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MICROSTRUCTURE-BASED FINITE ELEMENT MODELING OF PARTICLE REINFORCED METAL MATRIX COMPOSITES

机译:基于微观结构的粒子增强金属基复合材料的有限元建模

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摘要

Finite element modeling and analysis have been used to analyze the behavior of particle reinforced metal matrix composites for a long while. Up until recently, most of this work involved treating particle as a sphere embedded in a metallic matrix. It was soon realized that these models did not account for the microstructural factors that influence the mechanical behavior of the composite material. We provide examples of the use of two-dimensional (2D) and three-dimensional (3D) microstructure-based FEM models that accurately predict the properties of particle reinforced composite materials. We show that 2D models do capture the anisotropy in deformation behavior induced by anisotropy in particle orientation. The experimentally observed dependence of Young's modulus and tensile strength is confirmed by the 2D microstructure-based numerical model. The two-dimensional modeling, however, has its limitations because one only models a two-dimensional section of the real, three-dimensional object. For a realistic comparison to actual experimental results, one must resort to three-dimensional modeling. A serial sectioning process can be used to reproduce and visualize the 3D microstructure of particle reinforced metal matrix composites. The 3D microstructure-based FEM accurately represents the alignment, aspect ratio, and distribution of the particles; and allows visualization and simulation of the material behavior.
机译:有限元建模和分析已被用于分析颗粒增强金属基复合材料的行为长期。直到最近,大部分工作都涉及将粒子视为嵌入金属基质中的球体。很快意识到这些模型没有考虑影响复合材料的力学行为的微观结构因子。我们提供了使用二维(2D)和三维(3D)微结构的有限元模型的例子,可准确地预测颗粒增强复合材料的性能。我们表明,2D模型确实捕获了通过粒子取向各向异性诱导的变形行为的各向异性。通过基于2D微观结构的数值模型确认了实验观察到的杨氏模量和拉伸强度的依赖性。然而,二维建模具有其限制,因为只有一个才能模拟真实的三维物体的二维部分。对于与实际实验结果的真实比较,必须采取三维建模。串联切片过程可用于再现和可视化颗粒增强金属基复合材料的3D微结构。基于3D微结构的有限元精确表示颗粒的对准,纵横比和分布;并允许可视化和模拟材料行为。

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