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Design, fabrication and installation of the lower divertor for DIII-D

机译:DIII-D的下分流器的设计,制造和安装

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The geometry of the DIII-D tokamak lower divertor was recently modified to improve tokamak plasma density control during operation in a high triangularity double-null configuration. The primary component of the lower divertor is a toroidally continuous flat cooling plate that was fabricated by the Institute of Plasma Physics, Chinese Academy of Sciences (ASIPP). Three rows of graphite tiles are mechanically attached to the plate to shield it from plasma impingement. The plate is water-cooled for heat removal between shots and is heated to 350 ℃ with hot air and inductive current during vessel baking. The divertor plate is supported 100 mm from the vacuum vessel floor to allow for cryo-pumping. The vacuum tight 90° plate sectors were positioned and welded together inside the vessel forming a toroidally continuous ring. Plasma facing tile designs have evolved from previous installations. To limit erosion caused by plasma impingement on sharp edges, the through tile-face bolt holes were eliminated from graphite in areas of high heat flux. Upgraded floor tiles were installed to improve the target for the plasma strike point for outer leg pumping. Thermal analysis was done for the Union Carbide ATJ grade graphite divertor shelf and vessel floor tiles and results are presented.
机译:最近修改了DIII-D托卡马克下偏滤器的几何形状,以改善在高三角形双零位配置下运行期间的托卡马克等离子体密度控制。下偏滤器的主要部件是由中国科学院等离子物理研究所(ASIPP)制造的环形连续平板冷却板。将三排石墨砖机械地连接到板上,以防止等离子体撞击。该板是水冷的,用于在每次注射之间除去热量,并在容器烘烤期间用热空气和感应电流加热至350℃。分流板支撑在距真空容器底部100毫米处,以便进行低温泵送。将真空密封的90°板扇定位并在容器内焊接在一起,形成一个环形连续环。等离子饰面瓷砖的设计是从以前的安装演变而来的。为了限制等离子撞击尖锐边缘引起的腐蚀,在高热通量区域中从石墨消除了贯穿瓷砖的螺栓孔。安装了升级的地砖,以改善外腿抽气的等离子击中点的目标。对Union Carbide ATJ级石墨分流器搁板和容器地砖进行了热分析,并给出了结果。

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