IP Library Granted Patent US 9,176,058
Granted Patent B2
US 9,176,058 · App. 14/043,149 · Granted Nov 3, 2015

Reflective sensor for detection of material degradation

Inventors: Vladimir Sinisa Ban (Princeton, NJ); Boris Leonidovich Volodin (Pennington, NJ); Grzegorz Drozdz (Hamilton, NJ); Uri Abrams (Richboro, PA)
Assignee: PD-LD, INC.
G01N21/55G01D5/35367G01M5/0008G01M5/0033G01M11/083G01M11/085G01N17/04G01D5/268G01N2201/0886
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Quick Facts
Patent No.
US 9,176,058
App. No.
14/043,149
Granted
Nov 3, 2015
Kind
B2
Abstract

A sensor for detecting material degradation may include an optical fiber and a housing through which the optical fiber extends. An end cap may be affixed to an end of the housing. Light provided through the optical fiber may be reflected off of the end cap back through the optical fiber. The end cap may be made of a material of interest, and may be situated in an environment wherein the material of interest is present. A light source may provide input light through the optical fiber. A portion of the input light may be reflected off of the end cap. A light receptor may receive the reflected light via the optical fiber. A processing unit may be adapted to compare a measured intensity of the reflected light to a threshold, and to initiate an alarm condition if the measured intensity is below the threshold.

Claims (27)

1. A sensor system, comprising:

an optical fiber;

a housing through which the optical fiber extends;

an optical time-domain reflectometer (OTDR) that injects a series of optical pulses into the optical fiber; and

an end cap affixed to an end of the housing such that the pulses injected into the optical fiber are reflected off of the end cap back through the optical fiber,

wherein the end cap is made of a material of interest, and

wherein the OTDR determines, based on a distance from which the pulses were reflected, whether the material of interest has degraded below a threshold.

2. The sensor system of claim 1 , wherein the OTDR extracts from the optical fiber the pulses that are reflected off of the end cap.

3. The sensor system of claim 1 , wherein the OTDR injects the optical pulses into an end of the optical fiber, and extracts the reflected pulses from the same end of the optical fiber.

4. The sensor system of claim 1 , wherein the OTDR determines the distance from which the pulses were reflected.

5. The sensor system of claim 1 , wherein the OTDR determines, based on a strength of a reflected pulse, that the material of interest has not degraded below the threshold.

6. The sensor system of claim 1 , wherein the OTDR determines, based on a strength of a reflected pulse, that the material of interest has degraded below the threshold.

7. The sensor system of claim 1 , wherein a strength of the pulses that are reflected off of the end cap is measured and integrated as a function of time.

8. The sensor system of claim 7 , wherein whether the material of interest has degraded below an acceptable level is determined from a strength of the pulses that are reflected off of the end cap.

9. A sensor network, comprising:

a plurality of sensors; and

an optical time-domain reflectometer (OTDR),

wherein each of the sensors comprises a respective optical fiber, a respective housing through which the optical fiber extends, and a respective end cap affixed to an end of the respective housing, wherein each of the end caps is made of a material of interest, and

wherein the OTDR injects a respective series of optical pulses into each of the optical fibers, receives respective reflected pulses reflected off of the end caps, and determines, based on respective distances from which the reflected pulses were reflected, a location within the network at which the material of interest has degraded below a threshold.

10. The sensor network of claim 9 , wherein the OTDR extracts from the optical fibers the pulses that are reflected off of the end caps.

11. The sensor network of claim 9 , wherein the OTDR injects the optical pulses into respective ends of the optical fibers, and extracts the respective reflected pulses from the same ends of the optical fibers.

12. The sensor network of claim 9 , further comprising a map of the respective locations of the plurality of sensors in the network.

13. The sensor network of claim 9 , wherein strengths of the pulses that are reflected off of the end caps are measured and integrated as a function of time.

14. The sensor network of claim 9 , wherein the OTDR determines the respective distances from which the pulses were reflected.

15. The sensor network of claim 13 , wherein whether the material of interest has degraded below an acceptable level at the location in the network is determined from the strength of the pulses that are reflected off of the end cap at that location.

16. The sensor network of claim 14 , wherein the OTDR determines, based on the strength of a reflected pulse received from a determined distance associated with a location in the network, that the material of interest has not degraded below the threshold at that location.

17. The sensor network of claim 14 , wherein the OTDR determines, based on the strength of a reflected pulse received from a determined distance associated with a location in the network, that the material of interest has degraded below the threshold at that location.

Assignments (2)
MERGER AND CHANGE OF NAME Recorded Sep 8, 2016
From: PD-LD, INC.; NECSEL INTELLECTUAL PROPERTY, INC.
To: NECSEL INTELLECTUAL PROPERTY, INC.
Reel/Frame 039953/0595 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 18, 2015
From: BAN, VLADIMIR SINISA; VOLODIN, BORIS LEONIDOVICH; DROZDZ, GRZEGORZ; ABRAMS, URI
To: PD-LD, INC.
Reel/Frame 035660/0089 →
Continuity (2)
Provisional Application 61708119 · Oct 1, 2012
Related Publication 20140092389A1 · Apr 3, 2014