Thermal performance analysis of cryogenic system for cooling of superconducting magnets at 4K temperature level

H. Vaghela, B. Sarkar, A. Bisht, V. Lakhera
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Abstract

Cryogenic system in fusion research tokamak integrates many components, i.e., heat exchangers, valves, cold circulating pumps, cold compressor etc., in various configurations for the cooling of superconducting (SC) magnets like Toroidal Field (TF), Poloidal Field (PF) and Central Solenoid (CS). Helium refrigerator/liquefier (R/L) serves as a source of cold power for the cryogenic cooling of magnets at 4 K temperature level. However, normally the cryogenic cooling of the SC magnets is accomplished indirectly using the secondary circuit by the use of cold circulating pump, which circulates when the supercritical helium in closed circuit and rejects the heat from SC magnets to the Liquid Helium (LHe) bath which is maintained at ~4 K temperature level by the helium (R/L). This arrangement provides flexibility for the operation of SC magnets, which operates in pulsed manner, and still establishes stable operation for the helium (R/L). There are various configurations that are possible for LHe bath and cold compressor arrangements, i.e., there is a common LHe bath for all SC magnets or individual bath for each SC magnet with either individual cold compressor or common cold compressor for each bath. Thermal system modeling and analysis of the different cryogenic cooling configuration reveals the optimum configuration satisfying the main function of cryogenic cooling of SC magnets with required thermal performance.
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超导磁体低温冷却系统在4K温度水平下的热性能分析
核聚变研究中的低温系统托卡马克集成了许多部件,即热交换器,阀门,冷循环泵,冷压缩机等,用于冷却超导(SC)磁体,如环向场(TF),极向场(PF)和中央螺线管(CS)。氦制冷机/液化器(R/L)作为低温电源,在4 K温度水平下对磁体进行低温冷却。然而,通常SC磁体的低温冷却是通过二级回路间接完成的,通过使用冷循环泵,当超临界氦处于封闭回路时,该循环泵将SC磁体的热量排出到液氦(LHe)槽中,液氦(R/L)将液氦(LHe)槽保持在~ 4k的温度水平。这种安排为SC磁体的操作提供了灵活性,它以脉冲方式操作,并且仍然为氦(R/L)建立稳定的操作。LHe浴槽和冷压缩机布置有各种可能的配置,即,所有SC磁铁都有一个共同的LHe浴槽,或者每个SC磁铁都有单独的浴槽,每个浴槽都有单独的冷压缩机或普通的冷压缩机。通过对不同低温冷却配置的热系统建模和分析,得出了满足SC磁体低温冷却主要功能和所需热性能的最佳配置。
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