IP Library › Granted Patent US 12,290,351
Granted Patent B2
US 12,290,351 · App. 17/292,032 · Granted May 6, 2025

Modular oscillometry device with dynamic calibration

Inventors: Thomas Florian Schuessler (Montreal, CA); Guy Drapeau (Montreal, CA); Lucas Posada Estefan (Montreal, CA); Geoffrey Nicholas Maksym (Dartmouth, CA)
Assignee: THORASYS THORACIC MEDICAL SYSTEMS INC.
A61B5/087A61B5/097A61B2560/0228A61B2560/0443A61B2562/0247A61B2562/18
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Quick Facts
Patent No.
US 12,290,351
App. No.
17/292,032
Granted
May 6, 2025
Kind
B2
Abstract

A module for an oscillometry system of the type having an oscillatory flow source, the module comprises an enclosure adapted to be releasably connected to a core assembly of the oscillometry system. The enclosure defines a breathing flow pathway adapted to be in fluid communication with the oscillatory flow source. A user port is at a first end of the breathing flow pathway configured for receiving a breath of a user. A calibration file specific to the module is programmed as a function of the breathing flow pathway and configured for being used by the oscillometry system to assess breathing parameters for the user.

Claims (30)

1. A module for an oscillometry system of the type having an oscillatory flow source, the module comprising:

an enclosure adapted to be releasably connected to a core assembly of the oscillometry system, the enclosure including a breathing flow pathway adapted to be in fluid communication with the oscillatory flow source, a user port at a first end of the breathing flow pathway configured for receiving a breath of a user;

a calibration file specific to the module, the calibration file programmed as a function of the breathing flow pathway and configured for being used by the oscillometry system to assess breathing parameters for the user.

2. The module according to claim 1 , wherein a protective element is in the breathing flow pathway.

3. The module according to claim 2 , wherein the protective element is a filter.

4. The module according to claim 1 , wherein a flow meter is in the enclosure and in fluid communication with the breathing flow pathway.

5. The module according to claim 4 , wherein the flow meter includes a pneumotachograph resistive mesh screen with a differential pressure transducer.

6. The module according to claim 5 , wherein the pneumotachograph resistive mesh screen is made of polyetheretherketone.

7. The module according to claim 1 , further comprising a pressure meter in the enclosure and in fluid communication with the breathing flow pathway.

8. The module according to claim 7 , wherein the pressure meter includes ports located in an arcuate segment that is at most 75 degrees from either side of a center line of the user port.

9. The module according to claim 1 , wherein an atmospheric port is in the enclosure and is in fluid communication with the breathing flow pathway.

10. The module according to claim 9 , wherein the breathing flow pathway bends from an axial portion including the user portion to a radial portion including the atmospheric portion.

11. The module according to claim 10 , further comprising a flow conditioning mesh in or adjacent the bend of the breathing flow pathway.

12. The module according to claim 1 , including a flexible pipe connected to the enclosure and defining part of the breathing flow pathway.

13. The module according to claim 12 , including a bias flow source in fluid communication with the breathing flow pathway.

14. The module according to claim 1 , including a processing unit in the enclosure, and a non-transitory computer-readable memory communicatively coupled to the processing unit and comprising computer-readable program instructions executable by the processing unit, the calibration file being programmed into the non-transitory computer-readable memory.

15. A modular oscillometry system comprising:

a core assembly having an oscillatory flow source; and

the module as defined in claim 1 .

16. The modular oscillometry system according to claim 15 , wherein the core assembly has a processing module including a non-transitory computer-readable memory communicatively coupled to the processing unit and comprising computer-readable program instructions executable by the processing unit for assessing a breathing parameter of the user using the calibration file.

17. The modular oscillometry system according to claim 15 , including a user interface on the core assembly for displaying data.

18. The modular oscillometry system according to claim 15 , wherein the oscillatory flow source is a piston connected to a linear actuator.

19. The modular oscillometry system according to claim 15 , wherein the oscillatory flow source is loudspeaker.

20. A system for calculating at least one breathing parameter comprising:

a processing unit;

a non-transitory computer-readable memory communicatively coupled to the processing unit and comprising computer-readable program instructions executable by the processing unit for:

controlling an oscillatory flow on a breathing flow pathway of a module,

receiving pressure and/or flow data from at least one breath in the breathing flow pathway of the module,

obtaining a calibration file representative of dynamic properties specific to the breathing flow pathway of the module, and

calculating and outputting the at least one breathing parameter using the pressure and/or flow data and the calibration file.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 10, 2021
From: SCHUESSLER, THOMAS FLORIAN; DRAPEAU, GUY; POSADA ESTEFAN, LUCAS; MAKSYM, GEOFFREY NICHOLAS
To: THORASYS THORACIC MEDICAL SYSTEMS INC.
Reel/Frame 056183/0339 →
Continuity (2)
Provisional Application 62758011 · Nov 9, 2018
Related Publication 20210393161A1 · Dec 23, 2021
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