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Rietveld refinement, microstructure, mechanical properties and oxidation characteristics of Fe-28Mn-xAl-1C(x=10 and 12 wt.) low-density steels

机译:Fe-28Mn-xAl-1C(x = 10和12 wt。%)低密度钢的Rietveld细化,组织,力学性能和氧化特性

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摘要

The quantitative relationship between microstructure and properties of austenitic Fe-28Mn-xAl-1C (x=10 and 12 wt.%) low-density steels was evaluated using Rietveld method to refine X-ray diffraction (XRD) patterns.The results showed that a typical three-phase austenitic steel was obtained in the forged Mn28Al10 (i.e.Fe-28Mn-10Al-1C) steel, which included about 92.85 wt.%γ-Fe(Mn, Al, C) (austen-ite), 5.28 wt.% (Fe, Mn)3 AlC0.5 (κ-carbide), and 1.87 wt.%α-Fe(Al, Mn) (ferrite).For the forged Mn28Al12 (i.e.Fe-28Mn-12Al-1C) steel, nevertheless, only about 76.64 wt.% austenite, 9.63 wt.%κ-carbide, 9.14 wt.% ferrite and 4.59 wt.% Fe3Al (DO3) could be obtained.Nanometerκ-carbide and DO3 were mainly distributed in austenite grains and at the interface between austenite and ferrite, respec-tively.The forged Mn28Al10 steel had a better combination of strength, ductility and specific strength as compared with the forged Mn28Al12 steel.The ductility of the forged Mn28Al12 steel was far lower than that of the forged Mn28Al10 steel.The oxidation kinetics of Mn28Al10 steel oxidized at 1323 K for 5-25 h had two-stage linear rate laws, and the oxidation rate of the second stage was faster than that of the first stage.Although the oxidation kinetics of Mn28Al12 steel under this condition also had two-stage linear rate laws, the oxidation rate of the second stage was slower than that of the first stage.When the oxida-tion temperature increased to 1373 K, the oxidation kinetics of the two steels at 5-25 h had only one-stage linear rate law, and the oxidation rates of the two steels were far faster than those at 1323 K for 5-25 h.The oxidation resistance of Mn28Al12 steel was much better than that of Mn28Al10 steel.Fer-rite layer formed between the austenite matrix and the oxidation layer of the two Fe-Mn-Al-C steels oxi-dized at high temperature.
机译:利用Rietveld方法对奥氏体Fe-28Mn-xAl-1C(x = 10和12 wt。%)低密度钢的组织与性能的定量关系进行了评估,结果表明:在锻造的Mn28Al10(即Fe-28Mn-10Al-1C)钢中获得了典型的三相奥氏体钢,其中包括约92.85 wt。%的γ-Fe(Mn,Al,C)(奥氏体),5.28 wt% 。%(Fe,Mn)3 AlC0.5(κ-碳化物)和1.87 wt。%α-Fe(Al,Mn)(铁素体)。对于锻造Mn28Al12(即Fe-28Mn-12Al-1C)钢,然而,仅能获得约76.64 wt。%的奥氏体,9.63 wt。%的κ碳化物,9.14 wt。%的铁素体和4.59 wt。%的Fe3Al(DO3)。纳米κ碳化物和DO3主要分布在奥氏体晶粒中和处。与锻造Mn28Al12钢相比,锻造Mn28Al10钢在强度,延展性和比强度方面具有更好的组合。锻造Mn28Al12钢的延展性远低于t在1323 K下氧化5-25 h的Mn28Al10钢的氧化动力学具有两阶段线性速率规律,第二阶段的氧化速率比第一阶段的快。在此条件下Mn28Al12钢的动力学也具有两阶段线性速率规律,第二阶段的氧化速率比第一阶段慢。当氧化温度升高到1373 K时,两种钢的氧化动力学5-25 h时的线性速率规律仅为一阶段,两种钢的氧化速率远高于1323 K时5-25 h的氧化速率。Mn28Al12钢的抗氧化性能优于Mn28Al10钢。在高温下氧化的两种Fe-Mn-Al-C钢的奥氏体基体和氧化层之间形成的铁素体层。

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  • 来源
    《钢铁研究学报(英文版)》 |2017年第12期|1190-1198|共9页
  • 作者单位

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

    Key Laboratory of Metallurgical Emission Reduction & Resources Recycling, Ministry of Education, Anhui University of Technology, Ma′anshan 243002, Anhui, China;

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

    Key Laboratory of Metallurgical Emission Reduction & Resources Recycling, Ministry of Education, Anhui University of Technology, Ma′anshan 243002, Anhui, China;

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

    Key Laboratory of Metallurgical Emission Reduction & Resources Recycling, Ministry of Education, Anhui University of Technology, Ma′anshan 243002, Anhui, China;

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

    Key Laboratory of Metallurgical Emission Reduction & Resources Recycling, Ministry of Education, Anhui University of Technology, Ma′anshan 243002, Anhui, China;

    Industrial & Commercial College, Anhui University of Technology, Ma′anshan 243002, Anhui, China;

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

    Key Laboratory of Metallurgical Emission Reduction & Resources Recycling, Ministry of Education, Anhui University of Technology, Ma′anshan 243002, Anhui, China;

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

    State Key Laboratory of Rolling and Automation, Northeastern University, Shenyang 110819, Liaoning, 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 2024-01-26 22:06:50
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