计及地区特点的分布式电源发展适用性评估

李冉, 韩旭, 曾鸣, 隆竹寒, 孙辰军

分布式能源 ›› 2016, Vol. 1 ›› Issue (2) : 14-20.

PDF(1402 KB)
PDF(1402 KB)
分布式能源 ›› 2016, Vol. 1 ›› Issue (2) : 14-20. DOI: 10.16513/j.cnki.10-1427/tk.2016.02.003
学术研究

计及地区特点的分布式电源发展适用性评估

作者信息 +

Applicability Evaluation for Development of Distributed Power Generation Considering Regional Characteristics

Author information +
文章历史 +

摘要

目前,能源资源短缺、环境污染及气候变化等问题日益突出,分布式发电成为有效化解传统能源日渐枯竭与能源利用效率低下以及以煤为主的能源结构与环境压力持续增大双重矛盾的重要途径。我国不同地区的分布式电源发展存在明显差异,为促进分布式电源健康有序发展,针对分布式电源的发展适用性,借助群组决策-反熵权组合法,构建了计及地区特点的分布式电源发展适用性综合评估模型。该模型综合考虑分布式电源的经济性、技术性、资源可用性、环境兼容性和社会性,兼顾主、客观信息。通过算例分析,评估了分布式电源的整体及局部发展适用性,表明所构建的综合评估模型是科学合理的,且具有较大的应用价值。

Abstract

Considering the increasing energy resources shortage, environmental pollution and climate change, distributed generation becomes an important way to effectively solve the contradiction in depletion of traditional energy, low efficiency of energy utilization, fossil fuel-dominated energy structure and intensive environmental pressure. The development of distributed generation is distinctively different in specific regions, for which an evaluation method is essential to promote the healthy and orderly development of distributed generation. The applicability evaluation model of distributed generation was built based on the combination of group decision and anti-entropy weight method considering regional characteristics. The model takes account in the subjective and objective factors such as the economy, technical feature, resource availability, environmental compatibility and sociality of the distributed generation. The instance analysis covers the applicability evaluation of overall and local distributed generation with certain scientific and rational nature in the planning and optimization of distributed generation.

关键词

分布式电源 / 发展适用性 / 综合评估 / 地区特点 / 反熵权法

Key words

distributed generation / developing applicability / comprehensive evaluation / regional characteristics / anti-entropy weight method

引用本文

导出引用
李冉, 韩旭, 曾鸣, . 计及地区特点的分布式电源发展适用性评估[J]. 分布式能源. 2016, 1(2): 14-20 https://doi.org/10.16513/j.cnki.10-1427/tk.2016.02.003
Ran LI, Xu HAN, Ming ZENG, et al. Applicability Evaluation for Development of Distributed Power Generation Considering Regional Characteristics[J]. Distributed Energy Resources. 2016, 1(2): 14-20 https://doi.org/10.16513/j.cnki.10-1427/tk.2016.02.003
中图分类号:     

