Sun Jingjing, Zhang Lei, Tu Guojie, Zhen Shenglai, Cao Zhigang, Zhang Guosheng, Yu Benli
Information Materials and Intelligent Sensing Laboratory of Anhui Province, Anhui University, Hefei 230601, China.
Sensors (Basel). 2023 Oct 12;23(20):8411. doi: 10.3390/s23208411.
Laser Doppler velocimetry (LDV) based on a differential laser Doppler system has been widely used in fluid mechanics to measure particle velocity. However, the two outgoing lights must intersect strictly at the measurement position. In cross-interface applications, due to interface effects, two beams of light become easily disjointed. To address the issue, we present a laser velocimeter in a coaxial arrangement consisting of the following components: a single-frequency laser (wavelength λ = 532 nm) and a Twyman-Green interferometer. In contrast to previous LDV systems, a laser velocimeter based on the Twyman-Green interferometer has the advantage of realizing cross-interface measurement. At the same time, the sensitive direction of the instrument can be changed according to the direction of the measured speed. We have developed a 4000 m level laser hydrothermal flow velocity measurement prototype suitable for deep-sea in situ measurement. The system underwent a withstand voltage test at the Qingdao Deep Sea Base, and the signal obtained was normal under a high pressure of 40 MPa. The velocity contrast measurement was carried out at the China Institute of Water Resources and Hydropower Research. The maximum relative error of the measurement was 8.82% when compared with the acoustic Doppler velocimeter at the low-speed range of 0.1-1 m/s. The maximum relative error of the measurement was 1.98% when compared with the nozzle standard velocity system at the high-speed range of 1-7 m/s. Finally, the prototype system was successfully evaluated in the shallow sea in Lingshui, Hainan, with it demonstrating great potential for the in situ measurement of fluid velocity at marine hydrothermal vents.
基于差分激光多普勒系统的激光多普勒测速仪(LDV)已在流体力学中广泛用于测量粒子速度。然而,两束出射光必须在测量位置严格相交。在跨界面应用中,由于界面效应,两束光很容易分离。为了解决这个问题,我们提出了一种同轴布置的激光测速仪,它由以下部件组成:一台单频激光器(波长λ = 532 nm)和一台泰曼-格林干涉仪。与以前的LDV系统相比,基于泰曼-格林干涉仪的激光测速仪具有实现跨界面测量的优势。同时,仪器的敏感方向可以根据被测速度的方向进行改变。我们开发了一种适用于深海原位测量的4000米级激光热液流速测量原型。该系统在青岛深海基地进行了耐压测试,在40 MPa的高压下获得的信号正常。在中国水利水电科学研究院进行了流速对比测量。在0.1 - 1 m/s的低速范围内与声学多普勒测速仪相比,测量的最大相对误差为8.82%。在1 - 7 m/s的高速范围内与喷嘴标准速度系统相比,测量的最大相对误差为1.98%。最后,该原型系统在海南陵水的浅海成功进行了评估,显示出在海洋热液喷口流体速度原位测量方面具有巨大潜力。