user when the optimal CPR air pressure has been reached.


Temperature Control Mode


The “Temperature Control Mode” of pressurized mattress system 100 allows a user to independently set the temperature of each zone of pressurized mattress system 100. In particular, the user selects a target temperature(s) for zone(s) 100A, 100B, 100C, 100D using handheld control unit 160. Once the target temperature(s) is selected, controller 146 energizes the appropriate heating element to cause the selected zone 100A, 100B, 100C, 100D to be heated. Controller 146 monitors the temperature sensors associated with selected zone 100A, 100B, 100C, 100D to determine when the target temperature has been reached. Once the target temperature has been obtained, controller 146 de-energizes the heating element. If the temperature of zone 100A, 100B, 100C, 100D falls below a preset limit, then controller 146 energizes the appropriate heating element thereby causing the temperature of the relevant zone(s) 100A, 100B, 100C, 100D to increase. The Temperature Control Mode of pressurized mattress system 100 is independent of the aforementioned “modes of operation” wherein controller 146 controls the zone air pressures in the plurality of inflatable air bladders 112.


The foregoing description is a specific embodiment of the present invention. It should be appreciated that this embodiment is described for purposes of illustration only, and that numerous alterations and modifications may be practiced by those skilled in the art without departing from the spirit and scope of the invention. It is intended that all such modifications and alterations be included insofar as they come within the scope of the invention as claimed or the equivalents thereof.

Claims
  • 1. A method for controlling a pressurized mattress system, said pressurized mattress system having an upper surface for receiving a patient thereon, said pressurized mattress system including: at least one zone having at least one inflatable air bladder,a substrate disposed below said at least one inflatable air bladder,a pressure sensor for measuring a zone air pressure of said at least one zone,a plurality of interface pressure sensors disposed on an upper surface of said at least one inflatable air bladder, each of said plurality of interface pressure sensors measuring an interface pressure at a discrete location along said upper surface of said at least one inflatable air bladder,a source of pressurized air, anda controller for receiving signals from said pressure sensor and said plurality of interface pressure sensors and for controlling the flow of pressurized air to/from said at least one inflatable air bladder based on said signals, wherein said controller calculates a zone interface pressure for said at least one zone based on said signals from said plurality of interface pressure sensors,said method comprising the steps of: a) inflating said at least one inflatable air bladder to an initial zone air pressure;b) reducing the zone air pressure by a predetermined first value and calculating a zone interface pressure;c) repeating step b) until the zone interface pressure meets a predetermined criterion and storing said zone air pressure as a bottoming point zone air pressure; andd) pressurizing the at least one zone to an optimal zone air pressure based on said bottoming point zone air pressurewherein said step d) of pressurizing the at least one zone to an optimal zone air pressure includes the steps of: 1) calculating an associated zone interface pressure when said bottoming point zone air pressure is increased by said predetermined first value;2) calculating an associated zone interface pressure when said bottoming point zone air pressure is increased by said predetermined second value; and3) inflating said at least one zone to the zone air pressure associated with the lower zone interface pressure from steps 1 and 2.
  • 2. The method as defined in claim 1, wherein said predetermined first value is about 2.5 mmHg and said predetermined second value is about 4.0 mmHg.
