Title :
High-Order Switching Surface in Boundary Control of Inverters
Author :
Chiu, Julian Yat-Chung ; Leung, Kelvin Ka-Sing ; Chung, Henry Shu-Hung
Author_Institution :
City Univ. of Hong Kong
Abstract :
A high-order switching surface for boundary control of inverters is presented in this paper. The concept is based on using the natural response of the power stage to formulate a logarithmic function to approximate the ideal switching surface. With the proposed control method, the inverter exhibits better dynamic responses than the ones with the first-order or recently proposed second-order switching surfaces. It will also be shown that the first- order and second-order switching surfaces are the low-order approximations of high-order switching surface. As the high-order switching surface is close to the ideal switching surface, its high trajectory velocity along the switching surface makes the inverter state trajectory move toward the steady-state operating point in two switching actions under large-signal disturbances. The effects of the parametric variations on the output voltage and the large- signal characteristics of the inverter will be discussed. The proposed control method has been successfully applied to a 300-W, 110-V, 60-Hz, single-phase full-bridge inverter. The steady-state and large-signal dynamic behaviors of the inverter supplying to resistive, nonlinear inductive, and full-wave rectifier loads will be given.
Keywords :
bridge circuits; invertors; nonlinear control systems; switching convertors; boundary control; frequency 60 Hz; full-wave rectifier load; high-order switching surface; inverter state trajectory; inverters; large-signal disturbances; logarithmic function; nonlinear inductive load; power 300 W; resistive load; second-order switching surfaces; single-phase full-bridge inverter; switching converters; switching inverters; voltage 110 V; Control theory; Error correction; Inverters; Kelvin; Rectifiers; Sliding mode control; Steady-state; Switching converters; Transient response; Voltage; Boundary control; dc–ac converter; inverters; nonlinear control;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2007.904209