IP Library › Granted Patent US 12,551,394
Granted Patent B2
US 12,551,394 · App. 17/975,535 · Granted Feb 17, 2026

Electro-mechanical controller to support air-pressure-based patient positioning

Inventors: Laurence M. Sandell (Bethesda, MD); James M. Gayes (Naples, FL); Matthew J. Sigakis (Ann Arbor, MI); Robert J. Kimmer (Bethesda, MD)
Assignee: OPAD Airway, Inc.
A61G7/05776A61G7/07A61G13/121A61G13/1265A61G2203/34A61G2205/20F04B49/065
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Quick Facts
Patent No.
US 12,551,394
App. No.
17/975,535
Granted
Feb 17, 2026
Kind
B2
Abstract

A controller for positioning a patient utilizing an inflatable device is provided. The inflatable device may include three independently inflatable chambers. The controller may include first, second, and third pressure output ports; first, second, and third pressure sensors; a plurality of electro-mechanical switches; an electronic user interface; an computer; a pressurized air input port; and an atmospheric air port. The plurality of electro-mechanical switches may be configured to independently control air flow through the first, second, and third pressure output ports. The first, second, and third pressure sensors may be configured to measure pressure internal to the first, second, and third pressure output ports, respectively. The computer may be configured to receive first, second, and third pressure signals from each of the first, second, and third pressure sensors, respectively; to control each of the plurality of electro-mechanical switches; and communication with the user through the electronic user interface.

Claims (107)

1 . A controller for positioning a supine patient utilizing an inflatable device comprising at least three independently inflatable chambers, the controller comprising:

at least first, second, and third pressure output ports;

at least first, second, and third pressure sensors;

a plurality of electro-mechanical switches;

an electronic user interface;

a computer;

a pressurized air input port; and

an atmospheric air port,

wherein:

the plurality of electro-mechanical switches are configured to independently control air flow through the first, second, and third pressure output ports;

the first, second, and third pressure sensors are configured to measure pressure internal to the first, second, and third pressure output ports, respectively;

the computer is configured to receive first, second, and third pressure signals from each of the first, second, and third pressure sensors, respectively;

the computer is configured to control each of the plurality of electro-mechanical switches;

the computer is configured to receive user input from electronic user interface and provide information to the user through the electronic user interface;

the computer is further configured to store first, second, and third target chamber inflation pressure values;

the electronic user interface comprises at least a first user input button; and

the computer is configured to, upon receiving a signal that the first user input button has been pressed, store a measure of pressure from the first pressure sensor as the first target chamber inflation pressure value, store a measure of pressure from the second pressure sensor as the second target chamber inflation pressure value, and store a measure of pressure from the third pressure sensor as the third target chamber inflation pressure value.

2 . The controller of claim 1 , wherein:

the plurality of electro-mechanical switches includes at least first, second, and third chamber switches;

the first chamber switch is configured to control air flow through the first pressure output port;

the second chamber switch is configured to control air flow through the second pressure output port; and

the third chamber switch is configured to control air flow through the third pressure output port.

3 . The controller of claim 2 , wherein:

each of the first, second, and third chamber switches are independently configured to switch between at least a first position configured to connect to the atmospheric air port, a second position configured to connect to the pressurized air input port, and a third position that is closed.

4 . The controller of claim 3 , wherein:

the plurality of electro-mechanical switches includes a pressurization switch;

the pressurization switch is configured to switch between at least a first position configured to connect to the atmospheric air port, a second position configured to connect to the pressurized air input port, and a third position that is closed; and

each of the first, second, and third chamber switches are independently configured to switch between at least a first position configured to connect to the pressurization switch and a second position that is closed.

5 . The controller of claim 1 , wherein:

the electronic user interface comprises a visual display; and

the computer is configured to cause the display to output text indicative of the first, second, and third pressure signals.

6 . The controller of claim 1 , wherein:

the electronic user interface comprises at least a first, second, third, fourth, fifth and sixth user input buttons;

the computer is configured to manipulate the plurality of electro-mechanical switches to cause an increase in pressure in the first pressure output port upon receiving a signal that the first user input button has been pressed;

the computer is configured to manipulate the plurality of electro-mechanical switches to cause a decrease in pressure in the first pressure output port upon receiving a signal that the second user input button has been pressed;

the computer is configured to manipulate the plurality of electro-mechanical switches to cause an increase in pressure in the second pressure output port upon receiving a signal that the third user input button has been pressed;

the computer is configured to manipulate the plurality of electro-mechanical switches to cause a decrease in pressure in the second pressure output port upon receiving a signal that the fourth user input button has been pressed;

the computer is configured to manipulate the plurality of electro-mechanical switches to cause an increase in pressure in the third pressure output port upon receiving a signal that fifth first user input button has been pressed; and

the computer is configured to manipulate the plurality of electro-mechanical switches to cause a decrease in pressure in the third pressure output port upon receiving a signal that the sixth user input button has been pressed.

7 . The controller of claim 6 , wherein:

the electronic user interface comprises a touch screen; and

the first, second, third, fourth, fifth and sixth user input buttons are rendered on the touch screen.

8 . The controller of claim 1 , further comprising:

the first pressure output port further comprises a first quick-connect fitting configured to receive first tubing;

the second pressure output port further comprises a second quick-connect fitting configured to receive second tubing;

the third pressure output port further comprises a third quick-connect fitting configured to receive third tubing.

