72
4 Responses of Plasma-Facing Surface to Power Load Given by Radiation …
3. P.D. Townsend, J.C. Kelly, N.E.W. Hartley, Ion Implantation, Sputtering and their Applications.
Academic Press (1976). ISBN: 0-12-696950-7
4. W.O. Hofer, J. Roth, Physical Processes of the Interaction of Fusion Plasmas With Solids.
Academic Press (1996). ISBN: 0-12-351530-0
5. R.K. Janef, H.W. Drawin, Atomic and Plasma-Material Interaction Processes in Controlled
Thermonuclear Fusion, Ed. Elsevier 1993: ISBN: 0-444-81630-5
6. D. Reiter, M. Baelmans, P. Boerner, The EIRENE and B2-EIRENE Codes. Fusion Sci. Technol.
47, 172–186 (2005)
7. ERO Code webpage. http://www.ero-code.de/ero_old/index.html
8. T. Takizuka, Development of the PARASOL code and full particle simulation of tokamak
plasma with an open-field SOL-divertor region using PARASOL. Plasma Sci. Technol. 13, 316
(2011)
9. H. Kawashima, K. Shimizu, T. Talizuka et al., Development of integrated SOL/divertor code
and simulation study in JAEA. Plasma Fusion Res. 1, 031 (2006)
10. S. Wiesen, D. Reiter, V. Kotov et al., The new SOLPS-ITER code package. J. Nucl. Mater.
463, 480–484 (2015)
11. Users manual for the UEDGE edge-plasma transport code. https://www.osti.gov/biblio/150
07243
12. T. Tabata, R. Ito, Y. Itikawa, et al., Data on the backscattering coefficient of light ions from solids,
Rep. IPPJ-AM-18 (1981); R. Ito, T. Tabata, T. Itoh, Data ow the backscattering coefficients of
Light ions from Solids, (A Revision) Rep. IPPJAM-41 (1985)
13. A. Ohmori, T. Tanabe, Influence of target chemical activity on Balmer lines emission from
backscattered hydrogen. J. Nucl. Mater. 258–263, 666–671 (1998)
14. K. Shimada, T. Tanabe, R. Causey et al., Hydrogen recycling study by Balmer lines emissions
in linear plasma machine TPE. J. Nucl. Mater. 290–293, 478–481 (2001)
15. T. Tanabe, K. Ohya, N. Otsuki, Hydrogen reflection and H α emission. J. Nucl. Mater. 220–222,
841–845 (1995)
16. G F Matthews, P Edwards, T Hirai, et al., Overview of the ITER-like wall project Physica
Scripta, T128, 137–143 (2007)
17. S. Brezinsek, T. Loarer, V. Philipps, et al., Fuel retention studies with the ITER-Like Wall in
JET. Nucl. Fusion 53, 083023 (13 pp) (2013)
18. James F. Ziegler, SRIM—The Stopping and Range of Ions in Matter. http://www.srim.org/
19. Y. Yamamura, Dynamic MC simulation of low-energy ion implantation. Nucl. Instr. Methods
B153, 410–414 (1999)
20. Y. Yamamura, Y. Itikawa, N. Itoh, Angular dependence of sputtering yields of monoatomic
solid, IPPJ-AM-26 (1983), Nagoya University
21. C. Hopf, W. Jacob, Bombardment of graphite with hydrogen isotopes: a model for the energy
dependence of the chemical sputtering yield. J. Nucl. Mater. 342, 141–147 (2005)
22. A.A. Haasz, J.A. Stephens6, E. Vietzkec, et al., Atomic and Plasma-Materials Interaction Data
for Fusion, 7A, 9–63 (1998)
23. J. Roth, A. Kirschner, W. Bohmeyer et al., Flux dependence of carbon erosion and implication
for ITER. J. Nucl. Mater. 337–339, 970 (2005)
24. R.P. Doerner, M.J. Baldwin, D. Buchenauer The role of beryllium deuteride in plasmaberyllium interactions. J. Nucl. Mater. 390–391, 681–684 (2009)
25. S. Brezinsek, JET-EFDA contributors, Plasma-surface interaction in the Be/W environment:
Conclusions drawn from the JET-ILW for ITER. J. Nucl. Mater. 463, 11–21 (2015)
26. G. Ruano, J. Ferrón, Ion induced high energy electron emission from copper. Nucl. Instr.
Methods B 266, 4888–4890 (2008)
27. I.V., T. Tanabe, The Influence of electron emission on heat load to the plasma facing materials
under space charge limited condition with an oblique magnetic field. J. Nucl. Mater. 266–269,
714–720 (1999)
28. R.S. Blewer, R. Behrisch, B.M.U. Scherzer, R. Schulz, Trapping and replacement of 1–14 keV
hydrogen and deuterium in 316 stainless steel. J. Nucl. Mater. 76/77, 305 (1978)
