Integration of solid oxide fuel cell and internal combustion engine for maritime applications

被引:51
|
作者
Sapra, Harsh [1 ]
Stam, Jelle [2 ]
Reurings, Jeroen [3 ]
van Biert, Lindert [1 ]
van Sluijs, Wim [4 ]
de Vos, Peter [1 ]
Visser, Klaas [1 ]
Vellayani, Aravind Purushothaman [2 ]
Hopman, Hans [1 ]
机构
[1] Delft Univ Technol, Dept Maritime & Transport Technol, Mekelweg 2, NL-2628 CD Delft, Netherlands
[2] Delft Univ Technol, Dept Proc & Energy, Mekelweg 2, NL-2628 CD Delft, Netherlands
[3] Minist Def, Def Mat Org, Maritime Syst, NL-3584 AB Utrecht, Netherlands
[4] Pon Power Nederland, Ketelweg 20, NL-3356 LE Papendrecht, Netherlands
关键词
Combined cycle; Experiments; Modelling and simulations; SOFC-ICE integration; Maritime; Dynamic load response; HYBRID SYSTEM; PERFORMANCE ANALYSIS; HIGH-EFFICIENCY; COMBINED HEAT; STEADY-STATE; HCCI ENGINE; POWER; SOFC; VALIDATION; MODEL;
D O I
10.1016/j.apenergy.2020.115854
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The current literature on solid oxide fuel cell and internal combustion engine (SOFC-ICE) integration is focused on the application of advanced combustion technologies operating as bottoming cycles to generate a small load share. This integration approach can pose challenges for ships such as restricted dynamic capabilities and large space and weight requirements. Furthermore, the potential of SOFC-ICE integration for marine power generation has not been explored. Consequently, the current work proposes a novel approach of SOFC-ICE integration for maritime applications, which allows for high-efficiency power generation while the SOFC anode-off gas (AOG) is blended with natural gas (NG) and combusted in a marine spark-ignited (SI) engine for combined power gen-eration. The objective of this paper is to investigate the potential of the proposed SOFC-ICE integration approach with respect to system efficiency, emissions, load sharing, space and weight considerations and load response. In this work, a verified zero-dimensional (0-D) SOFC model, engine experiments and a validated AOG-NG mean value engine model is used. The study found that the SOFC-ICE integration, with a 67-33 power split at 750 kWe power output, yielded the highest efficiency improvement of 8.3% over a conventional marine natural gas engine. Simulation results showed that promising improvements in efficiency of 5.2%, UHC and NOx reductions of about 30% and CO2 reductions of about 12% can be achieved from a 33-67 SOFC-ICE power split with comparatively much smaller increments in size and weight of 1.7 times. Furthermore, the study concluded that in the proposed SOFC-ICE system for maritime applications, a power split that favours the ICE would significantly improve the dynamic capabilities of the combined system and that the possible sudden and large load changes can be met by the ICE.
引用
收藏
页数:22
相关论文
共 50 条
  • [31] Energy integration strategies for solid oxide fuel cell systems
    Cresswell, D. L.
    Metcalfe, I. S.
    SOLID STATE IONICS, 2006, 177 (19-25) : 1905 - 1910
  • [32] Portable solid oxide fuel cell system integration and demonstration
    Minh, N
    Anumakonda, A
    Doshi, R
    Guan, J
    Huss, S
    Lear, G
    Montgomery, K
    Ong, E
    Yamanis, J
    SOLID OXIDE FUEL CELLS VII (SOFC VII), 2001, 2001 (16): : 190 - 195
  • [33] Numerical Analysis of Combustion Process in the Dual Fuel Internal Combustion Engine
    Stipic M.
    Basara B.
    Schmidt S.
    Adams N.
    SAE International Journal of Advances and Current Practices in Mobility, 2023, 6 (02): : 628 - 639
  • [34] Work of the internal combustion engine fuelled with the gaseous fuel
    Postrzednik, S
    Zmudka, Z
    OCOS 2000: FROM THERMO-ECONOMICS TO SUSTAINABILITY, PTS 1-4, 2000, : 679 - 689
  • [35] Internal combustion engine vibrations depending on the fuel type
    Gutierrez, Marcos
    Castillo, Andres
    Iniguez, Juan
    Perez, Diego
    DYNA, 2019, 94 (02): : 128 - 128
  • [36] Study of utilization of hydrogen as fuel in internal combustion engine
    Aggarwal, Aman
    Yadav, Suyash
    Singh, Kshitij
    Verma, Ajay Singh
    Chhabra, Sandeep
    MATERIALS TODAY-PROCEEDINGS, 2022, 64 : 1211 - 1216
  • [37] IMPACT OF FUEL TYPE ON THE INTERNAL COMBUSTION ENGINE CONDITION
    Schauperl, Zdravko
    Niksic, Mladen
    Kolednjak, Davor
    PROMET-TRAFFIC & TRANSPORTATION, 2012, 24 (04): : 285 - 293
  • [38] Construction of combustion models for rapeseed methyl ester bio-diesel fuel for internal combustion engine applications
    Golovitchev, Valeri I.
    Yang, Junfeng
    BIOTECHNOLOGY ADVANCES, 2009, 27 (05) : 641 - 655
  • [39] Performance analysis of hybrid power system of aviation fuel cell internal combustion engine with methanol fuel
    Li C.
    Wang Z.
    Ha C.
    Zhou Z.
    Qin J.
    Wei L.
    Tuijin Jishu/Journal of Propulsion Technology, 2024, 45 (03):
  • [40] Integration of Innovative Oxide Materials in an Intermediate Temperature Solid Oxide Fuel Cell
    Morandi, A.
    Fu, Q.
    Marrony, M.
    Bassat, J-M
    Joubert, O.
    SOLID OXIDE FUEL CELLS 13 (SOFC-XIII), 2013, 57 (01): : 733 - 742