[1] |
史磊. 海上升压站设备冷却技术研究 [D]. 广州:华南理工大学,2012.
SHI Lei. Cooling System Study for Transformer Substation of Offshore Wind Power Station [D]. Guangzhou: South China University of Technology, 2012. |
[2] |
陈敏,佘双翔,刘小松,等. 基于LCC的海上风电场主变压器冗余配置经济性对比与分析 [J]. 电力系统自动化,2015, 39(14): 168-174.
CHEN Min, SHE Shuangxiang, LIU Xiaosong, et al. Economical Assessment on Redundancy Configuration of Main Transformers for Offshore Wind Farm Based on Life Cycle Cost [J]. Automation of Electric Power Systems, 2015, 39(14): 168-174. |
[3] |
闫培丽,袁兆祥,齐立忠,等. 海上风电场二次系统设计关键技术 [J]. 电力建设,2015, 36(4): 129-133.
YAN Peili, YUAN Zhaoxiang, QI Lizhong, et al. Key Technology of Offshore Wind Farm Secondary System Design [J]. Electric Power Construction, 2015, 36(4): 129-133. |
[4] |
张明,张哲,叶军. 海上风电场升压平台布置研究初探 [J]. 上海节能,2015(2): 80-84.
ZHANG Ming, ZHANG Zhe, YE Jun. Research On Boost Platform Layout on Offshore Wind Farm [J]. Shanghai Energy Conservation, 2015(2): 80-84. |
[5] |
施群. 海上平台高压开关装置的研究 [D]. 合肥:合肥工业大学,2003.
SHI Qun. Study of High Voltage Switchgear for Offshore Platform [D]. Hefei: Hefei University of Technology, 2003. |
[6] |
刘新. 海上风电场的防腐涂装 [J]. 材料保护,2011, 44(4): 20-23.
LIU Xin. Anticorrosive Coating of Offshore Wind Farms [J]. Meterials Protection, 2011, 44(4): 20-23. |
[7] |
王胜.海上生产装置闭式循环冷却系统 [J].中国造船,2007(11): 13-15.
WANG Sheng. Closed Cycle Cooling System for Offshore Production Device [J]. SHIPBUILDING OF CHINA, 2007 (11): 13-15. |
[8] |
QHS300—2003,海上平台暖通空调系统设计方法[S]. |
[9] |
李佰贵,宋建伏. 除盐雾空气净化装置在海洋钻井平台上的应用 [J]. 中国修船,2012(6): 43-44.
LI Baigui, SONG Jianfu. Salt Fog Releasing and Air Filtrating Equipment Used on Drilling Platform [J]. CHINA SHIPREPAIR, 2012 (6): 43-44. |
[10] |
王华军,邰国华. 三峡水电站主变压器冷却方式的选择 [J]. 人民长江,2009(1): 67-68,104.
WANG Huajun, TAI Guohua. Selection of Main Transformer Cooling Method of Three Gorges Hydropower Station [J]. Yangtze River, 2009(1): 67-68,104. |
[11] |
广东省电力设计研究院. 用于海上风电场升压站的降温冷却系统:CN 202523989 U[P]. 2012-11-07. |