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首页> 外文期刊>Journal of the Mechanics and Physics of Solids >Cyclic plasticity of an interstitial high-entropy alloy: experiments, crystal plasticity modeling, and simulations
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Cyclic plasticity of an interstitial high-entropy alloy: experiments, crystal plasticity modeling, and simulations

机译:间质高熵合金的循环可塑性:实验,晶体塑性建模和模拟

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摘要

The development of high-entropy alloys (HEAs) comprising multiple principal components is an innovative design strategy for metallic materials from the perspective of ther-modynamic entropy. However, despite their potential candidacy for engineering applications, the lack of research on the cyclic loading responses as well as constitutive modeling of the HEAs is a major constraint. Therefore, the present work focuses on the cyclic plasticity of a typical carbon-doped interstitial HEA (iHEA) with nominal composition Fe_(49.5)Mn_(30)Co_(10)Cr_(10)C_(0.5) (at.%). The results of stress-controlled cyclic tests with nonzero mean stress showed that the iHEA exhibits significant cyclic hardening and stress level-dependent ratcheting. Owing to its improved cyclic hardening, the saturated ratcheting strain rate of the iHEA is lower than that of conventional steels such as the 316L stainless steel. Furthermore, microscopic characterizations revealed that the cyclic deformations caused massive martensitic phase transformation and hierarchical structures in the iHEA. The experimental results were used to develop a physical mechanism-based crystal plasticity constitutive model that is capable of describing the cyclic plasticity of the iHEA, which was implemented into a finite element framework. The simulation results showed that the loading stress significantly affected the microstructural evolutions, leading to a stress level-dependent cyclic plasticity. Thus, this investigation provides a fundamental basis for fatigue tests and service life prediction/optimization of the iHEA in the future, which can promote its engineering applications.
机译:包括多个主成分的高熵合金(HEAS)的发展是来自Ther-Mocynamic熵的角度的金属材料的创新设计策略。然而,尽管有潜在的工程应用候选性,但缺乏对循环加载响应以及遗址的本构型建模的研究是一个主要约束。因此,本作本作品侧重于典型的碳掺杂间质Hea(IHEA)的循环可塑性,标称组合物Fe_(49.5)Mn_(30)CO_(10)CR_(10)C_(0.5)(0.5)。具有非零平均应激的应力控制的循环试验结果表明,IHEA表现出显着的环状硬化和应力水平依赖性棘轮。由于其改进的循环硬化,IHEA的饱和棘轮应变率低于传统钢的常规钢,例如316L不锈钢。此外,显微性表征揭示了循环变形在IHEA中引起了大量的马氏体相变和分层结构。实验结果用于开发一种基于物理机理的晶体塑性本构模型,其能够描述IHEA的循环可塑性,该液体被实施为有限元框架。仿真结果表明,负载应力显着影响了微观结构的进化,导致应力水平依赖性循环可塑性。因此,本调查为未来IHEA的疲劳试验和服务生活预测/优化提供了基础,可以促进其工程应用。

著录项

  • 来源
    《Journal of the Mechanics and Physics of Solids》 |2020年第9期|103971.1-103971.18|共18页
  • 作者单位

    Applied Mechanics and Structure Safety Key Laboratory of Sichuan Province School of Mechanics and Engineering Southwest Jiaotong University Chengdu 610031 China;

    Applied Mechanics and Structure Safety Key Laboratory of Sichuan Province School of Mechanics and Engineering Southwest Jiaotong University Chengdu 610031 China;

    Applied Mechanics and Structure Safety Key Laboratory of Sichuan Province School of Mechanics and Engineering Southwest Jiaotong University Chengdu 610031 China;

    Max-Planck-Institut fuer Eisenforschung GmbH Max-Planck-Str. 1 Duesseldorf 40237 Germany School of Materials Science and Engineering Central South University Changsha 410083 China;

    Applied Mechanics and Structure Safety Key Laboratory of Sichuan Province School of Mechanics and Engineering Southwest Jiaotong University Chengdu 610031 China;

    Applied Mechanics and Structure Safety Key Laboratory of Sichuan Province School of Mechanics and Engineering Southwest Jiaotong University Chengdu 610031 China;

    Applied Mechanics and Structure Safety Key Laboratory of Sichuan Province School of Mechanics and Engineering Southwest Jiaotong University Chengdu 610031 China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    High-entropy alloy; Cyclic plasticity; Crystal plasticity; Ratcheting; Microstructural evolutions;

    机译:高熵合金;循环可塑性;水晶塑性;棘轮;微观结构的进化;

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