Use of single-point resistance and sp logging in groundwater investigation at otor-jeremi geology project topics – complete project material

 

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 Groundwater Investigation
  • 2.2Single-Point Resistance Logging
  • 2.3SP Logging in Geology
  • 2.4Application of SP Logging in Groundwater Exploration
  • 2.5Benefits of Single-Point Resistance Logging
  • 2.6Challenges in Single-Point Resistance Logging
  • 2.7Literature Review on Groundwater Investigations
  • 2.8Comparative Analysis of Different Logging Techniques
  • 2.9Case Studies on SP Logging in Groundwater Exploration
  • 2.10Future Trends in Groundwater Investigation Technologies

Chapter THREE

RESEARCH METHODOLOGY

  • 3.1Research Methodology Overview
  • 3.2Selection of Study Area
  • 3.3Data Collection Methods
  • 3.4Instrumentation and Equipment Used
  • 3.5Data Analysis Techniques
  • 3.6Sampling Procedures
  • 3.7Research Design
  • 3.8Data Validation and Quality Assurance

Chapter FOUR

DATA PRESENTATION AND ANALYSIS

  • 4.1Overview of Research Findings
  • 4.2Analysis of Data Collected
  • 4.3Interpretation of Results
  • 4.4Comparison with Existing Literature
  • 4.5Discussion on Significance of Findings
  • 4.6Implications of Findings
  • 4.7Recommendations for Future Research
  • 4.8Practical Applications of Research Findings

Chapter FIVE

SUMMARY, CONCLUSION AND RECOMMENDATIONS

  • 5.1Summary of Research
  • 5.2Conclusion
  • 5.3Contributions to the Field
  • 5.4Limitations of the Study
  • 5.5Recommendations for Implementation
  • 5.6Areas for Future Research

Project Abstract

Groundwater investigation is crucial for understanding the hydrogeological properties of an area to ensure sustainable water resource management. In the Otor-Jeremi geology project, the use of single-point resistance (SPR) and spontaneous potential (SP) logging techniques has been employed to assess the subsurface characteristics and evaluate potential groundwater resources. The single-point resistance method involves measuring the electrical resistivity of the subsurface materials using a probe inserted into the ground. This data helps in identifying variations in lithology, porosity, and water content, which are essential for delineating potential aquifers and assessing their productivity. Similarly, the spontaneous potential logging technique measures the natural electrical potential differences between subsurface formations. This method assists in detecting changes in lithology, fluid content, and permeability, which are key factors in determining the presence and quality of groundwater resources. The integration of SPR and SP logging data provides valuable insights into the subsurface geology and hydrogeological conditions of the Otor-Jeremi area. By analyzing the resistivity and spontaneous potential measurements, geologists and hydrogeologists can delineate potential aquifer zones, estimate their thickness and depth, and assess the groundwater quality based on the electrical properties of the formations. Furthermore, the combination of SPR and SP logging techniques allows for the identification of geological structures such as faults, fractures, and bedding planes that may influence groundwater flow and storage in the study area. Understanding these structural features is essential for developing effective groundwater management strategies and optimizing well placement for sustainable water supply. Overall, the use of single-point resistance and spontaneous potential logging in groundwater investigation at the Otor-Jeremi geology project has proven to be valuable in characterizing the subsurface geology, delineating potential aquifers, and assessing groundwater resources. The data obtained from these techniques provide essential information for decision-making in water resources development and management, contributing to the sustainable utilization of groundwater in the region.

Project Overview

<p>CHAPTER ONE<br><br>1.0 Introduction<br><br>Water is one of the abundant and widely used natural resources available to man. Many communities obtain the water they need from rivers, lakes, or reservoirs, sometime using aqueduct or canals to bring water from distant surface sources. Another source of water lies directly beneath most towns. This resource is groundwater, the water that lies beneath the ground surface. The origin of water is traced to the process of the hydrologic cycle. When rain falls on the land surface as precipitation, more than half of the water returns rather rapidly to the atmosphere by evaporation or transportation from plants. The remainder either flows over the land surface as runoff to streams, rivers, and lakes, or soaks into the ground by infiltration to form groundwater. Rivers stream and lakes make up the surface occurrence while those that sink into the ground make up subsurface occurrence called ground water.<br><br>Groundwater is the water that lies beneath the ground surface, filling the pore spaces between grains in bodies of sediment and clastic sedimentary rocks and filling cracks crevices in all types of rocks (Plummer et al 1999). The subsurface zone in which all rocks opening are filled with water is saturated zone. The upper surface of the saturated zone is the water table. Groundwater is unfortunately not evenly distributed everywhere. The distribution of ground water depends on large extent upon the types and depth of occurrences (Oseji, 2010). Ground water in its natural state tends to be relatively free of contaminants in most areas. Because it is a widely used source of drinking water, the contamination of groundwater can be a very serious problem (Plummer et al., 1999). Groundwater can be contaminated by pesticides and herbicides (such as diazion, atarzine DEA and 2, 4, D) applied to agricultural crops Can find their way into groundwater when rain or irrigation water leaches the contaminants downward into the soil; Liquid and solid wastes from septic tanlas, sewage plants and animal. Feedlots and slaughterhouse may contain bacteria viruses, and parasite that can contaminate groundwater.<br><br>Ground exploitation sometime often result in failed and abortive borehole because of lack of preliminary geophysical investigation required to map and locate prolific zones within the aquifers (Atakpo et al., 2008). In order to avoid such an occurrence and to increase the probability of drilling successful and sustainable borehole, it becomes pertinent and economically wise to carry out prior geophysical investigation. Borehole electrical resistivity and spontaneous potential method is based on the variable resistance in surface materials to the conduction of electrical current depending on materials to the conduction of electrical current depending on variation in fluid content, density and chemical composition of the composition (Paransis, 1986). Recently other electrical geophysical method such as electro-magmatic induction (EM) and ground penetrating radar (GPR) becomes increasingly popular. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; <br><br>1.1 Location of the Study Area<br><br>Otor-Jeremi is the headquarters of Ughelli south local government area of delta state, which came into existence on the 23rd of September, 1997 following the splitting of the defunct ughelli local government area into two, north and south local government areas. She lies between latitude 5o 58139. 011N and 5o 581 3011E and longitude 5o 301 5311N and 6o 011 04 511E. The local government area is made of six major clans namely Ughievwen, Ewu, Olomu, Effurun-otor, Okparabe and Arhavweren which make up the eleven wards of the local government area.<br><br>Fig 1: Map of Otor-Jeremi<br><br>1.2 Aims and Objective<br><br>The aim and objective of this work are.<br><br>To determine the lithology of the subsurface using spontaneous potential log.<br>To determine or identify the aquifer, depths and thickness of the rock using spontaneous potential log.<br>To determine the quality of water based on total dissolved solids using single point resistance log.<br>To determine the portability of the water. &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; <br>1.3 Scope of the Study<br><br>This research work is limited to acquiring of field data using single point resistance log to evaluation of the quality of water based on total dissolved solid (TDS) and the lithology of the subsurface using spontaneous potential log.<br><br>Purchase Detail<br>Hello, we’re glad you stopped by, you can download the complete project materials to this project with Abstract, Chapters 1 – 5, References and Appendix (Questionaire, Charts, etc) for N5000 ($15) only,<br>Please call 08111770269 or +2348059541956 to place an order or use the whatsapp button below to chat us up.<br>Bank details are stated below.<br><br>Bank: UBA<br>Account No: 1021412898<br>Account Name: Starnet Innovations Limited<br></p>

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