IP Library Granted Patent US 12,044,609
Granted Patent B2
US 12,044,609 · App. 17/763,733 · Granted Jul 23, 2024

Distributed pressure measurement system for core flood experiments

Inventors: Yogesh B. Gianchandani (Ann Arbor, MI); Tao Li (Ann Arbor, MI); Partha Dutta (Ann Arbor, MI); Alexander Benken (Ann Arbor, MI); John-Richard Ordonez-Varela (Houston, TX)
Assignees: The Regents of The University of Michigan; TOTAL S.E.
G01N15/0826G01L15/00G01L19/0038G01N15/0806G01N33/24G01N2203/0232G01N2203/0617
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Quick Facts
Patent No.
US 12,044,609
App. No.
17/763,733
Granted
Jul 23, 2024
Kind
B2
Abstract

Investigating the permeability and porosity of geological samples is a routine element of geological studies, and is of particular interest in the oil and gas industry. Core-flood experiments are commonly performed on rock samples to measure transport characteristics in the laboratory. This disclosure reports the design and implementation of a high resolution distributed pressure measurement system for core-flood experiments. A series of microfabricated pressure sensors can be embedded in bolts that are housed within the pressurized polymer sheath that encases a rock core. A feedthrough technology has been developed to provide lead transfer between the sensors and system electronics across a 230-bar pressure difference. The system has been successfully benchtop tested with fluids such as synthetic oil and/or gas. Pressure measurements were recorded over a dynamic range of 20 bar with a resolution as small as 0.3 mbar.

Claims (34)

1. A distributed pressure measurement system comprising:

an enclosure that defines a high-pressure chamber;

a sheath disposed within the high-pressure chamber, the sheath defining a tube that extends along a longitudinal axis and that is configured to receive a core sample;

a plurality of pressure sensors embedded in the sheath and disposed along the longitudinal axis of the tube, wherein each pressure sensor is configured to measure pressure at a predetermined position along the surface of the core sample; and

one or more sensor modules distributed on an interior-facing surface of the sheath, wherein each sensor module includes at least one pressure sensor of the plurality of pressure sensors disposed on a circuit board and a sense coil formed on the circuit board.

2. The distributed pressure measurement system of claim 1 , wherein the plurality of pressure sensors measure pressure by detecting changes in electrical capacitance.

3. The distributed pressure measurement system of claim 1 , wherein the plurality of pressure sensors are grouped into subsets of pressure sensors such that the pressure sensors in a given subset of pressure sensors are arranged around the longitudinal axis of the tube and symmetrically to each other.

4. The distributed pressure measurement system of claim 3 , wherein each pressure sensor in a given subset of pressure sensors is spaced 120 degrees apart from other pressure sensors in the respective subset.

5. The distributed pressure measurement system of claim 3 , wherein each pressure sensor in a given subset of pressure sensors is spaced 90 degrees apart from other pressure sensors in the respective subset.

6. The distributed pressure measurement system of claim 1 , further comprises at least one receiver circuit positioned outside of the enclosure, wherein the plurality of pressure sensors communicate pressure measurements to the at least one receiver circuit.

7. The distributed pressure measurement system of claim 1 , wherein the one or more pressure sensors and the sense coil form an LC sensor module such that changes in capacitance by the plurality of the pressure sensors causes a change in resonant frequency of the LC sensor module.

8. The distributed pressure measurement system of claim 7 , further comprising one or more readout nodes arranged outside of the sheath, such that each readout node is aligned adjacent to a corresponding sensor module, wherein each readout node includes a readout coil inductively coupled to the sense coil of the corresponding sensor module and a readout circuit configured to detect changes in resonant frequency of the LC sensor module.

9. The distributed pressure measurement system of claim 8 , wherein the one or more readout nodes are disposed on an exterior surface of the sheath and are configured to communicate with a controller disposed outside of the enclosure.

10. The distributed pressure measurement system of claim 1 , wherein the plurality of pressure sensors are encapsulated in a flexible mold.

