IP Library Granted Patent US 11,876,398
Granted Patent B1
US 11,876,398 · App. 16/806,742 · Granted Jan 16, 2024

Systems, methods and computer program products for charging autonomous wireless sensors in subsurface environments

Inventors: Jason E. Heath (Edgewood, NM); Gungor Didem Beskardes (Albuquerque, NM); Wallace McAliley (Golden, CO); Chester J. Weiss (Sandia Park, NM); Mohsen Ahmadian-Tehrani (Austin, TX); David T. Chapman (Austin, TX); Leela Arava (Detroit, MI)
Assignees: National Technology & Engineering Solutions of Sandia, LLC; The Board of Regents of the University of Texas System; Wayne State University
H02J7/02E21B43/267E21B47/06E21B47/07E21B47/13E21B49/00E21B49/0875G01D21/02H02J50/001H02J50/80E21B2200/20
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Quick Facts
Patent No.
US 11,876,398
App. No.
16/806,742
Granted
Jan 16, 2024
Kind
B1
Abstract

Autonomous wireless sensors in subsurface environments can be charged while present in the subsurface environment to allow the sensors to measure and wirelessly transmit measurements. The sensors rely upon a contrast agent to provide a power flow path to the sensors.

Claims (25)

1. A process, comprising:

disposing a plurality of microsensors in a subterranean fracture of a subterranean formation;

computing electrical power density in the subterranean formation;

wirelessly providing power to the plurality of microsensors by one or more elements located at a distance from the plurality of microsensors;

sensing one or more physicochemical states by the plurality of microsensors;

transmitting data of the one or more physicochemical states from the plurality of microsensors to a receiver; and

analyzing the transmitted data;

wherein a factor in determining the provided power is the electrical power density.

2. The process of claim 1 , wherein the plurality of microsensors comprise energy harvesting modules that receive energy from an electrical source.

3. The process of claim 1 , wherein energy is transmitted to wirelessly energize the plurality of microsensors through a contrast agent.

4. The process of claim 3 , wherein the contrast agent comprises a conductive proppant.

5. The process of claim 1 , wherein the plurality of microsensors are disposed in the subterranean fracture in a fracking fluid.

6. The process of claim 1 , wherein the one or more elements are selected from the group consisting essentially of a transmitter, a wellbore, a clutter, a cement, an electromagnetic (EM) contrast agent, and an EM media modifier.

7. A method for monitoring one or more physicochemical states, comprising:

determining an amount of power necessary to power a plurality of microsensors disposed within a subterranean formation in the presence of a contrast agent;

disposing the microsensors and contrast agent within the subterranean formation;

powering the microsensors by a wireless power transmission from a power transmitter located at a distance from the microsensors;

measuring one or more physicochemical states and transmitting the one or more measured physicochemical states;

receiving the one or more measured transmitted physicochemical states; and

analyzing the received one or more physicochemical states to compile the one or more physicochemical states within the subterranean formation;

wherein a factor in determining the amount of power necessary includes determining an electrical power density of the subterranean formation in the presence of the contrast agent.

8. The method of claim 7 , wherein determining the amount of power includes determining a proximate charge to an energy harvesting module that is part of the microsensors necessary to power or charge the microsensors.

9. The method of claim 7 , wherein determining the amount of power includes determining a power profile within the contrast agent.

10. The method of claim 7 , wherein the received one or more measured physicochemical states are received via an antenna disposed in the subterranean formation.

11. The method of claim 7 , wherein the contrast agent is used in concert with embedded microsensors in fractures to map an extent of a fracture network.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 26, 2023
From: ARAVA, LEELA
To: WAYNE STATE UNIVERSITY
Reel/Frame 065359/0079 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 15, 2021
From: AHMADIAN-TEHRANI, MOHSEN; CHAPMAN, DAVID T.
To: BOARD OF REGENTS, THE UNIVERSITY OF TEXAS SYSTEM
Reel/Frame 056543/0143 →
CONFIRMATORY LICENSE Recorded Aug 27, 2020
From: NATIONAL TECHNOLOGY & ENGINEERING SOLUTIONS OF SANDIA, LLC
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 053609/0965 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 25, 2020
From: HEATH, JASON E.; BESKARDES, GUNGOR DIDEM; MCALILEY, WALLACE; WEISS, CHESTER J.
To: NATIONAL TECHNOLOGY & ENGINEERING SOLUTIONS OF SANDIA, LLC
Reel/Frame 053587/0370 →
Continuity (1)
Provisional Application 62812470 · Mar 1, 2019
Cited By (9)
US 12,365,828 US 12,466,992 US 12,521,764 US 12,540,273 US 12,637,611 US 12,649,875 US 12,650,066 US 12,662,624 US 12,674,380