期刊文献+

一种基于模块化多电平换流器的三极直流输电系统 被引量:10

A Tripole HVDC Transmission System Based on Modular Multilevel Converters
下载PDF
导出
摘要 现有三极直流输电系统基于晶闸管换流器,存在一些与传统直流输电系统相似的固有缺陷。文中提出了一种改进系统:极3采用基于全桥子模块的模块化多电平换流器,极1和极2采用基于钳位双子模块的模块化多电平换流器。同时,提出了三极直流协调控制策略,并且为了抑制过渡阶段的暂态过电压,减小接地电流和功率波动,还提出了电压反向控制、电流维零控制和功率协调控制。采用PSCAD/EMTDC进行仿真验证,结果表明利用所提控制策略,三极直流输电系统能够获得较好的响应特性,在维持电容电压平衡的同时,能够抑制交直流间功率扰动和接地极电流波动。 The use of thyristor converters in existing tripole high voltage direct current( HVDC) transmission system suffers some inherent defects similar to those of the traditional HVDC transmission system. For this reason,this paper proposes an improved scheme which uses the modular multilevel converters( MMCs) based on full bridge sub-modules( FBSMs) to replace the thyristor converters in pole 3,and the converters in pole 1 and pole 2 are also replaced by the MMCs based on clamp double sub-modules( CDSMs). Meanwhile,the coordination control between the three poles is proposed. In order to suppress the transient overvoltage and minimize the grounding current and power fluctuation in the transition process,the voltage inverse control,power coordinated control and the control strategy of keeping current zero in pole 3 are also proposed. The performance of the proposed tripole HVDC transmission system is validated through time-domain simulation study in PSCAD / EMTDC. The results show that the tripole HVDC transmission system based on the proposed control strategy can achieve a satisfactory response characteristic,while maintaining the balance of capacitor voltage and minimizing the grounding current and power fluctuation.
出处 《电力系统自动化》 EI CSCD 北大核心 2014年第2期70-78,共9页 Automation of Electric Power Systems
基金 国家高技术研究发展计划(863计划)资助项目(2012AA050205)~~
关键词 三极直流结构 全桥子模块 钳位双子模块 协调控制 电压反向控制 电流维零控制 功率协调控制 tripole high voltage direct current(HVDC) structure full bridge sub-module(FBSM) clamp double sub-module(CDSM) coordination control voltage inverse control control of keeping current zero power coordinated control
  • 相关文献

参考文献14

  • 1ALBIZU I, MAZON A J, ZAMORA I. Methods for increasing the rating of overhead lines[C]// IEEE Russia Power Tech, June 27-30, 2005, St. Petersburg, Russia: 1-6.
  • 2LARRUSKAIN D M, ZAMORA I, ABARRATEGUI O, et al. Power transmission capacity upgrade of overhead lines [C]// International Conference on Renewable Energy and Power Quality (ICREPQ), April 5-7, 2006, Balearic Island, Spain.
  • 3HAYASHI T, TAKASAKI M. Transmission capability enhancement using power electronics technologies for the future power system in Japan[J]. Electric Power Systems Research, 1988, 44(1): 7-14.
  • 4LARRUSKAIN D M, ZAMORA I, ABARRATEGUI O, et al. Conversion of AC distribution lines into DC lines to upgrade transmission capacity. Electric Power Systems Research, 2011, 81(7) : 1341-1348.
  • 5KHAN M I, AGRAWAL R C. Conversion of AC line into HVDC [C]// IEEE Power Engineering Society Inaugural Conference and Exposition in Africa, July 11-15, 2005, Duban, South Africa: 51-56.
  • 6HALSAN K, LOUDON D, GUTMAN I, et al. Feasibility of upgrading 300 kV AC lines to DC for increased power transmission capability[C]// Proceedings of CIGRE Session, August 24-29, 2008, Paris.
  • 7BARTHOLD L O, HUANG H. Conversion of AC transmission lines to HVDC using current modulation [C]// IEEE Power Engineering Society Inaugural Conference and Exposition in Africa, July 11-15, 2005, Duban, South Africa: 26-32.
  • 8BARTHOLD L O, CLARK H K, WOODFORD D. Principles and applications of current-modulated HVDC transmission systems [C]// IEEE PES Transmission and Distribution Conference and Exhibition, May 21-24, 2006, Dallas, USA: 1429-1435.
  • 9吴婧,文俊,温家良,韩民晓,彭畅,王宇,吴锐.高压直流三极输电特性分析[J].电网技术,2013,37(1):71-76. 被引量:16
  • 10汪隆君,王钢,李海锋,李志铿.交流系统故障诱发多直流馈入系统换相失败风险评估[J].电力系统自动化,2011,35(3):9-14. 被引量:54

二级参考文献60

共引文献125

同被引文献137

  • 1梁旭明,余军,尤传永.新型复合材料合成芯导线技术综述[J].电网技术,2006,30(19):1-6. 被引量:44
  • 2Lesnicar A,Marquardt R.An innovative modular multilevel converter topology suitable for a wide power range[C]//IEEE Power Technology Conference Proceedings.Bologna,Italy:IEEE,2003:1-6.
  • 3Deng F,Chen Z.A control method for voltage balancing in modular multilevel converters[J].IEEE Transactions on Power Electronics,2014,29(1):66-76.
  • 4Song Q,Liu W,Li X,et al.A steady-state analysis method for a modular multilevel converter[J].IEEE Transactions on Power Electronics,2013,28(8):3702-3713.
  • 5Marquardt R.Modular multilevel converter:an universal concept for HVDC networks and extended DC bus applications[C]//International Power Electronics Conference.Sapporo,Japan:IEEE,2010:502-507.
  • 6Ilves K,Antonopoulos A,Norrga S.A new modulation method for the modular multilevel converter allowing fundamental switching frequency[J].IEEE Transactions on Power Electronics,2012,27(8):3482-3494.
  • 7Tu Q,Xu Z,Xu L.Reduced switching-frequency modulation and circulating current suppression for modular multilevel converters[J].IEEE Transactions on Power Delivery,2011,26(3):2009-2017.
  • 8Dorn J,Gambach H,Strauss J,et al.Trans bay cable a breakthrough of VSC multilevel converters in HVDC transmission[C]//CIGRE Session.San Francisco,2012.
  • 9Yang J,Fletcher J,O'Reilly J.Short-circuit and ground fault analyses and location in VSC-based DC network cables[J].IEEE Transactions on Industrial Electronics,2012,59(10):3827-3837.
  • 10Franck C.HVDC circuit breakers:a review identifying future research needs[J].IEEE Transactions on Power Delivery,2011,26(2):998-1007.

引证文献10

二级引证文献208

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部