An X-ray diffraction study of the influence of linear and changing strain paths on strain and texture evolution in AA6111-T4 aluminium alloy sheets

IF 2.9 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Materialia Pub Date : 2024-12-01 Epub Date: 2024-11-29 DOI:10.1016/j.mtla.2024.102305
Sisir Dhara , Darren J. Hughes , Steven Huband , Scott Taylor , Sumit Hazra
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Abstract

Multi-stage automotive stamping processes involve both linear and changing strain paths. While extensive research exists on linear strain paths and discontinuous strain path change, the study of continuous strain path change is limited due to the need for sophisticated experimental procedures. In this paper, the effect of continuous strain path change on strain, strain hardening behaviour, microstructure, and texture evolution was compared with that of discontinuous strain path change in AA6111-T4 aluminium alloy using a novel experimental setup comprising an in-situ mechanical rig and cruciform sample. An X-ray source was used to obtain diffraction patterns, which were analysed to measure diffraction intensities and lattice strains at the {111}, {200}, {220} and {311} lattice planes to study strain hardening behaviour, microstructure, and texture evolution during the loading paths. The experiments were repeated outside the X-ray diffraction chamber to study macroscopic strain evolution and hardening behaviour of the samples using a digital image correlation system. It was found that the absence of unloading and reloading in the continuous strain path change posed challenges for plastic deformation in the next deformation stage, leading to strain softening, premature failure, and relatively weaker textural development. Conversely, the presence of unloading and reloading in the discontinuous strain path change facilitated increased plastic deformation in the next deformation stage, resulting in strain hardening, delayed failure, and stronger textural development.

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线性应变路径和变化应变路径对AA6111-T4铝合金薄板应变和织构演化影响的x射线衍射研究
多阶段汽车冲压工艺涉及线性和变化应变路径。线性应变路径和不连续应变路径变化的研究非常广泛,而连续应变路径变化的研究由于需要复杂的实验程序而受到限制。本文采用一种新型的实验装置,采用原位机械装置和十字形试样,比较了连续应变路径变化与不连续应变路径变化对AA6111-T4铝合金应变、应变硬化行为、显微组织和织构演化的影响。利用x射线源获得衍射图,对衍射图进行分析,测量{111}、{200}、{220}和{311}晶格面的衍射强度和晶格应变,研究加载过程中的应变硬化行为、微观结构和织构演变。在x射线衍射室外重复实验,利用数字图像相关系统研究样品的宏观应变演化和硬化行为。研究发现,在连续应变路径变化过程中不进行卸载和再加载,会对下一变形阶段的塑性变形造成挑战,导致应变软化、过早破坏,织构发育相对较弱。相反,在不连续应变路径变化中,卸载和再加载的存在促进了下一变形阶段塑性变形的增加,导致应变硬化、延迟破坏和更强的织构发展。
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来源期刊
Materialia
Materialia MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
6.40
自引率
2.90%
发文量
345
审稿时长
36 days
期刊介绍: Materialia is a multidisciplinary journal of materials science and engineering that publishes original peer-reviewed research articles. Articles in Materialia advance the understanding of the relationship between processing, structure, property, and function of materials. Materialia publishes full-length research articles, review articles, and letters (short communications). In addition to receiving direct submissions, Materialia also accepts transfers from Acta Materialia, Inc. partner journals. Materialia offers authors the choice to publish on an open access model (with author fee), or on a subscription model (with no author fee).
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