Title :
Analysis, Modeling, and Implementation of a Multidevice Interleaved DC/DC Converter for Fuel Cell Hybrid Electric Vehicles
Author :
Hegazy, Omar ; Van Mierlo, J. ; Lataire, Philippe
Author_Institution :
Dept. of Electr. Eng. & Energy Technol., Vrije Univ. Brussel, Brussels, Belgium
Abstract :
Multiphase converter topologies for use in high-performance applications have received increasing interest in recent years. This paper proposes a novel multidevice interleaved boost converter (MDIBC) that interfaces the fuel cell with the powertrain of hybrid electric vehicles. In this research, a multidevice structure with interleaved control is proposed to reduce the input current ripples, the output voltage ripples, and the size of passive components with high efficiency compared with the other topologies. In addition, low EMI and low stress in the switches are expected. The proposed dc/dc converter is compared to other converter topologies such as conventional boost converter (BC), multidevice boost converter (MDBC), and two-phase interleaved boost converter (IBC) to verify its dynamic performance. Furthermore, a generalized small-signal model is derived for these dc/dc converters, which has not been previously discussed. A digital dual-loop control is designed to achieve the proper regulator for the converters with fast transient response. The dc/dc converter topologies and their controller are designed and investigated by using MATLAB/Simulink. Finally, the proposed converter (MDIBC) is experimentally validated with results obtained from a 30-kW prototype that has been built and tested in our laboratory based on TMS320F2808 DSP. The simulation and experimental results have demonstrated that the proposed converter is more efficient than other dc/dc converter topologies in achieving high performance and reliability for high-power dc/dc converters.
Keywords :
DC-DC power convertors; control system synthesis; digital control; electric current control; electromagnetic interference; fuel cell vehicles; hybrid electric vehicles; switchgear; transient response; transport control; voltage control; EMI; MATLAB-Simulink simulation; MDIBC; TMS320F2808 DSP; con- verters regulator; digital dual-loop control design; fast transient response; fuel cell hybrid electric vehicle; generalized small-signal model; input current ripple reduction; interleaved control; low stress switch; multidevice interleaved DC-DC converter; multidevice interleaved boost converter; multiphase converter topology; output voltage ripple reduction; passive component size reduction; power 30 kW; reliability; two-phase interleaved boost converter; DC-DC power converters; Fuel cells; Hybrid electric vehicles; Inductors; Topology; Transfer functions; Voltage control; Converter losses model; closed-loop control strategy; dc/dc boost converters; digital signal processor (DSP); direct digital control (DDC); fuel cell hybrid electric Vehicles (FCHEVs); generalized small-signal model;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2012.2183148