首页> 外文期刊>Physica, C. Superconductivity and its applications >Numerical analysis on 10 MJ solenoidal high temperature superconducting magnetic energy storage system to evaluate magnetic flux and Lorentz force distribution
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Numerical analysis on 10 MJ solenoidal high temperature superconducting magnetic energy storage system to evaluate magnetic flux and Lorentz force distribution

机译:10 MJ电磁高温超导磁能存储系统的数值分析,评价磁通量和洛伦兹力分布

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摘要

Due to fast response and high energy density characteristics, Superconducting Magnetic Energy Storage (SMES) can work efficiently while stabilizing the power grid. The challenges like voltage fluctuations, load shifting and seasonal load demands can be accomplished through HTS magnet as this device has a great potential to supply power for a time span varies from few seconds to hours. Solenoidal configuration has been widely employed (over toroidal) in the development of SMES prototypes as it is simpler to manufacture and allows an easier handling of the mechanical stresses imposed on the structure due to Lorentz forces. A micro-SMES of capacity 10 MJ can be employed to mitigate the challenges like load leveling, dynamic stability, transient stability, voltage stability, frequency regulation, transmission capability enhancement, power quality improvement, automatic generation control, uninterruptible power supplies, etc.
机译:由于快速响应和高能量密度特性,超导磁能存储(SME)可以在稳定电网时有效地工作。 电压波动,负载换档和季节负载需求的挑战可以通过HTS磁体来完成,因为该器件具有电源的电位跨度,时间跨度不同于几秒钟到小时。 在SMES原型的开发中被广泛使用的电磁配置(超过环形),因为它更简单地制造并且允许更容易地处理由于洛伦兹力而施加在结构上的机械应力。 容量10 MJ的微微中小型可用于减轻负载调平,动态稳定性,瞬态稳定性,电压稳定性,频率调节,传输能力增强,电力质量改进,自动发电控制,不间断电源等的挑战。

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