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The effect of particle image blur on the correlation map and velocity measurement in PIV

机译:粒子图像模糊对PIV相关图和速度测量的影响

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In PIV particle image blur is usually observed near fluid optical interfaces, i.e. shock waves, and thin flow structure with large density variations, e.g. shear layers and boundary layers. In such an environment the particle image is not only subject to blur, but is also displaced from its actual position due to refraction, which is denoted as optical displacement. In this study particle image blur near a shock wave is investigated in relation to the auto- and cross-correlation map, measurement accuracy and confidence level. The results from a numerical study are supported by PIV measurements of a shock wave in a supersonic wind tunnel. It is demonstrated that particle images are blurred in the direction of lower refractive index (directional blurring). The particle images are also skewed. Therefore particle image blur not only causes correlation peak broadening due to the fact that the particle images increase in size, but more importantly can introduce an asymmetry in the correlation peak and in turn introduce a small bias error in the measured velocity. However, experimental results indicate that particle image blur itself is not the main cause for the increase in measurement uncertainty near shock waves, but that the reduced accuracy can be attributed to the optical displacement. The observation of particle image blur can be used as a detection criterion for a qualitative assessment of the optical displacement. Certain combinations of experimental parameters (viewing angle, f/# and interrogation window size) yield significant errors in the measured velocity. Under certain circumstances optical distortion can become so strong to introduce an unphysical acceleration within the shock wave, visualized as an inflection point with positive slope in the velocity profile across the shock. The study provides some practical suggestions to limit the effect of aero-optical distortion on the velocity measurement.
机译:在PIV中,通常会在流体光学界面附近(即冲击波)和具有较大密度变化的稀薄流动结构(例如水流)观察到模糊图像。剪切层和边界层。在这种环境下,粒子图像不仅会变得模糊,而且还会由于折射而从其实际位置发生位移,这被称为光学位移。在这项研究中,研究了与自相关和互相关图,测量精度和置信度有关的冲击波附近的粒子图像模糊。数值研究的结果得到了超音速风洞中冲击波的PIV测量的支持。已经证明,粒子图像在较低折射率的方向上模糊(方向模糊)。粒子图像也会偏斜。因此,粒子图像模糊不仅会由于粒子图像尺寸增大而导致相关峰变宽,而且更重要的是会在相关峰中引入不对称性,进而在测得的速度中引入较小的偏差。但是,实验结果表明,粒子图像模糊本身并不是冲击波附近测量不确定度增加的主要原因,但精度降低可能归因于光学位移。颗粒图像模糊的观察可以用作光学位移定性评估的检测标准。实验参数的某些组合(视角,f /#和询问窗口大小)在测得的速度上产生明显的误差。在某些情况下,光学畸变会变得如此强烈,以至于在冲击波内引入了非物理的加速度,可视为拐点,其拐点处的速度轮廓呈正斜率。该研究提供了一些实践建议,以限制航空光学畸变对速度测量的影响。

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