IP Library Granted Patent US 12,274,831
Granted Patent B2
US 12,274,831 · App. 18/350,097 · Granted Apr 15, 2025

Oscillating positive expiratory pressure device

Inventors: Adam Meyer (London, CA); Dan Engelbreth (London, GB)
Assignee: Trudell Medical International Inc.
A61M16/208A61M16/0006A61M16/0866A63B21/00196A63B23/18A61M15/00A63B2071/0694
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Quick Facts
Patent No.
US 12,274,831
App. No.
18/350,097
Granted
Apr 15, 2025
Kind
B2
Abstract

A respiratory treatment device comprising at least one chamber, a chamber inlet configured to receive exhaled air into the at least one chamber, at least one chamber outlet configured to permit exhaled air to exit the at least one chamber, and an exhalation flow path defined between the chamber inlet and the at least one chamber outlet. A restrictor member positioned in the exhalation flow path is moveable between a closed position, where a flow of exhaled air along the exhalation flow path is restricted, and an open position, where the flow of exhaled air along the exhalation flow path is less restricted. A vane in fluid communication with the exhalation flow path is operatively connected to the restrictor member and is configured to reciprocate between a first position and a second position in response to the flow of exhaled air along the exhalation flow path.

Claims (39)

1. A respiratory treatment device comprising:

a housing;

an inlet configured to receive air into the housing;

an outlet configured to permit air to exit the housing;

a flow path defined between the inlet and the outlet;

an orifice positioned along the flow path, the flow path passing through the orifice, the orifice configured to increase in size in response to a flow of air along the flow path;

a restrictor member movable between a closed position, where the flow of air along the flow path is restricted, and an open position, where the flow of air along the flow path is less restricted; and,

wherein the restrictor member is positioned along the flow path in a location upstream of the orifice.

2. The respiratory treatment device of claim 1 , wherein the restrictor member is moveable repeatedly between the closed position and the open position in response to the flow of air along the flow path.

3. The respiratory treatment device of claim 1 , wherein the orifice is formed in a nozzle.

4. The respiratory treatment device of claim 1 , wherein the orifice is formed in a duck-bill valve.

5. The respiratory treatment device of claim 1 , wherein the orifice is formed by a flexible material.

6. The respiratory treatment device of claim 1 , wherein the orifice has a rectangular cross-sectional shape.

7. The respiratory treatment device of claim 1 , wherein the orifice is expandable from a first size to a second size without a change in a cross-sectional shape of the orifice.

8. A respiratory treatment device comprising:

a housing;

an inlet configured to receive air into the housing;

an outlet configured to permit air to exit the housing;

a flow path defined between the inlet and the outlet;

an orifice positioned along the flow path, the flow path passing through the orifice, the orifice configured to increase in size in response to a flow of air along the flow path;

a vane positioned in the flow path adjacent the orifice, the vane being configured to rotate in response to the flow of air along the flow path; a restrictor member operably connected to the vane; and,

wherein the restrictor member is positioned along the flow path in a location upstream of the orifice.

9. The respiratory treatment device of claim 8 , wherein the orifice is formed in a nozzle.

10. The respiratory treatment device of claim 8 , wherein the orifice is formed in a duck-bill valve.

11. The respiratory treatment device of claim 8 , wherein the orifice is formed by a flexible material.

12. The respiratory treatment device of claim 8 , wherein the orifice has a rectangular cross-sectional shape.

13. The respiratory treatment device of claim 8 , wherein the orifice is expandable from a first size to a second size without a change in a cross-sectional shape of the orifice.

14. A respiratory treatment device comprising:

a housing;

an inlet configured to receive air into the housing;

an outlet configured to permit air to exit the housing;

a flow path defined between the inlet and the outlet;

an orifice positioned along the flow path, the flow path passing through the orifice, the orifice configured to increase in size in response to a flow of air along the flow path;

a vane positioned in the flow path adjacent the orifice, the vane being configured to rotate in response to the flow of air along the flow path; and,

a restrictor member operably connected to the vane, the restrictor member being movable between a closed position, where the flow of air along the flow path is restricted, and an open position, where the flow of air along the flow path is less restricted.

15. The respiratory treatment device of claim 14 , wherein the orifice is formed in a nozzle.

16. The respiratory treatment device of claim 14 , wherein the orifice is formed by a flexible material.

17. The respiratory treatment device of claim 14 , wherein the orifice has a rectangular cross-sectional shape.

18. The respiratory treatment device of claim 14 , wherein the orifice is expandable from a first size to a second size without a change in a cross-sectional shape of the orifice.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 3, 2024
From: TRUDELL MEDICAL INTERNATIONAL; TRUDELL PARTNERSHIP HOLDINGS LIMITED; PACKARD MEDICAL SUPPLY CENTRE LTD
To: TRUDELL MEDICAL INTERNATIONAL INC.
Reel/Frame 067003/0423 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 11, 2023
From: MEYER, ADAM; ENGELBRETH, DAN
To: TRUDELL MEDICAL INTERNATIONAL
Reel/Frame 064209/0918 →
Continuity (7)
Continuation 17324448 · May 19, 2021
Continuation 15903761 · Feb 23, 2018
Continuation 15143092 · Apr 29, 2016
Continuation 13489894 · Jun 6, 2012
Provisional Application 61532951 · Sep 9, 2011
Provisional Application 61493816 · Jun 6, 2011
Related Publication 20240100292A1 · Mar 28, 2024
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