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Microstructure characterization and tensile shear failure mechanism of the bonding interface of explosively welded titanium-steel composite

机译:爆炸钛钢复合材料粘接界面的微观结构表征及拉伸剪切故障机理

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摘要

The dissimilar joining of TA2/Q235 had attracted great attention because of its important applications in the nuclear fusion, aerospace, petrochemical industry. The possibility of joining TA2 and Q235 irrespective of different thermal expansion coefficients, different melting temperatures, or different mechanical properties was restricted with the conventional welding methods. Explosive welding, as a well-known composite processing technology, could be used to weld two or more similar and dissimilar plates. Which had been used to successfully fabricate TA2/Q235 composite in this work. The failure often occurred near the bonding interface of transition joints and mechanical parts were fabricated by explosive welding in the industrial application and production. Then the tensile-shear test was conducted to investigate the tensile shear failure mechanism at the bonding interface with in-situ SEM, and also nanoindentation was used to identify the mechanical properties. The interface bonding shear strength was around 345 MPa. Further, the microstructure characterization of interfacial zone and the melting and mixing of welding materials were investigated by optical microscopy (OM), scanning electron microscopy (SEM), energy dispersive spectrometer (EDS), electron backscatter diffraction (EBSD) and transmission electron microscopy (TEM). The results demonstrated that the failure of the bonding interface occurred along the interface wave direction. It was because that the defects, such as cavities, cracks and brittle intermetallic, in the melted zone of the interface wave. The discontinuities and stress concentration points would result in degraded mechanical properties. The fracture morphology showed microcracks, cleavage plane, dimples, fragmentation of brittle intermetallic compounds, which presented mainly brittle fracture, while ductile fracture existed in some zone. Meanwhile, there were the serious lattice distortion and high internal stress in Ti matrix, while the deformation and elongation of the grain and fine grains formed in Fe matrix.
机译:由于其在核融合,航空航天,石化工业中的重要应用,TA2 / Q235的不同加入引起了极大的关注。加入Ta2和Q235的可能性,无论如何利用传统的焊接方法都有不同的热膨胀系数,不同的熔化温度或不同的机械性能。作为众所周知的复合加工技术,爆炸焊接可用于焊接两个或更多类似和不同的板材。已用于在这项工作中成功制造TA2 / Q235复合材料。经常发生在过渡接头的粘接界面附近发生,通过爆炸焊接在工业应用和生产中制造了机械部件。然后进行拉伸剪切试验以研究与原位SEM的键合界面处的拉伸剪切失效机制,并且还用于鉴定机械性能。界面粘合剪切强度约为345MPa。此外,通过光学显微镜(OM),扫描电子显微镜(SEM),能量分散光谱仪(EDS),电子反向散射衍射(EBSD)和透射电子显微镜研究了界面区的微观结构表征和焊接材料的熔化和混合和焊接材料的混合。 TEM)。结果表明,键合界面的故障沿界面波方向发生。这是因为在界面波的熔化区中的缺陷,例如腔,裂缝和脆性金属间金属间金属间金属缺陷。不连续性和应力集中点将导致机械性能降低。骨折形态显示微裂纹,切割平面,凹坑,脆性金属间化合物的破碎化,其主要是脆性骨折,而在某些区域存在延性骨折。同时,在Ti基质中存在严重的晶格畸变和高内应力,而在Fe基质中形成的晶粒和细粒的变形和伸长。

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  • 来源
    《Materials Science and Engineering》 |2021年第13期|141559.1-141559.13|共13页
  • 作者单位

    State Key Laboratory of Explosion Science and Technology Beijing Institute of Technology Beijing 100081 China China Academy of Ordnance Science Beijing 100089 China;

    State Key Laboratory of Explosion Science and Technology Beijing Institute of Technology Beijing 100081 China;

    State Key Laboratory of Explosion Science and Technology Beijing Institute of Technology Beijing 100081 China;

    Xi'an Tianli Metal Composite Materials Co. LTD Xi an 710000 China;

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

    Explosive welding interface; Microstructure; In-situ tensile shear; Failure mechanism;

    机译:爆炸焊接界面;微观结构;原位拉伸剪切;失败机制;

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