IP Library Granted Patent US 12,029,851
Granted Patent B2
US 12,029,851 · App. 18/333,023 · Granted Jul 9, 2024

Method and system for bi-level treatment of sleep apnea

Inventors: John B. Putman (Celebration, FL); Matthew C. Putman (Brooklyn, NY); Julie A. Orlando (Copley, OH)
Assignee: Nanotronics Health, LLC.
A61M16/0069A61M16/024A61M16/0858A61M16/203G01L27/002A61M2016/0027A61M16/0875A61M16/208A61M2205/70
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Quick Facts
Patent No.
US 12,029,851
App. No.
18/333,023
Granted
Jul 9, 2024
Kind
B2
Abstract

A positive airway pressure device is disclosed herein. The positive airway pressure device includes a blower, a buffer chamber, a gas manifold, a first sensor, a second sensor, and a controller. The buffer chamber is downstream of the blower. The buffer chamber configured to receive gas generated by the blower and output the gas to a patient. The gas manifold is fluidly coupling the blower to the buffer chamber. The first sensor is at least partially disposed in the gas manifold. The first sensor is configured to measure a first pressure in the gas manifold. The second sensor is at least partially disposed in the buffer chamber. The second sensor is configured to measure a second sensor in the buffer chamber.

Claims (47)

1. A positive airway pressure device, comprising:

a blower;

a buffer chamber downstream of the blower, the buffer chamber configured to receive gas generated by the blower and output the gas to a patient;

a gas manifold fluidly coupling the blower to the buffer chamber;

a first sensor at least partially disposed in the gas manifold, the first sensor configured to measure a first pressure in the gas manifold; and

a second sensor at least partially disposed in the buffer chamber, the second sensor configured to measure a second pressure in the buffer chamber.

2. The positive airway pressure device of claim 1 , wherein the first sensor is positioned closer to the blower than the second sensor.

3. The positive airway pressure device of claim 1 , further comprising:

a connector configured to couple the buffer chamber with the gas manifold.

4. The positive airway pressure device of claim 3 , wherein the connector comprises:

a check valve configured to prevent backflow of the gas from the gas manifold into the blower.

5. The positive airway pressure device of claim 1 , further comprising:

a microprocessor in communication with the first sensor, the second sensor, and the blower.

6. The positive airway pressure device of claim 1 , wherein the buffer chamber comprises:

a flow restrictor or disruptor mechanism configured to provide backpressure to the positive airway pressure device.

7. A positive airway pressure device, comprising:

a blower to generate gas to be output to a patient;

a patient connection port downstream of the blower, the patient connection port configured to output the gas generated by the blower to the patient;

a first sensor at least partially disposed in the positive airway pressure device, the first sensor configured to measure a first pressure generated by the blower in the positive airway pressure device; and

a second sensor at least partially disposed in the positive airway pressure device closer to the patient connection port than the first sensor along a flow path from the blower to the patient connection port, the second sensor configured to monitor a respiratory cycle of the patient by measuring a second pressure in the positive airway pressure device, the second pressure relating to a respiratory response of the patient.

8. The positive airway pressure device of claim 7 , wherein the patient connection port is configured to connect with an adjustable valve configured to calibrate the positive airway pressure device.

9. The positive airway pressure device of claim 7 , further comprising:

a check valve configured to prevent backflow of the gas into the blower.

10. The positive airway pressure device of claim 7 , further comprising:

a microprocessor in communication with the first sensor, the second sensor, and the blower.

11. The positive airway pressure device of claim 7 , further comprising:

a flow restrictor or disruptor mechanism configured to provide backpressure to the positive airway pressure device.

12. A positive airway pressure device, comprising:

a blower to generate gas to be output to a patient;

a patient connection port downstream of the blower, the patient connection port configured to output the gas generated by the blower to the patient;

a first sensor at least partially disposed in the positive airway pressure device, the first sensor configured to measure a first pressure generated by the blower in the positive airway pressure device;

a second sensor at least partially disposed in the positive airway pressure device closer to the patient connection port than the first sensor along a flow path from the blower to the patient connection port, the second sensor configured to monitor a respiratory cycle of the patient by measuring a second pressure in the positive airway pressure device, the second pressure relating to a respiratory response of the patient; and

a microprocessor in communication with the first sensor, the second sensor, and the blower, the microprocessor configured to perform operations comprising:

initiating a calibration process for the first sensor;

receiving a first plurality of pressure readings from the first sensor;

receiving a second plurality of pressure readings from the second sensor, the first plurality of pressure readings and the second plurality of pressure readings based on a varying amount of pressure delivered by the positive airway pressure device;

correlating the first plurality of pressure readings with the second plurality of pressure readings; and

calibrating the first sensor based on the correlating.

13. The positive airway pressure device of claim 12 , wherein, during the calibration process, the positive airway pressure device is connected to an adjustable valve via the patient connection port of the positive airway pressure device.

14. The positive airway pressure device of claim 13 , wherein the first plurality of pressure readings and the second plurality of pressure readings are received when the adjustable valve is in a first position of a plurality of positions between fully open and fully closed.

15. The positive airway pressure device of claim 14 , further comprising:

receiving a third plurality of pressure readings from the first sensor; and

receiving a fourth plurality of pressure readings from the second sensor, wherein the third plurality of pressure readings and the fourth plurality of pressure readings are received when the adjustable valve is in a second position of the plurality of positions.

16. The positive airway pressure device of claim 12 , wherein calibrating the first sensor based on the correlating comprises:

calibrating the first sensor to substantially a same pressure measured by the second sensor.

17. The positive airway pressure device of claim 12 , wherein correlating the first plurality of pressure readings with the second plurality of pressure readings comprises:

identifying a linear correlation between the first plurality of pressure readings and the second plurality of pressure readings.

Assignments (2)
SECURITY INTEREST Recorded Nov 30, 2023
From: NANOTRONICS IMAGING, INC.; NANOTRONICS HEALTH LLC; CUBEFABS INC.
To: ORBIMED ROYALTY & CREDIT OPPORTUNITIES IV, LP
Reel/Frame 065726/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 12, 2023
From: PUTMAN, JOHN B.; PUTMAN, MATTHEW C.; ORLANDO, JULIE A.
To: NANOTRONICS HEALTH, LLC.
Reel/Frame 063923/0653 →
Continuity (3)
Continuation 17659971 · Apr 20, 2022
Provisional Application 63292288 · Dec 21, 2021
Related Publication 20230330373A1 · Oct 19, 2023