IP Library Granted Patent US 12,253,398
Granted Patent B2
US 12,253,398 · App. 18/439,309 · Granted Mar 18, 2025

Flow sensor system and method for using same

Inventors: Peter J. Sacchetti (North Falmouth, MA); Hannu Pulli (Westboro, MA)
Assignee: AMSINO MEDICAL INC.
G01F1/6847G01F1/6842
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Quick Facts
Patent No.
US 12,253,398
App. No.
18/439,309
Granted
Mar 18, 2025
Kind
B2
Abstract

A flow sensor system for detecting the presence or absence of flow of a liquid nutrient formula through a conduit of an enteral feeding system. The flow sensor system includes a channel configured to retain the conduit therein, a heat source disposed at a first location at a first portion of the conduit, and a heat detector disposed at a second location at a second portion of the conduit. The heat source may include an IR LED, and the heat detector may include a thermopile sensor. A method for using the flow sensor system to detect the presence or absence of flow of a liquid nutrient formula through a conduit of an enteral feeding system is also disclosed.

Claims (40)

1. A flow sensor system for detecting the presence or absence of a flow of liquid through a conduit of an enteral feeding system, comprising:

a channel configured to retain the conduit therein;

a heat source disposed at a first location at a first portion of the conduit;

a heat detector disposed at a second location at a second downstream portion of the conduit; and

a controller configured to consecutively:

(a) stop the flow of the liquid;

(b) activate the heat source for a programmed time interval;

(c) restart the flow of the liquid;

(d) monitor a relative temperature signal of liquid passing by the second locations over time; and

(e) process the relative temperature signal to detect an occlusion in the conduit.

2. The flow sensor system of claim 1 , wherein the heat source includes an IR LED.

3. The flow sensor system of claim 2 , further comprising a photodiode IR sensor at a location proximate the IR LED, wherein the photodiode IR sensor is configured to be illuminated by the IR LED, and whereby the photodiode IR sensor is used to detect the presence of the conduit in the channel.

4. The flow sensor system of claim 2 , wherein the IR LED is configured to elevate the temperature of a portion of a fluid in the conduit.

5. The flow sensor system of claim 4 , wherein the temperature is elevated by about 3.5° C.

6. The flow sensor system of claim 4 , wherein the fluid portion with the elevated fluid temperature moves downstream through the conduit with fluid flow therethrough.

7. The flow sensor system of claim 6 , wherein the fluid portion with the elevated fluid temperature passes the heat detector, and such passage causes a voltage output versus time.

8. The flow sensor system of claim 7 , wherein the time ranges from 10 seconds to 240 seconds.

9. The flow sensor system of claim 7 , further comprising a controller memory, wherein the voltage output versus time is compared to response curves stored in the controller memory, whereby the comparison allows a user to determine the presence or absence of fluid flow in the conduit.

10. The flow sensor system of claim 9 , wherein the response curves stored in the controller memory include those for reference flows.

11. The flow sensor system of claim 1 , wherein the heat detector includes a thermopile sensor.

12. The flow sensor system of claim 1 , wherein a front portion includes a protrusion adjacent the channel, the protrusion being configured to secure the conduit within the channel.

13. A flow sensor system for detecting the presence or absence of a flow of liquid through a conduit of an enteral feeding system, comprising:

a channel configured to retain the conduit therein;

a heat source disposed at a first location at a first portion of the conduit, the heat source including an IR LED;

a photodiode IR sensor at a location proximate the IR LED, wherein the photodiode IR sensor is configured to be illuminated by the IR LED, and whereby the photodiode IR sensor is used to detect the presence of the conduit in the channel;

a heat detector disposed at a second location at a second downstream portion of the conduit, the heat detector including a thermopile sensor; and

a controller configured to consecutively:

(a) stop the flow of the liquid;

(b) activate the heat source for a programmed time interval;

(c) restart the flow of the liquid;

(d) monitor a relative temperature signal of liquid passing by the second location over time; and

(e) process the relative temperature signal to detect an occlusion in the conduit.

14. The flow sensor system of claim 13 , wherein the IR LED is configured to elevate the temperature of a portion of a fluid in the conduit.

15. The flow sensor system of claim 14 , wherein the temperature is elevated by about 3.5° C.

16. The flow sensor system of claim 14 , wherein the fluid portion with the elevated fluid temperature moves downstream through the conduit with fluid flow therethrough.

17. The flow sensor system of claim 16 , wherein the fluid portion with the elevated fluid temperature passes the heat detector, and such passage causes a voltage output versus time.

18. The flow sensor system of claim 17 , wherein the time ranges from 10 seconds to 240 seconds.

19. The flow sensor system of claim 17 , further comprising a controller memory, wherein the voltage output versus time is compared to response curves stored in the controller memory, whereby the comparison allows a user to determine the presence or absence of fluid flow in the conduit.

20. The flow sensor system of claim 19 , wherein the response curves stored in the controller memory include those for reference flows.

21. The flow sensor system of claim 13 , wherein a front portion includes a protrusion adjacent the channel, the protrusion being configured to secure the conduit within the channel.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 20, 2024
From: ALCOR SCIENTIFIC LLC
To: AMSINO MEDICAL INC.
Reel/Frame 068641/0825 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 6, 2024
From: SACCHETTI, PETER J.; PULLI, HANNU
To: ALCOR SCIENTIFIC INC.
Reel/Frame 067642/0402 →
CHANGE OF NAME Recorded Jun 6, 2024
From: ALCOR SCIENTIFIC INC.
To: ALCOR SCIENTIFIC LLC
Reel/Frame 067661/0658 →
Continuity (3)
Continuation 18302731 · Apr 18, 2023
Provisional Application 63332595 · Apr 19, 2022
Related Publication 20240183698A1 · Jun 6, 2024
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