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首页> 外文期刊>Materials Science and Engineering >Stress partitioning among ferrite, martensite and retained austenite of a TRIP-assisted multiphase steel: An in-situ high-energy X-ray diffraction study
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Stress partitioning among ferrite, martensite and retained austenite of a TRIP-assisted multiphase steel: An in-situ high-energy X-ray diffraction study

机译:TRIP辅助多相钢的铁素体,马氏体和残余奥氏体之间的应力分配:原位高能X射线衍射研究

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摘要

The stress partitioning among ferrite, martensite and retained austenite, and the stability of retained austenite under uniaxial tensile loading of a TRIP-assisted multiphase steel are investigated using in-situ high-energy X-ray diffraction technique. The results indicate that the stress partitioning, mainly occurring in elastic and elastoplastic regions, is activated by the "stress feedback mechanism". In the elastic region, the decline of increasing rate of ferrite stress is accompanied by the sudden increase of martensite and retained austenite stresses, which indicates a stress transfer from ferrite to martensite and retained austenite. During deformation, martensitic transformation first occurs in the retained austenite with low carbon content, followed by those with high carbon content, which is denominated "selective transformation mechanism". In addition, the increment of average carbon content in retained austenite continuously increases with the gradual transformation of retained austenite into martensite. The evolution of retained austenite strain versus engineering stress is similar to that of martensite strain, except that austenite strain is higher than martensite strain at the end of uniform deformation, which is related to the high carbon content in retained austenite.
机译:利用原位高能X射线衍射技术研究了TRIP辅助多相钢在单轴拉伸载荷下铁素体,马氏体和残余奥氏体之间的应力分配以及残余奥氏体的稳定性。结果表明,应力分配主要发生在弹性和弹塑性区域,被“应力反馈机制”激活。在弹性区,铁素体应力增加速率的下降伴随着马氏体和残余奥氏体应力的突然增加,这表明应力从铁素体转移到马氏体和残余奥氏体。在变形过程中,马氏体相变首先在低碳含量的残余奥氏体中发生,然后在高碳含量的残余奥氏体中发生,这被称为“选择性相变机理”。另外,残余奥氏体中平均碳含量的增加随着残余奥氏体向马氏体的逐渐转变而连续增加。残余奥氏体应变对工程应力的演变与马氏体应变相似,只是在均匀变形结束时奥氏体应变高于马氏体应变,这与残余奥氏体中的高碳含量有关。

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