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Triple-probe Diagnostic Measurements in Plasma of GLAST Spherical Tokamak

机译:GLAST球形托卡马克血浆中的三探针诊断测量

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Triple-probe has been developed and operated successfully to characterize ECRH-assisted argon as well as hydrogen microwave plasmas in GLAST Spherical Tokamak. This technique enables to determine transient plasma parameters such as floating potential, electron temperature and electron number density in rapidly time-varying plasmas. An effective electron heating mechanism is applied to produce microwave plasma by injecting radiofrequency (RF) radiation at a frequency of 2.45 GHz in the presence of resonant toroidal magnetic field. Plasma parameters and corresponding fluctuations are measured as a function of time in different gas fill pressures for various applied magnetic fields. The results demonstrate the dependence of plasma parameters such as V (f) , T (e) , n (e) and their fluctuations on gas fill pressure during the pre-ionization phase of the GLAST operation. Plasma behavior is observed to be closely depending on the coupling of RF power during microwave discharge. Additionally, the hydrogen plasma shows pronounced fluctuations in comparison with argon plasma with some decrease in electron temperature and densities.
机译:三重探针已经开发并成功用于表征GLAST Spherical Tokamak中ECRH辅助的氩气和氢微波等离子体。这项技术能够确定瞬态等离子体参数,例如快速时变等离子体中的浮动电势,电子温度和电子数密度。通过在共振环形磁场的存在下以2.45 GHz的频率注入射频(RF)辐射,有效的电子加热机制被应用于产生微波等离子体。对于各种施加的磁场,在不同的气体填充压力下,血浆参数和相应的波动是作为时间的函数进行测量的。结果表明,在GLAST操作的预电离阶段,等离子体参数(例如V(f),T(e),n(e))及其对气体填充压力的波动具有依赖性。观察到等离子体行为与微波放电期间射频功率的耦合密切相关。另外,与氩等离子体相比,氢等离子体显示出明显的波动,同时电子温度和密度有所降低。

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