IP Library Granted Patent US 9,372,486
Granted Patent B2
US 9,372,486 · App. 13/834,030 · Granted Jun 21, 2016

System, method, and apparatus for monitoring, regulating, or controlling fluid flow

Inventors: Bob David Peret (Bedford, NH); Brian H. Yoo (Cambridge, MA); Derek G. Kane (Manchester, NH); Dean Kamen (Bedford, NH); Colin H. Murphy (Cambridge, MA); John M. Kerwin (Manchester, NH)
Assignee: DEKA Products Limited Partnership
G05D7/0664A61M5/1689A61M5/16804A61M5/16877A61M39/28A61M39/283F16K7/045F16K7/061F16M11/041F16M13/00F16M13/022G06F19/3418G06F19/3468
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Quick Facts
Patent No.
US 9,372,486
App. No.
13/834,030
Filed
Mar 15, 2013
Granted
Jun 21, 2016
Kind
B2
Art Unit
2126
USPC
700/282
Abstract

A flow meter, and related system and method are provided. The flow meter includes a coupler, a support member, an image sensor, a valve, and one or more processors. The coupler is adapted to couple to a drip chamber. The support member is operatively coupled to the coupler. The image sensor has a field of view and is operatively coupled to the support member. The image sensor is positioned to view the drip chamber within the field of view. The one or more processors are operatively coupled to the image sensor to receive image data therefrom and to the actuator to actuate the valve. The one or more processors are configured to estimate a flow of fluid through the drip chamber and to actuate the valve to control the flow of fluid through the drip chamber to achieve a target flow rate.

Claims (68)

1. A flow meter, comprising:

a coupler adapted to couple to a drip chamber;

a support member operatively coupled to the coupler;

an image sensor having a field of view and operatively coupled to the support member, wherein the image sensor is positioned to view the drip chamber within the field of view;

a valve comprising:

a rigid chamber operatively coupled to the drip chamber;

a flexible tube section disposed within the rigid chamber;

a pump operatively coupled to the rigid chamber and configured to pump fluid into and out of the rigid chamber to thereby actuate the valve; and

an actuator coupled to the pump and configured to actuate the pump; and

at least one processor operatively coupled to the image sensor to receive image data therefrom and to the actuator to actuate the valve, wherein the at least one processor is configured to estimate a flow of fluid through the drip chamber and to actuate the valve to control the flow of fluid through the drip chamber to achieve a target flow rate,

wherein the at least one processor compares an image of the image data to a reference image to estimate at least one parameter of liquid within the drip chamber.

2. The flow meter according to claim 1 , wherein the at least one processor determines an existence of a free flow condition using a distortion of a background pattern caused by the liquid as indicated by the image data.

3. The flow meter according to claim 2 , wherein the background pattern is an array of lines having at least one angle relative to an opening of the drip chamber when viewed from the image sensor using the image data.

4. The flow meter according to claim 3 , wherein the at least processor determines a free flow condition exists when the liquid causes the array of lines to change angles by distortion caused by the liquid when in the free flow condition as viewed within the field of view of the image sensor.

5. The flow meter according to claim 1 , further comprising a non-transitory processor-readable memory in operative communication with the at least one processor, wherein the non-transitory processor-readable memory includes an operative set of processor executable instructions configured for execution by the at least one processor, wherein the operative set of processor executable instructions, when executed by the at least one processor, controls the operation of the at least one processor.

6. The flow meter according to claim 1 , wherein the reference image is a dynamic reference image.

7. The flow meter according to claim 1 , wherein the at least one processor updates the reference image by multiplying each pixel of the reference image by a first constant and adding a corresponding pixel of the image multiplied by a second constant.

8. The flow meter according to claim 1 , further comprising a transceiver, wherein the at least one processor is configured to communicate with a monitoring client through the transceiver to communicate the estimated flow of fluid through the drip chamber.

