The dynamic behavior of a solid oxide fuel cell gas turbine hybrid system (SOFC/GT) from both open and closed loop transients in response to sudden changes in fuel composition was experimentally investigated. A pilot-scale (200–700 kW) hybrid facility available at the U.S. Department of Energy, National Energy Technology Laboratory was used to perform the experiments using a combination of numerical models and actual equipment. In the open loop configuration, the turbine speed was driven by the thermal effluent fed into the gas turbine system, where the thermal effluent was determined by the feedforward fuel cell control system. However, in the closed loop configuration, a load-based speed control system was used to maintain the turbine speed constant at 40,500 rpm by adjusting the load on the turbine, in addition to the implementation of the fuel cell system control. The open loop transient response showed that the impacts of fuel composition changes on key process variables, such as fuel cell thermal effluent, turbine speed, and cathode feed stream conditions, in the SOFC/GT systems were propagated over the course of the test, except for the cathode inlet temperature. The trajectories of the aforementioned variables are discussed in this paper to better understand the resulting mitigation/propagation behaviors. This will help lead to the development of novel control strategies to mitigate the negative impacts experienced during fuel composition transients of SOFC/GT systems.
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June 2017
Research-Article
Open Loop and Closed Loop Performance of Solid Oxide Fuel Cell Turbine Hybrid Systems During Fuel Composition Changes
Nor Farida Harun,
Nor Farida Harun
National Energy Technology Laboratory,
U.S. Department of Energy,
3610 Collins Ferry Road,
Morgantown, WV 26507-0880
e-mails: Nor.Harun@NETL.DOE.GOV;
norf.harun@gmail.com
U.S. Department of Energy,
3610 Collins Ferry Road,
Morgantown, WV 26507-0880
e-mails: Nor.Harun@NETL.DOE.GOV;
norf.harun@gmail.com
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David Tucker,
David Tucker
National Energy Technology Laboratory,
U.S. Department of Energy,
3610 Collins Ferry Road,
Morgantown, WV 26507-0880
e-mail: David.Tucker@NETL.DOE.GOV
U.S. Department of Energy,
3610 Collins Ferry Road,
Morgantown, WV 26507-0880
e-mail: David.Tucker@NETL.DOE.GOV
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Thomas A. Adams, II
Thomas A. Adams, II
Department of Chemical Engineering,
McMaster University,
1280 Main Street West,
Hamilton, ON L8S 4L7, Canada
e-mail: tadams@mcmaster.ca
McMaster University,
1280 Main Street West,
Hamilton, ON L8S 4L7, Canada
e-mail: tadams@mcmaster.ca
Search for other works by this author on:
Nor Farida Harun
National Energy Technology Laboratory,
U.S. Department of Energy,
3610 Collins Ferry Road,
Morgantown, WV 26507-0880
e-mails: Nor.Harun@NETL.DOE.GOV;
norf.harun@gmail.com
U.S. Department of Energy,
3610 Collins Ferry Road,
Morgantown, WV 26507-0880
e-mails: Nor.Harun@NETL.DOE.GOV;
norf.harun@gmail.com
David Tucker
National Energy Technology Laboratory,
U.S. Department of Energy,
3610 Collins Ferry Road,
Morgantown, WV 26507-0880
e-mail: David.Tucker@NETL.DOE.GOV
U.S. Department of Energy,
3610 Collins Ferry Road,
Morgantown, WV 26507-0880
e-mail: David.Tucker@NETL.DOE.GOV
Thomas A. Adams, II
Department of Chemical Engineering,
McMaster University,
1280 Main Street West,
Hamilton, ON L8S 4L7, Canada
e-mail: tadams@mcmaster.ca
McMaster University,
1280 Main Street West,
Hamilton, ON L8S 4L7, Canada
e-mail: tadams@mcmaster.ca
1Corresponding author.
Contributed by the Cycle Innovations Committee of ASME for publication in the JOURNAL OF ENGINEERING FOR GAS TURBINES AND POWER. Manuscript received November 30, 2016; final manuscript received December 13, 2016; published online February 1, 2017. Editor: David Wisler.
This work is in part a work of the U.S. Government. ASME disclaims all interest in the U.S. Government's contributions.
J. Eng. Gas Turbines Power. Jun 2017, 139(6): 061702 (9 pages)
Published Online: February 1, 2017
Article history
Received:
November 30, 2016
Revised:
December 13, 2016
Citation
Harun, N. F., Tucker, D., and Adams, T. A., II (February 1, 2017). "Open Loop and Closed Loop Performance of Solid Oxide Fuel Cell Turbine Hybrid Systems During Fuel Composition Changes." ASME. J. Eng. Gas Turbines Power. June 2017; 139(6): 061702. https://doi.org/10.1115/1.4035646
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