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A robust and fast algorithm for three-dimensional transient inverse heat conduction problems

机译:三维瞬态逆热传导问题的鲁棒快速算法

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摘要

Despite numerous studies of inverse heat conduction problems (1HCP) over the last several decades, their solutions still suffer from the mathematical difficulties and the bottleneck of currently available numerical methods for large-scale problems. In this paper, we present a robust and efficient algorithm for the solution of a specific type of three-dimensional (3D) IHCP commonly involved in various engineering applications. The solution method incorporates the Tikhonov regularization for tackling the severe ill-posedness and the conjugate gradient (CG) method for solving the resulting minimization problems. A model function approach is used to significantly reduce the effort needed to find the optimal Tikhonov regularization parameter. The proposed solution method requires no a priori knowledge of the measurement noise and is much more computationally efficient than the traditional Tikhonov regularization-based inversion approaches. Thus, it can be used for the efficient solution of large-scale practical problems. Two simulation case studies of practical significance are presented to validate and assess the performance of the proposed method. Finally, the solution method is successfully applied to the reconstruction of instantaneous heat fluxes from experimentally measured temperature data.
机译:尽管在过去的几十年中对逆热传导问题(1HCP)进行了许多研究,但它们的解决方案仍然遭受数学难题以及当前可用于大规模问题的数值方法的瓶颈。在本文中,我们提出了一种鲁棒而高效的算法,用于解决通常涉及各种工程应用的特定类型的三维(3D)IHCP。解决方法结合了用于解决严重不适状况的Tikhonov正则化和共轭梯度(CG)方法,以解决由此产生的最小化问题。使用模型函数方法可以显着减少寻找最佳Tikhonov正则化参数所需的工作量。所提出的解决方案方法不需要测量噪声的先验知识,并且比传统的基于Tikhonov正则化的反演方法具有更高的计算效率。因此,它可用于有效解决大规模实际问题。提出了两个具有实际意义的仿真案例,以验证和评估该方法的性能。最后,该求解方法已成功地用于根据实验测量的温度数据重建瞬时热通量。

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