西安交通大学能源与动力工程学院,西安,710049
: 2022-10-26。作者简介: 李瑞雄(1990—),男,讲师,硕士生导师
姚尔人(通信作者),男,讲师。基金项目: 国家自然科学基金资助项目(52106052)
网络首发:2023-05-10,
纸质出版:2023
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李瑞雄, 邹瀚森, 姚尔人, 等. 液体活塞近等温压缩空气储能过程热力性能评估[J]. 西安交通大学学报, 2023,57(5):58-67.
LI Ruixiong, ZOU Hansen, YAO Erren, et al. Thermodynamic Performance Evaluation of the Near-Isothermal Compressed Air Energy Storage System with Liquid Piston[J]. 2023, 57(5): 58-67.
李瑞雄, 邹瀚森, 姚尔人, 等. 液体活塞近等温压缩空气储能过程热力性能评估[J]. 西安交通大学学报, 2023,57(5):58-67. DOI: 10.7652/xjtuxb202305006.
LI Ruixiong, ZOU Hansen, YAO Erren, et al. Thermodynamic Performance Evaluation of the Near-Isothermal Compressed Air Energy Storage System with Liquid Piston[J]. 2023, 57(5): 58-67. DOI: 10.7652/xjtuxb202305006.
为进一步实现液体活塞在压缩空气储能过程全局热力性能的准确与快速评估
建立了基于容器尺寸(a)和喷淋参数(b)的储能过程热力性能无量纲评价模型
探究了压缩空气在近等温储能过程的热力性能变化特性
进而明确了液体活塞设备在近等温压缩空气储能系统中的重要地位。研究结果表明:无喷淋条件下
空气侧相对温度在无量纲a达到120时变化平缓
此时液体活塞可实现接近等温压缩
而较小的a会导致空气相对温度剧烈变化; 喷淋条件下
近等温压缩过程主要出现在压缩过程中期
且增加无量纲b导致a对空气侧相对温度的影响逐渐弱化; 液体活塞近等温压缩空气的理想运行效率可达到95%以上
而采用D155-30型号水泵驱动的液体活塞近等温压缩储能过程仅能实现66%的运行效率。
In this paper
a dimensionless evaluation model is established based on the container size(a)and spray parameter(b)to realize the accurate and rapid evaluation of the global thermodynamic performance in the near-isothermal compressed air energy storage process with a liquid piston. Research is conducted on the variation of thermodynamic parameters during the near-isothermal compressed air energy storage process. Finally
the significant effect of liquid piston on the compressed air energy storage system is clarified. The results show that
without spraying
the air-side relative temperature changes gently when the dimensionless number of a reaches 120
which indicates that the liquid piston can realize near-isothermal compression. However
a smaller value of a can result in dramatic change of the air-side relative temperature. Under the spraying condition
the near-isothermal compression mainly occurs in the middle stage of the compression process
and the increase of the dimensionless number of b can weaken the effect of a on the air-side relative temperature. The efficiency of near-isothermal compression with a liquid piston can be higher than 95% under ideal conditions
but with a D155-30 water pump under experimental conditions
it can only be 66%.
ZHANG Haoran, LI Ruixiong, CAI Xingrui, et al. Do electricity flows hamper regional economic-environmental equity? [J]. Applied Energy, 2022, 326: 120001.
HEPTONSTALL P J, GROSS R J K. A systematic review of the costs and impacts of integrating variable renewables into power grids [J]. Nature Energy, 2021, 6(1): 72-83.
梅生伟, 张通, 张学林, 等. 非补燃压缩空气储能研究及工程实践: 以金坛国家示范项目为例 [J]. 实验技术与管理, 2022, 39(5): 1-8, 14.
MEI Shengwei, ZHANG Tong, ZHANG Xuelin, et al. Research and engineering practice of non-supplementary combustion compressed air energy storage: taking Jintan national demonstration project as an example [J]. Experimental Technology and Management, 2022, 39(5): 1-8, 14.
席光, 姚尔人, 仲理科, 等. 一种压缩空气与热化学耦合储能的冷热电联产系统 [J]. 西安交通大学学报, 2021, 55(12): 1-8.
XI Guang, YAO Erren, ZHONG Like, et al. A novel combined cooling, heating and power system based on compressed air and thermochemical energy storage technology [J]. Journal of Xi'an Jiaotong University, 2021, 55(12): 1-8.
韩中合, 郭森闯. AA-CAES系统释能过程运行特性分析 [J]. 太阳能学报, 2020, 41(1): 295-301.
HAN Zhonghe, GUO Senchuang. Analysis of operation characteristics on discharge process of AA-CAES system [J]. Acta Energiae Solaris Sinica, 2020, 41(1): 295-301.
