DocumentCode :
1416606
Title :
High-accurate fault location technology using FSK-ASK probe backscattering reflectometry in optical amplifier submarine transmission systems
Author :
Sumida, Masatoyo ; Furukawa, Shin-Ichi ; Tanaka, Kuniaki ; Aiki, Mamoru
Author_Institution :
NTT Opt. Network Syst. Labs., Yokosuka, Japan
Volume :
14
Issue :
10
fYear :
1996
fDate :
10/1/1996 12:00:00 AM
Firstpage :
2108
Lastpage :
2116
Abstract :
This paper proposes a new modulation format for optical time domain reflectometry (OTDR) to eliminate optical surge and improve OTDR performance in optical amplifier submarine transmission systems. The modulation format, FSK-ASK, uses a short high-power probe pulse and a long dummy pulse. Thanks to the slow gain dynamics of erbium-doped fiber amplifiers, both pulses experience an identical gain, equal to the loss of a span, so that the probe pulse maintains its high power and does not develop into an optical surge. Fault location experiments verify a theoretical prediction that FSK-ASK improves the signal-to-noise ratio (SNR) of OTDR by an amount as large as the power ratio of the probe to dummy signal. They also confirm the elimination of the optical surge caused by conventional OTDR using a solitary probe pulse. An FSK-ASK OTDR is applied in a commercial submarine amplifier transmission system which has a total transmission length of 890 km and a repeater spacing of 90 km. These field trial results show that subtle fiber anomalies can be located, with a spatial resolution of 1 km, along the entire length of the amplifier transmission system from a terminal end
Keywords :
amplitude shift keying; backscatter; fault location; fibre lasers; frequency shift keying; optical fibre communication; optical fibre losses; optical fibre testing; optical modulation; optical noise; optical time-domain reflectometry; FSK-ASK probe backscattering reflectometry; OTDR performance; commercial submarine amplifier transmission system; erbium-doped fiber amplifiers; fault location; high power; high-accurate fault location technology; identical gain; long dummy pulse; modulation format; optical amplifier submarine transmission systems; optical surge; optical time domain reflectometry; repeater spacing; short high-power probe pulse; signal-to-noise ratio; slow gain dynamics; solitary probe pulse; spatial resolution; total transmission length; Fault location; Optical amplifiers; Optical modulation; Optical pulses; Probes; Pulse amplifiers; Pulse modulation; Stimulated emission; Surges; Underwater vehicles;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/50.541197
Filename :
541197
Link To Document :
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