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一种有效的网格自适应方法 被引量:5
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作者 蔡显新 王文凯 +1 位作者 蒋燕英 江萍 《计算力学学报》 EI CAS CSCD 北大核心 2007年第2期241-245,共5页
针对网格自适应方法中的移动网格变形法进行了研究,该方法通过采用最小二乘有限元法求解div-curl方程组,使雅可比行列式值等于给定的监测函数值,以改变网格节点的位置,从而获得期望的网格边界及大小分布。文末给出的4个二维和三维问题... 针对网格自适应方法中的移动网格变形法进行了研究,该方法通过采用最小二乘有限元法求解div-curl方程组,使雅可比行列式值等于给定的监测函数值,以改变网格节点的位置,从而获得期望的网格边界及大小分布。文末给出的4个二维和三维问题的算例表明,本文方法是非常有效的。 展开更多
关键词 网格自适应 变形法 最小二乘有限元法
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Simulation of Current Structure Interactions Using Least-Squares Finite Element Method
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作者 Shin-Jye Liang Chiung-Yang Lan Cheng-Han Tsai 《Journal of Shipping and Ocean Engineering》 2012年第4期230-237,共8页
The objective of this paper is to investigate the condition number of various formulations of LSFEM (least-squares finite element method) for SWE (shallow-water equations), and develop a better conditioned shallow... The objective of this paper is to investigate the condition number of various formulations of LSFEM (least-squares finite element method) for SWE (shallow-water equations), and develop a better conditioned shallow-water model to simulate current structure interactions. Various formulations of LSFEM for a two-dimensional vertically-averaged non-viscous shallow-water equations can be constructed, depending on the choice of norm, variables, interpolations, and possible treatment of boundary conditions. The condition number of the resulting system of equations is systematically examined and compared. It is found that condition number of the resulting system of equations depends on the choice of variables, interpolations, and size of element (h). Order reduction (UW) formulations, with introducing auxiliary variables, with low-order interpolation is better conditioned and more efficient than direct (U) formulation with high-order interpolation. However, to resolve large gradients and fine structures of flow filed, high-order methods are generally preferred. The developed shallow-water model is used to simulate flow past an elliptic hump and flow past a cylinder. Computed results are compared with other numerical solutions. 展开更多
关键词 Condition number lsfem shallow-water model UW formulation U formulation.
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