9. A system comprising:

a flow meter, comprising:

a coupler adapted to couple to a drip chamber;

a support member operatively coupled to the coupler;

an image sensor having a field of view and operatively coupled to the support member, wherein the image sensor is positioned to view the drip chamber within the field of view;

a valve comprising a rigid chamber operatively coupled to the drip chamber, a flexible tube section disposed within the rigid chamber, a pump operatively coupled to the rigid chamber and configured to pump fluid into and out of the rigid chamber to thereby actuate the valve, and an actuator coupled to the pump and configured to actuate the pump; and

at least one processor operatively coupled to the image sensor to receive image data therefrom and to the actuator to actuate the valve, wherein the at least one processor is configured to estimate a flow of fluid through the drip chamber and to actuate the valve to control the flow of fluid through the drip chamber to achieve a target flow rate, wherein the at least one processor compares an image of the image data to a reference image to estimate at least one parameter of liquid within the drip chamber; and

a monitoring client in operative communication with the flow meter to receive the estimated flow of fluid through the drip chamber.

10. A method of controlling a flow meter, the method comprising:

capturing an image of a drip chamber using an image sensor;

estimating a flow of fluid, using a processor, through the drip chamber using the image sensor;

actuating a valve, using the processor, to cause the flow of fluid to reach a target flow rate, the valve comprising a rigid chamber operatively coupled to the drip chamber, a flexible tube section disposed within the rigid chamber, a pump operatively coupled to the rigid chamber and configured to pump fluid into and out of the rigid chamber to thereby actuate the valve;

comparing, using the processor, an image of the image data to a reference image to estimate at least one parameter of liquid within the drip chamber; and

an actuator coupled to the pump and configured to actuate the pump.

11. The method according to claim 10 , further comprising the act of communicating the estimated flow of fluid to a monitoring client.

12. A flow meter, comprising:

a coupler adapted to couple to a drip chamber;

a support member operatively coupled to the coupler;

an image sensor having a field of view and operatively coupled to the support member, wherein the image sensor is positioned to view the drip chamber within the field of view;

a valve comprising:

a rigid chamber operatively coupled to the drip chamber;

a flexible tube section disposed within the rigid chamber;

a pump operatively coupled to the rigid chamber and configured to pump fluid into and out of the rigid chamber to thereby actuate the valve; and

an actuator coupled to the pump and configured to actuate the pump; and

at least one processor operatively coupled to the image sensor to receive image data therefrom and to the actuator to actuate the valve, wherein the at least one processor is configured to estimate a flow of fluid through the drip chamber and to actuate the valve to control the flow of fluid through the drip chamber to achieve a target flow rate,

wherein the at least one processor determines an existence of a free flow condition using a distortion of a background pattern caused by the liquid as indicated by the image data.

13. The flow meter according to claim 12 , wherein the background pattern is an array of lines having at least one angle relative to an opening of the drip chamber when viewed from the image sensor using the image data.

14. The flow meter according to claim 13 , wherein the at least processor determines a free flow condition exists when the liquid causes the array of lines to change angles by distortion caused by the liquid when in the free flow condition as viewed within the field of view of the image sensor.

15. The flow meter according to claim 12 , wherein the at least one parameter is a drop growth rate.

16. The flow meter according to claim 15 , wherein the at least processor is further configured to actuate the valve to control the drop growth rate to thereby achieve the target flow rate.

17. A flow meter, comprising:

a coupler adapted to couple to a drip chamber;

a support member operatively coupled to the coupler;

an image sensor having a field of view and operatively coupled to the support member, wherein the image sensor is positioned to view the drip chamber within the field of view;

a valve comprising:

a rigid chamber operatively coupled to the drip chamber;

a flexible tube section disposed within the rigid chamber; and

an actuator configured to actuate the valve; and

at least one processor operatively coupled to the image sensor to receive image data therefrom and to the actuator to actuate the valve, wherein the at least one processor is configured to estimate a flow of fluid through the drip chamber and to actuate the valve to control the flow of fluid through the drip chamber to achieve a target flow rate,

wherein the at least one processor compares an image of the image data to a reference image to estimate at least one parameter of liquid within the drip chamber.

18. The flow meter according to claim 17 , wherein the at least one processor determines an existence of a free flow condition using a distortion of a background pattern caused by the liquid as indicated by the image data.

