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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >The Role of Intercritical Annealing in Enhancing Low-temperature Toughness of Fe-C-Mn-Ni-Cu Structural Steel
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The Role of Intercritical Annealing in Enhancing Low-temperature Toughness of Fe-C-Mn-Ni-Cu Structural Steel

机译:跨临界退火在增强Fe-C-Mn-Cu-Cu结构钢的低温韧性方面的作用

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In this article, an intercritical annealing (IA) process was introduced to the conventional quenching and tempering (QT) heat treatment for a Fe-C-Mn-Ni-Cu structural steel. The corresponding microstructures and mechanical properties of this steel were characterized by scanning electron microscope (SEM) equipped with electron back scattering diffraction (EBSD) and mechanical properties test. The results showed that IA process could lead to a considerable increase in low-temperature toughness for this steel. A mixed microstructure was obtained after IA process had been adopted containing intercritical ferrite and tempered martensite together with a small amount of retained austenite. This steel with mixed microstructure exhibited tensile strength of 961 MPa, relatively lower yield strength of 830 MPa, and a lower yield-to-tensile ratio (Y/T ratio) of 0.86, while a higher total elongation of 22.2 pct was achieved. The reason for this could be attributed to the multiple effect of multi-phase microstructure and deformation-induced transformation of the retained austenite during tensile deformation. The excellent low-temperature toughness was characterized by the Charpy impact energy as 183 J at 153 K (-120 degrees C), which was associated with highly stable retained austenite and finer microstructure through reversed transformation during intercritical annealing treatment. These can be considered to increase the resistance to crack initiation and propagation and decrease the ductile-brittle transformation temperature (DBTT). (C) The Minerals, Metals & Materials Society and ASM International 2019
机译:在本文中,将跨临界退火(IA)方法引入Fe-C-Mn-Cu-Cu结构钢的常规淬火和回火(QT)热处理。通过扫描电子显微镜(SEM),其特征在于配备电子背散射衍射(EBSD)和机械性能试验的相应组织和力学性能。结果表明,IA工艺可能导致该钢的低温韧性相当大。在含有跨临界铁氧体和浓度的保留奥氏体一起含有跨临界铁氧体和钢化马氏体之后获得混合微观结构。该钢具有混合微观结构的抗拉强度为961MPa,屈服强度为830MPa的相对较低,产率与拉伸比(Y / T比率)为0.86,而达到较高的总伸长率为22.2PCT。其原因可归因于在拉伸变形期间保持奥氏体的多相微观结构和变形诱导的变形变形的多种效果。优异的低温韧性,其特征在于夏比冲击能量为183k(-120℃),其与间临界退火处理期间通过反转的转化具有高度稳定的保留奥氏体和更精细的微观结构。可以认为这些可以增加抗裂引起和传播的抗性,并降低延性脆性转化温度(DBTT)。 (c)2019年矿物质,金属和材料协会和ASM国际

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    Northeastern Univ State Key Lab Rolling &

    Automat 3-11 Wenhua Rd Shenyang 110819 Liaoning Peoples R China;

    Northeastern Univ State Key Lab Rolling &

    Automat 3-11 Wenhua Rd Shenyang 110819 Liaoning Peoples R China;

    Northeastern Univ State Key Lab Rolling &

    Automat 3-11 Wenhua Rd Shenyang 110819 Liaoning Peoples R China;

    Northeastern Univ State Key Lab Rolling &

    Automat 3-11 Wenhua Rd Shenyang 110819 Liaoning Peoples R China;

    Northeastern Univ State Key Lab Rolling &

    Automat 3-11 Wenhua Rd Shenyang 110819 Liaoning Peoples R China;

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  • 中图分类 冶金技术 ;
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