<?xml version="1.0" encoding="UTF-8"?><!DOCTYPE article PUBLIC "-//NLM//DTD Journal Publishing DTD v3.0 20080202//EN" "http://dtd.nlm.nih.gov/publishing/3.0/journalpublishing3.dtd">
<article xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" dtd-version="3.0" xml:lang="en" article-type="research article">
 <front>
  <journal-meta>
   <journal-id journal-id-type="publisher-id">
    ijg
   </journal-id>
   <journal-title-group>
    <journal-title>
     International Journal of Geosciences
    </journal-title>
   </journal-title-group>
   <issn pub-type="epub">
    2156-8359
   </issn>
   <issn publication-format="print">
    2156-8367
   </issn>
   <publisher>
    <publisher-name>
     Scientific Research Publishing
    </publisher-name>
   </publisher>
  </journal-meta>
  <article-meta>
   <article-id pub-id-type="doi">
    10.4236/ijg.2024.156028
   </article-id>
   <article-id pub-id-type="publisher-id">
    ijg-134115
   </article-id>
   <article-categories>
    <subj-group subj-group-type="heading">
     <subject>
      Articles
     </subject>
    </subj-group>
    <subj-group subj-group-type="Discipline-v2">
     <subject>
      Earth 
     </subject>
     <subject>
       Environmental Sciences
     </subject>
    </subj-group>
   </article-categories>
   <title-group>
    Characterization of Aquifers in Crystalline and Crystallophyll Basement Zones Using the Electrical Resistivity Method (Trails and Electrical Soundings) in the Gagnoa Region, (Central-Western Côte d’Ivoire)
   </title-group>
   <contrib-group>
    <contrib contrib-type="author" xlink:type="simple">
     <name name-style="western">
      <surname>
       Oscar Zahibo
      </surname>
      <given-names>
       Onétié
      </given-names>
     </name> 
     <xref ref-type="aff" rid="aff1"> 
      <sup>1</sup>
     </xref>
    </contrib>
    <contrib contrib-type="author" xlink:type="simple">
     <name name-style="western">
      <surname>
       Assoué Kouakou Sylvestre
      </surname>
      <given-names>
       Kouadio
      </given-names>
     </name> 
     <xref ref-type="aff" rid="aff1"> 
      <sup>1</sup>
     </xref>
    </contrib>
    <contrib contrib-type="author" xlink:type="simple">
     <name name-style="western">
      <surname>
       Kotchi Rodrigue
      </surname>
      <given-names>
       Orou
      </given-names>
     </name> 
     <xref ref-type="aff" rid="aff2"> 
      <sup>2</sup>
     </xref>
    </contrib>
    <contrib contrib-type="author" xlink:type="simple">
     <name name-style="western">
      <surname>
       Maxime Assa
      </surname>
      <given-names>
       Abe
      </given-names>
     </name> 
     <xref ref-type="aff" rid="aff1"> 
      <sup>1</sup>
     </xref>
    </contrib>
   </contrib-group> 
   <aff id="aff1">
    <addr-line>
     aDepartment of Geosciences, Peleforo Gon Coulibaly University, Korhogo, Côte d’Ivoire
    </addr-line> 
   </aff> 
   <aff id="aff2">
    <addr-line>
     aDepartment of Agriculture and New Technologies, University of San Pedro, San Pedro, Côte d’Ivoire
    </addr-line> 
   </aff> 
   <pub-date pub-type="epub">
    <day>
     20
    </day> 
    <month>
     06
    </month>
    <year>
     2024
    </year>
   </pub-date> 
   <volume>
    15
   </volume> 
   <issue>
    06
   </issue>
   <fpage>
    511
   </fpage>
   <lpage>
    523
   </lpage>
   <history>
    <date date-type="received">
     <day>
      11,
     </day>
     <month>
      May
     </month>
     <year>
      2024
     </year>
    </date>
    <date date-type="published">
     <day>
      24,
     </day>
     <month>
      May
     </month>
     <year>
      2024
     </year> 
    </date> 
    <date date-type="accepted">
     <day>
      24,
     </day>
     <month>
      June
     </month>
     <year>
      2024
     </year> 
    </date>
   </history>
   <permissions>
    <copyright-statement>
     © Copyright 2014 by authors and Scientific Research Publishing Inc. 
    </copyright-statement>
    <copyright-year>
     2014
    </copyright-year>
    <license>
     <license-p>
      This work is licensed under the Creative Commons Attribution International License (CC BY). http://creativecommons.org/licenses/by/4.0/
     </license-p>
    </license>
   </permissions>
   <abstract>
    <b>Introduction</b>: Located in the central-western part of Côte d’Ivoire, the subsoil of the Gagnoa region is made up of sedimentary volcano formations and granitoids with developed fracturing. This complex Precambrian basement contains most of the region’s water resources. This is at the origin of the high failure rate during the various hydrogeological prospecting campaigns. 
