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35. T. Loarer, S. Brezinsek, V. Philipps, et al. Plasma isotopic changeover experiments in JET
under carbon and ITER-like wall conditions. Nucl. Fusion 55(8), 043021 (2015)
36. Y. Hirohata, Y. Oya, H. Yoshida et al., Depth profile and retention of hydrogen isotopes in
graphite tiles used in the W-shaped divertor of JT-60U. J. Nucl. Mater. 329–333, 785–789
(2004)
37. T. Nakano, N. Asakura, H. Takenaga et al., Impact of wall saturation on particle control in long
and high-power-heated discharges in JT-60U. Nucl. Fusion 46, 626–634 (2006)
38. T. Tanabe, N. Bekris, P, Coad, et al. Tritium retention of plasma facing components in tokamaks.
J. Nucl. Mater. 313–316, 478–490 (2003)
39. K. Schmid, K. Krieger, S.W. Lisgo et al., Quantitative modeling of fuel retention in the JET-C
and JET-ILW wall configurations by WallDYN and predictions for ITER. J. Nucl. Mater. 463,
66–72 (2015)
40. C.D. Challis, J. Garcia, M. Beurskens, et al., Improved confinement in JET high β plasmas
with an ITER-like wall. Nucl. Fusion, 55(18), 053031 (2015)
41. G.F. Matthews, Plasma operation with an all metal first-wall: comparison of an ITER-like wall
with a carbon wall in JET. J. Nucl. Mater. 438, S2–S10 (2013)
42. B.B. Pégouriéa, C. Brosset, E. Delchambre et al., Long discharge particle balance and fuel
retention in Tore Supra. Phys. Scr. T111, 23–28 (2004)
43. D Hoffman, B Singh, JH Thomas, Handbook of Vacuum Science and Technology (Academic
Press, 1998)
44. ITER Technical Basis 2002, ITER EDA, Documentation Series No. 24, IAEA (Vienna, 2002)
