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首页> 外文期刊>Applied Superconductivity, IEEE Transactions on >Design Study of SMES System Cooled by Thermo-Siphon With Liquid Hydrogen for Effective use of Renewable Energy
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Design Study of SMES System Cooled by Thermo-Siphon With Liquid Hydrogen for Effective use of Renewable Energy

机译:有效利用可再生能源的液态氢热虹吸冷却SMES系统的设计研究

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In order to use effectively renewable energy sources, we propose a new system, called Advanced Superconducting Power Conditioning System (ASPCS), that is composed of SMES and Fuel Cell-Electrolyzer (FC-EL) in connection with a liquid hydrogen station for vehicles. The new system will compensate the fluctuating renewable energy sources with SMES having characteristics of quick response and large I/O power, and with FC-EL having characteristics of moderate response and large storage capacity. The SMES coil with an ${rm MgB}_{2}$ conductor operated at 20 K is cooled with a thermo-siphon cooling system by using cryogen from the liquid hydrogen station. The necessary minimum storage capacity of SMES is estimated as 50 MJ for compensating output power of 1 MW. A four-pole SMES coil is designed by using stranded cable concept. The design study of the SMES coil composed of the ${rm MgB}_{2}$ conductor and the thermo-siphon cooling system is reported.
机译:为了有效利用可再生能源,我们提出了一种新系统,称为高级超导功率调节系统(ASPCS),该系统由SMES和燃料电池-电解槽(FC-EL)以及与车辆的液态氢站相连组成。新系统将通过具有快速响应特性和大I / O功率的SMES,以及具有中等响应特性和大存储容量的FC-EL来补偿波动的可再生能源。通过使用来自液态氢站的冷冻剂,用热虹吸冷却系统冷却带有在20 K下工作的导体的{rm MgB} _ {2} $的SMES线圈。 SMES的必要最小存储容量估计为50 MJ,以补偿1 MW的输出功率。通过使用多股电缆概念设计了四极SMES线圈。报道了由$ {rm MgB} _ {2} $导体和热虹吸冷却系统组成的SMES线圈的设计研究。

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