IP Library › Granted Patent US 12,736,705
Granted Patent B2
US 12,736,705 · App. 18/636,431 · Granted Sep 15, 2026

Distributed electromagnetic interrogation system

Inventors: Paul R. Ohodnicki (Allison Park, PA); Jagannath Devkota (Pittsburgh, PA); Roman Shugayev (Albuquerque, NM); Ruishu Wright (Pittsburgh, PA)
Assignee: United States Department of Energy
G01V3/30E21B47/13E21B49/00H01Q1/36
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Quick Facts
Patent No.
US 12,736,705
App. No.
18/636,431
Granted
Sep 15, 2026
Kind
B2
Abstract

A distributed electromagnetic interrogation system may include a wellbore, a wellbore casing positioned in the wellbore, and a plurality of conformal helical antennas distributed along the wellbore casing. The plurality of conformal helical antennas may be configured to operate in a radio or microwave frequency range and to propagate electromagnetic radiation along an external propagating mode of the wellbore casing. An interrogator may be coupled to receive and process data from the plurality of conformal helical antennas.

Claims (58)

1 . A distributed electromagnetic interrogation system comprising:

a wellbore;

a wellbore casing positioned in the wellbore;

a plurality of conformal helical antennas distributed along the wellbore casing, wherein the plurality of conformal helical antennas are configured to operate in a radio or microwave frequency range, wherein the plurality of conformal helical antennas propagate electromagnetic radiation along an external propagating mode of the wellbore casing; and

an interrogator coupled to receive data from the plurality of conformal helical antennas, wherein said interrogator processes the data; and

wherein each of the plurality of conformal helical antennas are coupled to the external propagating mode of the wellbore casing according to:

n

·

S

λ

0

=

1

-

n

·

L

0

·

e

eff

λ

0

.

2 . The distributed electromagnetic interrogation system of claim 1 wherein each of the plurality of conformal helical antennas comprises a microstrip waveguide having a dielectric layer and a metal tape layer, the dielectric layer sandwiched between the metal tape layer and the wellbore casing.

3 . The distributed electromagnetic interrogation system of claim 1 wherein the interrogator provides electromagnetic energy in the radio or microwave frequency range to the plurality of conformal helical antennas via an internal propagating mode of the wellbore casing.

4 . The distributed electromagnetic interrogation system of claim 1 wherein the plurality of conformal helical antennas provides direct electromagnetic imaging of geological conditions surrounding the wellbore.

5 . The distributed electromagnetic interrogation system of claim 1 further comprising:

wellbore cement surrounding the wellbore casing in the wellbore; and

a plurality of sensors embedded into the wellbore cement;

wherein the plurality of sensors are passive and wireless, wherein the propagated electromagnetic radiation excites and interrogates the plurality of sensors, wherein the plurality of sensors re-emits electromagnetic radiation, and wherein the plurality of conformal helical antennas receives the re-emitted electromagnetic radiation.

6 . The distributed electromagnetic interrogation system of claim 1 wherein the electromagnetic coupling between the plurality of conformal helical antennas and the wellbore casing has a resonant frequency of approximately 3.35 GHz.

7 . The distributed electromagnetic interrogation system of claim 1 wherein the plurality of conformal helical antennas provide direct interrogation of surrounding environmental conditions.

8 . A system for interrogating an underground environment comprising:

a borehole;

a metallic tube extending down the borehole;

a plurality of microstrip antennas mounted on and distributed along the metallic tube;

a plurality of wireless sensors distributed down the borehole; and

a source of electromagnetic energy positioned above or near ground level and operable for transmitting electromagnetic energy to the plurality of microstrip antennas;

wherein the plurality of microstrip antennas radiate the electromagnetic energy to interrogate the plurality of wireless sensors, wherein the plurality of wireless sensors re-emit the electromagnetic energy to the plurality of microstrip antennas, and wherein the plurality of microstrip antennas transmits data on the re-emitted electromagnetic energy to the source.

9 . The system for interrogating an underground environment of claim 8 wherein the plurality of microstrip antennas are coupled to an external propagating mode of the metallic tube to radiate the electromagnetic energy to the plurality of wireless sensors.

10 . The system for interrogating an underground environment of claim 8 wherein the metallic tube is a steel wellbore casing.

11 . The system for interrogating an underground environment of claim 10 further comprising wellbore cement in the borehole surrounding the wellbore casing;

wherein each of the plurality of wireless sensors are embedded in the wellbore cement.

12 . The system for interrogating an underground environment of claim 10 wherein each of the plurality of microstrip antennas comprises metal-dielectric tape mounted on an external surface of the steel wellbore casing.

13 . The system for interrogating an underground environment of claim 8 wherein at least one of the plurality of wireless sensors is mounted on an exterior surface of the metallic tube.

14 . The system for interrogating an underground environment of claim 8 wherein the plurality of wireless sensors comprises SAW sensors, solid state sensors, or microwave resonant sensors.

15 . A system for interrogating a subsurface environment comprising:

a casing lined borehole;

a source of electromagnetic energy positionable aboveground and operable for generation of an electromagnetic energy signal;

a plurality of microstrip antennas mounted on the outer surface of the casing and connected to the source of electromagnetic energy via the internal guided modes of the casing, the plurality of microstrip antennas configured to receive and radiate the electromagnetic energy signal via the external guided modes of the casing to the subsurface environment and receive re-emitted electromagnetic energy therefrom; and

a signal analyzer in data connection with the plurality of microstrip antennas.

16 . The system for interrogating a subsurface environment of claim 15 further comprising:

wellbore cement in the borehole around the casing; and

a plurality of wireless sensors embedded in wellbore cement within the borehole, the plurality of wireless sensors comprising passive resonating circuits that modulate the electromagnetic energy signal in response to an environmental condition in the subsurface environment and re-emits the modulated electromagnetic energy to the plurality of microstrip antennas.

17 . The system for interrogating a subsurface environment of claim 15 wherein the plurality of microstrip antennas are distributed along the casing to at least one kilometer below ground level.

18 . The system for interrogating a subsurface environment of claim 15 wherein the plurality of microstrip antennas monitor wellbore failures to estimate in-situ principle horizontal stress state of rock surrounding the borehole.

19 . The system for interrogating a subsurface environment of claim 18 wherein the wellbore failures include one or more of drilling induced tensile fractures and wellbore breakouts.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 19, 2024
From: OHODNICKI, PAUL R; DEVKOTA, JAGANNATH; SHUGAYEV, ROMAN; WRIGHT, RUISHU
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 067164/0602 →
Continuity (1)
Related Publication 20250321349A1 · Oct 16, 2025
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