IP Library Granted Patent US 12,465,717
Granted Patent B2
US 12,465,717 · App. 17/877,889 · Granted Nov 11, 2025

Bi-level positive airway pressure device

Inventor: Jeffrey B. Ratner (Pinellas Park, FL)
Assignee: MERCURY ENTERPRISES, INC.
A61M16/206A61M16/0096A61M16/0858A61M2016/0027
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,465,717
App. No.
17/877,889
Granted
Nov 11, 2025
Kind
B2
Abstract

A bi-level positive airway pressure device includes a housing that has a patient port for connecting to an airway of a patient. There is a device (e.g., a nozzle) for generating a positive airway pressure that is directed through a conduit towards the patient port. An exhalation detector includes a nozzle emitting a jet of a gas directed across the conduit and directed at a receptor channel when exhalation gases flow from the patient port, thereby an increase a gas pressure is present at the receptor channel when the exhalation gases flow from the patient port. The exhalation detector converts the increase in the gas pressure into a movement of an occluding member such that when the exhalation gases flow from the patient port, the occluding member moves to block the means for generating the positive airway pressure.

Claims (29)

1 . A bi-level positive airway pressure device comprising:

a housing having a patient port for connecting to an airway of a patient;

means for generating a positive airway pressure directed through a conduit towards the patient port; and

an exhalation detector comprising a nozzle emitting a jet of a gas directed across the conduit, the jet of the gas is directed at a receptor channel when exhalation gases flow from the patient port, thereby an increase a gas pressure is present at the receptor channel when the exhalation gases flow from the patient port, and the exhalation detector having means to convert the increase in the gas pressure into a movement of an occluding member such that when the exhalation gases flow from the patient port, the occluding member moves to block the means for generating the positive airway pressure.

2 . The bi-level positive airway pressure device of claim 1 , wherein the means to convert the increase in the gas pressure comprises a resilient diaphragm that seals a chamber into two sections, the resilient diaphragm mechanically interfaced to the occluding member and the resilient diaphragm is biased towards a first section of the two sections; the first section is fluidly interfaced to the receptor channel such that when the exhalation gases flow from the patient port, the increase in the gas pressure exerts force on the resilient diaphragm to deform the resilient diaphragm and move the occluding member to block the means for generating the positive airway pressure.

3 . The bi-level positive airway pressure device of claim 1 , further comprising a second receptor channel positioned such that the jet of the gas is directed at the second receptor channel when the exhalation gases abate from the patient port, thereby the increase in the gas pressure is present in the second receptor channel.

4 . The bi-level positive airway pressure device of claim 3 , wherein the means to convert the increase in the gas pressure comprises a piston in a cylinder, the piston is mechanically interfaced to the occluding member; a first side of the cylinder is fluidly interfaced to the receptor channel and a second side of the cylinder is fluidly interfaced to the second receptor channel such that when the exhalation gases flow from the patient port, the increase in the gas pressure at the first side of the piston exerts a force on the first side of the piston to move the piston, and therefore, the occluding member to block the means for generating the positive airway pressure and when the exhalation gases abate, the increase in the gas pressure in the second side of the piston exerts an opposite force on an opposite side of the piston to move the piston in an opposing direction and, therefore, moving the occluding member away from the means for generating the positive airway pressure.

5 . The bi-level positive airway pressure device of claim 3 , wherein the means to convert the increase in the gas pressure comprises a diaphragm that seals a chamber into a first section and a second section, the diaphragm mechanically interfaced to the occluding member; the first section fluidly interfaced to the receptor channel and the second section fluidly interfaced to the second receptor channel such that when the exhalation gases flow from the patient port, the increase in the gas pressure in the first section exerts force on a first side of the diaphragm to deform the diaphragm and move the occluding member to block the means for generating the positive airway pressure and when the exhalation gases abate, the increase in the gas pressure in the second section exerts an opposite force on an opposite side of the diaphragm to deform the diaphragm and move the occluding member away from the means for generating the positive airway pressure.

6 . The bi-level positive airway pressure device of claim 5 , wherein the housing has a taper between the means for generating the positive airway pressure and the patient port, the taper linearly decreases in diameter having a greatest diameter at a point closest to the means for generating the positive airway pressure.