    <b>M</b>
    <b>e</b>
    <b>thodology</b>: The database consists of resistivities from 42 holes and 51 trails drilled as part of the implementation of high-throughput drilling in the study area. The objective of this study is to deepen the knowledge of the fissured basement by interpreting profile curves and electrical soundings. It will be a question of classifying the different types of anomalies obtained on the profiles and their shapes. The orientation of the lineaments observed on the profiles was determined. 
    <b>Results</b>: The interpretation of the geophysical data revealed various anomalies, the main ones being of the CC (Conductor Compartment) and CEDP (Contact between two bearings) types. These types of anomalies are mainly expressed in various forms: the “V”, “W” and “U” shapes. From these anomalies and the appearance of the electrical profiles, lineaments and their orientations were identified with N90-100, N130-140, N170-180 as major orientations. 
    <b>Conclusion</b>: These results could contribute to a better understanding of the fractured environment of the Gagnoa region.
   </abstract>
   <kwd-group> 
    <kwd>
     Basement
    </kwd> 
    <kwd>
      Electrical Profiles
    </kwd> 
    <kwd>
      Sounding Curves
    </kwd> 
    <kwd>
      Resistivities
    </kwd>
   </kwd-group>
  </article-meta>
 </front>
 <body>
  <sec id="s1">
   <title>1. Introduction</title>
   <p>The crystalline and metamorphic basement is full of immense groundwater reserves located across isolated aquifers of hard-to-manage fissured basement <xref ref-type="bibr" rid="scirp.134115-1">
     [1]
    </xref> <xref ref-type="bibr" rid="scirp.134115-2">
     [2]
    </xref> <xref ref-type="bibr" rid="scirp.134115-3">
     [3]
    </xref>. This is due to the structure of these aquifers being quite complex.</p>
   <p>This is reflected in a high failure rate for projects carried out in the basement domain, which can reach peaks of 50% (IDB-2 project, 2008-2010) <xref ref-type="bibr" rid="scirp.134115-4">
     [4]
    </xref>. This high failure rate is due, in addition to the lack of knowledge of fractured environments, to a lack of in-depth studies during prospecting.</p>
   <p>Many methods of hydrogeological investigation (geomorphology, remote sensing, geophysics, GIS) were adopted for a better understanding of the fractured environment. The use of geophysical methods for the installation of water boreholes has yielded satisfactory results, with an estimated failure rate of 12% (WAEMU 2010 project in the N’Zi region) <xref ref-type="bibr" rid="scirp.134115-5">
     [5]
    </xref>. Geophysics is therefore a very valuable tool for conducting a hydrogeological research programm, whether to identify new resources or to improve knowledge of an aquifer reservoir <xref ref-type="bibr" rid="scirp.134115-6">
     [6]
    </xref>. It is in this perspective that this work is inscribed, which aims to deepen the geological knowledge of the basement of the study area.</p>
   <p>The most widely used geophysical method is the electrical resistivity method (trailed and electrical sounding), its interpretation and implementation easy and above all for the high reliability of the results. This study will make it possible to identify anomalies and fractures in the study area and to highlight the different geological layers.</p>
  </sec><sec id="s2">
   <title>2. Study Framework and Geological Contex</title>
   <p>Located in the central-western part of Côte d’Ivoire, the Gagnoa region belongs to the Proterozoic domain. From a petrographic point of view, crystalline rocks and Crystallophyllians consisting mainly of granitoids and volcano-sedimentary formations. The volcano-sedimentary formations are represented by fine-grained amphibolites with a distinctly schist structure, chloritic schists, sericitous schists and tuffs of grey-green colour with generally very fine grains (<xref ref-type="fig" rid="fig1">
     Figure 1
    </xref>).</p>
   <fig id="fig1" position="float">
    <label>Figure 1</label>
    <caption>
     <title>Figure 1. Modified geological map of the Gagnoa region <xref ref-type="bibr" rid="scirp.134115-7">
       [7]
      </xref>.</title>
    </caption>
    <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2802514-rId13.jpeg?20240627014434" />
   </fig>
   <p>The fracturing of the Gagnoa region is heterogeneous. Statistical analysis of these networks indicates that they have reached an advanced stage of development, like the Precambrian basement fracture networks of Côte d’Ivoire <xref ref-type="bibr" rid="scirp.134115-3">
     [3]
    </xref> <xref ref-type="bibr" rid="scirp.134115-4">
     [4]
    </xref> <xref ref-type="bibr" rid="scirp.134115-5">
     [5]
    </xref> <xref ref-type="bibr" rid="scirp.134115-6">
     [6]
    </xref>. The more detailed analysis of the fractures revealed two families of fractures preponderant in direction: N0-10 and N90-100.</p>
   <p>
    <xref ref-type="bibr" rid="scirp.134115-"></xref>From a hydrogeological point of view, there are two types of aquifers: alterite aquifers and fissure aquifers. These two types of aquifers are generally superimposed, but it can happen that one is missing or is laterally and partially saturated or not, drained or draining <xref ref-type="bibr" rid="scirp.134115-8">