19. A flow meter, comprising:

a coupler adapted to couple to a drip chamber;

a support member operatively coupled to the coupler;

an image sensor having a field of view and operatively coupled to the support member, wherein the image sensor is positioned to view the drip chamber within the field of view;

a valve configured to control a flow of fluid through the drip chamber;

an actuator configured to actuate the valve to thereby control the flow of fluid through the drip chamber; and

at least one processor operatively coupled to the image sensor to receive image data therefrom and to the actuator to actuate the valve, wherein the at least one processor is configured to estimate the flow of fluid through the drip chamber and to actuate the valve to control the flow of fluid through the drip chamber to achieve a target flow rate,

wherein the at least one processor compares an image of the image data to a reference image to estimate at least one parameter of liquid within the drip chamber and to thereby actuate the valve using the actuator in response to the at least one parameter to achieve the target flow rate.

20. The flow meter according to claim 19 , wherein the at least one processor determines an existence of a free flow condition using a distortion of a background pattern caused by the liquid as indicated by the image data.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 22, 2014
From: PERET, BOB D.; YOO, BRIAN H.; KANE, DEREK G.; KAMEN, DEAN; MURPHY, COLIN H.; KERWIN, JOHN M.
To: DEKA PRODUCTS LIMITED PARTNERSHIP
Reel/Frame 032015/0263 →
Continuity (55)
Continuation In Part 13333574 · Dec 21, 2011
Continuation In Part PCTUS2011066588 · Dec 21, 2011
Continuation In Part 13723238 · Dec 21, 2012
Continuation In Part 13333574 · Dec 21, 2011
Continuation In Part PCTUS2011066588 · Dec 21, 2011
Continuation In Part 13723235 · Dec 21, 2012
Continuation In Part 13333574 · Dec 21, 2011
Continuation In Part PCTUS2011066588 · Dec 21, 2011
Continuation In Part 13834030
Continuation In Part PCTUS2012071131 · Dec 21, 2012
Continuation In Part 13333574 · Dec 21, 2011
Continuation In Part PCTUS2011066588 · Dec 21, 2011
Continuation In Part 13834030
Continuation In Part 13724568 · Dec 21, 2012
Continuation In Part 13333574 · Dec 21, 2011
Continuation In Part PCTUS2011066588 · Dec 21, 2011
Continuation In Part 13834030
Continuation In Part 13725790 · Dec 21, 2012
Continuation In Part 13333574 · Dec 21, 2011
Continuation In Part PCTUS2011066588 · Dec 21, 2011
Continuation In Part 13834030
Continuation In Part PCTUS2012071490 · Dec 21, 2012
Continuation In Part 13333574 · Dec 21, 2011
Continuation In Part PCTUS2011066588 · Dec 21, 2011
Continuation In Part 13384030
Continuation In Part 13723239 · Dec 21, 2012
Continuation In Part 13333574 · Dec 21, 2011
Continuation In Part PCTUS2011066588 · Dec 21, 2011
Continuation In Part 13834030
Continuation In Part 13723242 · Dec 21, 2012
Continuation In Part 13723244 · Dec 21, 2012
Continuation In Part 13333574 · Dec 21, 2011
Continuation In Part PCTUS2011066588 · Dec 21, 2011
Continuation In Part 13834030
Continuation In Part PCTUS2012071142 · Dec 21, 2012
Continuation In Part 13333574 · Dec 21, 2011
Continuation In Part PCTUS2011066588 · Dec 21, 2011
Continuation In Part 13834030
Continuation In Part 13723251 · Dec 21, 2012
Continuation In Part 13333574 · Dec 21, 2011
Continuation In Part PCTUS2011071112 · Dec 21, 2011
Continuation In Part 13834030
Continuation In Part PCTUS2011071112 · Dec 21, 2012
Continuation In Part 13333574 · Dec 21, 2011
Continuation In Part PCTUS2011066588 · Dec 21, 2011
Continuation In Part 13834030
Continuation In Part 13723253 · Dec 21, 2012
Continuation In Part 13333574 · Dec 21, 2011
Continuation In Part PCTUS2011066588 · Dec 21, 2011
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 20130310990A1 · Nov 21, 2013