Integrated Intelligent Energy ›› 2023, Vol. 45 ›› Issue (10): 25-34.doi: 10.3969/j.issn.2097-0706.2023.10.004
• Optimal Operation and Control • Previous Articles Next Articles
YU Wenchang1(), CHEN Yonggang1, CAO Junbo1, ZUO Luyuan2, ZHANG Xiangyin3,*(
), YANG Xiu3
Received:
2023-05-06
Revised:
2023-06-01
Published:
2023-10-25
Supported by:
CLC Number:
YU Wenchang, CHEN Yonggang, CAO Junbo, ZUO Luyuan, ZHANG Xiangyin, YANG Xiu. Optimal scheduling of the data center integrated energy system considering load response characteristics[J]. Integrated Intelligent Energy, 2023, 45(10): 25-34.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.hdpower.net/EN/10.3969/j.issn.2097-0706.2023.10.004
Table 2
Parameters of related devices
设备名称 | 参数 | 值 | 投资/运维成本/[元·(MW·h)-1] |
---|---|---|---|
燃气轮机 | 功率上/下限、产电效率、天然气低位热值 | 1 500 MW/0 MW,0.184,8 000 kJ/m3 | 3 000/53 |
风机 | 出力上/下限 | 2 000 MW/0 MW | 5 000/29 |
光伏 | 出力上/下限 | 2 200 MW/0 MW | 4 000/25 |
电制冷机 | 出力上/下限、制冷系数 | 600 MW/0 MW,3.00 | 1 000/11 |
吸收式制冷机 | 出力上/下限、制冷系数 | 600 MW/0 MW,1.38 | 1 100/13 |
电储能 | 额定功率、出力上/下限、SOC初始值/上/下限 | 1 200 MW,500 MW/0.4 MW,0.2/0.2/0.9 | 960/30 |
热储能 | 额定功率、出力上/下限、SOC初始值/上/下限 | 1 200 MW,500 MW/0.4 MW,0.2/0.2/0.9 | 880/24 |
蓄冷槽 | 额定功率、出力上/下限、SOC初始值/上/下限 | 1 200 MW,500 MW/0.4 MW,0.2/0.2/0.9 | 860/26 |
主电网交互 | 功率上/下限 | 4 500 MW/0 MW | — |
Table 3
CARS related parameters
名称 | 参数 | 值 |
---|---|---|
送风机 | 0.35/0.31/-0.54/0.87/0.00/0.70/1.29 kg/m3/52.55 kg/s | |
冷冻水泵 | 0/1/0/0/31.00 kg/s/7.93 kW/4.19 kJ/(kg⋅℃) | |
制冷机 | 0.44/-0.081/-0.002/0.092/-0.0031/0.007/0.05/-0.016/-0.000 3/0.024/-0.000 3/-0.000 6/0.188/0.356/0.454/720 kW/6.04 | |
冷却水泵 | 9.17 kW | |
冷却塔 | 8.82 kW | |
机房室内送风温度 | 23 ℃/23 ℃ |
[1] | 郭创新, 王惠如, 张伊宁, 等. 面向区域能源互联网的“源-网-荷”协同规划综述[J]. 电网技术, 2019, 43(9):3071-3080. |
GUO Chuangxin, WANG Huiru, ZHANG Yining, et al. Review of "source-net-load" collaborative planning for regional energy internet[J]. Power Grid Technology, 2019, 43(9):3071-3080. | |
[2] | 曾博, 白婧萌, 郭万祝, 等. 智能配电网需求响应效益综合评价[J]. 电网技术, 2017, 41(5):1603-1611. |
ZENG Bo, BAI Jingmeng, GUO Wanzhu, et al. Comprehensive evaluation of demand response benefits of intelligent distribution network[J]. Power Grid Technology, 2017, 41(5): 1603-1611. | |
[3] | 赵福林, 俞啸玲, 杜诗嘉, 等. 计及需求响应的含大规模风电并网下电力系统灵活性评估[J]. 电力系统保护与控制, 2021, 49(1):42-51. |
ZHAO Fulin, YU Xiaoling, DU Shijia, et al. An assessment of the flexibility of off-grid power systems with large-scale wind power in consideration of demand response[J]. Power System Protection and Control, 2021. 49(1): 42-51. | |
[4] | 罗金满, 赵善龙, 封祐钧, 等. 考虑综合需求响应不确定性的电-气综合能源系统优化运行[J]. 中国电力, 2020, 53(12):119-126. |
LUO Jinman, ZHAO Shanlong, FENG Youjun, et al. Optimal operation of an integrated power-gas energy system considering the uncertainty of comprehensive demand response[J]. China Electric Power, 2020, 53(12): 119-126. | |
[5] |
DING Z, CAO Y, XIE L, et al. Integrated stochastic energy management for data center microgrid considering waste heat recovery[J]. IEEE Transactions on Industry Applications, 2019, 55(3): 2198-2207.
