DIII-D离轴中性光束工程概述

C. Murphy, M. Abrahim, P. Anderson, H. Chiu, H. Grunloh, M. Hansink, K. Holtrop, R. Hong, A. Kellman, D. Kellman, P. Mauzey, S. Noraky, C. Pawley, J. Rauch, J. Scoville, M. van Zeeland, H. Yip, R. Wood, M. Murakami, J.M. Park, W. Heidbrink
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引用次数: 10

摘要

DIII-D有四条中性光束线(NB)。每条光束线都有两个离子源,每个离子源注入高达2.5 MW的能量,持续3秒。这些光束线与真空容器以19.5度的径向角相交,使电流驱动与等离子体电流(共注入)方向相同。2004年,其中一条光束线(210度)被旋转以提供反注入(与等离子体电流相反)。一个不同的光束线(150度)已经被修改,有能力提供离轴中性光束电流驱动。离轴注入的目标是使离子源的中心对准等离子体几何中心以下40厘米的位置。为了实现这种离轴注入,光束线需要一个机械提升系统,该系统可以将光束线从水平方向提升到16.5度。光束线还需要更强的垂直聚焦离子源(为了使光束通过减小的有效孔径)以及改进的内部组件。此外,新的内部组件的设计还进行了修改,以允许离子源脉冲长度加倍,而无需主动冷却。本文讨论了离轴注射的各种光束线系统设计要求,以及光束线实际调试的结果。概述了机械提升系统(液压和控制)、聚焦离子源、柔性光束线支撑系统(真空、低温、电力和水冷却)和内部光束线准直器的设计和性能。此外,还讨论了船内监控和透光保护要求。文中还介绍了在波束线调试和正常物理操作过程中获得的实际数据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Overview of DIII-D off-axis neutral beam project
DIII-D has four neutral beamlines (NB). Each of these beamlines has two ion sources, each of which injects up to 2.5 MW for 3 s. These beamlines intersect the vacuum vessel at an angle of 19.5 deg off from radial, enabling current drive in the same direction as the plasma current (co-injection). In 2004, one of these beamlines (210 deg) was rotated to provide counter-injection (opposite of plasma current). A different beamline (150 deg) has been modified to have the capability to provide off-axis neutral beam current drive. The goal of the off-axis injection is to have the center of the ion sources aimed at a position 40 cm below the geometric center of the plasma. To achieve this off-axis injection, the beamline requires a mechanical lifting system that can elevate the beamline up to 16.5 deg from horizontal. The beamline also requires more strongly vertically focused ion sources (in order to pass the beam through a reduced effective aperture) as well as modified internal components. Additionally, the design of the new internal components incorporated modifications to allow for the doubling of ion source pulse lengths without the need for active cooling. This paper discusses the various beamline system design requirements for off-axis injection, as well as the results from the actual commissioning of the beamline. Overviews of the design and performance of mechanical lifting system (hydraulics and controls), focused ion sources, flexible beamline support systems (vacuum, cryogenic, power and water cooling), and internal beamline collimators are included. Additionally, the in-vessel monitoring and shine-through protection requirements are discussed. The actual data obtained during beamline commissioning and during normal physics operations is also presented.
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