An assessment of embedded power generation in nigeria

 

Table Of Contents


Chapter ONE

INTRODUCTION

  • 1.1Introduction
  • 1.2Background of Study
  • 1.3Problem Statement
  • 1.4Objective of Study
  • 1.5Limitation of Study
  • 1.6Scope of Study
  • 1.7Significance of Study
  • 1.8Structure of the Research
  • 1.9Definition of Terms

Chapter TWO

LITERATURE REVIEW

  • 2.1Overview of Embedded Power Generation
  • 2.2Historical Development of Embedded Power Generation
  • 2.3Types of Embedded Power Generation Technologies
  • 2.4Benefits of Embedded Power Generation
  • 2.5Challenges of Embedded Power Generation
  • 2.6Policy Frameworks for Embedded Power Generation
  • 2.7Global Case Studies on Embedded Power Generation
  • 2.8Role of Renewable Energy in Embedded Power Generation
  • 2.9Economic Implications of Embedded Power Generation
  • 2.10Future Trends in Embedded Power Generation

Chapter THREE

RESEARCH METHODOLOGY

  • 3.1Research Methodology Overview
  • 3.2Research Design and Approach
  • 3.3Data Collection Methods
  • 3.4Sampling Techniques
  • 3.5Data Analysis Procedures
  • 3.6Ethical Considerations
  • 3.7Validity and Reliability
  • 3.8Limitations of the Research Methodology

Chapter FOUR

DATA PRESENTATION AND ANALYSIS

  • 4.1Overview of Research Findings
  • 4.2Analysis of Embedded Power Generation Data
  • 4.3Comparison of Embedded Power Generation Technologies
  • 4.4Impact of Policy Frameworks on Embedded Power Generation
  • 4.5Case Studies on Successful Embedded Power Generation Projects
  • 4.6Addressing Challenges in Embedded Power Generation
  • 4.7Economic Evaluation of Embedded Power Generation
  • 4.8Recommendations for Future Embedded Power Generation Initiatives

Chapter FIVE

SUMMARY, CONCLUSION AND RECOMMENDATIONS

  • 5.1Conclusion and Summary
  • 5.2Summary of Findings
  • 5.3Contributions to Existing Knowledge
  • 5.4Implications for Practice
  • 5.5Recommendations for Further Research

Project Abstract

<p> In the last decades, the power industry has had a gradual and steady change from the centralized bulk system (grid) where power is injected to the transmission network from generator to a more decentralized system where power is injected directly to a distribution network (embedded generation). Nigeria is not left out in this trend. In this assessment study, the Siemensโ€™ PSS/E software is used to run the Newton-Raphson load flow program to see the effect of EG on loss reduction and voltage profile improvement while comparing the results obtained with the installation of the traditional network compensators alongside their impact on network (element) loading. Furthermore, the load factor and EG level of penetration are determined via mathematical methods. This work shows that EG can reduce the Nigerian transmission network loss by 7% and a section-cut of it; the (Port Harourt) PH Mains network loss to 5.51% from 9.97%. The work further shows that EG improves the per unit (p.u.) voltage of a network especially at the buses directly connected to it as observed from buses 13(0.914 to 1.02 p.u.) and 14 (0.93t7 to 1.02 p.u.) of the transmission network considered. Similarly, EG greatly improved the overall voltage profile of the Port Harcourt Mains T/S 132/33kV with all bus voltages falling within the statutory voltage profile range (0.95 p.u. to 1.05 p.u.) except the Rumuodumaya Bus that improved from 0.8pu to 0.93pu. A comparison of the network performance with EG and with Fixed Shunt Compensation gives EG a better recommendation in the light of loss reduction, voltage profile improvement capabilities. Also more efficient consumption of power by consumers are achieved with the EG in operation as seen in the Load Factor studies. At a penetration of 14.76%, the EG has a positive effect on the overall network performance which has to be monitored as the level of penetration increases, so as to mitigate the impact on the technical losses of the network. <br></p>

Project Overview

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