IP Library Granted Patent US 10,254,426
Granted Patent B2
US 10,254,426 · App. 15/111,465 · Granted Apr 9, 2019

Fiber optic sensor array for electromagnetic data collection

Inventors: Robert Michael Payton (Tomball, TX); Trevor Keith Charles Pugh (Tomball, TX)
Assignee: Deep Imaging Technologies, Inc.
G01V3/083G01V1/24G01V1/226G01V2003/085
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,254,426
App. No.
15/111,465
Granted
Apr 9, 2019
Kind
B2
Abstract

An electromagnetic sensitive fiber optic sensor, including a cylinder portion with a hole through the center, where a surface of the cylinder portion includes a magnetostrictive material, and a fiber cable threaded through the cylinder portion and wrapped around the cylinder portion multiple times. In another embodiment, a mandrel surrounds a magnetorestrictive or piezoelectric material and the fiber cable is wrapped around the mandrel.

Claims (40)

1. An electromagnetic sensitive fiber optic sensor, comprising:

a first fiber optic wrapped cylinder, comprising:

a cylinder portion with a hole through the center, wherein a surface of the cylinder portion includes a magnetostrictive material that changes in length in response to a magnetic field;

a pair of flux concentrators positioned at each end of the cylinder portion; and

a pre-stressed bend-insensitive fiber optic cable threaded through the cylinder portion and wrapped around the cylinder portion a predetermined number of times, wherein the fiber optic cable is rigidly attached to the cylinder portion at each end of the magnetostrictive material,

wherein the number of times is proportional to a sensitivity of the sensor.

2. The electromagnetic sensitive fiber optic sensor of claim 1 , wherein the magnetostrictive material is Terfenol-D (TbDyFe).

3. An electromagnetic sensitive fiber optic sensor, comprising:

a first mandrel formed of a magnetorestrictive or piezoelectric material;

a second mandrel, formed about the first mandrel in an orthogonal orientation; and

a fiber optic cable wrapped around an outer surface of the second mandrel,

wherein the first mandrel comprises a preloaded relaxor electrostrictive polymer.

4. The electromagnetic sensitive fiber optic sensor of claim 3 , wherein the magnetostrictive material is Terfenol-D (TbDyFe).

5. The electromagnetic sensitive fiber optic sensor of claim 1 , further comprising:

a pair of fiber brag gratings, positioned within the fiber optic cable at each end of the magnetostrictive material.

6. The electromagnetic sensitive fiber optic sensor of claim 1 , further comprising a second and third fiber optic wrapped cylinder,

wherein the first, second, and third fiber optic wrapped cylinders are orthogonally positioned relative to each other, forming a three axis fiber optic electromagnetic fiber optic sensor.

7. A method of detecting electromagnetic fields returned from a subsurface formation, comprising:

generating an electromagnetic disturbance in the subsurface formation;

placing an array of electromagnetic sensitive fiber optic sensors above the subsurface formation; and

detecting an effect of electromagnetic fields returned from the subsurface formation by the array of electromagnetic sensitive fiber optic sensors,

wherein each of the array of electromagnetic sensitive fiber optic sensors comprises:

a fiber optic wrapped cylinder, comprising:

a cylinder portion with a hole through the center, wherein a surface of the cylinder portion includes a magnetostrictive material that changes in length in response to a magnetic field;

a pair of flux concentrators positioned at each end of the cylinder portion; and

a pre-stressed bend-insensitive fiber optic cable threaded through the cylinder portion and wrapped around the cylinder portion a predetermined number of times, wherein the fiber optic cable is rigidly attached to the cylinder portion at each end of the magnetostrictive material, wherein the number of times is proportional to a sensitivity of the sensor.

8. The method of claim 7 , further comprising:

providing a second fiber optic cable similar to the fiber optic cable of each of the array of electromagnetic sensitive fiber optic sensors; and

compensating for temperature effects by recording deviations due to temperature in the second fiber optic cable.

9. A method of detecting electromagnetic fields returned from a subsurface formation, comprising:

generating an electromagnetic disturbance in the subsurface formation;

placing an array of electromagnetic sensitive fiber optic sensors above the subsurface formation; and

detecting an effect of electromagnetic fields returned from the subsurface formation by the array of electromagnetic sensitive fiber optic sensors,

wherein each of the array of electromagnetic sensitive fiber optic sensors comprises:

a first mandrel, formed of a magnetostrictive or piezoelectric material;

a second mandrel, formed about the first mandrel in an orthogonal orientation; and

a fiber optic cable wrapped around an outer surface of the second mandrel.

10. The method of claim 9 , further comprising:

providing a second fiber optic cable similar to the fiber optic cable of each of the array of electromagnetic sensitive fiber optic sensors; and

compensating for temperature effects by recording deviations due to temperature in the second fiber optic cable.

Assignments (1)
CHANGE OF NAME Recorded Apr 16, 2024
From: DEEP IMAGING TECHNOLOGIES, INC.
To: ESG SOLUTIONS GROUP, INC.
Reel/Frame 067128/0855 →
Continuity (2)
Provisional Application 61926448 · Jan 13, 2014
Related Publication 20160349396A1 · Dec 1, 2016