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Core-ion temperature measurement of the ADITYA tokamak using passive charge exchange neutral particle energy analyzer

机译:使用无源电荷交换中性粒子能量分析仪测量ADITYA托卡马克的核心离子温度

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Core-ion temperature measurements have been carried out by the energy analysis of passive charge exchange (CX) neutrals escaping out of the ADITYA tokamak plasma (minor radius, a = 25 cm and major radius, R = 75 cm) using a 45° parallel plate electrostatic energy analyzer. The neutral particle analyzer (NPA) uses a gas cell configuration for re-ionizing the CX-neutrals and channel electron multipliers (CEMs) as detectors. Energy calibration of the NPA has been carried out using ion-source and ΔE/E of high-energy channel has been found to be ∼10%. Low signal to noise ratio (SNR) due to VUV reflections on the CEMs was identified during the operation of the NPA with ADITYA plasma discharges. This problem was rectified by upgrading the system by incorporating the additional components and arrangements to suppress VUV radiations and improve its VUV rejection capabilities. The noise rejection capability of the NPA was experimentally confirmed using a standard UV-source and also during the plasma discharges to get an adequate SNR (>30) at the energy channels. Core-ion temperature Ti(0) during flattop of the plasma current has been measured to be up to 150 eV during ohmically heated plasma discharges which is nearly 40% of the average core-electron temperature (typically Te(0) ∼ 400 eV). The present paper describes the principle of tokamak ion temperature measurement, NPA's design, development, and calibration along with the modifications carried out for minimizing the interference of plasma radiations in the CX-spectrum. Performance of the NPA during plasma discharges and experimental results on the measurement of ion-temperature have also been reported here.
机译:通过被动电荷交换(CX)中性从ADITYA托卡马克等离子体(最小半径,a = 25 cm,大半径,R = 75 cm)逸出的被动电荷交换(CX)中性点的能量分析,进行了芯离子温度测量板式静电能分析仪。中性粒子分析仪(NPA)使用气室配置将CX中性粒子重新电离,并将通道电子倍增器(CEM)作为检测器。使用离子源对NPA进行能量校准,发现高能通道的ΔE/ E为〜10%。在带有ADITYA等离子放电的NPA运行期间,发现了CEM上VUV反射引起的低信噪比(SNR)。通过合并其他组件和装置以抑制VUV辐射并提高其VUV抑制能力,可以通过升级系统来解决此问题。 NPA的噪声抑制能力已通过使用标准紫外线源以及在等离子体放电过程中在能量通道处获得足够的SNR(> 30)的实验证实。经测量,在等离子电流平顶期间的核心离子温度T i (0)在欧姆加热的等离子体放电期间高达150 eV,这几乎是平均核心电子温度的40%(通常为T e (0)〜400 eV)。本文介绍了托卡马克离子温度测量的原理,NPA的设计,开发和校准,以及为使CX光谱中的等离子体辐射干扰最小而进行的修改。等离子体放电过程中NPA的性能以及离子温度测量的实验结果也已有报道。

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