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CREEP EFFECTS IN THE TOROIDAL FIELD COILS OF FIRE AND OTHER BURNING PLASMA TOKAMAKS

机译:火和其他燃烧等离子体托马斯环面线圈中的蠕变效应

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All three burning plasma experiments discussed at Snowmass during the summer of 2002, use preloaded structures to resist some component of the operating loads. For the resistive pulsed reactors, it is the preloads which introduce the most noticeable creep responses because these loads are applied for much longer than the operating loads. If the preloads are maintained during shut-down and maintenance periods, then the structure experiences the preload stresses at room temperature. OFHC copper has significant creep behavior, predominantly at high stress and high temp, but copper experiences finite creep even at cryogenic temperatures. The Beryllium copper used in the FIRE inner leg has better creep properties than OFHC copper. The purpose of these analyses is to characterize the influence of creep on the magnets of the Fusion Ignition Research Reactor(FIRE) and compare it with the creep response of the other proposed burning plasma experiments. The concern is that the desirable features provided by coil preloads will be lost over the lives of the experiments. Structural finite element models of FIRE and IGNITOR are used with creep equations derived from NIST data to explore the structural sensitivity of the machines to creep. For both FIRE and IGNITOR, copper coil material, creep has been found to have a minimal effect on magnet performance. IGNITOR's generally lower stresses (with respect to FIRE's BeCu TF stresses) and the use of active as well as passive preload systems helps reduce creep to acceptable levels. FIRE's structure is more sensitive to creep due to the free standing wedged TF coil, but the BeCu used in FIRE's inner TF legs has a much lower creep behavior than ETP or OFHC copper. This reduces creep to acceptable levels. For FIRE, however, there is some creep in the horizontal legs which relaxes some of the support of the inner leg. Recommendations are presented to support the OFHC copper horizontal legs more effectively. More work is needed to address the multiple load-unload cycling effects on creep.
机译:在2002年夏季在Snowmass上讨论的所有三个燃烧等离子体实验都使用预加载结构来抵抗部分工作负载。对于电阻式脉冲电抗器,预载荷会引入最明显的蠕变响应,因为这些载荷的施加时间比工作载荷要长得多。如果在停机和维护期间保持预紧力,则结构在室温下会承受预紧力。 OFHC铜具有明显的蠕变行为,主要是在高应力和高温下,但即使在低温下,铜也经历有限的蠕变。在FIRE内管中使用的铍铜比OFHC铜具有更好的蠕变性能。这些分析的目的是表征蠕变对聚变点火研究堆(FIRE)磁体的影响,并将其与其他拟议的燃烧等离子体实验的蠕变响应进行比较。令人担忧的是,在整个实验过程中,线圈预紧力所提供的理想特性将丢失。 FIRE和IGNITOR的结构有限元模型与从NIST数据得出的蠕变方程一起使用,以探索机器对蠕变的结构敏感性。对于FIRE和IGNITOR铜线圈材料,蠕变对磁体性能的影响最小。 IGNITOR的应力通常较低(相对于FIRE的BeCu TF应力),主动和被动预紧系统的使用有助于将蠕变降低到可接受的水平。由于具有独立式楔形TF线圈,FIRE的结构对蠕变更为敏感,但是FIRE的内部TF支腿中使用的BeCu具有比ETP或OFHC铜低得多的蠕变行为。这样可以将蠕变降低到可接受的水平。但是,对于FIRE,水平支腿会有一些蠕变,这会放松内部支腿的部分支撑。提出了一些建议,以更有效地支持OFHC铜水平支脚。需要更多的工作来解决蠕变的多重加载-卸载循环效应。

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