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Tensile Deformation Behavior of Fe-Mn-Al-C Low Density Steels

机译:Fe-Mn-Al-C低密度钢的拉伸变形行为

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摘要

Room temperature tensile tests of Fe-Mn-Al-C low density steels with four different chemical compositions were conducted to clarify the dominant deformation mechanisms.Parameters like product of strength and elongation, as well as specific strength and curves of stress-strain relations were calculated.The microstructures and tensile frac-ture morphologies were observed by optical microscope,scanning electron microscope and transmission electron mi-croscope.The tensile behavior of low density steel was correlated to the microstructural evolution during plastic de-formation,and the effects of elements,cooling process and heat treatment temperature on the mechanical properties of the steels were analyzed.The results show that the tensile strength of steels with different cooling modes is more than 1 000 MPa.The highest tensile strength of 28Mn-12Al alloy reached 1 230 MPa,with corresponding specific strength of 189.16 MPa.cm3 .g-1 ,while the specific strength of 28Mn-10Al alloy was 178.98 MPa.cm3 .g-1 , and the excellent product of strength and elongation of 28Mn-8Al alloy was over 69.2 GPa.%.A large number of ferrite reduced the ductility and strain hardening rate of the alloy,while the existence ofκcarbides may improve the strength but weaken the plasticity.Some fineκcarbides appeared in the water-quenched specimen,while coarseκcarbides were observed in the air-cooled specimen.High temperature heat treatment improved the decomposition ki-netics ofγphase and the diffusion rate of carbon,thus speeded up the precipitation of fineκcarbides.The dominant deformation mechanism of low density steel was planar glide,including shear-band-induced plasticity and microband-induced plasticity.
机译:对具有四种化学成分的Fe-Mn-Al-C低密度钢进行了室温拉伸试验,阐明了主要的变形机理,得出了强度和伸长率乘积以及比强度和应力-应变关系曲线等参数。通过光学显微镜,扫描电子显微镜和透射电子显微镜观察显微组织和拉伸断裂形态。低密度钢的拉伸行为与塑性变形过程中的微观组织演变以及元素的影响有关。 ,冷却过程和热处理温度对钢的力学性能的影响进行了分析。结果表明,不同冷却方式的钢的抗拉强度均大于1000MPa。28Mn-12Al合金的最高抗拉强度达到1230 MPa。 ,相应的比强度为189.16 MPa.cm3 .g-1,而28Mn-10Al合金的比强度为178.98 MPa.cm3 .g-1,28Mn-8Al合金的强度和伸长率的优异乘积超过69.2 GPa。%。大量的铁素体降低了合金的延展性和应变硬化率,而κ碳化物的存在可以改善水淬后的试样中出现了一些细的κ碳化物,而在空冷的试样中观察到了一些粗的κ碳化物。低密度钢的主要变形机制是平面滑移,包括剪切带诱发的塑性和微带诱发的塑性。

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  • 来源
    《钢铁研究学报(英文版)》 |2016年第9期|963-972|共10页
  • 作者单位

    School of Metallurgical Engineering,Anhui University of Technology,Ma′anshan 243002,Anhui,China;

    School of Metallurgical Engineering,Anhui University of Technology,Ma′anshan 243002,Anhui,China;

    School of Metallurgical Engineering,Anhui University of Technology,Ma′anshan 243002,Anhui,China;

    School of Metallurgical Engineering,Anhui University of Technology,Ma′anshan 243002,Anhui,China;

    School of Metallurgical Engineering,Anhui University of Technology,Ma′anshan 243002,Anhui,China;

    School of Materials Science and Engineering,Nanjing University of Science and Technology,Nanjing 210094,Jiangsu,China;

  • 收录信息 中国科学引文数据库(CSCD);中国科技论文与引文数据库(CSTPCD);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2024-01-27 08:21:12
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