IP Library Granted Patent US 10,564,068
Granted Patent B2
US 10,564,068 · App. 15/641,951 · Granted Feb 18, 2020

Edge propagating optical time domain reflectometer and method of using the same

Inventors: Aravanan Gurusami (Morgan Hill, CA); Timothy Zahnley (Savona, NY); Scott Dahl (Lindley, NY); Deepak Devicharan (Horseheads, NY); Ian Peter McClean (Brixham, GB)
Assignee: II-VI Delaware, Inc.
G01M11/3109G01M11/3145
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 10,564,068
App. No.
15/641,951
Granted
Feb 18, 2020
Kind
B2
Abstract

An OTDR system utilizes a laser source that is turned “on” and kept powered until its light reaches the end of the fiber span being measured (i.e., until the fiber span is fully illuminated). At any point in time after the fiber is fully illuminated, the laser source can be turned “off”. The return (reflected and backscattered) signal is directed into a photodetector of the OTDR, and is measured from the point in time when the fiber span starts to be illuminated. The measurements are made by sampling the return signal at predetermined time intervals—defined as the sampling rate. The created power samples are then subjected to post-processing in the form of a differentiation operation to create a conventional OTDR trace from the collected data.

Claims (21)

1. An OTDR measurement system comprising:

a laser source for injecting a continuous light probe signal into an input endface of an optical fiber span being measured so as to propagate therealong and fully illuminate the optical fiber span;

an optical receiver disposed at the input endface of the optical fiber span to capture a return light beam indicative of all reflections and backscattered light from the continuous light probe signal, the optical receiver including a photodetecting device responsive to an input gating signal having a time period t SAMP , the photodetecting device converting the return light beam into an electrical signal at sample time points determined by the input gating signal, providing as an output a plurality of time-sampled return light measurements; and

a data analysis unit including

a database for storing the plurality of time-sampled return light measurements, each measurement stored in association with its time of measurement and;

a processor responsive to a request for generating a predefined OTDR trace, where the processor functions to access the database to retrieve selected time-sampled return light measurements associated with the predefined OTDR trace and perform difference calculations on the selected time-sampled return light measurements to generate the predefined OTDR trace as an output of the OTDR measurement system.

2. The OTDR measurement system as defined in claim 1 wherein the request received by the processor includes a selected resolution factor defining a number of individual time-sampled return light measurements to be included in each difference calculation in generating the OTDR trace.

3. The OTDR measurement system as defined in claim 2 wherein the request received by the processor includes a set of different resolution factors used to generate a set of different OTDR traces.

4. The OTDR measurement system as defined in claim 1 wherein the control element comprises a signal generator coupled to the laser source, creating a probe signal exhibiting a leading edge as the generated signal function rises in value and a trailing edge as the generated signal function lowers in value.

5. The OTDR measurement system as defined in claim 4 wherein the signal generator is a square wave signal generator.

6. The OTDR measurement system as defined in claim 5 wherein the square wave signal generator is configured to create a square wave signal with a pulse width in the range of about 1 ns to at least 100 ms.

7. The OTDR measurement system as defined in claim 6 wherein the square wave signal generator is configured to create a square wave signal with a pulse width in the range of about 10 ns to 20 ms.

8. The OTDR measurement system as defined in claim 1 wherein the control element comprises a switch for turning the laser source on and off at user-controlled time intervals.

9. The OTDR measurement system as defined in claim 1 wherein the laser source comprises a low power laser source.

10. The OTDR measurement system as defined in claim 9 wherein the laser source exhibits an output power in the range of about −20 dBm to about +20 dBm.

11. The OTDR measurement system as defined in claim 10 wherein the laser source exhibits an output power in the range of about −3 dBm to about +10 dBm.

12. The OTDR measurement system as defined in claim 9 wherein the OTDR measurement system exhibits an attenuation dead zone of less than 1 m.

13. The OTDR measurement system as defined in claim 1 wherein the data analysis unit is configured to repeat an OTDR measurement of the optical fiber span by requesting the laser source to inject another CW probe signal into the first, input endface of the optical fiber span.

14. The OTDR measurement system as defined in claim 1 wherein the OTDR measurement system comprises an embedded measurement system and the data analysis unit is configured to provide continuous OTDR measurements of the optical fiber span by requesting the laser source to inject sequential CW probe signals into the first, input endface of the optical fiber span.

15. The OTDR measurement system as defined in claim 1 wherein the laser source is shared with a co-located Optical Service Channel (OSC) system.

16. The OTDR measurement system as defined in claim 1 wherein the laser source is shared with a co-located optical fiber amplifier.

Assignments (5)
PATENT RELEASE AND REASSIGNMENT Recorded Jul 5, 2022
From: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
To: II-VI INCORPORATED; MARLOW INDUSTRIES, INC.; EPIWORKS, INC.; LIGHTSMYTH TECHNOLOGIES, INC.; KAILIGHT PHOTONICS, INC.; COADNA PHOTONICS, INC.; OPTIUM CORPORATION; FINISAR CORPORATION; II-VI OPTICAL SYSTEMS, INC.; M CUBED TECHNOLOGIES, INC.; II-VI PHOTONICS (US), INC.; II-VI DELAWARE, INC.; II-VI OPTOELECTRONIC DEVICES, INC.; PHOTOP TECHNOLOGIES, INC.
Reel/Frame 060574/0001 →
SECURITY INTEREST Recorded Jul 1, 2022
From: II-VI INCORPORATED; II-VI DELAWARE, INC.; M CUBED TECHNOLOGIES, INC.; II-VI PHOTONICS (US), INC.; PHOTOP TECHNOLOGIES, INC.; COHERENT, INC.
To: JPMORGAN CHASE BANK, N.A., AS COLLATERAL AGENT
Reel/Frame 060562/0254 →
NOTICE OF GRANT OF SECURITY INTEREST IN PATENTS Recorded Sep 25, 2019
From: II-VI INCORPORATED; MARLOW INDUSTRIES, INC.; EPIWORKS, INC.; LIGHTSMYTH TECHNOLOGIES, INC.; KAILIGHT PHOTONICS, INC.; COADNA PHOTONICS, INC.; OPTIUM CORPORATION; FINISAR CORPORATION; II-VI OPTICAL SYSTEMS, INC.; M CUBED TECHNOLOGIES, INC.; II-VI PHOTONICS (US), INC.; II-VI DELAWARE, INC.; II-VI OPTOELECTRONIC DEVICES, INC.; PHOTOP TECHNOLOGIES, INC.
To: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 050484/0204 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 19, 2019
From: II-VI INCORPORATED
To: II-VI DELAWARE, INC.
Reel/Frame 048631/0234 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 5, 2017
From: GURUSAMI, ARAVANAN; ZAHNLEY, TIMOTHY; DAHL, SCOTT; DEVICHARAN, DEEPAK; MCCLEAN, IAN PETER
To: II-VI INCORPORATED
Reel/Frame 042910/0325 →
Continuity (3)
Division 14755057 · Jun 30, 2015
Provisional Application 62031288 · Jul 31, 2014
Related Publication 20170307472A1 · Oct 26, 2017
Cited By (1)
US 12,467,825