Single-Stage Isolated DC-AC Converter With Continuous Dynamic Model and Controller Design

Also Available Domains DC - AC Converters

Project Code :TEPGCS88

Objective

The main objective of this project is to propose a Single-Stage Isolated DC/AC Converter with Continuous Dynamic Model and Controller Design for photovoltaic grid connected applications.

Abstract

This paper proposes an analysis and controller design of a bidirectional bridgeless single-stage dc/ac converter with high-frequency link and low part count. The dual-phase-shift control is proposed to control and modulate the ac power and to minimize the root mean square (rms) of the transformer current. Furthermore, the phase-shift angle is chosen to assure wide range of zero voltage switching (ZVS) turn-ON of all the switching devices. The proposed controller has a reduced total harmonic distortion (THD) at the output ac current without zero-crossing spikes. A continuous-time average model that well predicts both transient- and steady-state relations between the highfrequency ac link and the dc side is needed to simplify the controller design. Since complex discrete-time models were used in the previous pieces of literature, simple and powerful continuous-time tools were not used to design the closed-loop system. In this article, a novel continuous-time generalized average model is proposed. The derived model precisely predicts the high-frequency state variables of the converter, including a simple formula for the transformer current rms value. The formula is used to minimize the transformer current to reduce the losses. Moreover, the transient analysis and the closed-loop control design are presented. A prototype circuit is tested to verify the performance of the proposed control scheme with the proposed isolated single-stage dc/ac convert Matlab/Simulink software 2018a

Keywords: Generalized average model (GAM), isolated single-stage dc/ac converter, optimization technique, phase-shift control, transformer current root-mean-square (rms) value, ZVS soft-switching.

NOTE: Without the concern of our team, please don't submit to the college. This Abstract varies based on student requirements.

Block Diagram

Specifications

Software Configuration:

Operating System       : Windows 7/8/10

Application Software: MATLAB/Simulink

Hardware Configuration:

RAM                           : 8 GB

Processor                     : I3 / I5 (Mostly prefer)

Learning Outcomes

Β·         Introduction to Matlab/Simulink

Β·         What is EISPACK & LINPACK

Β·         How to start with MATLAB

Β·         About Matlab language

Β·         About tools & libraries

Β·         Application of Matlab/Simulink

Β·         About Matlab desktop

Β·         Features of Matlab/Simulink

Β·         Basics on Matlab/Simulink

Β·         Introduction to zero voltage switching (ZVS)

Β·         Study of. closed-loop control design

Β·         Project Development Skills:

o   Problem analyzing skills

o   Problem solving skills

o   Creativity and imaginary skills

o   Programming skills

o   Deployment

o   Testing skills

o   Debugging skills

o   Project presentation skills

o   Thesis writing skills

Demo Video