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Modeling of Microstructure Evolution of Ti6Al4V for Additive Manufacturing

机译:用于增材制造的Ti6Al4V微观组织演变的建模

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AM processes are characterized by complex thermal cycles that have a deep influence on the microstructural transformations of the deposited alloy. In this work, a general model for the prediction of microstructure evolution during solid state transformations of Ti6Al4V is presented. Several formulations have been developed and employed for modeling phase transformations in other manufacturing processes and, particularly, in casting. The proposed model is mainly based on the combination and modification of some of these existing formulations, leading to a new overall model specifically dedicated to AM. The accuracy and suitability of the integrated model is enhanced, introducing new dedicated features. In fact the model is designed to deal with fast cooling and re-heating cycles typical of AM processes because: (a) it is able to consider incomplete transformations and varying initial content of phases and (b) it can take into account simultaneous transformations.The model is implemented in COMET, an in-house Finite Element (FE)-based framework for the solution of thermo-mechanical engineering problems. The validation of the microstructural model is performed by comparing the simulation results with the data available in the literature. The sensitivity of the model to the variation of material parameters is also discussed.
机译:AM工艺的特点是复杂的热循环,这对沉积合金的微观结构转变具有深远的影响。在这项工作中,提出了用于预测Ti6Al4V固态转变过程中微观结构演变的通用模型。已经开发了几种配方并将其用于在其他制造过程中,尤其是在铸造中模拟相变。提出的模型主要基于这些现有公式中的一些的组合和修改,从而导致了专门针对增材制造的新的整体模型。集成模型的准确性和适用性得到增强,引入了新的专用功能。实际上,该模型旨在处理增材制造过程中典型的快速冷却和再加热循环,因为:(a)能够考虑不完全的转变和变化的初始相含量;(b)可以考虑同时进行的转变。该模型在COMET中实现,COMET是内部有限元(FE)的框架,用于解决热机械工程问题。通过将仿真结果与文献中提供的数据进行比较,可以对微结构模型进行验证。还讨论了模型对材料参数变化的敏感性。

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