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Application Study of a High-Temperature Superconducting Fault Current Limiter for Electric Power System

机译:高温超导故障电流限制器在电力系统中的应用研究

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摘要

Using high-temperature superconductors, a superconducting fault current limiter (SFCL) was fabricated and tested. The superconductor and a vacuum interrupter serving as a commutation switch were connected in parallel with a bypass coil. When a fault occurs and excessive current flows, the superconductor is first quenched and the current is transferred to the bypass coil because of the voltage drop of the superconductor. At the same time, since a magnetic field is generated by the current flowing in the bypass coil, the commutation switch is immediately driven by an electromagnetic repulsion plate connected to the driving rod of the vacuum interrupter (VI), and the superconductor is separated from this circuit. Using the test model, we were able to separate the superconductor from the circuit by the movement of the VI within a half current cycle and to transfer all current to the bypass coil. Since the operation of the commutation switch is included in the current limiting operation of this test model, it will be a useful circuit in the development of SFCL in the future. Moreover, since it can make the energy consumption of the superconductor small during the fault state due to the realization of a high-speed switch with simple composition, the burden on the superconductor is reduced compared with the conventional resistive type of SFCL and it is considered that the flexibility of SFCL design is increased. Cooperation with a circuit breaker was also considered; trial calculations of the parameters and energy of operation were conducted and a discussion of the installation of the SFCL in an electric power system is presented.
机译:使用高温超导体,制造并测试了超导故障电流限制器(SFCL)。超导体和用作换向开关的真空断路器与旁路线圈并联连接。当发生故障并且有过多的电流流过时,由于超导体的电压降,超导体首先被淬火,​​并且电流被转移到旁路线圈。同时,由于在旁路线圈中流动的电流会产生磁场,因此换向开关立即由连接至真空灭弧室(VI)的驱动杆的电磁排斥板驱动,超导体与这个电路。使用测试模型,我们能够通过VI在半个电流周期内的移动将超导体与电路分离,并将所有电流传输到旁路线圈。由于该测试模型的电流限制操作中包括换向开关的操作,因此它将在将来的SFCL开发中成为有用的电路。此外,由于通过实现具有简单组成的高速开关,可以在故障状态期间减小超导体的能量消耗,因此与常规的电阻型SFCL相比,减轻了超导体的负担,并被认为是SFCL设计的灵活性增加了。还考虑了与断路器的合作;进行了参数和运行能量的试验计算,并对SFCL在电力系统中的安装进行了讨论。

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