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Design and manufacture of the ITER cryostat

机译:ITER低温恒温器的设计与制造

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Pa. It is one of the most important and critical systems in the ITER project, providing the function of a vacuum environment for the thermal insulation to the magnet system operating at 4.5K and the thermal shield system operating at 80K. The Cryostat support system design is recently updated and is comprising of the pedestal ring, 18 sliding bearing system, concrete crown support and the skirt support. The cryostat support system is designed to support the ITER tokamak, including both the Vacuum Vessel and the superconducting magnet systems. The entire support system including pedestal ring and skirt support system is categorized as SIC-1 (SIC-Safety Important Components) as it provides the support to the Vacuum Vessel. The ITER cryostat is a fully welded stainless steel cylindrical chamber with top dome shaped lid and bottom flat head. The ASME Section VIII Division-2 is used as a reference code for design, construction and testing of the cryostat. The design and analysis update is done to incorporate the recent project change requirements affecting the building and cryostat support systems, interface design updates affected by changes in the Vacuum Vessel pumping system (Torus Cryo-Pump Housing) and TCWS (Tokamak Cooling Water Systems), regulatory requirements and safety classification of the cryostat support structure. The major challenges involved in the cryostat design and manufacturing are stringent tolerances, code requirements, high vacuum compatible welding of large wall thicknesses, and access limitation for welding, non-destructive examination, and interfaces with a large number of tokamak systems. As the cryostat is huge in size, the limitation on transportation and assembly sequence of the tokamak drives the fabrication stages. The fabrication of cylindrical sections of- the cryostat necessitates the huge on-site workshop. The site workshop is being constructed at ITER site. Manufacturing activities such as prototype and welding mock-ups are being initiated by Industry.
机译:Pa。它是ITER项目中最重要和最关键的系统之一,为真空系统的运行提供了真空环境,以对运行在4.5K的磁体系统和运行在80K的热屏蔽系统进行隔热。低温恒温器支撑系统设计最近进行了更新,包括基座环,18滑动轴承系统,混凝土胎冠支撑和裙边支撑。低温恒温器支持系统旨在支持ITER托卡马克,包括真空容器和超导磁体系统。包括基座环和裙边支撑系统在内的整个支撑系统归为SIC-1(SIC安全重要组件),因为它可以为真空容器提供支撑。 ITER低温恒温器是完全焊接的不锈钢圆柱形腔室,带有顶部圆顶形盖和底部平头。 ASME第VIII节Division-2被用作低温恒温器的设计,构造和测试的参考代码。完成设计和分析更新,以合并影响建筑物和低温恒温器支持系统的最新项目变更要求,受真空容器泵送系统(Torus冷冻泵外壳)和TCWS(Tokamak冷却水系统)的变更影响的接口设计更新,低温恒温器支撑结构的法规要求和安全分类。低温恒温器设计和制造涉及的主要挑战是严格的公差,规范要求,大壁厚的高真空兼容焊接以及焊接的访问限制,无损检查以及与大量托卡马克系统的接口。由于低温恒温器的尺寸巨大,因此托卡马克对运输和组装顺序的限制驱动了制造阶段。低温恒温器的圆柱形部分的制造需要庞大的现场车间。现场讲习班正在ITER现场建造。工业界正在发起诸如原型和焊接模型的制造活动。

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