Thermodynamic analysis of cold energy recovery from LNG regasification

被引:11
作者
Zonfrilli, M. [1 ,2 ]
Facchino, M. [1 ]
Serinelli, R. [2 ]
Chesti, M. [2 ]
De Falco, M. [1 ]
Capocelli, M. [1 ]
机构
[1] Univ Campus Biomed Roma, Dept Engn, Unit Proc Engn, Via Alvaro del Portillo 21, I-00128 Rome, Italy
[2] Rome Operating Ctr Technip Energies Italy SpA, Gas Proc GTL & CO2 Capture Technol, Viale Castello Magliana 40-46, I-00148 Rome, Italy
关键词
Exergy; LNG; Regasification; Cold energy; ASU; CCS; Liquefaction; Aspen Hysys; LIQUEFIED NATURAL-GAS; CO2; CAPTURE; HYDROGEN-PRODUCTION; EXERGY; OPTIMIZATION; PLANT; CONFIGURATIONS; GENERATION; HEAT;
D O I
10.1016/j.jclepro.2023.138443
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The LNG market connects numerous export and import markets, and the global LNG trade has been growing steadily. Despite the availability of multiple alternatives, only a small fraction of this global cryogenic potential is currently utilized, and a negligible number of regasification terminals are equipped with cold energy recovery systems. This paper explores various options for recovering cold energy from LNG regasification processes including electricity production, refrigeration, cryogenic separation processes, CO 2 capture and liquefaction. The present study examines the industrial recovery options, proposing both conventional and innovative process schemes and analysing them in terms of their thermodynamic modelling and feasibility. Nine case studies were selected and simulated using Aspen Hysys software, considering material and energy balances. Specific energy consumptions are calculated, and an exergetic comparison methodology is adopted to provide a unified approach capable to embrace heterogeneous systems utilizing mechanical/electrical energy, thermal energy, and "chemical energy". The temperature profiles are examined, and sensitivity analyses are performed on key parameters. The integration of direct cooling and condensation brings high exergy efficiency of above 40% and economic advantages due to the absence of an external refrigeration cycle. Coupling regasification with CO2 liquefaction reduces specific energy consumption by 53% compared to the conventional process. Similarly, in the case of an ethylene production plant, energy consumption is reduced by 95%. Simulations for electricity generation using an ORC cycle with LNG as the cold source achieve around 25% exergy efficiency, but the LCOE (Levelized Cost of Electricity) is attractive, ranging from 0.07 to 0.09 euro/kWh. Integration with an Air Separation Unit (ASU) for cryogenic distillation leads to a 41% decrease in specific energy consumption. Further integration with Allam and cascade ORC cycles has been simulated. Globally, air separation shows exergy efficiencies of 37-38%, which is higher than the average 25% obtained from conventional thermodynamic cycles with low-temperature hot sources. Regarding cryogenic CO2 capture, it exhibits lower specific energy consumption compared to traditional processes. The exergy efficiency is high at 22%, and the LCOP (Levelized Cost of CO2 Production) of 55 euro/ton is attractive for carbon capture processes that can be coupled with regasification units and NG utilization (a.e. for hydrogen and electricity production).
引用
收藏
页数:15
相关论文
共 50 条
[31]   Thermodynamic analysis of integrated LNG regasification process configurations [J].
Mehrpooya, Mehdi ;
Sharifzadeh, Mohammad Mehdi Moftakhari ;
Katooli, Mohammad H. .
PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 2018, 69 :1-27
[32]   SYSTEM ANALYSIS OF WASTE HEAT APPLICATIONS WITH LNG REGASIFICATION [J].
Gonzalez-Salazar, Miguel Angel ;
Belloni, Clarissa ;
Finkenrath, Matthias ;
Berti, Simone ;
Gamberi, Francesco .
PROCEEDINGS OF ASME TURBO EXPO 2009, VOL 4, 2009, :243-255
[33]   Thermodynamic analysis of extraction processes for the utilization of LNG cold energy [J].
Lee, GS ;
Chang, YS ;
Kim, MS ;
Ro, ST .
CRYOGENICS, 1996, 36 (01) :35-40
[34]   A novel system of liquid air energy storage with LNG cold energy and industrial waste heat: Thermodynamic and economic analysis [J].
Li, Junxian ;
Fan, Xiaoyu ;
Li, Yihong ;
Wang, Zhikang ;
Gao, Zhaozhao ;
Ji, Wei ;
Chen, Liubiao ;
Wang, Junjie .
JOURNAL OF ENERGY STORAGE, 2024, 86
[35]   A novel sustainable biomass-fueled cogeneration cycle integrated with carbon dioxide capture utilizing LNG regasification and green hydrogen production via PEM electrolysis: Thermodynamic assessment [J].
Laleh, Shayan Sharafi ;
Gharamaleki, Fatemeh Parnian ;
Alavi, SeyedHamed Fatemi ;
Soltani, Saeed ;
Mahmoudi, S. M. S. ;
Rosen, Marc A. .
JOURNAL OF CLEANER PRODUCTION, 2023, 421
[36]   Performance analysis of a CCHP system based on SOFC/GT/CO2 cycle and ORC with LNG cold energy utilization [J].
Liu, Yang ;
Han, Jitian ;
You, Huailiang .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2019, 44 (56) :29700-29710
[37]   Efficiency criteria and comparative analysis of combined energy plants utilizing LNG cold energy [J].
Blagin, E. V. ;
Shimanov, A. A. ;
Dovgyallo, A. I. ;
Uglanov, D. A. .
OIL AND GAS ENGINEERING (OGE-2016), 2016, 152 :219-225
[38]   Comparative thermodynamic analyses of Rankine cycles using different working fluids for LNG cold energy recovery [J].
Liu, Qiang ;
Song, Jian ;
Duan, Yuanyuan .
CASE STUDIES IN THERMAL ENGINEERING, 2025, 69
[39]   Multi-parameter optimization of cold energy recovery in cascade Rankine cycle for LNG regasification using genetic algorithm [J].
Lee, Sangick .
ENERGY, 2017, 118 :776-782
[40]   Exergy recovery during LNG regasification: Electric energy production - Part one [J].
Dispenza, Celidonio ;
Dispenza, Giorgio ;
La Rocca, Vincenzo ;
Panno, Giuseppe .
APPLIED THERMAL ENGINEERING, 2009, 29 (2-3) :380-387