Phantom Domain Finite Element Method: A novel approach for heterogeneous materials

IF 2.1 Q2 ENGINEERING, MULTIDISCIPLINARY Applications in engineering science Pub Date : 2025-04-15 DOI:10.1016/j.apples.2025.100218
Tianlong He, Philippe Karamian-Surville, Daniel Choï
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Abstract

In this paper, we introduce the Phantom Domain Finite Element Method (PDFEM), a novel computational approach tailored for the efficient analysis of heterogeneous and composite materials. Inspired by fictitious domain methods, this method employs a structured mesh to discretize the entire material domain while utilizing separate, independent meshes for the inclusions. These inclusion meshes are coupled to the structured mesh via a substitution matrix, enabling them to act as phantom meshes that do not directly contribute to the final system of equations. This framework offers significant advantages, including enhanced flexibility in handling complex inclusion geometries and improved computational efficiency. To assess the accuracy and robustness of the proposed method, numerical experiments are conducted on structures containing inclusions of various geometries. In order to emphasize the efficiency of the PDFEM method, a numerical simulation is presented to highlight its advantages in the case of long natural fibers, such as flax and linen. These simulations are compared against FEM calculations, demonstrating the efficiency of PDFEM. Indeed, meshing such fine structures requires an extremely high number of elements, and in some cases, meshing becomes particularly challenging due to the complexity of the geometries.
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幻域有限元法:异质材料的新方法
在本文中,我们介绍了幻影域有限元法(PDFEM),这是一种为高效分析非均质和复合材料而量身定制的新型计算方法。受虚拟域方法的启发,该方法采用结构化网格来离散整个材料域,同时对包含物使用单独的独立网格。这些包含网格通过替换矩阵耦合到结构化网格,使它们能够充当不直接影响最终方程组的虚幻网格。该框架具有显著的优势,包括处理复杂夹杂物几何形状时增强的灵活性和提高的计算效率。为了评估该方法的准确性和鲁棒性,对含有不同几何形状夹杂物的结构进行了数值实验。为了强调PDFEM方法的有效性,给出了数值模拟,以突出其在天然长纤维(如亚麻和亚麻)中的优势。仿真结果与有限元计算结果进行了比较,验证了PDFEM的有效性。事实上,网格划分这样精细的结构需要非常多的元素,在某些情况下,由于几何形状的复杂性,网格划分变得特别具有挑战性。
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来源期刊
Applications in engineering science
Applications in engineering science Mechanical Engineering
CiteScore
3.60
自引率
0.00%
发文量
0
审稿时长
68 days
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