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Numerical study for optimization of the air cooling system for the Fast Discharge Resistors protecting the ITER magnets

机译:用于保护ITER磁体的快速放电电阻器的空气冷却系统优化的数值研究

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摘要

The superconducting magnets of the ITER are capable of accumulating up to 50 GJ. In case of coil quench the energy stored in the coils must be extracted rapidly. The problem can be solved by the Fast Discharge Resistors (FDR) under development at the Efremov Institute. The fast discharge of the coils results in practically adiabatic heating of the resistive elements up to 250 degrees C. The resistors should be cooled to their initial temperature within a reasonable time (4-6 h). With this in mind, the authors have designed the cooling system based on natural air circulation. When performing the numerical analysis of the cooling process, the authors have faced the problem of the essential non-uniformity of air flow distribution in parallel channels, which considerably increases the cooling time. Thus, while the cooling time does not exceed 3 h for a single FDR module, it exceeds 10 h for several modules. The numerical studies performed over the last few years have allowed the authors to propose a number of measures to optimize the air cooling system so as to mitigate the negative effect of the air flow non-uniformity in the FDR cooling system. (C) 2015 Elsevier B.V. All rights reserved.
机译:ITER的超导磁体最多可累积50 GJ。如果发生线圈淬火,则必须迅速提取线圈中存储的能量。该问题可以通过Efremov研究所正在开发的快速放电电阻器(FDR)解决。线圈的快速放电会导致电阻元件几乎绝热地加热到250摄氏度。电阻器应在合理的时间内(4-6小时)冷却到其初始温度。考虑到这一点,作者设计了基于自然空气循环的冷却系统。在对冷却过程进行数值分析时,作者面临着平行通道中气流分布基本不均匀的问题,这大大增加了冷却时间。因此,虽然单个FDR模块的冷却时间不超过3小时,但几个模块的冷却时间却超过10小时。在过去的几年中进行的数值研究使作者提出了许多措施来优化空气冷却系统,从而减轻FDR冷却系统中气流不均匀的负面影响。 (C)2015 Elsevier B.V.保留所有权利。

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