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首页> 外文期刊>Advances in Electrical and Computer Engineering >Fault Ride Through Capability Enhancement of a Large-Scale PMSG Wind System with Bridge Type Fault Current Limiters
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Fault Ride Through Capability Enhancement of a Large-Scale PMSG Wind System with Bridge Type Fault Current Limiters

机译:具有桥式故障限流器的大型PMSG风力发电系统的故障穿越能力增强

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In this paper, bridge type fault current limiter (BFCL) is proposed as a potential solution to the fault problems of permanent magnet synchronous generator (PMSG) based large-scale wind energy system. As PMSG wind system is more vulnerable to disturbances, it is essential to guarantee the stability during severe disturbances by enhancing the fault ride through capability. BFCL controller has been designed to insert resistance and inductance during the inception of system disturbances in order to limit fault current. Constant capacitor voltage has been maintained by the grid voltage source converter (GVSC) controller while current extraction or injection has been achieved by machine VSC (MVSC) controller. Symmetrical and unsymmetrical faults have been applied in the system to show the effectiveness of the proposed BFCL solution. PMSG wind system, BFCL and their controllers have been implemented by real time hardware in loop (RTHIL) setup with real time digital simulator (RTDS) and dSPACE. Another significant feature of this work is that the performance of the proposed BFCL is compared with that of series dynamic braking resistor (SDBR). Comparative RTHIL implementation results show that the proposed BFCL is very efficient in improving system fault ride through capability by limiting the fault current and outperforms SDBR.
机译:本文提出了一种桥式故障限流器(BFCL)作为解决基于永磁同步发电机(PMSG)的大型风能系统故障问题的潜在解决方案。由于PMSG风力系统更容易受到干扰,因此必须通过增强故障穿越能力来确保严重干扰时的稳定性。 BFCL控制器经过专门设计,可以在系统受到干扰时插入电阻和电感,以限制故障电流。电网电压源转换器(GVSC)控制器可保持恒定的电容器电压,而机器VSC(MVSC)控制器可实现电流提取或注入。对称故障和非对称故障已在系统中应用,以证明所提出的BFCL解决方案的有效性。 PMSG风力系统,BFCL及其控制器已通过带有实时数字模拟器(RTDS)和dSPACE的实时硬件在环(RTHIL)设置来实现。这项工作的另一个重要特征是,将所提出的BFCL的性能与串联动态制动电阻器(SDBR)的性能进行了比较。比较RTHIL的实现结果表明,所提出的BFCL通过限制故障电流并优于SDBR,在提高系统故障穿越能力方面非常有效。

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