Pickup suppression in Sagnac-based fiber-optic acoustic sensor array

被引:11
作者
Blin, Stephane [1 ]
Bishop, Michael [1 ]
Parameswaran, Krishnan [1 ]
Digonnet, Michel J. F. [1 ]
Kino, Gordon S. [1 ]
机构
[1] Stanford Univ, Edward L Ginzton Lab, Stanford, CA 94305 USA
关键词
acoustic arrays; optical fiber interference; optical fiber measurement applications;
D O I
10.1109/JLT.2006.875954
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Large-scale acoustic fiber sensor arrays consisting of hundreds of hydrophones distributed along kilometers-long fiber buses are required for applications such as undersea oil exploration. Sagnac-based sensor arrays (SSAs) exhibit attractive performance; however, the, acoustic wave incident on the buses generates a pickup signal that can swamp the signals from the hydrophones. A simple technique for reducing this unwanted pickup is proposed, modeled, and demonstrated by. periodically inserting deaf hydrophones in the buses instead of hydrophones so the pickup signal is measured at different locations along the buses. The first method directly subtracts the deaf hydrophone signal from the signal seen by the adjacent hydrophone (true signal and pickup) to recover the true hydrophone signal. This method is limited to small signal amplitudes by the nonlinearity of the Sagnac interferometer. The second method corrects the nonlinearity before pickup subtraction and allows in principle a full suppression of the pickup. When applied to an experimental two-rung SSA, this technique produced a -18.6-dB pickup suppression for pickup amplitudes as large as 0.44 rad and signal amplitudes of up to 0.44 rad and -15 dB for a signal as large as 0.88 rad. These values are limited by the accuracy of the 8-bit data acquisition and/or electronic noise. With a low-noise 12-bit data acquisition, the pickup suppression for small signal amplitudes is predicted to be -35 dB. This paper makes headway toward practical SSAs.
引用
收藏
页码:2889 / 2897
页数:9
相关论文
共 13 条
[1]  
BLIN S, 2005, P SPIE, V6004
[2]  
BUCARO JA, 1987, P NATO ADV STUD I OP, P321
[3]   Acoustic fiber sensor arrays [J].
Digonnet, MJF ;
Vakoc, BJ ;
Hodgson, CW ;
Kino, GS .
SECOND EUROPEAN WORKSHOP ON OPTICAL FIBRE SENSORS: PROCEEDINGS, 2004, 5502 :39-50
[4]  
DIGONNET MJF, IN PRESS J LIGHTW
[5]   Optimization of large-scale fiber sensor arrays incorporating multiple optical amplifiers - Part II: Pump power [J].
Hodgson, CW ;
Wagener, JL ;
Digonnet, MJF ;
Shaw, HJ .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 1998, 16 (02) :224-231
[6]   Optimization of large-scale fiber sensor arrays incorporating multiple optical amplifiers - Part I: Signal-to-noise ratio [J].
Hodgson, CW ;
Wagener, JL ;
Digonnet, MJF ;
Shaw, HJ .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 1998, 16 (02) :218-223
[7]   SAGNAC INTERFEROMETER FOR UNDERWATER SOUND DETECTION - NOISE PROPERTIES [J].
KRAKENES, K ;
BLOTEKJAER, K .
OPTICS LETTERS, 1989, 14 (20) :1152-1154
[8]   Review of interferometric optical fibre hydrophone technology [J].
Nash, P .
IEE PROCEEDINGS-RADAR SONAR AND NAVIGATION, 1996, 143 (03) :204-209
[9]   Noise performance of multiplexed fiber-optic sensor systems with optical amplifiers [J].
Joar Sæther ;
Kjell Bløtekjær .
Optical Review, 1997, 4 (1) :A138-A144
[10]   FIBEROPTIC GYROSCOPE WITH [3X3] DIRECTIONAL COUPLER [J].
SHEEM, SK .
APPLIED PHYSICS LETTERS, 1980, 37 (10) :869-871