Modeling of a Direct Carbon Fuel Cell System

被引:14
|
作者
Hemmes, K. [1 ]
Houwing, M. [1 ]
Woudstra, N. [2 ]
机构
[1] Delft Univ Technol, Fac Technol Policy & Management, NL-2628 BX Delft, Netherlands
[2] Delft Univ Technol, Energy Technol Sect, Fac 3mE, NL-2628 CD Delft, Netherlands
来源
关键词
fuel cells; direct carbon fuel cells; integrated fuel cell systems; flow-sheeting; fuel cell system analysis; exergy analysis;
D O I
10.1115/1.4001015
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Direct carbon fuel cells (DCFCs) have great thermodynamic advantages over other high temperature fuel cells such as molten carbonate fuel cells (MCFCs) and solid oxide fuel cells. They can have 100% fuel utilization, no Nernst loss (at the anode), and the CO2 produced at the anode is not mixed with other gases and is ready for re-use or sequestration. So far, only studies have been reported on cell development. In this paper, we study the performance of a CO2-producing DCFC system model. The theoretically predicted advantages that are confirmed on a bench scale are also confirmed on a system level, except for the production of pure CO2. Net system efficiencies of around 78% were found for the developed system. An exergy analysis of the system shows where the losses in the system occur. If the cathode of the DCFC must be operated as a standard MCFC cathode, the required CO2 at the cathode is the reason why a large part of the pure CO2 from the anode is recycled and mixed with the incoming air and cannot be used directly for sequestration. Bench scale studies should be performed to test the minimum amount of CO2 needed at the cathode. This might be lower than in a standard MCFC operation due to the pure CO2 at the anode side that enhances diffusion toward the cathode. [DOI: 10.1115/1.4001015]
引用
收藏
页码:0510081 / 0510086
页数:6
相关论文
共 50 条
  • [21] Modification of Coal as a Fuel for the Direct Carbon Fuel Cell
    Li, Xiang
    Zhu, Zhonghua
    De Marco, Roland
    Bradley, John
    Dicks, Andrew
    JOURNAL OF PHYSICAL CHEMISTRY A, 2010, 114 (11): : 3855 - 3862
  • [22] Effect of Fuel Acid Treatment on the Reduction of Electrochemical Resistance in a Direct Carbon Fuel Cell System
    Eom, Seongyong
    Ahn, Seongyool
    Choi, Gyungmin
    ENERGY & FUELS, 2021, 35 (05) : 4493 - 4501
  • [23] Catalytic gasification of carbon in a direct carbon fuel cell
    Rady, Adam C.
    Giddey, Sarbjit
    Kulkarni, Aniruddha
    Badwal, Sukhvinder P. S.
    Bhattacharya, Sankar
    FUEL, 2016, 180 : 270 - 277
  • [24] Optimization of cell components on the Direct Carbon Fuel Cell
    Mochidzuki, Ryosuke
    Sugiura, Kimihiko
    FUEL CELL SEMINAR 2012, 2013, 51 (01): : 47 - 54
  • [25] Modeling the performance of direct carbon solid oxide fuel cell - anode supported configuration
    Raj, Sanjeev
    Gnanasundaram, Sakthi
    Krishnamurthy, Balaji
    JOURNAL OF ELECTROCHEMICAL SCIENCE AND ENGINEERING, 2021, 11 (02): : 115 - 128
  • [26] Computational modeling of a direct propane fuel cell
    Khakdaman, H.
    Bourgault, Y.
    Ternan, M.
    JOURNAL OF POWER SOURCES, 2011, 196 (06) : 3186 - 3194
  • [27] Performance modeling of a direct methanol fuel cell
    Divisek, J
    Fuhrmann, J
    Gärtner, K
    Jung, R
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2003, 150 (06) : A811 - A825
  • [28] Performance and Modeling of a Direct Methanol Fuel Cell
    Shrestha, S. O. Bade
    Mohan, Sujith
    WORLD CONGRESS ON ENGINEERING, WCE 2011, VOL III, 2011, : 2417 - 2422
  • [29] Analysis and modeling of a direct methanol fuel cell
    Tsujioku, Y
    Iwase, M
    Hatakeyama, S
    SICE 2004 ANNUAL CONFERENCE, VOLS 1-3, 2004, : 1885 - 1889
  • [30] Mathematical modeling of a direct urea fuel cell
    Nguyen, Phan Khanh Thinh
    Kim, Jihyeon
    Yoon, Young Soo
    Yoon, Hyon Hee
    Hur, Jaehyun
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2023, 48 (06) : 2314 - 2327