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Physical design of the neutralizer for CFETR negative ion based neutral beam injection prototype

机译:基于CFETR负离子的中性束注入原型的中和器的物理设计

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A research project of the CFETR Negative ion based Neutral Beam Injection (NNBI) prototype has been started in China. The objectives of the CFETR NNBI protype are to produce a negative hydrogen ion beam of > 20 A to 200-400 kV for 3600 s and to attain a neutralization efficiency of > 50%. Thus, a neutral beam power of > 2MW is foreseen onto the calorimeter (i.e., beam dump). A gas neutralizer is applied inside the beamline of CFETR NNBI prototype, to achieve the neutralization of negative ion beam through the charge-exchange collisions with the gas target. The most critical issues for the gas neutralizer are to balance the contradictive requirements of high neutralization efficiency, low gas inflow, and low heat load. During the physical design of the neutralizer for CFETR NNBI prototype, two proposals have been considered and studied in detail. One has single beam channel and other one has two narrow channels separated by a panel. The narrow channel design is benefic to decrease gas conductance, and thus reduce the required gas inflow to attain the maximal neutralization efficiency. However, the inserted panel will restrict the extraction area of the beam source, where the aperture columns corresponding to the panel should be masked to avoid the direct beam interception. But the leading edge of the inserted panel will still suffer a high thermal load due to the stray particles from the beam source. A 3D model of the whole beamline of CFETR NNBI prototype has been developed to study the gas flow and the beam transport in the beamline. Based on this model, these two neutralizer designs have been evaluated in detail, in terms of the relation between neutralization efficiency and gas inflow, and the power load on the neutralizer components.
机译:CFETR基于负离子的中性束注入(NNBI)原型的研究项目已在中国启动。 CFETR NNBI型的目标是在3600 s内产生> 20 A至200-400 kV的负氢离子束,并实现> 50%的中和效率。因此,预计热量计上的中性束功率> 2MW(即束流收集器)。在CFETR NNBI原型的束线内部应用气体中和器,以通过与气体靶的电荷交换碰撞实现负离子束的中和。气体中和器最关键的问题是平衡高中和效率,低气体流入和低热负荷的矛盾要求。在CFETR NNBI原型的中和器的物理设计过程中,已经考虑并详细研究了两个建议。一个具有单个光束通道,另一个具有由面板隔开的两个窄通道。窄通道设计有利于降低气体电导率,从而减少所需的气体流入量,以实现最大的中和效率。但是,插入的面板将限制光束源的提取区域,应屏蔽与面板相对应的光圈列,以避免直接光束被遮挡。但是,由于来自光束源的杂散粒子,插入的面板的前缘仍将承受较高的热负荷。已经开发了CFETR NNBI原型的整个光束线的3D模型,以研究光束中的气流和光束传输。基于此模型,已根据中和效率和气体流入之间的关系以及中和器组件上的功率负荷,对这两种中和器设计进行了详细评估。

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