doi: 10.1109/TIA.28 |
[6] |
WANG P, CAO Y, DING Z. Flexible multi-energy scheduling scheme for data center to facilitate wind power integration[J]. IEEE Access, 2020, 8: 88876-88891.
doi: 10.1109/Access.6287639 |
[7] | 陈敏, 高赐威, 陈宋宋, 等. 考虑数据中心用电负荷调节潜力的双层经济调度模型[J]. 中国电机工程学报, 2019, 39(5):1301-1313. |
CHEN Min, GAO Ciwei, CHEN Songsong, et al. A two-layer economic scheduling model considering the potential of power load regulation in data centers[J]. Proceedings of the CSEE, 2019. 39(5): 1301-1313. | |
[8] |
YU L, JIANG T, CAO Y, et al. Carbon-aware energy cost minimization for distributed internet data centers in smart microgrids[J]. IEEE Internet of Things Journal, 2014, 1(3):255-264.
doi: 10.1109/JIOT.2014.2322606 |
[9] |
YU Y, JIANG T, ZOU Y. Real-time energy management for cloud data centers in smart microgrids[J]. IEEE Access, 2017, 4:941-950.
doi: 10.1109/ACCESS.2016.2539369 |
[10] |
YU L, JIANG T, ZOU Y L. Distributed real-time energy management in data center microgrids[J]. IEEE Transactions on Smart Grid, 2018, 9(4):3748-3762.
doi: 10.1109/TSG.2016.2640453 |
[11] | HOGADE N S, PASRICHA S, SIEGEL H J, et al. Minimizing energy costs for geographically distributed heterogeneous data centers[J]. IEEE Transactions on Sustainable Computing, 2018:318-331. |
[12] | 雍培, 张宁, 慈松, 等. 5G通信基站参与需求响应:关键技术与前景展望[J]. 中国电机工程学报, 2021, 41(16):5540-5551. |
YONG Pei, ZHANG Ning, CI Song, et al. Participation of 5G communication base stations in demand response:Key technologies and prospects[J]. Proceedings of the CSEE, 2021. 41(16): 5540-5551. | |
[13] |
兰洲, 蒋晨威, 谷纪亭, 等. 促进可再生能源发电消纳和碳减排的数据中心优化调度与需求响应策略[J]. 电力建设, 2022, 43(4):1-9.
