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Evaluation of aero-optical distortion effects in PIV

机译:评估PIV中的光学失真效应

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摘要

Aero-optical distortion effects on the accuracy of particle image velocimetry (PIV) are investigated. When the illuminated particles are observed through a medium that is optically inhomogeneous due to flow compressibility, the resulting particle image pattern is subjected to deformation and blur. In relation to PIV two forms of error can be identified: position error and velocity error. In this paper a model is presented that describes these errors and particle image blur in relation to the refractive index field of the flow. In the case of 2D flows the model equations can be simplified and, furthermore, the background oriented schlieren technique (BOS) can be applied as a means to assess and correct for the optical error in PIV. The model describing the optical distortion is validated by both computer simulation and real experiments of 2D flows. Two flow features are considered: one with optical distortion normal to the velocity (shear layer) and one with optical distortion in the direction of the flow (expansion fan). Both simulation and experiments demonstrate that the major source for the velocity error is the second derivative of the refractive index in the direction of the velocity vector. The aero-optical distortion effect is less critical for shearing interfaces in comparison with compression/expansion fronts, the most critical case being represented by shock waves. Based on the results from the simulated experiments, it is concluded that for the 2D flow case the BOS method allows a measurement of the mean velocity error in PIV and can reduce it to a large extent.
机译:研究了光学畸变对粒子图像测速仪(PIV)精度的影响。当通过由于流动可压缩性而在光学上不均匀的介质观察照明的粒子时,所得的粒子图像图案会发生变形和模糊。关于PIV,可以识别两种形式的误差:位置误差和速度误差。本文提出了一个模型,该模型描述了这些误差和与流场的折射率场有关的粒子图像模糊。在2D流动的情况下,可以简化模型方程,此外,可以应用面向背景的schlieren技术(BOS)作为评估和校正PIV中光学误差的手段。通过计算机仿真和2D流动的实际实验验证了描述光学畸变的模型。考虑了两种流动特征:一种具有垂直于速度的光学变形(剪切层),另一种具有沿流动方向的光学变形(扩展风扇)。仿真和实验均表明,速度误差的主要来源是在速度矢量方向上折射率的二阶导数。与剪切/扩展前沿相比,航空光学畸变效应对剪切界面的影响较小,其中最关键的情况是冲击波。根据仿真实验的结果,可以得出结论,对于2D流动情况,BOS方法可以测量PIV中的平均速度误差,并且可以在很大程度上减小该误差。

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