1. 西安交通大学国家储能技术产教融合创新平台(中心),西安,710049
2. 北京理工大学机械与车辆学院,北京,100081
: 2024-04-30。作者简介: 蒋睿(1997—),男,博士生
李明佳(通信作者),女,教授,博士生导师。基金项目: 国家自然科学基金重大资助项目(52293413)
网络首发:2024-12-10,
纸质出版:2024
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蒋睿, 李明佳, 马腾, 等. 耦合熔盐储热的超临界二氧化碳循环系统变负荷发电效率提升方法[J]. 西安交通大学学报, 2024,58(12):11-21.
JIANG Rui, LI Mingjia, MA Teng, et al. Method for Enhancing Load-Following Power Generation Efficiency of SCO2Cycle Systems Coupled with Molten Salt Thermal Energy Storage[J]. 2024, 58(12): 11-21. DOI: 10.7652/xjtuxb202412002.
蒋睿, 李明佳, 马腾, 等. 耦合熔盐储热的超临界二氧化碳循环系统变负荷发电效率提升方法[J]. 西安交通大学学报, 2024,58(12):11-21. DOI: 10.7652/xjtuxb202412002.
JIANG Rui, LI Mingjia, MA Teng, et al. Method for Enhancing Load-Following Power Generation Efficiency of SCO2Cycle Systems Coupled with Molten Salt Thermal Energy Storage[J]. 2024, 58(12): 11-21. DOI: 10.7652/xjtuxb202412002. DOI:
针对非设计工况下超临界二氧化碳(SCO
2
)循环发电效率大幅度降低
系统运行经济性下降的问题
提出了一种SCO
2
循环系统变负荷发电效率提升方法。该方法在系统设计方案上
采用多个小容量机组代替传统的单一大容量机组; 在运行模式上
采用多机组之间串并联相结合的运行模式。通过建立耦合熔盐储热的SCO
2
循环系统实时动态模型
对比了多机组方案和传统单一机组方案的变负荷发电效率、调峰范围以及运行经济性
计算结果表明:对于额定功率为300 MW的单一机组
当输出功率从额定功率降低至20%额定功率时
其发电效率将从55.01%降低至21.97%; 以串并联相结合模式运行的多机组方案相比于单一机组
在全工况范围内可将效率平均提高7.92%
同时可将调峰范围由100%~20%额定功率扩大至100%~3.33%额定功率; 在参与调峰时
多机组方案相比于传统单一机组可节省12%的热盐消耗量。所提SCO
2
循环系统变负荷提效方法对提高电站发电效率和运行经济性具有参考价值。
To address the significant reduction in power generation efficiency and operational economy of supercritical carbon dioxide(SCO
2
)power cycle systems under off-design conditions
a method for enhancing the load-following power generation efficiency of SCO
2
cycle systems is proposed. In the design scheme
multiple small-capacity units are employed instead of a single large-capacity unit. In the operational mode
a combination of series and
parallel operation among multiple units is utilized. By establishing a real-time dynamic model of an SCO
2
cycle system coupled with molten salt thermal energy storage
a comparison is made between the multi-unit scheme and the traditional single-unit scheme in terms of load-following efficiency
peak shaving range
and operational economy. The results indicate that for a single-unit system with a rated power of 300 MW
when the output power is reduced from the rated power to 20% of the rated power
the efficiency decreases from 55.01% to 21.97%. The multi-unit system operating in a series-parallel combination mode can increase efficiency by an average of 7.92% and expand the peak shaving range from 100% to 20% of the rated power to 100% to 3.33% of the rated power. Furthermore
when applied to peak shaving
the multi-unit system can save 12% of molten salt consumption compared to the traditional single-unit system. The proposed method for enhancing load-following efficiency of SCO
2
cycle systems provides valuable insights for improving the generation efficiency and operational economy of power plants.
WANG Yijing, WANG Rong, TANAKA K, et al. Accelerating the energy transition towards photovoltaic and wind in China [J]. Nature, 2023, 619(7971): 761-767.
中华人民共和国国家发展改革委. “十四五”可再生能源发展规划 [EB/OL].(2022-06-01)[访问日期]. https://www.ndrc.gov.cn/xwdt/tzgg/202206/P020220 602315650388122.pdf.
BLAKERS A, STOCKS M, LU Bin, et al. A review of pumped hydro energy storage [J]. Progress in Energy, 2021, 3(2): 022003.
LI M, LU Jun, CHEN Zhongwei, et al. 30 years of lithium-ion batteries [J]. Advanced Materials, 2018, 30(33): 1800561.
张玮灵, 古含, 章超, 等. 压缩空气储能技术经济特点及发展趋势 [J]. 储能科学与技术, 2023, 12(4): 1295-1301.
ZHANG Weiling, GU Han, ZHANG Chao, et al. Technical economic characteristics and development trends of compressed air energy storage [J]. Energy Storage Science and Technology, 2023, 12(4): 1295-1301.
