A validated dynamic model of the first marine molten carbonate fuel cell

被引:35
|
作者
Ovrum, E. [1 ]
Dimopoulos, G. [2 ]
机构
[1] DNV Res & Innovat, NO-1322 Hovik, Norway
[2] DNV Res & Innovat, Piraeus 18545, Greece
关键词
Marine; Molten carbonate; Fuel cell; Modeling; Validation; Dynamic; POLARIZATION; ELECTRODES;
D O I
10.1016/j.applthermaleng.2011.09.023
中图分类号
O414.1 [热力学];
学科分类号
摘要
In this work we present a modular, dynamic and multi-dimensional model of a molten carbonate fuel cell (MCFC) onboard the offshore supply vessel "Viking Lady" serving as an auxiliary power unit. The model is able to capture detailed thermodynamic, heat transfer and electrochemical reaction phenomena within the fuel cell layers. The model has been calibrated and validated with measured performance data from a prototype installation onboard the vessel. The model is able to capture detailed thermodynamic, heat transfer and electrochemical reaction phenomena within the fuel cell layers. The model has been calibrated and validated with measured performance data from a prototype installation onboard the offshore supply vessel. The calibration process included parameter identification, sensitivity analysis to identify the critical model parameters, and iterative calibration of these to minimize the overall prediction error. The calibrated model has a low prediction error of 4% for the operating range of the cell, exhibiting at the same time a physically sound qualitative behavior in terms of thermodynamic heat transfer and electrochemical phenomena, both on steady-state and transient operation. The developed model is suitable for a wide range of studies covering the aspects of thermal efficiency, performance, operability, safety and endurance/degradation, which are necessary to introduce fuel cells in ships. The aim of this MCFC model is to aid to the introduction, design, concept approval and verification of environmentally friendly marine applications such as fuel cells, in a cost-effective, fast and safe manner. (C) 2011 Elsevier Ltd. All rights reserved.
引用
收藏
页码:15 / 28
页数:14
相关论文
共 50 条
  • [21] MATHEMATICAL-MODEL OF MOLTEN CARBONATE FUEL-CELL
    SZYMANSKI, S
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1976, 123 (08) : C239 - C239
  • [22] Optimal Load Changes for a Molten Carbonate Fuel Cell Model
    Chudej, K.
    Sternberg, K.
    Pesch, H. J.
    NUMERICAL MATHEMATICS AND ADVANCED APPLICATIONS, 2008, : 769 - 776
  • [23] A Mathematical Model of a Molten Carbonate Direct Carbon Fuel Cell
    Song, Datong
    Xie, Zhong
    Zhang, Xinge
    Qu, Wei
    Wang, Qianpu
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2019, 167 (01)
  • [24] MODEL OF THE ISOTROPIC ANODE IN THE MOLTEN CARBONATE FUEL CELL.
    Jewulski, J.
    Suski, L.
    1600, (14):
  • [25] A basic model for analysis of molten carbonate fuel cell behavior
    Baranak, Murat
    Atakuel, Huesnue
    JOURNAL OF POWER SOURCES, 2007, 172 (02) : 831 - 839
  • [26] A reduced order model of Molten Carbonate Fuel Cell: A proposal
    Milewski, Jaroslaw
    Wolowicz, Marcin
    Miller, Andrzej
    Bernat, Rafal
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2013, 38 (26) : 11565 - 11575
  • [27] Dynamic numerical modeling and experimental validation of a molten carbonate fuel cell
    Leal, Elisangela Martins
    Jabbari, Faryar
    Brouwer, Jacob
    Proceedings of the 3rd International Conference on Fuel Cell Science, Engineering, and Technology, 2005, : 351 - 358
  • [28] Dynamic Simulation of Molten Carbonate Fuel Cell and Mechanical Balance of Plant
    Sung, Taehong
    Kim, Kyung Chun
    TRANSACTIONS OF THE KOREAN SOCIETY OF MECHANICAL ENGINEERS B, 2014, 38 (02) : 121 - 128
  • [29] Dynamic simulation of direct reforming molten carbonate fuel cell system
    Lukas, MD
    Lee, KY
    Ghezel-Ayagh, H
    IEEE POWER ENGINEERING SOCIETY - 1999 WINTER MEETING, VOLS 1 AND 2, 1999, : 113 - 116
  • [30] Hybridization of an internal combustion engine with a molten carbonate fuel cell for marine applications
    Baccioli, Andrea
    Liponi, Angelica
    Szczesniak, Arkadiusz
    Desideri, Umberto
    Milewski, Jaroslaw
    APPLIED ENERGY, 2021, 298