Abstract:Transmission lines always cross long distance. As different parts of a transmission line may confront different weather conditions at the same time, a piecewise equivalent model is introduced to calculate the outage rate. The transmission line is divided into segments in series according to their particular external environment and their corresponding outage rates. Then these segments are combined to form an integrated outage rate for the entire transmission line. Taken the uncertainty of weather forecast and system operating status into account, the analytical model between load and outage is converted into a fuzzy one. It contains fuzzy sets, membership functions and fuzzy “if-then” rules, to effectively solve the problems caused by inaccurate data. The new model is applied to IEEE RBTS system. Assuming that a specified transmission line confronts three types of external load pressure in different parts, the outrage rates of the transmission lines are calculated and compared. With the deterioration of the weather condition and system operating state, the outrage rates of the transmission lines increase. The proposed model provides of the foundation for operational risk assessments of transmission lines and power system reliability.
段杰, 王秀丽, 侯雨伸. 基于模糊专家系统的输电线路分段冰风荷载等效停运率模型[J]. 电工技术学报, 2016, 31(8): 220-228.
Duan Jie, Wang Xiuli, Hou Yushen. Piecewise Equivalent Model of Ice Disaster Impact on Outage Rate of Transmission Lines Using Fuzzy Expert System. Transactions of China Electrotechnical Society, 2016, 31(8): 220-228.
[1] 陆佳政, 张红先, 彭继文, 等. 基于皮尔逊Ⅲ型概率分布的湖南电网覆冰重现期计算[J]. 电工技术学报, 2013, 28(1): 80-86. Lu Jiazheng, Zhang Hongxian, Peng Jiwen, et al. Calculation of Hunan power grid icing recurrence interval based on pearson III type probability distribution[J].Transactions of China Electrotechnical Society, 2013, 28(1): 80-86. [2] 陆佳政, 蒋正龙, 雷红才, 等. 湖南电网2008年冰灾事故分析[J]. 电力系统自动化, 2008, 32(11): 16-19. Lu Jiazheng, Jiang Zhenglong, Lei Hongcai, et al. Analysis of Hunan power grid ice disaster accident in 2008[J]. Automation of Electric Power Systems, 2008, 32 (11): 16-19. [3] 张满, 蒋兴良, 舒立春, 等. 混合凇对分裂导线起晕电压影响[J]. 电工技术学报, 2015, 30(3): 258- 267. Zhang Man, Jiang Xingliang, Shu Lichun, et al. The influences of mixed-phase ice on corona inception voltage of bundle conductor[J]. Transactions of China Electrotechnical Society, 2015, 30(3): 258- 267. [4] 马丽叶, 贾彬, 卢志刚, 等. 基于静态安全性和实时供电能力的输电网安全等级研究[J]. 电工技术学报, 2014, 29(6): 229-238. Ma Liye, Jia Bin, Lu Zhigang, et al. Research on security classification of transmission network consi- dering static security and real-time power supply capability[J]. Transactions of China Electrotechnical Society, 2014, 29(6): 229-238. [5] Brostrom E, Ahlberg J, Soder L. Modelling of ice storms and their impact applied to a part of the Swedish transmission network[C]//Power Tech, IEEE Lausanne, 2007: 1593-1598. [6] 陆佳政, 张红先, 方针, 等. 湖南电力系统冰灾监测结果及其分析[J]. 电力系统保护与控制, 2009, 37(12): 99-105. Lu Jiazheng, Zhang Hongxian, Fang Zhen, et al. Mechanical result and its analysis of ice disaster monitoring of Hunan power system[J]. Power System Protection and Control, 2009, 37(12): 99-105. [7] Liu Haitao, Sun Yuanzhang, Cheng Lin, et al. Online short-term reliability evaluation using fast sorting technique[J]. IET Generation, Transmission & Distri- bution, 2008, 2(1): 139-148. [8] 陈永进, 任震, 黄雯莹. 考虑天气变化的可靠性评估模型与分析[J]. 电力系统自动化, 2004, 28(21): 17-21. Chen Yongjin, Ren Zhen, Huang Wenying. Model and analysis of power system reliability evaluation considering weather change[J]. Automation of Elec- tric Power Systems, 2004, 28(21): 17-21. [9] Billinton R, Wu Chenjian. Predictive reliability assessment of distribution systems including extreme adverse weather[C]//Conference on Electrical and Computer Engineering, 2001, 2(2): 719-724. [10] Billinton R, Singh G. Application of adverse and extreme adverse weather: modeling in transmission and distribution system reliability evaluation[J]. Proceedings of IEE Generation, Transmission and Distribution, 2006, 153(1): 115-120. [11] 何剑, 程林, 孙元章, 等. 计及天气预测的电力系统运行可靠性短期评估[J]. 电力系统保护与控制, 2010, 38(10): 31-38. He Jian, Cheng Lin, Sun Yuanzhang, et al. Power system short-term operational reliability evaluation considering weather forecast[J]. Power System Pro- tection and Control, 2010, 38(10): 31-38. [12] 孙荣富, 程林, 孙元章. 基于恶劣气候条件的停运率建模及电网充裕度评估[J]. 电力系统自动化, 2009, 33(13): 7-12. Sun Rongfu, Cheng Lin, Sun Yuanzhang. An outage rate model and system adequacy assessment based on adverse weather conditions[J]. Automation of Elec- tric Power Systems, 2009, 33(13): 7-12. [13] 邹欣, 孙元章, 程林. 基于模糊专家系统的输电线路非解析可靠性模型[J]. 电力系统保护与控制, 2011, 39(19): 13-20. Zou Xin, Sun Yuanzhang, Cheng Lin. Non-analytic reliability model of transmission lines based on fuzzy expert system[J]. Power System Protection and Control, 2011, 39(19): 13-20. [14] 韩卫恒, 刘俊勇, 张建明, 等. 冰冻灾害下计入地形及冰厚影响的分时段电网可靠性分析[J]. 电力系统保护与控制, 2010, 38(15): 81-86. Han Weiheng, Liu Junyong, Zhang Jianming, et al. Power system time-section reliability assessment analysis considering topography and icing under freezing disasterweather[J]. Power System Protection and Control, 2010, 38(15): 81-86. [15] 李文沅. 电力系统风险评估模型、方法和应用[M]. 北京: 科学出版社, 2006. [16] Lu C, Shen C. Estimation of sensitive equipment disruptions due to voltage sags[J]. IEEE Transactions on Power Delivery, 2007, 22(2): 1132-1137. [17] Shen C, Lu C. A voltage sag index considering compatibility between equipment and supply[J]. IEEE Transactions on Power Delivery, 2007, 22(2): 996-1002. [18] Li W, Zhou J, Xiong X. Fuzzy models of overhead power line weather-related outages[J]. IEEE Transactions on Power System, 2008, 23(3): 1529- 1531.