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Creep and fatigue behavior of 316L stainless steel at room temperature: Experiments and a revisit of a unified viscoplasticity model

机译:316L不锈钢在室温下的蠕变和疲劳行为:实验和对统一粘塑性模型的重新考察

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摘要

A series of experiments was conducted to determine the fatigue and time-dependent behaviors of 316L stainless steel, including monotonic tensile and stress relaxation with different strain rates, fully reversed cyclic plasticity, creep and relaxation interaction, and cyclic stress relaxation tests. Although the material exhibited slight strain rate sensitivity from monotonic testing, considerable decay stress was observed in the relaxation during the following strain holding period. From the interaction tests between creep and stress relaxation with alternate strain and stress holding, we examined the evolution of the inelastic strain rate and found that the overall decelerating inelastic strain rate was detected regardless of the sequence of the stress and strain holding. Moreover, a typical unified viscoplasticity model was selected to simulate the creep and fatigue behaviors for time-dependent materials. We found that despite satisfactory description for most experimental results, inclusion of the static recovery term in the back stress evolution led to inappropriate prediction of the inelastic strain rate evolution.
机译:进行了一系列实验来确定316L不锈钢的疲劳和时间相关行为,包括具有不同应变速率的单调拉伸和应力松弛,完全反向的循环塑性,蠕变和松弛相互作用以及循环应力松弛测试。尽管该材料在单调测试中表现出轻微的应变速率敏感性,但在随后的应变保持期间的松弛中观察到了相当大的衰减应力。从蠕变和应力松弛与交替应变和应力保持之间的相互作用测试中,我们检查了非弹性应变速率的演变,发现无论应力和应变保持的顺序如何,总的减速性非弹性应变速率都可以检测到。此外,选择了典型的统一粘塑性模型来模拟时变材料的蠕变和疲劳行为。我们发现,尽管对大多数实验结果都进行了令人满意的描述,但是将静态恢复项包括在背应力演化中导致对弹性应变速率演化的不恰当预测。

著录项

  • 来源
    《International Journal of Fatigue》 |2018年第7期|70-77|共8页
  • 作者单位

    School of Naval Architecture, Ocean and Civil Engineering (State Key Laboratory of Ocean Engineering), Shanghai Jiao Tong University,Department of Mechanical Engineering and Science, Kyoto University;

    Department of Mechanical Engineering and Science, Kyoto University;

    School of Naval Architecture, Ocean and Civil Engineering (State Key Laboratory of Ocean Engineering), Shanghai Jiao Tong University;

  • 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

    Creep; Fatigue; Time-dependent plasticity; Unified viscoplasticity model; Static recovery term;

    机译:蠕变;疲劳;时间依赖性可塑性;统一粘塑性模型;静态恢复期;

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