Hybridization of an internal combustion engine with a molten carbonate fuel cell for marine applications

被引:25
作者
Baccioli, Andrea [1 ]
Liponi, Angelica [1 ]
Szczesniak, Arkadiusz [2 ]
Desideri, Umberto [2 ]
Milewski, Jaroslaw [1 ]
机构
[1] Univ Pisa, Dept Energy Syst Terr & Construct Engn DESTeC, I-56122 Pisa, Italy
[2] Warsaw Univ Technol, Fac Power & Aeronaut Engn, Inst Heat Engn, 21-25 Nowowiejska St, PL-00665 Warsaw, Poland
关键词
Fuel cells; LNG; Modeling; Marine; Piston engine; Efficiency; MULTIOBJECTIVE OPTIMIZATION; SYSTEM; PERFORMANCE;
D O I
10.1016/j.apenergy.2021.117192
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
This study presents a proposed hybrid ship propulsion system combining an internal combustion engine and a molten carbonate fuel cell both powered by liquefied natural gas (LNG). Exhaust from the internal combustion engine is used as a CO2 source for cell operation, reducing CO2 emissions. Use of fuel stored at very low temperature requires heat for evaporation purposes. The fuel is used to condense water vapor from the fuel cell exhaust gases, returning the remainder to the fuel cell with the right amount of water. This solution increases the electricity generation efficiency of the fuel cell. We analyzed two different system configurations that differ in the way the anode off-gas is recirculated. In the first, all the unoxidized fuel is recirculated to the anode inlet; in the second, off-gas is joined with engine flue gas, and residual fuel burned in a combustion chamber before being sent to the cathode of the fuel cell, allowing to maintain an optimal CO2:O-2 ratio in the cathode flow of the fuel cell. A detailed numerical model of the system including cell operation was created in Aspen Hysys and optimized to maximize the system efficiency. Results showed that in configuration I the efficiency gain is about 4.9% with respect to the traditional engine. In configuration II the efficiency gain was only about 0.8%. We also analyzed the sensitivity of the systems from the point of view of the limitations occurring here (e.g., steam-to-carbon ratio or operating temperature). Finally, we discussed the size of such a fuel cell in relation to the internal combustion engine, the entire ship, as well as the impact of the increase in efficiency on the range of the vessel.
引用
收藏
页数:20
相关论文
共 58 条
[1]   Performance and availability of a marine generator-solid oxide fuel cell-gas turbine hybrid system in a very large ethane carrier [J].
Ahn, Junkeon ;
Park, Sung Ho ;
Noh, Yeelyong ;
Choi, Byung Il ;
Ryu, Jiheon ;
Chang, Daejun ;
Brendstrup, K. L. M. .
JOURNAL OF POWER SOURCES, 2018, 399 :199-206
[2]   Fuzzy-based failure mode and effect analysis (FMEA) of a hybrid molten carbonate fuel cell (MCFC) and gas turbine system for marine propulsion [J].
Ahn, Junkeon ;
Noh, Yeelyong ;
Park, Sung Ho ;
Choi, Byung Il ;
Chang, Daejun .
JOURNAL OF POWER SOURCES, 2017, 364 :226-233
[3]  
[Anonymous], DESIGN DYNAMIC MCFC
[4]  
[Anonymous], J POWER TECHNOL
[5]   Thermal characterization of an alkaline electrolysis cell for hydrogen production at atmospheric pressure [J].
Barco-Burgos, J. ;
Eicker, U. ;
Saldana-Robles, N. ;
Saldana-Robles, A. L. ;
Alcantar-Camarena, V .
FUEL, 2020, 276
[6]  
Bard Meek -Hansen M, 2002, MAR PAP IMTA C GOLD
[7]   MCFC-based marine APU: Comparison between conventional ATR and cracking coupled with SR integrated inside the stack pressurized vessel [J].
Bensaid, S. ;
Specchia, S. ;
Federici, F. ;
Saracco, G. ;
Specchia, V. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2009, 34 (04) :2026-2042
[8]   Cruise ships power plant optimisation and comparative analysis [J].
Bolbot, Victor ;
Trivyza, Nikoletta L. ;
Theotokatos, Gerasimos ;
Boulougouris, Evangelos ;
Rentizelas, Athanasios ;
Vassalos, Dracos .
ENERGY, 2020, 196
[9]   A NEW METHOD OF CONSTRAINED OPTIMIZATION AND A COMPARISON WITH OTHER METHODS [J].
BOX, MJ .
COMPUTER JOURNAL, 1965, 8 (01) :42-52
[10]   MCFC-based CO2 capture system for small scale CHP plants [J].
Desideri, Umberto ;
Proietti, Stefania ;
Sdringola, Paolo ;
Cinti, Giovanni ;
Curbis, Filippo .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2012, 37 (24) :19295-19303