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Effects of High-Speed Deformation on the Phase Stability and Interdiffusion in Ultrasonically Joined Aluminum and Zinc Foils

机译:高速变形对超声连接铝和锌箔相相稳定性和相互作用的影响

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The effects of high strain-rate deformation on the phase stability and interdiffusion were investigated for Al-Zn welds produced by ultrasonic welding at 513 K. The welds exhibited three distinct regions: a featureless region indicative of local melting on the zinc side, a solidified mushy layer and a layer of fcc grains enriched with zinc. Al-Zn phase diagrams calculated from vacancy-modified Gibbs free energy curves indicate that local melting at the weld interface may result even at 513 K if the vacancy concentrations in the fcc and hcp solutions approach 0.07 as a result of high strain-rate deformation. EDS analysis of the weld interface yielded an interdiffusivity of 1.9 μm~2/s, which is five orders of magnitude larger than the normal diffusivity of zinc in aluminum at 513 K. Application of the mono-vacancy diffusion mechanism to the diffusion data also yields a vacancy concentration of 0.07, indicating that such a high vacancy concentration may indeed resulted during the ultrasonic welding at 513 K.
机译:采用超声波焊接生产的Al-Zn焊缝对相位稳定性和相互作用对相位稳定性和相互作用的影响。焊缝表现出三个不同的区域:锌侧的局部熔化的无特征区域,凝固糊状层和一层富含锌的FCC晶粒。从空位改性的Gibbs自由能量曲线计算的Al-Zn相图表明,如果FCC和HCP溶液溶液的空位浓度为0.07,则焊接界面处的局部熔化也可能导致513K,因此由于高应变率变形。焊接界面的EDS分析产生了1.9μm〜2 / s的间隔率,这比铝中锌中锌的正常扩散性大于513 K.在扩散数据中的应用也产生的空位浓度为0.07,表明在513k的超声波焊接期间可能确实导致这种高空位浓度。

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