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Effects of cooling after rolling and heat treatment on microstructures and mechanical properties of Mo-Ti microalloyed medium carbon steel

机译:轧后热处理冷却对Mo-Ti微合金中碳钢组织和力学性能的影响

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摘要

The effects of four different processes, direct quenching + tempering (DQ + T), direct quenching + reheating and quenching + tempering (DQ + RQ + T), forced air cooling + reheating and quenching + tempering (AC + RQ + T), and furnace cooling + reheating and quenching + tempering (FC + RQ + T), on microstructures and precipitates of Mo-Ti microalloyed medium carbon steel were investigated by OM, SEM, TEM, EBSD and mechanical tests. The width of martensite laths (0.22 ± 0.01 μm) produced in DQ + RQ + T was similar to that generated in DQ + T and was narrower than those formed during AC + RQ + T and FC + RQ + T. The effective grain size of the DQ + RQ + T sample was found to be the smallest (0.98 ± 0.38 μm), thus it yielded the finest (Ti, Mo) C precipitates, manifested high strength and excellent plastic toughness, and generated uniform transverse and longitudinal properties. The strength of the DQ + RQ + T sample (longitudinal R_m = 1773 MPa) was slightly lower than that of the DQ + T samples and its elongation (A = 11.0%) and impact energy at -40 ℃ (A_(kv) = 50 J/ cm2) were greater than those of the other three samples. Before the RQ process, the DQ cooling process was employed in order to generate large angle grain boundaries to provide more nucleation sites for austenitization. Moreover, the DQ process inhibited the precipitation of Ti during cooling and then formed fine (Ti, Mo) C precipitates during reheating of RQ to prevent austenite grain growth. Therefore, the DQ + RQ + T process generated fully refined austenite grains, made the martensite structure and (Ti, Mo) C precipitates more uniform, and enhanced the effects of fine grain strengthening and precipitation strengthening. In addition, the plasticity and the toughness of the fine and uniform equiaxed grains were also significantly improved, and the formation of acicular cementites was impeded.
机译:四个不同过程的影响,直接淬火+回火(DQ + T),直接淬火+再加热和淬火+回火(DQ + RQ + T),强制风冷+再加热和淬火+回火(AC + RQ + T),通过OM,SEM,TEM,EBSD和力学性能测试研究了Mo-Ti微合金化中碳钢的熔窑冷却+再热淬火+回火(FC + RQ + T)。 DQ + RQ + T中产生的马氏体板条宽度(0.22±0.01μm)与DQ + T中产生的相似,并且比AC + RQ + T和FC + RQ + T中形成的马氏体板条宽度要窄。发现DQ + RQ + T样品的样品最小(0.98±0.38μm),因此产生了最细的(Ti,Mo)C沉淀,表现出高强度和优异的塑性韧性,并产生了均匀的横向和纵向性能。 DQ + RQ + T样品的强度(纵向R_m = 1773 MPa)略低于DQ + T样品的强度及其延伸率(A = 11.0%)和在-40℃时的冲击能(A_(kv)= 50 J / cm2)大于其他三个样品。在RQ工艺之前,采用DQ冷却工艺以生成大角度晶界,以提供更多的成核位置以进行奥氏体化。此外,DQ工艺抑制了冷却过程中Ti的析出,然后在RQ的再加热过程中形成了细小的(Ti,Mo)C沉淀,以防止奥氏体晶粒长大。因此,DQ + RQ + T过程产生了完全细化的奥氏体晶粒,使马氏体组织和(Ti,Mo)C析出更加均匀,并增强了细晶粒强化和沉淀强化的效果。此外,细小且均匀的等轴晶粒的可塑性和韧性也得到了显着提高,并且阻碍了针状渗碳体的形成。

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  • 来源
    《Materials Science and Engineering》 |2020年第31期|138808.1-138808.11|共11页
  • 作者单位

    The State Key Laboratory of Refractories and Metallurgy Hubei Province Key Laboratory of Systems Science on Metallurgical Processing International Research Institute for Steel Technology Wuhan University of Science and Technology Wuhan 430081 China Wuhan Branch of Boosted Central Research Institute(R & D Center of Wuhan Iron & Steel Co. Ltd) Wuhan 430080 China;

    The State Key Laboratory of Refractories and Metallurgy Hubei Province Key Laboratory of Systems Science on Metallurgical Processing International Research Institute for Steel Technology Wuhan University of Science and Technology Wuhan 430081 China Laboratory for Excellence in Advanced Steel Research Materials Science and Engineering Program Department of Metallurgical Materials and Biomedical Engineering University of Texas at El Paso El Paso TX 79968 USA;

    The State Key Laboratory of Refractories and Metallurgy Hubei Province Key Laboratory of Systems Science on Metallurgical Processing International Research Institute for Steel Technology Wuhan University of Science and Technology Wuhan 430081 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Heat treatment and cooling processes; Precipitation; Effective grain size; Martensitic lath;

    机译:热处理和冷却过程;沉淀;有效晶粒度;马氏体板条;

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