1. 西安交通大学能源与动力工程学院,西安,710049
2. 中国计量学院计量测试工程学院,杭州,310018
网络首发:2007-11-10,
纸质出版:2007
移动端阅览
王昊利 1, 2, 王元 1, 等. 微通道内流的微尺度粒子图像测速技术实验研究[J]. 西安交通大学学报, 2007,41(11):1355-1359.
王昊利 1, 2, 王元 1, et al. Micro-PIV Measurements for Flow in Micro-Channels with Square Section[J]. 2007, 41(11): 1355-1359.
采用微流动粒子图像测速技术Micro-PIV对0.4~0.8 mm的方形截面微通道流场进行了研究.实验选取3 μm的荧光染色微球作为示踪粒子
使用532 nm激光、12位灰阶电荷耦合器件(CCD)相机及10倍显微物镜得到粒子图像.通过背景噪声处理技术提高了图像信噪比
并采用系综相关及回归算法得到了微通道截面的速度分布
测量的空间分辨率达到23.68 μm×23.68 μm×15.64 μm.为了消除壁面随机粗糙分布的影响
采用沿流向进行空间平均方法得到了充分发展的方形截面微通道速度分布.将测量结果与方形截面理论幂函数速度廓线进行比较发现:微通道近壁区流场受到扰动的强弱和流道尺寸直接相关
除近壁区外的大部分区域速度分布与矩形截面流道理论速度分布符合良好.
Micro-PIV measurements were implemented for laminar flows in 0.4 - 0.8 mm micro-channels under different conditions. In the measurements
3 μm fluorescent microspheres were chosen as the track particles
whose images were gained by using 532 nm laser
12 bit CCD and 10X objective. The process techniques of background noise were employed to improve SNR of images. The velocity vectors at the middle section of microchannels were achieved by the ensemble correlation and recursive arithmetics
and spatial resolving power of measurements reached 23.68 μm×23.68 μm×15.64 μm. The characteristics of velocity fields were analyzed by illustrating the space-averaged streamwise velocities in whole fields. The comparison of the averaged velocity with theoretical velocity profiles shows that velocity distributions are in accordance with their theoretical counterparts. In order to remove the stochastic distribution effects of wall surfaces
the fully-developed velocity distributions were determined by space-averaged method along the streamwise direction for the whole velocity field. Compared with the theoretical power function profile of velocity distributions in the square channels
the flow for the Micro-PIV measurements has the characteristics that the disturbances of velocity at the region near the walls have direct correlations with the scales of the microchannels. Execpt the areas near the walls
the space-averaged velocities are in agreement with the theoretical velocity profile.
Santiago J G, Werely S T, Meinhart C D. A particle image velocimetry system for microfluidics [J]. Exp Fluids, 1998, 25: 316-319.
Meinhart C D, Werely S T, Santiago J G. PIV measurements of a microchannel flow [J]. Exp Fluids, 1999, 27: 414-419.
王昊利,王元. Micro-PIV技术:粒子图像测速技术的新进展[J]. 力学进展, 2005, 35(1):77-99.
Wang Haoli, Wang Yuan. Micro-PIV: a new development of particle image velocimetry [J]. Advances in Mechanics. 2005, 35(1):77-99.
王健, 郝鹏飞, 何枫. 梯形截面微管道内流场的PIV测量[J]. 实验流体力学, 2005, 19(3): 94-98.
Wang Jian, Hao Pengfei, He Feng. PIV measurement of flow field in a trapezium-cross section micro-channel [J]. Journal of Experiments in Fluid Mechanics, 2005, 19(3): 94-98.
谢海波, 傅新, 杨华勇, 等. 典型微管道流场数值模拟与Micro-PIV检测研究 [J]. 机械工程学报, 2006,42(5): 32-38.
Xie Haibo, Fu Xin, Yang Huayong, et al. Simulation and Micro-PIV research on classical microchannel flow [J]. Chinese Journal of Mechanical Engineering. 2006,42(5): 32-38.
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