Simulation of Microfracture Process and Fracture Strength in 2-Dimensional Polycrystalline Materials

Byung‐Nam Kim, Hidehumi Naitoh, S. Wakayama, M. Kawahara
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引用次数: 5

Abstract

Microfracture processes of microcracking and crack propagation are simulated along with fracture strengths for 2-dimensional alumina polycrystals which have thermal anisotropy within a grain. Microcracks are generated by thermally induced residual stresses at a grain boundary. The stress concentration near the microcrack is calculated numerically by the body force method, and superposed on the pre-existing residual stress. Stress intensity factors at the microcrack tip are also obtained by the method, and the location at which the next microfracture occurs is determined by the competition between microcracking and crack propagation in the new stress state. The microfracture stress increases with the progress of the fracture and decreases after maximum indicating a fracture strength. In many cases, the propagation of microcracks induces an unstable fracture. With decreasing grain size and increasing grain boundary toughness, the number of microfractures prior to the unstable state decreases, while the fracture strengths increase. For alumina of grain size 17.5 μm, when the fracture toughness of the grain boundary is 0.6 times that of the grain or greater, unstable fracture occurs prior to stable microcracking.
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二维多晶材料微断裂过程及断裂强度模拟
模拟了晶粒内具有热各向异性的二维氧化铝多晶的微断裂过程和裂纹扩展与断裂强度的关系。微裂纹是由晶界处的热致残余应力产生的。采用体力法对微裂纹附近的应力集中进行了数值计算,并对残余应力进行了叠加。该方法还得到了微裂纹尖端处的应力强度因子,下一个微断裂发生的位置由新应力状态下微裂纹与裂纹扩展之间的竞争决定。微断裂应力随断裂的进行而增大,最大后减小,表明断裂强度。在许多情况下,微裂纹的扩展导致不稳定断裂。随着晶粒尺寸的减小和晶界韧性的增大,不稳定状态前的微断裂数量减少,而断裂强度增加。对于晶粒尺寸为17.5 μm的氧化铝,当晶界断裂韧性大于或等于晶界断裂韧性的0.6倍时,不稳定断裂先于稳定微裂纹发生。
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