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Discrete and continuous adjoint approaches to estimate boundary heat fluxes in falling films

机译:离散和连续伴随方法估计降膜中的边界热通量

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摘要

A wavy falling film simulation is considered in which a liquid travels along one side of a thin metal foil that is heated electrically from the opposite side. The direct problem consists of a three-dimensional heat conduction equation on a cuboid domain representing the foil with suitable initial and boundary conditions. The inverse problem consists of determining the heat flux on the film side of the foil from a given distribution of the temperature on the heating side. Two different adjoint approaches for the solution of this inverse problem are compared. In the continuous adjoint approach, the adjoint problem is analytically derived from the direct problem and then discretized. In the discrete adjoint approach, the direct problem is discretized, from which an adjoint code is generated by means of the reverse mode of automatic differentiation. Numerical experiments are reported, demonstrating the advantages and disadvantages of the two approaches.
机译:考虑了波浪状的降膜模拟,其中液体沿着薄金属箔的一侧流动,该金属箔从另一侧进行电加热。直接的问题由一个长方体域上的三维热传导方程组成,代表具有适当初始和边界条件的箔。反问题包括根据加热侧的给定温度分布确定箔膜侧的热通量。比较了解决该反问题的两种不同的伴随方法。在连续伴随方法中,伴随问题是从直接问题解析得出的,然后离散化。在离散伴随方法中,将直接问题离散化,并通过自动微分的反向模式从中生成伴随代码。进行了数值实验,证明了这两种方法的优缺点。

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