11. A distributed pressure measurement system comprising:

an enclosure that defines a high-pressure chamber;

a sheath disposed within the high-pressure chamber, the sheath defining a tube that extends along a longitudinal axis and that is configured to receive a core sample;

a plurality of pressure sensors embedded in the sheath and disposed along the longitudinal axis of the tube, wherein each pressure sensor is configured to measure pressure at a predetermined position along the surface of the core sample;

a controller in wired communication with the plurality of pressure sensors, wherein the controller is disposed outside of the enclosure;

a plurality of plugs, wherein each plug is received by a feedthrough hole formed in the sheath and is configured to host one of the plurality of pressure sensors; and

a circuit board disposed on an exterior surface of the sheath and electrically coupled to each of the plurality of pressure sensors.

12. The distributed pressure measurement system of claim 11 , wherein the plurality of pressure sensors are grouped into subsets of pressure sensors such that the pressure sensors in a given subset of pressure sensors are arranged around the longitudinal axis of the tube and symmetrically to each other.

13. The distributed pressure measurement system of claim 12 , wherein each pressure sensor in a given subset of pressure sensors is spaced 120 degrees apart from other pressure sensors in the respective subset.

14. The distributed pressure measurement system of claim 12 wherein each pressure sensor in a given subset of pressure sensors is spaced 90 degrees apart from other pressure sensors in the respective subset.

15. The distributed pressure measurement system of claim 11 , wherein the plurality of pressure sensors are encapsulated in a flexible mold.

16. A distributed pressure measurement system comprising:

an enclosure that defines a high-pressure chamber;

a polymeric sheath disposed within the high-pressure chamber and defining a low-pressure chamber that extends along a longitudinal axis and that is configured to receive a core sample;

a plurality of pressure sensors embedded in the sheath and disposed along the longitudinal axis of the low-pressure chamber, wherein the plurality of pressure sensors are grouped into one or more subsets of pressure sensors, wherein each subset includes at least one pressure sensor of the plurality of pressure sensors and in each given subset of pressure sensors having two or more pressure sensors the pressure sensors are arranged around the longitudinal axis of the low-pressure chamber and symmetrically to each other; and

one or more sensor modules distributed on an interior-facing surface of the sheath, wherein each sensor module includes the plurality of pressure sensors disposed on a circuit board and a sense coil formed on the circuit board, wherein the plurality of pressure sensors and the sense coil form an LC sensor module such that changes in capacitance by the one or more pressure sensors causes a change in resonant frequency of the LC sensor module.

17. The distributed pressure measurement system of claim 16 , wherein the plurality of pressure sensors measure pressure by detecting changes in electrical capacitance.

18. The distributed pressure measurement system of claim 16 , further comprising at least one receiver circuit positioned outside of the enclosure, wherein the plurality of pressure sensors communicate pressure measurements to the at least one receiver circuit.

19. The distributed pressure measurement system of claim 16 , further comprising one or more readout nodes arranged outside of the sheath, such that each readout node is aligned adjacent to a corresponding sensor module, wherein each readout node includes a readout coil inductively coupled to the sense coil of the corresponding sensor module and a readout circuit configured to detect changes in resonant frequency of the LC sensor module.

20. The distributed pressure measurement system of claim 19 , wherein the one or more readout nodes are disposed on an exterior surface of the sheath and are configured to communicate with a controller disposed outside of the enclosure.

Assignments (4)
CORRECTIVE ASSIGNMENT TO CORRECT THE NAME OF THE ASSIGNEE PREVIOUSLY RECORDED AT REEL: 67096 FRAME: 87. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Jun 26, 2024
From: TOTALENERGIES SE (PREVIOUSLY TOTAL SA THEN TOTAL SE)
To: TOTALENERGIES ONETECH
Reel/Frame 068051/0530 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 12, 2024
From: TOTALENERGIES SE (PREVIOUSLY TOTAL SA THEN TOTAL SE)
To: TOTALENERGIES ONETECH (PREVIOUSLY TOTALENERGIES ONE TECH)
Reel/Frame 067096/0087 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 25, 2022
From: ORDONEZ-VARELA, JOHN-RICHARD, MR.
To: TOTAL S.E.
Reel/Frame 059401/0979 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 25, 2022
From: GIANCHANDANI, YOGESH B.; LI, TAO; DUTTA, PARTHA, MR.; BENKEN, ALEXANDER, MR.
To: THE REGENTS OF THE UNIVERSITY OF MICHIGAN
Reel/Frame 059402/0131 →
Continuity (2)
Provisional Application 62910828 · Oct 4, 2019
Related Publication 20220326136A1 · Oct 13, 2022