Plasma Facing Materials Based on Dispersion Strengthened Tungsten

被引:0
|
作者
Liu H. [1 ]
Long H.-C. [1 ]
Zheng P.-F. [2 ]
Qiu C.-J. [1 ]
Chen Y. [1 ]
机构
[1] University of South China, Hubei, Hengyang
[2] Southwestern Institute of Physics, Chengdu
来源
Surface Technology | 2022年 / 51卷 / 08期
关键词
dispersion strengthening; hydrogen retention; irradiation damage; mechanical properties; plasma facing materials; tungsten-based materials;
D O I
10.16490/j.cnki.issn.1001-3660.2022.08.014
中图分类号
学科分类号
摘要
Plasma facing materials in extreme environment of fusion reactors suffer high temperature corrosion, irradiation damage, and severe fuel retention. Tungsten is currently the main candidate for plasma materials because of its inherent low thermal expansion coefficient, low tritium storage capacity, high radiation resistance, and good corrosion resistance. However, the interaction between plasma and tungsten under deuterium-tritium reaction exhibits such defects as low temperature brittleness, low recrystallization temperature and high toughness-brittle transition temperature, such as pores, vacancies and fatigue cracks, which are difficult to meet the wall loading requirements of future nuclear fusion reactors. At present, the second phase dispersion strengthening has become one of the common methods to improve the performance of tungsten-based plasma facing materials. However, the existence of high heat load and high flux of particles put forward more stringent requirements for the comprehensive performance of dispersion strengthened tungsten-based materials. In recent years, the research on tungsten-based plasma-facing materials in fusion reactor has been mainly focused on three aspects: first, the effect of adding oxide (Y2O3, La2O3, Al2O3, ZrO2) or carbide (TiC, TaC, ZrC) second-phase particles on the microstructure and mechanical properties of tungsten-based materials; second, the hydrogen retention characteristics of dispersion strengthened tungsten based materials; third, the irradiation damage behavior under the action of different particle flows.The research on the mechanical properties of plasma tungsten based materials mainly includes grain size, tensile and compressive strength, recrystallization temperature, toughness brittleness transition temperature and microhardness. The material preparation process and strengthening phase particle content are the two main aspects affecting the mechanical properties of dispersion strengthened tungsten based materials. At present, the preparation methods of particle strengthening phase mainly include powder metallurgy, mechanical alloying, hydrothermal synthesis and wet chemical method, and the relative density and mechanical properties of tungsten based materials prepared by combining with different sintering methods are very different. The uneven dispersion of strengthening phase particles at grain boundaries and in grains, and the irradiation effect of the high-beam particles on the dispersion-strengthened tungsten-based material causes displacement damage, bubbles, fluff in the microstructure and morphology, micro-cracks and other defects will increase the probability of the material capturing hydrogen isotopes. In addition, the fusion reactor plasma irradiation will also cause embrittlement and hardening of the tungsten material, significantly reducing the thermal shock resistance of the material. This paper reviews the effects of carbide or oxide content on the microstructure and mechanical properties of tungsten based plasma-facing materials prepared by different processes, as well as the latest research progress on hydrogen retention characteristics and irradiation damage in dispersion strengthened tungsten based materials at home and abroad, analyzes the key basic problems of dispersion-strengthened tungsten based plasma-facing materials in recent years, and prospects the main development trends of dispersion-strengthened tungsten based materials in the future, which is expected to provide an important reference for the development of tungsten based materials with excellent resistance to high thermal load and irradiation damage. © 2022, Chongqing Wujiu Periodicals Press. All rights reserved.
引用
收藏
页码:168 / 178and213
相关论文
共 80 条
  • [31] HU Wei-qiang, DONG Zhi, MA Zong-qing, Et al., Micro-structure Refinement in W–Y2O3 Alloys via an Improved Hydrothermal Synthesis Method and Low Temperature Sintering, Inorganic Chemistry Frontiers, 7, 3, pp. 659-666, (2020)
  • [32] PATRA A, SAHOO R R, KARAK S K, Et al., Effect of Nano Y2O3 Dispersion on Thermal, Microstructure, Mechanical and High Temperature Oxidation Behavior of Mechanically Alloyed W-Ni-Mo-Ti, International Journal of Refractory Metals and Hard Materials, 70, pp. 134-154, (2018)
  • [33] DONG Zhi, LIU Nan, HU Wei-qiang, Et al., Controlled Synthesis of High-Quality W-Y2O3 Composite Powder Precursor by Ascertaining the Synthesis Mechanism Behind the Wet Chemical Method, Journal of Materials Science & Technology, 36, pp. 118-127, (2020)
  • [34] BATTABYAL M, SCHAUBLIN R, SPATIG P, Et al., Microstructure and Mechanical Properties of a W-2wt.%Y2O3 Composite Produced by Sintering and Hot Forging, Journal of Nuclear Materials, 442, pp. S225-S228, (2013)
  • [35] LIAN You-yun, LIU Xiang, FENG Fan, Et al., Mechanical Properties and Thermal Shock Performance of W-Y2O3 composite Prepared by High-Energy-Rate Forging, Physica Scripta, T170, (2017)
  • [36] HU Wei-qiang, YU Li-ming, MA Zong-qing, Et al., W-Y2O3 Composite Nanopowders Prepared by Freeze-Drying Method and Its Sintering Characteristics, Journal of Alloys and Compounds, 806, pp. 127-135, (2019)
  • [37] DONG Zhi, MA Zong-qing, DONG Ji, Et al., The Simultaneous Improvements of Strength and Ductility in W-Y2O3 Alloy Obtained via an Alkaline Hydrothermal Method and Subsequent Low Temperature Sintering, Materials Science and Engineering: A, 784, (2020)
  • [38] XIE Z M, LIU R, MIAO S, Et al., Effect of High Temperature Swaging and Annealing on the Mechanical Properties and Thermal Conductivity of W-Y2O3, Journal of Nuclear Materials, 464, pp. 193-199, (2015)
  • [39] LIU R, XIE Z M, FANG Q F, Et al., Nanostructured Yttria Dispersion-Strengthened Tungsten Synthesized by Sol-Gel Method, Journal of Alloys and Compounds, 657, pp. 73-80, (2016)
  • [40] CHEN Chun-liang, SUTRISNA, Influence of Alloying Elements, In-Situ Dispersoids and Fabrication on Micro-structure and Properties of W-(Ta, V, Ti) ODS Alloys, Journal of Alloys and Compounds, 834, (2020)