Title :
Generating high energy density plasmas using the flow Z-pinch concept
Author :
Shumlak, U. ; Bowers, C.A. ; Golingo, R.P. ; Hughes, M.C. ; Nelson, B.A. ; Ransom, E.H. ; Ross, M.P. ; Stankey, H.C.
Author_Institution :
Aerosp. & Energetics Res. Program, Univ. of Washington Seattle, Seattle, WA, USA
Abstract :
Summary form only given. The ZaP Flow Z-pinch experiment1 at the University of Washington investigates the effect of sheared flows on MHD instabilities. Axially flowing Z-pinch plasmas are produced that are 100 cm long with a 1 cm radius. The plasma remains quiescent for many radial Alfvén times and axial flow times. The quiescent periods are characterized by low magnetic mode activity measured at several locations along the plasma column and by stationary visible plasma emission. Profiles of the plasma´s axial flow are measured with a multi-chord ion Doppler spectrometer. A sheared flow profile is observed to be coincident with the quiescent period, and is consistent with classical plasma viscosity. Equilibrium is determined by the following diagnostic measurements: interferometry for density; spectroscopy for ion temperature, plasma flow, and density2; Thomson scattering for electron temperature; Zeeman splitting for internal magnetic field measurements3; and fast framing photography for global structure. Recent experimental modifications demonstrate that the plasma lifetime appears to only be limited by plasma supply and current waveform. With a new gas injection configuration, stable plasmas persist for the duration of the current pulse. The flow Z-pinch concept provides an approach to achieve high energy density plasmas4 (HEDP), energy densities exceeding 1011 Pa, which are large, easy to diagnose, and persist for longer durations. A new experiment, ZaP-HD, will investigate this approach. Experimental plans and scaling analyses will be presented.
Keywords :
Doppler measurement; Z pinch; Zeeman effect; plasma Alfven waves; plasma density; plasma diagnostics; plasma instability; plasma magnetohydrodynamics; plasma temperature; plasma transport processes; shear flow; MHD instabilities; Thomson scattering; ZaP flow Z-pinch experiment; Zeeman splitting; axial flow times; axially flowing Z-pinch plasmas; classical plasma viscosity; current waveform; electron temperature; fast framing photography; gas injection configuration; global structure; high energy density plasmas; interferometry; internal magnetic field measurements; ion temperature; low magnetic mode activity; multichord ion Doppler spectrometer; plasma column; plasma density; plasma flow; plasma lifetime; plasma supply; quiescent periods; radial Alfven times; scaling analyses; sheared flows; spectroscopy; stationary visible plasma emission; Current measurement; Density measurement; Educational institutions; Fluid flow measurement; Plasma measurements; Plasmas; Temperature measurement;
Conference_Titel :
Plasma Science (ICOPS), 2013 Abstracts IEEE International Conference on
Conference_Location :
San Francisco, CA
DOI :
10.1109/PLASMA.2013.6633223