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COMPREHENSIVE INVESTIGATION OF AN INVERSE GEOMETRY PROBLEM IN HEAT CONDUCTION VIA ITERATIVE REGULARIZATION METHOD

机译:迭代调节法对导热反几何问题的综合研究

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摘要

An inverse geometry problem in heat conduction is solved using different versions of an iterative regularization method. The algorithm consists of direct and inverse problems, which aims to modification of geometry. The direct problem is solved using a finite-element method. The employed iterative regularization method is constructed using the adjoint and sensitivity equations that are used to calculate the gradient of the objective function and the optimal step size, respectively. Results show that the Powel–Beale version has the best convergence rate compared to the Fletcher–Reeves and Polak–Ribiere versions of the conjugate gradient method. Effects of geometric parameters, location and number of sensors, heat flux value, error of sensors, and size of meshes are studied. Results show that as the sensors get closer to the unknown boundary, both accuracy and the convergence rate of the algorithm improve. Increasing the number of sensors has a positive effect on accuracy and the convergence rate, only when it is smaller than a certain number. The presence of a measurement error leads to inaccurate estimation of the geometry shape. A proper size of mesh has the best convergence and accuracy in the shape identification problem.
机译:使用不同版本的迭代正则化方法解决了导热中的逆几何问题。该算法包括正反问题,旨在解决几何问题。直接问题使用有限元方法解决。所使用的迭代正则化方法是使用分别用于计算目标函数的梯度和最佳步长的伴随方程和敏感性方程构造的。结果表明,与共轭梯度法的Fletcher-Reeves和Polak-Ribiere版本相比,Powel-Beale版本具有最佳收敛速度。研究了几何参数,传感器的位置和数量,热通量值,传感器的误差以及网格大小的影响。结果表明,随着传感器靠近未知边界,算法的准确性和收敛速度均得到提高。仅当传感器的数量小于一定数量时,增加传感器的数量才会对准确性和收敛速度产生积极影响。测量误差的存在导致几何形状的估计不准确。在形状识别问题中,适当大小的网格具有最佳的收敛性和准确性。

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