doi: 10.12204/j.issn.1000-7229.2022.04.001 |
LAN Zhou, JIANG Chenwei, GU Jiting, et al. Data center optimal scheduling and demand response strategy for promoting renewable energy power consumption and carbon emission reduction[J]. Electric Power Construction, 202, 43(4):1-9. | |
[14] | 杨挺, 姜含, 侯昱丞, 等. 基于计算负荷时-空双维迁移的互联多数据中心碳中和调控方法研究[J]. 中国电机工程学报, 2022, 42(1):164-177. |
YANG Ting, JIANG Han, HOU Yucheng, et al. Research on carbon neutrality regulation method of interconnected multi-data centers based on time-space dual-dimensional migration of computing load[J]. Proceedings of the CSEE, 202, 42(1):164-177. | |
[15] | 祁兵, 曹望璋, 李彬, 等. 计及负载特征及响应特性的多数据中心双层优化模型[J]. 电力系统自动化, 2022, 46(21):30-41. |
QI Bing, CAO Wangzhang, LI Bin, et al. A dual-layer optimization model for multiple data centers considering load characteristics and response characteristics[J]. Automation of Electric Power Systems, 2022, 46(21):30-41. | |
[16] | 曾博, 刘一贤, 张卫翔, 等. 综合考虑内外生不确定性的绿色数据中心多域资源协同规划方法[J/OL]. 中国电机工程学报:1-18(2023-01-31)[2023-05-16]. http://kns.cnki.net/kcms/detail/11.2107.TM.20230130.1641.003.html. |
ZENG Bo, LIU Yixian, ZHANG Weixiang, et al. Multi-domain resource collaborative planning method for green data centers considering internal and external uncertainties[J/OL]. Proceedings of the Chinese Society for Electrical Engineering: 1-18(2023-01-31)[2023-05-16]. http://kns.cnki.net/kcms/detail/11.2107.TM.20230130.1641.003.html. | |
[17] | 周吟雨, 董厚琦, 曾博, 等. 考虑灵活性潜力的互联网数据中心与配电网双层协同规划方法[J]. 电力系统保护与控制, 2022, 50(24):49-59. |
ZHOU Yinyu, DONG Houqi, ZENG Bo, et al. A two-layer collaborative planning method for Internet data centers and distribution networks considering flexibility potential[J]. Power System Protection and Control, 2022, 50(24): 49-59. | |
[18] | 高赐威, 吴刚, 陈宋宋. 考虑地理分散的数据中心服务器频率调节的电网降损模型[J]. 中国电机工程学报, 2019, 39(6):1673-1681. |
GAO Ciwei, WU Gang, CHEN Songsong. Network loss reduction model considering frequency regulation of geographically dispersed data center servers[J]. Proceedings of the CSEE, 2019, 39(6):1673-1681. | |
[19] | 李志文, 李卫国, 王利利. 数据中心能耗分析研究[J]. 现代盐化工, 2018, 45(4):36-37. |
LI Zhiwen, LI Weiguo, WANG Lili. Energy consumption analysis of data centers[J]. Modern Salt Chemical Industry, 2018, 45(4): 36-37. | |
[20] | 张志亮, 张斌宇. 北方某IDC数据机房空调冷水机组模型建立及能耗分析[J]. 长江信息通信, 2022, 35(10):183-186. |
ZHANG Zhiliang, ZHANG Binyu. Model establishment and energy consumption analysis of air conditioner chiller in an IDC data room in north China[J]. Yangtze River Information and Communication, 2022, 35(10):183-186. | |
[21] | 耿圣杰, 贾燕冰, 江坷滕, 等. 电网数据中心服务器容量及其综合供能系统联合规划策略研究[J]. 电网技术, 2022, 46(9):3281-3292. |
GENG Shengjie, JIA Yanbing, JIANG Keteng, et al. Research on joint planning strategy of power grid data center server capacity and integrated energy supply system[J]. Power Grid Technology, 2022, 46(9):3281-3292. | |
[22] | 祁兵, 曹望璋, 李彬, 等. 考虑托管式数据中心负荷调节不确定性的区间优化模型[J]. 电网技术, 2022, 46(1):39-49. |
QI Bing, CAO Wangzhang, LI Bin, et al. Interval optimization model considering load regulation uncertainty of managed data center[J]. Power Grid Technology, 2022, 46(1):39-49. | |
[23] | 吴云芸, 方家琨, 艾小猛, 等. 计及需求响应的数据中心联盟共享储能规划[J]. 电力系统自动化, 2023, 47(7):42-50. |
WU Yunyun, FANG Jiakun, AI Xiaomeng, et al. Shared energy storage planning for data center alliances considering demand response[J]. Automation of Electric Power Systems, 2023, 47(7):42-50. | |
[24] |
付豪, 邹花蕾, 张腾飞. 基于长短期记忆循环神经网络的变电站监控系统智能故障推理方法[J]. 综合智慧能源, 2022, 44(12): 11-17.
doi: 10.3969/j.issn.2097-0706.2022.12.002 |
FU Hao, ZOU Hualei, ZHANG Tengfei. Intelligent fault reasoning method for the substation monitoring system based on LSTM[J]. Integrated Intelligent Energy, 2022, 44(12): 11-17.
