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Physically Based Constitutive Model for Viscoplastic Deformation of Inconel718 at High Strain Rates and Temperatures

机译:基于基于粘性变形的本构模型,高应变率和温度下的Inconel718

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Abstract In the cutting process of nickel-based superalloys, because of the high strain rate and cutting temperature, the cutting deformation is complex and there exist hardening and softening phenomena. Therefore, the present study developed a physically-based constitutive model, which represents the mechanical response of a material at a given microstructure in terms of dislocation glide to describe the deformation behaviors of Inconel718. The established model also describes evolution equations for internal variables characterizing the microstructure. The internal variables are related to the dislocation density. Comparisons between the experimental results and those predicted employing different models [a physically-based constitutive model has been established in the present work and Johnson–Cook (JC) constitutive model] indicate that the established model can accurately characterize the deformation behaviors for Inconel718 at high strain rates and temperatures.
机译:摘要在镍基超合金的切割过程中,由于高应变率和切削温度,切割变形是复杂的,存在硬化和软化现象。因此,本研究开发了基于物理基本型模型,其表示在给定微结构的材料的机械响应,以便描述Inconel718的变形行为。建立的模型还描述了表征微结构的内部变量的演化方程。内部变量与位错密度有关。实验结果与采用不同模型的预测的那些比较[目前的工作和约翰逊厨师(JC)本构模型建立了基于物理基础的本构模型,表明建立的模型可以在高处准确地表征Inconel718的变形行为应变率和温度。

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