Tensile properties of baseline and advanced tungsten grades for fusion applications

Yin, Chao;Terentyev, Dmitry;Pardoen, Thomas;Bakaeva, Anastasiia;Zhang, Tao;et.al.
(2018) International Journal of Refractory and Hard Metals — Vol. 75, p. 153-162 (2018)

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Authors
  • Yin, ChaoSCK-CEN
    Author
  • Terentyev, DmitrySCK-CEN
    Author
  • Author
  • Bakaeva, AnastasiiaSCK-CEN
    Author
  • Zhang, TaoChinese Academy of Sciences
    Author
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Abstract
This work aims to establish a mechanical reference database of tungsten materials that are currently under assessment of their susceptibility to neutron irradiation. To obtain the mechanical properties, we performed a set of parametric tests using mini-tensile sample geometry and fracture surface analysis. Six different types of tungsten-based materials were assessed: two commercial grades produced according to ITER specifications in Europe and China - i.e., Plansee (IGP) and AT&M (CEFTR), and four perspective lab-scale grades. These are grades reinforced with particles of TiC, Y2O3, and ZrC (W1TiC, W2YO, and W0.5ZC, respectively) as well as fine grain structure W (FG). Tests were performed in the temperature range 150–600°C, selected specifically to reveal the ductile to brittle transition temperature and mechanisms of full plastic deformation. Most of the materials showed onset of the ductile behavior at 300 °C, except FG and IGP (in transverse orientation) grades. High yield strength and ultimate tensile strength were recorded for CEFTR, W0.5ZC, and W1TiC at the maximum investigated temperature (600°C), which can be considered as promising for performance in the high-temperature regime. The lowest threshold temperature for ductility was determined to be 200°C registered for the W0.5ZC grade, CEFTR (in longitudinal orientation) grades, and IGP (in longitudinal orientation) grades, hence demonstrating its high potential for divertor applications.
Affiliations
  • SCK-CENStructural Materials Group, Institute of Nuclear Materials Science
  • Ghent UniversityDepartment of Electrical Energy, Metals, Mechanical constructions & Systems
  • Karlsruhe Institute of Technology (KIT)Institute for Applied Materials
  • The Czech Academy of SciencesInstitute of Plasma Physics
  • Chinese Academy of SciencesInstitute of Solid State Physics

Citations

Yin, C., Terentyev, D., Pardoen, T., Bakaeva, A., Petrov, R., Antusch, S., Rieth, M., Vilémová, M., Matějíček, J., & Zhang, T. (2018). Tensile properties of baseline and advanced tungsten grades for fusion applications. International Journal of Refractory and Hard Metals, 75, 153-162. https://doi.org/10.1016/j.ijrmhm.2018.04.003 (Original work published 2018)