9 . The controller of claim 1 , wherein:

the computer is configured to, upon receiving the signal that the first user input button has been pressed, manipulate the plurality of electro-mechanical switches to cause pressure in the first, second, and third pressure output ports to equal atmospheric pressure.

10 . The controller of claim 9 , wherein:

the electronic user interface comprises a second user input button; and

the computer is configured to manipulate the plurality of electro-mechanical switches to cause pressure in the first pressure output port to equal the first target chamber inflation pressure value upon receiving a signal that the second user input button has been pressed;

the computer is configured to manipulate the plurality of electro-mechanical switches to cause pressure in the second pressure output port to equal the second target chamber inflation pressure value upon receiving a signal that the second user input button has been pressed; and

the computer is configured to manipulate the plurality of electro-mechanical switches to cause pressure in the third pressure output port to equal the third target chamber inflation pressure value upon receiving a signal that the second user input button has been pressed.

11 . The controller of claim 1 , further comprising

a fourth pressure output port; and

a fourth pressure sensor;

wherein:

the plurality of electro-mechanical switches are configured to independently control air flow through the fourth pressure output port independently from the first, second, and third output ports;

the fourth pressure sensor is configured to measure pressure internal to the fourth output port; and

the computer is configured to receive a fourth pressure signal from the fourth pressure sensor.

12 . The controller of claim 11 , wherein:

the plurality of electro-mechanical switches includes at least first, second, third, and fourth chamber switches;

the first chamber switch is configured to control air flow through the first pressure output port;

the second chamber switch is configured to control air flow through the second pressure output port;

the third chamber switch is configured to control air flow through the third pressure output port; and

the fourth chamber switch is configured to control air flow through the fourth pressure output port.

13 . The controller of claim 1 , further comprising:

a fourth pressure sensor, wherein:

the fourth pressure sensor is configured to measure pressure internal to the pressurized air input port; and

the computer is configured to receive a fourth pressure signal from the fourth pressure sensor.

14 . The controller of claim 13 , wherein:

the computer is configured to provide an alert indication through the electronic user interface if the fourth pressure signal is indicative of inadequate pressure.

15 . The controller of claim 1 , wherein:

the computer is configured to provide an alert indication through the electronic user interface if the computer has instructed plurality of electro-mechanical switches to connect the first pressure output port to the pressured air input and the first pressure signal is indicative of decreasing pressure; and

the computer is configured to provide an alert indication through the electronic user interface if the computer has instructed plurality of electro-mechanical switches to close the first pressure output port and the first pressure signal is indicative of decreasing pressure.

16 . The controller of claim 1 , wherein:

the computer is configured to provide an alert indication through the electronic user interface if the computer has instructed plurality of electro-mechanical switches to connect the first pressure output port to the atmospheric port and the first pressure signal is indicative of increasing pressure; and

the computer is configured to provide an alert indication through the electronic user interface if the computer has instructed plurality of electro-mechanical switches to close the first pressure output port and the first pressure signal is indicative of increasing pressure.

17 . The controller of claim 1 , wherein:

the computer is configured to manipulate the plurality of electro-mechanical switches to cause pressure in at least the second pressure output port to undulate on a periodic basis.

18 . The controller of claim 17 , wherein the periodic basis is 10 minutes or less.

19 . A controller for positioning a supine patient utilizing an inflatable device comprising at least three independently inflatable chambers, the controller comprising:

at least first, second, and third pressure output ports;

at least first, second, and third pressure sensors;

a plurality of electro-mechanical switches;

an electronic user interface;

a computer;

a pressurized air input port; and

an atmospheric air port,

wherein:

the plurality of electro-mechanical switches are configured to independently control air flow through the first, second, and third pressure output ports;

the first, second, and third pressure sensors are configured to measure pressure internal to the first, second, and third pressure output ports, respectively;

the computer is configured to receive first, second, and third pressure signals from each of the first, second, and third pressure sensors, respectively;

the computer is configured to control each of the plurality of electro-mechanical switches;

the computer is configured to receive user input from electronic user interface and provide information to the user through the electronic user interface;

the computer is further configured to store first, second, and third target chamber inflation pressure values;

the electronic user interface comprises at least a first user input button;

the computer is configured to manipulate the plurality of electro-mechanical switches to cause pressure in the first pressure output port to equal the first target chamber inflation pressure value upon receiving a signal that the first user input button has been pressed;

the computer is configured to manipulate the plurality of electro-mechanical switches to cause pressure in the second pressure output port to equal the second target chamber inflation pressure value upon receiving a signal that the first user input button has been pressed; and

the computer is configured to manipulate the plurality of electro-mechanical switches to cause pressure in the third pressure output port to equal the third target chamber inflation pressure value upon receiving a signal that the first user input button has been pressed.

20 . The controller of claim 19 , further comprising:

a fourth pressure output port; and

a fourth pressure sensor;

wherein:

the plurality of electro-mechanical switches are configured to independently control air flow through the fourth pressure output port independently from the first, second, and third output ports;

the fourth pressure sensor is configured to measure pressure internal to the fourth output port; and

the computer is configured to receive a fourth pressure signal from the fourth pressure sensor.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 16, 2022
From: GAYES, JAMES M., MD; SANDELL, LAURENCE M.; KIMMER, ROBERT J.; SIGAKIS, MATTHEW J., MD
To: OPAD AIRWAY INC.
Reel/Frame 061796/0066 →
Continuity (2)
Provisional Application 63272655 · Oct 27, 2021
Related Publication 20230130856A1 · Apr 27, 2023
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