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首页> 外文期刊>Materials Science and Engineering >Strain rate jump induced negative strain rate sensitivity (NSRS) in aluminum alloy 2024: Experiments and constitutive modeling
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Strain rate jump induced negative strain rate sensitivity (NSRS) in aluminum alloy 2024: Experiments and constitutive modeling

机译:铝合金2024的应变率跳跃引起的负应变率敏感性(NSRS):实验和本构模型

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摘要

Negative strain rate sensitivity (NSRS) leading to the strain localization and ultimately failure of material is one of the greatest challenges in the efficient usage of the Al alloys. NSRS in Al-Cu alloy (AA2024) is investigated with the help of uniaxial tension tests at constant strain rate and jump tests conducted with various strain rate jumps for different test temperatures. Digital image correlation (DIC) is adopted to locate the creation and movement of the heterogeneities. Strain controlled jump tests, in combination with DIC, prove to be an excellent tool to investigate NSRS in the alloy. Uniaxial tension tests performed at room temperature (RT) and elevated temperature (SO ℃) with constant strain rate ranging from 1 × 10~(-3) to 1 × 10~(-5)/sec demonstrated strain rate insensitive deformation behaviour, with the absence of serrations and plastic instability. In contrast, strain controlled jump tests conducted at -50 ℃, RT, and 50 ℃ revealed the presence of NSRS during the strain rate jumps and plastic instabilities following the jump. Local strain mapping achieved from DIC confirmed the propagation of the localized shear bands around the strain rate jumps which is not observed during uniaxial tension tests under constant strain rate. For better understanding of the underlying mechanism kicking off the plastic instabilities, the strain controlled jump test is simulated using the existing phenomenological mesoscopic field dislocation mechanics (PMFDM) model where a dynamics strain aging (DSA) module is embedded in crystal plasticity framework. Numerical predictions of grain size effect suggest that size effect depends on trade off between contributions of polar dislocations (GNDs) to internal stress and plastic deformation, and can lead to an "inverse size effect" when plasticity is the major contribution. While explaining the experimental observations related to jump test, simulation results provided an opportunity to access the experimental aging time which is a crucial material parameter for alloys exhibiting NSRS.
机译:导致应变局部化并最终导致材料破坏的负应变率敏感性(NSRS)是有效使用铝合金的最大挑战之一。通过在恒定应变速率下进行单轴拉伸测试以及在不同测试温度下以不同应变速率跳变进行的跳变测试,研究了Al-Cu合金(AA2024)中的NSRS。采用数字图像关联(DIC)来定位异质性的创建和移动。应变控制跳变测试与DIC结合使用,是研究合金中NSRS的绝佳工具。在室温(RT)和高温(SO℃)下进行的单轴拉伸试验,其恒定应变速率为1×10〜(-3)至1×10〜(-5)/ sec,证明了应变速率不敏感的变形行为,没有锯齿和塑料不稳定。相反,在-50℃,室温和50℃下进行的应变控制跳跃试验表明,在应变速率跳跃期间存在NSRS,并且在跳跃之后出现塑性不稳定性。从DIC获得的局部应变图证实了局部剪切带在应变率跳跃附近的传播,这在恒定应变率下的单轴拉伸试验中未观察到。为了更好地了解引发塑性不稳定性的潜在机理,使用现有的现象学介观场错位力学(PMFDM)模型模拟​​了应变控制的跳跃测试,其中动态应变老化(DSA)模块嵌入了晶体可塑性框架中。晶粒尺寸效应的数值预测表明,尺寸效应取决于极性位错(GND)对内部应力的贡献与塑性变形之间的折衷,当塑性是主要贡献时,会导致“反尺寸效应”。在解释与跳变测试有关的实验观察结果时,模拟结果提供了一个机会来获得实验时效时间,这是表现出NSRS的合金的关键材料参数。

著录项

  • 来源
    《Materials Science and Engineering》 |2017年第23期|143-152|共10页
  • 作者单位

    Department of Mechanical Science and Engineering, University of Illinois at Urbana-Champaign, Mechanical Engineering Building, 1206 W. Green St. Urbana, IL 61801, USA Postdoc Researcher, Bureau 204, Laboratoire d'A©tude des microstructures et de mA©canique des matA©riaux (LEM3), Ile du Saulcy, F-57045 Metz - cedex 01, France;

    Department of Mechanical Science and Engineering, University of Illinois at Urbana-Champaign, Mechanical Engineering Building, 1206 W. Green St. Urbana, IL 61801, USA Postdoc Researcher, Bureau 204, Laboratoire d'A©tude des microstructures et de mA©canique des matA©riaux (LEM3), Ile du Saulcy, F-57045 Metz - cedex 01, France;

    C-TEC Constellium Technology Center, Parc Economique Centr'alp CS100Z7 Voreppe, 38341 Cedex, France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Negative strain rate sensitivity; Aluminium alloy; Digital image correlation; Shear bands; Jump test; Field dislocation mechanics;

    机译:负应变率敏感性;铝合金;数字图像相关;剪切带;跳跃测试;场错位力学;

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