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Microstructure and tensile behavior of small scale resistance spot welded sandwich bulk metallic glasses

机译:小型电阻点焊夹心大块金属玻璃的组织和拉伸性能

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In this work, a small-scale resistance spot welding method was utilized to join two dissimilar Zr-based bulk metallic glasses and to fabricate the sandwich-laminated metallic glass plates. The laminates exhibit an almost fully amorphous structure without undesirable crystallization. Elemental line scanning across the joint interface shows a uniform distribution of the main elements, demonstrating favorable metallurgical bond in the laminate. The resultant tensile strength of the welded laminate is comparable to that of the parent metallic glasses. The fractured surface of the laminate exhibits extensive multiple failure planes, suggesting that the fracture instability was mediated by a crack branching mechanism over across the joint interface. Such a crack branching mechanism results in a stepwise fracture behavior which is contrastingly different from the conventional single primary shear band dominated catastrophic fracture in monolithic metallic glasses under tension. The unique stepwise fracture behavior endows the sandwiched metallic glass laminates with an excessive strain energy absorption through the joint interface than monolithic metallic glasses. Our results demonstrate that small-scale resistance spot welding is a promising approach to scaling up metallic glasses and to fabricating metallic glass laminates with desirable mechanical performance for structural applications. (C) 2016 Elsevier B.V. All rights reserved.
机译:在这项工作中,采用了一种小型电阻点焊方法来连接两个不同的基于Zr的块状金属玻璃,并制造出夹层层压的金属玻璃板。层压板显示出几乎完全无定形的结构,而没有不希望的结晶。穿过接头界面的元素线扫描显示主要元素的均匀分布,这表明层压板中具有良好的冶金结合。焊接层压板的最终抗拉强度与母体金属玻璃的抗拉强度相当。层压板的断裂表面表现出广泛的多个破坏平面,这表明断裂不稳定性是由跨接缝界面的裂纹分支机制介导的。这种裂纹分支机制导致逐步的断裂行为,这与在张力下的整体金属玻璃中的传统的单一的主剪切带主导的灾难性断裂不同。独特的逐步断裂行为使夹层​​金属玻璃层压板比整体金属玻璃通过接头界面吸收了过多的应变能。我们的结果表明,小规模的电阻点焊是一种有希望的方法,可用于按比例放大金属玻璃和制造具有理想机械性能的金属玻璃层压板,以用于结构应用。 (C)2016 Elsevier B.V.保留所有权利。

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