考虑剧烈塑性变形的微观结构变化的基于物理的塑性模型

IF 1 4区 工程技术 Q4 MECHANICS
Ziyad Zenasni , Mohamed Haterbouch , Zoubir Atmani , Samir Atlati , Mohammed Zenasni , Khalid Nasri , Omar Oussouaddi
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引用次数: 7

摘要

在机械加工过程中,材料经历剧烈变形,导致与缓慢变形情况下不同的行为。因此,微观结构的变化会影响材料的性能,从而影响部件的功能。因此,开发能够捕获此类变化的材料模型对于更好地理解相互作用过程-材料至关重要。本文介绍了一种将机械阈值应力(MTS)与位错密度(DD)模型相关联的新物理模型。对多晶铜(OFHC)进行的一系列大应变实验的建模和实验结果,涉及剪切变形和应变速率(从准静态到动态变化)的序列,与在加工等过程中观察到的结果非常相似。以力学阈值应力为内状态变量的Kocks-Mecking模型与实验结果和应变速率跳变实验具有较好的相关性。该模型与著名的Johnson-Cook模型进行了比较,后者在捕捉污点跳跃方面存在一些缺陷。结果表明,在大应变下,应变硬化的速率敏感性较高。耦合力学阈值应力位错密度(MTS-DD),在Abaqus/Explicit有限元程序中实现材料模型。该模型在预测位错密度的增加和细胞尺寸的减小方面显示出潜力。它可以理想地用于机械加工过程的建模。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Physics-based plasticity model incorporating microstructure changes for severe plastic deformation

During machining processes, materials undergo severe deformations that lead to different behavior than in the case of slow deformation. The microstructure changes, as a consequence, affect the materials properties and therefore influence the functionality of the component. Developing material models capable of capturing such changes is therefore critical to better understand the interaction process–materials. In this paper, we introduce a new physics model associating Mechanical Threshold Stress (MTS) with Dislocation Density (DD) models. The modeling and the experimental results of a series of large strain experiments on polycrystalline copper (OFHC) involving sequences of shear deformation and strain rate (varying from quasi-static to dynamic) are very similar to those observed in processes such as machining. The Kocks–Mecking model, using the mechanical threshold stress as an internal state variable, correlates well with experimental results and strain rate jump experiments. This model was compared to the well-known Johnson–Cook model that showed some shortcomings in capturing the stain jump. The results show a high effect of rate sensitivity of strain hardening at large strains. Coupling the mechanical threshold stress dislocation density (MTS–DD), material models were implemented in the Abaqus/Explicit FE code. The model shows potentialities in predicting an increase in dislocation density and a reduction in cell size. It could ideally be used in the modeling of machining processes.

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来源期刊
Comptes Rendus Mecanique
Comptes Rendus Mecanique 物理-力学
CiteScore
1.40
自引率
0.00%
发文量
0
审稿时长
12 months
期刊介绍: The Comptes rendus - Mécanique cover all fields of the discipline: Logic, Combinatorics, Number Theory, Group Theory, Mathematical Analysis, (Partial) Differential Equations, Geometry, Topology, Dynamical systems, Mathematical Physics, Mathematical Problems in Mechanics, Signal Theory, Mathematical Economics, … The journal publishes original and high-quality research articles. These can be in either in English or in French, with an abstract in both languages. An abridged version of the main text in the second language may also be included.
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