Arsenic geochemical species modeling, prediction, and bioavailability in groundwaters of the Oban Massif, southeastern Nigeria

Azubuike S. Ekwere
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Abstract

To ascertain the distribution patterns, source identification, chemical speciation, and bioavailability of arsenic in basement aquifers, 64 groundwater samples were analyzed using hydrochemical and geochemical modeling. It was determined that important ion geochemistry, hydrogeochemical facies, and basic hydrogeochemical parameters are interdependent. Arsenic (As) concentrations varied from 0.001 mg/l to 0.03 mg/l, with a mean of 0.007 mg/l. The results of 4.68% of samples were higher than the allowable level of 0.01 mg/l, i.e., groundwater arsenic levels are not dangerous. Significant ion concentrations decreased from dry to rainy seasons suggesting that ionic concentrations generated by silicate weathering in aquifers became diluted. Abundance trends in metal concentration during the dry and rainy seasons were Fe > Mn > Zn > Ni > Cu > As > Pb > Cd and Fe > Zn > Mn > Ni > Pb > Cu > As > Cd, respectively. Of the two hydrochemical facies discovered, the predominant one was the main alkaline-earth-bicarbonate facies [Ca-(Mg)-HCO3] typical of basement terrains, suggesting the fundamental stage of groundwater evolution. Plots of ionic ratios, metal loads, and principal component analyses showed that ionic concentrations are controlled by geology. Geochemical modeling revealed the presence of aqueous arsenic species, which are the less dangerous arsenates at unsaturated levels and do not currently pose a concern.
尼日利亚东南部奥班山丘地下水中砷的地球化学种类建模、预测和生物利用率
为了确定砷在基底含水层中的分布模式、来源识别、化学式和生物利用率,利用水化学和地球化学模型对 64 个地下水样本进行了分析。结果表明,重要的离子地球化学、水文地质化学面貌和基本水文地质化学参数是相互依存的。砷(As)浓度从 0.001 毫克/升到 0.03 毫克/升不等,平均值为 0.007 毫克/升。4.68% 的样本结果高于 0.01 毫克/升的允许水平,即地下水砷含量不危险。从旱季到雨季,离子浓度显著下降,这表明含水层中硅酸盐风化产生的离子浓度被稀释。旱季和雨季的金属浓度丰度趋势分别为:铁 > 锰 > 锌 > 镍 > 铜 >砷 > 铅 > 镉,以及铁 > 锌 > 锰 > 镍 > 铅 > 铜 >砷 > 镉。在所发现的两种水化学面中,最主要的是典型的基底地形的主要碱土重碳酸盐面[Ca-(Mg)-HCO3],这表明了地下水演化的基本阶段。离子比率图、金属负荷图和主成分分析表明,离子浓度受地质控制。地球化学模型揭示了水砷物种的存在,它们是非饱和度较低的砷酸盐,目前并不令人担忧。
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