|
|
|
| Research on parameters design of static var generator and filtering device for offshore wind farms |
| DAI Qiwei, JIANG Jianan |
| Power China Huadong Engineering Corporation Limited, Hangzhou 310000 |
|
|
|
|
Abstract To balance the reactive power demand and power quality of offshore wind farms, the traditional static var generator (SVG) and the active power filters (APF) can be integrated into a new type of integrated static var generation and filtering device. Based on the actual power quality testing of an existing offshore wind farm, this paper proposes a method for analyzing the parameter selection of key components, including the capacity and voltage level of the APF valve bank, as well as the capacity, voltage level, and short-circuit impedance of the transformer. After calculating the relevant parameters of this integrated device using the proposed method, a simulation model is established. The results show that the harmonic current can be limited to the allowable range and the device can simultaneously meet the reactive power compensation requirements. It can thus be concluded that replacing traditional SVGs and APFs with this integrated static var generation and filtering device is feasible.
|
|
Received: 02 September 2025
|
|
|
|
| Cite this article: |
|
DAI Qiwei,JIANG Jianan. Research on parameters design of static var generator and filtering device for offshore wind farms[J]. Electrical Engineering, 2026, 27(2): 68-73.
|
|
|
|
| URL: |
|
https://dqjs.cesmedia.cn/EN/Y2026/V27/I2/68
|
[1] 李战鹰, 任震, 杨泽明. 有源滤波装置及其应用研究综述[J]. 电网技术, 2004, 28(22): 40-43. [2] 黄春光, 刘建春, 武明科. 一种逆变器的并网-谐波治理综合控制方法[J]. 电气技术, 2024, 25(11): 30-36. [3] 陆佳政, 朱思国, 李波, 等. 兼具无功补偿与有源滤波功能的新型融冰装置[J]. 高电压技术, 2016, 42(7): 2207-2214. [4] 董伟杰, 白晓民, 宋晓辉, 等. 基于PI神经元网络的三相四开关电力有源滤波器研究[J]. 中国电机工程学报, 2014, 34(24): 4068-4075. [5] 魏学良, 戴珂, 方昕, 等. 三相并联型有源电力滤波器补偿电流性能分析与改进[J]. 中国电机工程学报, 2007, 27(28): 113-119. [6] Ramos-Carranza H A, Medina A, Chang G W. Real-time shunt active power filter compensation[J]. IEEE Transactions on Power Delivery, 2008, 23(4): 2623-2625. [7] Gong Cheng, Cheng Zheyuan, Sou W K, et al.Collaborative distributed optimal control of pure and hybrid active power filters in active distribution network[J]. IEEE Transactions on Power Delivery, 2023, 38(4): 2326-2337. [8] 方策, 吴命利. 京沪高铁周立营牵引变电所电能质量治理测试分析[J]. 电气技术, 2017, 18(12): 71-75. [9] 石磊磊, 贾清泉, 林丽娟, 等. 电力电子化配电网谐波分布式全局优化治理策略[J]. 中国电机工程学报, 2020, 40(9): 2914-2924. [10] 罗隆福, 李季, 许加柱, 等. 基于新型换流变压器的谐波治理研究[J]. 高压电器, 2006, 42(2): 96-98. [11] 张建忠, 耿治, 徐帅, 等. 一种有源电力滤波器的改进自适应谐波检测算法[J]. 电工技术学报, 2019, 34(20): 4323-4333. [12] 徐群伟, 徐鹏, 陈冬冬, 等. 基于多目标四维可视化算法的有源电力滤波器滤波电感优化设计[J]. 电工技术学报, 2016, 31(增刊2): 49-57. [13] 赵庆杰, 史磊, 柴斌. 变电站不同类型电缆终端在谐波频率作用下的电-热耦合场仿真分析[J]. 电气技术, 2022, 23(5): 45-54. |
|
|
|