IP Library Granted Patent US 12,296,096
Granted Patent B2
US 12,296,096 · App. 17/993,522 · Granted May 13, 2025

CPAP system

Inventors: Jeremy William Workman (Blue Mountains, AU); Ernie Wei-Chih Tsai (Sydney, AU); Michael James Dent (Sydney, AU); Max William Andrew Kabilafkas (Sydney, AU); Dimitri Marco Maurer (Gosford, AU); Andrew Chan (Sydney, AU); Justin John Formica (Sydney, AU); Hargopal Verma (Sydney, AU); Katarzyna Anna Krol-Mazur (Sydney, AU); Chia Ik Tan (Sydney, AU); Jessie Cindy Maikim (Mountain View, CA)
Assignee: ResMed Pty Ltd
A61M16/024A61M16/0066A61M16/022A61M16/0816A61M16/107A61M16/108A61M16/1085A61M16/109A61M16/1095A61M16/16A61M16/161A61M2016/0027A61M2016/0039A61M16/0875A61M2205/0233A61M2205/15A61M2205/3653A61M2205/3673A61M2207/00
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Quick Facts
Patent No.
US 12,296,096
App. No.
17/993,522
Granted
May 13, 2025
Kind
B2
Abstract

An apparatus for humidifying a flow of breathable gas includes a water reservoir and a water reservoir dock forming a cavity structured and arranged to receive the water reservoir in an operative position. The water reservoir comprises a reservoir base including a cavity structured to hold a volume of water, the reservoir base including a main body and a thermally conductive portion provided to the main body. The thermally conductive portion comprises a combined layered arrangement including a metal plate and a thin film, the thin film comprising a non-metallic material and including a wall thickness of less than about 1 mm. The thin film is adapted to form at least a bottom interior surface of the water reservoir exposed to the volume of water, and the metal plate is adapted to form a bottom exterior surface of the water reservoir.

Claims (52)

1. A water reservoir for a respiratory pressure therapy (RPT) device to deliver a flow of pressurized breathable gas to a patient, the water reservoir comprising:

a reservoir base including a cavity structured to hold a volume of water when the water reservoir is in a working configuration relative to a water reservoir dock of the RPT device;

a heat conductive portion provided to the reservoir base that forms at least a portion of the cavity configured to hold the volume of water, the heat conductive portion being configured, in the working configuration, to thermally engage a heating assembly formed on the water reservoir dock,

a reservoir lid connected to the reservoir,

a guide arrangement configured and arranged to guide the water reservoir into the working configuration,

wherein the guide arrangement includes a guide rail on each of two opposite sides of the water reservoir, each said guide rail being configured to engage with a respective guide slot provided in the water reservoir dock to guide the water reservoir to the working configuration, and

wherein the guide arrangement further includes at least one biasing edge or tab provided to a leading edge of the water reservoir, the at least one biasing edge or tab being configured to engage underneath at least one abutment edge provided to the water reservoir dock when the water reservoir is in the working configuration.

2. The water reservoir according to claim 1 , wherein the at least one biasing edge or tab comprises a pair of biasing edges or tabs that are spaced from one another along the leading edge and configured to engage a respective said at least one abutment edge in the working configuration.

3. The water reservoir according to claim 1 , wherein the at least one biasing edge or tab includes an upwardly oriented surface configured to engage with the at least one abutment edge in the working configuration, to thereby produce a downward push of the conductive portion towards the heating assembly.

4. The water reservoir according to claim 3 , wherein the upwardly oriented surface of the at least on biasing edge or tab is configured to begin to engage the at least one abutment edge just before the water reservoir reaches the working configuration.

5. The water reservoir according to claim 1 , wherein the at least one biasing edge or tab is configured to engage underneath the at least one abutment edge to thus bias downwardly the water reservoir in order to enhance engagement of the heating assembly with the heat conductive portion of the water reservoir.

6. The water reservoir according to claim 1 , wherein the reservoir lid includes at least one retention protrusion configured to engage with at least one recess of the water reservoir dock to retain the water reservoir in the working configuration.

7. The water reservoir according to claim 6 , wherein the water reservoir is configured such that, when the water reservoir is in the working configuration, 1) the at least one retention protrusion engages with the at least one recess, 2) the at least one biasing edge or tab engages with the at least one abutment edge, and 3) at least one upwardly protruding engagement tab of each said guide rail engages with a downwardly oriented surface of the respective slot.

