Title :
A two-level model for K-shell radiation scaling of the imploding Z-pinch plasma radiation source
Author :
Mosher, David ; Qi, Niansheng ; Krishnan, Mahadevan
Author_Institution :
Div. of Plasma Phys., Naval Res. Lab., Washington, DC, USA
fDate :
6/1/1998 12:00:00 AM
Abstract :
A simple, first-principle treatment is presented for estimating, within about a factor-of-two, how K-shell X-radiation from the plasma radiation source scales with plasma, pulsed-power, and imploding-load parameters. The transparency of this two-level model clarifies the relations between X-ray yield and underlying physical processes, provides simple analytic expressions for optimal load parameters and associated yields, and establishes links between radiating-load performance and system constraints imposed by other processes. The two-level model provides results similar to another one-zone model based on phenomenological extrapolations of selected one-dimensional radiation-hydrodynamic calculations. The model compares well with K-shell radiation results from Hawk neon gas puff and Saturn aluminum large-wire-number array experiments, provided that assumed compression ratios are less than those inferred from X-ray pinhole images. The reduced compression ratios required by the model can be traced to its one-zone nature
Keywords :
X-ray production; Z pinch; aluminium; Al; Hawk Ne gas puff; K-shell X-radiation scaling; Ne; Saturn Al large-wire-number array experiments; X-ray pinhole images; X-ray yield; analytic expressions; compression ratios; first-principle treatment; imploding Z-pinch plasma radiation source; imploding-load parameters; one-dimensional radiation-hydrodynamic calculations; one-zone model; one-zone nature; optimal load parameters; plasma radiation source; pulsed-power parameters; radiating-load performance; reduced compression ratios; two-level model; Aluminum; Atomic measurements; Fault location; Image coding; Kinetic energy; Performance analysis; Plasma simulation; Plasma sources; Plasma temperature; Plasma x-ray sources;
Journal_Title :
Plasma Science, IEEE Transactions on