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Phase Field Modeling of the Microstructure Evolution in a Steel Workpiece under High Temperature Gradients

机译:高温梯度钢工件中微结构演化的相位场建模

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摘要

Electrical discharge machining (EDM) is an ablative process with main thermal active principle. The applied thermal energy during this process leads to microstructure modifications in the rim zone of the eroded workpiece. These induced microstructure modifications directly affect the functionality of the workpiece. Nevertheless, these modifications cannot be easily predicted. Therefore, finding new methods for prediction of these modifications is of great interest both in academia and in industry.The microstructure modifications in the rim zone of an eroded workpiece are partly results of liquid-solid phase transformations in the recast layer and solid-solid phase transformations in the heat affected zone (HAZ). Therefore, by simulation of the microstructure evolution in these regions, their final microstructure can be predicted. Despite of the recent advances in the material simulation science, only few studies on simulation of microstructure evolution during EDM can be found in literature. This can be explained by the high temperature and temperature gradients that act during this process. These extreme boundary conditions evoke different complexities during material simulations.In this work, the complexities, which appear during the simulation of microstructure evolution for EDM are addressed. Furthermore, a simulation model for description of the microstructure evolution in a steel material under high temperature gradients is developed. The developed model is based on the phase field approach. Due to the potentials of this mathematical approach in describing the kinematics of multiphase systems, it became an attractive method for simulation of microstructure evolution. Although, the implemented temperature gradients are lower than the actual values, this model can be later used for simulation of the microstructure evolution in the HAZ of an eroded workpiece.
机译:电气放电加工(EDM)是具有主要热敏原理的烧蚀过程。该方法期间的施加的热能导致侵蚀工件的边缘区中的微观结构修改。这些诱导的微观结构修饰直接影响工件的功能。然而,这些修改不能容易预测。因此,寻找对学术界和工业中的这些修改的预测的新方法。侵蚀工件的边缘区域中的微观结构修改是重量层和固相的液体固相变化的部分结果热影响区(HAZ)的转化。因此,通过模拟这些区域中的微观结构演化,可以预测它们的最终微观结构。尽管近期材料仿真科学进展,但在文献中只能在EDM期间仿真微观结构演进的研究。这可以通过在此过程中采用的高温和温度梯度来解释。这些极端边界条件在材料仿真期间唤起不同的复杂性。在这项工作中,解决了在EDM的微观结构演进过程中出现的复杂性。此外,开发了用于在高温梯度下描述钢材中的微观结构演化的描述模型。开发的模型基于相位现场方法。由于这种数学方法在描述了多相系统的运动学时,它成为模拟微观结构演化的有吸引力的方法。虽然,实施的温度梯度低于实际值,但是该模型可以稍后用于模拟侵蚀工件的HAZ中的微观结构演变。

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