NI Jingwei, LI Mingjia, MA Teng. The study of energy filtering management process for microgrid based on the dynamic response model of vanadium redox flow battery [J]. Applied Energy, 2023, 336: 120867.
《新型电力系统发展蓝皮书》编写组. 新型电力系统发展蓝皮书 [M]. 北京: 中国电力出版社, 2023.
李明成, 孙春启, 韩旭. 火电机组耦合熔盐储热系统调峰性能研究 [J]. 汽轮机技术, 2024, 66(3): 198-202.
LI Mingcheng, SUN Chunqi, HAN Xu. Research on peak shaving performance of thermal power unit coupled molten salt energy storage system [J]. Turbine Technology, 2024, 66(3): 198-202.
HE Yaling, QIU Yu, WANG Kun, et al. Perspective of concentrating solar power [J]. Energy, 2020, 198: 117373.
SARKAR J. Second law analysis of supercritical CO2 recompression Brayton cycle [J]. Energy, 2009, 34(9): 1172-1178.
ROMEO L M, BOLEA I, LARA Y, et al. Optimization of intercooling compression in CO2 capture systems [J]. Applied Thermal Engineering, 2009, 29(8/9): 1744-1751.
CRESPI F, SÁNCHEZ D, RODRÍGUEZ J M, et al. A thermo-economic methodology to select sCO2 power cycles for CSP applications [J]. Renewable Energy, 2020, 147(Part 3): 2905-2912.
WANG Kun, LI Mingjia, GUO Jiaqi, et al. A systematic comparison of different S-CO2 Brayton cycle layouts based on multi-objective optimization for applications in solar power tower plants [J]. Applied Energy, 2018, 212: 109-121.
WANG Kun, HE Yaling. Thermodynamic analysis and optimization of a molten salt solar power tower integrated with a recompression supercritical CO2 Brayton cycle based on integrated modeling [J]. Energy Conversion and Management, 2017, 135: 336-350.
NEISES T, TURCHI C. Supercritical carbon dioxide power cycle design and configuration optimization to minimize levelized cost of energy of molten salt power towers operating at 650 ℃ [J]. Solar Energy, 2019, 181: 27-36.
GUO Jiaqi, LI Mingjia, XU Jinliang. Performance comparison of SPT systems integrated with various supercritical CO2-based mixture Brayton cycles based on multi-objective optimization [J]. Energy Procedia, 2019, 158: 1823-1828.
GUO Jiaqi, LI Mingjia, HE Yaling, et al. A study of new method and comprehensive evaluation on the improved performance of solar power tower plant with the CO2-based mixture cycles [J]. Applied Energy, 2019, 256: 113837.
DU Yadong, YANG Ce, ZHAO Ben, et al. Investigation of off-design performance of supercritical carbon dioxide recompression cycle using a deep learning-based turbine with variable inlet guide vanes [J]. Energy Conversion and Management, 2023, 286: 117068.
MA Teng, LI Mingjia, XU Jinliang, et al. Study of dynamic response characteristics of S-CO2 cycle in coal-fired power plants based on real-time micro-grid load and a novel synergistic control method with variable working conditions [J]. Energy Conversion and Management, 2022, 254: 115264.
AHN Y, KIM M S, LEE J I. S-CO2 cycle design and control strategy for the SFR application [C]//The 5th International Symposium-Supercritical CO2 Power Cycles. San Antonio, TX, USA: Southwest Research Institute, 2016: 28-31.
JIANG Rui, LI Mingjia, WANG Wenqi, et al. A novel numerical methodology of solar power tower system for dynamic characteristics analysis and performance prediction [J]. Energy, 2024, 292: 130469.
HE Yaling, WANG Wenqi, JIANG Rui, et al. Liquid-based high-temperature receiver technologies for next-generation concentrating solar power: a review of challenges and potential solutions [J]. Frontiers in Energy, 2023, 17(1): 16-42.
姜涛, 李明佳, 梁继越, 等. 用于水下航行器的铅铋堆S-CO2循环发电系统热力学及动态特性分析 [J]. 中国电机工程学报, 2023, 43(11): 4138-4149.
JIANG Tao, LI Mingjia, LIANG Jiyue, et al. Thermodynamic and dynamic characteristics analysis of the S-CO2 cycle power generation system integrated with lead-bismuth cooled reactor for underwater vehicle [J]. Proceedings of the CSEE, 2023, 43(11): 4138-4149.
MARCHIONNI M, USMAN M, CHAI Lei, et al. Inventory control assessment for small scale sCO2 heat to power conversion systems [J]. Energy, 2023, 267: 126537.
WANG Wei, CAI Ruixian, ZHANG Na. General characteristics of single shaft microturbine set at variable speed operation and its optimization [J]. Applied Thermal Engineering, 2004, 24(13): 1851-1863.
CLEMENTONI E M, COX T L, KING M A. Response of a compact recuperator to thermal transients in a supercritical carbon dioxide Brayton cycle [C]//ASME Turbo Expo 2017: Turbomachinery Technical Conference and Exposition. New York, NY, USA: ASME, 2017: V009T38A002.
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