西安交通大学能源与动力工程学院,西安,710049
: 2022-05-26。作者简介: 赵攀(1983—),男,副教授。基金项目: 国家自然科学基金资助项目(51876152)。
网络首发:2023-01-10,
纸质出版:2023
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赵攀, 张仕强, 许文盼, 等. 具备近似等压放电过程的近似等温压缩CO2储能系统特性研究[J]. 西安交通大学学报, 2023,57(1):34-44. DOI: 10.7652/xjtuxb202301004.
ZHAO Pan, ZHANG Shiqiang, XU Wenpan, et al. Performance Analysis of a Near-Isothermal Compressed Carbon Dioxide Energy Storage System with Near Constant Discharge Process[J]. 2023, 57(1): 34-44.
赵攀, 张仕强, 许文盼, 等. 具备近似等压放电过程的近似等温压缩CO2储能系统特性研究[J]. 西安交通大学学报, 2023,57(1):34-44. DOI: 10.7652/xjtuxb202301004. DOI:
ZHAO Pan, ZHANG Shiqiang, XU Wenpan, et al. Performance Analysis of a Near-Isothermal Compressed Carbon Dioxide Energy Storage System with Near Constant Discharge Process[J]. 2023, 57(1): 34-44. DOI: 10.7652/xjtuxb202301004.
为满足小容量特殊负载对(近似)稳定电能供应的需求
本文遵循(近似)等温压缩空气储能的基本原理
采用液压活塞和压力容器壁内置螺旋盘管换热的方式
基于气/液相变过程
提出了具备近似等压放电过程的近似等压等温压缩CO
2
储能系统。通过建立系统核心部件的热力学分析模型与性能评价指标
分析了该系统在初次充放电循环中的性能
探究了压力容器初始压力、最大压力和螺旋盘管水温等参数变化时的系统性能
探索了系统有、无螺旋盘管换热对性能的影响规律。结果表明
该系统在初次充放电循环中充放电效率、热效率和能量密度分别为62.67%、53.05%和0.500 3 kW·h·m
-3
。同时
该系统在放电过程中可以获得近似恒定的电能输出
输出功率在636~840 kW范围内变化。本文的研究工作可丰富压缩气体储能理论体系
具有重要的实用价值和现实意义。
In order to supply(near)stable electricity to some small-scale special load
a near-isothermal compressed CO
2
energy storage system with near constant discharge process is proposed in this paper based on the basic principle of near-isothermal compressed air energy storage by applying the liquid piston
the heat transfer method via helical coil in pressure vessel wall and the gas/liquid phase change process. Firstly
the thermodynamic analysis models of the core components of this system are established and the performance indicators are given. Then
the p
erformance analysis in the initial round trip cycle of such system is analyzed. The parameter sensitivity analysis is also conducted
including the parameters of initial pressure of pressure vessel
maximum pressure of pressure vessel and water temperature in helical coil. Finally
the effect of heat transfer with and without helical coil configuration(on system performance is carried out. The results show that the round trip efficiency
thermal efficiency and energy density of the system are 62.67%
53.05% and 0.500 3 kW·h·m
-3
respectively. Meanwhile
the system also exhibits a near constant power output in the discharge process
which varies between 636 and 840 kW. The work of this paper can enrich the theoretical system of compressed gas energy storage
and has important practical value and significance.
中华人民共和国中央人民政府. 国务院印发《2030年前碳达峰行动方案》 [EB/OL].(2021-10-26)[2022-03-20]. http://www.gov.cn/xinwen/2021-10/26/content_5645001.htm.
JAFARI M, BOTTERUD A, SAKTI A. Decarbonizing power systems: a critical review of the role of energy storage [J]. Renewable and Sustainable Energy Reviews, 2022, 158: 112077.
ALI S, STEWART R A, SAHIN O. Drivers and barriers to the deployment of pumped hydro energy storage applications: systematic literature review [J]. Cleaner Engineering and Technology, 2021, 5: 100281.
傅昊, 张毓颖, 崔岩, 等. 压缩空气储能技术研究进展 [J]. 科技导报, 2016, 34(23): 81-87.
FU Hao, ZHANG Yuying, CUI Yan, et al.Research progress of compressed air energy storage systems [J]. Science Technology Review, 2016, 34(23): 81-87.
吴毅, 胡东帅, 王明坤, 等. 一种新型的跨临界CO2储能系统 [J]. 西安交通大学学报, 2016, 50(3): 45-49, 100.
WU Yi, HU Dongshuai, WANG Mingkun, et al. A novel transcritical CO2 energy storage system [J]. Journal of Xi'an Jiaotong University, 2016, 50(3): 45-49, 100.
GHAZIZADE-AHSAEE H, AMERI M. Energy and exergy investigation of a carbon dioxide direct-expansion geothermal heat pump [J]. Applied Thermal Engineering, 2018, 129: 165-178.
