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首页> 外文期刊>Applied Superconductivity, IEEE Transactions on >Current Limitation and Power Burden of a Flux-Coupling Type SFCL in the Three-Phase Power System According to Turn's Ratio and Fault Type
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Current Limitation and Power Burden of a Flux-Coupling Type SFCL in the Three-Phase Power System According to Turn's Ratio and Fault Type

机译:根据匝数比和故障类型,三相电力系统中磁通耦合型SFCL的电流限制和功率负担

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Most of the transmission system has a network structure to improve the reliability and stability of a power system. Fault current is continuously expected to increase by the increase of the power demand. If fault current exceeds the cutoff capacity of a circuit breaker, the circuit breaker is broken and the damage by fault current is expanded throughout the power system. Superconducting fault current limiter (SFCL) was designed to solve this problem in a power system. In this paper, we investigated the current limiting characteristics and power burden of superconducting elements of a flux-coupling type SFCL in three-phase power system. A Flux-coupling type SFCL is one of the resistive type SFCLs. The flux-coupling type SFCL was made by using a transformer. Reactors connected in each phase shared an iron core. When the superconducting elements were quenched in fault phase, the fault current flowed into the primary and secondary coils simultaneously. Thus, the current flowed into primary and secondary coils of sound phase by the magnetic coupling flux. Meanwhile, when the current of sound phase exceeded the critical current of the SFCL, superconducting elements connected in the sound phase were quenched. The value of the fault current tended to decrease as the first reactor's ratio increased. Furthermore, the power burden of the superconducting element was reduced. The reduced power burden of the superconducting elements shortens the recovery time of the superconducting element, which is advantageous for cooperation with a reclosing system when the SFCL is applied to the system. As a result, we confirmed that the flux-coupling type SFCL operated effectively in the three-phase power system.
机译:大多数传输系统具有网络结构,以提高电力系统的可靠性和稳定性。预计故障电流会随着功率需求的增加而增加。如果故障电流超过断路器的切断能力,则断路器会损坏,并且故障电流造成的损害会扩大到整个电力系统。超导故障电流限制器(SFCL)旨在解决电力系统中的这一问题。在本文中,我们研究了三相电力系统中磁通耦合型SFCL超导元件的限流特性和功率负担。磁通耦合型SFCL是电阻型SFCL之一。磁通耦合型SFCL是使用变压器制成的。各相连接的电抗器共用一个铁芯。当超导元件在故障相中淬火时,故障电流同时流入初级线圈和次级线圈。因此,电流通过磁耦合通量流入声相的初级线圈和次级线圈。同时,当声相电流超过SFCL的临界电流时,在声相中连接的超导元件被淬灭。随着第一电抗器的比率增加,故障电流的值趋于减小。此外,减轻了超导元件的功率负担。超导元件的降低的功率负担缩短了超导元件的恢复时间,当将SFCL应用于系统时,这有利于与重合闸系统配合使用。结果,我们确认了磁通耦合型SFCL在三相电力系统中有效运行。

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