Title :
Magnetic field topology variations in plasmas generated by radial foils
Author :
Gourdain, P.-A. ; Gorenstein, A.Y. ; Greenly, J.B. ; Hammer, D.A. ; Kim, Ji ; Kusse, B.R. ; Pikuz, S.A. ; Schrafel, P.C. ; Seyler, C.E. ; Shelkovenko, T.C.
Author_Institution :
Lab. of Plasma Studies, Cornell Univ., Ithaca, NY, USA
Abstract :
Summary form only given. Radial foil implosions on the COrnell Beam Research Accelerator (COBRA) and MAGPIE [1, 2] are used to understand the magneto-hydrodynamics of astrophysical plasma jets. While this configuration shares geometrical similarities with its celestial counterpart, the topology of the magnetic field may exhibit substantial differences. One possible improvement uses external magnetic fields (using permanent magnets or copper coils) to alter the magnetic field generated by the plasma current and recover more realistic dynamics. The other possibility is to change the shape of the pin cathode. The standard setup uses a single straight pin. Since all the discharge current focuses onto that pin, the magnetic field is azimuthally symmetric during the lifetime of the jet, as is the plasma dynamics. However if the pin geometry is changed, the magnetic field becomes fully three-dimensional, as is often the case in astrophysical plasma jets. Using single and multi-pin setups, we will assess how the magnetic field topology can be changed to yield plasma dynamics which matches that of astrophysical jets more closely. In particular, we will look at the impact of three-dimensional magnetic fields on plasma flows and how they influence the actual structure of the jet. Experimental results will be compared to numerical simulations from the 3D PERSEUS extended MHD computer code. The impact of the Hall effect on the plasma dynamics will be highlighted.
Keywords :
astrophysical plasma; explosions; plasma jets; plasma magnetohydrodynamics; plasma sources; 3D PERSEUS extended MHD computer code; 3D magnetic fields; Cornell beam research accelerator; Hall effect; MAGPIE; astrophysical jets; astrophysical plasma jet magnetohydrodynamics; discharge current; external magnetic fields; geometrical similarities; jet lifetime; jet structure; magnetic field topology variations; multipin setup; numerical simulations; pin cathode shape; pin geometry; plasma current; plasma dynamics; plasma flows; radial foil implosions; single setup; single straight pin; Educational institutions; Laboratories; Magnetic fields; Particle beams; Plasmas; Topology; USA Councils;
Conference_Titel :
Plasma Science (ICOPS), 2012 Abstracts IEEE International Conference on
Conference_Location :
Edinburgh
Print_ISBN :
978-1-4577-2127-4
Electronic_ISBN :
0730-9244
DOI :
10.1109/PLASMA.2012.6383957