Title :
Fiber-Optic Anemometer Based on Distributed Bragg Reflector Fiber Laser Technology
Author :
Yun Liu ; Wei Peng ; Xinpu Zhang ; Yuzhang Liang ; Zhenfeng Gong ; Ming Han
Author_Institution :
Coll. of Phys. & Optoelectron. Eng., Dalian Univ. of Technol., Dalian, China
Abstract :
We present a novel fiber-optic anemometer based on a distributed Bragg reflector (DBR) fiber laser. The anemometer consists of a fiber laser pressure sensing element and a Venturi tube designed to convert the wind velocity into differential gas pressure that can be measured by the fiber-laser sensor. A DBR fiber laser that has two polarization modes is designed and fabricated as the major sensing element in this anemometer. The fiber-laser sensor is demodulated by the beat frequency of the two polarization modes, which has higher sensitivity and lower cost over wavelength-demodulated fiber-laser sensors. The experimental results show that the sensor´s response to wind velocity is quadratic in the measurement range of 8 ~ 40 m/s, the short term repeatability is better than 0.5%, and its sensitivity is impacted by the power of pump laser. Additionally, this anemometer has the potential capability to be used as a flow meter for both gas and liquid flows.
Keywords :
anemometers; distributed Bragg reflector lasers; fibre lasers; fibre optic sensors; laser modes; measurement by laser beam; optical design techniques; optical fibre fabrication; optical fibre polarisation; optical pumping; pressure measurement; pressure sensors; DBR fiber laser; Venturi tube; beat frequency; differential gas pressure; distributed Bragg reflector fiber laser technology; fiber laser pressure sensing element; fiber-laser sensor; fiber-optic anemometer; flow meter; gas flow; liquid flow; polarization modes; pump laser power; wind velocity; Optical fiber lasers; anemometers; frequency measurement;
Journal_Title :
Photonics Technology Letters, IEEE
DOI :
10.1109/LPT.2013.2263221