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粉末冶金工艺制备 WTaTiVCr 高熵合金及其衍生合金在聚变材料中的应用。

Powder Metallurgy Processing of a WTaTiVCr High-Entropy Alloy and Its Derivative Alloys for Fusion Material Applications.

机构信息

Department of Nuclear and Quantum Engineering, Korea Advanced Institute of Science and Technology, 291 Daehakro, Yuseong-gu, Daejeon, 34141, Republic of Korea.

出版信息

Sci Rep. 2017 May 16;7(1):1926. doi: 10.1038/s41598-017-02168-3.

Abstract

The WTaTiVCr high-entropy alloy with 32at.% of tungsten (W) and its derivative alloys with 42 to 90at.% of W with in-situ TiC were prepared via the mixing of elemental W, Ta, Ti, V and Cr powders followed by spark plasma sintering for the development of reduced-activation alloys for fusion plasma-facing materials. Characterization of the sintered samples revealed a BCC lattice and a multi-phase structure. The selected-area diffraction patterns confirmed the formation of TiC in the high-entropy alloy and its derivative alloys. It revealed the development of C15 (cubic) Laves phases as well in alloys with 71 to 90at.% W. A mechanical examination of the samples revealed a more than twofold improvement in the hardness and strength due to solid-solution strengthening and dispersion strengthening. This study explored the potential of powder metallurgy processing for the fabrication of a high-entropy alloy and other derived compositions with enhanced hardness and strength.

摘要

采用元素 W、Ta、Ti、V 和 Cr 粉末混合,随后进行火花等离子烧结,制备了钨含量为 32at.%的 WTaTiVCr 高熵合金及其衍生的钨含量为 42 至 90at.%的原位 TiC 合金,旨在开发用于聚变等离子体面对材料的低活度合金。对烧结样品的表征揭示了 BCC 晶格和多相结构。选区衍射图谱证实了 TiC 在高熵合金及其衍生合金中的形成。研究还发现,在钨含量为 71 至 90at.%的合金中,C15(立方)拉弗斯相也有所发展。对样品的力学性能研究表明,由于固溶强化和弥散强化,硬度和强度提高了两倍以上。本研究探索了粉末冶金工艺在制备高熵合金及其他衍生高硬度、高强度合金方面的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0fb3/5434025/cf777da84adc/41598_2017_2168_Fig1_HTML.jpg

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