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Simulation of temperature and stress distributions in functionally graded materials synthesized by a spark plasma sintering process

机译:火花等离子体烧结过程合成的功能梯度材料中温度和应力分布的模拟

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摘要

A coupled electrical-thermal-mechanical finite element model is established to systematically investigate the temperature and stress distributions in a functionally graded material (FGM) based on Ti and TiB during a spark plasma sintering (SPS) process. The simulation results indicate that a stable axial temperature gradient in the specimen can be achieved using a die with an area-changing cross-section in the SPS process, thereby providing a beneficial condition for FGM sintering. The stress and the stress gradient are high at the bottom of the specimen, possibly leading to microstructural heterogeneity and cracks among adjacent layers. The simulation results also suggest that the temperature and stress gradient increase as the heating rate increases. The corresponding SPS experiments verified the simulation results and proved the superiority of the specially designed die.
机译:建立了电热机械有限元模型,以系统研究火花等离子体烧结(SPS)过程中基于Ti和TiB的功能梯度材料(FGM)中的温度和应力分布。仿真结果表明,在SPS工艺中使用横截面积变化的模具可以实现样品中稳定的轴向温度梯度,从而为FGM烧结提供了有利条件。试样底部的应力和应力梯度较高,可能导致显微组织异质性和相邻层之间的裂纹。仿真结果还表明,温度和应力梯度随加热速率的增加而增加。相应的SPS实验验证了仿真结果,并证明了特殊设计模具的优越性。

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