     [8]
    </xref>.</p>
  </sec><sec id="s3">
   <title>3. Material and Methods</title>
   <sec id="s3_1">
    <title>3.1. Study Material</title>
    <p>The tools used come from Schlumberger’s quadrupole device, which consists of:</p>
    <p>
     <xref ref-type="bibr" rid="scirp.134115-"></xref>The data used in this study are exclusively electrical resistivity data acquired using electrical trailing and sounding techniques. These data were obtained from 51 drag tracks and 42 sampling points executed in the study area (<xref ref-type="table" rid="table1">
      Table 1
     </xref>).</p>
    <table-wrap id="table1">
     <label>
      <xref ref-type="table" rid="table1">
       Table 1
      </xref></label>
     <caption>
      <title>
       <xref ref-type="bibr" rid="scirp.134115-"></xref>Table 1. Different electrical trails and soundings carried out in the study area.</title>
     </caption>
     <table class="MsoTableGrid custom-table" border="0" cellspacing="0" cellpadding="0"> 
      <tr> 
       <td class="custom-bottom-td acenter" width="31.53%"><p style="text-align:center">S/préfectures</p></td> 
       <td class="custom-bottom-td acenter" width="27.78%"><p style="text-align:center">Villages</p></td> 
       <td class="custom-bottom-td acenter" width="19.23%"><p style="text-align:center">Nombre de trainés</p></td> 
       <td class="custom-bottom-td acenter" width="21.45%"><p style="text-align:center">Nombre de Sondages</p></td> 
      </tr> 
      <tr> 
       <td rowspan="3" class="custom-top-td acenter" width="31.53%"><p style="text-align:center">BAYOTA</p></td> 
       <td class="custom-top-td acenter" width="27.78%"><p style="text-align:center">Abodjekro</p></td> 
       <td class="custom-top-td acenter" width="19.23%"><p style="text-align:center">3</p></td> 
       <td class="custom-top-td acenter" width="21.45%"><p style="text-align:center">2</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="27.78%"><p style="text-align:center">Adjamé</p></td> 
       <td class="acenter" width="19.23%"><p style="text-align:center">3</p></td> 
       <td class="acenter" width="21.45%"><p style="text-align:center">2</p></td> 
      </tr> 
      <tr> 
       <td class="custom-bottom-td acenter" width="27.78%"><p style="text-align:center">Bathelemykro</p></td> 
       <td class="custom-bottom-td acenter" width="19.23%"><p style="text-align:center">2</p></td> 
       <td class="custom-bottom-td acenter" width="21.45%"><p style="text-align:center">2</p></td> 
      </tr> 
      <tr> 
       <td rowspan="4" class="custom-top-td acenter" width="31.53%"><p style="text-align:center">GAGNOA</p></td> 
       <td class="custom-top-td acenter" width="27.78%"><p style="text-align:center">Ahizabré</p></td> 
       <td class="custom-top-td acenter" width="19.23%"><p style="text-align:center">4</p></td> 
       <td class="custom-top-td acenter" width="21.45%"><p style="text-align:center">1</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="27.78%"><p style="text-align:center">Kakrédou</p></td> 
       <td class="acenter" width="19.23%"><p style="text-align:center">3</p></td> 
       <td class="acenter" width="21.45%"><p style="text-align:center">1</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="27.78%"><p style="text-align:center">Bénoitkro</p></td> 
       <td class="acenter" width="19.23%"><p style="text-align:center">3</p></td> 
       <td class="acenter" width="21.45%"><p style="text-align:center">2</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="27.78%"><p style="text-align:center">Behibokro</p></td> 
       <td class="acenter" width="19.23%"><p style="text-align:center">3</p></td> 
       <td class="acenter" width="21.45%"><p style="text-align:center">3</p></td> 
      </tr> 
      <tr> 
       <td rowspan="3" class="acenter" width="31.53%"><p style="text-align:center">GNAGBODOUGNOA</p></td> 
       <td class="acenter" width="27.78%"><p style="text-align:center">Bamo 1</p></td> 
       <td class="acenter" width="19.23%"><p style="text-align:center">2</p></td> 
       <td class="acenter" width="21.45%"><p style="text-align:center">3</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="27.78%"><p style="text-align:center">Daliguépalegnoa</p></td> 
       <td class="acenter" width="19.23%"><p style="text-align:center">2</p></td> 
       <td class="acenter" width="21.45%"><p style="text-align:center">3</p></td> 
      </tr> 
      <tr> 
       <td class="custom-bottom-td acenter" width="27.78%"><p style="text-align:center">Kragbalilié</p></td> 
       <td class="custom-bottom-td acenter" width="19.23%"><p style="text-align:center">3</p></td> 
       <td class="custom-bottom-td acenter" width="21.45%"><p style="text-align:center">2</p></td> 
      </tr> 
      <tr> 
       <td rowspan="4" class="custom-top-td acenter" width="31.53%"><p style="text-align:center">GUIBEROUA</p></td> 
       <td class="custom-top-td acenter" width="27.78%"><p style="text-align:center">Allakonankro</p></td> 
       <td class="custom-top-td acenter" width="19.23%"><p style="text-align:center">2</p></td> 
