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首页> 外文期刊>Materials & design >Study on the microstructure and mechanical properties of diffusion brazing joint of C17200 Copper Beryllium alloy
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Study on the microstructure and mechanical properties of diffusion brazing joint of C17200 Copper Beryllium alloy

机译:C17200铜铍合金扩散钎焊接头的组织与力学性能研究。

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摘要

In order to study the microstructure and mechanical properties of Copper Beryllium alloy, spreadability test was carried out at two temperatures under Argon atmosphere for different filler metals of Ag content. The results show that BAg2a (Ag-26Cu-21Zn-19Cd) and BAgla (Ag-18.5Cu-17Zn-14.5Cd) are the best choice for brazing of Copper Beryllium. Zn affects the wetting of interlayer because it spreads preferentially. The bonding process was carried out at a temperature ranging of 650-800 ℃ for various times under Argon atmosphere using of BAg2a (Ag-26Cu-21Zn-19Cd) film with 100 urn thickness as interlayer. Interfacial microstructures were examined by Scanning Electron Microscopy (SEM) and Energy Dispersive Spectroscopy (EDS). The eutectic and intermetallic compounds such as CuZn, AgZn3 and AgCd3 were formed at the interfaces between the interlayer and substrate. Microhardness and tensile tests were used for evaluating the mechanical properties. Average of hardness at the center of brazed seam decreased with increasing time and temperature that associated with diffusion of main elements to substrate and intermetallic formation at the interface. Maximum tensile strength of 170 MPa was obtained at 750 ℃ for 20 min for filler metal BAg2a without heat treatment and 227 MPa with heat treatment.
机译:为了研究铜铍合金的显微组织和力学性能,在氩气气氛下的两个温度下,对不同含量的Ag填充金属进行了铺展性试验。结果表明,BAg2a(Ag-26Cu-21Zn-19Cd)和BAgla(Ag-18.5Cu-17Zn-14.5Cd)是钎焊铜铍的最佳选择。锌会影响中间层的润湿,因为它优先扩散。使用厚度为100 n的BAg2a(Ag-26Cu-21Zn-19Cd)膜作为中间层,在氩气气氛下于650-800℃的温度范围内进行多次键合工艺。通过扫描电子显微镜(SEM)和能量色散谱(EDS)检查界面微结构。共晶和金属间化合物,例如CuZn,AgZn3和AgCd3,形成在中间层和衬底之间的界面上。显微硬度和拉伸试验用于评估机械性能。钎焊缝中心的平均硬度随时间和温度的升高而降低,这与主要元素向基体的扩散以及界面处金属间化合物的形成有关。对于未经热处理的填充金属BAg2a,在750℃的条件下,在20分钟内可获得170 MPa的最大抗拉强度;对于经过热处理的227 MPa,则可达到的最大抗拉强度为227 MPa。

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  • 来源
    《Materials & design》 |2014年第1期|766-773|共8页
  • 作者单位

    Department of Mining and Metallurgical Engineering, Amirkabir University of Technology (Tehran Polytechnic), P.O. Box 1591634311, Tehran, Iran;

    Department of Mining and Metallurgical Engineering, Amirkabir University of Technology (Tehran Polytechnic), P.O. Box 1591634311, Tehran, Iran;

    Department of Mining and Metallurgical Engineering, Amirkabir University of Technology (Tehran Polytechnic), P.O. Box 1591634311, Tehran, Iran;

    Department of Mining and Metallurgical Engineering, Amirkabir University of Technology (Tehran Polytechnic), P.O. Box 1591634311, Tehran, Iran;

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