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Micromechanical modeling of thermo-mechanical properties of high volume fraction particle-reinforced refractory composites using 3D Finite Element analysis

机译:使用3D有限元分析,高容量级分颗粒增强耐火复合材料热机械建模

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摘要

Previously, we have developed several particle-reinforced castable ceramic composites for refractory applications with exposure to thermal shock and measured their effective thermo-elastic properties experimentally. These composites contained silicon-carbide (SiC) solid particles, zirconia (ZrO2) bubbles, and ZrO2 solid particles, dispersed in an alumina (Al2O3) matrix. The present work aims to implement representative volume element (RVE) approach and periodic boundary condition (PBC) to accurately predict those properties, namely elastic and shear modulus, thermal conductivity, and coefficient of thermal expansion (CTE), using three-dimensional (3D) Finite Element (FE) simulations while accounting for the effect of porosity. In comparison to established micromechanical schemes and two-dimensional (2D) FE predictions, 3D FE simulations specifically show more accuracy in prediction of elastic properties and thermal conductivity. This novel and thorough comparison across various thermo-mechanical properties for complex microstructures (with up to three types of inclusions) can be valuable for designing comparable high volume fraction (VF) composites.
机译:此前,我们开发了几种粒子增强型膨胀陶瓷复合材料,用于耐火应用,具有暴露于热冲击,并通过实验测量其有效的热弹性。这些复合材料含有碳化硅(SiC)固体颗粒,氧化锆(ZrO2)气泡和ZrO 2固体颗粒,分散在氧化铝(Al 2 O 3)基质中。本作者旨在实施代表体积元素(RVE)方法和周期性边界条件(PBC),以准确地预测使用三维(3D) )有限元(Fe)模拟,同时占孔隙率的影响。与建立的微机械方案和二维(2D)FE预测相比,3D FE模拟具体地示出了预测弹性性能和导热性的更精度。在各种热机械性能下进行复杂微结构的这种新颖和彻底的比较(具有最多三种类型的夹杂物)对于设计类似的高容量级分(VF)复合材料可以是有价值的。

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