Economic Operation Technology of Integrated Community Energy System Considering Environmental Protection and Reliability Cost

ZANG Baozhi,WU Changlong,ZHU Hongguang,WEI Shen,GAO Jianhong,SUN Yi

Distributed Energy ›› 2020, Vol. 5 ›› Issue (4) : 18-27.

PDF(1818 KB)
PDF(1818 KB)
Distributed Energy ›› 2020, Vol. 5 ›› Issue (4) : 18-27. DOI: 10.16513/j.2096-2185.DE.2006003
Integrated Energy Column

Economic Operation Technology of Integrated Community Energy System Considering Environmental Protection and Reliability Cost

Author information +
History +

Abstract

For a long time, energy has been a hot and difficult issue in China's economic development, solving energy shortage and environmental pollution plays an important role in realizing sustainable development. With the development of multi energy complementary and collaborative planning technology, multi energy coupling has become the most extensive energy supply mode of the integrated community energy system. How to improve the operation efficiency of the integrated energy system is the main research direction in the future, so it is very important to study the economic operation technology of the integrated community energy system under the premise of environmental protection and energy supply reliability. Firstly, this paper summarized the integrated energy system and operation optimization method, and puts forward the mathematical model of micro grid source and multi energy coupling unit; Secondly, considering the optimal comprehensive cost, the minimum environmental impact and the most reliable operation of the system, the typical objective functions and constraints of the integrated community energy system optimization model were summarized. The NSGA-II and multi-objective particle swarm optimization model solving algorithms were summarized, and the effectiveness of the modeling and optimization methods was verified by simulation examples. Finally, the paper summarized and prospected the operation optimization of the integrated community energy system.

Key words

integrated community energy system (ICES) / multi-energy coordination / operation optimization / modeling theory

Cite this article

Download Citations
Baozhi ZANG , Changlong WU , Hongguang ZHU , et al . Economic Operation Technology of Integrated Community Energy System Considering Environmental Protection and Reliability Cost[J]. Distributed Energy Resources. 2020, 5(4): 18-27 https://doi.org/10.16513/j.2096-2185.DE.2006003

