Liang Zhuoheng, Ye Zhanggen, Liu Chunfeng, Sun Liangbo, Zhang Yongzhong
GRINM Group Corporation Limited, National Engineering & Technology Research Center for Non-Ferrous Metals Composites, Beijing 101407, China.
GRINM Metal Composites Technology Co., Ltd., Beijing 101407, China.
Micromachines (Basel). 2024 Jul 23;15(8):937. doi: 10.3390/mi15080937.
HfNbTaTiZr high-entropy alloy has wide application prospects as a biomedical material, and the use of laser additive manufacturing can solve the forming problems faced by the alloy. In view of the characteristics of the one-time forming of additive manufacturing methods, it is necessary to develop non-mechanical processing modification methods. In this paper, deep cryogenic treatment (DCT) is first applied to the modification of a HEA with BCC structure, then the post-processing method of DCT is combined with laser melting deposition (LMD) technology to successfully realize the coordinated improvement of forming and strength-ductility synergistic improvement in lightweight HfNbTaTiZr alloy. The final tensile strength of the alloy after DCT treatment is 25% higher than that of the as-cast alloy and 11% higher than that of the as-deposited alloy, and the elongation is increased by 48% and 10%, respectively. In addition, DCT also achieves induced phase transition without additional deformation.
HfNbTaTiZr高熵合金作为生物医学材料具有广阔的应用前景,采用激光增材制造可以解决该合金面临的成型问题。鉴于增材制造方法一次性成型的特点,有必要开发非机械加工改性方法。本文首次将深冷处理(DCT)应用于对具有体心立方(BCC)结构的高熵合金的改性,然后将DCT的后处理方法与激光熔覆沉积(LMD)技术相结合,成功实现了轻质HfNbTaTiZr合金成型和强度-塑性协同提高的协同改进。经DCT处理后合金的最终抗拉强度比铸态合金高25%,比沉积态合金高11%,伸长率分别提高了48%和10%。此外,DCT还实现了无附加变形的诱导相变。