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首页> 外文期刊>International journal of hydrogen energy >Ag-Al based air braze for high temperature electrochemical devices
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Ag-Al based air braze for high temperature electrochemical devices

机译:用于高温电化学装置的基于Ag-Al的空气钎焊

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Silver-aluminum based air brazing was attempted using an in situ alloying and brazing process. In this process, layers of foils of aluminum and silver were laid up between alumina plates in alternating fashion to achieve three target compositions representing Ag, Ag_3Al, and Ag_2Al phases. Each alloy composition revealed different microstructure, mechanical properties and fracture mechanisms. Joints brazed with foils containing 9.8 at% Al formed a long continuous layer parallel to the direction of the original aluminum foil. The fracture occurred at low bend strength (6-12 MPa) mainly through the interface between this newly formed long alumina layer and the braze filler. Joints containing 26.5 at% Al in the braze filler metal experienced the series of phase transformations, leading to cracks in as-brazed specimens. The fracture initiated through these pre-existing cracks, thus the joint strength observed in these specimens was extremely low. The joints prepared using foils with 35.1 at% Al exhibited a good interface even though interfacial alumina particles formed during air brazing. Crack propagation occurred along the interface between the alumina substrate and in situ formed interfacial alumina particles or directly through these particles. Due to the good interface, the best bend strength (46-52 MPa) was achieved for the braze filler containing 35 at% Al.
机译:尝试使用原位合金化和钎焊工艺进行银铝基气钎焊。在此过程中,将铝和银的箔层交替放置在氧化铝板之间,以获得代表Ag,Ag_3Al和Ag_2Al相的三个目标成分。每种合金成分显示出不同的微观结构,力学性能和断裂机理。用含9.8 at%Al的箔钎焊的接头形成平行于原始铝箔方向的长连续层。断裂主要通过该新形成的长氧化铝层和钎料之间的界面在低弯曲强度(6-12 MPa)下发生。钎料中含有26.5 at%Al的接缝经历了一系列相变,导致钎焊试样出现裂纹。断裂是由这些预先存在的裂缝引起的,因此在这些样品中观察到的接头强度极低。即使在空气钎焊期间形成界面氧化铝颗粒,使用具有35.1 at%Al的箔制备的接头也显示出良好的界面。裂纹扩展沿氧化铝基体和原位形成的界面氧化铝颗粒之间的界面发生,或直接通过这些颗粒发生。由于良好的界面,对于含35 at%Al的钎料,可获得最佳的弯曲强度(46-52 MPa)。

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