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首页> 外文期刊>Ultrasonics sonochemistry >Ultrasound-induced liquid/solid interfacial reaction between Zn-3Al alloy and Zr-based bulk metallic glasses
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Ultrasound-induced liquid/solid interfacial reaction between Zn-3Al alloy and Zr-based bulk metallic glasses

机译:Zn-3 al合金与Zr基散装金属玻璃之间的超声诱导液/固体界面反应

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摘要

Ultrasound-assisted fluxless brazing of Zr based Bulk metallic glasses (Zr-BMG) joint using Zn-3Al filler metal was performed in this study. The effect of ultrasonic vibration time on the microstructure and mechanical properties of Zr-BMG joints were investigated. Results showed that excellent metallurgic bonding could be obtained in ultrasonically brazed Zr-BMG joints. The interfacial reaction between liquid Zn-3Al filler metal and Zr-BMG substrate showed a mutation characteristic, which could be distinguished into incubation period and acceleration period. In the incubation period, Zn50Zr25Al25 intermetallic compounds (IMCs) with small ellipsoidal shape were slowly formed and distributed randomly on Zr-BMG surface. However, in the acceleration period, Zn50Zr25Al25 ellipsoids developed rapidly into a wavy-structured IMCs layer with a thickness of 17 pm, which was comprised of alternate Zn50Zr25Al25 and Zn22Zr sublayers. The microstructure evolution of Zn-3Al/ZrBMG interface was ascribed to the combined effects of acoustic cavitations and Al element controlled interfacial metallurgic reactions. The average shear strength of joint was increased firstly then decreased slightly with increasing ultrasonic vibration time, and a highest strength value of approximately 100 MPa was obtained for joints brazed for 96 s. The shearing failure was inclined to occur at the Zn-3Al/Zr-BMG interface then transferred into the interfacial IMCs layer with increasing ultrasonic vibration time.
机译:在本研究中进行了使用Zn-3Al填充金属的基于Zr的块状金属玻璃(Zr-BMG)关节的超声波辅助浮雕。研究了超声波振动时间对Zr-BMG关节微观结构和力学性能的影响。结果表明,在超声钎焊的Zr-BMG关节中可以获得优异的冶金键合。液体Zn-3Al填充金属和Zr-BMG底物之间的界面反应显示出突变特征,可以将其区分成培养期和加速期。在孵育期间,Zn50ZR2525金属间化合物(IMC)在Zr-BMG表面上随机地缓慢形成并分布。然而,在加速期间,Zn50ZR2525椭圆体迅速开发到具有厚度17μm的波浪结构的IMC层层中,其由交替的Zn50Zr25A25和Zn22Zr子层组成。 Zn-3Al / ZRBMG界面的微观结构演变归因于声学空腔和Al元素控制界面冶金反应的组合效应。首先增加关节的平均剪切强度随后随着超声振动时间的增加而略微下降,获得钎焊96秒的关节的最高强度值约为100MPa。剪切故障倾斜以在Zn-3Al / Zr-BMG界面处发生,然后随着超声振动时间的增加而转移到界面IMCS层中。

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