  • 3. A method for controlling a pressurized mattress system, said pressurized mattress system having an upper surface for receiving a patient thereon, said pressurized mattress system including: at least one zone having at least one inflatable air bladder,a pressure sensor for measuring a zone air pressure of said at least one zone,a plurality of interface pressure sensors disposed on an upper surface of said at least one inflatable air bladder, each of said plurality of interface pressure sensors measuring an interface pressure at a discrete location along said upper surface of said at least one inflatable air bladder,a source of pressurized air, anda controller for receiving signals from said pressure sensor and said plurality of interface pressure sensors and for controlling the flow of pressurized air to/from said at least one inflatable air bladder based on said signals, wherein said controller calculates a zone interface pressure for said at least one zone based on said signals from said plurality of interface pressure sensors,said method comprising the steps of: a) inflating said at least one inflatable air bladder to an initial zone air pressure;b) calculating a zone interface pressure and storing as a first zone interface pressure;c) reducing the zone air pressure by a predetermined first value;d) calculating a zone interface pressure and storing as a second zone interface pressure;e) repeating steps b)-d) until the second zone interface pressure exceeds the first zone interface pressure by a predetermined amount;f) storing said second zone air pressure as a zone air pressure at a bottoming point;g) increasing the zone air pressure by a predetermined second value;h) calculating a zone interface pressure and storing as a third zone interface pressure; andi) comparing said third zone interface pressure to said first zone interface pressure and inflating said at least one zone to the zone air pressure associated with the lower zone interface pressure.
  • 4. The method as defined in claim 3, further comprising the step of: j) continuously calculating a new zone interface pressure at predetermined increments of time and repeating said method starting at step a), if said calculated zone interface pressure increases by more than a predetermined third value.
  • 5. The method as defined in claim 4, wherein said predetermined third value in step j) is 15% of a previously calculated zone interface pressure.
  • 6. The method as defined in claim 3, wherein said initial zone air pressure is about 30 mmHg.
  • 7. The method as defined in claim 3, wherein said predetermined first value is 2.5 mmHg.
  • 8. The method as defined in claim 3, wherein said predetermined amount in step e) is 10% of said first zone interface pressure.
  • 9. The method as defined in claim 3, wherein said predetermined second value is 4 mmHg.
  • 10. The method as defined in claim 3, wherein said controller calculates said zone interface pressure by averaging a predetermined number of interface pressures measured by said plurality of interface pressure sensors.
