Integrated techno-economic assessment of Liquid Air Energy Storage (LAES) under off-design conditions: Links between provision of market services and thermodynamic performance
暂无分享,去创建一个
Pierluigi Mancarella | Adriano Sciacovelli | Andrea Vecchi | Yongliang Li | Yongliang Li | P. Mancarella | A. Sciacovelli | A. Vecchi
[1] Jincan Chen,et al. Performance optimization and comparison of pumped thermal and pumped cryogenic electricity storage systems , 2016 .
[2] Alfio Quarteroni,et al. Scientific Computing with MATLAB and Octave , 2006 .
[3] Andrea Toffolo,et al. An Organic Rankine Cycle off-design model for the search of the optimal control strategy , 2013 .
[4] Goran Strbac,et al. A MILP model for optimising multi-service portfolios of distributed energy storage , 2015 .
[5] Yongliang Li,et al. Liquid air energy storage flexibly coupled with LNG regasification for improving air liquefaction , 2019, Applied Energy.
[6] Li Wang,et al. Enhancement of round trip efficiency of liquid air energy storage through effective utilization of heat of compression , 2017 .
[7] Alexander J. White,et al. Wave propagation and thermodynamic losses in packed-bed thermal reservoirs for energy storage , 2014 .
[8] Peter J. G. Pearson,et al. The role of large scale storage in a GB low carbon energy future: Issues and policy challenges , 2011 .
[9] Tatiana Morosuk,et al. Cryogenics-based energy storage: Evaluation of cold exergy recovery cycles , 2017 .
[10] W. F. Castle. Air separation and liquefaction: recent developments and prospects for the beginning of the new millennium , 2002 .
[11] M. Kanoğlu,et al. Cryogenic energy storage powered by geothermal energy , 2019, Geothermics.
[12] Haisheng Chen,et al. Cryogenic energy storage characteristics of a packed bed at different pressures , 2014 .
[13] A. Romagnoli,et al. Liquid Air Energy Storage performance enhancement by means of Organic Rankine Cycle and Absorption Chiller , 2018, Applied Energy.
[14] G. Tsatsaronis,et al. Exergoeconomic optimization of an adiabatic cryogenics-based energy storage system , 2019, Energy.
[15] Hamidreza Zareipour,et al. Considering Thermodynamic Characteristics of a CAES Facility in Self-Scheduling in Energy and Reserve Markets , 2018, IEEE Transactions on Smart Grid.
[16] Hadi Khani,et al. Real-Time Optimal Dispatch and Economic Viability of Cryogenic Energy Storage Exploiting Arbitrage Opportunities in an Electricity Market , 2015, IEEE Transactions on Smart Grid.
[17] Adriano Sciacovelli,et al. CSP plants with thermocline thermal energy storage and integrated steam generator – Techno-economic modeling and design optimization , 2017 .
[18] Giorgio Locatelli,et al. Assessing the economics of large Energy Storage Plants with an optimisation methodology , 2015 .
[19] Adriano Sciacovelli,et al. Performance analysis and detailed experimental results of the first liquid air energy storage plant in the world , 2018 .
[20] Jiangfeng Wang,et al. Off-design performance comparative analysis between basic and parallel dual-pressure organic Rankine cycles using radial inflow turbines , 2018, Applied Thermal Engineering.
[21] Florian Steinke,et al. Grid vs. storage in a 100% renewable Europe , 2013 .
[22] Vittorio Verda,et al. CFD-based reduced model for the simulation of thermocline thermal energy storage systems , 2015 .
[23] Tatiana Morosuk,et al. Exergy-Based and Economic Evaluation of Liquefaction Processes for Cryogenics Energy Storage , 2019, Energies.
[24] Laijun Chen,et al. Thermodynamic analysis of a novel hybrid liquid air energy storage system based on the utilization of LNG cold energy , 2018, Energy.
[25] Hao Peng,et al. A study on performance of a liquid air energy storage system with packed bed units , 2018 .
[26] Esther Rojas,et al. Analytical function describing the behaviour of a thermocline storage tank: A requirement for annual simulations of solar thermal power plants , 2014 .
[27] Anthony Paul Roskilly,et al. Levelised Cost of Storage for Pumped Heat Energy Storage in comparison with other energy storage technologies , 2017 .
[28] Na Zhang,et al. Analytical solutions and typical characteristics of part-load performances of single shaft gas turbine and its cogeneration , 2002 .
[29] Shengwei Mei,et al. Thermodynamic Analysis of a Hybrid Power System Combining Kalina Cycle with Liquid Air Energy Storage , 2019, Entropy.
[30] Neal Wade,et al. An integrated approach for the analysis and control of grid connected energy storage systems , 2016 .
[31] Yulong Ding,et al. Liquid air energy storage (LAES) with packed bed cold thermal storage – From component to system level performance through dynamic modelling , 2017 .
[32] Yiping Dai,et al. Energy efficiency analysis and off-design analysis of two different discharge modes for compressed air energy storage system using axial turbines , 2016 .
[33] Tong Zhang,et al. Thermodynamic analysis of hybrid liquid air energy storage systems based on cascaded storage and effective utilization of compression heat , 2020 .
[34] Robert Morgan,et al. An analysis of a large-scale liquid air energy storage system , 2015 .
[35] Boqiang Lin,et al. Liquid air energy storage: Price arbitrage operations and sizing optimization in the GB real-time electricity market , 2019, Energy Economics.