Title :
Thermal aluminum plasma formation and evolution by pulsed megagauss field
Author :
Bauer, B.S. ; Awe, T.J. ; Angelova, M.A. ; Billing, J. ; Fuelling, S. ; Goodrich, T.S. ; Lindemuth, I.R. ; Siemon, R.E. ; Atchison, W.L. ; Garanin, S.F.
Author_Institution :
Univ. of Nevada, Reno, Reno, NV, USA
Abstract :
Summary form only given. When, where, and how plasma forms on metal surfaces driven by intense current are important questions for both basic science and applications. The thermal ionization of the surface of thick metal, in response to a pulsed multi-megagauss magnetic field, is being investigated with detailed experiments1-3 and numerical modeling4-8. Aluminum 6061 rods with initial radii (R0 from 0.25-1.00 mm) larger than the magnetic skin depth are pulsed with the 1.0-MA, 100-ns Zebra generator. The surface is examined with time-resolved imaging, radiometry, spectroscopy, and laser shadowgraphy. The surface magnetic field (Bs) rises at 30-80 MG/us, with corresponding peak Bs of 1.5-4 MG For these rise rates, thermal plasma is observed to form when Bs reaches 2.2 MG. Optical emission from the plasma surface is initially non-uniform, but becomes quite highly uniform as TBB increases. While the current is rising linearly, the Al surfaces expand at 3-4 km/s, with no evidence, after surface plasma forms, of either re-pinching or outward acceleration. At peak current, TBB is 20 eV for R0 =3D 0.50 mm rods, but only 0.7 eV for R0 =3D 1.00 mm rods. Strong plasma fluting develops in the first case, while extremely smooth expansion occurs in the second (indicating resistive vapor). Moreover, after peak current, plasma (if formed) accelerates (to 10 km/s), while resistive vapor continues expanding at constant speed. The well-characterized experiment is providing a benchmark for radiation-MHD modeling. VNIIEF-UP and UNR-MHRDR modeling have achieved results that agree well with observations. Plasma is formed in low density material resistive enough to expand across the magnetic field, yet conductive enough that ohmic heating exceeds expansion cooling as the expanding material undergoes the liquid-vapor transition. An analytic calculation indicates ohmic heating shoul- produce plasma, consistent with numerical and experimental observations.
Keywords :
aluminium; pinch effect; plasma boundary layers; plasma diagnostics; plasma magnetohydrodynamics; plasma ohmic heating; plasma production; plasma simulation; plasma transport processes; Al; UNR-MHRDR modeling; VNIIEF-UP modeling; current 1 MA; laser shadowgraphy; liquid-vapor transition; low density material; magnetic skin depth; numerical modeling; ohmic heating; optical emission; plasma acceleration; plasma surface; pulsed multimegagauss magnetic field; radiation-MHD modeling; radiometry; radius 0.25 mm to 1.0 mm; repinching acceleration; surface magnetic field; thermal aluminum plasma formation; thermal ionization; thick metal surface; time-resolved imaging; Acceleration; Aluminum; Conducting materials; Heating; Magnetic fields; Magnetic materials; Plasma accelerators; Plasma applications; Plasma density; Plasma materials processing;
Conference_Titel :
Plasma Science, 2010 Abstracts IEEE International Conference on
Conference_Location :
Norfolk, VA
Print_ISBN :
978-1-4244-5474-7
Electronic_ISBN :
0730-9244
DOI :
10.1109/PLASMA.2010.5533927