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具有所需变形能力和耐腐蚀性的增材制造大型锆基块状金属玻璃复合材料

Additive Manufactured Large Zr-Based Bulk Metallic Glass Composites with Desired Deformation Ability and Corrosion Resistance.

作者信息

Luo Yu, Xing Leilei, Jiang Yidong, Li Ruiwen, Lu Chao, Zeng Rongguang, Luo Jinru, Zhang Pengcheng, Liu Wei

机构信息

Institute of Materials, China Academy of Engineering Physics, P.O.Box 9071, Jiangyou 621907, Sichuan, China.

School of Materials Science and Engineering, Tsinghua University, Beijing 100084, China.

出版信息

Materials (Basel). 2020 Jan 28;13(3):597. doi: 10.3390/ma13030597.

Abstract

Zr-based bulk metallic glasses have been attracting tremendous interest of researchers because of their unique combination of mechanical and chemical properties. However, their application is limited as large-scale production is difficult due to the limitation of cooling rate. Recently, additive manufacturing technology has been proposed as a new solution for fabricating bulk metallic glasses without size limitation. In this study, selective laser melting technology was used to prepare ZrFeCuAl bulk metallic glass. The laser parameters for fabricating full dense amorphous specimens were investigated. The mechanical and corrosion resistance properties of the prepared samples were measured by micro-compression and electrochemical corrosion testing, respectively. Lastly, ZrFeCuAl bulk metallic glass (BMG) with dispersed nano-crystals was made, and good deformation ability was revealed during micro-compression test. The corrosion resistance decreased a bit due to the crystalline phases. The results provide a promising route for manufacturing large and complex bulk metallic glasses with better mechanical property and acceptable corrosion resistance.

摘要

锆基块状金属玻璃因其独特的机械和化学性能组合而一直吸引着研究人员的极大兴趣。然而,由于冷却速率的限制,大规模生产困难,其应用受到限制。最近,增材制造技术被提出作为一种制造无尺寸限制的块状金属玻璃的新解决方案。在本研究中,采用选择性激光熔化技术制备ZrFeCuAl块状金属玻璃。研究了制备全致密非晶试样的激光参数。分别通过微压缩和电化学腐蚀测试测量了制备样品的机械性能和耐腐蚀性。最后,制备了具有分散纳米晶体的ZrFeCuAl块状金属玻璃(BMG),并在微压缩试验中显示出良好的变形能力。由于晶相的存在,耐腐蚀性略有下降。这些结果为制造具有更好机械性能和可接受耐腐蚀性的大型复杂块状金属玻璃提供了一条有前景的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aaa7/7040801/6a06c8eede60/materials-13-00597-g001.jpg

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