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DOE OSTI · 2526279

Spatially resolved measurements of plasma ion velocity distributions in a dipole magnetic field

Abstract

The equilibrium flows of a plasma discharge in a dipole magnetic field are a topic of interest in low temperature plasma physics. Experimentalists typically rely on probe-based and line-integrated diagnostic techniques in these environments to describe plasma behavior. Presented here are measurements of argon ion dynamics with laser induced fluorescence techniques to provide insight into plasma dynamics in dipole magnetic fields with nonperturbative, spatially localized measurements. Simulation results from a Lagrangian approach to track particle orbits are compared to measured density profiles and provide evidence to support the mechanism distinguishing experimental configurations is the initial approach of particles. Applying a negative DC bias to the magnet induces strong E×B flows around the magnet, even exceeding the ion acoustic speed as measured far from the magnet. A strong enough bias also produces two distinct ion populations and provides a method for controlling the density gradient on the equator.

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BibTeXRIS

McLaughlin, Jacob W. (ORCID:0000000152661888), Pette, Daniel V. (ORCID:0009000040403662), Skiff, Fred N. (ORCID:0000000297313753). 2025-03-03. Spatially resolved measurements of plasma ion velocity distributions in a dipole magnetic field. https://doi.org/10.1063/5.0244309

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