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Fully coupled electrothermal and mechanical simulation of the production of complex shapes by spark plasma sintering

机译:通过火花等离子烧结完全耦合电热和机械模拟复杂形状的复杂形状

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The obtention of an accurate mechanical model of the spark plasma sintering (SPS) requires the identification of creep parameters. Those parameters are usually determined experimentally, which involves several tests and could be a source of error for the model predictions. A numerical identification, based on only one SPS experiment per material, allowed the determination of the creep parameters of Al2O3 and TiAl samples. The resulting mechanical model was then coupled with an electro-thermal model of the system to obtain a fully coupled simulation of the SPS. This model can predict the densification behavior not only of simple pellets, but also of complex shape configurations. It accurately predicts the density gradients inside the complex sintered parts as well as the interface distortion during sintering. Thus, numerical simulation can be used as an efficient predictive tool to obtain fully dense objects with the desired geometry.
机译:要获得放电等离子烧结(SPS)的精确力学模型,需要识别蠕变参数。这些参数通常是通过实验确定的,这涉及多个测试,可能是模型预测的误差来源。基于每种材料仅一次SPS试验的数值识别,可以确定Al2O3和TiAl样品的蠕变参数。然后将得到的力学模型与系统的电热模型耦合,以获得SPS的完全耦合模拟。该模型不仅可以预测简单球团的致密化行为,还可以预测复杂形状球团的致密化行为。它准确地预测了复杂烧结件内部的密度梯度以及烧结过程中的界面变形。因此,数值模拟可以作为一种有效的预测工具,以获得具有所需几何结构的完全稠密对象。

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