含深冷液化空气储能的综合能源系统低碳经济调度Low-carbon economic dispatch of integrated energy system with LAES
阿热帕提·艾尼瓦尔,陈洁,廖跃洪,杨彦飞
摘要(Abstract):
研究多能源联合供应的综合能源系统对实现我国碳达峰和碳中和的目标有重大的意义。消纳新能源和多种能源互补是深冷液化空气储能(cryogenic liquid air energy storage,LAES)系统的重要优势,为了提升综合能源系统的灵活性和可靠性,并且能够消纳更多的新能源,首先将LAES系统加入综合能源系统中,建立含LAES的综合能源系统,搭建系统的数学模型;然后以系统最小化运行成本为目标,以实际负荷数据为基础,构建了综合能源系统的经济性调度优化模型;最后通过MATLAB对系统进行仿真,并且调用商用软件CPLEX进行优化,从而验证综合能源系统规划的可行性。仿真结果表明,加入新型储能设备后,提高了综合能源系统的经济效益、新能源消纳率、一次能源节约率及碳减排量,同时能够平稳地应对能源价格的波动。
关键词(KeyWords): 深冷液化空气储能;综合能源系统;多能联供;新能源消纳;经济性运行;低碳运行
基金项目(Foundation): 新疆维吾尔自治区自然科学基金(2019D01C78)~~
作者(Author): 阿热帕提·艾尼瓦尔,陈洁,廖跃洪,杨彦飞
DOI: 10.19666/j.rlfd.202109187
参考文献(References):
- [1]王宪恩,赵思涵,刘晓宇,等.碳中和目标导向的省域消费端碳排放减排模式研究--基于多区域投入产出模型[J].生态经济,2021,37(5):43-50.WANG Xian’en,ZHAO Sihan,LIU Xiaoyu,et al.Carbon neutrality oriented provincial consumption-based carbon emission reduction models:based on the multi-regional input-output model[J].Ecological Economy,2021,37(5):43-50.
- [2]李熙春.能源互联网中储能系统商业模式及典型案例分析[J].储能科学与技术,2021,10(5):1869-1870.LI Xichun.Business model and typical case analysis of energy storage system in energy internet[J].Energy Storage Science and Technology,2021,10(5):1869-1870.
- [3]方陈,张宇,廖望,等.区域能源互联网多能协同优化中的储能效益评估[J].电力建设,2021,42(5):48-56.FANG Chen,ZHANG Yu,LIAO Wang,et al.Benefit evaluation of energy storage in multi-energy collaborative optimization of regional energy internet[J].Electric Power Construction,2021,42(5):48-56.
- [4]王永真,康利改,张靖,等.综合能源系统的发展历程、典型形态及未来趋势[J].太阳能学报,2021,42(8):84-95.WANG Yongzhen,KANG Ligai,ZHANG Jing,et al.Development history,typical form and future trend of integrated energy system[J].Acta Energiae Solaris Sinica,2021,42(8):84-95.
- [5]王威,李润秋,张鹭,等.计及多类型电储能的综合能源系统优化运行对比分析研究[J].电网与清洁能源,2020,36(2):110-116.WANG Wei,LI Runqiu,ZHANG Lu,et al.Comparative analysis and research on optimal operation of the integrated energy system considering multi-type electrical storage[J].Advances of Power System&Hydroelectric Engineering,2020,36(2):110-116.
- [6]杨舒婷,曹哲,时珊珊,等.考虑不同利益主体的储能电站经济效益分析[J].电网与清洁能源,2015,31(5):89-93.YANG Shuting,CAO Zhe,SHI Shanshan,et al.Analysis on economic benefits of storage power station considering different interest-subjects[J].Advances of Power System&Hydroelectric Engineering,2015,31(5):89-93.
