Title :
High-frequency link inverter for fuel cells based on multiple-carrier PWM
Author :
Krein, Philip T. ; Balog, Robert S. ; Geng, Xin
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Illinois, Urbana, IL, USA
Abstract :
Fuel-cell inverter applications typically have a relatively low voltage input, and require a battery bus for energy buffering. Circuit topology issues are examined based on these needs. The need for high step-up ratios, current control, low ripple, and battery storage leads to a current-sourced link converter as perhaps the best choice of conversion topology. High-frequency ac link conversion offers a possible way to reduce the number of power stages, in the form of a cycloconverter, known from previous work. It is shown that the control complexity in this converter can be addressed by adapting pulse-width modulation (PWM) techniques. Here, a multicarrier PWM approach is introduced as a convenient way to implement a high-frequency link inverter. The approach is a direct extension of conventional PWM, and supports square-wave cycloconversion methods that have appeared in prior literature. Simulation and experimental results are developed for a low-voltage ac link inverter, leading to a 48-V fuel cell input design.
Keywords :
PWM invertors; PWM power convertors; cycloconvertors; fuel cells; network topology; PWM converters; ac link conversion; battery bus; battery storage; circuit topology; current-source link converter; cycloconverter; energy buffering; fuel cell inverter applications; fuel cell power conditioning; high-frequency link inverter; multiple-carrier PWM; pulse width modulation techniques; square-wave cycloconversion methods; Batteries; Circuit topology; Current control; Frequency; Fuel cells; Hafnium; Pulse inverters; Pulse width modulation; Pulse width modulation converters; Pulse width modulation inverters; Cycloconverter; PWM; fuel cell; fuel cell power conditioning; high frequency link; pulse width modulated inverters; pulse width modulated power converters; pulse width modulation;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2004.833996