[1] |
张沈习, 王丹阳, 程浩忠, 等. 双碳目标下低碳综合能源系统规划关键技术及挑战 [J]. 电力系统自动化, 2022, 46(8): 189-207. DOI: 10.7500/AEPS20210703002.
ZHANG S X, WANG D Y, CHENG H Z, et al. Key technologies and challenges of low-carbon integrated energy system planning for carbon emission peak and carbon neutrality [J]. Automation of electric power systems, 2022, 46(8): 189-207. DOI: 10.7500/AEPS20210703002. |
[2] |
蔡绍宽. 双碳目标的挑战与电力结构调整趋势展望 [J]. 南方能源建设, 2021, 8(3): 8-17. DOI: 10.16516/j.gedi.issn2095-8676.2021.03.002.
CAI S K. Challenges and prospects for the trends of power structure adjustment under the goal of carbon peak and neutrality [J]. Southern energy construction, 2021, 8(3): 8-17. DOI: 10.16516/j.gedi.issn2095-8676.2021.03.002. |
[3] |
贠保记, 张恩硕, 张 国, 等. 考虑综合需求响应与“双碳”机制的综合能源系统优化运行 [J]. 电力系统保护与控制, 2022, 50(22): 11-19. DOI: 10.19783/j.cnki.pspc.220621.
YUN B J, ZHANG E S, ZHANG G, et al. Optimal operation of an integrated energy system considering integrated demand response and a "dual carbon" mechanism [J]. Power system protection and control, 2022, 50(22): 11-19. DOI: 10.19783/j.cnki.pspc.220621. |
[4] |
胡程平, 范明, 刘艾旺, 等. 考虑云储能的多区互联综合能源系统规划 [J]. 发电技术, 2024, 45(4): 641-650. DOI: 10.12096/j.2096-4528.pgt.23057.
HU C P, FAN M, LIU A X, et al. Multi-area interconnected integrated energy system planning considering cloud energy storage [J]. Power generation technology, 2024, 45(4): 641-650. DOI: 10.12096/j.2096-4528.pgt.23057. |
[5] |
李鹏, 吴迪凡, 李雨薇, 等. 基于综合需求响应和主从博弈的多微网综合能源系统优化调度策略 [J]. 中国电机工程学报, 2021, 41(4): 1307-1321. DOI: 10.13334/j.0258-8013.pcsee.201845.
LI P, WU D F, LI Y W, et al. Optimal dispatch of multi-microgrids integrated energy system based on integrated demand response and stackelberg game [J]. Proceedings of the CSEE, 2021, 41(4): 1307-1321. DOI: 10.13334/j.0258-8013.pcsee.201845. |
[6] |
罗志斌, 孙潇, 孙翔, 等. 氢能与储能耦合发展的机遇与挑战 [J]. 南方能源建设, 2022, 9(4): 24-31. DOI: 10.16516/j.gedi.issn2095-8676.2022.04.003.
LUO Z B, SUN X, SUN X, et al. The coupling development of hydrogen and energy storage technology: opportunities and challenges [J]. Southern energy construction, 2022, 9(4): 24-31. DOI: 10.16516/j.gedi.issn2095-8676.2022.04.003. |
[7] |
亢猛, 钟祎勍, 石鑫, 等. 计及负荷供给可靠性的园区综合能源系统两阶段优化方法研究 [J]. 发电技术, 2023, 44(1): 25-35. DOI: 10.12096/j.2096-4528.pgt.21110.
KANG M, ZHONG Y Q, SHI X, et al. Research on two-stage optimization approach of community integrated energy system considering load supply reliability [J]. Power generation technology, 2023, 44(1): 25-35. DOI: 10.12096/j.2096-4528.pgt.21110. |
[8] |
董帅, 王杉, 李昊, 等. 考虑网络特性的综合能源系统多时间尺度调度方法 [J]. 山东电力技术, 2023, 50(6): 20-26. DOI: 10.20097/j.cnki.issn1007-9904.2023.06.004.