       <td class="custom-top-td acenter" width="21.45%"><p style="text-align:center">3</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="27.78%"><p style="text-align:center">Alloukouassikro</p></td> 
       <td class="acenter" width="19.23%"><p style="text-align:center">4</p></td> 
       <td class="acenter" width="21.45%"><p style="text-align:center">2</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="27.78%"><p style="text-align:center">Briehoa</p></td> 
       <td class="acenter" width="19.23%"><p style="text-align:center">3</p></td> 
       <td class="acenter" width="21.45%"><p style="text-align:center">2</p></td> 
      </tr> 
      <tr> 
       <td class="custom-bottom-td acenter" width="27.78%"><p style="text-align:center">Kouadiokro</p></td> 
       <td class="custom-bottom-td acenter" width="19.23%"><p style="text-align:center">3</p></td> 
       <td class="custom-bottom-td acenter" width="21.45%"><p style="text-align:center">3</p></td> 
      </tr> 
      <tr> 
       <td rowspan="6" class="custom-top-td acenter" width="31.53%"><p style="text-align:center">OURAGAHIO</p></td> 
       <td class="custom-top-td acenter" width="27.78%"><p style="text-align:center">Cocotier 1</p></td> 
       <td class="custom-top-td acenter" width="19.23%"><p style="text-align:center">2</p></td> 
       <td class="custom-top-td acenter" width="21.45%"><p style="text-align:center">2</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="27.78%"><p style="text-align:center">Cocotier 2</p></td> 
       <td class="acenter" width="19.23%"><p style="text-align:center">3</p></td> 
       <td class="acenter" width="21.45%"><p style="text-align:center">2</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="27.78%"><p style="text-align:center">Drayo</p></td> 
       <td class="acenter" width="19.23%"><p style="text-align:center">1</p></td> 
       <td class="acenter" width="21.45%"><p style="text-align:center">2</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="27.78%"><p style="text-align:center">Dodougnoa</p></td> 
       <td class="acenter" width="19.23%"><p style="text-align:center">3</p></td> 
       <td class="acenter" width="21.45%"><p style="text-align:center">2</p></td> 
      </tr> 
      <tr> 
       <td class="acenter" width="27.78%"><p style="text-align:center">Konankankro</p></td> 
       <td class="acenter" width="19.23%"><p style="text-align:center">5</p></td> 
       <td class="acenter" width="21.45%"><p style="text-align:center">2</p></td> 
      </tr> 
      <tr> 
       <td class="custom-bottom-td acenter" width="27.78%"><p style="text-align:center">Manguehigouepa</p></td> 
       <td class="custom-bottom-td acenter" width="19.23%"><p style="text-align:center">3</p></td> 
       <td class="custom-bottom-td acenter" width="21.45%"><p style="text-align:center">1</p></td> 
      </tr> 
      <tr> 
       <td class="custom-top-td acenter" width="59.32%" colspan="2"><p style="text-align:center">TOTAL</p></td> 
       <td class="custom-top-td acenter" width="19.23%"><p style="text-align:center">57</p></td> 
       <td class="custom-top-td acenter" width="21.45%"><p style="text-align:center">42</p></td> 
      </tr> 
     </table>
    </table-wrap>
   </sec>
   <sec id="s3_2">
    <title>3.2. Methodology</title>
    <p>The methodology based on Schlumberger’s quadrupole and aligned device will consist of injecting direct current I by means of two injection electrodes A and B and measuring the potential difference (ΔV) using two potential electrodes M and N (<xref ref-type="fig" rid="fig2">
      Figure 2
     </xref>).</p>
    <fig id="fig2" position="float">
     <label>Figure 2</label>
     <caption>
      <title>Figure 2. Illustrative diagram of horizontal prospecting (single trail).</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2802514-rId14.jpeg?20240627014437" />
    </fig>
    <p>The Sylcal Pro communicates the value of the electrical resistivity ρ of the geological formation.</p>
    <p>The electrical survey methodology takes place in two (02) different phases: the acquisition of the electrical trail data (lateral or horizontal surveying), the acquisition of the electrical survey data (vertical surveying).</p>
    <p>For the acquisition of the electric trail data, steps and procedures have been carried out:</p>
    <p>A straight line connecting these two anomalies. This line is likely to represent a lineament. The process of drawing lineaments is shown in <xref ref-type="fig" rid="fig3">
      Figure 3
     </xref>.</p>
    <fig id="fig3" position="float">
     <label>Figure 3</label>
     <caption>
      <title>
       <xref ref-type="bibr" rid="scirp.134115-"></xref>Figure 3. Identification of lineaments on electrical profiles <xref ref-type="bibr" rid="scirp.134115-9">
        [9]
       </xref>.</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2802514-rId15.jpeg?20240627014437" />
    </fig>
    <p>The determination of the orientation of the orientation of these identified lineaments is done considering the orientation of the profile. Thus, in <xref ref-type="fig" rid="fig3">
      Figure 3
     </xref>, considering that the orientation of the first lineament is Ω we will have: Ω = 95˚ + 90˚ + a or 95˚ − 90˚ + a <xref ref-type="bibr" rid="scirp.134115-9">
