Chen Shao, Xiangwu Yan, A. Siddique, Waseem Aslam, Jiaoxin Jia, Wenqiang Xie, Salman A. Alqahtani, Atif M. Alamri
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引用次数: 0
摘要
随着主动配电网建设的快速发展,柔性互联配电网已成为主流供电结构。为确保配电系统的安全供电,应进一步研究适合柔性互联配电网的功率控制方法。电磁旋转功率流控制器(RPFC)是配电网功率控制的可行方案。本文首先基于瞬时无功功率理论构建了 RPFC 稳态功率解耦控制模型。然而,由于难以协调控制旋转换相变压器的转子位置角,因此难以实现稳定的功率控制。在此基础上,采用伺服电机的两级速度控制和速度协调方案,实现了两个转子角度的稳定无误控制,满足了高精度、高可靠性和快速响应的功率调节要求。研制了 380 V/40 kVA RPFC 原型和实验平台,并进行了功率调节和功率均衡实验。结果表明,所提出的控制方案可以实现二级调节。控制精度保持在 4% 以内,显示出良好的动态和静态性能。这满足了互联配电网中灵活闭环运行的要求。
Two‐stage power control method of rotary power flow controller for flexible interconnection of distribution network
With the rapid development of active distribution network construction, flexible interconnected distribution networks have become the mainstream power supply structure. To ensure the safe power supply of the distribution system, power control methods suitable for flexible interconnected distribution networks should be further studied. The electromagnetic rotating power flow controller (RPFC) is a feasible solution for power control in distribution networks. This paper first constructs an RPFC steady‐state power decoupling control model based on instantaneous reactive power theory. However, it is difficult to achieve stable power control due to the difficulty of coordinated control of the rotor position angle of the rotating phase transfer transformer. On this basis, the servo motor's two‐stage speed control and speed coordination scheme are used to achieve stable and error‐free control of the two rotor angles, meeting the power regulation requirements of high precision, high reliability, and fast response. A 380 V/40 kVA RPFC prototype and experimental platform were developed, and power regulation and power equalization experiments were conducted. The results indicate that the proposed control scheme can regulate at the second level. Control accuracy is maintained within 4%, showing good dynamic and static performance. This meets the requirements for flexible closed‐loop operation in the interconnected distribution network.