DONG S, WANG S, LI H, et al. Multi-time scale scheduling method for integrated energy system considering network characteristics [J]. Shandong electric power, 2023, 50(6): 20-26. DOI: 10.20097/j.cnki.issn1007-9904.2023.06.004. |
[9] |
孟明, 商聪, 马思源, 等. 基于区块链的综合能源系统低碳优化调度研究 [J]. 华北电力大学学报, 2023, 50(3): 67-80. DOI: 10.3969/j.ISSN.1007-2691.2023.03.07.
MENG M, SHANG C, MA S Y, et al. Research on low-carbon scheduling of integrated energy system based on blockchain technology [J]. Journal of North China Electric Power University, 2023, 50(3): 67-80. DOI: 10.3969/j.ISSN.1007-2691.2023.03.07. |
[10] |
侯慧, 戈翔迪, 吴细秀, 等. 运行与规划协同的电热氢联供系统最优容量配置研究 [J]. 电力系统保护与控制, 2022, 50(24): 144-151. DOI: 10.19783/j.cnki.pspc.220314.
HOU H, GE X D, WU X X, et al. Optimal capacity allocation of an electricity heat hydrogen cogeneration system based on coordinated operation and planning [J]. Power system protection and control, 2022, 50(24): 144-151. DOI: 10.19783/j.cnki.pspc.220314. |
[11] |
董亮, 黄励, 刘万根, 等. 电—热综合能源系统多目标优化 [J]. 电气自动化, 2023, 45(4): 54-56. DOI: 10.3969/j.issn.1000-3886.2023.04.017.
DONG L, HANG L, LIU W G, et al. Multi-objective optimization of electric-thermal integrated energy system [J]. Electrical automation, 2023, 45(4): 54-56. DOI: 10.3969/j.issn.1000-3886.2023.04.017. |
[12] |
XIANG Y, CAI H H, GU C H, et al. Cost-benefit analysis of integrated energy system planning considering demand response [J]. Energy, 2020, 192: 116632. DOI: 10.1016/j.energy.2019.116632. |
[13] |
HE L C, LU Z G, GENG L J, et al. Environmental economic dispatch of integrated regional energy system considering integrated demand response [J]. International journal of electrical power & energy systems, 2020, 116: 105525. DOI: 10.1016/j.ijepes.2019.105525. |
[14] |
JIANG P, DONG J, HUANG H. Optimal integrated demand response scheduling in regional integrated energy system with concentrating solar power [J]. Applied thermal engineering, 2020, 166: 114754. DOI: 10.1016/j.applthermaleng.2019.114754. |
[15] |
吴佩隆, 王维庆, 樊小朝, 等. 考虑氢负荷与综合需求响应的天然气制氢的园区综合能源系统优化配置 [J]. 现代电子技术, 2023, 46(7): 135-142. DOI: 10.16652/j.issn.1004-373x.2023.07.025.
WU P L, WANG W Q, FAN X C, et al. Optimal configuration of industrial PIES for natural gas hydrogen production considering hydrogen load and comprehensive demand response [J]. Modern electronics technique, 2023, 46(7): 135-142. DOI: 10.16652/j.issn.1004-373x.2023.07.025. |
[16] |
赵扉, 胡程平, 施云辉. 考虑温控负荷需求响应的电热联合系统多阶段鲁棒调度方法 [J]. 电力需求侧管理, 2022, 24(5): 15-21. DOI: 10.3969/j.issn.1009-1831.2022.05.004.
ZHAO F, HU C P, SHI Y H. Multi-stage robust dispatch of integrated electric and heating system considering demand response of thermostatically controlled load [J]. Power demand side management, 2022, 24(5): 15-21. DOI: 10.3969/j.issn.1009-1831.2022.05.004. |
[17] |
李东东, 王啸林, 沈运帷, 等. 考虑多重不确定性的含需求响应及电碳交易的虚拟电厂优化调度策略 [J]. 电力自动化设备, 2023, 43(5): 210-217, 251. DOI: 10.16081/j.epae.202303024.
LI D D, WANG X L, SHEN Y W, et al. Optimal scheduling strategy of virtual power plant with demand response and electricity-carbon trading considering multiple uncertainties [J]. Electric power automation equipment, 2023, 43(5): 210-217, 251. DOI: 10.16081/j.epae.202303024. |
[18] |
王凌云, 徐健哲, 李世春, 等. 考虑电-气-热需求响应和阶梯式碳交易的综合能源系统低碳经济调度 [J]. 智慧电力, 2022, 50(9): 45-52. DOI: 10.3969/j.issn.1673-7598.2022.09.008.
