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首页> 外文期刊>CERAMICS INTERNATIONAL >Influence of random pore defects on failure mode and mechanical properties of SiC ceramics under uniaxial compression using discrete element method
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Influence of random pore defects on failure mode and mechanical properties of SiC ceramics under uniaxial compression using discrete element method

机译:不同元素法下载单轴压缩下单轴压缩下SiC陶瓷破坏模式和机械性能的随机孔隙缺陷的影响

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摘要

To investigate the relationship between micro-defects in ceramic materials and macro mechanical properties and behaviours, a computational model of SiC ceramics with randomly oriented elliptical pores was established using the discrete element method (DEM). The effects of pore defect content and its aspect ratio on the failure mode, stress-strain curve and mechanical properties of specimen were investigated under uniaxial compression. The effective Young's modulus which was obtained from DEM simulations was compared with the predictions of Mori-Tanaka scheme (MTS) and Self-Consistent scheme (SCS) at various pore defect densities. The results showed that the compressive strength and crack initiation stress decrease nonlinearly as the pore defect content increases. Furthermore, the smaller the aspect ratio of the elliptical pore defects was, the more obvious the weakening trend was. As the pore defect content increases, the failure mode of the specimen changed from brittle fracture to tensile-shear mixing and then to axial splitting. The stress-strain curves showed a certain "softening" period during the loading process. The effective Young's modulus obtained from the DEM simulations coincides with the approximations of MTS and SCS at low pore densities. However, when the pore defect density became larger, the DEM simulation results were slightly lower than the theoretical results of the Mori Tanaka scheme, which only considers the weak interaction between defects.
机译:为了研究陶瓷材料和宏力学性能和行为中微缺陷之间的关系,使用离散元素法(DEM)建立了随机取向椭圆孔的SiC陶瓷的计算模型。在单轴压缩下研究了孔隙缺陷含量及其纵横比对试样的破坏模式,应力 - 应变曲线和力学性能的影响。将从DEM仿真获得的有效杨氏模量与各种孔隙缺陷密度的森林方案(MTS)和自我一致的方案(SCS)进行了比较。结果表明,随着孔隙缺陷含量增加,压缩强度和裂纹引发应力下降非线性。此外,椭圆形孔隙缺陷的纵横比越小,弱化趋势越明显。随着孔隙缺陷含量的增加,样品的故障模式从脆性断裂变为拉伸剪切混合,然后轴向分裂。应力 - 应变曲线在装载过程中显示出一定的“软化”时段。从DEM模拟获得的有效杨氏模量与低孔密度下的MTS和SC的近似值一致。然而,当孔隙缺损密度变得更大时,DEM仿真结果略低于Mori Tanaka方案的理论结果,该方案仅考虑缺陷之间的弱相互作用。

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