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首页> 外文期刊>Journal of Materials Science >A multi-field coupled FEM model for one-step-forming process of spark plasma sintering considering local densification of powder material
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A multi-field coupled FEM model for one-step-forming process of spark plasma sintering considering local densification of powder material

机译:考虑粉末材料局部致密化的火花等离子体烧结一步成型过程的多场耦合有限元模型

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摘要

A mechanical constitutive model of powder material is introduced to a fully coupled thermal-electric-mechanical finite element model to simulate the one-step-forming spark plasma sintering (SPS) process of metal powders. The effects of displacement field and local density distribution on sintering are considered in this article, which are generally neglected in the existing SPS models. The mechanical, thermal, and electrical parameters of powders are assumed as functions of local relative density and temperature. The simulated varying displacement field remodels the distributions of temperature and electric potential by changing the contact thermoelectric resistances. For the 20, 40, and 60 MPa external pressures, the simulation indicates that the sintering temperature and the temperature gradient within powders are decreased by enhancing the external pressure, and the comprehensive effect of stress promotes the densification of the colder regions. Thus, the interrelationship between the temperature gradient and the intrinsic stress distribution plays an important role in the densification mechanism of SPS powders.
机译:将粉末材料的机械本构模型引入到完全耦合的热电机械有限元模型中,以模拟金属粉末的一步成型火花等离子体烧结(SPS)过程。本文考虑了位移场和局部密度分布对烧结的影响,在现有的SPS模型中通常忽略了这些影响。假定粉末的机械,热和电参数是局部相对密度和温度的函数。通过改变接触热电阻,模拟的变化的位移场重新建模了温度和电势的分布。对于20、40和60 MPa的外压,模拟表明,通过提高外压可以降低粉末中的烧结温度和温度梯度,应力的综合作用促进了较冷区域的致密化。因此,温度梯度和固有应力分布之间的相互关系在SPS粉末的致密化机理中起着重要作用。

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