      [9]
     </xref>.</p>
    <p>For the acquisition of electrical survey data, steps and procedures were carried out:</p>
    <p>This method makes it possible to study the vertical variation of resistivity as a function of depth in order to highlight the layers of terrain encountered. The depth of investigation is not only related to the length AB but also to the configuration of the subsoil (structures and resistivity contrasts between the different units). For each value of AB/2, the device gives a value of the apparent resistivity of the terrain through which the current flows. The resistivity values determined during the geophysical surveys are plotted on a bilogarithmic diagram with the corresponding apparent resistivity on the abscissa AB/2 and on the y-axis. This sounding curve can take a variety of forms.</p>
    <p>By referring to the conceptual model composed of three types of terrain (alterites, fissured horizon and healthy basement) (<xref ref-type="fig" rid="fig4">
      Figure 4
     </xref>).</p>
    <fig id="fig4" position="float">
     <label>Figure 4</label>
     <caption>
      <title>
       <xref ref-type="bibr" rid="scirp.134115-"></xref>Figure 4. Some sounding curves <xref ref-type="bibr" rid="scirp.134115-10">
        [10]
       </xref>.</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2802514-rId16.jpeg?20240627014437" />
    </fig>
   </sec>
  </sec><sec id="s4">
   <title>4. Results</title>
   <sec id="s4_1">
    <title>4.1. Characterization of Anomalies Based on Electrical Profiles</title>
    <p>The electrical profiles used in this study are those from which the surveys were carried out. These different profiles display various anomaly configurations.</p>
    <p>1) Driver compartment (CC) fault</p>
    <p>
     <xref ref-type="fig" rid="fig5">
      Figure 5
     </xref> shows an electrical profile oriented N143˚, made in the village of Adjamé with a “V” shaped anomaly configuration.</p>
    <p>On this profile, we observe a non-significant variation in resistivity (700 - 1200 Ω∙m). This monotonous pace was interrupted by an anomaly at the 290 m measuring point. At this point, there is a sudden drop in resistivity and then an increase.</p>
    <fig id="fig5" position="float">
     <label>Figure 5</label>
     <caption>
      <title>(a) (b)Figure 5. Narrow conductor compartment type (“V” shape) at Adjamé (a) and (“U” shape) at Kragbalilié (b).</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="" />
    </fig>
    <fig id="fig5" position="float">
     <label>Figure 5</label>
     <caption>
      <title>(a) (b)Figure 5. Narrow conductor compartment type (“V” shape) at Adjamé (a) and (“U” shape) at Kragbalilié (b).</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2802514-rId17.jpeg?20240627014439" />
    </fig>
    <fig id="fig5" position="float">
     <label>Figure 5</label>
     <caption>
      <title>(a) (b)Figure 5. Narrow conductor compartment type (“V” shape) at Adjamé (a) and (“U” shape) at Kragbalilié (b).</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2802514-rId18.jpeg?20240627014439" />
    </fig>
    <p>
     <xref ref-type="fig" rid="fig5">
      Figure 5
     </xref> shows an electrical profile oriented N90˚ with “U” shaped anomalies made in the village of Kragbalilie. The anomaly is remarkable on two measurement points, i.e. 40 - 50 m and 160 - 170 m. The degree of fracturing is therefore identical between these two points.</p>
    <p>
     <xref ref-type="bibr" rid="scirp.134115-"></xref>The forms of H anomalies are identified on the N155˚ oriented electrical profile executed in the village of Mangbehigouepa (<xref ref-type="fig" rid="fig6">
      Figure 6
     </xref>).</p>
    <fig id="fig6" position="float">
     <label>Figure 6</label>
     <caption>
      <title>
       <xref ref-type="bibr" rid="scirp.134115-"></xref>Figure 6. Conductive compartment type anomaly from (shape “W” and (shape “H”) to Mangbehigouepa.</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2802514-rId19.jpeg?20240627014439" />
    </fig>
    <p>This anomaly observable at the 190 m measurement point is similar to a U-shaped anomaly with a slight curvature. On this same profile, a “W” shape anomaly was also detected. The “W” shape anomaly is identified by alternating levels of high apparent resistivity values (horst with sub-outcropping bedrock) and low apparent resistivity values within the main anomaly.</p>
    <p>2) Contact anomaly between two bearings</p>
    <p>
     <xref ref-type="fig" rid="fig7">
      Figure 7
     </xref> shows a contact anomaly between two bearings.</p>
    <p>This profile carried out in the village of Behibrokro clearly shows the existence of two consecutive levels. The contact between these two bearings is located at the measurement point 120 m with a fallout of resistivity (689 Ω∙m). The first bearing has an average resistivity of about 900 Ω∙m. While the second has an average resistivity of 600 Ω∙m. It is at this second level of about 170 m that the borehole was carried out.</p>
    <fig id="fig7" position="float">
     <label>Figure 7</label>
     <caption>
      <title>
