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Multi-physics modelling in machining OFHC copper-coupling of microstructure-based flow stress and grain refinement models

机译:基于微观结构的流量应力和晶粒细化模型的HC铜耦合加工多物理建模

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In metal machining, the workmaterial undergoes severe thermomechanical loading, which has a consequence on the microstructure change at different zones in the machined workpiece (chip, tool tip zone, machined surface). In this paper, a multi-physics modelling in machining OFHC copper was proposed. The plastic flow stress of the workmaterial is described by the so-called Mechanical Threshold Stress (MTS) model. For comparison purpose the classical Johnson-Cook (JC) thermo-viscoplastic flow stress model is also introduced. In order to predict the microstructure change, precisely the grain size evolution in the workmaterial during machining, a physical-based Dislocation Density (DD) model was coupled with the MTS model in the framework of an Arbitrary Lagrangian Eulerian (ALE) Finite Elements (FE) approach. The ALE-FE model is developed for the orthogonal cutting process simulation in 2D case. Coupled MTS-DD material models were implemented in Abaqus/Explicit software via a user-material program. The first part of the multi-physics model is validated by comparison of predicted cutting force components with experimental ones and those predicted by the JC model. In the second part, the grain refinement during the cutting process is predicted, revealing zones where the microstructure is highly affected, particularly in the depth of the newly formed surface. This allows estimating the thickness of the effected subsurface by the cutting process.
机译:在金属加工中,工件经历严重的热机械负荷,这对加工工件(芯片,刀尖区域,机加工表面)的不同区域的微观结构变化产生了结果。本文提出了一种在铜加工中的多物理建模。通过所谓的机械阈值应力(MTS)模型来描述工件的塑料流量应力。对于比较目的,还介绍了经典约翰逊厨师(JC)热粘塑流量应力模型。为了预测微观结构变化,精确地在加工过程中的工作材料中的晶粒尺寸演变,基于物理的位错密度(DD)模型与任意拉格朗日欧拉(ALE)有限元(Fe)的框架中的MTS模型耦合(FE ) 方法。 ALE-FE模型是为2D案例中的正交切割过程仿真而开发的。耦合MTS-DD材料模型是通过用户材料程序在ABAQUS /显式软件中实现的。通过将预测的切割力分量与JC模型预测的预测的切割力分量进行比较,验证了多物理模型的第一部分。在第二部分中,预测切割过程中的晶粒细化,揭示了微观结构受到高度影响的区域,特别是在新形成的表面的深度中。这允许通过切割过程估计有效的地下的厚度。

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