References

[1]
郭帅,任洪波,吴琼. 区域综合能源系统规划设计及评价研究综述 [J]. 上海节能2019, 364(4): 245-250.
GUO Shuai, REN Hongbo, WU Qiong. A review of planning, design and evaluation of regional integrated energy systems[J]. Shanghai Energy Conservation, 2019, 364(4): 245-250.
[2]
韩中合,祁超,向鹏,等. 分布式能源系统效益分析及综合评价[J]. 热力发电2018, 47(2): 31-36.
HAN Zhonghe, QI Chao, XIANG Peng, et al. Benefit analysis and comprehensive evaluation for distributed energy system[J]. Thermal Power Generation, 2018, 47(2): 31-36.
[3]
宫飞翔,李德智,田世明,等. 综合能源系统关键技术综述与展望[J]. 可再生能源2019, 37(8): 1229-1235.
GONG Feixiang, LI Dezhi, TIAN Shiming, et al. Review and prospect of core technologies of integrated energy system[J]. Renewable Energy Resources, 2019, 37(8): 1229-1235.
[4]
韩宇,彭克,王敬华,等. 多能协同综合能源系统协调控制关键技术研究现状与展望[J]. 电力建设2018, 39(12): 81-87.
HAN Yu, PENG Ke, WANG Jinghua, et al. Research status and prospect of key technologies for coordinated control of multi-energy synergic integrated energy systems[J]. Electric Power Construction, 2018, 39(12): 81-87.
[5]
程林,张靖,黄仁乐,等. 基于多能互补的综合能源系统多场景规划案例分析[J]. 电力自动化设备2017, 37(6): 282-287.
CHENG Lin, ZHANG Jing, HUANG Renle, et al. Case analysis of multi-scenario planning based on multi-energy complementation for integrated energy system[J]. Electric Power Automation Equipment, 2017, 37(6): 282-287.
[6]
乔彦哲,颜宁,马少华,等. 考虑多能互补的综合能源系统联合规划及发展综述[J]. 电器与能效管理技术2019(19): 15-22.
QIAO Yanzhe, YAN Ning, MA Shaohua, et al. Summary of joint planning and development of integrated energy system considering multi-energy complementarity[J]. Electrical & Energy Management Technology, 2019(19): 15-22.
[7]
ALMASSALKHI M R, TOWLE A. Enabling city-scale multi-energy optimal dispatch with energy hubs[C]//Proceedings of the 2016 Power Systems Computation Conference (PSCC), Genoa, 2016: 1-7.
[8]
施泉生,丁建勇,刘坤,等. 含电、气、热3种储能的微网综合能源系统经济优化运行[J]. 电力自动化设备2019, 39(8): 269-276, 293.
SHI Quansheng, DING Jianyong, LIU Kun, et al. Economic optimal operation of microgrid integrated energy system with electricity, gas and heat storage[J]. Electric Power Automation Equipment, 2019, 39(8): 269-276, 293.
[9]
李阳,郇嘉嘉,曹华珍,等. 基于综合能源协同优化的配电网规划策略[J]. 电网技术2018, 42(5): 1393-1400.
LI Yang, HUAN Jiajia, CAO Huazhen, et al. Distribution network planning strategy based on integrated energy collaborative optimization[J]. Power System Technology, 2018, 42(5): 1393-1400.
[10]
刁涵彬,李培强,王继飞,等. 考虑电/热储能互补协调的综合能源系统优化调度[J/OL]. 电工技术学报2020[2020-08-18]. 10.19595/j.cnki.1000-6753.tces.191340.
DIAO Hanbin, LI Peiqiang, WANG Jifei, et al. Optimal dispatch of integrated energy system considering complementary coordination of electric/thermal energy storage[J/OL]. Trans-actions of China Electrotechnical Society, 2020[2020-08-18]. 10.19595/j.cnki.1000-6753.tces.191340.
[11]
黄伟,柳思岐,叶波,等. 基于电-热-气混合潮流的园区综合能源系统站-网协同规划[J]. 电力建设2019, 40(11): 73-86.
HUANG Wei, LIU Siqi, YE Bo, et al. Station-network collaborative planning based on power-heat-gas multi-energy flow of RIES[J]. Electric Power Construction, 2019, 40(11): 73-86.
[12]
黄子硕,何桂雄,闫华光,等. 园区级综合能源系统优化模型功能综述及展望[J]. 电力自动化设备2020, 40(1): 10-18.
HUANG Zishuo, HE Guixiong, YAN Huaguang, et al. Overview and prospect of optimization model function for community-scale integrated energy system[J]. Electric Power Automation Equipment, 2020, 40(1): 10-18.
[13]
蒋超凡,艾欣. 面向工业园区的综合能源系统协同规划方法研究综述[J]. 全球能源互联网2019, 2(3): 255-265.
JIANG Chaofan, AI Xin. Review on integrated energy system collaborative planning methods for industrial parks[J]. Journal of Global Energy Interconnection, 2019, 2(3): 255-265.
[14]
王丽明. 基于粒子群算法的孤岛微电网优化调度研究[J]. 电工技术2020(4): 55-57.
WANG Liming. Research on optimization dispatching of island microgrid based on PSO[J]. Electric Engineering, 2020(4): 55-57.
[15]
周灿煌,郑杰辉,荆朝霞,等. 面向园区微网的综合能源系统多目标优化设计[J]. 电网技术2018, 42(6): 1687-1697.
