Accurate evaluation of hydrogen crossover in water electrolysis systems for wetted membranes

2021 ◽  
Vol 46 (29) ◽  
pp. 15135-15144
Author(s):  
SeungHwan Kim ◽  
Bao Tran Duy Nguyen ◽  
Hansol Ko ◽  
Mijeong Kim ◽  
Kihyun Kim ◽  
...  
Author(s):  
Agate Martin ◽  
Patrick Trinke ◽  
Markus Stähler ◽  
Andrea Stähler ◽  
Fabian Scheepers ◽  
...  

Abstract Hydrogen crossover poses a crucial issue for polymer electrolyte membrane (PEM) water electrolysers in terms of safe operation and efficiency losses, especially at increased hydrogen pressures. Besides the impact of external operating conditions, the structural properties of the materials also influence the mass transport within the cell. In this study, we provide an analysis of the effect of elevated cathode pressures (up to 15 bar) in addition to increased compression of the membrane electrode assembly on hydrogen crossover and the cell performance, using thin Nafion 212 membranes and current densities up to 3.6 A cm-2. It is shown that a higher compression leads to increased mass transport overpotentials, although the overall cell performance is improved due to the decreased ohmic losses. The mass transport limitations also become visible in enhanced anodic hydrogen contents with increasing compression at high current densities. Moreover, increases in cathode pressure are amplifying the compression effect on hydrogen crossover and mass transport losses. The results indicate that the cell voltage should not be the only criterion for optimizing the system design, but that the material design has to be considered for the reduction of hydrogen crossover in PEM water electrolysis.


2020 ◽  
Vol 10 (14) ◽  
pp. 1903995 ◽  
Author(s):  
Carolin Klose ◽  
Torben Saatkamp ◽  
Andreas Münchinger ◽  
Luca Bohn ◽  
Giorgi Titvinidze ◽  
...  

2020 ◽  
Vol 10 (14) ◽  
pp. 2070061
Author(s):  
Carolin Klose ◽  
Torben Saatkamp ◽  
Andreas Münchinger ◽  
Luca Bohn ◽  
Giorgi Titvinidze ◽  
...  

2018 ◽  
Vol 165 (7) ◽  
pp. F502-F513 ◽  
Author(s):  
P. Trinke ◽  
P. Haug ◽  
J. Brauns ◽  
B. Bensmann ◽  
R. Hanke-Rauschenbach ◽  
...  

Author(s):  
Nicholas-E. Harmansa ◽  
Georg Herdrich ◽  
Stefanos Fasoulas ◽  
Ulrich Gotzig

2018 ◽  
Vol 1 (2) ◽  
pp. 9-14
Author(s):  
Marisol Cervantes-Bobadilla ◽  
Ricardo Fabricio Escobar Jiménez ◽  
José Francisco Gómez Aguilar ◽  
Tomas Emmanuel Higareda Pliego ◽  
Alberto Armando Alvares Gallegos

In this research, an alkaline water electrolysis process is modelled. The electrochemical electrolysis is carried out in an electrolyzer composed of 12 series-connected steel cells with a solution 30% wt of potassium hydroxide. The electrolysis process model was developed using a nonlinear identification technique based on the Hammerstein structure. This structure consists of a nonlinear static block and a linear dynamic block. In this work, the nonlinear static function is modelled by a polynomial approximation equation, and the linear dynamic is modelled using the ARX structure. To control the current feed to the electrolyzer an unconstraint predictive controller was implemented, once the unconstrained MPC was simulated, some restrictions are proposed to design a constrained MPC (CMPC). The CMPC aim is to reduce the electrolyzer's energy consumption (power supply current). Simulation results showed the advantages of using the CMPC since the energy (current) overshoots are avoided.


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