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Stijn Kobussen

Publications and source records attributed to Stijn Kobussen.

2 recordsLinked to original sources

Collisional radiative modelling with improved cross sections to investigate plasma molecular interactions in divertor plasmas

Power exhaust is one of the main challenges for the realization of practical fusion energy production. The magnetic confinement approach to fusion often uses a divertor configuration, where power loads are critical. Recent SOLPS simulations of divertor plasmas in MAST-U and TCV show significant deviations from the experimental results [36, 35]. A possible explanation for this is the incorrect incorporation of plasma-molecular interactions in current SOLPS simulations. SOLPS uses tabulated rate data for the particle physics part of the simulations [37, 23]. There are, however, large concerns about the accuracy of these rates, especially for plasma-molecular interactions [33]. Therefore, in this work, improved rate data from different sources, such as the Laporta[18] and MCCCDB[29, 27, 28] databases was used, to construct a Collisional Radiative Model (CRM) to investigate the plasma molecular interactions in conditions relevant to the MAST-U Super-X divertor. It was shown that using these rates, a better correspondence with experiment is achieved than with the tabulated rates. In particular, increased Molecular Activated Recombination (MAR) and Dissociation (MAD) was observed. Additionally it was found that molecular processes may be a significant contributor to divertor physics. The effect of different processes on the vibrational distribution was also investigated, as well as the radiative emission spectra generated from the CRM. It was demonstrated that re-evaluation of reaction rates for plasma-molecular interactions in plasma-edge modelling is necessary.

physics.plasm-ph

The role of plasma-atom and molecule interactions on power \& particle balance during detachment on the MAST Upgrade Super-X divertor

This paper shows first quantitative analysis of the detachment processes in the MAST Upgrade Super-X divertor (SXD). We identify an unprecedented impact of plasma-molecular interactions involving molecular ions (likely $D_2^+$), resulting in strong ion sinks (Molecular Activated Recombination - MAR), leading to a reduction of ion target flux. The MAR ion sinks exceed the divertor ion sources before electron-ion recombination (EIR) starts to occur, suggesting that significant ionisation occurs outside of the divertor chamber. In the EIR region, $T_e \ll 0.2$ eV is observed and MAR remains significant in these deep detached phases. The total ion sink strength demonstrates the capability for particle (ion) exhaust in the Super-X Configuration. Molecular Activated Dissociation (MAD) is the dominant volumetric neutral atom creation process can lead to an electron cooling of 20\% of $P_{SOL}$. The measured total radiative power losses \emph{in the divertor chamber} are consistent with inferred hydrogenic radiative power losses. This suggests that intrinsic divertor impurity radiation, despite the carbon walls, is minor in the divertor chamber. This contrasts previous TCV results, which may be associated with enhanced plasma-neutral interactions and reduced chemical erosion in the detached, tightly baffled SXD. The above observations have also been observed in higher heat flux (narrower SOL width) type I ELMy H-mode discharges. This provides evidence that the characterisation in this paper may be general.

physics.plasm-ph