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A microstructure sensitive grain boundary sliding and slip based constitutive model for machining of Ti-6Al-4V

机译:基于微结构敏感晶界滑移的Ti-6Al-4V本构模型

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摘要

A composite dual phase internal state variable constitutive model was developed for Ti-6Al-4V. The proposed model includes diffusion assisted grain boundary sliding based physics in addition to a traditional slip-based plasticity. Influence of microstructure on the flow stress is introduced via dislocation density and mean grain size internal state variables. The dislocation density evolves according to a physics based law that considers dislocation nucleation and annihilation processes. Grain refinement is driven by dynamic recrystallization, which is modeled phenomenologically. The model is calibrated with uniaxial stress-strain data that ranges between quasi-static and dynamic rates across a wide range of temperatures. Validation against machining data shows that the model predicts chip segmentation frequency, machining forces, and tool temperatures reasonably well. The newly introduced grain boundary sliding physics was found to dominate deformation following sufficient grain refinement. This deformation mode provides softening at the constitutive level without the need for invoking damage based softening mechanisms. This physical interpretation is something that has not previously been explored in the machining literature. (C) 2017 Elsevier Ltd. All rights reserved.
机译:针对Ti-6Al-4V,建立了复合双相内部状态变量本构模型。除了传统的基于滑移的可塑性之外,所提出的模型还包括基于扩散辅助的晶界滑动的物理学。通过位错密度和平均晶粒尺寸内部状态变量来引入微观结构对流动应力的影响。位错密度根据考虑了位错成核和an灭过程的基于物理学的定律演化。晶粒细化是由动态再结晶驱动的,这是现象学建模的。该模型使用单轴应力应变数据校准,该数据在很宽的温度范围内介于准静态速率和动态速率之间。对加工数据的验证表明,该模型可以很好地预测切屑的切屑频率,加工力和刀具温度。发现新引入的晶界滑动物理学在充分的晶粒细化之后控制变形。这种变形模式可以在本构水平上提供软化,而无需调用基于损坏的软化机制。这种物理解释是以前在加工文献中未曾探索过的。 (C)2017 Elsevier Ltd.保留所有权利。

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