IP Library Granted Patent US 10,309,843
Granted Patent B2
US 10,309,843 · App. 15/379,120 · Granted Jun 4, 2019

Coaxial cable sensor device for distributed strain measurement and shape sensing applications

Inventors: Tao Wei (West Kingston, RI); Zhen Chen (Kingstown, RI); Gerald Hefferman (Warwick, RI)
Assignee: RHODE ISLAND BOARD OF EDUCATION, STATE OF RHODE ISLAND AND PROVIDENCE PLANTATIONS
G01L1/005G01L5/101G02B6/00H01Q13/203
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 10,309,843
App. No.
15/379,120
Granted
Jun 4, 2019
Kind
B2
Abstract

The present disclosure provides a novel distributed coaxial cable strain sensor that can measure a strain profile over the entire length of a cable. Individual strain sensing elements are constructed using Fabry-Perot interferometers, coaxial cable Bragg gratings, or other reflectometry-based sensing structures. By assembling three or more strain sensors together in a bundle, a coaxial cable shape sensing device can be constructed which is capable of accurate three dimensional position measurement.

Claims (25)

1. A coaxial cable strain sensor device for distributed strain measurement comprising:

a coaxial cable including an inner conductor extending along a length of the coaxial cable, an outer conductor extending along a length of the coaxial cable, an insulating material disposed between the inner conductor and the outer conductor and extending along a length of the coaxial cable, and a plurality of sensing elements formed along the length of the coaxial cable, wherein each of said sensing elements comprises one or more reflectors formed in said coaxial cable, and wherein each of said reflectors comprises a physical impedance discontinuity in one or more of said inner conductor, said outer conductor and said insulating material; and

a frequency domain interrogation device configured and arranged to interrogate each of said plurality of sensing elements and to measure strain changes in each of said plurality of sensing elements to provide a strain profile for said coaxial cable,

wherein said sensing elements are interrogated in reflection mode, and said frequency domain interrogation device includes a frequency swept RF signal source.

2. The coaxial cable strain sensor device of claim 1 , wherein each of said sensing elements is selected from the group consisting of Fabry-Perot cavities, coaxial cable Bragg gratings, coiled coaxial cable resonators, and other reflectometry-based sensing structures.

3. The coaxial cable strain sensor device of claim 2 wherein each of said sensing elements comprises a Fabry-Perot cavity formed by a respective pair of spaced reflectors formed in the coaxial cable.

4. The coaxial cable strain sensor device of claim 3 wherein each of said Fabry-Perot cavities are of equal or unequal length.

5. The coaxial cable strain sensor device of claim 2 wherein each of said sensing elements comprises a coaxial cable Bragg grating formed by a plurality of spaced reflectors formed in the coaxial cable.

6. The coaxial cable strain sensor device of claim 1 wherein the frequency swept RF signal source comprises a fast-sweep direct digital synthesizer.

7. The coaxial cable strain sensor device of claim 1 wherein the frequency swept RF signal source comprises a step-frequency direct digital synthesizer.

8. A coaxial cable shape sensing device comprising:

a plurality of coaxial cable strain sensor devices extending in parallel, adjacent relation to form a shape-sensing bundle,

each of said coaxial cable strain sensor devices comprising

a coaxial cable including an inner conductor extending along a length of the coaxial cable, an outer conductor extending along a length of the coaxial cable, an insulating material disposed between the inner conductor and the outer conductor and extending along a length of the coaxial cable, and a plurality of sensing elements formed along the length of the coaxial cable, wherein each of said sensing elements comprises one or more reflectors formed in the coaxial cable, and wherein each of said reflectors comprises a physical impedance discontinuity in one or more of said inner conductor, said outer conductor and said insulating material; and

a frequency domain interrogation device configured and arranged to interrogate each of said plurality of sensing elements and to measure strain changes in each of said plurality of sensing elements to provide a strain profile for said coaxial cable, wherein said sensing elements are interrogated in reflection mode, and said frequency domain interrogation device includes a frequency swept RF signal source; and

a shape-sensing device configured and arranged to receive said strain profile from each of said plurality of coaxial cable sensor devices and to provide a three-dimensional shape profile of said shape-sensing bundle.

9. The coaxial cable shape sensing device of claim 8 , wherein each of said sensing elements is selected from the group consisting of Fabry-Perot cavities, coaxial cable Bragg gratings, coiled coaxial cable resonators, and other reflectometry-based sensing structures.

10. The coaxial cable shape sensing device of claim 9 wherein each of said sensing elements comprises a Fabry-Perot cavity formed by a respective pair of spaced reflectors formed in the coaxial cable.

11. The coaxial cable shape sensing device of claim 10 wherein each of said Fabry-Perot cavities are of equal or unequal length.

12. The coaxial cable shape sensing device of claim 9 wherein said plurality of coaxial cable sensor devices comprises three or more sensor devices.

13. The coaxial cable shape sensing device of claim 8 wherein each of said sensing elements comprises a coaxial cable Bragg grating formed by a plurality of spaced reflectors formed in the coaxial cable.

14. The coaxial cable shape sensing device of claim 8 further comprising an outer jacket surrounding said shape-sensing bundle.

15. The coaxial cable shape sensing device of claim 8 wherein said plurality of coaxial cable sensor devices comprises three or more sensor devices.

16. The coaxial cable shape sensor device of claim 8 wherein the frequency swept RF signal source comprises a fast-sweep direct digital synthesizer.

17. The coaxial cable shape sensor device of claim 8 wherein the frequency swept RF signal source comprises a step-frequency direct digital synthesizer.

Assignments (3)
TRANSFER AND VESTING BY STATUTE Recorded Jun 10, 2020
From: RHODE ISLAND COUNCIL ON POSTSECONDARY EDUCATION
To: UNIVERSITY OF RHODE ISLAND BOARD OF TRUSTEES
Reel/Frame 053756/0652 →
TRANSFER AND VESTING BY STATUTE Recorded Feb 28, 2020
From: RHODE ISLAND BOARD OF EDUCATION, STATE OF RHODE ISLAND AND PROVIDENCE PLANTATIONS
To: RHODE ISLAND COUNCIL ON POSTSECONDARY EDUCATION
Reel/Frame 052873/0898 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 14, 2016
From: WEI, TAO; CHEN, ZHEN; HEFFERMAN, GERALD
To: RHODE ISLAND BOARD OF EDUCATION, STATE OF RHODE ISLAND AND PROVIDENCE PLANTATIONS
Reel/Frame 040737/0276 →
Continuity (2)
Provisional Application 62275306 · Jan 6, 2016
Related Publication 20170191883A1 · Jul 6, 2017