May 2019

Journal

High-Z material erosion and its control in DIII-D carbon divertor

By:
Ding, R; Rudakov, D.L.; Stangeby, P.C.; Wampler, W. R.; Abrams, Tyler; Brezinsek, S.; Wolfmeister, Alexis R; Bykov, Igor; Chan, V. S.; Chrobak, C; Elder, J. D.; Guo, H.; Guterl, Jerome; Kirschner, A.; Lasnier, C.; Leonard, A. W.; Makowski, M. A.; McLean, A.G.; Snyder, P. B.; Thomas, D. M.; Tskhakaya, D; Unterberg, Ezekial A; Wang, Huiqian; Watkins, J.
Journal Name:
Nuclear Materials and Energy
Page Number:
247-252
Volume:
12
Issue Number:
1
Publication Date:
May 2019
View DOI Listing:
https://doi.org/10.1016/j.nme.2017.03.012

Abstract

As High-Z materials will likely be used as plasma-facing components (PFCs) in future fusion devices, the erosion of high-Z materials is a key issue for high-power, long pulse operation. High-Z material erosion and redeposition have been studied using tungsten and molybdenum coated samples exposed in well-diagnosed DIII-D divertor plasma discharges. By coupling dedicated experiments and modelling using the 3D Monte Carlo code ERO, the roles of sheath potential and background carbon impurities in determining high-Z material erosion are identified. Different methods suggested by modelling have been investigated to control high-Z material erosion in DIII-D experiments. The erosion of Mo and W is found to be strongly suppressed by local injection of methane and deuterium gases. The 13C deposition resulting from local 13CH4 injection also provides information on radial transport due to E × B drifts and cross field diffusion. Finally, D2 gas puffing is found to cause local plasma perturbation, suppressing W erosion because of the lower effective sputtering yield of W at lower plasma temperature and for higher carbon concentration in the mixed surface layer.


Related Researchers