Heat load and deuterium plasma effects on SPS and WSP tungsten
References
- 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. 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. Linke, J. (2008). High heat flux performance of plasma facing materials and components under service conditions in future fusion reactors..,, S278–S287.
- 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. 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. 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. 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. 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. 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. 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. 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. 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. 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. 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. 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. 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. 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. Eliáš, M., Frgala, Z., Kudrle, V., Janča, J., & Brožek, V. (2004). Low temperature metallurgy of tungsten in plasma reactors.,(1), 91–97.
- 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
Keywords:
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© 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.