Propagation Of Microwave Breakdown In Argon Induced By A 28ghz Gyrotron Beam

PHYSICS OF PLASMAS(2021)

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摘要
An atmospheric argon discharge plasma was induced by a high-power microwave beam using a 28GHz gyrotron and investigated at pressures of 40kPa-100kPa and Gaussian peak intensities of 0.115GW/m(2) (0.204MV/cm) and 0.168GW/m(2) (0.246MV/cm). According to high-speed imaging results, the propagation velocity of the discharge front increased with the backpressure to maintain a range of 600 m/s-1000 m/s. The propagation velocity was 25 times larger in argon than in air. Applying the collisional-radiative (CR) model to the spectroscopic results showed that the electron density increases with the pressure from5.0 x1021m- 3 at 40kPa to 5. 0 x1022m- 3 at 100kPa and lies on the critical density curve. The electron temperature decreases as the background pressure increases from 2eV to 0.5eV, and the gas temperature was 300-400K. According to CR analysis, the population densities of 3d(n) and 2s(n) excitation levels in the fast velocity condition are much lower than that in any other conditions. The results revealed that the energy transfer from electrons to ionized particles is more remarkable in the high background pressure and the fast velocity condition.
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关键词
ghz gyrotron beam,microwave breakdown,argon
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