The Variation Law of Synchronous Reactance along with the Operation Condition of Dual-Excited Synchronous Generator
Xu Guorui1, Hu Yiping1, Li Weili2, Luo Yingli1, Liu Xiaofang1
1. School of Eletrical and Electronic Engineering North China Electric Power UniversityBeijing 102206 China; 2. School of Electrical Engineering Beijing Jiaotong University Beijing 100044 China
Abstract:The high stability of dual excited synchronous generator (DESG) is of great importance for building high reliability of power grid and guaranteeing the power supply of crucial region. However, DESG with a set of two-phase field windings is different from the traditional synchronous generator (TSG) on the magnetic circuit structure and synchronous reactance. In this paper, the time-stepping finite element model of DESG is established. The saturation characteristics and magnetic distributions of DESG are compared with those of TSG. Then, the synchronous reactance of DESG is calculated by two methods. The differences of synchronous reactance of DESG with single and dual-excitation mode are studied under different operating conditions. The variation law of synchronous reactance along with the power angle is studied by taking the axis of field winding and the position of the synthetic excitation magnetomotive force (MMF) as the direct axis. The simulation results are verified by the experiments of model machine. It is shown that the synchronous reactance of DESG is smaller than that of TSG. The different direct axis positions will result in different variation law of synchronous reactance along with the power angle.
许国瑞, 胡一平, 李伟力, 罗应立, 刘晓芳. 双轴励磁同步电机同步电抗随运行工况的变化规律[J]. 电工技术学报, 2020, 35(2): 236-245.
Xu Guorui, Hu Yiping, Li Weili, Luo Yingli, Liu Xiaofang. The Variation Law of Synchronous Reactance along with the Operation Condition of Dual-Excited Synchronous Generator. Transactions of China Electrotechnical Society, 2020, 35(2): 236-245.
[1] Shakaryan Y, Sokur P.Experience in the development and operation of asynchronized turbogenerators and condensers in the russian power system[J]. Archives of Electrical Engineering, 2015, 64(1): 7-15. [2] Kuzmin V V, Shpatenko T V.Experience in deve- lopment and use of asynchronized turbogenerators made by elektrotyazhmash[J]. Russian Electrical Engineering, 2010, 81(N2): 54-57. [3] Agarwal H C, Kapoor S C.Power system dynamic studies for improved stability and minimum rotor heating via graph-theoretic modelling of a dual- excited synchronous generator[J]. IEEE Transactions on Power Apparatus & Systems, 2006, 94(2): 177-186. [4] Antonyuk O V, Kadi-Ogly I A, Pinchuk N D, et al. Asynchronized turbogenerators projected and released by a power machine company[J]. Russian Electrical Engineering, 2010, 2(81): 67-72. [5] 梁艳萍. 汽轮发电机饱和同步电抗的波动[J]. 电机与控制学报, 1998, 2(3): 40-42. Liang Yanping.Oscillation of saturated synchronous reactance of turbo generator[J]. Transactions of China Electro Technical Society, 1998, 2(3): 40-42. [6] 刘晓芳, 蒙亮, 罗应立, 等. 同步发电机d-q轴饱和特性曲线族[J]. 中国电机工程学报, 2002, 22(2): 69-73. Liu Xiaofang, Meng Liang, Luo Yingli, et al.The saturation curve series of synchronous generators[J]. Proceedings of the CSEE, 2002, 22(2): 69-73. [7] 戈宝军, 殷继伟, 陶大军, 等. 基于励磁与调速控制的单机无穷大系统场-路-网时步有限元建模[J]. 电工技术学报, 2017, 32(3): 139-148. Ge Baojun, Yin Jiwei, Tao Dajun, et al.Modeling of field-circuit-network coupled time- stepping finite element for one machine infinite bus system based on excitation and speed control[J]. Transactions of China Electro Technical Society, 2017, 32(3): 139-148. [8] 薛易, 李伟力, 王立坤. 