The impact of non-local parallel electron transport on plasma-impurity reaction rates in tokamak scrape-off layer plasmas

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Main Authors: Power, Dominic, Mijin, Stefan, Verhaegh, Kevin, Militello, Fulvio, Kingham, Robert J.
Format: Preprint
Published: 2024
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author Power, Dominic
Mijin, Stefan
Verhaegh, Kevin
Militello, Fulvio
Kingham, Robert J.
author_facet Power, Dominic
Mijin, Stefan
Verhaegh, Kevin
Militello, Fulvio
Kingham, Robert J.
contents Plasma-impurity reaction rates are a crucial part of modelling tokamak scrape-off layer (SOL) plasmas. To avoid calculating the full set of rates for the large number of important processes involved, a set of effective rates are typically derived which assume Maxwellian electrons. However, non-local parallel electron transport may result in non-Maxwellian electrons, particularly close to divertor targets. Here, the validity of using Maxwellian-averaged rates in this context is investigated by computing the full set of rate equations for a fixed plasma background from kinetic and fluid SOL simulations. We consider the effect of the electron distribution as well as the impact of the electron transport model on plasma profiles. Results are presented for lithium, beryllium, carbon, nitrogen, neon and argon. It is found that electron distributions with enhanced high-energy tails can result in significant modifications to the ionisation balance and radiative power loss rates from excitation, on the order of 50-75% for the latter. Fluid electron models with Spitzer-Härm or flux-limited Spitzer-Härm thermal conductivity, combined with Maxwellian electrons for rate calculations, can increase or decrease this error, depending on the impurity species and plasma conditions. Based on these results, we also discuss some approaches to experimentally observing non-local electron transport in SOL plasmas.
format Preprint
id arxiv_https___arxiv_org_abs_2410_00651
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The impact of non-local parallel electron transport on plasma-impurity reaction rates in tokamak scrape-off layer plasmas
Power, Dominic
Mijin, Stefan
Verhaegh, Kevin
Militello, Fulvio
Kingham, Robert J.
Plasma Physics
Plasma-impurity reaction rates are a crucial part of modelling tokamak scrape-off layer (SOL) plasmas. To avoid calculating the full set of rates for the large number of important processes involved, a set of effective rates are typically derived which assume Maxwellian electrons. However, non-local parallel electron transport may result in non-Maxwellian electrons, particularly close to divertor targets. Here, the validity of using Maxwellian-averaged rates in this context is investigated by computing the full set of rate equations for a fixed plasma background from kinetic and fluid SOL simulations. We consider the effect of the electron distribution as well as the impact of the electron transport model on plasma profiles. Results are presented for lithium, beryllium, carbon, nitrogen, neon and argon. It is found that electron distributions with enhanced high-energy tails can result in significant modifications to the ionisation balance and radiative power loss rates from excitation, on the order of 50-75% for the latter. Fluid electron models with Spitzer-Härm or flux-limited Spitzer-Härm thermal conductivity, combined with Maxwellian electrons for rate calculations, can increase or decrease this error, depending on the impurity species and plasma conditions. Based on these results, we also discuss some approaches to experimentally observing non-local electron transport in SOL plasmas.
title The impact of non-local parallel electron transport on plasma-impurity reaction rates in tokamak scrape-off layer plasmas
topic Plasma Physics
url https://arxiv.org/abs/2410.00651