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Effect of the Characteristic Size and Content of Graphene on the Crack Propagation Path of Alumina/Graphene Composite Ceramics

机译:石墨烯特征尺寸和含量对氧化铝/石墨烯复合陶瓷裂纹传播路径的影响

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摘要

In this paper, the Voronoimosaic model and the cohesive element method were used to simulate crack propagation in the microstructure of alumina/graphene composite ceramic tool materials. The effects of graphene characteristic size and volume content on the crack propagation behavior of microstructure model of alumina/graphene composite ceramics under different interfacial bonding strength were studied. When the phase interface is weak, the average energy release rate is the highest as the short diameter of graphene is 10–50 nm and the long diameter is 1600–2000 nm. When the phase interface is strong, the average energy release rate is the highest as the short diameter of graphene is 50–100 nm and the long diameter is 800–1200 nm. When the volume content of graphene is 0.50 vol.%, the average energy release rate reaches the maximum. When the velocity load is 0.005 m s−1, the simulation result is convergent. It is proven that the simulation results are in good agreement with the experimental phenomena.
机译:本文采用了伏振灭可规模模型和粘性元素法在氧化铝/石墨烯复合陶瓷工具材料的微观结构中模拟裂纹繁殖。研究了石墨烯特征尺寸和体积含量对不同界面粘结强度下氧化铝/石墨烯复合陶瓷微观结构模型的裂纹传播行为的影响。当相界面较弱时,随着石墨烯的短直径为10-50nm,长直径为1600-2000nm,平均能量释放率最高。当相界面强劲时,随着石墨烯的短直径为50-100nm,长直径为800-1200nm,平均能量释放率最高。当石墨烯的体积含量为0.50体积%时,平均能量释放率达到最大值。当速度负载为0.005 m S-1时,仿真结果是会聚。据证明,模拟结果与实验现象吻合良好。

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