  • 11. The method as defined in claim 10, wherein said predetermined number of interface pressures is the average of the highest 25% of the interface pressures measured by said plurality of interface pressure sensors.
  • 12. The method as defined in claim 3, wherein said pressurized mattress system includes a head zone, a scapula zone, a sacrum zone and a leg zone.
  • 13. The method as defined in claim 12, wherein said controller is programmed to adjust the zone air pressure of each of said zones independently.
  • 14. The method as defined in claim 3, wherein said pressurized mattress system includes only a mid-section zone for supporting a torso of a patient.
US Referenced Citations (269)
Number Name Date Kind
371938 Hinsdill Oct 1887 A
1835212 Fowler Dec 1931 A
2029370 Heldenbrand Feb 1936 A
2462984 Maddison Mar 1949 A
2493067 Goldsmith Jan 1950 A
2742652 Mautz Apr 1956 A
2901756 Moule Sep 1959 A
3000020 Lombard et al. Sep 1961 A
3030145 Kottemann Apr 1962 A
3047888 Shecter et al. Aug 1962 A
3080578 Novascone Mar 1963 A
3230556 Shippee Jan 1966 A
3268922 Moxley Aug 1966 A
3421163 Stoughton Jan 1969 A
3565195 Miller et al. Feb 1971 A
3580615 Prosser May 1971 A
3605145 Graebe Sep 1971 A
3644950 Lindsay, Jr. Feb 1972 A
3826926 White et al. Jul 1974 A
3875481 Miller et al. Apr 1975 A
3939508 Hall et al. Feb 1976 A
3974532 Ecchuya Aug 1976 A
4005438 Meltzer et al. Jan 1977 A
4111058 Gross Sep 1978 A
4266263 Haberl et al. May 1981 A
4347633 Gammons et al. Sep 1982 A
4370697 Haberl et al. Jan 1983 A
4449261 Magnusson May 1984 A
4485505 Paul Dec 1984 A
4486909 McKneelan Dec 1984 A
4494775 Nash et al. Jan 1985 A
4522447 Snyder et al. Jun 1985 A
4555130 McClain Nov 1985 A
4580301 Ludman et al. Apr 1986 A
4584625 Kellogg Apr 1986 A
4631221 Disselbeck et al. Dec 1986 A
4638519 Hess Jan 1987 A
4665440 Tromborg May 1987 A
4706313 Murphy Nov 1987 A
4753480 Morell Jun 1988 A
4777681 Luck et al. Oct 1988 A
4788730 Bexton Dec 1988 A
4796948 Paul et al. Jan 1989 A
4803744 Peck et al. Feb 1989 A
4825488 Bedford May 1989 A
4856993 Maness et al. Aug 1989 A
4890877 Ashtiani-Zarandi et al. Jan 1990 A
4896389 Chamberland Jan 1990 A
4900065 Houck Feb 1990 A
4930173 Woller Jun 1990 A
4947500 Seiler Aug 1990 A
4949412 Goode Aug 1990 A
4949414 Thomas et al. Aug 1990 A
4951334 Maier Aug 1990 A
4986136 Brunner et al. Jan 1991 A
5002336 Feher Mar 1991 A
5010772 Bourland et al. Apr 1991 A
5010774 Kikuo et al. Apr 1991 A
5029352 Hargest et al. Jul 1991 A
5039567 Landi et al. Aug 1991 A
5051673 Goodwin Sep 1991 A
5085487 Weingartner et al. Feb 1992 A
5086652 Kropp Feb 1992 A
5088747 Morrison et al. Feb 1992 A
5107558 Luck Apr 1992 A
5111544 Graebe May 1992 A
5121513 Thomas et al. Jun 1992 A
5182826 Thomas et al. Feb 1993 A
5191664 Wyatt Mar 1993 A
5201780 Dinsmoor, III et al. Apr 1993 A
5231717 Scott et al. Aug 1993 A
5237879 Speeter Aug 1993 A
5243722 Gusakov Sep 1993 A
5243723 Cotner et al. Sep 1993 A
5255404 Dinsmoor, III et al. Oct 1993 A
5259079 Visser et al. Nov 1993 A
5267364 Volk Dec 1993 A
5269030 Pahno et al. Dec 1993 A
5294181 Rose et al. Mar 1994 A
5306912 Sibbald et al. Apr 1994 A
