Transient thermodynamic modeling and economic analysis of an adiabatic compressed air energy storage (A-CAES) based on cascade packed bed thermal energy storage with encapsulated phase change materials

被引:112
作者
Mousavi, Shadi Bashiri [1 ]
Adib, Mahdieh [1 ]
Soltani, M. [1 ,2 ,3 ,4 ]
Razmi, Amir Reza [1 ,5 ]
Nathwani, Jatin [3 ,6 ,7 ]
机构
[1] KN Toosi Univ Technol, Dept Mech Engn, Tehran, Iran
[2] Univ Waterloo, Dept Elect & Comp Engn, Waterloo, ON, Canada
[3] Univ Waterloo, Waterloo Inst Sustainable Energy, Waterloo, ON, Canada
[4] KN Toosi Univ Technol, Adv Energy Initiat Ctr, Tehran, Iran
[5] Univ Alberta, Dept Mech Engn, Edmonton, AB, Canada
[6] Univ Waterloo, Dept Management Sci, Waterloo, ON, Canada
[7] Univ Waterloo, Dept Civil & Environm Engn, Waterloo, ON, Canada
关键词
Packed bed thermal energy storage; Encapsulated phase change material; Adiabatic compressed air energy storage A-CAES; PILOT-SCALE DEMONSTRATION; EXERGY ANALYSIS; MULTIOBJECTIVE OPTIMIZATION; PERFORMANCE ASSESSMENT; SPHERICAL CONTAINERS; COST OPTIMIZATION; SINGLE-PCM; SYSTEM; HEAT; POWER;
D O I
10.1016/j.enconman.2021.114379
中图分类号
O414.1 [热力学];
学科分类号
摘要
With the penetration of solar and wind plants into the energy markets, power production is becoming more erratic; therefore, a promising energy storage system is required for a reliable grid. Adiabatic compressed air energy storage, as a large-scale energy storage technology, has great promise to mitigate the challenges of managing the variability and intermittency of renewable energy generation. The Thermal Energy Storage subsystem is a key component that improves the efficiency of adiabatic compressed air energy storage, making it a feasible option as a large-scale energy storage system for scalability. In this article, a comprehensive investigation of a novel, efficient, and green adiabatic compressed air energy storage system based on a cascade packed bed thermal energy storage filled with encapsulated phase-change materials is employed, encompassing thermodynamic and economic aspects of the cycle, and transient modeling of the TES tanks. The objective of the proposed concept is to recover the waste heat generated in the compression process as much as possible to improve system performance. In this regard, the influence of the introduced thermal energy storage configuration on the efficiency and exergy destruction of the system is studied and compared with basic designs. The findings show that round trip energy and exergy efficiencies of 61.5% and 68.2% with a payback period is 3.5 years, resulting from the consumption of low-price off-peak electricity for charging and generating power at the peak demand hours.
引用
收藏
页数:19
相关论文
共 88 条
[21]  
Dincer I., 2017, Optimization of Energy Systems
[22]   Optimization of thermal performance in thermocline tank thermal energy storage system with the multilayered PCM(s) for CSP tower plants [J].
Elfeky, K. E. ;
Li, Xinyi ;
Ahmed, N. ;
Lu, Lin ;
Wang, Qiuwang .
APPLIED ENERGY, 2019, 243 :175-190
[23]   Numerical comparison between single PCM and multi-stage PCM based high temperature thermal energy storage for CSP tower plants [J].
Elfeky, K. E. ;
Ahmed, N. ;
Wang, Qiuwang .
APPLIED THERMAL ENGINEERING, 2018, 139 :609-622
[24]   A review on phase change energy storage: materials and applications [J].
Farid, MM ;
Khudhair, AM ;
Razack, SAK ;
Al-Hallaj, S .
ENERGY CONVERSION AND MANAGEMENT, 2004, 45 (9-10) :1597-1615
[25]   Pilot-scale demonstration of advanced adiabatic compressed air energy storage, Part 1: Plant description and tests with sensible thermal-energy storage [J].
Geissbuhler, L. ;
Becattini, V. ;
Zanganeh, G. ;
Zavattoni, S. ;
Barbato, M. ;
Haselbacher, A. ;
Steinfeld, A. .
JOURNAL OF ENERGY STORAGE, 2018, 17 :129-139
[26]   Thermodynamic analysis of CAES/TES systems for renewable energy plants [J].
Grazzini, Giuseppe ;
Milazzo, Adriano .
RENEWABLE ENERGY, 2008, 33 (09) :1998-2006
[27]   Thermodynamic characteristics of a novel supercritical compressed air energy storage system [J].
Guo, Huan ;
Xu, Yujie ;
Chen, Haisheng ;
Zhou, Xuezhi .
ENERGY CONVERSION AND MANAGEMENT, 2016, 115 :167-177
[28]   Thermal Design and Analysis of a Solid-State Grid-Tied Thermal Energy Storage for Hybrid Compressed Air Energy Storage Systems [J].
Hakamian, Khashayar ;
Anderson, Kevin R. ;
Shafahi, Maryam ;
Lakeh, Reza Baghaei .
JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME, 2019, 141 (06)
[29]   Simulation and analysis of different adiabatic Compressed Air Energy Storage plant configurations [J].
Hartmann, Niklas ;
Voehringer, O. ;
Kruck, C. ;
Eltrop, L. .
APPLIED ENERGY, 2012, 93 :541-548
[30]   Review on sustainable thermal energy storage technologies, part I: Heat storage materials and techniques [J].
Hasnain, SM .
ENERGY CONVERSION AND MANAGEMENT, 1998, 39 (11) :1127-1138