Wide power range characteristics of phase shift spectrum of stimulated Brillouin gain

被引:0
|
作者
Li Y. [1 ]
An Q. [1 ]
Li X. [1 ]
Zhang L. [1 ]
机构
[1] Department of Electronic and Communication Engineering, North China Electric Power University, Baoding
来源
| 1600年 / Chinese Society of Astronautics卷 / 46期
关键词
Heterodyne detection; Phase shift spectrum; Stimulated Brillouin scattering; Vector Brillouin optical time domain analysis;
D O I
10.3788/IRLA201746.0106001
中图分类号
学科分类号
摘要
The power dependence of phase shift spectrum is very important for the optimization design of vector Brillouin optical time domain analysis (VBOTDA) system. The phase shift spectrum of stimulated Brillouin scattering (SBS) gain was analyzed by mathematical modeling; the phase shift spectrum of SBS gain in 400 m long standard single-mode fiber was measured in a pump wave power range of 5-90 mW and a Stokes wave power range of 5 μW-9 mW by a heterodyne pump-Stokes system; the mechanism of Stokes wave power dependence of SBS gain phase shift was analyzed. The results indicated that the phase shift range of SBS gain had a good linear relationship with pump wave power for a fixed Stokes wave power; the pump power sensitivity of phase shift range of SBS gain decreased from 1.448 (°)/mW to 1.156 (°)/mW with the increase of Stokes power from 5 μW to 8 mW due to pump depletion. According to the theoretical and experimental results, the optimization design of VBOTDA system based on SBS gain was discussed, which provides a basis for the development of SBS gain based VBOTDA system in the field of long distance and high precision sensing. © 2017, Editorial Board of Journal of Infrared and Laser Engineering. All right reserved.
引用
收藏
页数:6
相关论文
共 11 条
  • [1] Robert W.B., Nonlinear Optics, (2007)
  • [2] Zhang X., Hu J., Zhang Y., A hybrid single-end-access BOTDA and COTDR sensing system using heterodyne detection, Journal of Lightwave Technology, 31, 12, pp. 1954-1959, (2013)
  • [3] Hu J., Zhang X., Yao Y., Et al., A BOTDA with break interrogation function over 72 km sensing length, Optics Express, 21, 1, pp. 145-153, (2013)
  • [4] Li Y., Li X., An Q., New method to improve the performance of Brillouin optical time domain reflectometer system, Acta Optica Sinica, 35, 1, (2015)
  • [5] Hu J., Xia L., Yang L., Et al., Strain-induced vibration and temperature sensing BOTDA system combined frequency sweeping and slope-assisted techniques, Optics Express, 24, 12, pp. 13610-13620, (2016)
  • [6] Zhao L., Li Y., Xu Z., Theoretical calculation of Brillouin scattering spectrum and SBS threshold in multimode fiber, Infrared and Laser Engineering, 44, pp. 93-98, (2015)
  • [7] Dossou M., Bacquet D., Szriftgiser P., Vector Brillouin optical time-domain analyzer for high-order acoustic modes, Optics Letters, 35, 22, pp. 3850-3852, (2010)
  • [8] Zornoza A., Sagues M., Loayssa A., Self-heterodyne detection for SNR improvement and distributed phase-shift measurements in BOTDA, Journal of Lightwave Technology, 30, 8, pp. 1066-1072, (2012)
  • [9] Tu X., Sun Q., Chen W., Et al., Vector Brillouin optical time-domain analysis with heterodyne detection and IQ demodulation algorithm, IEEE Photonics Journal, 6, 2, (2014)
  • [10] Govind P.A., Nonlinear Fiber Optics, (1989)