       <xref ref-type="bibr" rid="scirp.134115-"></xref>Figure 7. Anomaly type contact between two bearings at Behibrokro.</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2802514-rId20.jpeg?20240627014439" />
    </fig>
    <p>The lineaments were detected by parallel electrical trails (<xref ref-type="fig" rid="fig8">
      Figure 8
     </xref>).</p>
    <p>These two trails are 15 m apart and oriented N 62˚. The two resulting profiles have the same appearance and a similar variation of electrical resistivities as a function of the distance AB/2 over their entire length. Similar conductive anomalies are identified on these profiles. The lineament is assimilated to the line joining these anomalies. Thus, we were able to materialize 52 lineaments on all the profiles. These lineaments have the preferred direction of the N90-100, N130-140, N170-180 directions (<xref ref-type="fig" rid="fig9">
      Figure 9
     </xref>).</p>
    <fig id="fig8" position="float">
     <label>Figure 8</label>
     <caption>
      <title>Figure 8. Drawing of lineaments on two parallel profiles in the village Dalililie.</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2802514-rId21.jpeg?20240627014439" />
    </fig>
    <fig id="fig9" position="float">
     <label>Figure 9</label>
     <caption>
      <title>Figure 9. Directional rosette for lineaments from electrical profiles (N = 52).</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2802514-rId22.jpeg?20240627014439" />
    </fig>
   </sec>
   <sec id="s4_2">
    <title>4.2. Characterization of Sounding Curves</title>
    <p>The electrical soundings carried out in the study area have made it possible to identify three types of sounding curve. The “A” type curve, called “uphill” single-branch sounding curves, is the most common with more than 80%, followed by the “KH” type curve which begins with a bell “and ends at the bottom of the boat” and the H-type curve, i.e. the “curve at the bottom of the boat”.</p>
    <p>This type of curve is indicative of only two plots of land (<xref ref-type="fig" rid="fig10">
      Figure 10
     </xref>). The first layer is 25 m thick and has a resistivity varying from 100 to 168 Ω∙m. The second layer represents the basement with increasing resistivities (≥200 Ω∙m).</p>
    <fig id="fig10" position="float">
     <label>Figure 10</label>
     <caption>
      <title>Figure 10. Single branch “ascending” sounding curve at Dalilié.</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2802514-rId23.jpeg?20240627014440" />
    </fig>
    <p>The sounding curve obtained in the village of Allakonankro shows a variant of the A-type curve and is referred to as the “stepped curve on the ascending branch” (<xref ref-type="fig" rid="fig11">
      Figure 11
     </xref>). This curve is composed of two asymmetrical parts separated by an intercalation. This intercalation is characterized by a brief drop and then an increase in resistivities. This zone represents a rupture zone comparable to a fracture. It can materialize a significant water inflow.</p>
    <fig id="fig11" position="float">
     <label>Figure 11</label>
     <caption>
      <title>Figure 11. “Staired sounding curve on the rising branch” at Allakonankro.</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2802514-rId24.jpeg?20240627014440" />
    </fig>
    <p>The “shipbed” sounding curve is characteristic of highly armoured regions and highlights the superposition of three distinct resistivity layers:</p>
    <fig id="fig12" position="float">
     <label>Figure 12</label>
     <caption>
      <title>
       <xref ref-type="bibr" rid="scirp.134115-"></xref>Figure 12. “Shipbed” sounding curves at Benoitkro.</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2802514-rId25.jpeg?20240627014441" />
    </fig>
    <p>A variant of the “bottom of the boat” sounding curve, the “bell curve at the bottom of the boat” differs from it by the presence of a conductive layer of topsoil. It is observed on the sounding curve carried out in the village of Alloukouassikro (<xref ref-type="fig" rid="fig13">
      Figure 13
     </xref>). This layer has a low resistivity of 92 to 95 Ω∙m at Alloukouassikro and 107 to 137 Ω∙m at Briehoa.</p>
    <fig id="fig13" position="float">
     <label>Figure 13</label>
     <caption>
      <title>
       <xref ref-type="bibr" rid="scirp.134115-"></xref>Figure 13. “Bell in the bottom of the boat” sounding curves at Alloukouassikro.</title>
     </caption>
     <graphic mimetype="image" position="float" xlink:type="simple" xlink:href="https://html.scirp.org/file/2802514-rId26.jpeg?20240627014441" />
    </fig>
   </sec>
  </sec><sec id="s5">
   <title>5. Discussions</title>
   <p>The identification of the type of anomaly on the electrical profiles is linked to the measurement step used, and therefore to the depth of investigation during the survey. Indeed, a relatively large measurement step masks the real type of anomaly or has the disadvantage of confusing certain geological structures. Also, a fault can be assimilated to a geological contact.</p>
