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Predicting and controlling interfacial microstructure of magnesium/aluminum bimetallic structures for improved interfacial bonding

机译:预测和控制镁/铝双金属结构的界面微观结构,改进界面粘合

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In this study,an overcasting process followed by a low-temperature(200°C)annealing schedule has been developed to bond magnesium to aluminum alloys.ProCAST software was used to optimize the process parameters during the overcasting process which lead to Mg/Al bimetallic structures to be successfully produced without formation of Mg-Al intermetallic phases.Detailed microstructure evolution during annealing,including the formation and growth of Al-Mg interdiffusion layer and intermetallic phases(Al12Mg17 and Al3Mg2),was experimentally observed for the first time with direct evidence,and predicted using Calculation of Phase Diagrams(CALPHAD)modeling.Maximum interfacial strength was achieved when the interdiffusion layer formed at the Mg/Al interface reached a maximum thickness the without formation of brittle intermetallic compounds.The precise diffusion modeling of the Mg/Al interface provides an efficient way to optimize and control the interfacial microstructure of Mg/Al bimetallic structures for improved interfacial bonding.
机译:在该研究中,已经开发出低温(200℃)退火时间表的过架过程,以键合给铝合金。用于优化在覆盖过程中的过程参数,导致Mg / Al Bimetallic在不形成Mg-Al金属间相的情况下成功生产的结构。在退火过程中进行的微观结构演化,包括Al-Mg间隔层和金属间相的形成和生长(Al12mg17和Al3mg2),首次以直接证据进行实验观察并且使用相图(Calphad)建模的计算预测。当Mg / Al界面上形成的相互混合层达到最大厚度时,实现了脆性金属间化合物的最大厚度。Mg / Al的精确扩散建模接口提供了优化和控制Mg / Al Bimetallic str的界面微结构的有效方法改善界面键合的uctures。

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