参考文献

[1]
王进李欣然杨洪明,等. 与电力系统协同区域型分布式冷热电联供能源系统集成方案[J]. 电力系统自动化201438(16):16-21.
WANG Jin, LI Xinran, YANG Hongming, et al. An integration scheme for DES/CCHP coordinated with power system[J]. Automation of Electric Power Systems, 2014, 38(16):16-21.
[2]
李政义. 动态负荷下天然气冷热电联供系统运行优化[D]. 大连:大连理工大学,2011.
LI Zhengyi. Operation optimization of natural gas CCHP system under dynamic loads[D]. Dalian:Dalian University of Technology, 2011.
[3]
付学谦陈皓勇刘国特,等. 分布式电源电能质量综合评估方法[J]. 中国电机工程学报201425(3):4270-4276.
FU Xueqian, CHEN Haoyong, LIU Guote, et al. Power quality comprehensive evaluation method for distributed generation[J]. Proceedings of the CSEE, 2014, 25(3):4270-4276.
[4]
张立梅唐巍王少林,等. 综合考虑配电公司及独立发电商利益的分布式电源规划[J]. 电力系统自动化201135(4):23-28.
ZHANG Limei, TANG Wei, WANG Shaolin, et al. Distributed generators planning considering benefits for distributed power company and independent power suppliers[J]. Automation of Electric Power Systems, 2011, 35(4):23-28.
[5]
柳睿杨镜非程浩忠,等. 分布式电源并网的综合评价[J]. 电力系统及其自动化学报201325(1):34-39.
LIU Rui, YANG Jingfei, CHENG Haozhong, et al. Comprehensive evaluation of grid-connected distributed generation[J]. Proceedings of the CSU-EPSA, 2013, 25(1):34-39.
[6]
杨琦马世英宋云亭,等. 分布式电源规划方案综合评判方法[J]. 电网技术201236(2):212-216.
YANG Qi, MA Shiying, SONG Yunting, et al. Comprehensive evaluation of distributed generation planning scheme[J]. Power System Technology, 2012, 36(2):212-216.
[7]
林济铿李童飞赵子明,等. 基于熵权模糊综合评价模型的电力系统黑启动方案评估[J]. 电网技术201236(2):115-120.
LIN Jikeng, LI Tongfei, ZHAO Ziming, et al. Assessment on power system black-start schemes based on entropy-weighted fuzzy comprehensive evaluation model[J]. Power System Technology, 2012, 36(2):115-120.
[8]
梁凤宾. 分布式电源接入分析与评估系统的设计与实现[D]. 北京:北京交通大学,2015.
LIANG Fengbin. Analysis and design of evaluation system about the distributed generation access to distribution network[D]. Beijing:Beijing Jiaotong University, 2015.
[9]
朱红. 含分布式电源的配电网高效运行评估方法研究[D]. 北京:华北电力大学,2015.
ZHU Hong. Research on the evaluation method of the efficient operation in distribution grid considering the distributed generation[D]. Beijing:North China Electric Power University, 2015.
[10]
李钰龙. 分布式发电并网的综合评价研究[D]. 北京:华北电力大学,2015.
LI Yulong. Research on comprehensive evaluation of distributed generation grid-connected[D]. Beijing:North China Electric Power University, 2015.
[11]
马春艳刘惠康龚瑛. 基于改进熵权法的DPV电能质量评估[J]. 高压电器201652(5):192-198.
MA Chunyan, LIU Huikang, GONG Ying. Power quality assessment of distributed photovoltaic by improved entropy weight method[J]. High Voltage Apparatus, 2016, 52(5):192-198.
[12]
陈炽野文亚凤刘自发,等. 含有多种分布式电源的配电网综合评估方法[J]. 电力建设201536(1):128-135.
CHEN Chiye, WEN Yafeng, LIU Zifa, et al. Comprehensive evaluation method of distribution network including various types of distributed generation[J]. Electric Power Construction, 2015, 36(1):128-135.
[13]
陈晓光. 分布式电源接入对黑龙江配电网影响的综合评估研究[J]. 黑龙江电力201537(6):532-536.
CHEN Xiaoguang. Research on integrated evaluation of impact of connected distributed generation on Heilongjiang distribution Network[J]. Heilongjiang Electric Power, 2015, 37(6):532-536.
[14]
王瑞琪. 分布式发电与微网系统多目标优化设计与协调控制研究[D]. 济南:山东大学,2013.
WANG Riqi. Research on multi-objective optimization design and coordinated control of distributed generation and microgrid[D]. Jinan:Shandong University, 2013.
[15]
游宇堃. 分布式电源的优化规划研究[D]. 南昌:南昌大学,2014.
YOU Yukun. Optimal planning of distribution generation[D]. Nanchang:Nanchang University, 2014.
[16]
娄宁娜毛弋黄媛玉. 基于改进人工蜂群算法的分布式电源规划[J]. 湖南师范大学自然科学学报201639(3):56-61.
LOU Ningna, MAO Yi, HUANG Yuanyu. The planning of distributed generation based on improved artificial bee colony algorithm[J]. Journal of Natural Science of Hunan Normal University, 2016, 39(3):56-61.
[17]
翟晓燕张新政. 群组决策中判断的一致性协调与方案排序[J]. 系统工程200422(12):96-100.
ZHAI Xiaoyan, ZHANG Xinzheng. Consistency coordination for judgment and the projects ranking in the group decision making[J]. Systems Engineering, 2004, 22(12):96-100.
[18]
罗毅李昱龙. 基于熵权法和灰色关联分析法的输电网规划方案综合决策[J]. 电网技术201337(1):77-81.
LUO Yi, LI Yulong. Comprehensive decision-making of transmission network planning based on entropy weight and grey relational analysis[J]. Power System Technology, 2013, 37(1):77-81.
[19]
欧阳森石怡理. 改进熵权法及其在电能质量评估中的应用[J]. 电力系统自动化201337(21):156-159.
OUYANG Sen, SHI Yili. A new improved entropy method and its application in power quality evaluation[J]. Automation of Electric Power Systems, 2013, 37(21):156-159.
[20]
张海瑞韩冬刘玉娇,等. 基于反熵权法的智能电网评价[J]. 电力系统保护与控制201240(11):24-29.
ZHANG Hairui, HAN Dong, LIU Yujiao, et al. Smart grid evaluation based on anti-entropy weight method[J]. Power System Protection and Control, 2012, 40(11):24-29.
[21]
石正. 智能电网建设中分布式电源的规划探究[J]. 科技传播201628(15):141-148.
SHI Zheng. Research on the planning of distributed generation in smart grid construction[J]. Public Communication of Science & Technology, 2016, 28(15):141-148.

基金

国家电网公司科技项目(分布式电源发展适用性策略分析及评估研究)
中央高校基本科研业务费专项资金资助项目(2016XS84)

PDF(1402 KB)

Accesses

Citation

Detail

段落导航
相关文章

/