Techno-economic analysis on a hybrid system with carbon capture and energy storage for liquefied natural gas cold energy utilization

被引:8
作者
Si, H. [1 ]
Chen, S. [1 ]
Xie, R. Y. [1 ]
Zeng, W. Q. [2 ]
Zhang, X. J. [1 ]
Jiang, L. [1 ]
机构
[1] Zhejiang Univ, Inst Refrigerat & Cryogen, Hangzhou 310027, Peoples R China
[2] Zhejiang Univ, Qingshanhu Energy Res Ctr, Hangzhou 310017, Peoples R China
基金
中国国家自然科学基金;
关键词
Carbon capture; Cold energy utilization; Liquid air energy storage; Techno-economic analysis; ORGANIC RANKINE-CYCLE; THERMODYNAMIC ANALYSIS; MULTIOBJECTIVE OPTIMIZATION; POWER-PLANTS; LNG; EXERGY; DESIGN;
D O I
10.1016/j.energy.2024.132958
中图分类号
O414.1 [热力学];
学科分类号
摘要
For cold energy utilization in the liquefied natural gas (LNG) regasification process, integrated cryogenic CO2 capture using high-grade cold energy is a mainstream method. However, high-grade cold energy for carbon capture may lead to a decrease in cold energy utilization efficiency. This paper aims to propose a hybrid system in which high-grade cold energy is used for liquid air energy storage (LAES) and post-combustion amine scrubbing technology is considered to replace cryogenic carbon capture for improved working efficiency. The medium and low-grade cold energy is utilized for similar working processes, e.g., organic Rankine cycle (ORC), carbon dioxide liquefaction, and data center cooling for comparison. Results show that the proposed hybrid system can produce 437.7 MW of power, 28.8 t.h- 1 of CO2 capture capacity, and 23.0 MW of cooling capacity, respectively. The levelized cost of electricity and the annual revenue are 112.3 $.MWh- 1 and 2.17 million $, respectively. LNG cold energy utilization efficiency, system energy efficiency, and cold exergy efficiency are 53.4 %, 24.0 %, and 51.5 %, higher than similar processes using cryogenic CO2 capture. It is demonstrated that the proposed system could be a promising method for cold energy utilization and post-combustion capture.
引用
收藏
页数:14
相关论文
共 50 条
[1]   Exergetic, economic and environmental (3E) analyses, and multiobjective optimization of a CO2/NH3 cascade refrigeration system [J].
Aminyavari, Mehdi ;
Najafi, Behzad ;
Shirazi, Alec ;
Rinaldi, Fabio .
APPLIED THERMAL ENGINEERING, 2014, 65 (1-2) :42-50
[2]   Reduction of efficiency penalty for a natural gas combined cycle power plant with post-combustion CO2 capture: Integration of liquid natural gas cold energy [J].
Bao, Junjiang ;
Zhang, Lei ;
Song, Chunxiao ;
Zhang, Ning ;
Guo, Minggang ;
Zhang, Xiaopeng .
ENERGY CONVERSION AND MANAGEMENT, 2019, 198
[3]   A thermodynamic review of cryogenic refrigeration cycles for liquefaction of natural gas [J].
Chang, Ho-Myung .
CRYOGENICS, 2015, 72 :127-147
[4]   Economic evaluation of energy efficient hydrate based desalination utilizing cold energy from liquefied natural gas (LNG) [J].
Chong, Zheng Rong ;
He, Tianbiao ;
Babu, Ponnivalavan ;
Zheng, Jia-nan ;
Linga, Praveen .
DESALINATION, 2019, 463 :69-80
[5]   Thermodynamic analysis and efficiency assessment of a novel multi-generation liquid air energy storage system [J].
Cui, Shuangshuang ;
Song, Jintao ;
Wang, Tingting ;
Liu, Yixue ;
He, Qing ;
Liu, Wenyi .
ENERGY, 2021, 235
[6]   Techno-economic analysis of a hybrid CO2 capture system for natural gas combined cycles with selective exhaust gas recirculation [J].
Diego, Maria Elena ;
Bellas, Jean-Michel ;
Pourkashanian, Mohamed .
APPLIED ENERGY, 2018, 215 :778-791
[7]  
Dwyer S, 2018, renewables global status report
[8]   Thermo-economic analysis of the integrated bidirectional peak shaving system consisted by liquid air energy storage and combined cycle power plant [J].
Gao, Zhaozhao ;
Ji, Wei ;
Guo, Luna ;
Fan, Xiaoyu ;
Wang, Junjie .
ENERGY CONVERSION AND MANAGEMENT, 2021, 234
[9]   Thermodynamic and economic analysis of a trigeneration system based on liquid air energy storage under different operating modes [J].
Gao, Zhaozhao ;
Guo, Luna ;
Ji, Wei ;
Xu, Hao ;
An, Baolin ;
Wang, Junjie .
ENERGY CONVERSION AND MANAGEMENT, 2020, 221
[10]   Thermal integration of natural gas combined cycle power plants with CO2 capture systems and organic Rankine cycles [J].
Geovanni Esquivel-Patino, Gerardo ;
Serna-Gonzalez, Medardo ;
Napoles-Rivera, Fabricio .
ENERGY CONVERSION AND MANAGEMENT, 2017, 151 :334-342