BAI Tao, YU Jianlin, YAN Gang. Advanced exergy analyses of an ejector expansion transcritical CO2 refrigeration system [J]. Energy Conversion and Management, 2016, 126: 850-861.
TIAN Hua, CHANG Liwen, SHU Gequn, et al. Multi-objective optimization of the carbon dioxide transcritical power cycle with various configurations for engine waste heat recovery [J]. Energy Conversion and Management, 2017, 148: 477-488.
ENRÍQUEZ L C, MUÑOZ-ANTÓN J, PEÑALOSA J M M V. Thermodynamic optimization of supercritical CO2 Brayton power cycles coupled to line-focusing solar fields [J]. Journal of Solar Energy Engineering, 2017, 139(6): 061005.
LIU Shengchun, WU Sicheng, HU Yukun, et al. Comparative analysis of air and CO2 as working fluids for compressed and liquefied gas energy storage technologies [J]. Energy Conversion and Management, 2019, 181: 608-620.
XU Mengjuan, ZHAO Pan, HUO Yaowu, et al. Thermodynamic analysis of a novel liquid carbon dioxide energy storage system and comparison to a liquid air energy storage system [J]. Journal of Cleaner Production, 2020, 242: 118437.
ZHANG Yuan, YANG Ke, HONG Hui, et al. Thermodynamic analysis of a novel energy storage system with carbon dioxide as working fluid [J]. Renewable Energy, 2016, 99: 682-697.
ZHANG Yuan, YAO Erren, WANG Tengyan. Comparative analysis of compressed carbon dioxide energy storage system and compressed air energy storage system under low-temperature conditions based on conventional and advanced exergy methods [J]. Journal of Energy Storage, 2021, 35: 102274.
LI Yi, YU Hao, TANG Dong, et al. A comparison of compressed carbon dioxide energy storage and compressed air energy storage in aquifers using numerical methods [J]. Renewable Energy, 2022, 187: 1130-1153.
ZHANG Xinrong, WANG Guanbang. Thermodynamic analysis of a novel energy storage system based on compressed CO2 fluid [J]. International Journal of Energy Research, 2017, 41(10): 1487-1503.
王冠邦, 张信荣. 热电储能技术及二氧化碳在其中的应用 [J]. 储能科学与技术, 2017, 6(6): 1239-1249.
WANG Guanbang, ZHANG Xinrong. Thermoelectric energy storage system and applications using CO2 cycles [J]. Energy Storage Science and Technology, 2017, 6(6): 1239-1249.
WANG Mingkun, ZHAO Pan, WU Yi, et al. Performance analysis of a novel energy storage system based on liquid carbon dioxide [J]. Applied Thermal Engineering, 2015, 91: 812-823.
WANG Mingkun, ZHAO Pan, YANG Yi, et al. Performance analysis of energy storage system based on liquid carbon dioxide with different configurations [J]. Energy, 2015, 93: 1931-1942.
SUN Wenxu, LIU Xu, YANG Xiaohu, et al. Design and thermodynamic performance analysis of a new liquid carbon dioxide energy storage system with low pressure stores [J]. Energy Conversion and Management, 2021, 239: 114227.
ZHAO Pan, XU Wenpan, GOU Feifei, et al. Performance analysis of a self-condensation compressed carbon dioxide energy storage system with vortex tube [J]. Journal of Energy Storage, 2021, 41: 102995.
LIU Hui, HE Qing, BORGIA A, et al. Thermodynamic analysis of a compressed carbon dioxide energy storage system using two saline aquifers at different depths as storage reservoirs [J]. Energy Conversion and Management, 2016, 127: 149-159.
CAO Zheng, DENG Jianqiang, ZHOU Shenghui, et al. Research on the feasibility of compressed carbon dioxide energy storage system with underground sequestration in antiquated mine goaf [J]. Energy Conversion and Management, 2020, 211: 112788.
郝银萍, 何青, 刘文毅. 多级回热式跨临界压缩二氧化碳储能系统热力性能分析 [J]. 热能动力工程, 2020, 35(4): 16-23.
HAO Yinping, HE Qing, LIU Wenyi. Thermal performance analysis of multi-stage regenerative transcritical compressed carbon dioxide energy storage system [J]. Journal of Engineering for Thermal Energy and Power, 2020, 35(4): 16-23.
XU Mengjuan, WANG Xu, WANG Zihua, et al. Preliminary design and performance assessment of compressed supercritical carbon dioxide energy storage system [J]. Applied Thermal Engineering, 2021, 183: 116153.
EL-GENK M S, SCHRIENER T M. A review and correlations for convection heat transfer and pressure losses in toroidal and helically coiled tubes [J]. Heat Transfer Engineering, 2017, 38(5): 447-474.
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