首页|期刊导航|中国电机工程学报|兼顾电网频率支撑的海上风电经柔直联网系统送端交流故障穿越策略

兼顾电网频率支撑的海上风电经柔直联网系统送端交流故障穿越策略OA

A Sending-end AC Fault Ride-through Strategy for Offshore Wind Power Through MMC-HVDC System Considering Grid Frequency Support

中文摘要英文摘要

针对海上风电经柔性直流系统送端交流故障易引起功率传输中断、威胁受端电网频率安全稳定的问题,提出一种兼顾暂态频率支撑的送端交流故障穿越策略.首先,通过揭示送端交流电压与传输功率的动态耦合机理,明确不同故障程度下柔直系统的调控需求,提出基于拓展子模块电容能量调节裕度的柔直系统惯量支撑控制策略,通过重构子模块投切逻辑及参数设计,在尽限利用电容能量裕度的同时实现受端电网频率变化率的快速抑制.然后,提出基于送端换流站交流电压自适应优化的故障穿越控制策略,并设计其启动判据及实施流程,在不同扰动工况下均能最大限度维持功率传输,有效缓解了大功率缺额对受端电网频率的影响,显著增强柔直系统的暂态频率支撑能力.最后,基于实时数字仿真平台搭建海上风电经柔直联网系统仿真模型,验证所提控制方法的有效性.

Aiming at the problem that AC faults at the sending end of the offshore wind power through modular multilevel converter based high voltage direct current(MMC-HVDC)system can easily cause power transmission interruption and threaten the frequency security and stability of the receiving end grid,this paper proposes an AC fault ride-through strategy at the sending end considering transient frequency support.Firstly,by revealing the dynamic coupling mechanism between the sending end AC voltage and the transmission power,the control requirements of MMC-HVDC system under different fault degrees are clarified.An inertia support control strategy based on the regulation margin of the extended sub-module capacitor energy is presented.By reconstructing the sub-module switching logic and designing the parameters,the rate of change of the receiving end grid frequency can be rapidly suppressed while fully utilizing the capacitor energy margin.Then,a fault ride-through control strategy based on the adaptive optimization of the AC voltage at sending-end MMC is proposed,and its start-up criterion and implementation process are designed.Under different disturbance conditions,the power transmission can be maintained to the maximum extent,effectively alleviating the impact of large power deficiency on the receiving end grid frequency and significantly enhancing the transient frequency support capability of MMC-HVDC system.Finally,based on real-time digital simulation platform,the simulation model of the offshore wind power system through MMC-HVDC system is built to verify the effectiveness of the proposed control strategy.

江守其;田雪梅;马俊先;周宗川;马婷;辛业春;王丽馨

现代电力系统仿真与绿色电能新技术教育部重点实验室(东北电力大学),吉林省 吉林市 132012现代电力系统仿真与绿色电能新技术教育部重点实验室(东北电力大学),吉林省 吉林市 132012国网宁夏电力有限公司,宁夏回族自治区银川市 750001国网宁夏电力有限公司经济技术研究院,宁夏回族自治区银川市 750001国网宁夏电力有限公司经济技术研究院,宁夏回族自治区银川市 750001现代电力系统仿真与绿色电能新技术教育部重点实验室(东北电力大学),吉林省 吉林市 132012现代电力系统仿真与绿色电能新技术教育部重点实验室(东北电力大学),吉林省 吉林市 132012

信息技术与安全科学

模块化多电平换流器(MMC)海上风电故障穿越子模块电容交流电压频率支撑

modular multilevel converter(MMC)offshore wind powerfault ride-throughsubmodule capacitanceAC voltagefrequency support

《中国电机工程学报》 2026 (14)

5822-5832,中插10,12

国家电网有限公司科技项目(SGNXJY00DGJS2310011).Science and Technology Project of State Grid Corporation of China(SGNXJY00DGJS2310011).

10.13334/j.0258-8013.pcsee.250739

评论