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First Results from Negative Ion Beam Extraction in ROBIN in Surface Mode

机译:首先是罗宾在表面模式中的负离子束提取结果

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ROBIN, the first step in the Indian R&D program on negative ion beams has reached an important milestone, with the production of negative ions in the surface conversion mode through Cesium (Cs) vapor injection into the source. In the present set-up, negative hydrogen ion beam extraction is effected through an extraction area of ~ 73.38 cm~2 (146 apertures of 8mm diameter). The three grid electrostatic accelerator system of ROBIN is fed by high voltage DC power supplies (Extraction Power Supply System: 11kV, 35A and Acceleration Power Supply System: 35kV, 15A). Though, a considerable reduction of co-extracted electron current is usually observed during surface mode operation, in order to increase the negative ion current, various other parameters such as plasma grid temperature, plasma grid bias, extraction to acceleration voltage ratio, impurity control and Cs recycling need to be optimized. In the present experiments, to control and to understand the impurity behavior, a Cryopump (14,000 l/s for Hydrogen) is installed along with a Residual Gas Analyzer (RGA). To characterize the source plasma, two sets of Langmuir probes are inserted through the diagnostic flange ports available at the extraction plane. To characterize the beam properties, thermal differential calorimeter, Doppler Shift Spectroscopy and electrical current measurements are implemented in ROBIN. In the present set up, all the negative ion beam extraction experiments have been performed by varying different experimental parameters e.g. RF power (30-70 kW), source operational pressure (0.3 - 0.6Pa), plasma grid bias voltage, extraction & acceleration voltage combination etc. The experiments in surface mode operation is resulted a reduction of co-extracted electron current having electron to ion ratio (e/i) ~ 2 whereas the extracted negative ion current density was increased. However, further increase in negative ion current density is expected to be improved after a systematic optimization of the operational parameters and Cs conditioning of the source. It was also found out that a better performance of ROBIN is achieved in the pressure range: 0.5-0.6 Pa. In this paper, the preliminary results on parametric study of ROBIN operation and beam optimization in surface mode are discussed.
机译:Robin,负离子束上印度研发程序的第一步已经达到了一个重要的里程碑,通过铯(Cs)蒸汽喷射到源中的表面转化模式中产生负离子。在本设置中,通过〜73.38cm〜2(直径为8mm的146个孔)的提取面积来实现负氢离子束萃取。 Robin的三个电网静电加速器系统由高压直流电源(提取电源系统:11kV,35A和加速电源系统:35kV,15A)提供。但是,在表面模式操作期间通常观察到相当大的共提取电子电流的减小,以增加负离子电流,各种其他参数,例如等离子体电网温度,等离子体电网偏置,提取到加速电压比,杂质控制和CS回收需要优化。在本实验中,为了控制和理解杂质行为,沟槽(14,000L / s用于氢气)与残留的气体分析仪(RGA)一起安装。为了表征源等离子体,通过提取平面上可用的诊断法兰端口插入两组朗米尔探针。为了表征光束性能,在Robin中实现了热差分量热计,多普勒频移光谱和电流测量。在本发明的设置中,通过改变不同的实验参数来进行所有负离子束提取实验。 RF功率(30-70 kW),源操作压力(0.3 - 0.6Pa),等离子体电网偏置电压,提取和加速电压组合等。表面模式操作的实验导致了具有电子的共提的电子电流的减少离子比(E / I)〜2,而提取的负离子电流密度增加。然而,预期在源的操作参数和CS调理的系统优化之后,预期负离子电流密度的进一步增加。还发现,讨论了在压力范围内实现了更好的罗宾的性能,在压力范围内实现了0.5-0.6 PA。讨论了初步结果,对Robin操作和梁优化在表面模式下的参数研究。

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