Modeling and Simulation of a Standalone Photovoltaic System

Modeling and Simulation of a Standalone Photovoltaic System.

Table of Contents

ABSTRACT  

The increase in hazardous gaseous emission from the conventional source of energy has motivated many scientists to research on the alternate sources of energy which is cleaner. The chief source of renewable energy is the solar energy. The cleanness of this form of energy source motivated this research work. In this work, Modeling and Simulation of a Standalone Photovoltaic System aimed at increasing the efficiency of solar array system was developed.

This work was undertaken to develop a clean photovoltaic technology that will provide sustainable energy supply and bring solutions to the environmental pollution that is always associated with the conventional energy sources. The system is intended to be an environmentally friendly solution since it tries maximizing the use of renewable energy source. This work involves the development of a PV model using a single diode model.

The developed model was further approximated to obtain the simulation model based on the ideal operating condition of a diode. In this work, hundred cells were used to estimate the maximum power of the developed system using MATLAB computer simulation. The simulation result showed a maximum power of 1.2KW using one hundred cells. 

TABLE OF CONTENT

TITLE PAGE – – – – – – – – – i
APPROVAL PAGE – – – – – – – – – – ii
CERTIFICATION – – – – – – – – iii
DECLARATION – – – – – – – – iv
DEDICATION – – – – – – — v
ACKNOWLEDGEMENT – – – – – – – – vi
ABSTRACT – – – – – – – – – vii
TABLE OF CONTENT – – – – – – – – – viii
LIST OF FIGURES – – – — – – – xii
LIST OF TABLES – – – – – – — xiii

CHAPTER ONE: INTRODUCTION
1.1. Background of the Study – – – – – – – – – 1
1.2. Statement of the Problem – – – – – – – – – 4
1.3. Objectives – – – – – – – – – 5
1.4. Scope of the study – – – – – – – – – 5
1.5. Significance of Study – – – – – – – – – 5
1.6. Proposed Method – – – – – – – – – 6
1.7. Plan of Thesis – – – – – – – – – 6

CHAPTER TWO: LITERATURE REVIEW
2.1. Introductory to renewable energy – – – – – – – – – 7
2.1.1. Renewable energy forms – – – – – – – – 7
2.1.1.1. Wind energy – – – – – – – – 8
2.1.1.2. Geothermal energy – – – – – – – – 8
2.1.1.3. Hydroelectric energy – – – – – – – – 9
2.1.1.4. Solar energy – – – – – – – – 10
2.2. Evolution of photovoltaic system – – – – – – – – 11
2.2.1. Mid- 1990s to early 2010 – – – – — – – 12
2.2.2. Current status – – – – — – – 13
2.2.3. Forecasts – – – – – – – – 13
2.3. Formation of photovoltaic cells – – – – – – – – 13
2.4. Photovoltaic system – – – – – – – – 16
2.4.1. Kinds of solar PV system – – — – — – 17
2.4.1.1. Single axis PV solar trackers – – – – – – – 18
2.4.1.2. Double axis solar trackers – – – – – – – 18
2.5. Components of PV system – – – – – – – 18
2.6. PV system design – – – – – – — 19
2.6.1. Grid connected PV system – – – – – – — 19
2.6.2. Off-grid PV system – – – – – – — 19
2.6.3. PV system component for off-grid system – – – – – – — 19
2.7. PV materials and their conversion efficiency – – – – – – — 20
2.8. PV cell – – – – – – – – – 20
2.9. PV module arrangement – – – – — – – 21
2.10. Stand-alone photovoltaic system – – – – – – — 21
2.10.1. Application of stand-alone – – – – – – — 23
2.10.2. Future stand-alone application – – – – – – — 23
2.10.3. Component models for stand-alone PV system – – – – – – — 24
2.11. Working of PV array – – – — – – -25
2.12. Solar Module Modeling – ———–26
2.13. Method of improving photovoltaic efficiency – – – – – – — 28
2.13.1. PV solar trackers system – – – — – — 28
2.13.2. MPPT techniques – – – – – – — 31
2.13.2.1. Conventional method – – – – – – — 31
2.14. DC-DC converter – – – – – – — 32
2.14.1. Buck converter – – – – – – — 32
2.14.2. Boost converter – – – – – – — 33
2.14.3. Buck-Boost converter – – – – – – 34
2.16. Review of related work – – – – – – – – 35
2.17. Proposed research – – – – – – – – 40

