<p>
</p><div><b>TABLE OF CONTENTS</b></div><div>Title page</div><div>Abstract</div><div>Table of Contents</div><div>List of Abbreviations, Notations and Units</div><div><br></div><div><b>
Chapter ONE
:</b> INTRODUCTION</div><div>1.1 Aim and Objectives</div><div>1.2 Justification of Research</div><div>1.3 Scope of Work</div><div>1.4 Contribution to Knowledge</div><div><br></div><div><b>
Chapter TWO
:</b> LITERATURE REVIEW</div><div>2.1 General Properties of Aluminium and its Alloys</div><div>2.1.1 Classification system of aluminium alloy</div><div>2.1.2 Aluminium cast alloy designation</div><div>2.2 Semi-Solid Metal (SSM) Processing</div><div>2.3 Ternary and Multi component Alloy</div><div>2.4 Heat Treatment of Cast Al-Si-Mg alloys</div><div>2.4.1 Solution treatment</div><div>2.4.2 Quenching</div><div>2.4.3 Ageing treatment</div><div>2.5 Hardness measurement</div><div>2.5.1 Rockwell hardness test</div><div>2.6 Mechanism of Electrochemical Corrosion</div><div>2.7 Corrosion Prevention and Control Method</div><div>2.8 Corrosion Inhibitors</div><div>2.8.1 Anodic inhibitors</div><div>2.8.2 Cathodic inhibitors</div><div>2.8.3 Adsorption inhibitors</div><div>2.9 Organic inhibitors</div><div>2.10 The Use of Natural Plant Extracts as Corrosion Inhibitors</div><div>2.10.1 Neem tree (Azadirachta indica) / Neem seed extracts as corrosion inhibitor</div><div>2.10.2 Guava tree (Psidium guajava) / Guava leaf extracts as corrosion inhibitor</div><div>2.11 Adsorption Consideration</div><div>2.11.1 Langmuir isotherm model</div><div>2.11.2 Temkin and Frumkin adsorption model</div><div>2.12 Application of aluminium and its alloy</div><div><br></div><div><b>
Chapter THREE
:</b> MATERIALS AND METHODS</div><div>3.1 Materials and equipment</div><div>3.1.1 Materials</div><div>3.1.2 Equipment</div><div>3.2 Method</div><div>3.2.1 Extraction of neem seed and guava leaf</div><div>3.2.2 Fourier transform infrared spectroscopy (FTIR) analysis of the extracts</div><div>3.2.3 Sample preparation</div><div>3.2.4 Heat treatment</div><div>3.2.5 Hardness measurement</div><div>3.3 Corrosion Test</div><div>3.3.1 Gravimetric-based mass loss method</div><div>3.3.2 Corrosion rate determination</div><div>3.3.3 Inhibition efficiency (IE)</div><div>3.3.4 Reaction kinetics</div><div>3.3.5 Potentiodynamic polarization measurement</div><div>3.4 Micro-structure and Surface morphology examination</div><div><br></div><div><b>
Chapter FOUR
: </b>RESULTS</div><div><br></div><div><b>
Chapter FIVE
: </b>DISCUSSION OF RESULTS</div><div>5.1 Fourier Transform Infrared Spectroscopy (FTIR) Analysis</div><div>5.2 Hardness Measurement and Double Thermal Ageing Treatment</div><div>5.3 Gravimetric-Based Mass Loss Measurement</div><div>5.3.1 Effect of inhibitor concentration and time on corrosion rate</div><div>5.3.2 Effect of inhibitor concentration and time on inhibition efficiency</div><div>5.3.3 Effect of temperature on inhibition efficiency</div><div>5.3.4 Thermodynamic consideration</div><div>5.3.5 Kinetic consideration</div><div>5.4 Potentiodynamic Polarization Studies</div><div>5.4.1 Inhibition efficiency and adsorption behaviour</div><div>5.5 Microstructure and Surface Morphology Analyses</div><div>SUMMARY, CONCLUSION AND RECOMMENDATIONS</div><div>6.1 Summary</div><div>6.2 Conclusions</div><div>6.3 Recommendations</div>REFERENCES<br>
<br><p></p>