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  4. Design of a Pilot SOFC System for the Combined Production of Hydrogen and Electricity under Refueling Station Requirements
 
research article

Design of a Pilot SOFC System for the Combined Production of Hydrogen and Electricity under Refueling Station Requirements

Perez-Fortes, M.
•
Mian, A.
•
Srikanth, S.
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August 1, 2019
Fuel Cells

The objective of the current work is to support the design of a pilot hydrogen and electricity producing plant that uses natural gas (or biomethane) as raw material, as a transition option towards a 100% renewable transportation system. The plant, with a solid oxide fuel cell (SOFC) as principal technology, is intended to be the main unit of an electric vehicle station. The refueling station has to work at different operation periods characterized by the hydrogen demand and the electricity needed for supply and self-consumption. The same set of heat exchangers has to satisfy the heating and cooling needs of the different operation periods. In order to optimize the operating variables of the pilot plant and to provide the best heat exchanger network, the applied methodology follows a systematic procedure for multi-objective, i.e. maximum plant efficiency and minimum number of heat exchanger matches, and multi-period optimization. The solving strategy combines process flow modeling in steady state, superstructure-based mathematical programming and the use of an evolutionary-based algorithm for optimization. The results show that the plant can reach a daily weighted efficiency exceeding 60%, up to 80% when considering heat utilization.

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Type
research article
DOI
10.1002/fuce.201800200
Web of Science ID

WOS:000481813200009

Author(s)
Perez-Fortes, M.
Mian, A.
Srikanth, S.
Wang, L.
Diethelm, S.  
Varkaraki, E.
Mirabelli, I.
Makkus, R.
Schoon, R.
Marechal, F.  
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Date Issued

2019-08-01

Published in
Fuel Cells
Volume

19

Issue

4

Start page

389

End page

407

Subjects

Electrochemistry

•

Energy & Fuels

•

conceptual design

•

electric vehicle station

•

fuel cell

•

heat exchanger network (hen)

•

hydrogen refueling station (hrs)

•

industrial chemistry

•

multi-objective optimization (moo)

•

multi-period optimization

•

process system engineering (pse)

•

solid oxide fuel cell (sofc)

•

heat-exchanger networks

•

multiperiod sequential synthesis

•

steam reforming kinetics

•

oxide fuel-cells

•

optimal operation

•

utility systems

•

model

•

optimization

•

scale

Note
  • 13th European Solid Oxide Fuel Cells (SOFC) and Solid Oxide Electrolysers (SOE) Forum (EFCE), Jul 03-06, 2018, Lucerne, SWITZERLAND - This is an open access article under the terms of the Creative Commons Attribution License
Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SCI-STI-JVH  
SCI-STI-FM  
Available on Infoscience
September 14, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/161179
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