7 . A bi-level positive airway pressure device comprising:

a housing having a patient port for connecting to an airway of a patient;

a source of positive airway pressure directed through the housing and towards the patient port, the source of the positive airway pressure positioned near an end of the housing that is distal from the patient port;

a nozzle emitting a jet of a gas directed across the housing at an end of the housing that is closest to the patient port;

a first receptor positioned on a side of the housing opposite of the nozzle, the first receptor receiving the gas from the jet of the gas when there is absence of exhalation gases flowing from the patient port, thereby an increased gas pressure is present at the first receptor when there is an absence of the exhalation gases flowing from the patient port;

a second receptor channel positioned on the side of the housing opposite of the nozzle and closer to the source of the positive airway pressure than the first receptor such that the second receptor channel receives the gas from the jet of the gas when the exhalation gases flow from the patient port and through the housing, thereby the increased gas pressure is present in the second receptor channel during exhalation; and

a diaphragm seals a chamber into a first section and a second section, the diaphragm is mechanically interfaced to an occluding member; the first section of the chamber is fluidly interfaced to the first receptor and the second section of the chamber is fluidly interfaced to the second receptor such that in absence of the flow of the exhalation gases from the patient port, the increase in the gas pressure in the first section exerts force on a first side of the diaphragm to deform the diaphragm and move the occluding member away from the source of the positive airway pressure and when the exhalation gases flow from the patient port, the increase in the gas pressure in the second section exerts an opposing force on an opposite side of the diaphragm to deform the diaphragm and move the occluding member to cover the source of the positive airway pressure.

8 . The bi-level positive airway pressure device of claim 7 , wherein the diaphragm is connected to the occluding member by a shaft.

9 . The bi-level positive airway pressure device of claim 8 , wherein the diaphragm and the chamber are located outside of the housing, the occluding member is located within the housing and the shaft passes through the housing.

10 . The bi-level positive airway pressure device of claim 9 , further comprising a seal around the shaft where the shaft passes through the housing, the seal for preventing the gases from flowing between an area within the housing and a second area within the chamber.

11 . A bi-level positive airway pressure device comprising:

a housing having a patient port for connecting to an airway of a patient;

a source of positive airway pressure directed through the housing and towards the patient port, the source of the positive airway pressure positioned near an end of the housing that is distal from the patient port;

a nozzle emitting a jet of a gas directed across the housing at an end of the housing that is closest to the patient port;

a first receptor positioned on a side of the housing opposite of the nozzle, the first receptor receiving the gas from the jet of the gas when there is absence of exhalation gases flowing from the patient port, thereby an increased gas pressure is present at the first receptor when there is an absence of the exhalation gases flowing from the patient port;

a second receptor positioned on the side of the housing opposite of the nozzle and closer to the source of the positive airway pressure than the first receptor such that the second receptor receives the gas from the jet of the gas when the exhalation gases flow from the patient port and through the housing, thereby the increase in gas pressure is present in the second receptor during the exhalation; and

a piston within a cylinder, the piston is mechanically interfaced to an occluding member; a first side of the cylinder is fluidly interfaced to the first receptor and a second side of the cylinder is fluidly interfaced to the second receptor such that in absence of the flow of the exhalation gases from the patient port, the increase in the gas pressure on the first side of the cylinder exerts force on the first side of the piston to move the piston and, therefore, move the occluding member away from source of the positive airway pressure and when the exhalation gases flow from the patient port, the increase in the gas pressure on the second side of the cylinder exerts an opposing force on the second side of the piston to move the piston and, therefore, move the occluding member to block the source of the positive airway pressure.

12 . The bi-level positive airway pressure device of claim 11 , wherein the piston is connected to the occluding member by a shaft.

13 . The bi-level positive airway pressure device of claim 12 , wherein the cylinder and the piston are located outside of the housing, the occluding member is located within the housing and the shaft passes through the housing.

14 . The bi-level positive airway pressure device of claim 13 , further comprising a seal around the shaft where the shaft passes through the housing, the seal for preventing the gases flowing between an area within the housing and an area within the cylinder.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 30, 2022
From: RATNER, JEFFREY B.
To: MERCURY ENTERPRISES, INC.
Reel/Frame 060678/0216 →
Continuity (5)
Continuation In Part 16752718 · Jan 27, 2020
Continuation In Part 15719663 · Sep 29, 2017
Continuation In Part 14853079 · Sep 14, 2015
Provisional Application 62050554 · Sep 15, 2014
Related Publication 20220362506A1 · Nov 17, 2022
References Cited (11)
US 5002050A · McGinnis · 1991 [cited by applicant]
US 5438980A · Phillips · 1995 [cited by applicant]
US 5896857A · Hely · 1999 [cited by applicant]
US 6253764B1 · Calluaud · 2001 [cited by applicant]
US 8316845B2 · Tappehorn · 2012 [cited by applicant]
US 8439036B2 · Winter · 2013 [cited by applicant]
US 10258759B2 · Ratner · 2019 [cited by applicant]
US 20140150793A1 · Douglas et al. · 2014 [cited by applicant]
US 20160074607A1 · Ratner · 2016 [cited by applicant]
US 20170232224A1 · Ratner · 2017 [cited by applicant]
US 20180021532A1 · Ratner · 2018 [cited by applicant]