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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Microstructure and Mechanical Properties of a Low-Carbon Mn-Si Multiphase Steel Based on Dynamic Transformation of Undercooled Austenite
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Microstructure and Mechanical Properties of a Low-Carbon Mn-Si Multiphase Steel Based on Dynamic Transformation of Undercooled Austenite

机译:基于过冷奥氏体动态转变的低碳锰硅多相钢的组织和力学性能

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摘要

The microstructure evolution of 0.20C-2.00Mn-2.00Si steel treated by the thermomechanical process to manufacture hot-rolled, transformation-induced plasticity (TRIP) steel based on dynamic transformation of undercooled austenite was investigated using a Gleeble 1500 (Dynamic Systems, Inc., Poestenkill, NY) hot simulation test machine in combination with light microscope (LM), scanning electron microscopy (SEM), and X-ray diffraction (XRD). The mechanical properties of this steel with different multiphase microstructures were also analyzed using room-temperature tensile tests. The results indicated that the multi-phase microstructures consisting of fine-grained ferrite with a size of 1-3 /an, bainite packets, and retained austenite and martensite were formed for the used steel by a thermo-mechanical process involving dynamic transformation of undercooled austenite, controlled cooling, isothermal bainite treatment and water-quenching. With the increase in the strain of hot deformation of undercooled austenite, the fraction of ferrite increased, that of bainite decreased, and that of martensite increased. At the same time, the fraction of retained austenite (RA), as well as the carbon content of RA, first increased and then decreased. For the used steel treated by such process, the tensile strength is about 1200 MPa with a total elongation of about 20 pct, and the product of tensile strength and total elongation can be up to 25,000 MPa x pct.
机译:使用Gleeble 1500(Dynamic Systems,Inc. ,纽约州Poestenkill的热模拟测试机,结合了光学显微镜(LM),扫描电子显微镜(SEM)和X射线衍射(XRD)。还使用室温拉伸试验分析了具有不同多相组织的这种钢的力学性能。结果表明,通过过冷动态变化的热机械过程,对废钢形成了尺寸为1-3 / an的细晶粒铁素体,贝氏体包,残留奥氏体和马氏体的多相组织。奥氏体,受控冷却,贝氏体等温处理和水淬。随着过冷奥氏体热变形应变的增加,铁素体的分数增加,贝氏体的分数减少,马氏体的分数增加。同时,残余奥氏体(RA)的比例以及RA的碳含量先增加后减少。对于通过这种方法处理过的废钢,抗拉强度约为1200 MPa,总伸长率为约20 pct,抗拉强度与总伸长率的乘积可高达25,000 MPa x pct。

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