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Modelling grain growth in the framework of Rational Extended Thermodynamics

机译:在有理扩展热力学框架内模拟晶粒长大

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Grain growth is a significant phenomenon for the thermomechanical processing of metals. Since the mobility of the grain boundaries is thermally activated and energy stored in the grain boundaries is released during their motion, a mutual interaction with the process conditions occurs. To model such phenomena, a thermodynamic framework for the representation of thermomechanical coupling phenomena in metals including a microstructure description is required. For this purpose, Rational Extended Thermodynamics appears to be a useful tool. We apply an entropy principle to derive a thermodynamically consistent model for grain coarsening due to the growth and shrinkage of individual grains. Despite the rather different approaches applied, we obtain a grain growth model which is similar to existing ones and can be regarded as a thermodynamic extension of that by Hillert (1965) to more general systems. To demonstrate the applicability of the model, we compare our simulation results to grain growth experiments in pure copper by different authors, which we are able to reproduce very accurately. Finally, we study the implications of the energy release due to grain growth on the energy balance. The present unified approach combining a microstructure description and continuum mechanics is ready to be further used to develop more elaborate material models for complex thermo-chemo-mechanical coupling phenomena.
机译:晶粒长大是金属热机械加工的重要现象。由于晶界的迁移率被热激活并且在晶界运动期间释放出存储在晶界中的能量,因此发生了与工艺条件的相互影响。为了对这种现象进行建模,需要一个热力学框架来表示金​​属中的热机械耦合现象,包括微观结构描述。为此,Rational扩展热力学似乎是一个有用的工具。我们应用熵原理来推导由于单个晶粒的生长和收缩而导致晶粒粗化的热力学一致模型。尽管应用了不同的方法,我们仍获得了与现有模型相似的晶粒生长模型,Hillert(1965)可以将其视为对更一般系统的热力学扩展。为了证明该模型的适用性,我们将不同作者的模拟结果与纯铜中的晶粒长大实验进行了比较,从而能够非常准确地重现。最后,我们研究了由于晶粒生长而产生的能量释放对能量平衡的影响。结合了微观结构描述和连续力学的本统一方法已准备好进一步用于为复杂的热化学机械耦合现象开发更复杂的材料模型。

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