Effect of Plasticity on Creep Deformation in Type 316H Stainless Steel

A. Mamun, C. Simpson, T. Erinosho, D. Agius, C. Reinhard, M. Mostafavi, D. Knowles
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引用次数: 4

Abstract

The creep life and deformation behaviour of high-temperature steels can be significantly affected by the prior plastic loading. This effect is partly due to the generation of intergranular strains from the grain-scale elastic and plastic anisotropic deformation during plastic loading. This paper investigates the effect of these plasticity generated intergranular strains on the subsequent creep strain accumulation behavior in type 316H stainless steel. An in-situ synchrotron diffraction experiment was conducted at 550°C, where the sample was loaded incrementally to different magnitudes of plastic strain, followed by a displacement-controlled stress relaxation dwell at each of this stage. The lattice strains of 4 grain families were measured during these stages. It was found that the intergranular strains generated during the plastic deformation significantly affect the relative magnitude of creep strain accumulation in different grain families. A subtle but significant difference has been observed between the creep intergranular strain accumulation behavior and the plastic intergranular strain accumulation behavior in different grain families which can be used to interrogate the validity of any micromechanical models’ formulation for creep and plastic deformation. The macroscopic stress relaxations measured from the experiment were compared with the prediction from a novel crystal plasticity based micromechanical model developed in our group. A good overall match was found between the experiment and the model regarding the magnitude of stress relaxation after various level of plasticity. The experiments have demonstrated that the model requires further development to accurately predict the rate of stress relaxation and the micro scale lattice strain evolution during creep.
塑性对316H型不锈钢蠕变变形的影响
预塑性载荷对高温钢的蠕变寿命和变形性能有显著影响。这种影响部分是由于在塑性加载过程中,颗粒尺度的弹塑性各向异性变形产生了晶间应变。本文研究了这些塑性产生的晶间应变对316H型不锈钢后续蠕变应变积累行为的影响。在550℃下进行了原位同步加速器衍射实验,在此阶段,样品逐渐加载到不同大小的塑性应变,然后在每个阶段进行位移控制的应力松弛停留。在这两个阶段测量了4个晶粒族的晶格应变。结果表明,塑性变形过程中产生的晶间应变显著影响不同晶族蠕变应变积累的相对大小。在不同晶粒族中,蠕变晶间应变积累行为与塑性晶间应变积累行为之间存在细微但显著的差异,这可以用来质疑任何微观力学模型的蠕变和塑性变形公式的有效性。实验测量的宏观应力松弛与本课组基于晶体塑性的微力学模型的预测结果进行了比较。在不同塑性水平下的应力松弛幅度,实验结果与模型总体吻合较好。实验表明,为了准确预测蠕变过程中应力松弛速率和微尺度晶格应变演化,该模型还有待进一步发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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