Bulletin of the American Physical Society
60th Annual Meeting of the APS Division of Plasma Physics
Volume 63, Number 11
Monday–Friday, November 5–9, 2018; Portland, Oregon
Session TP11: Poster Session VII: Basic Plasma Physics: Pure Electron Plasma, Strongly Coupled Plasmas, Self-Organization, Elementary Processes, Dusty Plasmas, Sheaths, Shocks, and Sources; Mini-conference on Nonlinear Waves and Processes in Space Plasmas - Posters; MHD and Stability, Transients (2), Runaway Electrons; NSTX-U; Spherical Tokamaks; Analytical and Computational Techniques; Diagnostics (9:30am-12:30pm)
Thursday, November 8, 2018
OCC
Room: Exhibit Hall A1&A
Abstract ID: BAPS.2018.DPP.TP11.41
Abstract: TP11.00041 : Observation of a large banana orbit due to a background asymmetry in a coaxial Malmberg-Penning trap
Presenter:
D.L. Eggleston
(Occidental College)
Author:
D.L. Eggleston
(Occidental College)
In our coaxial Malmberg-Penning trap, electrons are injected off-axis from a small electron gun.2 We expect the zeroth order azimuthal drift of the resulting electron column to be set by the center wire potential, the induced image charges, and the end potentials. However, when the wire potential is adjusted to minimize the drift, the phosphor screen images of the dumped column trace out (with increasing dump time) a large banana-shaped orbit in the r-θ plane, apparently in response to a background construction asymmetry. Wall probe signals are also consistent with such an orbit. We can directly measure the orbit period (T≈300μs) and the radial thickness of the banana (Δr/Rwall≈0.25) and then deduce from Δr≈vr/ωT the size and radial dependence of the asymmetry. Assuming an electrostatic asymmetry of the form φ1(r)cos[m(θ-θ0)], we find φ1(V)≈0.3r/Rwall with m≈1 and θ0≈60°. The source of the asymmetry has not yet been positively identified, but we suspect a small offset in the center wire position. The characterization of this background asymmetry may help resolve discrepancies with theory in our experiments with applied asymmetries.3
2. See, for example, D.L. Eggleston, Phys. Plasmas 1, 3850 (1994).
3. D.L. Eggleston and B. Carrillo, Phys. Plasmas, 10, 1308, (2003).
To cite this abstract, use the following reference: http://meetings.aps.org/link/BAPS.2018.DPP.TP11.41
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