IP Library Granted Patent US 10,753,353
Granted Patent B2
US 10,753,353 · App. 15/616,325 · Granted Aug 25, 2020

Peristaltic pump

Inventors: Dean Kamen (Bedford, NH); John M. Kerwin (Manchester, NH); Colin H. Murphy (Cambridge, MA); Christopher C. Langenfeld (Nashua, NH); Michael J. Slate (Merrimack, NH); Michael S. Place (Manchester, NH); Larry B. Gray (Merrimack, NH)
Assignee: DEKA Products Limited Partnership
F04B43/1261A61M5/14228A61M5/16831F04B43/082F04B43/12G01F1/666G06F19/00G06F19/3418G06F19/3468G06Q50/22G16H20/17G16H40/63G16H40/67G16H50/00A61M2005/16863
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Quick Facts
Patent No.
US 10,753,353
App. No.
15/616,325
Filed
Jun 7, 2017
Granted
Aug 25, 2020
Kind
B2
Art Unit
3746
USPC
417/63
Abstract

A peristaltic pump includes a cam shaft, a plunger-cam follower, a tube receiver, a spring-biased plunger, a spring, a position sensor, and a processor. The cam shaft has a plunger cam. The plunger-cam follower engages the plunger cam to follow the plunger cam and to disengage from the plunger cam. The spring-biased plunger is coupled to the plunger-cam follower and the spring biases the spring-biased plunger toward the tube receiver. The position sensor determines a position of the spring-biased plunger when the plunger-cam follower is disengaged from the plunger cam and the spring applies a force from the spring-biased plunger against the tube. The processor estimates fluid flow utilizing the position of the spring-biased plunger as indicated by the position sensor when the plunger-cam follower is disengaged from the plunger cam and the spring applies the force from the spring-biased plunger against the tube.

Claims (47)

1. A peristaltic pump, comprising:

a cam shaft having a plunger cam;

a plunger-cam follower configured to engage the plunger cam to follow the plunger cam and to disengage from the plunger cam, whereby the plunger-cam follower does not follow the plunger cam when disengaged from the plunger cam;

a tube receiver configured to receive a tube;

a spring-biased plunger coupled to the plunger-cam follower;

a spring coupled to the spring-biased plunger, the spring configured to bias the spring-biased plunger toward the tube receiver;

a position sensor operatively coupled to the spring-biased plunger, wherein the position sensor is configured to determine a position of the spring-biased plunger when the plunger-cam follower is disengaged from the plunger cam and the spring applies a force from the spring-biased plunger against the tube; and

a processor coupled to the position sensor to receive the position of the spring-biased plunger, wherein the processor is configured to estimate fluid flow utilizing the position of the spring-biased plunger as indicated by the position sensor when the plunger-cam follower is disengaged from the plunger cam and the spring applies the force from the spring-biased plunger against the tube.

2. The peristaltic pump according to claim 1 , further comprising an angle sensor operatively coupled to the cam shaft configured to determine an angle of rotation of the cam shaft.

3. The peristaltic pump according to claim 2 , wherein the processor compares a first static region of the position sensor to a second static region of the position sensor to estimate the fluid flow.

4. The peristaltic pump according to claim 3 , wherein the processor determines the first static region by identifying the first static region within a predetermined range of angles as indicated by the angle sensor.

5. The peristaltic pump according to claim 4 , wherein the processor determines the second static region by identifying the second static region within a second predetermined range of angles as indicated by the angle sensor.

6. The peristaltic pump according to claim 3 , wherein the processor determines the first and second static regions by measuring the position sensor at predetermined angles as indicated by the angle sensor.

7. The peristaltic pump according to claim 1 , wherein the processor compares a first static region measured by the position sensor to a second static region measured by the position sensor to estimate the fluid flow.

8. The peristaltic pump according to claim 6 , wherein the processor is configured to determine the first static region by identifying a peak movement of the spring-biased plunger as measured by the position sensor and identifies the second static region to be after the peak movement.

9. The peristaltic pump according to claim 6 , wherein the processor determines the second static region by identifying an end of the first static region.

10. The peristaltic pump according to claim 1 , further comprising:

a balancer cam;

a balancer-cam follower; and

a balancer spring configured to bias the balancer-cam follower against the balancer cam,

wherein the balancer cam is shaped to reduce a peak torque of the cam shaft as the cam shaft rotates around its axis of rotation.