- [7]卢操,管霖,陈恒安,等.考虑储能调度的可再生能源独立微电网电源规划[J].电测与仪表,2021,58(4):84-91.LU Cao,GUAN Lin,CHEN Heng’an,et al.Generation planning for renewable energy isolated micro-grid considering energy storage dispatching[J].Electrical Measurement and Instrumentation,2021,58(4):84-91.
- [8]杨天蒙,韩震焘,史喆,等.能源互联网系统中复合储能协调优化配置方法研究[J].电测与仪表,2021,58(5):8-13.YANG Tianmeng,HAN Zhentao,SHI Zhe,et al.Coordinated optimal configuration method of hybrid energy storage in energy internet system[J].Electrical Measurement and Instrumentation,2021,58(5):8-13.
- [9]徐桂芝,宋洁,王乐,等.深冷液化空气储能技术及其在电网中的应用分析[J].全球能源网,2018,1(3):330-337.XU Guizhi,SONG Jie,WANG Le,et al.Cryogenic liquefied air energy storage technology and application analysis in power grid[J].Global Energy Network,2018,1(3):330-337.
- [10]滕婕,杨德州,贾春蓉,等.基于深冷液化空气储能的风电消纳策略研究[J].电力电容器与无功补偿,2020,41(5):180-186.TENG Jie,YANG Dezhou,JIA Chunrong,et al.Study on wind power absorption strategy based on cryogenic liquefied air energy storage[J].Power Capacitor and Reactive Power Compensation,2020,41(5):180-186.
- [11]李广阔,陈来军,谢毓广,等.考虑压缩空气储能变工况特性的风储联合系统运行优化策略[J].高电压技术,2020,46(2):511-518.LI Kuanguang,CHEN Laijun,XIE Yuguang,et al.Coordinated optimization strategies of wind-storage hybrid system considering off-design characteristics of compressed air energy storage[J].High Voltage Technology,2020,46(2):511-518.
- [12]梁丹曦,邓占锋,崔双双,等.液化空气储能系统参与电网调频的动态特性研究[J].热力发电,2020,49(8):104-110.LIANG Danxi,DENG Zhanfeng,CUI Shuangshuang,et al.Dynamic characteristics of liquefied air energy storage system participating in frequency regulation of power grid[J].Thermal Power Generation,2020,49(8):104-110.
- [13]蔡悠然,李景翠,刘辉,等.压缩空气储能与吸收式制冷联合运行系统及其分析[J].中国电机工程学报,2018,38(1):186-194.CAI Youran,LI Jingcui,LIU Hui,et al.Exergy analysis of compressed air energy storage system combined with absorption chiller[J].Proceedings of the CSEE,2018,38(1):186-194.
- [14]YAO E,WANG H,WANG L,et al.Thermo-economic optimization of a combined cooling,heating and power system based on small-scale compressed air energy storage[J].Energy Conversion&Management,2016,118:377-386.
- [15]黄葆华,葛俊,倪经纬,等.深冷液化空气储能系统的关键因素影响规律[J].西安科技大学学报,2019,39(4):672-680.HUANG Baohua,GE Jun,NI Jingwei,et al.Influence of key operation parameters on cryogenic liquefied air energy storage system[J].Journal of Xi’an University of Science and Technology,2019,39(4):672-680.
- [16]王维萌,黄葆华,徐桂芝,等.一种基于深冷液化空气储能技术的新型发电系统概述[J].华北电力技术,2017(3):46-52.WANG Weimeng,HUANG Baohua,XU Guizhi,et al.Introduction of a novel power generation system based on liquid air energy storage technology[J].North China Electric Power,2017(3):46-52.
- [17]韩晓娟,程成,籍天明,等.计及电池使用寿命的混合储能系统容量优化模型[J].中国电机工程学报,2013,33(34):91-97.HAN Xiaojuan,CHENG Cheng,JI Tianming,et al.Capacity optimal modeling of hybrid energy storage systems considering battery life[J].Proceedings of the CSEE,2013,33(34):91-97.