English

The Madison plasma dynamo experiment: a facility for studying laboratory plasma astrophysics

Plasma Physics 2015-06-17 v3

Abstract

The Madison plasma dynamo experiment (MPDX) is a novel, versatile, basic plasma research device designed to investigate flow driven magnetohydrodynamic (MHD) instabilities and other high-β\beta phenomena with astrophysically relevant parameters. A 3 m diameter vacuum vessel is lined with 36 rings of alternately oriented 4000 G samarium cobalt magnets which create an axisymmetric multicusp that contains \sim14 m3^{3} of nearly magnetic field free plasma that is well confined and highly ionized (>50%)(>50\%). At present, 8 lanthanum hexaboride (LaB6_6) cathodes and 10 molybdenum anodes are inserted into the vessel and biased up to 500 V, drawing 40 A each cathode, ionizing a low pressure Ar or He fill gas and heating it. Up to 100 kW of electron cyclotron heating (ECH) power is planned for additional electron heating. The LaB6_6 cathodes are positioned in the magnetized edge to drive toroidal rotation through J×B{\bf J}\times{\bf B} torques that propagate into the unmagnetized core plasma. Dynamo studies on MPDX require a high magnetic Reynolds number Rm>1000Rm > 1000, and an adjustable fluid Reynolds number 10<Re<100010< Re <1000, in the regime where the kinetic energy of the flow exceeds the magnetic energy (MA2=(M_A^2=(v//vA)2>1_A)^2 > 1). Initial results from MPDX are presented along with a 0-dimensional power and particle balance model to predict the viscosity and resistivity to achieve dynamo action.

Keywords

Cite

@article{arxiv.1310.8637,
  title  = {The Madison plasma dynamo experiment: a facility for studying laboratory plasma astrophysics},
  author = {C. M. Cooper and J. Wallace and M. Brookhart and M. Clark and C. Collins and W. X. Ding and K. Flanagan and I. Khalzov and Y. Li and J. Milhone and M. Nornberg and P. Nonn and D. Weisberg and D. G. Whyte and E. Zweibel and C. B. Forest},
  journal= {arXiv preprint arXiv:1310.8637},
  year   = {2015}
}

Comments

14 pages, 13 figures

R2 v1 2026-06-22T01:58:37.782Z