11. A peristaltic pump, comprising:

an inlet valve;

an outlet valve;

a cam shaft having a plunger cam;

a plunger-cam follower configured to engage the plunger cam and to disengage from the plunger cam, whereby the plunger-cam follower does not follow the plunger cam when disengaged from the plunger cam;

a tube receiver configured to receive a tube;

a spring-biased plunger coupled to the plunger-cam follower;

a spring coupled to the spring-biased plunger, the spring configured to bias the spring-biased plunger toward the tube receiver;

a position sensor operatively coupled to the spring-biased plunger, wherein the position sensor is configured to determine a position of the spring-biased plunger when:

the plunger-cam follower is disengaged from the plunger cam,

the spring biases the spring-biased plunger against the tube, and

the inlet and outlet valves are closed; and

a processor coupled to the position sensor to receive the position of the spring-biased plunger and to estimate fluid flow utilizing the position of the spring-biased plunger.

12. The peristaltic pump according to claim 11 , further comprising an angle sensor operatively coupled to the cam shaft configured to determine an angle of rotation of the cam shaft.

13. The peristaltic pump according to claim 12 , wherein the processor compares a first static region of the position sensor to a second static region of the position sensor to estimate the fluid flow.

14. The peristaltic pump according to claim 13 , wherein the processor determines the first static region by identifying the first static region within a predetermined range of angles as indicated by the angle sensor.

15. The peristaltic pump according to claim 14 , wherein the processor determines the second static region by identifying the second static region within a second predetermined range of angles as indicated by the angle sensor.

16. The peristaltic pump according to claim 13 , wherein the processor determines the first and second static regions by measuring the position sensor at predetermined angles as indicated by the angle sensor.

17. The peristaltic pump according to claim 11 , wherein the processor compares a first static region measured by the position sensor to a second static region measured by the position sensor to estimate the fluid flow.

18. The peristaltic pump according to claim 16 , wherein the processor is configured to determine the first static region by identifying a peak movement of the spring-biased plunger as measured by the position sensor and identifies the second static region to be after the peak movement.

19. The peristaltic pump according to claim 16 , wherein the processor determines the second static region by identifying an end of the first static region.

20. The peristaltic pump according to claim 11 , further comprising:

a balancer cam;

a balancer-cam follower; and

a balancer spring configured to bias the balancer-cam follower against the balancer cam,

wherein the balancer cam is shaped to reduce a peak torque of the cam shaft as the cam shaft rotates around its axis of rotation.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 7, 2017
From: GRAY, LARRY B.
To: DEKA PRODUCTS LIMITED PARTNERSHIP
Reel/Frame 042637/0481 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 7, 2017
From: MURPHY, COLIN H.
To: DEKA PRODUCTS LIMITED PARTNERSHIP
Reel/Frame 042637/0550 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 7, 2017
From: PLACE, MICHAEL S.
To: DEKA PRODUCTS LIMITED PARTNERSHIP
Reel/Frame 042637/0624 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 7, 2017
From: KAMEN, DEAN; KERWIN, JOHN M.; LANGENFELD, CHRISTOPHER C.; SLATE, MICHAEL J.
To: DEKA PRODUCTS LIMITED PARTNERSHIP
Reel/Frame 042637/0795 →
Continuity (18)
Continuation 14873515 · Oct 2, 2015
Continuation 13725790 · Dec 21, 2012
Continuation 13333574 · Dec 21, 2011
Continuation PCTUS2011066588 · Dec 21, 2011
Continuation In Part 13723238 · Dec 21, 2012
Continuation In Part 13723235 · Dec 21, 2012
Continuation In Part 13724568 · Dec 21, 2012
Continuation In Part 13723239 · Dec 21, 2012
Continuation In Part 13723242 · Dec 21, 2012
Continuation In Part 13723244 · Dec 21, 2012
Continuation In Part 13723251 · Dec 21, 2012
Continuation In Part 13723253 · Dec 21, 2012
Provisional Application 61578649 · Dec 21, 2011
Provisional Application 61578658 · Dec 21, 2011
Provisional Application 61578674 · Dec 21, 2011
Provisional Application 61679117 · Aug 3, 2012
Provisional Application 61651322 · May 24, 2012
Related Publication 20170268497A1 · Sep 21, 2017
Cited By (15)
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