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TiZrNbTa难熔高熵合金粉末的氢化-脱氢制备工艺
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国防科技大学空天科学学院, 湖南 长沙 410073

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国家自然科学基金(11972372)


Preparation of TiZrNbTa Refractory High-entropy Alloy Powder by Hydrogenation-dehydrogenation Reaction
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College of Aerospace Science and Engineering, National University of Defense Technology, Changsha 410073, China

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Grant support: National Natural Science Foundation of China (No. 11972372)

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    摘要:

    TiZrNbTa难熔高熵合金作为活性合金,具有优良的力学性能和释能特性,但其组元熔点高且差异大,液固两相区较宽,难以通过传统铸造工艺实现大尺寸成型,粉末冶金技术作为制备大尺寸合金构件的有效手段,为突破这一瓶颈提供了可行途径。粉末的获取是粉末冶金技术制备大尺寸构件的关键。为此,采用氢化和脱氢工艺制备了等摩尔比TiZrNbTa难熔高熵合金粉末,并对其氢化和脱氢工艺系统研究。结果表明:在550 ℃、0.25 MPa氢压下对等摩尔比TiZrNbTa铸态合金进行2 h氢化后,可得到TiZrNbTa氢化合金,其由铸态BCC固溶体结构转变为ZrH2、TiH2和(Nb,Ta)H等金属氢化物;机械破碎制得不规则氢化粉末的平均粒径D50为11.13 μm,氢、氧含量分别为1.823%和0.111%。随后在450 ℃真空环境下脱氢1.5 h,得到具有单相BCC固溶体结构的TiZrNbTa难熔高熵合金粉末,其氢、氧含量分别为0.028%和0.121%,粒径分布显著变窄,平均粒径D50减小至5.67 μm,表明氢化-脱氢工艺是制备具有适宜粒径的低氧污染TiZrNbTa难熔高熵合金粉末的有效方法。

    Abstract:

    As a reactive alloy, the TiZrNbTa refractory high-entropy alloy exhibits excellent mechanical properties and energy release characteristics, However, due to the high melting points and significant differences among its constituent elements, the liquid–solid two-phase region is relatively wide, making it difficult to achieve large-scale forming via traditional casting processes. Powder metallurgy technology, as an effective means for preparing large-sized alloy components, offers a feasible approach to overcome this bottleneck. For this purpose, this study systematically investigates the hydrogenation and dehydrogenation processes of TiZrNbTa refractory high-entropy alloy powders. The results indicate that after hydrogenation at 550 ℃ under 0.25 MPa hydrogen pressure for 2 hs, the TiZrNbTa alloy ingot undergoes hydrogen-induced embrittlement, transforming from a Body-centered cubic (BCC) solid solution structure into metal hydrides such as ZrH₂, TiH₂, and (Nb, Ta)H. The irregular hydrogenated powder obtained via mechanical crushing has a median particle size (D50) of 11.13 μm, with hydrogen and oxygen contents of 1.823% and 0.111%, respectively. Subsequently, dehydrogenation at 450 ℃ under vacuum for 1.5 hours yields TiZrNbTa refractory reactive alloy powder with a single-phase BCC solid solution structure. Its hydrogen and oxygen contents are 0.028 % and 0.121%, respectively, with a significantly narrowed particle size distribution and a reduced median particle size (D50) of 5.67 μm, indicating that the hydrogenation-dehydrogenation process is an effective method for preparing TiZrNbTa refractory high-entropy alloy powder with low oxygen-contaminated and suitable particle sizes.

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陈星邑,姚欣唯,张周然,等. TiZrNbTa难熔高熵合金粉末的氢化-脱氢制备工艺[J].含能材料, 2026, 34(4):417-424. DOI:10.11943/CJEM2026026.
CHEN Xing-yi, YAO Xin-wei, ZHANG Zhou-ran, et al. Preparation of TiZrNbTa Refractory High-entropy Alloy Powder by Hydrogenation-dehydrogenation Reaction[J]. Chinese Journal of Energetic Materials, 2026, 34(4):417-424. DOI:10.11943/CJEM2026026.

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  • 收稿日期: 2026-01-29
  • 最后修改日期: 2026-04-24
  • 录用日期: 2026-04-13
  • 在线发布日期: 2026-04-16
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