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The pre-compression system of the toroidal field coils in ITER

机译:ITER中环形场线圈的预压缩系统

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The toroidal field (TF) coils of ITER will undergo out-of-plane forces caused by the poloidal fields required to confine the plasma. These forces will be supported against overturning moments by links between the coils. In turn, these links consist of the inner intercoil structure (IIC), which is composed of two pairs (placed at the top and bottom part of the inboard leg) of four sets of poloidal shear keys inserted in slots between adjacent coils, and the outer intercoil structure (OIS) formed by four bands of shear panels on the outboard leg. The magnetic forces during energization of ITER would cause at IIC locations at toroidal gap between adjacent TF coils of 0.35 mm; during plasma operation this value could reach >1 mm causing a loosening of the keys and intensifying stress concentrations. This undesired effect will be suppressed by the application of a centripetal force of 70 MN/coil (35 MN at both the bottom and top part of the inboard leg of each of the 18 TF coils) that will be provided by two sets of three glass fibre/epoxy composite rings submitted to a toroidal hoop force of 100 MN/set. The calculated maximum stress in the rings will occur during the installation phase at room temperature, where the maximum radial elongation (~25 mm) is required, and it reaches 1/5 of the composite presently estimated ultimate stress. The imposed elongation to reach that force and the lower Young's modulus of the composite compared with that of stainless steel will ease component tolerances and/or settlement effects in the final assembly. The paper describes the evolution in the design of the pre-compression system, from the conceptual phase when two circular cross-sections rings were considered to the present definitive one with three rectangular cross-section rings.
机译:ITER的环形场(TF)线圈将承受由限制等离子体所需的极向场引起的平面外力。这些力将通过线圈之间的链接来抵抗倾覆力矩。反过来,这些链接由内部线圈间结构(IIC)组成,该结构由两对(放置在内侧支腿的顶部和底部)两对,四组十字形剪切键插入相邻线圈之间的槽中,以及外侧线圈间结构(OIS),由外侧腿上的四个剪切板带组成。 ITER通电期间的磁力将在IIC位置处导致相邻TF线圈之间的环形间隙为0.35 mm;在等离子操作期间,该值可能会超过1 mm,从而导致键松动并加剧应力集中。通过施加70 MN /线圈的向心力(18 TF线圈中的每一个的内侧支脚的底部和顶部都为35 MN)可以抑制这种不良影响,该力将由两组三个玻璃板提供纤维/环氧树脂复合材料环承受100 MN /套的环形环向力。环中计算出的最大应力将发生在室温下的安装阶段,此时需要最大径向伸长(〜25 mm),并且达到复合材料目前估算的极限应力的1/5。与不锈钢相比,达到该力所施加的伸长率和复合材料较低的杨氏模量将减轻最终装配中的零件公差和/或沉降效果。本文描述了预压缩系统设计的演变过程,从概念阶段开始考虑两个圆形横截面环,到目前确定的三个矩形横截面环。

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