LNG regasification and electricity production for port energy communities: Economic profitability and thermodynamic performance

被引:20
作者
Fioriti, Davide [1 ]
Baccioli, Andrea [1 ]
Pasini, Gianluca [1 ]
Bischi, Aldo [1 ]
Migliarini, Francesco [1 ]
Poli, Davide [1 ]
Ferrari, Lorenzo [1 ]
机构
[1] Univ Pisa, Dept Energy Syst Terr & Construct Engn DESTEC, Pisa, Italy
关键词
LNG regasification; Cryogenic Energy Recovery; Waste Heat Recovery; Transcritical CO2 cycle; Thermodynamic and economic optimization; Cold Ironing; LIQUEFIED NATURAL-GAS; WASTE-HEAT-RECOVERY; ORGANIC RANKINE-CYCLE; COLD ENERGY; WORKING FLUIDS; CARBON-DIOXIDE; CONFIGURATIONS; OPTIMIZATION; EFFICIENCY; EXERGY;
D O I
10.1016/j.enconman.2021.114128
中图分类号
O414.1 [热力学];
学科分类号
摘要
The integration of electricity and gas systems is a key priority for the energy transition. Alongside electricity, low-carbon energy vectors, such as Liquified Natural Gas (LNG) or hydrogen, are required in future energy systems. Hence, regasification systems, often located nearby port areas, will be strategic assets promoting environmental, social, and economic benefits. This study investigates and compares three integrated configurations exploiting LNG cold exergy for the efficient production of electricity in a port area . In all three configurations, electricity is produced by a gas turbine fuelled with regasified natural gas and different combinations of two bottoming cycles, consisting of a transcritical CO2 Rankine cycle and a natural gas direct expansion cycle. These configurations are compared with a traditional regasification and combined cycle power plant. The study aims at identifying the design of the system that maximizes the second law efficiency and the Net Present Value (NPV) for various relative sizes between gas turbine and regasification capacity, including analyses on Internal Rate of Return (IRR). A sensitivity analysis on the installation of turbine inlet air-cooling taking advantage of LNG cold exergy is also performed. The optimization is performed through Particle Swarm Optimization (PSO) algorithm and Aspen Hysys. Results show that the mutual size between the gas turbine and regasification unit is an important variable that requires careful analysis, as the second law efficiency can vary between 49% and 42% depending on the case. Electric efficiency of the proposed configurations can approach 65%, thus resulting greater than the traditional combined cycle in most of the test conditions. Economic optimizations confirm that the NPV of two configurations is often 10-15 M(sic) greater than the corresponding value of the base case system; however, only a single configuration can increase the IRR by 1-2% in comparison to the case with separate units. These results can guide designers and developers in the definition of the most cost-effective solution of any integrated energy systems including regasification, similar to a port system, which are expected to be key facilities in the future energy scenario.
引用
收藏
页数:16
相关论文
共 57 条
[31]   A review on constraint handling strategies in particle swarm optimisation [J].
Jordehi, A. Rezaee .
NEURAL COMPUTING & APPLICATIONS, 2015, 26 (06) :1265-1275
[32]   Cold utilization systems of LNG: A review [J].
Kanbur, Baris Burak ;
Xiang, Liming ;
Dubey, Swapnil ;
Choo, Fook Hoong ;
Duan, Fei .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2017, 79 :1171-1188
[33]   Power augmentation of combined cycle power plants using cold energy of liquefied natural gas [J].
Kim, TS ;
Ro, ST .
ENERGY, 2000, 25 (09) :841-856
[34]   Analysis of increasing efficiency of modern combined cycle power plant: A case study [J].
Kotowicz, Janusz ;
Brzeczek, Mateusz .
ENERGY, 2018, 153 :90-99
[35]   Operation optimization on the large-scale CHP station composed of multiple CHP units and a thermocline heat storage tank [J].
Lai, Fen ;
Wang, Shan ;
Liu, Ming ;
Yan, Junjie .
ENERGY CONVERSION AND MANAGEMENT, 2020, 211
[36]   Cost Engineering Techniques and Their Applicability for Cost Estimation of Organic Rankine Cycle Systems [J].
Lemmens, Sanne .
ENERGIES, 2016, 9 (07)
[37]   Multi-effect distillation plants for small-scale seawater desalination: thermodynamic and economic improvement [J].
Liponi, Angelica ;
Wieland, Christoph ;
Baccioli, Andrea .
ENERGY CONVERSION AND MANAGEMENT, 2020, 205 (205)
[38]   Carbon Dioxide as Working Fluids in Transcritical Rankine Cycle for Diesel Engine Multiple Waste Heat Recovery in Comparison to Hydrocarbons [J].
Liu Peng ;
Shu Gequn ;
Tian Hua .
JOURNAL OF THERMAL SCIENCE, 2019, 28 (03) :494-504
[39]   Renewable energy communities under the 2019 European Clean Energy Package - Governance model for the energy clusters of the future? [J].
Lowitzsch, J. ;
Hoicka, C. E. ;
van Tulder, F. J. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2020, 122
[40]   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