IP Library Granted Patent US 10,117,986
Granted Patent B2
US 10,117,986 · App. 14/553,104 · Granted Nov 6, 2018

Peritoneal dialysis machine

Inventor: Robert W. Childers (Trinity, FL)
Assignees: Baxter International Inc.; Baxter Healthcare S.A.
A61M1/284A61M1/28A61M1/281A61M1/288A61M1/3621A61M1/3639A61M1/3641A61M1/3643A61M1/3644A61M1/3652G01L7/00G01M3/04A61B5/02042A61M2205/122A61M2205/128A61M2205/70
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Quick Facts
Patent No.
US 10,117,986
App. No.
14/553,104
Granted
Nov 6, 2018
Kind
B2
Abstract

A method for operating a dialysis cassette including a flexible membrane that covers a pump chamber includes allowing a source of fluid to fluidly communicate with the pump chamber of the dialysis cassette, filling the pump chamber with the fluid from the source, mechanically extending the flexible membrane into the pump chamber with a piston head to expel the fluid from the pump chamber through a flow path, and directly sensing a pressure of the fluid flowing through the flow path at a location of the dialysis cassette adjacent to the pump chamber and using the sensed pressure to perform a test prior to delivering fluid to a patient.

Claims (39)

1. A method for operating a dialysis cassette including a flexible membrane that covers a pump chamber, the method comprising:

allowing a source of fluid to fluidly communicate with the pump chamber of the dialysis cassette;

filling the pump chamber with the fluid from the source;

mechanically extending the flexible membrane into the pump chamber with a piston head to expel the fluid from the pump chamber through a flow path; and

directly sensing a pressure of the fluid flowing through the flow path at a location of the dialysis cassette adjacent to the pump chamber and using the sensed pressure to perform a test prior to delivering fluid to a patient.

2. The dialysis cassette operating method of claim 1 , wherein the test includes determining that a line occlusion has occurred based on the sensed pressure.

3. The dialysis cassette operating method of claim 1 , which includes pulling a vacuum on the flexible membrane, opening the membrane within the pump chamber to fill the pump chamber with the fluid.

4. The dialysis cassette operating method of claim 1 , wherein directly sensing the pressure includes directly sensing the pressure of the fluid flowing through the flow path at a location of the dialysis cassette between the pump chamber and a valve actuation position of the flow path.

5. The dialysis cassette operating method of claim 1 , wherein directly sensing the pressure includes contacting the flexible membrane with a pressure sensor.

6. A method for operating a dialysis cassette including a flexible membrane that covers a pump chamber, the method comprising:

allowing a source of fluid to fluidly communicate with the pump chamber of the dialysis cassette;

filling the pump chamber with the fluid from the source;

pushing the flexible membrane into the pump chamber to expel the fluid from the pump chamber through a flow path;

directly sensing a pressure of the fluid flowing through the flow path at a location of the dialysis cassette adjacent to the pump chamber; and

determining that a line occlusion has occurred based on the sensed pressure.

7. The dialysis cassette operating method of claim 6 , which includes determining that the line occlusion has occurred if the sensed pressure increases when pushing the flexible membrane into the pump chamber.

8. The dialysis cassette operating method of claim 6 , which includes determining that the line occlusion has occurred if the sensed pressure fails to meet an expected pressure drop when pushing the flexible membrane into the pump chamber.

9. The dialysis cassette operating method of claim 6 , which includes determining that the line occlusion has occurred during a priming sequence.

10. The dialysis cassette operating method of claim 6 , which includes pulling a vacuum on the flexible membrane, opening the membrane within the pump chamber to fill the pump chamber with the fluid.

11. The dialysis cassette operating method of claim 6 , wherein directly sensing the pressure includes contacting the flexible membrane with a pressure sensor.

12. A dialysis machine comprising:

a housing;

a mechanically actuated piston head extending from a pump actuator housed by the housing, the mechanically actuated piston head positioned to extend towards and away from a fluid pumping cassette, the fluid pumping cassette coupled operably to the housing such that a flexible membrane of the fluid pumping cassette faces the piston head so that the piston head can push the flexible membrane into a pump chamber of the fluid pumping cassette to expel a fluid from the pump chamber;

a pressure sensor located adjacent to the mechanically actuated piston head so as to sense a pressure of the fluid moved by the mechanically actuated piston head within the fluid pumping cassette; and

a controller programmed to use the sensed pressure to perform a test prior to delivering fluid to a patient.

13. The dialysis machine of claim 12 , wherein the test determines whether a line occlusion has occurred.

14. The dialysis machine of claim 12 , which includes a vacuum chamber configured to pull a vacuum on the flexible membrane to open the membrane within the pump chamber to fill the pump chamber with the fluid.

15. The dialysis machine of claim 12 , wherein the pressure sensor directly senses the pressure of the fluid flowing through a flow path at a location of the fluid pumping cassette between the pump chamber and a flow path valve.

16. The dialysis machine of claim 12 , wherein the pressure sensor contacts the flexible membrane.

17. A dialysis machine comprising:

a housing;

a mechanically actuated piston head extending from a pump actuator housed by the housing, the mechanically actuated piston head positioned to extend towards and away from a fluid pumping cassette, the fluid pumping cassette coupled operably to the housing such that a flexible membrane of the fluid pumping cassette faces the piston head so that the piston head can push the flexible membrane into a pump chamber of the fluid pumping cassette to expel a fluid from the pump chamber;

a pressure sensor located adjacent to the mechanically actuated piston head so as to sense a pressure of the fluid moved by the mechanically actuated piston head within the fluid pumping cassette; and

a controller programmed to use the sensed pressure to determine whether a line occlusion has occurred.

18. The dialysis machine of claim 17 , wherein the line occlusion is determined by the controller if the sensed pressure increases when extending the flexible membrane into the pump chamber.

19. The dialysis machine of claim 17 , wherein the line occlusion is determined by the controller if the sensed pressure fails to meet an expected pressure drop when extending the flexible membrane into the pump chamber.

20. The dialysis machine of claim 17 , wherein the line occlusion is determined by the controller during a priming sequence.

21. The dialysis machine of claim 17 , which includes a vacuum chamber configured to pull a vacuum on the flexible membrane to open the membrane within the pump chamber to fill the pump chamber with the fluid.

22. The dialysis machine of claim 17 , wherein the pressure sensor contacts the flexible membrane.

Assignments (2)
SECURITY INTEREST Recorded Jan 31, 2025
From: VANTIVE US HEALTHCARE LLC; GAMBRO RENAL PRODUCTS, INC.
To: ARES CAPITAL CORPORATION
Reel/Frame 070076/0701 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 24, 2015
From: CHILDERS, ROBERT W.
To: BAXTER INTERNATIONAL INC.; BAXTER HEALTHCARE S.A.
Reel/Frame 035237/0846 →
Continuity (6)
Continuation 13373909 · Dec 5, 2011
Continuation 10506738 · Sep 3, 2004
Continuation 10975733 · Oct 27, 2004
Provisional Application 60515815 · Oct 28, 2003
Related Publication 20150082867A1 · Mar 26, 2015
Related Publication 20180264185A9 · Sep 20, 2018
Cited By (2)
US 12,370,125 US 12,414,899