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通过超声振动实现金属玻璃在液态下的连接。

Joining of metallic glasses in liquid via ultrasonic vibrations.

作者信息

Li Luyao, Li Xin, Huang Zhiyuan, Huang Jinbiao, Liu Zehang, Fu Jianan, Wen Wenxin, Zhang Yu, Huang Shike, Ren Shuai, Ma Jiang

机构信息

Shenzhen Key Laboratory of High Performance Nontraditional Manufacturing, College of Mechatronics and Control Engineering, Shenzhen University, Shenzhen, 518060, China.

School of Mechanical, Electrical and Information Engineering, Shandong University, Weihai, 264209, China.

出版信息

Nat Commun. 2023 Oct 9;14(1):6305. doi: 10.1038/s41467-023-42014-x.

Abstract

Joining processes especially for metallic materials play critical roles in manufacturing industries and structural applications, therefore they are essential to human life. As a more complex technique, under-liquid joining has far-reaching implications for national defense, offshore mining. Furthermore, up-to-now, the effective joining of metals in extreme environments, such as the flammable organo-solvent or the arctic liquid nitrogen, is still uninvestigated. Therefore, an efficient under-liquid joining approach is urgently called for. Here we report a method to join different types of metallic glasses under water, seawater, alcohol and liquid-nitrogen. The dynamic heterogeneity and liquid-like region expansion induces fluid-like behavior under ultrasonic vibration to promote oxide layer dispersion and metal bonding, allowing metallic glasses to be successfully joined in heat-free conditions, while still exhibiting excellent tensile strength (1522 MPa), bending strength (2930 MPa) and improved corrosion properties. Our results provide a promising strategy for manufacturing under offshore, polar, oil-gas and space environments.

摘要

特别是用于金属材料的连接工艺在制造业和结构应用中起着关键作用,因此它们对人类生活至关重要。作为一种更复杂的技术,液下连接对国防、近海采矿具有深远影响。此外,到目前为止,在极端环境中,如易燃有机溶剂或北极液氮中,金属的有效连接仍未得到研究。因此,迫切需要一种高效的液下连接方法。在此,我们报告了一种在水、海水、酒精和液氮中连接不同类型金属玻璃的方法。动态非均匀性和类液区扩展在超声振动下诱导出类似流体的行为,以促进氧化层分散和金属键合,使金属玻璃能够在无热条件下成功连接,同时仍表现出优异的拉伸强度(1522兆帕)、弯曲强度(2930兆帕)和改善的耐腐蚀性能。我们的结果为在近海、极地、油气和太空环境下制造提供了一种有前景的策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aa1e/10562460/718eb3b95049/41467_2023_42014_Fig1_HTML.jpg

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