5311623 Hendi May 1994 A
5323500 Roe et al. Jun 1994 A
5325551 Tappel et al. Jul 1994 A
5364686 Disselbeck et al. Nov 1994 A
5369434 Kawamoto et al. Nov 1994 A
5373595 Johnson et al. Dec 1994 A
5375273 Bodine, Jr. et al. Dec 1994 A
5394576 Soltani et al. Mar 1995 A
5401922 Asta Mar 1995 A
5403065 Callerio Apr 1995 A
5430901 Farley Jul 1995 A
5442823 Siekman et al. Aug 1995 A
5447076 Ziegler Sep 1995 A
5454142 Neely et al. Oct 1995 A
5457833 Jay Oct 1995 A
5473783 Allen Dec 1995 A
5483709 Foster et al. Jan 1996 A
5505072 Oreper Apr 1996 A
5513402 Schwartz May 1996 A
5513899 Michaels et al. May 1996 A
5514832 Dusablon et al. May 1996 A
5515040 Lee et al. May 1996 A
5539942 Melou Jul 1996 A
5542136 Tappel Aug 1996 A
5566409 Klearman Oct 1996 A
5586346 Stacy et al. Dec 1996 A
5588167 Pahno et al. Dec 1996 A
5592707 Dinsmoor, III et al. Jan 1997 A
5594963 Berkowitz Jan 1997 A
5606764 Zhou et al. Mar 1997 A
5611096 Bartlett et al. Mar 1997 A
5623736 Soltani et al. Apr 1997 A
5636395 Serda Jun 1997 A
5636397 Boyd et al. Jun 1997 A
5638564 Greenawalt et al. Jun 1997 A
5647079 Hakamiun et al. Jul 1997 A
5653939 Hollis et al. Aug 1997 A
5662384 O'Neill et al. Sep 1997 A
5666681 Meyer et al. Sep 1997 A
5671977 Jay et al. Sep 1997 A
5675855 Culp Oct 1997 A
5678265 Meyer Oct 1997 A
5678891 O'Neill et al. Oct 1997 A
5680662 Purdy et al. Oct 1997 A
5681092 Hanson et al. Oct 1997 A
5687436 Denton Nov 1997 A
5687438 Biggie et al. Nov 1997 A
5689845 Sobieralski Nov 1997 A
5693886 Seimiya et al. Dec 1997 A
5729853 Thompson Mar 1998 A
5731062 Kim et al. Mar 1998 A
5736656 Fullen et al. Apr 1998 A
5756904 Oreper et al. May 1998 A
5781949 Weismiller et al. Jul 1998 A
5802646 Stolpmann et al. Sep 1998 A
5815865 Washburn et al. Oct 1998 A
5833321 Kim et al. Nov 1998 A
5851930 Bessey et al. Dec 1998 A
5855415 Lilley, Jr. Jan 1999 A
5865474 Takahashi Feb 1999 A
5870785 Hoorens Feb 1999 A
5882322 Kim et al. Mar 1999 A
5896680 Kim et al. Apr 1999 A
5904172 Gifft et al. May 1999 A
5905209 Oreper May 1999 A
5914465 Allen et al. Jun 1999 A
5920934 Hannagan et al. Jul 1999 A
5926884 Biggie et al. Jul 1999 A
5966762 Wu Oct 1999 A
5966763 Thomas et al. Oct 1999 A
5972477 Kim et al. Oct 1999 A
6007898 Kim et al. Dec 1999 A
6014783 Collier et al. Jan 2000 A
6052851 Kohnle Apr 2000 A
6052853 Schmid Apr 2000 A
6061855 Flick May 2000 A
6226271 Dent May 2001 B1
6234006 Sunshine et al. May 2001 B1
6269504 Romano et al. Aug 2001 B1
6286167 Stolpmann Sep 2001 B1
6354999 Dgany et al. Mar 2002 B1
6370718 Schmid Apr 2002 B1
6374681 Vanuytven Apr 2002 B1
6415814 Hand et al. Jul 2002 B1
6487739 Harker Dec 2002 B1
6534985 Holladay, III et al. Mar 2003 B2
6633656 Picard Oct 2003 B1
6687937 Harker Feb 2004 B2
6701556 Romano et al. Mar 2004 B2
6707449 Hinckley et al. Mar 2004 B2
6750852 Gillespie et al. Jun 2004 B2
6782574 Totton et al. Aug 2004 B2
6803906 Morrison Oct 2004 B1
6826968 Manaresi et al. Dec 2004 B2
6885400 Vodanovic Apr 2005 B1
6964205 Papakostas et al. Nov 2005 B2
6972401 Akitt et al. Dec 2005 B2
6985779 Hsiung et al. Jan 2006 B2
7067979 Sakamoto Jun 2006 B2
7191480 Romano et al. Mar 2007 B2
