Wind Power Installed Capacity Statistics in China, 2009. [Online]. Available: http://www.cwea.org.cn/ main.asp.
[2]
Hammad A, Minghetti R, Hasler J, et al. Controls modeling and verification for the pacific intertie HVDC 4-terminal scheme[J]. IEEE Transactions on Power Delivery, 1993, 8(1): 367-375.
[3]
Foster S, Xu L, Fox B. Control of an LCC HVDC system for connecting large offshore wind farms with special consideration of grid fault[C]. IEEE/PES, General Meeting, 2008.
[4]
Bozhko S, Blasco R, Li R, et al. Control of offshore DFIG-based wind farm grid with line-commutated HVDC connection[J]. IEEE Transactions on Energy Conversion, 2007, 22(1): 71-78.
Xu L, Andersen B R. Grid connection of large offshore wind farms using HVDC[J]. Wind Energy, 2006, 9(2): 371-382.
[8]
Reeve J. Multi-terminal HVDC power systems[J]. IEEE Transactions on Power Apparatus and System, 1980, 99(2): 729-735.
[9]
Jiang H B, Ekstrom A. Multiterminal HVDC sytems in urban areas of large cities[J]. IEEE Transactions on Power Delivery, 1998, 22(2): 1278-1285.
[10]
Jovcic D. Interconnecting offshore wind farms using multiterminal VSC-based HVDC[C]. IEEE/PES, General Meeting, 2006: 1-7.
[11]
Xu L, Yao L Z, Sasse C. Grid integration of large DFIG based wind farms using VSC transmission[J]. IEEE Transactions on Power Systems, 2007, 22(3): 976-984.
[12]
Andersen B R, Xu L. Hybrid HVDC for power transmission to island network[J]. IEEE Transactions on Power Delivery, 2004, 19(4): 1884-1890.
[13]
Fan L, Miao Z, Osborn D. Wind farms with HVDC delivery in load frequency control[J]. IEEE Transactions on Power Systems, 2009, 24(4): 1894-1895.
[14]
Xiang D, Ran L, Bumby J, et al. Coordinated control of an HVDC link and doubly fed induction generators in a large offshore wind farm[J]. IEEE Transactions on Power Delivery, 2006, 21(1): 463-471.
[15]
Jiang H B, Ake E. Multiterminal HVDC systems in urban areas of large cities[J]. IEEE Transactions on Power Delivery, 1998 13(4): 1278-1284.
[16]
Sun X, Liu Z, Gao L Y, et al. Practice and innovation in the ±800kV UHVDC demonstration project[J]. Proceedings of the CSEE, 2009, 29(22): 35-45.
[17]
Yang F, Xu Z, Zhang J. An approach to select PI parameters of HVDC controller[C]. IEEE/PES, General Meeting, 2006.
[18]
Hill R, Luo F. Stability analysis of thyristor current controllers[J]. IEEE Transactions on Industry Application, 1987, 23(1): 49-56.
[19]
陈谦. 多端直流输电系统的运行与控制[D]. 南京: 东南大学, 2005.
[20]
Zhou H, Yang G, Geng H. Grid integration of DFIG-based offshore wind farms with hybrid HVDC connection[C]. Electrical Machines and Systems, ICEMS 2008, 2008.
[21]
Michalke G, Hansen A D, Hartkopf T. Control of a wind park with doubly fed induction generators in support of power system stability in case of grid faults[C]. European Wind Energy Conference, 2007.
[22]
Poller M, Achillers S. Aggregated wind park model for analyzing power system dynamics[C]. Forth International Workshop on Large scale Integration of Wind Power and Transmission Networks, Denmark, 2003.
Guo Jindong, Zhao Dongli, Lin Zixu, et al. Rearch of the megawatt level variable speed constant frequency wind power unit control system[J]. Proceedings of the CSEE, 2007, 27(6): 1-6.
[25]
Miller N W, Sanchez J J, Price W W, et al. Dynamic modeling of GE 1.5 and 3.6MW wind turbine- generators for stability simulations[C]. IEEE/PES, General Meeting, 2003.
[26]
Ullah N R, Thiringer T, Karlsson D. Temporary primary frequency control support by variable speed wind turbines—potential and applications[J]. IEEE Transactions on Power Systems, 2008, 21(3): 601-612.
[27]
Jiao L, Joos G, Abbey C. Multi-terminal DC (MTDC) Systems for wind farms powered by doubly-fed induction generators (DFIGs)[C]. Proceedings of the IEEE PESC, Germany, 2004.