大型海上风电场直流-直流输电系统暂态过电压特性研究

Ying Xu, Zheng Zhao, B. Yue, Xuan Li
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引用次数: 0

摘要

中国拥有丰富的海上风电资源。随着近海海上风电资源的开发和技术的不断提高,远离海岸的海上风电资源开发利用已成为必然趋势。电压源变流器高压直流输电(VSC-HVDC)是完成远离海岸的海上风电资源采集和传输的最佳技术手段。直流—高压直流系统的暂态过电压水平是决定设备绝缘等级、空气间隙和工程造价的重要因素。本文采用PSCAD/EMTDC仿真分析方法,基于实际在建的海上风电跨直流输电项目进行研究。本文分析了海上换流站和陆上换流站在不同工况下的典型故障特征以及关键位置的暂态过电压水平。分析了不同工况对过电压水平的影响。研究表明,由于长距离直流海底电缆的电容效应,直流系统的故障特征和暂态过电压持续时间与以往的直流-高压直流工程相距甚远。直流消能装置的保护策略、传输功率、开关策略都会影响暂态过电压。研究了电缆过电压的特性。得到了终端、相和极之间的最大瞬态过电压电平。研究结论可为换流站设备的研制和布局提供理论依据。同时也为后续海上风电输电项目提供参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research on Transient Overvoltage Characteristics of VSC-HVDC Transmission System Connecting to Large-scale Offshore Wind Farm
China is rich in offshore wind power resources. With the development of offshore wind power resources near the coast and the continuous improvement of technology, the development and utilization of offshore wind power resources away from the coast has become an inevitable trend. Voltage sourced converters high voltage direct current (VSC-HVDC) transmission is the best technical method to complete the collection and transmission of offshore wind power resources away from the coast. The transient overvoltage level of the VSC-HVDC system is an important factor in determining the insulation level of the equipment, air clearance and project costs. This paper adopts PSCAD/EMTDC simulation analysis method, and conducts research based on a real offshore wind power transmission project via VSC-HVDC under construction. This paper analyzes the characteristics of typical faults, as well as the transient overvoltage levels at key locations of both offshore converter station and onshore converter station under different operating conditions. The influences of different operating conditions on the overvoltage level are analyzed. Studies have shown that due to the capacitance effect of long-distance DC submarine cables, the fault characteristics and transient overvoltage duration of the DC system are far from the previous VSC-HVDC projects. Protection strategy, transmission power, switching strategy of DC energy dissipation device will all affect transient overvoltage. The feature of cable overvoltage is studied. The maximum transient overvoltage levels between terminals, phases and poles are obtained. The research conclusions can provide a theoretical basis for the development of equipment and the layout of converter stations. Furthermore, it also provides a reference for the follow-up offshore wind power transmission projects.
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