Impurities in a non-axisymmetric plasma: transport and effect on bootstrap current
arXiv:1504.04810 · doi:10.1063/1.4935901
Abstract
Impurities cause radiation losses and plasma dilution, and in stellarator plasmas the neoclassical ambipolar radial electric field is often unfavorable for avoiding strong impurity peaking. In this work we use a new continuum drift-kinetic solver, the SFINCS code (the Stellarator Fokker-Planck Iterative Neoclassical Conservative Solver) [M. Landreman et al., Phys. Plasmas 21 (2014) 042503] which employs the full linearized Fokker-Planck-Landau operator, to calculate neoclassical impurity transport coefficients for a Wendelstein 7-X (W7-X) magnetic configuration. We compare SFINCS calculations with theoretical asymptotes in the high collisionality limit. We observe and explain a 1/nu-scaling of the inter-species radial transport coefficient at low collisionality, arising due to the field term in the inter-species collision operator, and which is not found with simplified collision models even when momentum correction is applied. However, this type of scaling disappears if a radial electric field is present. We also use SFINCS to analyze how the impurity content affects the neoclassical impurity dynamics and the bootstrap current. We show that a change in plasma effective charge Zeff of order unity can affect the bootstrap current enough to cause a deviation in the divertor strike point locations.
36 pages, 13 figures
References in corpus (3)
- Comparison of particle trajectories and collision operators for collisional transport in nonaxisymmetric plasmas
- Local and global Fokker-Planck neoclassical calculations showing flow and bootstrap current modification in a pedestal
- New velocity-space discretization for continuum kinetic calculations and Fokker-Planck collisions
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- Impact of main ion pressure anisotropy on stellarator impurity transport
- The importance of the classical channel in the impurity transport of optimized stellarators
- Direct optimization of neoclassical ion transport in stellarator reactors