Title :
Novel topology for parallel connection of soft-switching high-power high-frequency inverters
Author :
Schönknecht, Andreas ; De Doncker, Rik W A A
Author_Institution :
Inst. for Power Electron. & Electr. Drives, Aachen Univ. of Technol., Germany
Abstract :
Inductive heating applications like pipe welding or steel strip annealing require electrical power ratings of several megawatts at frequencies up to 100 kHz and higher. The large power-frequency product represents a significant challenge for today´s semiconductor technology. As the absolute maximum rating of a single-stage inverter is often far below rated power, several inverters or several devices have to be connected in parallel. This paper presents a novel topology, consisting of parallel-connected soft-switching high-frequency inverters. Distinctive features include flexible configurations, negligible shunt currents between inverters, and equally shared power among inverters. Furthermore, compared to a single-inverter system, no additional reactive components are necessary for connecting inverters in parallel and there is no need of a high-frequency transformer to adapt the impedance of the load to the inverters.
Keywords :
high-frequency transformers; induction heating; invertors; switching convertors; 100 kHz; IGBT; MOSFET; PLL; VSI; electrical power ratings; equally shared power; high-frequency transformer; inductive heating applications; insulated gate bipolar transistor; inverters; negligible shunt currents; parallel connection; phase-locked loop; pipe welding; power-frequency product; reactive components; resonant circuit; semiconductor technology; single-inverter system; single-stage inverter; soft-switching high-power high-frequency inverters; steel strip annealing; voltage source inverter; Circuit topology; Frequency; Insulated gate bipolar transistors; Inverters; Joining processes; Phase locked loops; RLC circuits; Strips; Switches; Welding;
Journal_Title :
Industry Applications, IEEE Transactions on
DOI :
10.1109/TIA.2003.809453