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Propulsion Control Strategy of Combined Diesel-Electric and Gas Turbine Systems Based on Semi-Physical Simulation |
Liang Xiaolong1, Wang Shanming1, Ji Luming2, Ma Shoujun2 |
1.State Key Laboratory of Control and Simulation of Power System and Generation Equipments Tsinghua University, Beijing 100084 China; 2.92857 Unit, Beijing 100073 China |
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Abstract The combined diesel-electric and gas turbine (CODLAG) system combines the advantages of electric propulsion system and mechanical propulsion system, so that it could meet the various needs of the voyage. A semi-physical simulation system is established to simulate the propulsion control strategy, and the propulsion work conditions are discussed and analyzed. First a propulsion control strategy, with the open-loop power control for both the gas turbine and the propulsion motor, is designed and achieved, and the operating characteristics on the main conditions are experimentally obtained. To accurately control the shaft speed, a new propulsion control strategy is proposed, where the close-loop control of shaft speed is used for the propulsion motor, and good characteristics are achieved. Results of experiments on two strategies are analyzed and compared to obtain the advantages and disadvantages of each control strategy, which could be used in the design of the propulsion control strategy for CODLAG ships.
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Received: 08 November 2013
Published: 17 June 2014
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[1] Sven De Breucker, Eefje Peeters, Johan Driesen. Possible applications of plug-in hybrid electric ships[C]. Electric Ship Technologies Symposium, 2009, 4: 310- 317. [2] 金启玫, 杨卫国. 电力系统物理模拟综述[J]. 电工技术杂志, 1999(1): 9-11. Jin Qimei, Yang Weiguo. Overview of the physical simulation of power system[J]. Electric Engineering, 1999(1): 9-11. [3] Boughner A. A new approach to gas turbine system in the all electric warship era[C]. ASME Turbo Expo, Altanta, Georgia, 2003, 3: 489-494. [4] Willett F T, Patel M. LM500-package power for the all-electric ship[C]. ASME Turbo Expo, Barcelona, Spain, 2006, 5: 17-24. [5] 张安明. 电力系统研究中原动机及调速系统的模拟[D]. 北京: 清华大学, 2005. [6] 周德佳. 舰船综合全电力推进系统仿真研究[D]. 北京: 清华大学, 2005. [7] 王学君. 舰船电力系统励磁模拟与同步电动发电变频机组运行分析[D]. 北京: 清华大学, 2005. [8] Hodge C G. Modern applications of power electronics to marine propulsion systems[C]. Power Semiconductor Devices and ICs, 2002, 9-16. [9] Ferreira C L, Bucknall R W G. Modelling and real-time simulation of an advanced marine full- electrical propulsion system[C]. Power Electronics, Machines and Drives, 2004, 2: 574-579. [10] 刘鹏. 基于Matlab/Simulink的舰船电力推进四象限负载模拟系统的仿真研究[J]. 船电技术, 2011, 31(3): 38-41. Liu Peng. Simulation of 4-quadrant loading system for ship electric propulsion based on Matlab/Simulink [J]. Marine Electric & Electronic Engineering, 2011, 31(3): 38-41. [11] 周德佳, 王善铭, 柴建云. 基于Matlab-Simulink的舰船综合电力推进系统仿真[J]. 清华大学学报(自然科学版) , 2006, 46(4): 460-464. Zhou Dejia, Wang Shanming, Chai Jianyun. Simulation of an integrated electrical ship propulsion system using Matlab-Simulink[J]. Journal of Tsinghua Univer- sity (Science and Technology), 2006, 46(4): 460-464. [12] 林文立, 刘志刚, 沈茂盛, 等. 新型船舶综合全电力推进模拟实验系统研究[J]. 北京交通大学学报, 2006, 30(5): 109-112. Lin Wenli, Liu Zhigang, Shen Maosheng, et al. Research on novel vessel full electric propulsion lab_simulated system[J]. Journal of Beijing Jiaotong University, 2006, 30(5): 109-112. [13] 田颖, 李淑英, 孙聿峰. 柴-燃联合动力装置(CODAG)控制策略研究[J]. 武汉理工大学学报, 2010, 32(10): 96-98. Tian Ying, Li Shuying, Sun Yufeng. Research on the control strategy of combined diesel and gas turbine power plant[J]. Journal of Wuhan University of Technology, 2010, 32(10): 96-98. |
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