Effects of transitional orbit magnetization on transport and current in Z pinches

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Hauptverfasser: Crews, D. W., Meier, E. T., Shumlak, U.
Format: Preprint
Veröffentlicht: 2024
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author Crews, D. W.
Meier, E. T.
Shumlak, U.
author_facet Crews, D. W.
Meier, E. T.
Shumlak, U.
contents The azimuthal self-magnetic field of the ideal Z pinch contains a central magnetic null. Trajectories around this null govern transport in the core. Particles follow cyclotron orbits when the guiding-center approximation holds. Approaching the field null, where the ordinary guiding-center regime breaks down, particles exhibit trajectories called, in some historical contexts, betatron orbits. We quantify transitional magnetization between cyclotron and betatron orbits by a magnetization parameter that decomposes phase space into these orbit regimes. Considering the distribution of all orbits, this phase-space decomposition reveals a transitional magnetization region wherein both populations coexist. Classical magnetized transport theory fails within this region, where the diamagnetic drift reverses. The drift flux is instead supported by the flux of betatron orbits. Kinematic diffusivity remains approximately constant rather than diverging at the null. These transport modifications are governed solely by the number density per unit length in the ideal pinch.
format Preprint
id arxiv_https___arxiv_org_abs_2411_06669
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Effects of transitional orbit magnetization on transport and current in Z pinches
Crews, D. W.
Meier, E. T.
Shumlak, U.
Plasma Physics
The azimuthal self-magnetic field of the ideal Z pinch contains a central magnetic null. Trajectories around this null govern transport in the core. Particles follow cyclotron orbits when the guiding-center approximation holds. Approaching the field null, where the ordinary guiding-center regime breaks down, particles exhibit trajectories called, in some historical contexts, betatron orbits. We quantify transitional magnetization between cyclotron and betatron orbits by a magnetization parameter that decomposes phase space into these orbit regimes. Considering the distribution of all orbits, this phase-space decomposition reveals a transitional magnetization region wherein both populations coexist. Classical magnetized transport theory fails within this region, where the diamagnetic drift reverses. The drift flux is instead supported by the flux of betatron orbits. Kinematic diffusivity remains approximately constant rather than diverging at the null. These transport modifications are governed solely by the number density per unit length in the ideal pinch.
title Effects of transitional orbit magnetization on transport and current in Z pinches
topic Plasma Physics
url https://arxiv.org/abs/2411.06669