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A multi-scale approach to investigate the nonlinear subsurface behavior and strain localization of X38CrMoV5-1 martensitic tool steel: Experiment and numerical analysis

机译:X38CrMoV5-1马氏体工具钢的非线性地下行为和应变局部化的多尺度方法:实验和数值分析

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摘要

The cyclic mechanical behavior, the wear and fatigue resistances and damage developments of working surface of tool steels are dependent on microstructural features. A multi-scale approach combining experimental testing, numerical treatments and simulations is developed to model the surface behavior of X38CrMoV5-1 martensitic tool steels. The multi-scale modeling is coupled with finite element calculations. The elasto-viscoplastic constitutive equations used are based on crystal plasticity model of Meric-Cailletaud and are implemented on the finite element code ABAQUS under a small strain assumption. Trough an appropriate laboratory testing, the microstructure features comparable to the surface of industrial tools or pin/disc in tribology experiments are reproduced by considering plate specimens. Monotonic tensile testing is coupled with in-situ Digital Image Correlation technique (DIC) to determine the surface strain fields. The measured local nonlinear mechanical strain fields are analyzed. The strain localization is related to stereological artifacts. The numerical treatments allow reproducing, qualitatively, the strain localization patterns at the surface observed during tensile testing. The influence of the various stereological parameters such as the morphology of martensitic laths, the crystallographic orientations, the internal hardening state of the surface profiles and their evolutions on the local strain fields are addressed. By such approach, it is possible to get a better insight of some elementary mechanisms acting on tools and/or pin/disc surfaces regarding both tensile and cyclic behavior. (C) 2016 Elsevier Ltd. All rights reserved.
机译:工具钢的循环机械性能,耐磨性和疲劳强度以及工作表面的损伤发展取决于微观结构特征。开发了一种将试验测试,数值处理和模拟相结合的多尺度方法,以对X38CrMoV5-1马氏体工具钢的表面行为进行建模。多尺度建模与有限元计算相结合。所使用的弹粘塑性本构方程基于Meric-Cailletaud的晶体可塑性模型,并在较小应变假设下在有限元代码ABAQUS上实现。通过适当的实验室测试,通过考虑板状试样,可以再现与摩擦学实验中的工业工具或销钉/盘片表面相当的微观结构特征。单调拉伸测试与原位数字图像相关技术(DIC)结合在一起,可以确定表面应变场。分析了测得的局部非线性机械应变场。应变定位与立体假象有关。通过数字处理,可以定性地再现在拉伸测试过程中观察到的表面应变应变模式。解决了各种立体参数的影响,例如马氏体板条的形态,晶体学取向,表面轮廓的内部硬化状态及其演变对局部应变场的影响。通过这种方法,可以更好地了解有关拉伸和循环行为的作用在工具和/或销钉/圆盘表面上的一些基本机制。 (C)2016 Elsevier Ltd.保留所有权利。

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