Optical Considerations for Designing Laser-Based Volumetric Particle Tracking Velocimetry

H. Abitan, Yisheng Zhang, Simon Lautrup Ribergård, Clara Marika Velte
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Abstract

The trend to conduct volumetric Particle Tracking Velocimetry experiments with ever increasing volumes, at a given particle density, poses increasing challenges on the design of such experiments in terms of the power of the laser source and the image analysis. This, on one hand, requires a reliable model to estimate the signal level that is measured on a CMOS detector from a Mie scattering particle. On the other hand, it requires also a model for estimating the limiting factors upon the image resolution, where a large amount of particles within a 3D volume are mapped into a 2D image. Herein, we present a model that provides an analytical expression to estimate the signal level on a CMOS detector from a Mie scattering particle within an arbitrary large volume in a volumetric Particle Tracking Velocimetry experiment. We begin with a model for planar experiments and extend it into volumetric measurements. Our model considers the effect of the depth of field, particle density, Mie scattering signal and total Mie scattering loss, laser pulse-energy and relevant optical parameters. Later, we investigate the consequence of the Rayleigh criterion upon image resolution when it is applied to particles within a volume of interest. Finally, we demonstrate how we applied our model to estimate the signal level and the limit upon the spatial resolution in three experiments carried-out in our lab.
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设计基于激光的体积粒子跟踪测速仪的光学考虑因素
在颗粒密度一定的情况下,进行体积颗粒跟踪测速实验的体积越来越大,这种趋势对激光源功率和图像分析方面的实验设计提出了越来越多的挑战。一方面,这需要一个可靠的模型来估计在 CMOS 探测器上测量到的米氏散射粒子的信号水平。另一方面,它还需要一个模型来估算图像分辨率的限制因素,即三维体积内的大量粒子被映射到二维图像中。在此,我们提出了一个模型,该模型提供了一个分析表达式,用于估算在体积粒子跟踪测速实验中,任意大体积内的米氏散射粒子在 CMOS 探测器上的信号水平。我们从平面实验模型开始,将其扩展到体积测量。我们的模型考虑了景深、粒子密度、米氏散射信号和总米氏散射损耗、激光脉冲能量和相关光学参数的影响。随后,我们研究了瑞利准则应用于相关体积内的粒子时对图像分辨率的影响。最后,我们展示了如何在实验室进行的三次实验中应用我们的模型来估计信号水平和空间分辨率的限制。
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