基于有限宏单元的柔性管道结构分析并行逐单元求解器

Fernando Geremias Toni, C. Martins
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引用次数: 0

摘要

由于挠性管道的层数和各自的几何复杂性,挠性管道的有限元分析通常需要大规模的方案,单元数量和自由度都很高。如果不采取适当的预防措施,如合适的算法和数值方法,这些分析的计算成本可能会变得不可行,以目前的计算标准。有限宏观单元是为解决特定问题而制定的有限单元,考虑并利用其特殊性,如几何模式,以获得计算优势,如减少自由度和简化问题描述。逐单元方法(EBE)也非常适合这种情况,因为它的特点是消除了全局刚度矩阵,其内存消耗随着元素数量线性增长,此外还具有高度并行性。近几十年来,文献中发表了一些关于EBE方法的研究成果,但没有一项直接应用于柔性管道。由于层与层之间的接触元素,柔性管道的问题通常具有非常大的矩阵带宽的特点,使得EBE方法的实现更具挑战性,从而不影响其效率和可扩展性。因此,这项工作提出了一个并行实现的逐元素架构,用于使用有限宏元素对柔性管道进行结构分析,由同一作者先前工作的扩展组成。开发了新的同步算法,改进了可扩展性,将该方法扩展到其他有限宏单元,并与一个成熟的有限元软件进行了比较,在模拟时间和内存消耗方面有了显着的提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Parallelized Element-by-Element Solver for Structural Analysis of Flexible Pipes Using Finite Macroelements
Due to the number of layers and their respective geometrical complexities, finite element analyzes of flexible pipes usually require large-scale schemes, with a high number of elements and degrees-of-freedom. If proper precautions are not taken, such as suitable algorithms and numerical methods, the computational costs of these analyzes may become unfeasible to the current computational standards. Finite macroelements are finite elements formulated for the solution of a specific problem considering and taking advantage of its particularities, such as geometry patterns, in order to obtain computational advantages, as reduced number of degrees-of-freedom and ease of problem description. The element-by-element method (EBE) also fits very well in this context, since it is characterized by the elimination of the global stiffness matrix and its memory consumption grows linearly with the number of elements, besides being highly parallelizable. Over the last decades, several works regarding the EBE method were published in the literature, but none of them directly applied to flexible pipes. Due to the contact elements between the layers, problems with flexible pipes are usually characterized by very large matrix-bandwidth, making the implementation of EBE method more challenging, so that its efficiency and scalability are not compromised. Therefore, this work presents a parallelized implementation of an element-by-element architecture for structural analysis of flexible pipes using finite macroelements, consisting of an extension of a previous work from the same authors. New synchronization algorithms were developed, with scalability improvements, the methodology was extended to other finite macroelements and comparisons were made with a well-stablished FEM software, with significant gains in simulation time and memory consumption.
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