doi: 10.3969/j.issn.2097-0706.2022.12.002 |
[1] | LUO Yuling, PENG Daogang, ZHAO Huirong, QU Bogang. Evaluation on energy-saving and carbon-reduction potential of aluminum processing in high-energy-consuming enterprises and their profiles [J]. Integrated Intelligent Energy, 2024, 46(8): 1-11. |
[2] | ZOU Fenghua, ZHU Xingyang, YIN Junping, MENG Shiyu, JIANG Haiyan, CHEN Aikang, LIU Lan. Development trend analysis on building energy systems under "dual carbon" target [J]. Integrated Intelligent Energy, 2024, 46(8): 36-40. |
[3] | DENG Zhenyu, WANG Rukang, XU Gang, YUN Kun, WANG Ying. Current status of fault diagnosis for CHP units in integrated energy systems [J]. Integrated Intelligent Energy, 2024, 46(8): 67-76. |
[4] | WANG Jun, TIAN Hao, ZHAO Ergang, SHU Zhan, WAN Zijing. Low-carbon operation control on park-level integrated energy systems considering shared energy storage devices for electric vehicles [J]. Integrated Intelligent Energy, 2024, 46(6): 16-26. |
[5] | ZHENG Qingming, JING Yanwei, LIANG Tao, CHAI Lulu, LYU Liangnian. Optimized scheduling on large-scale hydrogen production system for off-grid renewable energy based on DDPG algorithm [J]. Integrated Intelligent Energy, 2024, 46(6): 35-43. |
[6] | GONG Gangjun, WANG Luyao, CHANG Zhuoyue, LIU Xu, XING Huidi. Security protection for integrated energy cyber physical systems based on energy hubs [J]. Integrated Intelligent Energy, 2024, 46(5): 65-72. |
[7] | LI Yun, ZHOU Shijie, HU Zheqian, LIANG Junyuan, XIAO Leiming. Optimal scheduling of integrated energy systems based on NSGA-Ⅱ-WPA [J]. Integrated Intelligent Energy, 2024, 46(4): 1-9. |
[8] | SHI Mingming, ZHU Rui, LIU Ruihuang. Joint economic dispatch of an AC/DC power system and a heating system [J]. Integrated Intelligent Energy, 2024, 46(4): 10-16. |
[9] | CHEN Yong, XIAO Leiming, WANG Jingnan, WU Jian. Capacity planning method with high reliability for integrated energy systems with low-carbon emissions based on scenario expansion [J]. Integrated Intelligent Energy, 2024, 46(4): 24-33. |
[10] | WANG Jinglong, WANG Hui, YANG Ye, ZHENG Yingying. Collaborative optimization method for power-heat-gas integrated energy systems considering multiple uncertainties [J]. Integrated Intelligent Energy, 2024, 46(4): 42-51. |
[11] | ZHONG Yongjie, WANG Zidong, ZUO Jianxun, WANG Changqing, LI Jingxia, JI Ling. Economic dispatch of multi-energy complementary systems considering multi-period scales and regional stratification [J]. Integrated Intelligent Energy, 2024, 46(4): 52-59. |
[12] | XU Cong, HU Yongfeng, ZHANG Aiping, YOU Changfu. Multi-load day-ahead and intra-day forecasting for integrated energy systems based on feature screening [J]. Integrated Intelligent Energy, 2024, 46(3): 45-53. |
[13] | ZHOU Guanting, XU Kai, LIU Jianwei, LU Baixing, ZHANG Qiao, CHEN Xin. Path optimization of regional integrated energy service providers' trades based on graph theory [J]. Integrated Intelligent Energy, 2024, 46(2): 49-58. |
[14] | ZHANG Li, JIN Li, REN Juguang, LIU Xiaobing. Research on load regulation strategy of integrated energy systems considering meteorological factors and time-of-use tariffs [J]. Integrated Intelligent Energy, 2024, 46(1): 18-27. |
[15] | FANG Gang, WANG Jing, ZHANG Bobo, WANG Junzhe. Research on optimization algorithm of industrial park microgrid configuration based on Pareto solution set [J]. Integrated Intelligent Energy, 2024, 46(1): 49-55. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||