Publication | Open Access
Radial magnetic compression in the expelled jet of a plasma deflagration accelerator
35
Citations
22
References
2016
Year
EngineeringPlasma SciencePlasma PhysicsPlasma Deflagration AcceleratorExit PlanePlasma SimulationPlasma TheoryMagnetohydrodynamicsPlasma ConfinementStrong CompressionPlasma DiagnosticsRadial Magnetic CompressionPhysicsApplied Plasma PhysicFundamental Plasma PhysicMagnetic ConfinementDoppler BroadeningExpelled JetNuclear AstrophysicsAerospace EngineeringNatural SciencesApplied PhysicsPlasma Application
A spectroscopic study of a pulsed plasma deflagration accelerator is carried out that confirms the existence of a strong compression in the emerging jet at the exit plane of the device. An imaging spectrometer is used to collect broadened Hα emission from a transaxial slice of the emerging jet at high spatial resolution, and the radial plasma density profile is computed from Voigt fits of the Abel inverted emissivity profiles. The plasma temperature, determined via Doppler broadening of impurity line emission, is compared against the temperature predictions of a radial magnetohydrodynamic equilibrium model applied to the measured density profiles. Empirical scaling laws developed for the plasma density, combined with the measured and predicted temperatures, indicate that a radially equilibrated Z-pinch is formed within the expelled plasma jet at the exit plane during the deflagration process.
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