Geology and Geophysical Investigation of Groundwater Potential around Boh and Environs, Gongola Arm of the Northern Benue Trough Northeastern Nigeria
Keywords:
Boh, Geological Mapping, Vertical Electrical Sounding, Groundwater Potential, Gongola Arm, Northeastern Nigeria.Abstract
Groundwater exploration within crystalline basement and sedimentary terrains requires
the integration of geological and geophysical investigations to accurately delineate aquifer
systems and identify viable groundwater targets. This study employed detailed geological
mapping and Vertical Electrical Sounding (VES) to evaluate the groundwater potential of
Boh and its environs within the Upper Benue Trough, northeastern Nigeria. Thirteen VES
stations were established using the Schlumberger electrode configuration with a maximum
current electrode half-spacing (AB/2) of 100 m. The acquired resistivity data were
interpreted using WinResist Version 1.0 software to determine subsurface resistivity
distributions and layer thicknesses. The geoelectrical interpretation revealed three major
subsurface units. The uppermost unit comprises lateritic/topsoil materials characterized
by resistivity values ranging from 13.7 to 147.7 Ωm. Beneath this layer occurs a
weathered/fractured basement and saturated sandstone horizon, interpreted as the
principal aquifer unit, with resistivity values varying between 29.3 and 915.1 Ωm. The
deepest unit corresponds to the fresh basement complex, exhibiting relatively high
resistivity values ranging from 242 to 2359 Ωm. Variations in resistivity and thickness
indicate considerable heterogeneity in subsurface hydrogeological conditions across the
study area. Aquifer evaluation identified VES locations 1, 7, 9, 11, 12, and 13 as the most
promising borehole sites due to the occurrence of relatively thick aquiferous zones with
resistive to moderately conductive characteristics favorable for groundwater storage and
transmission. Overall, the groundwater potential of the area is classified as low to
moderate, largely constrained by limited aquifer thickness and poor fracture connectivity.
The study highlights the importance of careful borehole siting and recommends the
integration of complementary geophysical methods to enhance fracture characterization
and support sustainable groundwater development.
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