8. The water reservoir according to claim 1 , wherein each said guide rail is positioned and configured to receive a downward push due to insertion within the respective guide slot, each said guide rail being positioned at an intermediate to rear position of the water reservoir, spaced away from the leading edge where the at least one biasing edge or tab is located.

9. The water reservoir according to claim 1 , wherein the at least one biasing edge or tab is formed on a ledge of the leading edge of the reservoir base, the ledge being formed at a first vertical height and the at least one biasing edge or tab being formed at a second vertical height that is different than the first vertical height.

10. The water reservoir according to claim 1 , wherein each said guide rail includes an upwardly oriented surface including at least one engagement tab configured to engage a downwardly oriented surface of the respective guide slot.

11. The water reservoir according to claim 10 , wherein each said at least one engagement tab is configured to engage and be forced downwardly by the respective downwardly oriented surface to enhance engagement of the heating assembly with the heat conductive portion.

12. A respiratory pressure therapy (RPT) device having the water reservoir dock, the heating assembly and the water reservoir according to claim 1 .

13. The RPT device according to claim 12 , wherein the heating assembly comprises a heater plate including a base surface to thermally contact the heat conductive portion of the water reservoir to allow thermal transfer of heat from the heater plate to water held by the water reservoir.

14. A respiratory pressure therapy (RPT) device to deliver a flow of pressurized breathable gas to a patient, the RPT device comprising:

a water reservoir dock structured and arranged to receive a water reservoir in a working configuration, the water reservoir including being structured to hold a volume of water to humidify the flow of breathable gas, the water reservoir dock including a heating assembly configured to thermally engage a heat conductive portion of the water reservoir in the working configuration,

a guide arrangement structured and arranged to guide the water reservoir into the working configuration with the water reservoir dock,

wherein the guide arrangement includes a guide slot on each of two opposite sides of the water reservoir dock, each said guide slot being configured to engage with a respective guide rail on each side of the water reservoir, and

wherein the guide arrangement further includes at least one abutment edge provided to the water reservoir dock to engage at least one biasing edge or tab provided to a leading edge of the water reservoir when the water reservoir reaches the working configuration, and

wherein the at least one abutment edge includes a downwardly oriented surface configured to engage with an upwardly oriented surface of the at least one biasing edge or tab in the working configuration, to thereby produce a downward push of the conductive portion towards the heating assembly.

15. The RPT device according to claim 14 , wherein the downwardly oriented surface of said at least on abutment edge is configured to begin to engage the at least one biasing edge or tab just before the water reservoir dock fully receives the water reservoir in the working configuration.

16. The RPT device according to claim 14 , wherein the water reservoir dock includes at least one recess configured to receive at least one retention protrusion of the water reservoir to retain the water reservoir in the working configuration.

17. The RPT device according to claim 16 , wherein the water reservoir dock is configured such that when the water reservoir is in the working configuration, 1) the at least one recess receives the at least one retention protrusion, 2) the at least one abutment edge engages with the at least one biasing edge or tab, and 3) a downwardly oriented surface of each said slot engages with at least one upwardly protruding engagement tab of each said guide rail.

18. The RPT device according to claim 14 , wherein each said guide slot is positioned to apply a downward push to each said guide rail, each said guide slot being positioned along a side wall of the dock at an opening of the dock and spaced away from the at least one abutment edge on a back wall of the dock.

19. The RPT device according to claim 14 , wherein the water reservoir dock includes a cavity configured to at least partly receive the water reservoir, the cavity being formed by at least a back wall and two side walls, each said guide slot extending from an opening of the cavity and terminating part way along the respective side wall before reaching the back wall.

20. The RPT device according to claim 14 , wherein a downwardly oriented surface of each said guide slot is configured to engage at least one engagement tab formed on an upwardly oriented surface of each said guide rail.

21. The RPT device according to claim 20 , wherein each said downwardly oriented surface of each said guide slot is configured to downwardly force each said at least one engagement tab to enhance engagement of the heating assembly with the heat conductive portion.

22. The RPT device according to claim 14 , wherein the heating assembly comprises a heater plate including a base surface to thermally contact the heat conductive portion of the water reservoir to allow thermal transfer of heat from the heater plate to a volume of water held by the water reservoir.

