Title :
Design Optimization of Quasi-Active Gate Control for Series-Connected Power Devices
Author :
Teerakawanich, Nithiphat ; Johnson, C.M.
Author_Institution :
Dept. of Electr. & Electron. Eng., Univ. of Nottingham, Nottingham, UK
Abstract :
This paper presents a new gate drive circuit for driving a series string of insulated-gate bipolar transistors (IGBTs). The proposed quasi-active gate control (QAGC) circuit is simple to implement as it consists of only a few passive components in addition to a standard gate driver. No separate isolation power supply is required for the upper devices in the stack. The proposed QAGC circuit provides an effective way to drive the power devices and control static and dynamic voltage sharing to the devices at the same time. The theoretical switching operation and the oscillation stability analysis allow criteria for component selection to be established. Limitations of the QAGC circuit are also identified. The modification of the circuit to support more power devices in the series stack is discussed with the aid of the simulation results. The switching operation of the circuit is validated from the experimental results using two IGBTs connected in series. The circuit shows an excellent switching operation with well-controlled dynamic and static voltage sharing and comparable gate voltage between the coupled devices.
Keywords :
driver circuits; insulated gate bipolar transistors; power apparatus; IGBT; QAGC; circuit switching operation; component selection; design optimization; dynamic voltage sharing; insulated-gate bipolar transistors; oscillation stability analysis; quasi-active gate control; series-connected power devices; static voltage sharing; Capacitors; Leakage currents; Logic gates; Oscillators; Switches; Switching circuits; Voltage control; Active gate control (AGC); gate driver; power devices; series connection; voltage balancing circuit;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2013.2274158