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Joint State and Input Estimation for One-Dimensional Heat Conduction

机译:一维热传导的联合状态和输入估计

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摘要

This paper presents a joint state and input estimation algorithm for the one-dimensional heat-conduction problem. A computationally efficient method is proposed in this work to solve the inverse heat-conduction problem (IHCP) using orthogonal collocation method (OCM). A Kalman filter (KF) algorithm is used in conjunction with a recursive-weighted least-square (RWLS)-based method to simultaneously estimate the input boundary condition and the temperature field over the heat-conducting element. A comparison study of the algorithm is shown with explicit finite-difference method (FDM) of approximation and analytical solution of the forward problem, which clearly reveals the high accuracy with lower-dimensional modeling. The estimation results show that the performance of the estimator is robust to noise sensitivity up to a certain level, which is practically acceptable.
机译:本文提出了一种针对一维导热问题的联合状态和输入估计算法。在这项工作中,提出了一种计算有效的方法,以使用正交配置方法(OCM)解决逆导热问题(IHCP)。卡尔曼滤波器(KF)算法与基于递归加权最小二乘(RWLS)的方法结合使用,可同时估算导热元件上的输入边界条件和温度场。通过显式有限差分法(FDM)对正演问题进行逼近和解析解,对该算法进行了比较研究,清楚地表明了其在低维建模中的高精度。估计结果表明,估计器的性能对于噪声灵敏度达到一定水平具有鲁棒性,这在实践中是可以接受的。

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