IP Library Granted Patent US 11,674,915
Granted Patent B2
US 11,674,915 · App. 16/995,427 · Granted Jun 13, 2023

Sensing system and method

Inventors: Radislav Alexandrovich Potyrailo (Niskayuna, NY); Daniel White Sexton (Niskayuna, NY); Steven Y. Go (Niskayuna, NY)
Assignee: General Electric Company
G01N27/026G01N33/2888
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Quick Facts
Patent No.
US 11,674,915
App. No.
16/995,427
Granted
Jun 13, 2023
Kind
B2
Abstract

A sensor system includes a multi-frequency sensor assembly including a single sensor body housing with a sensing region circuit and a sensor reader disposed in the sensor body. The sensor body is configured to be in operational contact with a fluid. The sensing region circuit is configured to generate different electric fields having different frequencies in the fluid. The sensor reader includes one or more processors configured to examine one or more impedance responses of the sensing region circuit at different frequencies and to determine one or more properties of the fluid based on the one or more impedance responses that are examined.

Claims (34)

1. A sensor system comprising:

a sensor assembly performing multi-frequency operations disposed in a single, contiguous sensor body, wherein the contiguous sensor body is configured to be in operational contact with a fluid; and

a sensor reader disposed in the contiguous sensor body, wherein

the sensor assembly is communicatively coupled to the sensor reader within the contiguous sensor body, wherein the sensor assembly comprises

a single sensing region comprising an interdigitated electrode, and

a plurality of tuning elements electrically coupled to the single sensing region, wherein each tuning element of the plurality of tuning elements generates a resonant circuit with the single sensing region having a respective resonant frequency range,

wherein the sensor assembly is configured to generate respective electric fields having frequencies over the respective resonant frequency ranges of the respective resonant circuits in the fluid, and

wherein the sensor reader includes one or more processors configured to examine respective impedance responses of the sensor assembly based on generating the respective electric fields to determine one or more properties of the fluid based on the examined respective impedance responses.

2. The sensor system of claim 1 , wherein the sensor reader is configured to acquire measurements of the respective impedance responses from the sensor assembly at a resolution of one or more of 8 bit, 12 bit, or 16 bit.

3. The sensor system of claim 1 , wherein the sensor reader is configured to acquire measurements of the one or more properties of the fluid at a resolution greater than 16 bit by one or more of filtering or averaging the measurements.

4. The sensor system of claim 1 , wherein the contiguous sensor body is configured to protect the sensor assembly and the sensor reader from damage caused by temperatures up to 250 degrees Celsius.

5. The sensor system of claim 1 , wherein the contiguous sensor body is configured to operate the sensor assembly and the sensor reader at temperatures up to 250 degrees Celsius.

6. The sensor system of claim 1 , wherein the sensor assembly is configured to generate an electrical signal representative of the respective impedance responses after generating the respective electric fields in the fluid.

7. The sensor system of claim 1 , wherein the sensor assembly is communicatively coupled to the sensor reader within the contiguous sensor body via one or more wireless connections.

8. The sensor system of claim 1 , wherein the interdigitated electrode is coated with a sensing film.

9. The sensor system of claim 1 , wherein the sensor reader is configured to examine respective impedance responses based on different resonant frequencies associated with each tuning element of the plurality of tuning elements.

10. A sensor system comprising:

a sensor assembly performing multi-frequency operations disposed in a single, contiguous sensor body, wherein the contiguous sensor body is configured to be in operational contact with an industrial fluid; and

a sensor reader disposed in the contiguous sensor body, wherein

the sensor assembly is communicatively coupled to the sensor reader within the contiguous sensor body, wherein the sensor assembly comprises

a single sensing region comprising an interdigitated electrode, and

a plurality of tuning elements electrically coupled to the single sensing region, wherein each tuning element of the plurality of tuning elements generates a resonant circuit with the single sensing region having a respective resonant frequency range,

wherein the sensor assembly is configured to generate respective electric fields having frequencies over the respective resonant frequency ranges of the respective resonant circuits in the industrial fluid, and

wherein the sensor reader includes one or more processors configured to examine respective impedance spectra of the sensor assembly based on generating the respective electric fields to determine one or more properties of the industrial fluid based on the examined respective impedance spectra.

11. The sensor system of claim 10 , wherein the sensor assembly is a non-resonant circuit for different frequencies of the respective electric fields generated by the sensor assembly in the industrial fluid.

12. The sensor system of claim 10 , wherein the sensor assembly is a resonant circuit for different frequencies of the respective electric fields generated by the sensor assembly in the industrial fluid.

13. The sensor system of claim 10 , wherein the different frequencies comprise non-harmonic resonant frequencies.

14. The sensor system of claim 10 , wherein the sensor assembly is configured to generate the different frequencies by sweeping through the frequency range.

15. The sensor system of claim 10 , wherein the sensor assembly is configured to generate the different frequencies by stepping through the frequency range such that discrete frequencies of the different frequencies are generated at respective times for different, non-zero periods of time.

16. The sensor system of claim 10 , wherein the sensor reader is configured to communicate a digital output signal to an external controller that represents at least one of the respective impedance spectra of the sensor assembly or at least one of the one or more properties of the industrial fluid.

17. The sensor system of claim 16 , wherein the sensor reader is configured to communicate the digital output signal to the external controller via a wireless signal or a wired connection.

18. The sensor system of claim 10 , wherein the sensor reader has a digital address for communication with an external controller.

19. The sensor system of claim 10 , wherein the sensor reader is configured to provide digital data security for communication between the sensor reader and one or more external controllers.

20. The sensor system of claim 10 , wherein the sensor assembly is configured to be powered via ambient energy harvesting.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 17, 2023
From: GENERAL ELECTRIC COMPANY
To: GE INFRASTRUCTURE TECHNOLOGY LLC
Reel/Frame 065727/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 17, 2020
From: POTYRAILO, RADISLAV ALEXANDROVICH; SEXTON, DANIEL WHITE; GO, STEVEN Y.
To: GENERAL ELECTRIC COMPANY
Reel/Frame 053515/0453 →
Continuity (27)
Continuation 15060193 · Mar 3, 2016
Continuation In Part 14866320 · Sep 25, 2015
Continuation In Part 14421245 · Feb 12, 2015
Continuation 14585690 · Dec 30, 2014
Continuation In Part 14532168 · Nov 4, 2014
Continuation In Part 14031965 · Sep 19, 2013
Continuation In Part 14031951 · Sep 19, 2013
Continuation In Part 13838884 · Mar 15, 2013
Continuation In Part 13729800 · Dec 28, 2012
Continuation In Part 13729851 · Dec 28, 2012
Continuation In Part 13630587 · Sep 28, 2012
Continuation In Part 13630939 · Sep 28, 2012
Continuation In Part 13630954 · Sep 28, 2012
Continuation In Part 13630739 · Sep 28, 2012
Continuation In Part 12325653 · Dec 1, 2008
Continuation In Part 13558499 · Jul 26, 2012
Continuation In Part 13538570 · Jun 29, 2012
Continuation In Part 13484674 · May 31, 2012
Continuation In Part 13331003 · Dec 20, 2011
Continuation In Part 12977568 · Dec 23, 2010
Continuation In Part 12827623 · Jun 30, 2010
Continuation In Part 12824436 · Jun 28, 2010
Continuation 12424016 · Apr 15, 2009
Continuation In Part 11560476 · Nov 16, 2006
Provisional Application 61987853 · May 2, 2014
Provisional Application 61692230 · Aug 22, 2012
Related Publication 20210033552A1 · Feb 4, 2021
Cited By (1)
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