   <p>To differentiate between them, the prospector will have to change the depth of investigation as soon as an anomaly is discovered. In addition, the sub-surface investigation method used is not suitable for the identification of these structures insofar as they are important at depth. Nevertheless, several geological structures (faults, geological contacts, shear zones, fractures, etc.) could be identified on these electrical profiles as is the case in the work of <xref ref-type="bibr" rid="scirp.134115-9">
     [9]
    </xref> <xref ref-type="bibr" rid="scirp.134115-10">
     [10]
    </xref> <xref ref-type="bibr" rid="scirp.134115-11">
     [11]
    </xref> in Bidi in Burkina Faso and in Tanda. The profiles carried out in the Gagnoa region have also made it possible to identify geological structures. In many tropical regions of West Africa, the interpretation of the sounding curves obtained has revealed a structure of three electrically distinct horizons <xref ref-type="bibr" rid="scirp.134115-12">
     [12]
    </xref> <xref ref-type="bibr" rid="scirp.134115-13">
     [13]
    </xref> <xref ref-type="bibr" rid="scirp.134115-14">
     [14]
    </xref> <xref ref-type="bibr" rid="scirp.134115-15">
     [15]
    </xref> <xref ref-type="bibr" rid="scirp.134115-16">
     [16]
    </xref>. The “upward” single branch sounding curve, the most common in the Gagnoa highlights two horizons. This is due to the predominance of erosion in the study area. There is therefore an outcrop of level II. This level characterises the sandy clay alterites, most often saturated with water, which are made up of clays and granular arenas. It corresponds to a set of geological formations whose common characteristic is to present low resistivities that are different from those of the upper lateritic and lower levels of the underlying basement <xref ref-type="bibr" rid="scirp.134115-9">
     [9]
    </xref>. Some sounding curves in the study area have a bell “like appearance and end at the bottom of a boat”. This type of curve is frequently found in regions of dense forests where the vegetation cover and rainfall favour soil development <xref ref-type="bibr" rid="scirp.134115-1">
     [1]
    </xref>-<xref ref-type="bibr" rid="scirp.134115-16">
     [16]
    </xref>. Indeed, weathering plays a crucial role in the degradation of geological formations, favouring the formation of soil and lateritic armour. The use of models specific to homogeneous and semi-infinite layers, such as sedimentary media, for the interpretation of sounding curves would represent an extrapolation <xref ref-type="bibr" rid="scirp.134115-9">
     [9]
    </xref> in <xref ref-type="bibr" rid="scirp.134115-17">
     [17]
    </xref>. Also, the crushed area is difficult to spot on the sounding curves.</p>
  </sec><sec id="s6">
   <title>6. Conclusion</title>
   <p>
    <xref ref-type="bibr" rid="scirp.134115-"></xref>The interpretation of the different electrical profiles has made it possible to identify two types of profile “conductor compartment (CC) and contact between two bearings (CEDP)”. Various forms of anomalies have been identified: the “V”, “W” and “U” shapes. From these anomalies and the appearance of the electrical profiles, lineaments have been identified whose major orientations are N90-100, N130-140, N170-180. The appearance of the borehole curves (curve with a single “rising” branch and “bell in the bottom of the boat”) highlights zones of significant alteration and low apparent resistivities, and the geological nature of the subsurface horizons. This qualitative interpretation represents an asset in hydrogeological prospecting and in the understanding of the functioning of fissured aquifers.</p>
  </sec>
 </body><back>
  <ref-list>
   <title>References</title>
   <ref id="scirp.134115-ref1">
    <label>1</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Biemi, J. (1992) Contribution to the Geological, Hydrogeological, and Remote Sensing Study of the Sub-Sahelian Watersheds of the Precambrian Basement of West Africa: Hydrostructural, Hydrodynamic, Hydrochemistry and Isotopy of the Discontinuous Aquifers of Furrows and Granitic Areas of the Upper Marahoué (Côte d’Ivoire). Doctoral Thesis, University of Abidjan.
    </mixed-citation>
   </ref>
   <ref id="scirp.134115-ref2">
    <label>2</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Kouame, F. (1999) Hydrogeology of Discontinuous Aquifers in the Semi-Mountainous Region of Man-Danané (Western Côte d’Ivoire) Contribution of Satellite Image Data and Statistical and Fractal Methods to the Development of a Spatially Referenced Hydrogeological Information System. 3rd Cycle thesis, University of Cocody.
    </mixed-citation>
   </ref>
   <ref id="scirp.134115-ref3">
    <label>3</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Lasm, T. (2000) Hydrogeology of Fractured Basement Reservoirs: Statistical Analysis of Fracturing and Hydrodynamic Properties. Application to the Region of the Mountains of Côte d’Ivoire (Archean Domain). Unique Doctoral Thesis, University of Poitiers.
    </mixed-citation>
   </ref>
   <ref id="scirp.134115-ref4">
    <label>4</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Baka, D. (2012) Geometry, Hydrodynamics, and Modelling of Fractured Reservoirs of the Proterozoic Basement of the Oumé Region (Centre-West Côte d’Ivoire), Doctoral Thesis, University Félix Houphouët-Boigny.
