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Immersed boundary conditions method for heat conduction problems in slots with time-dependent geometry

机译:具有时变几何形状的槽中热传导问题的浸入边界条件方法

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摘要

A grid-less, fully implicit, spectrally accurate algorithm for solving three-dimensional, both stationary and time-dependent, heat conduction problems in slots formed by either fixed or time-dependent boundaries has been developed. The algorithm is based on the concept of immersed boundary conditions (IBC), where the physical domain is immersed within the computational domain and the boundary conditions take the form of internal constraints. The IBC method avoids the need to construct adaptive, time-dependent grids resulting in the reduction of the required computational resources and, at the same time, maintaining accurate information about the location of the boundaries. The algorithm is spectrally accurate in space and capable of delivering first-, second-, third- and fourth-order accuracy in time. Given a potentially large size of the resultant linear algebraic system, various methods that take advantage of the special structure of the coefficient matrix have been explored in search for an efficient solver, including a specialized direct solver as well as serial and parallel iterative solvers. The specialized direct solver has been found to be the most efficient from the viewpoints of the speed of the computations and the memory requirements.
机译:已经开发了一种无网格的,完全隐式的,光谱精确的算法,用于解决由固定边界或与时间有关的边界所形成的缝隙中的三维,稳态和与时间有关的导热问题。该算法基于沉浸边界条件(IBC)的概念,其中物理域沉浸在计算域内,并且边界条件采取内部约束的形式。 IBC方法避免了构建自适应的,与时间相关的网格的需要,从而减少了所需的计算资源,并同时保持了有关边界位置的准确信息。该算法在空间上频谱精确,并且能够及时提供一阶,二阶,三阶和四阶精度。给定最终线性代数系统的潜在大小,已探索了各种利用系数矩阵特殊结构的方法来寻找有效的求解器,包括专用的直接求解器以及串行和并行迭代求解器。从计算速度和内存需求的角度来看,已经发现专用的直接求解器是最有效的。

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