GUO Zhongjie, WEI Wei, CHEN Laijun, et al. Operation of distribution network considering compressed air energy storage unit and its reactive power support capability [J]. IEEE Transactions on Smart Grid, 2020, 11(4): 2954-2965.
CHEN Longxiang, HU Peng, ZHAO Panpan, et al. A novel throttling strategy for adiabatic compressed air energy storage system based on an ejector [J]. Energy Conversion and Management, 2018, 158: 50-59.
李姚旺, 苗世洪, 尹斌鑫, 等. 计及先进绝热压缩空气储能多能联供特性的微型综合能源系统优化调度模型 [J]. 发电技术, 2020, 41(1): 31-39.
LI Yaowang, MIAO Shihong, YIN Binxin, et al. Optimal dispatch model for micro integrated energy system considering multi-carrier energy generation characteristic of advanced adiabatic compressed air energy storage [J]. Power Generation Technology, 2020, 41(1): 31-39.
VECCHI A, LI Yongliang, MANCARELLA P, et al. Integrated techno-economic assessment of liquid air energy storage(LAES)under off-design conditions: links between provision of market services and thermodynamic performance [J]. Applied Energy, 2020, 262: 114589.
WANG Chen, AKKURT N, ZHANG Xiaosong, et al. Techno-economic analyses of multi-functional liquid air energy storage for power generation, oxygen production and heating [J]. Applied Energy, 2020, 275: 115392.
万玉珂, 吴闯, 刘朝, 等.液态存储跨临界压缩CO2储能系统性能分析 [J]. 西安交通大学学报, 2023,57(1): 25-33.
WAN Yuke, WU Chuang, LIU Chao, et al. Performance analysis of a transcritical compressed CO2 energy storage system based on liquid storage [J]. Journal of Xi'an Jiaotong University, 2023,57(1): 25-33.
WANG Xusheng, YANG Cheng, HUANG Manman, et al. Off-design performances of gas turbine-based CCHP combined with solar and compressed air energy storage with organic Rankine cycle [J]. Energy Conversion and Management, 2018, 156: 626-638.
JIANG Runhua, QIN F G F, CHEN Baiman, et al. Thermodynamic performance analysis, assessment and comparison of an advanced trigenerative compressed air energy storage system under different operation strategies [J]. Energy, 2019, 186: 115862.
YAN Yi, ZHANG Chenghui, LI Ke, et al. An integrated design for hybrid combined cooling, heating and power system with compressed air energy storage [J]. Applied Energy, 2018, 210: 1151-1166.
BI Xianyun, LIU Pei, LI Zheng. Thermo-dynamic analysis and simulation of a combined air and hydro energy storage(CAHES)system [J]. Energy, 2016, 116(Part 2): 1385-1396.
LI Ruixiong, TAO Rui, FENG Xiaojun, et al. Energy distributing and thermodynamic characteristics of a coupling near-isothermal compressed air energy storage system [J]. Journal of Energy Storage, 2023, 58: 106314.
QIN C, LOTH E, LI P, et al. Spray-cooling concept for wind-based compressed air energy storage [J]. Journal of Renewable and Sustainable Energy, 2014, 6(4): 043125.
ODUKOMAIYA A, ABU-HEIBA A, GLUESENKAMP K R, et al. Thermal analysis of near-isothermal compressed gas energy storage system [J]. Applied Energy, 2016, 179: 948-960.
FU Hao, JIANG Tong, CUI Yan, et al. Design and operational strategy research for temperature control systems of isothermal compressed air energy storage power plants [J]. Journal of Thermal Science, 2019, 28(2): 204-217.
ARJOMAND KERMANI N, ROKNI M. Heat transfer analysis of liquid piston compressor for hydrogen applications [J]. International Journal of Hydrogen Energy, 2015, 40(35): 11522-11529.
CHEN Hua, PENG Yuhang, WANG Yanling, et al. Thermodynamic analysis of an open type isothermal compressed air energy storage system based on hydraulic pump/turbine and spray cooling [J]. Energy Conversion and Management, 2020, 204: 112293.
VAN DE VEN J D, LI P Y. Liquid piston gas compression [J]. Applied Energy, 2009, 86(10): 2183-2191.
ORTEGO SAMPEDRO E, DAZIN A, COLAS F, et al. Multistage radial flow pump-turbine for compressed air energy storage: experimental analysis and modeling [J]. Applied Energy, 2021, 289: 116705.
CHEN Hao, WANG Huanran, LI Ruixiong, et al. Experimental and analytical investigation of near-isothermal pumped hydro-compressed air energy storage system [J]. Energy, 2022, 249: 123607.
LEFÈVRE A, MOTA J P B, RODRIGO A J S, et al. Chaotic advection and heat transfer enhancement in Stokes flows [J]. International Journal of Heat and Fluid Flow, 2003, 24(3): 310-321.
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