论文标题

强烈干扰空气动力流动的集合过滤涡流建模

Ensemble-filtered vortex modeling of strongly disturbed aerodynamic flows

论文作者

Provost, Mathieu Le, Eldredge, Jeff D.

论文摘要

动态流量估计的任务是使用可用传感器的测量值构建不断发展的流动的近似值 - 尤其是其对干扰的响应。我们从Darakananda等人〜(Phys Rev Fluids 2018)的先前工作中建立了构建,我们进一步开发了一个基于无限薄板的随机扰动的无粘性涡流模型,用于空气动力学流动流量。在预测步骤中,每个集合成员中的涡流元素都由流量推向,并从板的每个边缘释放新元素;汇总这些要素以维持有效的表示。通过吸收从真实系统测得的板的表面压力差,可以在分析步骤中校正涡流元件和前缘约束。我们表明,总体框架可以实际解释为对与每个涡流元素相关的不确定性椭圆形区域的位置和形状的一系列调整。在这项工作中,我们将以前使用的随机ENKF与使用确定性分析步骤的集合转换Kalman滤波器(ETKF)进行了比较。我们在两个扰动的流动中检查了平板的响应$ 20^\ circ $,并从雷诺数为500的高保真模拟获得了真实数据。在第一种情况下,我们在板的前沿附近应用了一系列大振幅脉冲序列,以模仿板的流动。在第二个,我们将盘子放在圆柱体后面的涡流街上。在这两种情况下,我们都表明,基于涡流的框架可以准确估计压力分布和正常力,而没有{\ em先验的扰动知识。我们表明,ETKF始终比随机ENKF更强大。最后,我们在分析步骤中通过Kalman增益的SVD进行了从测量到状态更新的映射。

The task of dynamic flow estimation is to construct an approximation of an evolving flow---and particularly, its response to disturbances---using measurements from available sensors. Building from previous work by Darakananda et al.~(Phys Rev Fluids 2018), we further develop an ensemble Kalman filter (EnKF) framework for aerodynamic flows based on an ensemble of randomly-perturbed inviscid vortex models of flow about an infinitely-thin plate. In the forecast step, vortex elements in each ensemble member are advected by the flow and new elements are released from each edge of the plate; the elements are aggregated to maintain an efficient representation. The vortex elements and leading edge constraint are corrected in the analysis step by assimilating the surface pressure differences across the plate measured from the truth system. We show that the overall framework can be physically interpreted as a series of adjustments to the position and shape of an elliptical region of uncertainty associated with each vortex element. In this work, we compare the previously-used stochastic EnKF with the ensemble transform Kalman filter (ETKF), which uses a deterministic analysis step. We examine the response of the flat plate at $20^\circ$ in two perturbed flows, with truth data obtained from high-fidelity simulation at Reynolds number 500. In the first case, we apply a sequence of large-amplitude pulses near the leading edge of the plate to mimic flow actuation. In the second, we place the plate in a vortex street wake behind a cylinder. In both cases, we show that the vortex-based framework accurately estimates the pressure distribution and normal force, with no {\em a priori} knowledge of the perturbations. We show that the ETKF is consistently more robust than the stochastic EnKF. Finally, we examine the mapping from measurements to state update in the analysis step through SVD of the Kalman gain.

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