Comparative Hydrogeochemical Assessment of Groundwater Quality in Ajaokuta and Okene: Implications for Contamination, Aquifer Dynamics, and Sustainable Water Management
Keywords:
Groundwater Hydro geochemistry Basement Complex Aquifers Multivariate statistical analysis Heavy metal contamination Anthropogenic impactAbstract
This study presents a comparative hydrogeochemical evaluation of groundwater systems
in Ajaokuta and Okene, two rapidly developing urban centres within the Basement
Complex terrain of North-Central Nigeria. The investigation aims to assess groundwater
quality, identify potential sources of contamination, and elucidate the dominant
geochemical processes controlling groundwater evolution in the area. A total of twenty
three (23) groundwater samples were systematically collected and analysed for major
ions, trace metals, and key physicochemical parameters using standard analytical
procedures based on APHA (1995) guidelines and Atomic Absorption Spectrometry
(AAS). Multivariate statistical techniques—including correlation analysis and Principal
Component Analysis (PCA)—together with pollution assessment indices such as the Metal
Index (MI), Contamination Factor (CF), and Enrichment Factor (EF), were applied to
characterize hydrogeochemical controls and distinguish between natural and
anthropogenic influences. The results reveal marked spatial variations in groundwater
chemistry between the two locations. Groundwater in Okene is dominated by Ca–HCO₃
hydrochemical facies, characterized by low electrical conductivity, low total dissolved
solids, and negligible concentrations of potentially toxic metals, reflecting largely pristine
conditions governed by natural water–rock interaction processes. In contrast,
groundwater in Ajaokuta displays elevated electrical conductivity, total dissolved solids,
and increased concentrations of iron and mercury in some samples, with hydrochemical
facies transitioning from Ca–Cl to mixed types. These characteristics indicate significant
anthropogenic influence, particularly from industrial activities, urban runoff, and waste
related inputs. PCA results further corroborate these findings, identifying mineral
dissolution as the primary geochemical driver in Okene, while Ajaokuta groundwater
chemistry reflects additional contributions from industrial emissions and leachate
migration. Although most measured parameters fall within the permissible limits set by
the World Health Organization (WHO) and the Nigerian Standard for Drinking Water
Quality (NSDWQ), the enrichment of mercury in Ajaokuta poses a notable environmental
and public-health concern. Overall, the study highlights the sensitivity of Basement
Complex aquifers to land-use changes and industrialization, emphasizing the need for
continuous groundwater monitoring, improved waste management, and stricter regulatory
enforcement to ensure sustainable groundwater resources in emerging industrial regions.
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