4 Responses of Plasma-Facing Surface to Power Load Given by Radiation …
3. P.D. Townsend, J.C. Kelly, N.E.W. Hartley, Ion Implantation, Sputtering and their Applications.
Academic Press (1976). ISBN: 0-12-696950-7
4. W.O. Hofer, J. Roth, Physical Processes of the Interaction of Fusion Plasmas With Solids.
Academic Press (1996). ISBN: 0-12-351530-0
5. R.K. Janef, H.W. Drawin, Atomic and Plasma-Material Interaction Processes in Controlled
Thermonuclear Fusion, Ed. Elsevier 1993: ISBN: 0-444-81630-5
6. D. Reiter, M. Baelmans, P. Boerner, The EIRENE and B2-EIRENE Codes. Fusion Sci. Technol.
47, 172–186 (2005)
7. ERO Code webpage. http://www.ero-code.de/ero_old/index.html
8. T. Takizuka, Development of the PARASOL code and full particle simulation of tokamak
plasma with an open-field SOL-divertor region using PARASOL. Plasma Sci. Technol. 13, 316
(2011)
9. H. Kawashima, K. Shimizu, T. Talizuka et al., Development of integrated SOL/divertor code
and simulation study in JAEA. Plasma Fusion Res. 1, 031 (2006)
10. S. Wiesen, D. Reiter, V. Kotov et al., The new SOLPS-ITER code package. J. Nucl. Mater.
463, 480–484 (2015)
11. Users manual for the UEDGE edge-plasma transport code. https://www.osti.gov/biblio/150
07243
12. T. Tabata, R. Ito, Y. Itikawa, et al., Data on the backscattering coefficient of light ions from solids,
Rep. IPPJ-AM-18 (1981); R. Ito, T. Tabata, T. Itoh, Data ow the backscattering coefficients of
Light ions from Solids, (A Revision) Rep. IPPJAM-41 (1985)
13. A. Ohmori, T. Tanabe, Influence of target chemical activity on Balmer lines emission from
backscattered hydrogen. J. Nucl. Mater. 258–263, 666–671 (1998)
14. K. Shimada, T. Tanabe, R. Causey et al., Hydrogen recycling study by Balmer lines emissions
in linear plasma machine TPE. J. Nucl. Mater. 290–293, 478–481 (2001)
15. T. Tanabe, K. Ohya, N. Otsuki, Hydrogen reflection and H α emission. J. Nucl. Mater. 220–222,
841–845 (1995)
16. G F Matthews, P Edwards, T Hirai, et al., Overview of the ITER-like wall project Physica
Scripta, T128, 137–143 (2007)
17. S. Brezinsek, T. Loarer, V. Philipps, et al., Fuel retention studies with the ITER-Like Wall in
JET. Nucl. Fusion 53, 083023 (13 pp) (2013)
18. James F. Ziegler, SRIM—The Stopping and Range of Ions in Matter. http://www.srim.org/
19. Y. Yamamura, Dynamic MC simulation of low-energy ion implantation. Nucl. Instr. Methods
B153, 410–414 (1999)
20. Y. Yamamura, Y. Itikawa, N. Itoh, Angular dependence of sputtering yields of monoatomic
solid, IPPJ-AM-26 (1983), Nagoya University
21. C. Hopf, W. Jacob, Bombardment of graphite with hydrogen isotopes: a model for the energy
dependence of the chemical sputtering yield. J. Nucl. Mater. 342, 141–147 (2005)
22. A.A. Haasz, J.A. Stephens6, E. Vietzkec, et al., Atomic and Plasma-Materials Interaction Data
for Fusion, 7A, 9–63 (1998)
23. J. Roth, A. Kirschner, W. Bohmeyer et al., Flux dependence of carbon erosion and implication
for ITER. J. Nucl. Mater. 337–339, 970 (2005)
24. R.P. Doerner, M.J. Baldwin, D. Buchenauer The role of beryllium deuteride in plasmaberyllium interactions. J. Nucl. Mater. 390–391, 681–684 (2009)
25. S. Brezinsek, JET-EFDA contributors, Plasma-surface interaction in the Be/W environment:
Conclusions drawn from the JET-ILW for ITER. J. Nucl. Mater. 463, 11–21 (2015)
26. G. Ruano, J. Ferrón, Ion induced high energy electron emission from copper. Nucl. Instr.
Methods B 266, 4888–4890 (2008)
27. I.V., T. Tanabe, The Influence of electron emission on heat load to the plasma facing materials
under space charge limited condition with an oblique magnetic field. J. Nucl. Mater. 266–269,
714–720 (1999)
28. R.S. Blewer, R. Behrisch, B.M.U. Scherzer, R. Schulz, Trapping and replacement of 1–14 keV
hydrogen and deuterium in 316 stainless steel. J. Nucl. Mater. 76/77, 305 (1978)