CHAPTER THREE: RESEARCH METHODOLOGY
3.1. Introduction – – – – – – – – – 41
3.2. Mathematical modeling of PV cell – – – – – – – – – 41
3.3. Assumption and approximation – – – – – – – – 44
3.4. Estimation of maximum parameters – – – – – – – – 44

CHAPTER FOUR: RESULTS AND DISCUSSION
4.1. Introduction – – – – – – – – – 46
4.2. Simulation Parameter – – – – – – – – – 46
4.3. Simulation Result – – – – – – – – – 47

CHAPTER FIVE: RECOMMENDATION AND CONCLUSION
5.1. Summary – – – – – – – – – 54
5.2. Achievement – – – – – – – – – 54
5.3. Recommendation – – – – – – – – – 54
5.4. Conclusion – – – – – – – – – 55

REFERENCES

INTRODUCTION  

The increase in demand of energy and the depletion of fossil fuel have increased the interest of people in alternative energy sources. For energy security and diversity, it is necessary that serious attention is given to renewable energy source. The general opinion shared by most of the specialists supports the idea that the exclusive dependence on the energy produced from fossil fuels (coal, oil, nuclear, etc.) is hazardous, unsustainable and harmful to the environment.

In this context, many developed countries (e.g. USA, Germany, Spain, Denmark, France, Italy etc.) have launched ambitious programs for supporting the rapid development of alternative energetic technologies based on solar energy, wind energy, tidal and wave energy, biomass etc. One of the most promising renewable energy sources characterized by a huge potential of conversion into electrical power is the solar energy.

The conversion of solar radiation into electrical energy by Photo-Voltaic (PV) effect is a very promising technology, being clean, silent and reliable, with very small maintenance costs and small ecological impact. The interest in the PV conversion systems is visibly reflected by the exponential increase in sales in this market segment with a strong growth. 

REFERENCES

T. Salmi, M. Bouzguenda, A. Gagtli, “MATLAB/Simulink based modeling of solar
photovoltaic cell,” International journal of renewable energy research, vol.2, no.2, 2012.

S. Harrington, T. Hund, “Photovoltaic Lighting System Performance,” Twenty Fifth
IEEE Photovoltaic Specialists Conference. Pg. 1307-1310. May 1996.

S. Hiranvardom, “A Comparative Analysis of Photovoltaic Street Lighting Systems
Installed in Thailand,” Photovoltaic Energy Conversion, 2003 Proceedings of 3rd
World Conference. Volume 3, Pg. 2478-2481. May 2003

V. Salas, M. Manzanas, A. Lazaro, A. Barrado, E. Olias, “The Control Strategies for
Photovoltaic Regulators Applied to Stand-alone Systems,” Industrial Electronics Society,
IEEE. Volume 4, Pg. 3274-3279. November 2002.

Wikipedia, “Wind Power,” Wikimedia Foundation. 2007. Last Retrieved March 30,
2007 from http://en.wikipedia.org/wiki/Wind_power

C. Austin, R. Borja, J. Phillips, “OPERATION SOLAR EAGLE: A Study
Examining Photovoltaic (PV) Solar Power as an Alternative for the Rebuilding of the
Iraqi Electrical Power Generation Infrastructure,” Naval Postgraduate School. June 2005.
Last Retrieved March 30, 2007 http://www.fas.org/man/eprint/iraqsolar.pdf

StudentsandScholarship Team.

Be the first to comment

Leave a Reply

Your email address will not be published.


*