    </mixed-citation>
   </ref>
   <ref id="scirp.134115-ref5">
    <label>5</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Kouadio, A. (2021) Productivity of Water Boreholes by the Method of Electrical Resistivity in the Middle of the Basement (N’zi Comoé zone; Côte d’Ivoire) Single Doctoral Thesis, Nangui Abogoa University.
    </mixed-citation>
   </ref>
   <ref id="scirp.134115-ref6">
    <label>6</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Dabas, M., Duval, O., Bruand, A. and Verbeque, B. (1995) Continuous Electrical Mapping: Contribution to the Knowledge of a Soil Cover Developed on Deltaic Materials. Étude et Gestion des Sols, 2, 257-268.
    </mixed-citation>
   </ref>
   <ref id="scirp.134115-ref7">
    <label>7</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Papon, A. and Lemarchand, R. (1973) Geology and Mineralization of the SouthWest of Côte d’Ivoire. Summary of the Work of the SASCA Operation (1962-1968), SODEMI Abidjan, 284.
    </mixed-citation>
   </ref>
   <ref id="scirp.134115-ref8">
    <label>8</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Jourda, J.P. (2005) Methodology for the Application of Remote Sensing Techniques and Geographic Information Systems to the Study of Fissured Aquifers in West Africa. Concept of Space Hydrotechnics: The Case of the Test Areas of Côte d’Ivoire. Doctoral Thesis in Natural Sciences, University of Cocody-Abidjan.
    </mixed-citation>
   </ref>
   <ref id="scirp.134115-ref9">
    <label>9</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Coulibaly, A. (2014) Contribution of the Electrical Resistivity Method (Trails and Electric Soundings) to the Localization of Aquifers in Crystalline and Crystallophyllian Basement Zones: The Case of the Tanda Region, (North-East of Côte d’Ivoire), Doctoral Thesis, Félix University Houphouët-Boigny.
    </mixed-citation>
   </ref>
   <ref id="scirp.134115-ref10">
    <label>10</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Onetie, Z. (2016) Contribution of GIS and Multicriteria Analysis to the Hydrogeological Prospecting of the Precambrian Basement of West Africa (The Case of the Gagnoa Region in the Centre-West of Côte d’Ivoire), Doctoral Thesis, Université Félix Houphouët-Boigny.
    </mixed-citation>
   </ref>
   <ref id="scirp.134115-ref11">
    <label>11</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Koussoubé, Y., Savadogo, A.N., Nakolendoussé, S. and Bazié, P. (2006) Efficiency of Three Lateral Investigation Methods in the Identification of Contacts between the Geological Formations of the Lower Proterozoic of Burkina Faso. Journal des Sciences, 6, 105-115.
    </mixed-citation>
   </ref>
   <ref id="scirp.134115-ref12">
    <label>12</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Mathiez, J.P. and Huot, G. (1966) Prospecting and Search for Groundwater. Examples of Application in West Africa (C.I.E.H.). Bull. B.R.G.M., Ser. II, Sect. III, No. 3, 113-127.
    </mixed-citation>
   </ref>
   <ref id="scirp.134115-ref13">
    <label>13</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Biscaldi, R. (1968) Hydrogeological Problems of Outcrop Regions of Eruptive and Metamorphic Rocks in Tropical Climates. Bull. B.R.G.M. Ser. II, Sect. III, No. 2, 7-22.
    </mixed-citation>
   </ref>
   <ref id="scirp.134115-ref14">
    <label>14</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Bernard, A. and Mouton, J. (1980-1981) Water Searches in the African Basement. Approach to Geophysics. Bull. B.R.G.M., Ser. II, Sect. III, No. 4, 293-309.
    </mixed-citation>
   </ref>
   <ref id="scirp.134115-ref15">
    <label>15</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Koussoubé, Y., Nakolendoussé, S., Bazié, P. and Savadogo, A.N. (2003) Typology of Vertical Electrical Sounding Curves for the Recognition of Surface Formations and Their Incidence in the Hydrogeology of the Crystalline Basement of Burkina Faso. Sud Sciences et Technologies, 10, 26-32.
    </mixed-citation>
   </ref>
   <ref id="scirp.134115-ref16">
    <label>16</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Savane, I. (1997) Contribution to the Geological and Hydrogeological Study of the Discontinuous Aquifers of the Crystalline Basement of Odiénné (North-West Côte d’Ivoire). Contribution of Remote Sensing and a Spatially Referenced Hydrogeological Information System. Doctoral Thesis, University of Cocody.
    </mixed-citation>
   </ref>
   <ref id="scirp.134115-ref17">
    <label>17</label>
    <mixed-citation publication-type="other" xlink:type="simple">
     Batte, A.G., Muwanga, A. and Sigrist, W.P. (2008) Evaluating the Use of Vertical Electrical Sounding as a Groundwater Exploration Technique to Improve on the Certainty of Borehole Yield in KAMULI District (Eastern Uganda). African Journal of Science and Technology, 9, 72-85.
    </mixed-citation>
   </ref>
  </ref-list>
 </back>
</article>