论文标题

从非时代分辨PIV测量结果重建壁挂式湍流的时间演变

Reconstructing the time evolution of wall-bounded turbulent flows from non-time resolved PIV measurements

论文作者

Krishna, C. Vamsi, Wang, Mengying, Hemati, Maziar S., Luhar, Mitul

论文摘要

由于硬件约束,粒子图像速度法(PIV)系统通常会限制其完全解决湍流流中固有的时空波动的能力。在这项研究中,我们基于快速失真理论(RDT)和泰勒的假设(TH)开发模型,以重建使用非时期分解系统获得的连续PIV快照之间的中间周期中湍流场的时间演变。线性管理方程式使用PIV快照作为初始条件将向前和向后发展。然后,通过获取向前和向后估计的加权总和来重建中间的流场。该时空加权函数旨在说明RDT和TH方程的对流性质。重建精度是使用空间分辨率和重建时间范围的函数评估的,该函数使用直接的数值仿真数据来从约翰·霍普金斯湍流数据库中进行湍流通道流。该方法可以很好地重建单点湍流统计数据,并以高于采集系统的暂时性nyquist极限的频率解决速度光谱。与从RDT和TH的离散形式的数值集成获得的重建相比,使用基于特征的流场基于特征的流场的进化而获得的重建是更准确的。还评估了测量噪声对重建误差的影响。

Particle Image Velocimetry (PIV) systems are often limited in their ability to fully resolve the spatiotemporal fluctuations inherent in turbulent flows due to hardware constraints. In this study, we develop models based on Rapid Distortion Theory (RDT) and Taylor's Hypothesis (TH) to reconstruct the time evolution of a turbulent flow field in the intermediate period between consecutive PIV snapshots obtained using a non-time resolved system. The linear governing equations are evolved forwards and backwards in time using the PIV snapshots as initial conditions. The flow field in the intervening period is then reconstructed by taking a weighted sum of the forward and backward estimates. This spatiotemporal weighting function is designed to account for the advective nature of the RDT and TH equations. Reconstruction accuracy is evaluated as a function of spatial resolution and reconstruction time horizon using Direct Numerical Simulation data for turbulent channel flow from the Johns Hopkins Turbulence Database. This method reconstructs single-point turbulence statistics well and resolves velocity spectra at frequencies higher than the temporal Nyquist limit of the acquisition system. Reconstructions obtained using a characteristics-based evolution of the flow field under TH prove to be more accurate compared to reconstructions obtained from numerical integration of the discretized forms of RDT and TH. The effect of measurement noise on reconstruction error is also evaluated.

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