Sharma Ashutosh, Ahn Byungmin
Department of Materials Science and Engineering, Ajou University, Suwon, 16499, Korea.
Department of Energy Systems Research, Ajou University, Suwon, 16499, Korea.
Sci Rep. 2021 Apr 30;11(1):9345. doi: 10.1038/s41598-021-87705-x.
In this work, we studied the brazing characteristics of AlO and 3D printed Ti-6Al-4V alloys using a novel equiatomic AlZnCuFeSi high entropy alloy filler (HEAF). The HEAF was prepared by mechanical alloying of the constituent powder and spark plasma sintering (SPS) approach. The filler microstructure, wettability and melting point were investigated. The mechanical and joint strength properties were also evaluated. The results showed that the developed AlZnCuFeSi HEAF consists of a dual phase (Cu-Zn, face-centered cubic (FCC)) and Al-Fe-Si rich (base centered cubic, BCC) phases. The phase structure of the (Cu-Al + Ti-Fe-Si)/solid solution promises a robust joint between AlO and Ti-6Al-4V. In addition, the joint interfacial reaction was found to be modulated by the brazing temperature and time because of the altered activity of Ti and Zn. The optimum shear strength reached 84 MPa when the joint was brazed at 1050 °C for 60 s. The results can be promising for the integration of completely different materials using the entropy driven fillers developed in this study.
在这项工作中,我们使用一种新型的等原子AlZnCuFeSi高熵合金填充材料(HEAF)研究了AlO和3D打印Ti-6Al-4V合金的钎焊特性。HEAF通过对组成粉末进行机械合金化和火花等离子烧结(SPS)方法制备。研究了填充材料的微观结构、润湿性和熔点。还评估了力学性能和接头强度性能。结果表明,所开发的AlZnCuFeSi HEAF由双相(Cu-Zn,面心立方(FCC))和富Al-Fe-Si(体心立方,BCC)相组成。(Cu-Al + Ti-Fe-Si)/固溶体的相结构保证了AlO和Ti-6Al-4V之间的牢固接头。此外,由于Ti和Zn活性的改变,发现接头界面反应受钎焊温度和时间的调节。当接头在1050°C下钎焊60 s时,最佳剪切强度达到84 MPa。本研究中利用熵驱动填充材料实现完全不同材料的结合,这些结果可能很有前景。