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Comparisons between three-dimensional and two-dimensional multi-particle unit cell models for particle reinforced metal matrix composites

机译:颗粒增强金属基复合材料的三维多维单元格模型与二维多维模型比较

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摘要

Three-dimensional and two-dimensional unit cell models for describing the mechanical behaviour of particle reinforced metal matrix composites (MMCs) are compared by assessing predictions obtained from microgeometries consisting of 20 randomly positioned elastic particles embedded in an elastoplastic matrix. The elastic response to uniaxial loading predicted by the three-dimensional unit cells is found to comply with the appropriate three-point bounds. Predictions for the elastoplastic regime are somewhat less satisfactory, indicating that configurations containing a higher number of particles will he required to resolve the regions of concentrated plastic strains that develop in inhomogeneous materials. This implies that in the nonlinear range the size of reference volume elements depends on material behaviour. Comparisons of results obtained from planar and three-dimensional multi-particle unit cells show clear differences in terms of both the overall stiffnesses and phase averages as well as the standard deviations of the microscale stress and strain fields. These differences are much more pronounced in the elastoplastic range, where planar analyses do not adequately describe the overall strain hardening behaviour of particle reinforced MMCs and tend to markedly underpredict the equivalent stresses and maximum principal stresses in the particles.
机译:通过评估从微观几何结构获得的预测结果,比较了描述颗粒增强金属基复合材料(MMC)力学性能的三维和二维晶胞模型,该预测由嵌入弹塑性基体中的20个随机定位的弹性颗粒组成。发现三维单元预测的对单轴载荷的弹性响应符合适当的三点边界。弹塑性状态的预测在某种程度上不太令人满意,这表明需要使用包含更多数量粒子的构型来解决在不均匀材料中发展的集中塑性应变区域。这意味着在非线性范围内,参考体积元素的大小取决于材料的行为。从平面和三维多粒子晶胞获得的结果比较表明,在整体刚度和相平均以及微观应力场和应变场的标准偏差方面,存在明显差异。这些差异在弹塑性范围内更为明显,在该范围内,平面分析不能充分描述颗粒增强MMC的整体应变硬化行为,并且往往明显低估了颗粒中的等效应力和最大主应力。

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