23. The RPT device according to claim 22 , wherein the at least one abutment edge is arranged substantially parallel to the heater plate and configured to allow the water reservoir to be inserted and removed along a path extending in a lateral direction into and out of the reservoir dock.

24. The RPT device according to claim 23 , wherein at least a portion of each said slot and/or the at least one abutment edge includes a slope, such that at least a portion of the path for insertion and removal of the water reservoir extends in an inferior/superior direction.

25. A respiratory pressure therapy (RPT) device to deliver a flow of pressurized breathable gas to a patient, the RPT device comprising:

a water reservoir dock structured and arranged to receive a water reservoir in a working configuration, the water reservoir including being structured to hold a volume of water to humidify the flow of breathable gas, the water reservoir dock including a heating assembly configured to thermally engage a heat conductive portion of the water reservoir in the working configuration,

a guide arrangement structured and arranged to guide the water reservoir into the working configuration with the water reservoir dock,

wherein the guide arrangement includes a guide slot on each of two opposite sides of the water reservoir dock, each said guide slot being configured to engage with a respective guide rail on each side of the water reservoir, and

wherein the guide arrangement further includes at least one abutment edge provided to the water reservoir dock to engage at least one biasing edge or tab provided to a leading edge of the water reservoir when the water reservoir reaches the working configuration, and

wherein the at least one abutment edge includes a pair of abutment edges that are spaced from one another and configured to engage a respective said at least one biasing edge or tab in the working configuration.

26. A respiratory pressure therapy (RPT) device to deliver a flow of pressurized breathable gas to a patient, the RPT device comprising:

a water reservoir dock structured and arranged to receive a water reservoir in a working configuration, the water reservoir including being structured to hold a volume of water to humidify the flow of breathable gas, the water reservoir dock including a heating assembly configured to thermally engage a heat conductive portion of the water reservoir in the working configuration,

a guide arrangement structured and arranged to guide the water reservoir into the working configuration with the water reservoir dock,

wherein the guide arrangement includes a guide slot on each of two opposite sides of the water reservoir dock, each said guide slot being configured to engage with a respective guide rail on each side of the water reservoir, and

wherein the guide arrangement further includes at least one abutment edge provided to the water reservoir dock to engage at least one biasing edge or tab provided to a leading edge of the water reservoir when the water reservoir reaches the working configuration, wherein the at least one abutment edge is configured to engage above the at least one biasing edge or tab to thus bias downwardly the water reservoir in order to enhance engagement of the heating assembly with the heat conductive portion of the water reservoir.

27. A respiratory pressure therapy (RPT) device to deliver a flow of pressurized breathable gas to a patient, the RPT device comprising:

a water reservoir dock structured and arranged to receive a water reservoir in a working configuration, the water reservoir including being structured to hold a volume of water to humidify the flow of breathable gas, the water reservoir dock including a heating assembly configured to thermally engage a heat conductive portion of the water reservoir in the working configuration,

a guide arrangement structured and arranged to guide the water reservoir into the working configuration with the water reservoir dock,

wherein the guide arrangement includes a guide slot on each of two opposite sides of the water reservoir dock, each said guide slot being configured to engage with a respective guide rail on each side of the water reservoir, and

wherein the guide arrangement further includes at least one abutment edge provided to the water reservoir dock to engage at least one biasing edge or tab provided to a leading edge of the water reservoir when the water reservoir reaches the working configuration, and

wherein the respiratory pressure therapy device includes the water reservoir.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 23, 2022
From: WORKMAN, JEREMY WILLIAM; TSAI, ERNIE WEI-CHIH; DENT, MICHAEL JAMES; KABILAFKAS, MAX WILLIAM ANDREW; MAURER, DIMITRI MARCO; CHAN, ANDREW; FORMICA, JUSTIN JOHN; VERMA, HARGOPAL; KROL, KATARZYNA; TAN, CHIA IK; MAIKIM, JESSIE CINDY
To: RESMED PTY LTD
Reel/Frame 061866/0768 →
Continuity (6)
Continuation 17830426 · Jun 2, 2022
Continuation 17548874 · Dec 13, 2021
Continuation 17295160
Provisional Application 62835094 · Apr 17, 2019
Provisional Application 62897558 · Sep 9, 2019
Related Publication 20230092335A1 · Mar 23, 2023
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