Title :
Stability of arc discharges in very-high pressure xenon lamps against electron temperature perturbations
Author :
Benilov, M.S. ; Hechtfischer, U.
Author_Institution :
Univ. da Madeira, Funchal, Portugal
Abstract :
We study the stability of the energy balance of the electron gas in very-high pressure plasmas against longitudinal perturbations, using a local dispersion analysis. After deriving a dispersion equation, we apply the model to a very-high pressure (100bar) xenon plasma and find instability for electron temperatures Te in a window between 2400K and (5.5-7)×103K, depending on the current density (106-108 A/m2). The instability can be traced back to the Joule heating of the electron gas being a growing function of Te, which is due to a rising dependence of the electron-atom collision frequency on Te. We then analyze the Te range occurring in very-high pressure Xe lamps and conclude that only the nearanode region exhibits Te sufficiently low for this instability to occur. Indeed, previous experiments (e.g., Ref. 1) have revealed that such lamps can develop voltage oscillations accompanied by electromagnetic interference (EMI), and this instability has been pinned down to the plasma-anode interaction. The calculated increment of the instability conforms to the experimental rise time of a single pulse. The above agreement represents an important, although inevitably indirect, confirmation of the theoretical conclusion2 that Te in the near-anode layer of very-high pressure arcs is quite low.
Keywords :
arcs (electric); discharge lamps; electromagnetic interference; electron gas; high-pressure effects; plasma collision processes; plasma heating; plasma instability; plasma oscillations; plasma pressure; plasma temperature; plasma transport processes; xenon; Joule heating; Xe; arc discharge stability; current density; electromagnetic interference; electron gas; electron temperature perturbations; electron-atom collision frequency; energy balance stability; high pressure xenon plasma; local dispersion analysis; longitudinal perturbations; plasma-anode interaction; pressure 100 bar; very-high pressure xenon lamps; voltage oscillations; Anodes; Lighting; Plasma temperature; Stability analysis; Thermal stability; Xenon;
Conference_Titel :
Plasma Science (ICOPS), 2012 Abstracts IEEE International Conference on
Conference_Location :
Edinburgh
Print_ISBN :
978-1-4577-2127-4
Electronic_ISBN :
0730-9244
DOI :
10.1109/PLASMA.2012.6384048