Title :
A High Efficiency Input/Output Magnetically Coupled Interleaved Buck–Boost Converter With Low Internal Oscillation for Fuel-Cell Applications: CCM Steady-State Analysis
Author :
Samavatian, Vahid ; Radan, Ahmad
Author_Institution :
Fac. of Electr. & Comput. Eng., K.N. Toosi Univ. of Technol., Tehran, Iran
Abstract :
The performance of dc-dc converters plays a vital role in the exploitation of renewable energy sources such as solar and fuel cell (FC). This paper demonstrates the feasibility of using the input/output (I/O) magnetically coupled interleaved buck-boost converter, improving the conventional interleaved cascaded buck-boost converter in FC applications. While keeping the same step-up/step-down voltage transfer ratio, the proposed topology facilitates operating conditions with its nonpulsating I/O currents and high efficiency using interleaved technique and reducing switches´ voltage stresses, respectively. The steady-state operation of the converter is analyzed based on the state-space-averaging method and supported with simulation results. The prototype setup of 360-W and 36-V output voltage for an FC with a brand of “FCgen 1020ACS” Ballard Power Systems, Inc. was implemented. Experimental results are presented to verify the theoretical expected merits of the converter, including high efficiency and nonpulsating I/O currents.
Keywords :
DC-DC power convertors; electromagnetic coupling; fuel cell power plants; oscillations; switching convertors; CCM steady-state analysis; DC-DC converters; FCgen 1020ACS Ballard Power Systems Inc; continuous conduction mode; fuel-cell; input-output magnetically coupled interleaved buck-boost converter; interleaved technique; internal oscillation; nonpulsating I-O currents; power 360 W; renewable energy sources; state-space-averaging method; step-up-step-down voltage transfer ratio; voltage 36 V; voltage stresses; Capacitors; Equations; Inductors; Magnetomechanical effects; Mathematical model; Steady-state; Voltage control; Fuel cell; Fuel cell (FC); Interleaved technique; Low-ripple I/O currents; buck–boost converter; interleaved technique; low-ripple input/output (I/O) currents; magnetically coupled; noninverting buck???boost converter;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2015.2408560