scholarly journals A Double Dual Boost Converter with Switching Ripple Cancellation for PEMFC Systems

Electronics ◽  
2020 ◽  
Vol 9 (10) ◽  
pp. 1592 ◽  
Author(s):  
Carlos A. Villarreal-Hernandez ◽  
Javier Loranca-Coutiño ◽  
Jonathan C. Mayo-Maldonado ◽  
Jesus E. Valdez-Resendiz ◽  
Pedro M. García-Vite ◽  
...  

This paper presents a current-based control for a proton-exchange membrane fuel cell using the so-called double dual boost topology. In particular, we introduce a discrete time controller that, in coordination with a particular selection of inductors and capacitors, minimizes the switching ripple at the input port (current ripple) and the output port (voltage ripple) of the double dual boost converter. This converter has a particular characteristic, in contrast to the classical interleaved boost topology, in the double dual boost, the phases of the converter can have different duty ratios. The freedom to choose the duty ration for each phase can be used to select the operative point in which the input current is equal to zero. However, if individual controllers are used for each branch of the converter, the equilibrium after a transient can differ from the minimum ripple operation point; the proposed scheme regulates the output voltage and, at the same time, ensures the equilibrium remains in the minimum ripple operation in steady state. In this way, the converter can mitigate the harmonic distortion on the current extracted from the proton-exchange membrane fuel cell, which is beneficial to improve the efficiency and lifetime of the cell, and on the output voltage delivered to an output direct current bus. The results of the experiment are presented to validate the principles of the proposed system.

Author(s):  
Emmanuel Ogungbemi ◽  
Tabbi Wilberforce ◽  
Oluwatosin Ijaodola ◽  
James Thompson ◽  
A.G. Olabi

In the present study, the performance of a Proton Exchange Membrane (PEM) fuel cell is numerically simulated for two channels with rectangular and triangular cross-section areas. A series of simulations is carried out to investigate both the influence of the humidity and the temperature of the input gas as two effective parameters on the performance of a PEM, which change from 10% to 100% and 30°C to 60°C, respectively. Numerical results indicate that more moisturized input gas produces a higher output voltage for both geometries. Furthermore, the triangular duct generates a higher output voltage in comparison with the rectangular duct, particularly, in the case of the parallel flow. In addition, the temperature of the input gas remarkably enhances the output voltage of the PEM. A qualitative agreement is achieved by comparing the present results to existing experimental data.


2013 ◽  
Vol 367 ◽  
pp. 199-203
Author(s):  
S.R. Thilaga ◽  
S. Suresh Kumar

This paper proposes a single-phase nine-level Hybrid Cascaded Multilevel Inverter (HCMLI) for Proton Exchange Membrane (PEM) fuel cell with a novel pulse width-modulated (PWM) technique. This technique employs multiple reference signals and a single triangular carrier wave which is used to generate PWM pulses. The inverter offers much less total harmonic distortion and can operate at near-unity power factor. Its performance has been verified based on Total Harmonic Distortion using MATLAB/SIMULINK.


2019 ◽  
Vol 185 ◽  
pp. 455-464 ◽  
Author(s):  
Hadi Chahkandi Nejad ◽  
Mohsen Farshad ◽  
Ehsan Gholamalizadeh ◽  
Behnam Askarian ◽  
Adel Akbarimajd

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