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Dislocation Density Based Material Model Applied in PFEM-simulation of Metal Cutting

机译:基于位错密度的材料模型在金属切削PFEM模拟中的应用

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摘要

Metal cutting is one of the most common metal-shaping processes. In this process, specified geometrical and surface properties are obtained through the break-up and removal of material by a cutting edge into a chip. The chip formation is associated with large strains, high strain rates and locally high temperatures due to adiabatic heating. These phenomena together with numerical complications make modeling of metal cutting challenging. Material models, which are crucial in metal-cutting simulations, are usually calibrated against data from material testing. Nevertheless, the magnitudes of strains and strain rates involved in metal cutting are several orders of magnitude higher than those generated from conventional material testing. Therefore, a highly desirable feature is a material model that can be extrapolated outside the calibration range. In this study, a physically based plasticity model based on dislocation density and vacancy concentration is used to simulate orthogonal metal cutting of AISI 316L. The material model is implemented into an in-house particle finite-element method software. Numerical simulations are in agreement with experimental results for different cutting speed and feed.
机译:金属切削是最常见的金属成型工艺之一。在此过程中,通过切削刃将材料打碎和清除,从而获得特定的几何和表面特性。由于绝热加热,切屑的形成与大应变,高应变率和局部高温有关。这些现象以及数值复杂性使得金属切削的建模具有挑战性。在金属切削仿真中至关重要的材料模型通常根据材料测试的数据进行校准。然而,金属切削所涉及的应变和应变率的幅度比常规材料测试所产生的应变和应变率高几个数量级。因此,非常可取的特征是可以在校准范围之外推断的材料模型。在这项研究中,基于位错密度和空位浓度的基于物理的可塑性模型用于模拟AISI 316L的正交金属切削。材料模型被实现为内部粒子有限元方法软件。数值模拟与不同切削速度和进给率的实验结果一致。

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