A platform for investigating Alfvén waves with large perpendicular wavenumbers
POSTER
Abstract
Large perpendicular wavenumbers cause shear Alfvén waves to develop large parallel wave electric fields . These waves are expected to develop nonlinear effects whern the associated magnetic field fluctuations are on the order of of δΒ⊥/B0 ≈ λ⊥/(τVA). Here τ is the wave period and δΒ⊥ is the Alfven wave magnetic field, B0 is the background field. To create waves in this regime a specialized antenna (“Alfvén tennis racket”) was constructed and will be discussed. The antenna has successfully generated two dimensional Alfvén vortices in planes transverse to B0 with k⊥= 0.63 cm-1. A second antenna has been constructed to generate a different k⊥ and can be simultaneously used to launch counter-propagating waves. In initial experiments on the Large Plasma Device at UCLA, a pattern of Alfven wave vorticies were generated in a Helium plasma with measured δΒ⊥/B0 ≈ 1% in far field of the antenna. ( λ⊥= 8 cm, density = 1.25X1013 cm-3, λ|| = 112.5 cm, VA = 6.2X107 cm-1 , He) . This is roughly 1/4 of the wave field necessary for nonlinearities. The wave field is diagnosed with 3-axis magnetic probes. A small (1 cm diameter) ion beam using test atoms of Argon will be used to measure test ion trajectories and deduce the wave magnetic field. A test electron beam indicated some cross field electron transport. Data will be utilized to test for chaotic motion. This type of antenna will serve as a new platform to study large amplitude shear waves with high k⊥.
*The work was supported by the Department of Energy Fusion Energy Sciences. It was carried out on the Large Plasma Device at UCLA which is part of the Basic Plasma Science Facility.
Presenters
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Walter N Gekelman
- University of California, Los Angeles
- UCLA