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Thermal-Fluid Analysis of Coaxial Bipolar Superconducting DC Energy Pipeline

机译:同轴双极超导直流能量管道的热流体分析

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The superconducting DC energy pipeline is a promising technology to transmit electricity and fossil energy such as liquefied natural gas (LNG) at the same time, where LNG could serve as the refrigerant for the high-temperature superconducting (HTS) cables. The bipolar coaxial cable structure is compact and the outside diameter of the pipeline could be reduced. However, as the insulation layer is thickened, the heat generated in the inner conductor layer during the quench process would be difficult to be transferred to the LNG layer, which would lead to a high transient temperature rise and a long recovery time. In this paper, a ±100 kV/1 kA superconducting DC energy pipeline model with the bipolar coaxial cable structure is established in COMSOL Multiphysics. The steady state temperature rise per kilometer is simulated, which could decide the maximum distance between refrigeration stations. Moreover, the transient temperature rise of the conductor layers during DC fault and quench recovery process is evaluated, which could indicate the proper reclosing time after quench.
机译:超导DC能量管道是一种有希望的技术,可以同时传输电力和化石能量(LNG),其中LNG可以用作高温超导(HTS)电缆的制冷剂。双极同轴电缆结构紧凑,并且可以减少管道的外径。然而,由于绝缘层加厚,在骤冷过程期间在内导体层中产生的热量将难以被转移到LNG层,这将导致高瞬态温度升高和长恢复时间。本文在COMSOL多体学中建立了具有双极同轴电缆结构的±100kV / 1 KA超导DC能量管道模型。模拟每公里稳态温度升高,这可以决定制冷站之间的最大距离。此外,评估了在DC故障和淬火恢复过程中导体层的瞬态温度升高,这可以指示淬火后的适当闭合时间。

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