首页> 外文期刊>Metallurgical and Materials Transactions A >Effects of Tempering on Microstructure, Hardness, Wear Resistance, and Fracture Toughness of Cr3C2/Steel Surface Composites Fabricated by High-Energy Electron-Beam Irradiation
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Effects of Tempering on Microstructure, Hardness, Wear Resistance, and Fracture Toughness of Cr3C2/Steel Surface Composites Fabricated by High-Energy Electron-Beam Irradiation

机译:回火对高能电子束辐照Cr3 C2 /钢表面复合材料的组织,硬度,耐磨性和断裂韧性的影响

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摘要

This study aimed at improving hardness, wear resistance, and fracture toughness by tempering chromium carbide (Cr3C2)/carbon steel surface composites fabricated by high-energy electron-beam irradiation. The mixture of Cr3C2 powders and MgF2 flux was placed on a plain carbon steel substrate, and then electron beam was irradiated on this mixture using an electron-beam accelerator. In the specimens fabricated with flux powders, the surface composite layer of 1.9 mm in thickness was successfully formed without defects, and contained about 3 vol pct of Cr7C3 carbides in the matrix composed of plate-type martensite and austenite. When the Cr3C2/steel surface composite was tempered, the martensite was resolved, and Cr7C3 carbides were coarsely precipitated along cell boundaries while the austenite disappeared, thereby leading to the increase in hardness and wear resistance. Observation of the microfracture process of the 500 °C-tempered surface composite revealed that cracks initiated and propagated along intercellular Cr7C3 carbides and stopped propagating when they met the relatively ductile tempered martensite matrix. Accordingly, this composite showed improved fracture toughness and presented good application possibilities as hard and tough wear-resistant materials.
机译:本研究旨在通过回火通过高能电子束辐照制备的碳化铬(Cr3 C2 )/碳钢表面复合材料来提高硬度,耐磨性和断裂韧性。将Cr3 C2 粉末和MgF2 助熔剂的混合物放置在碳素钢基体上,然后使用电子束加速器将电子束照射在该混合物上。在用助熔剂粉末制成的样品中,成功地形成了厚度为1.9 mm的表面复合层,没有缺陷,并且在由板状马氏体组成的基体中包含约3vol%的Cr7 C3 碳化物。和奥氏体。 Cr3 C2 /钢表面复合材料回火后,马氏体分解,Cr7 C3 碳化物沿晶界粗大析出,而奥氏体消失,从而导致硬度和耐磨性的提高。在500℃回火的表面复合材料的微断裂过程中观察到,当裂纹遇到相对易延展的回火马氏体基体时,裂纹沿着细胞间的Cr7 C3 碳化物开始并扩展,并停止了扩展。因此,这种复合材料显示出改善的断裂韧性,并作为硬而坚硬的耐磨材料具有良好的应用可能性。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2008年第11期|2615-2625|共11页
  • 作者

    Dukhyun Nam; Sunghak Lee;

  • 作者单位

    Materials Science and Engineering Department Center for Advanced Aerospace Materials Pohang University of Science and Technology Pohang 790-784 Korea;

    Materials Science and Engineering Department Center for Advanced Aerospace Materials Pohang University of Science and Technology Pohang 790-784 Korea;

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