1 |
TONG Z M, CHENG Z W, TONG S G. A review on the development of compressed air energy storage in China: Technical and economic challenges to commercialization[J]. Renewable and Sustainable Energy Reviews, 2021, 135: doi: 10.1016/j.rser.2020.110178.
|
2 |
HARTMANN N, VÖHRINGER O, KRUCK C, et al. Simulation and analysis of different adiabatic compressed air energy storage plant configurations[J]. Applied Energy, 2012, 93: 541-548.
|
3 |
PENG H, YANG Y, LI R, et al. Thermodynamic analysis of an improved adiabatic compressed air energy storage system[J]. Applied Energy, 2016, 183: 1361-1373.
|
4 |
YANG K, ZHANG Y, LI X M, et al. Theoretical evaluation on the impact of heat exchanger in advanced adiabatic compressed air energy storage system[J]. Energy Conversion and Management, 2014, 86: 1031-1044.
|
5 |
ZHANG Y, YANG K, LI X M, et al. The thermodynamic effect of air storage chamber model on advanced adiabatic compressed air energy storage system[J]. Renewable Energy, 2013, 57: 469-478.
|
6 |
WANG S X, ZHANG X L, YANG L W, et al. Experimental study of compressed air energy storage system with thermal energy storage[J]. Energy, 2016, 103: 182-191.
|
7 |
GUO H, XU Y J, GUO C, et al. Off-design performance of CAES systems with low-temperature thermal storage under optimized operation strategy[J]. Journal of Energy Storage, 2019, 24: doi: 10.1016/j.est.2019.100787.
|
8 |
HAN Z H, SUN Y, LI P. Research on energy storage operation modes in a cooling, heating and power system based on advanced adiabatic compressed air energy storage[J]. Energy Conversion and Management, 2020, 208: doi: 10.1016/j.enconman.2020.112573.
|
9 |
GUO C, XU Y J, GUO H, et al. Comprehensive exergy analysis of the dynamic process of compressed air energy storage system with low-temperature thermal energy storage[J]. Applied Thermal Engineering, 2019, 147: 684-693.
|
10 |
CHEN L X, HU P, ZHAO P P, 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.
|
11 |
ZHOU S H, HE Y, CHEN H S, et al. Performance analysis of a novel adiabatic compressed air energy system with ejectors enhanced charging process[J]. Energy, 2020, 205: doi: 10.1016/j.energy.2020.118050.
|
12 |
ZHANG N, CAI R X. Analytical solutions and typical characteristics of part-load performances of single shaft gas turbine and its cogeneration[J]. Energy Conversion and Management, 2002, 43(9/10/11/12): 1323-1337.
|
13 |
ZHANG Y, XU Y J, ZHOU X Z, et al. Compressed air energy storage system with variable configuration for accommodating large-amplitude wind power fluctuation[J]. Applied Energy, 2019, 239: 957-968.
|
14 |
MOHTAR H, CHESSE P, CHALET D, et al. Effect of casing treatment and variable axial guide vanes on a turbocharger compressor performance[C]//Proceedings of ASME Turbo Expo 2009: Power for Land, Sea, and Air, Orlando, Florida, USA. 2010: 47-54.
|
15 |
HE S, LI Y, WANG R Z. Progress of mathematical modeling on ejectors[J]. Renewable and Sustainable Energy Reviews, 2009, 13(8): 1760-1780.
|
16 |
HE Y, ZHOU S H, XU Y J, et al. The influence of charging process on trigenerative performance of compressed air energy storage system[J]. International Journal of Energy Research, 2020, doi: 10.1002/er.5366.
|
17 |
ZHAO P, DAI Y P, WANG J F. Design and thermodynamic analysis of a hybrid energy storage system based on A-CAES (adiabatic compressed air energy storage) and FESS (flywheel energy storage system) for wind power application[J]. Energy, 2014, 70: 674-684.
|