Skip to main content
Have a personal or library account? Click to login
Heat load and deuterium plasma effects on SPS and WSP tungsten Cover

Heat load and deuterium plasma effects on SPS and WSP tungsten

Open Access
|Jun 2015

References

  1. 1. Stork, D., Agostini, P., Boutard, J. -L., Buckthorpe, D., Diegele, E., Dudarev, S. L., English, C., Federici, G., Gilbert, M. R., Gonzalez, S., Ibarra, A., Linsmeier, C., Puma, A. L., Marbach, G., Packer, L. W., Raj, B., Rieth, M., Tran, M. Q., Ward, D. J., & Zinkle, S. J. (2014). Materials R&D for a timely DEMO: Key findings and recommendations of the EU Roadmap Materials Assessment Group..,(7/8), 1586–1594..
  2. 2. Wirtz, M., Linke, J., Pintsuk, G., Singheiser, L., & Zlobinski, M. (2013). Comparison of thermal shock damages induced by different simulation methods on tungsten..,(Suppl.), S833–S836..
  3. 3. Linke, J. (2008). High heat flux performance of plasma facing materials and components under service conditions in future fusion reactors..,, S278–S287.
  4. 4. Garkusha, I. E., Arkhipov, N. I., Klimov, N. S., Makhlaj, V. A., Safronov, V. M., Landman, I., & Tereshin, V. I. (2009). The latest results from ELM-simulation experiments in plasma accelerators.,, 014054. DOI: 10.1088/0031-8949/2009/T138/014054.
  5. 5. Shu, W. M., Nakamichi, M., Alimov, V. K., Luo, G. N., Isobe, K., & Yamanishi, T. (2009). Deuterium retention, blistering and local melting at tungsten exposed to high-fluence deuterium plasma..,, 1017–1021..
  6. 6. Morgan, T. W., van Eden, G. G., de Kruif, T. M., van den Berg, M. A., Matějíček, J., Chráska, T., & De Temmerman, G. (2014). ELM-induced melting: assessment of shallow melt layer damage and the power handling capability of tungsten in a linear plasma device.,, 014022. DOI: 10.1088/0031-8949/2014/T159/014022.
  7. 7. Shirokova, V., Laas, T., Ainsaar, A., Priimets, J., Ugaste, Ü., Demina, E. V., Pimenov, V. N., Maslyaev, S. A., Dubrovsky, A. V., Gribkov, V. A., Scholz, M., & Mikli, V. (2013). Comparison of damages in tungsten and tungsten doped with lanthanum-oxide exposed to dense deuterium plasma shots..,(1/3), 181–188..
  8. 8. Riesch, J., Buffiere, J. Y., Höschen, T., di Michiel, M., Scheel, M., Linsmeier, C., & You, J. H. (2013). In situ synchrotron tomography estimation of toughening effect by semi-ductile fibre reinforcement in a tungsten-fibre-reinforced tungsten composite system.,(19), 7060–7071..
  9. 9. Nishijima, D., Sugimoto, T., Iwakiri, H., Ye, M. Y., Ohno, N., Yoshida, N., & Takamura, S. (2005). Characteristic changes of deuterium retention on tungsten surfaces due to low-energy helium plasma pre-exposure..,, 927–931..
  10. 10. Yuan, Y., Greuner, H., Böswirth, B., Linsmeier, C., Luo, G. N., Fu, B. Q., Xu, H. Y., Shen, Z. J., & Liu, W. (2013). Surface modification of molten W exposed to high heat flux helium neutral beams..,(1/3), 297–302..
  11. 11. Ueda, Y., Coenen, J. W., De Temmerman, G., Doerner, R. P., Linke, J., Philipps, V., & Tsitrone, E. (2014). Research status and issues of tungsten plasma facing materials for ITER and beyond.(7/8), 901–906..
  12. 12. Shin, K., Shuichi, T., Noriyasu, O., Dai, N., Hirotomo, I., & Naoaki, Y. (2007). Sub-ms laser pulse irradiation on tungsten target damaged by exposure to helium plasma.(9), 1358–1366. DOI: 10.1088/0029-5515/47/9/038.
  13. 13. Matějíček, J., Kavka, T., Bertolissi, G., Ctibor, P., Vilémová, M., Mušálek, R., & Nevrlá, B. (2013). The role of spraying parameters and inert gas shrouding in hybrid water-argon plasma spraying of tungsten and copper for nuclear fusion applications..,(5), 744–755
  14. 14. Hirai, T., Pintsuk, G., Linke, J., & Batilliot, M. (2009). Cracking failure study of ITER-reference tungsten grade under single pulse thermal shock loads at elevated temperatures..,, 751–754..
  15. 15. Shu, W. M., Kawasuso, A., & Yamanishi, T. (2009). Recent findings on blistering and deuterium retention in tungsten exposed to high-fluence deuterium plasma.,, 356–359..
  16. 16. Mušálek, R., Matějíček, J., Vilémová, M., & Kovářík, O. (2010). Non-linear mechanical behavior of plasma sprayed alumina under mechanical and thermal loading..,(1/2), 422–428. 10.1007/s11666-009-9362-x.
  17. 17. Tan, J., Zhou, Z.-j., Zhu, X.-p., Guo, S.-q., Qu, D.-d., Lei, M.-k., & Ge, C.-c. (2012). Evaluation of ultrafine grained tungsten under transient high heat flux by high-intensity pulsed ion beam..,(5), 1081–1085..
  18. 18. Eliáš, M., Frgala, Z., Kudrle, V., Janča, J., & Brožek, V. (2004). Low temperature metallurgy of tungsten in plasma reactors.,(1), 91–97.
  19. 19. Ohno, N., Kajita, S., Nishijima, D., & Takamura, S. (2007). Surface modification at tungsten and tungsten coated graphite due to low energy and high fluence plasma and laser pulse irradiation..,, 1153–1159..
DOI: https://doi.org/10.1515/nuka-2015-0061 | Journal eISSN: 1508-5791 (formerly 0029-5922) | Journal ISSN: 0029-5922
Language: English
Page range: 275 - 283
Submitted on: Jun 22, 2014
Accepted on: Oct 31, 2014
Published on: Jun 22, 2015
Published by: Institute of Nuclear Chemistry and Technology
In partnership with: Paradigm Publishing Services
Related subjects:

© 2015 Monika Vilémová, Jiří Matějíček, Barbara Nevrlá, Maryna Chernyshova, Pawel Gasior, Ewa Kowalska-Strzeciwilk, Aleš Jäger, published by Institute of Nuclear Chemistry and Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.