转子导磁导电槽楔材料对汽轮发电机参数和转子表面损耗影响的研究[J]. 中国电机工程学报, 2015, 35(7): 1768-1774. Xue Yi, Li Weili, Wang Likun.Study on influences of magnetic and electric conductive slot wedges on parameters of turbo-generators and losses on rotor surface[J]. Proceedings of the CSEE, 2015, 35(7): 1768-1774. [9] 李桂芬, 戈宝军, 李金香, 等. 大型发电机机网动态分析的机-场-路-网耦合时步有限元方法建模[J]. 中国电机工程学报, 2014, 34(36): 6476-6484. Li Guifen, Ge Baojun, Li Jinxiang, et al.Modeling of mechanical shaft-field-circuit-network coupled time- step finite element method for dynamic analysis of large machine and power network[J]. Proceedings of the CSEE, 2014, 34(36): 6476-6484. [10] 李和明, 张健, 刘明基, 等. 基于时步有限元的永磁同步电机稳态参数改进计算方法[J]. 电工技术学报, 2012, 27(4): 35-41. Li Heming, Zhang Jian, Liu Mingji, et al.An improved calculation method for steady-state parameters of PMSM with T-S FEM[J]. Transactions of China Electrotechnical Society, 2012, 27(4): 35-41. [11] 王伟华, 王红宇, 许国瑞, 等. 基于时步有限元的抽水蓄能电机瞬态参数计算方法的对比[J]. 电工技术学报, 2015, 30(1): 89-97. Wang Weihua, Wang Hongyu, Xu Guorui, et al.Research on operation of turbine generator con- sidering saturation and magnetic field distortion[J]. Transactions of China Electrotechnical Society, 2015, 30(1): 89-97. [12] 康锦萍, 徐英辉, 刘晓芳, 等. 计及双因素非线性影响的汽轮发电机同步电抗的计算方法[J]. 中国电机工程学报, 2014, 34(33): 5941-5947. Kang Jinping, Xu Yinghui, Liu Xiaofang, et al.A calculation method for synchronousreactances of turbine generators considering two factors affecting nonlinear characteristics[J]. Proceedings of the CSEE, 2014, 34(33): 5941-5947. [13] 应黎明, 陈允平, 陈明榜. 异步化同步发电机转子励磁的模糊PID控制[J]. 中国电机工程学报, 2006, 26(17): 163-168. Ying Liming, Chen Yunping, Chen Mingbang.Fuzzy PID control of rotor current excitation in an asynchronized synchronous generator[J]. Proceedings of the CSEE, 2006, 26(17): 163-168. [14] 季海波, 陈欢, 王冰, 等. 双轴励磁同步发电机非线性鲁棒自适应控制[J]. 电机与控制学报, 2005, 9(1): 20-24. Ji Haibo, Chen Huan, Wang Bing, et al.Robust adaptive control of dual-excited synchronous gener- ator[J]. Electric Machines and Control, 2005, 9(1): 20-24. [15] Xu Guorui, Hu Yiping, Hao Xiajing.The relationship of magneto motive force under different excitation modes of dual-excited synchronous generator[J]. IEEE Transactions on Magnetics, 2018, 54(3), 8200704. [16] 许国瑞, 汤涌, 刘晓芳, 等. 汽轮发电机不同模型小扰动特性[J]. 电工技术学报, 2013, 28(9): 302-309. Xu Guorui, Tang Yong, Liu Xiaofang, et al.Small disturbance characteristics of the different turbine generator models[J]. Transactions of China Electro- technical Society, 2013, 28(9): 302-309. [17] 许国瑞, 王红宇, 刘晓芳, 等. 同步发电机不同实用模型的大扰动特性对比研究[J]. 中国电机工程学报, 2012, 32(24): 67-73, 12. Xu Guorui, Wang Hongyu, Liu Xiaofang, et al.Comparison of large disturbance characteristics of different generator practical models[J]. Proceedings of the CSEE, 2012, 32(24): 67-73, 12. [18] 康锦萍, 刘晓芳, 罗应立, 等. 不同容量汽轮发电机负载非线性特性的对比研究[J]. 中国电机工程学报, 2009, 29(24): 73-77. Kang Jinping, Liu Xiaofang, Luo Yingli, et al.Research on the nonlinear load characteristics of different capacity turbine generators[J]. Proceedings of the CSEE, 2009, 29(24): 73-77. [19] 梁艳萍, 侯宇. 转子磁路结构对汽轮发电机同步电抗的影响[J]. 电机与控制学报, 2013, 17(7): 34-39. Liang Yanping, Hou Yu.Influence of rotor magnetic circuit structure on synchronous reactance of turbo- generator[J]. Electric Machines and Control, 2013, 17(7): 34-39. [20] 汤蕴璆, 张奕黄, 范瑜. 交流电机动态分析[M]. 北京: 机械工业出版社, 2008.