Title :
Brillouin OTDR employing optical frequency shifter using side-band generation technique with high-speed LN phase-modulator
Author :
Izumita, Hisashi ; Sato, Toshiya ; Tateda, Mitsuhiro ; Koyamada, Yahei
Author_Institution :
NTT Access Network Syst. Labs., Ibaraki, Japan
Abstract :
In order to measure spontaneous Brillouin backscattered lights, which are related to fiber-distributed tensile strain and temperature, by using a highly sensitive self-heterodyne coherent detection technique, a wideband optical frequency shifter is required to reduce the beat signal frequency between the Brillouin backscattered signal and the LO light to the IF bandwidth of the conventional coherent receiver. We constructed a highly stable optical frequency shifter with a 14 GHz bandwidth and 20 kHz frequency resolution which employs side-band light generated by a high-speed LN phase-modulator. The structure is simple and the insertion loss is low. We applied this shifter to B-OTDR and measured the distributed tensile strain in a 30-km dispersion-shifted optical fiber with a 100-m spatial resolution.
Keywords :
Brillouin spectra; deformation; demodulation; lithium compounds; mechanical variables measurement; optical fibre losses; optical fibre testing; optical modulation; optical time-domain reflectometry; phase modulation; 14 GHz; 30 km; Brillouin OTDR; Brillouin backscattered signal; GHz bandwidth; LiNbO/sub 3/; beat signal frequency; coherent receiver; dispersion-shifted optical fiber; distributed tensile strain; fiber-distributed tensile strain; high-speed LN phase-modulator; highly sensitive self-heterodyne coherent detection technique; highly stable optical frequency shifter; insertion loss; kHz frequency resolution; optical frequency shifter; phase-modulator; side-band generation technique; side-band light; spatial resolution; spontaneous Brillouin backscattered light; strain measurement; wideband optical frequency shifter; Bandwidth; Frequency measurement; High speed optical techniques; Optical fibers; Optical receivers; Optical sensors; Spatial resolution; Strain measurement; Temperature sensors; Tensile strain;
Journal_Title :
Photonics Technology Letters, IEEE