Energy, Exergy, and Economic (3E) Analysis of Boil-Off Gas Re-Liquefaction Systems Using LNG Cold Energy for LNG-Fueled Ships

Энергетический, эксергетический и экономический (3E) анализ систем повторного сжижения отпарного газа с использованием холода СПГ для судов, работающих на СПГ
Jun-Seong Kim, Do-Yeop Kim
2023-03-10

LNG cold energyN2 reverse Brayton cycleboil-off gas re-liquefactionexergy efficiencygenetic algorithm optimization
Liquefied natural gas (LNG)-fueled ships have the effect of reducing most pollutants, which is advantageous for responding to strict regulations. Because boil-off gas (BOG) is generated in the LNG storage tank of an LNG-fueled ship, a BOG re-liquefaction system is required. The representative systems for LNG-fueled ships were proposed by Kwak and Shen, but their exergy efficiencies were only 19.6% and 24.9%, respectively. To improve the system, this paper proposes novel BOG re-liquefaction systems combined with the fuel gas supply system. The systems utilize LNG cold energy in the BOG stream and N2 reverse Brayton cycle, respectively. The proposed systems were simulated using a commercial program and were optimized using a genetic algorithm. The results of energy, exergy, and economic (3E) analyses performed for comprehensive evaluation of the proposed system show that the system in which LNG cold energy is applied to the BOG stream has the best performance. Specific energy consumption, exergy efficiency, and total annual costs of this system were improved by up to 78.6%, 69.2%, and 68.2%, respectively, compared to those of the existing systems. The overwhelmingly superior system is expected to greatly contribute to the improvement of the BOG re-liquefaction system for LNG-fueled ships.
1
Compared with existing systems, the best configuration improved specific energy consumption, exergy efficiency, and total annual costs by up to 78.6%, 69.2%, and 68.2%, respectively.
2
Novel BOG re-liquefaction systems were developed by integrating the process with the fuel gas supply system for LNG-fueled ships.
3
The LNG-cold-energy configuration achieved the best overall energy, exergy, and economic performance among the evaluated systems.
4
The proposed approach addresses the low exergy efficiencies of representative existing systems, reported as 19.6% and 24.9%.
5
The proposed systems use either LNG cold energy in the BOG stream or an N2 reverse Brayton cycle, and were optimized using a genetic algorithm.

BOG re-liquefaction systems combined with the fuel gas supply system for LNG-fueled ships

Energy, exergy, and economic performance of the systems, including the effects of using LNG cold energy and an N2 reverse Brayton cycle

Publication Details
Publication Date
2023-03-10
Journal
Publisher
ISSN
Cited by
14
Access Type
Author Information
Authors
Jun-Seong Kim
Do-Yeop Kim
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%