DocumentCode :
740600
Title :
Discrete-time sliding-mode-based digital pulse width modulation control of a boost converter
Author :
Vidal-Idiarte, Enric ; Marcos-Pastor, Adria ; Garcia, Germain ; Cid-Pastor, Angel ; Martinez-Salamero, Luis
Author_Institution :
Dept. d´Eng. Electron., Electr. i Autom., Univ. Rovira i Virgili, Tarragona, Spain
Volume :
8
Issue :
5
fYear :
2015
Firstpage :
708
Lastpage :
714
Abstract :
In this study, a non-linear digital control of a boost converter based on a sliding discrete-time approximation is presented. The control strategy follows a classical cascade regulation scheme with the inner loop consisting in a non-linear current-control based on discrete-time sliding mode, and the outer one being composed of a simple discrete-time proportional-integral (PI) controller for output voltage regulation. An analytical expression of the current control law is developed using a simplified discrete-time small-signal model of the boost converter. The discrete-time PI compensator is designed from a discrete-time small-signal parametric model of the inner loop obtained by linearisation around the desired equilibrium point. The proposed method is initially based on the notion of discrete-time sliding motion to eventually derive a pulse width modulation (PWM) controlled system. Thus, the reported approach can be categorised not only as a direct digital design technique for voltage regulation but also as a competitive method to design sliding-mode-based PWM controllers. Simulated and experimental results in a boost converter operating in continuous conduction mode verify the theoretical predictions.
Keywords :
PI control; PWM power convertors; cascade control; direct digital control; discrete time systems; electric current control; linearisation techniques; nonlinear control systems; variable structure systems; voltage control; PWM controlled system; analytical expression; boost converter; cascade regulation scheme; continuous conduction mode; desired equilibrium point; digital pulse width modulation control; direct digital design technique; discrete-time PI compensator; discrete-time proportional-integral controller; discrete-time sliding mode motion approximation; inner loop; linearisation; nonlinear digital current-control; output voltage regulation; simplified discrete-time small-signal parametric model;
fLanguage :
English
Journal_Title :
Power Electronics, IET
Publisher :
iet
ISSN :
1755-4535
Type :
jour
DOI :
10.1049/iet-pel.2014.0380
Filename :
7095666
Link To Document :
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