ZHOU Canhuang, ZHENG Jiehui, JING Zhaoxia, et al. Multi- objective optimal design of integrated energy system for park-level microgrid[J]. Power System Technology, 2018, 42(6): 1687-1697.
[16]
雷金勇,于力,郭晓斌,等. 考虑电热气耦合的综合能源系统规划方法[J]. 电力系统及其自动化学报2019, 31(1): 19-24.
LEI Jinyong, YU Li, GUO Xiaobin, et al. Planning method for integrated energy system with the consideration of coupling among power, heat, and gas[J]. Proceedings of the CSU-EPSA, 2019, 31(1): 19-24.
[17]
国网天津市电力公司,国家电网公司. 一种多源耦合的综合能源系统规划方法:CN201710854102.3[P]. 2018-02-06.
[18]
王杰,刘念. 多主体综合能源系统分布式优化运行方法[J]. 南方电网技术2018, 12(3): 98-104, 115.
WANG Jie, LIU Nian. Distributed optimal operation method of integrated energy system with multi-agents[J]. Southern Power System Technology, 2018, 12(3): 98-104, 115.
[19]
陈胜,卫志农,孙国强,等. 电-气互联综合能源系统安全分析与优化控制研究综述[J]. 电力自动化设备2019, 39(8): 3-11.
CHEN Sheng, WEI Zhinong, SUN Guoqiang, et al. Review on security analysis and optimal control of electricity-gas integrated energy system[J]. Electric Power Automation Equipment, 2019, 39(8): 3-11.
[20]
许小青. 多能互补微电网的优化调度研究[D]. 西安:西安理工大学,2016.
XU Xiaoqing. Research on optimal scheduling of microgrid containing multiple micro sources[D]. Xi'an: Xi'an University of Technology, 2016.
[21]
齐世雄,王秀丽,邵成成,等. 计及弹性恢复的区域综合能源系统多目标优化调度[J]. 中国电力2019, 52(6): 19-26.
QI Shixiong, WANG Xiuli, SHAO Chengcheng, et al. Multi-objective optimal dispatch of district integrated energy system considering resilience[J]. Electric Power, 2019, 52(6): 19-26.
[22]
陈思宇,柴庆宣,李延松,等. 综合能源系统潮流及最优潮流计算模型与方法综述[J/OL]. 热力发电2020, 49(7): 1-12, 20.
CHEN Siyu, CHAI Qingxuan, LI Yansong, et al. Models and methods of power flow and optimal power flow calculation for integrated energy system: A review[J/OL]. Thermal Power Generation, 2020, 49(7): 1-12, 20.
[23]
孙强,高松,谢典,等. 协调可靠性与经济性的园区综合能源系统优化规划[J]. 电力系统及其自动化学报2020, 32(4): 76-82.
SUN Qiang, GAO Song, XIE Dian, et al. Optimum planning for integrated community energy system with coordination of reliability and economy[J]. Proceedings of the CSU-EPSA, 2020, 32(4): 76-82.
[24]
殷新建. 冷热电联供型微电网多目标优化调度研究[D]. 青岛:青岛大学,2018.
YIN Xinjian. Research on multi-objective optimal scheduling of the CCHP micro-grid[D]. Qingdao: Qingdao University, 2018.
[25]
袁桂丽,董金凤,魏更,等. 基于需求响应和多能互补的冷热电联产微网优化调度[J]. 电力建设2019, 40(9): 64-72.
YUAN Guili, DONG Jinfeng, WEI Geng, et al. Optimal scheduling of combined cooling heating and power microgrid based on demand response and multi-energy coordination[J]. Electric Power Construction, 2019, 40(9): 64-72.
[26]
王丹,孟政吉,贾宏杰,等. 基于配置-运行协同优化的分布式能源站选型与定容规划[J]. 电力自动化设备2019, 39(8): 152-160.
WANG Dan, MENG Zhengji, JIA Hongjie, et al. Siting and sizing planning for distributed energy station based on coordinated optimization of configuration and operation[J]. Electric Power Automation Equipment, 2019, 39(8): 152-160.
[27]
李宏仲,房宇娇,肖宝辉. 考虑广义储能的区域综合能源系统优化运行研究[J]. 电网技术2019, 43(9): 3130-3138.
LI Hongzhong, FANG Yujiao, XIAO Baohui. Research on optimized operation of regional integrated energy system considering generalized energy storage[J]. Power System Technology, 2019, 43(9): 3130-3138.
[28]
杨文英,刘洋,郭久威,等. 电器多目标优化方法综述[J]. 电器与能效管理技术2018(18): 1-7.
YANG Wenying, LIU Yang, GUO Jiuwei. Overview on multi-objective optimization methods of electric apparatus[J]. Electrical & Energy Management Technology, 2018(18): 1-7.
[29]
周灿煌. 区域综合能源系统的规划与运行优化研究[D]. 广州:华南理工大学,2018.
ZHOU Canhuang. Optimal planning and operation of district integrated energy system[D]. Guangzhou: South China University of Technology, 2018.

Funding

Project supported by State Grid Corporation Science and Technology Project "Research on Key Technologies of Coordinated Planning and Operation of Integrated Energy System Based on Optimal Energy Efficiency"(520605190010)
PDF(1818 KB)

Accesses

Citation

Detail

Sections
Recommended

/