Title :
Derivation of a Small-Signal Harmonic Model for Closed-Loop Power Converters Based on the State-Variable Sensitivity Method
Author_Institution :
Power & Energy Group, Nat. Taiwan Univ. of Sci. & Technol., Taipei, Taiwan
fDate :
4/1/2012 12:00:00 AM
Abstract :
An admittance or impedance matrix of a power converter is highly desirable for harmonic analysis of a power system. However, power converters are inherently nonlinear and time-varying systems. Therefore, a small-signal harmonic model needs to be derived. While there have been many methods to obtain the small-signal models of DC-DC converters, most of these methods cannot be directly applied to AC-DC converters. Moreover, while accurate methods exist for obtaining accurate models of open-loop AC-DC converters, there are few existing methods for obtaining accurate models for closed-loop AC-DC converters. This paper proposes an analytical method for obtaining an accurate small-signal harmonic model for a power converter. The proposed method is based on state-variable sensitivity methods, which have been previously used to derive a transfer function of a DC-DC converter. This paper will show what modifications are required to extend it to derive the small-signal harmonic model of a closed-loop AC-DC converter. A small-signal harmonic model of a closed-loop pulse-width modulated (PWM) voltage source converter (VSC) with synchronous frame current controllers and a dc voltage controller is derived based on the proposed method. The results are in good agreement with large-signal simulations by means of PSCAD/EMTDC.
Keywords :
AC-DC power convertors; DC-DC power convertors; PWM power convertors; electric current control; nonlinear systems; power conversion harmonics; time-varying systems; voltage regulators; DC-DC converters; PSCAD/EMTDC; admittance matrix; closed-loop AC-DC converters; dc voltage controller; harmonic analysis; impedance matrix; nonlinear systems; open-loop AC-DC converters; power system; pulse-width modulated converter; small-signal harmonic model; state-variable sensitivity method; synchronous frame current controllers; time-varying systems; voltage source converter; Analytical models; Harmonic analysis; Matrix converters; Numerical models; Power system harmonics; Sensitivity; Steady-state; Harmonics; pulse width modulation; small signal harmonic model; steady state analysis; voltage source converter;
Journal_Title :
Circuits and Systems I: Regular Papers, IEEE Transactions on
DOI :
10.1109/TCSI.2011.2169731