WANG L Y, XU J Z, LI S C, et al. Low carbon economic dispatch of integrated energy system considering electricity-gas-heat demand response and tiered carbon trading [J]. Smart power, 2022, 50(9): 45-52. DOI: 10.3969/j.issn.1673-7598.2022.09.008. |
[19] |
刘至纯, 李华强, 王俊翔, 等. 基于多时间尺度综合需求响应策略的综合能源系统优化运行 [J]. 电力建设, 2022, 43(9): 54-65. DOI: 10.12204/j.issn.1000-7229.2022.09.006.
LIU Z C, LI H Q, WANG J X, et al. Optimal operation of integrated energy system based on multi-time scale integrated demand response strategy [J]. Electric power construction, 2022, 43(9): 54-65. DOI: 10.12204/j.issn.1000-7229.2022.09.006. |
[20] |
吕智林, 易佳奇, 刘泉, 等. 含氢能利用和需求响应的综合能源系统低碳优化 [J]. 电力系统及其自动化学报, 2023, 35(7): 10-19. DOI: 10.19635/j.cnki.csu-epsa.001116.
LÜ Z L, YI J Q, LIU Q, et al. Low-carbon optimization of integrated energy system with hydrogen energy utilization and demand response [J]. Proceedings of the CSU-EPSA, 2023, 35(7): 10-19. DOI: 10.19635/j.cnki.csu-epsa.001116. |
[21] |
曹彬, 吕干云, 王楠, 等. 综合能源系统优化调度下的需求响应研究与应用 [J]. 电力需求侧管理, 2021, 23(4): 45-50. DOI: 10.3969/j.issn.1009-1831.2021.04.009.
CAO B, LÜ G Y, WANG N, et al. Research and application of demand response based on optimal scheduling of integrated energy system [J]. Power demand side management, 2021, 23(4): 45-50. DOI: 10.3969/j.issn.1009-1831.2021.04.009. |
[22] |
熊文, 刘育权, 苏万煌, 等. 考虑多能互补的区域综合能源系统多种储能优化配置 [J]. 电力自动化设备, 2019, 39(1): 118-126. DOI: 10.16081/j.issn.1006-6047.2019.01.018.
XIONG W, LIU Y Q, SU W H, et al. Optimal configuration of multi-energy storage in regional integrated energy system considering multi-energy complementation [J]. Electric power automation equipment, 2019, 39(1): 118-126. DOI: 10.16081/j.issn.1006-6047.2019.01.018. |
[23] |
杨海柱, 李梦龙, 江昭阳, 等. 考虑需求侧电热气负荷响应的区域综合能源系统优化运行 [J]. 电力系统保护与控制, 2020, 48(10): 30-37. DOI: 10.19783/j.cnki.pspc.190774.
YANG H Z, LI M L, JIANG Z Y, et al. Optimal operation of regional integrated energy system considering demand side electricity heat and natural-gas loads response [J]. Power system protection and control, 2020, 48(10): 30-37. DOI: 10.19783/j.cnki.pspc.190774. |
[24] |
李自成, 张赛, 王后能, 等. 基于混合差分遗传算法的Bouc-Wen迟滞模型辨识策略 [J]. 控制与决策, 2021, 36(2): 371-378. DOI: 10.13195/j.kzyjc.2019.0663.
LI Z C, ZHANG S, WANG H N, et al. Bouc-Wen hysteresis model identification strategy based on hybrid differential genetic algorithm [J]. Control and decision, 2021, 36(2): 371-378. DOI: 10.13195/j.kzyjc.2019.0663. |
[25] |
王海宁, 王正莹, 慕子煜, 等. 基于层次分析法的EPC总承包物资采购评标权重选取 [J]. 电力勘测设计, 2022(6): 1-5. DOI: 10.13500/j.dlkcsj.issn1671-9913.2022.06.001.
WANG H N, WANG Z Y, MU Z Y, et al. Selection of evaluation weight of EPC material procurement based on AHP [J]. Electric power survey & design, 2022(6): 1-5. DOI: 10.13500/j.dlkcsj.issn1671-9913.2022.06.001. |