7191482 Romano et al. Mar 2007 B2
7290300 Khambete Nov 2007 B1
7296315 Totton et al. Nov 2007 B2
7339580 Westerman et al. Mar 2008 B2
7469432 Chambers Dec 2008 B2
7469436 Meyer et al. Dec 2008 B2
7480950 Feher Jan 2009 B2
7480953 Romano et al. Jan 2009 B2
7580030 Marten Aug 2009 B2
7609178 Son et al. Oct 2009 B2
7617555 Romano et al. Nov 2009 B2
7638350 Deconde et al. Dec 2009 B2
7657956 Stacy et al. Feb 2010 B2
7698765 Bobey et al. Apr 2010 B2
7712164 Chambers May 2010 B2
7914611 Vrzalik et al. Mar 2011 B2
7937789 Feher May 2011 B2
7937791 Meyer et al. May 2011 B2
7966680 Romano et al. Jun 2011 B2
8108957 Richards et al. Feb 2012 B2
8118920 Vrzalik et al. Feb 2012 B2
8146191 Bobey et al. Apr 2012 B2
8191187 Brykalski et al. Jun 2012 B2
8332975 Brykalski et al. Dec 2012 B2
8372182 Vrzalik et al. Feb 2013 B2
20020073489 Totton et al. Jun 2002 A1
20020128572 Chang Sep 2002 A1
20020195144 Hand et al. Dec 2002 A1
20030046762 Stolpmann Mar 2003 A1
20040133092 Kain Jul 2004 A1
20040237203 Romano et al. Dec 2004 A1
20050021244 Nicoli et al. Jan 2005 A1
20050022308 Totton et al. Feb 2005 A1
20050029453 Allen et al. Feb 2005 A1
20050068041 Kress et al. Mar 2005 A1
20050128082 Stanley et al. Jun 2005 A1
20050172405 Menkedick Aug 2005 A1
20050273940 Petrosenko Dec 2005 A1
20050287974 Zhou Dec 2005 A1
20060007172 Baker et al. Jan 2006 A1
20060075559 Skinner Apr 2006 A1
20060077182 Studt Apr 2006 A1
20060080778 Chambers Apr 2006 A1
20060112489 Bobey Jun 2006 A1
20060137099 Feher Jun 2006 A1
20060168736 Meyer Aug 2006 A1
20070086757 Feher Apr 2007 A1
20070113681 Nishimura et al. May 2007 A1
20070163052 Romano et al. Jul 2007 A1
20070180625 Walke Aug 2007 A1
20070234481 Totton et al. Oct 2007 A1
20070235036 Bobey et al. Oct 2007 A1
20070261548 Vrzalik et al. Nov 2007 A1
20070266499 O'Keefe Nov 2007 A1
20080028533 Stacy Feb 2008 A1
20080180390 Yoshikawa Jul 2008 A1
20080263776 O'Reagan et al. Oct 2008 A1
20080282471 Chambers Nov 2008 A1
20090013470 Richards Jan 2009 A1
20090093912 Wilker, Jr. Apr 2009 A1
20090106906 Soltani Apr 2009 A1
20090106907 Chambers Apr 2009 A1
20090119846 Meyer et al. May 2009 A1
20090126110 Feher May 2009 A1
20090133194 Romano et al. May 2009 A1
20090144909 Skinner Jun 2009 A1
20090183312 Price et al. Jul 2009 A1
20090217460 Bobey Sep 2009 A1
20090237264 Bobey Sep 2009 A1
20100043143 O'Reagan et al. Feb 2010 A1
20100063638 Skinner Mar 2010 A1
20100095461 Romano et al. Apr 2010 A1
20100095462 Bobey et al. Apr 2010 A1
20100101022 Riley Apr 2010 A1
20100132116 Stacy et al. Jun 2010 A1
20110107514 Brykalski et al. May 2011 A1
20110113561 Douglas May 2011 A1
20110209289 Meyer et al. Sep 2011 A1
20110219548 Vrzalik et al. Sep 2011 A1
20110258778 Brykalski et al. Oct 2011 A1
20110258782 Call Oct 2011 A1
20110289685 Romano et al. Dec 2011 A1
20110302720 Yakam et al. Dec 2011 A1
20120144584 Vrzalik et al. Jun 2012 A1
20130145558 Bhai Jun 2013 A1
20130198954 Brykalski et al. Aug 2013 A1
20140196210 Lachenbruch Jul 2014 A1
20140305445 Morimura Oct 2014 A1
20150182400 Meyer Jul 2015 A1
Related Publications (1)
Number Date Country
20160022519 A1 Jan 2016 US