[1] 胡兆光.电力建设必须同经济发展相协调[J]. 宏观经济研究,2004(7):12-13. HU Zhao-guang. Electric construction should coordination with economic development [J]. Macroeconomics, 2004(7): 12-13. [2] LAZZARETTO A, TOFFOLO A. Energy, economy and environment as objectives in multi-criterion optimization of thermal systems design [J]. Energy, 2004(29): 1139-1157. [3] 张福伟,耿兴初. 电力与社会协调持续发展评估[J]. 中国电力,2001,34(4):1-4. ZHANG Fu-wei, GENG Xing-chu. Evaluation on sustainable development of electric power assort with society[J]. Electric Power, 2001, 34(4): 1-4. [4] 任玉珑,黄磊,徐富平. 电网建设和社会经济协调发展的DEA评价研究[J]. 生态经济,2007(11):79-80. REN Yu-long, HUANG Lei, XU Fu-ping. A study on DEA evaluation for synergetic development between social economic growth and electricity distribution[J]. Ecological Economy, 2007(11): 79-80. [5] 梁广华. 能源与经济增长的关系研究[J]. 中国电力,2012,45(10):22-26. LIANG Guang-hua. Research of economic growth based on energy constraint [J]. Electric Power, 2012, 45(10): 22-26. [6] 杨卫红,蔡琦,何永秀,等. 北京电网发展与经济发展协调性评价[J]. 华东电力,2009,37(10):1627-1630. YANG Wei-hong, CAI Qi, HE Yong-xiu. Evaluation of coordination between grid development and economy development in Beijing[J]. East China Electric Power, 2009, 37(10): 1627-1630. [7] 熊威,戴爱英,杨卫红,等. 天津电网发展与经济发展协调性分析[J]. 电力建设,2010,31(7):41-45. XIONG Wei, DAI Ai-ying, YANG Wei-hong, et al . Analysis on the development synergy of Tianjin Power grid and economy [J]. Electric Power Construction, 2010, 31(7): 41-45. [8] 赵会茹,崔博,李春杰. 农村地区电力普遍服务与社会经济可持续发展协调性研究[J]. 华北电力大学学报:社会科学版,2008(1):1-6. ZHAO Hui-ru, CUI Bo, LI Chun-jie. Study on the evaluation of harmony degree between rural electric power universal service and social economic growth[J]. Journal of North China Electric Power University: Social Sciences, 2008(1): 1-6. [9] 林齐宁编. 决策分析[M]. 北京:北京邮电大学出版社,2003. [10] 张先起,梁川. 基于熵权的模糊物元模型在水质综合评价中的应用[J]. 水利学报,2005,36(9):1057-1061. ZHANG Xian-qi, LIANG Chuan. Application of fuzzy matter- element model based on coefficients of entropy in comprehensive evaluation of water quality[J]. Journal of Hydraulic Engineering,2005, 36(9): 1057-1061. [11] 安相华,冯毅雄,谭建荣. 基于Choquet积分与证据理论的产品方案协同评价方法[J]. 浙江大学学报:工学版,2012,46(1):163-169. AN Xiang-hua, FENG Yi-xiong, TAN Jian-rong. Collaborative evaluation method for product concept based on choquet integral and evidence theory [J]. Journal of Zhejiang University (Engineering Science), 2012, 46(1): 163-169. [12] 马丽,张建华,刘念,等. 城市配电网规划方案的多阶段综合评估方法[J]. 中国电力,2013,46(11):150-154. MA Li, ZHANG Jian-hua, LIU Nian, et al . Multistage comprehensive evaluation of urban power distribution network planning [J]. Electric Power, 2013, 46(11): 150-154. [13] 贾德香,韩净. 燃气发电的发展及其对电网调峰和经济性影响研究[J]. 中国电力,2013,46(7):149-152. JIA De-xiang, HAN Jing. Development planning of natural gas power generation and its influence on power system’s peak load regulation and economy [J]. Electric Power, 2013, 46(7): 149-152. [14] 谢楚,张焰,黄一超. 可靠性成本/效益分析方法在实际电网中的应用[J]. 中国电力,2013,46(5):106-114. XIE Chu, ZHANG Yan, HUANG Yi-chao. Application of reliability cost-benefit analytical method in power grid [J]. Electric Power, 2013, 46(5): 106-114. [15] 杨方,王文迪,葛旭波,等. 我国智能电网发展格局及综合评价[J]. 中国电力,2012,45(12):81-85. YANG Fang, WANG Wen-di, GE Xu-bo, et al . Comprehensive assessment on development patterns of smart grid in china[J].Electric Power, 2012, 45(12): 81-85. [16] 何大愚. 智能电网发展历程中的问题、成效及其思考[J]. 中国电力,2012,45(8):37-40. HE Da-yu. Thinking on problems and achievements in smart-grid development [J]. Electric Power, 2012, 45(8): 37-40. [17] 丁道齐,祁维武. 中国智能电网的实现:挑战、问题和行动[J].中国电力,2011,44(11):1-7. DING Dao-qi, QI Wei-wu. Implementation of the smart grid in China: challenges, issues, and actions[J]. Electric Power, 2011, 44(11): 1-7. [18] 孙寿广. 低碳经济对电网规划和发展的影响[J]. 中国电力,2010,43(3):1-4. SUN Shou-guang. Impact of low-carbon economy on planning and development of power grid [J]. Electric Power, 2010, 43(3): 1-4. [19] 魏庆海. 基于能源战略的黑龙江电网发展目标[J]. 中国电力,2010,43(3):5-8. WEI Qing-hai. Development of heilongjiang power grid based on energy resources strategy [J]. Electric Power, 2010, 43(3): 5-8. [20] 李金超,牛东晓,李金颖. 智能电网发展影响因素的解释结构模型分析[J]. 电力建设,2012,33(9):1-5. LI Jin-chao, NIU Dong-xiao, Li Jin-ying. Analysis of smart grid development influencing factors based on interpretative structural model [J]. Electric Power Construction, 2012, 33(9): 1-5. |