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Comparative application of CGM and Wiener filtering techniques for the estimation of heat flux distribution

机译:CGM和Wiener滤波技术在热通量分布估计中的比较应用

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摘要

The conjugate gradient method (CGM), formulated with the adjoint problem, is adopted in this study as the functional minimization tool for the solution of the 2-D steady-state linear inverse heat conduction problem with the aim of estimating the heat flux density distribution on a given surface using the temperature distribution as input data. The robustness of the solution strategy, based on an iterative regularization scheme, is compared with another consolidated estimation methodology adopted in the literature to handle the same problem: the Wiener filtering technique. The comparison is performed by adopting a noisy test signal aimed at simulating infrared temperature maps. Using a comparative approach, the problem's particular difficulties related to the high number of unknowns and to the deficiency of the estimation techniques at the domain's geometrical boundaries are discussed.
机译:本研究采用伴随问题拟定的共轭梯度法(CGM)作为求解二维稳态线性逆导热问题的函数最小化工具,目的是估算热通量密度分布在给定表面上使用温度分布作为输入数据。将基于迭代正则化方案的解决方案的鲁棒性与文献中为解决同一问题而采用的另一种综合估计方法进行了比较:维纳滤波技术。通过采用旨在模拟红外温度图的噪声测试信号进行比较。使用一种比较方法,讨论了该问题的特殊困难,其中涉及未知数过多以及域几何边界处的估计技术不足。

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