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An improved nonintrusive global-local approach for sharp thermal gradients in a standard FEA platform

机译:一种改进的非侵入式全局局部方法,用于在标准FEA平台中实现急剧的热梯度

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摘要

Several classes of important engineering problems-in this case, problems exhibiting sharp thermal gradients-have solution features spanning multiple spatial scales and, therefore, necessitate advanced hp finite element discretizations. Although hp-FEM is unavailable off-the-shelf in many predominant commercial analysis software packages, the authors herein propose a novel method to introduce these capabilities via a generalized FEM nonintrusively in a standard finite element analysis (FEA) platform. The methodology is demonstrated on two verification problems as well as a representative, industrial-scale problem. Numerical results show that the techniques utilized allow for accurate resolution of localized thermal features on structural-scale meshes without hp-adaptivity or the ability to account for complex and very localized loads in the FEA code itself. This methodology enables the user to take advantage of all the benefits of both hp-FEM discretizations and the appealing features of many available computer-aided engineering /FEA software packages to obtain optimal convergence for challenging multiscale problems.
机译:几类重要的工程问题-在这种情况下,问题表现为尖锐的热梯度-具有跨越多个空间尺度的求解特征,因此需要高级hp有限元离散化。尽管hp-FEM在许多主要的商业分析软件包中都不可用,但本文的作者提出了一种新颖的方法,通过通用的有限元分析法在标准有限元分析(FEA)平台中非侵入式地引入这些功能。在两个验证问题以及一个代表性的工业规模问题上论证了该方法。数值结果表明,所使用的技术可在不具有hp自适应性或在FEA代码本身中解决复杂且非常局部的载荷的能力的情况下,在结构规模的网格上精确解析局部热特征。这种方法使用户可以利用hp-FEM离散化的所有优势以及许多可用的计算机辅助工程/ FEA软件包的吸引人的功能,以获得针对复杂多尺度问题的最佳收敛。

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