Analysis of RF Sheath-Driven Tungsten Erosion at RF Antenna in the WEST Tokamak

Fuente: arXiv
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Main Authors: Kumar, A., Tierens, W., Younkin, T., Johnson, C., Klepper, C., Diaw, A., Lore, J., Grosjean, A., Urbanczyk, G., Hillairet, J., Tamain, P., Colas, L., Guillemaut, C., Current, D., Shiraiwa, S., Bertelli, N., Team, the WEST
Format: Preprint
Published: 2025
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author Kumar, A.
Tierens, W.
Younkin, T.
Johnson, C.
Klepper, C.
Diaw, A.
Lore, J.
Grosjean, A.
Urbanczyk, G.
Hillairet, J.
Tamain, P.
Colas, L.
Guillemaut, C.
Current, D.
Shiraiwa, S.
Bertelli, N.
Team, the WEST
author_facet Kumar, A.
Tierens, W.
Younkin, T.
Johnson, C.
Klepper, C.
Diaw, A.
Lore, J.
Grosjean, A.
Urbanczyk, G.
Hillairet, J.
Tamain, P.
Colas, L.
Guillemaut, C.
Current, D.
Shiraiwa, S.
Bertelli, N.
Team, the WEST
contents This study applies the newly developed STRIPE (Simulated Transport of RF Impurity Production and Emission) framework to interpret tungsten (W) erosion at RF antenna structures in the WEST tokamak. STRIPE integrates SolEdge3x for edge plasma backgrounds, COMSOL for 3D RF sheath potentials, RustBCA for sputtering yields, and GITR for impurity transport and ion energy-angle distributions. In contrast to prior work by Kumar et al. 2025 Nucl. Fusion 65, 076039, which focused on framework validation for WEST ICRH discharge 57877, the present study provides a spatially resolved analysis of gross W erosion at both Q2 antenna limiters under ohmic and ICRH conditions. Using 2D SolEdge3x profiles in COMSOL, STRIPE captures rectified sheath potentials exceeding 300 V, leading to strong upper-limiter localization. Both poloidal and toroidal asymmetries are observed and attributed to RF sheath effects, with modeled erosion patterns deviating from experiment - highlighting sensitivity to sheath geometry and plasma resolution. High-charge-state oxygen ions (O6+-O8+) dominate erosion, while D+ contributes negligibly. A plasma composition of 1 percent oxygen and 98 percent deuterium is assumed. STRIPE predicts a 30-fold increase in gross W erosion from ohmic to ICRH phases, consistent with W-I 400.9 nm brightness measurements. Agreement within 5 percent (ohmic) and 30 percent (ICRH) demonstrates predictive capability and supports STRIPE's application in reactor-scale antenna design.
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id arxiv_https___arxiv_org_abs_2507_06059
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Analysis of RF Sheath-Driven Tungsten Erosion at RF Antenna in the WEST Tokamak
Kumar, A.
Tierens, W.
Younkin, T.
Johnson, C.
Klepper, C.
Diaw, A.
Lore, J.
Grosjean, A.
Urbanczyk, G.
Hillairet, J.
Tamain, P.
Colas, L.
Guillemaut, C.
Current, D.
Shiraiwa, S.
Bertelli, N.
Team, the WEST
Plasma Physics
This study applies the newly developed STRIPE (Simulated Transport of RF Impurity Production and Emission) framework to interpret tungsten (W) erosion at RF antenna structures in the WEST tokamak. STRIPE integrates SolEdge3x for edge plasma backgrounds, COMSOL for 3D RF sheath potentials, RustBCA for sputtering yields, and GITR for impurity transport and ion energy-angle distributions. In contrast to prior work by Kumar et al. 2025 Nucl. Fusion 65, 076039, which focused on framework validation for WEST ICRH discharge 57877, the present study provides a spatially resolved analysis of gross W erosion at both Q2 antenna limiters under ohmic and ICRH conditions. Using 2D SolEdge3x profiles in COMSOL, STRIPE captures rectified sheath potentials exceeding 300 V, leading to strong upper-limiter localization. Both poloidal and toroidal asymmetries are observed and attributed to RF sheath effects, with modeled erosion patterns deviating from experiment - highlighting sensitivity to sheath geometry and plasma resolution. High-charge-state oxygen ions (O6+-O8+) dominate erosion, while D+ contributes negligibly. A plasma composition of 1 percent oxygen and 98 percent deuterium is assumed. STRIPE predicts a 30-fold increase in gross W erosion from ohmic to ICRH phases, consistent with W-I 400.9 nm brightness measurements. Agreement within 5 percent (ohmic) and 30 percent (ICRH) demonstrates predictive capability and supports STRIPE's application in reactor-scale antenna design.
title Analysis of RF Sheath-Driven Tungsten Erosion at RF Antenna in the WEST Tokamak
topic Plasma Physics
url https://arxiv.org/abs/2507.06059