Home > Publications database > Effect of Power Quality on the Design of PEM Water Electrolysis Systems > print |
001 | 875361 | ||
005 | 20240709112131.0 | ||
024 | 7 | _ | |a 10.1016/j.apenergy.2020.115791 |2 doi |
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100 | 1 | _ | |a Koponen, Joonas |0 P:(DE-HGF)0 |b 0 |
245 | _ | _ | |a Effect of Power Quality on the Design of PEM Water Electrolysis Systems |
260 | _ | _ | |a Amsterdam [u.a.] |c 2020 |b Elsevier Science |
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520 | _ | _ | |a Water electrolyzer technologies may play a key role in the decarbonization of the fossil-fueled world economy. Electrolytic hydrogen production could bridge emission-free power generation and various energy end-use sectors to drive the energy system towards a net zero-emission level. In order to reduce the economic cost of the required energy transition, both the overall system efficiency in converting electrical energy into the chemical energy carried by hydrogen, and the material used to build electrolytic cell stacks, should be optimal. The effect of power quality on the specific energy consumption of proton exchange membrane (PEM) water electrolyzers is investigated with a semi-empirical cell model. An experimentally-defined polarization curve is applied to analyze cell-specific energy consumption as a function of time in the case of sinusoidal current ripples and ripples excited by an industrial 12-pulse thyristor bridge. The results show that the effective electrolyzer cell area should be up to five times as high as an ideal DC power supply when powered by the 12-pulse thyristor rectifier supply to match the specific energy consumption between the two power supply configurations. Therefore, the improvement of power quality is crucial for industrial PEM water electrolyzer systems. The presented approach is applicable to simulate the effect of power quality for different proton exchange membrane electolyzers. |
536 | _ | _ | |a 134 - Electrolysis and Hydrogen (POF3-134) |0 G:(DE-HGF)POF3-134 |c POF3-134 |f POF III |x 0 |
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700 | 1 | _ | |a Ruuskanen, Vesa |0 P:(DE-HGF)0 |b 1 |
700 | 1 | _ | |a Hehemann, Michael |0 P:(DE-Juel1)129857 |b 2 |e Corresponding author |
700 | 1 | _ | |a Rauls, Edward |0 P:(DE-Juel1)177930 |b 3 |
700 | 1 | _ | |a Kosonen, Antti |0 P:(DE-HGF)0 |b 4 |
700 | 1 | _ | |a Ahola, Jero |0 P:(DE-HGF)0 |b 5 |
700 | 1 | _ | |a Stolten, Detlef |0 P:(DE-Juel1)129928 |b 6 |
773 | _ | _ | |a 10.1016/j.apenergy.2020.115791 |g Vol. 279, p. 115791 - |0 PERI:(DE-600)2000772-3 |p 115791 - |t Applied energy |v 279 |y 2020 |x 0306-2619 |
856 | 4 | _ | |u https://juser.fz-juelich.de/record/875361/files/202101_Effect_of_power_quality_on_electrolysis_post_print.pdf |y Published on 2020-09-29. Available in OpenAccess from 2022-09-29. |
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913 | 1 | _ | |a DE-HGF |b Energie |l Speicher und vernetzte Infrastrukturen |1 G:(DE-HGF)POF3-130 |0 G:(DE-HGF)POF3-134 |3 G:(DE-HGF)POF3 |2 G:(DE-HGF)POF3-100 |4 G:(DE-HGF)POF |v Electrolysis and Hydrogen |x 0 |
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