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Assessing the physico-chemical parameters and some metals of underground water and associated soil in the arid and semiarid regions of Tank District, Khyber Pakhtunkhwa, Pakistan

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Abstract

Good-quality water and food are the basic needs of humans, plants, and animals. Polluted groundwater and soil directly and indirectly affect organisms, which is the main environmental concern. In the current study, standard protocols of atomic absorption spectrometry were adopted for the investigation of selected metals (lead, chromium, and iron) in the collected groundwater and soil samples. The Pearson correlation coefficient (r) applied to groundwater and soil samples shows a positive perfect correlation among water parameters (conductivity and total dissolved solids) in all three sources. In the hand pump samples between water table (WT) and water source depth (WSD), Pearson correlation coefficient (r) value was found (r = 0.87) while between EC and TDS, it was r = 1. Similarly, in the bore hole samples between WT and WSD (r = 0.66), EC and TDS (r = 1), EC and Cr (r = 0.70), and TDS and Cr (r = 0.70), which showed weaker correlation. In the tube well samples, correlation between EC and TDS was high (r = 1). The correlation coefficient (r) values of the soil parameters in the hand pump (soil) samples between Fe and Cr (r = 0.86), in bore hole samples between Fe and Cr (r = 0.77), in tube well samples between Fe and Cr (r = 0.69), while all the other parameter correlations were found lower (r = 0.60). Between electrical conductivity and total dissolved solids, high relation has been observed between them (r = 1). Overall, results showed that in most of the studied samples, contents of the target metals were found above the allowable limit set by the World Health Organization (WHO) and the United States Environmental Protection Agency (USEPA).

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References

  • Abdelhafez, A. A., Abbas, M. H., Attia, T. (2015). Environmental monitoring of heavy-metals status and human health risk assessment in the soil of Sahl El-Hessania Area, Egypt. Polish Journal of Environmental Studies, 24, 459–467.

  • Acton, Q. A. (2013). Advances in oxygen research and application: Scholarly Brief, Scholarly Editions, Atlanta, Georgia.

  • Adimalla, N. (2018). Groundwater quality for drinking and irrigation purposes and potential health risks assessment: A case study from semi-arid region of South India. Exposure and Health, 11, 109-123.

  • Adimalla, N., Venkatayogi, S. (2018). Geochemical characterization and evaluation of groundwater suitability for domestic and agricultural utility in semi-arid region of Basara, Telangana State, South India. Applied Water Science, 8, 1-14.

  • Agarwal, S., Zaman, T., Murat Tuzcu, E., & Kapadia, S. R. (2011). Heavy metals and cardiovascular disease: Results from the National Health and Nutrition Examination Survey (NHANES) 1999–2006. Angiology, 62, 422–429.

    Article  Google Scholar 

  • Akhtar, N., Syakir, M. I., Rai, S. P., Saini, R., Pant, N., Anees, M. T., Qadir, A., & Khan, U. (2020). Multivariate investigation of heavy metals in the groundwater for irrigation and drinking in Garautha Tehsil, Jhansi District, India. Analytical Letters, 53, 774–794.

    Article  CAS  Google Scholar 

  • Albretsen, J. (2006). The toxicity of iron, an essential element. VETERINARY MEDICINE-BONNER SPRINGS THEN EDWARDSVILLE-, 101, 82.

    Google Scholar 

  • Ali, Z., Malik, R., Shinwari, Z., & Qadir, A. (2015). Enrichment, risk assessment, and statistical apportionment of heavy metals in tannery-affected areas. International Journal of Environmental Science and Technology, 12, 537–550.

    Article  CAS  Google Scholar 

  • American Public Health A, American Water Works Clesceri L. S., Greenberg, A. E., Trussell, R. R. (1989). Standard methods for the examination of water and wastewater. American Public Health Association, Washington, DC.

  • Andráš, P., Nagyová, I., Samešová, D., Melichová, Z. (2012). Study of environmental risks at an old spoil dump field. Polish Journal of Environmental Studies, 21,1529-1538.

  • APHA/AWWA/WEF. (2012). Standard methods for the examination of water and wastewater. American Public Health Association, American Water Works Association, and Water Environment Federation. Washington, DC.

  • Arain, M. B., Kazi, T. G., Jamali, M. K., Jalbani, N., Afridi, H. I., & Shah, A. (2008). Total dissolved and bioavailable elements in water and sediment samples and their accumulation in Oreochromis mossambicus of polluted Manchar Lake. Chemosphere, 70, 1845–1856.

    Article  CAS  Google Scholar 

  • ATSDR. (2012). Toxicological profile for chromium. Agency for Toxic Substances and Drug Registry, U.S (p. 592). Department of Health and Human Services.

    Google Scholar 

  • Bhagure, G. R., & Mirgane, S. R. (2011). Heavy metal concentrations in groundwaters and soils of Thane Region of Maharashtra, India. Environmental Monitoring and Assessment, 173, 643–652.

  • Cai, M., McBride, M. B., Li, K., & Li, Z. (2017). Bioaccessibility of As and Pb in orchard and urban soils amended with phosphate, Fe oxide and organic matter. Chemosphere, 173, 153–159.

    Article  CAS  Google Scholar 

  • Chandra, P., & Kulshreshtha, K. (2004). Chromium accumulation and toxicity in aquatic vascular plants. The Botanical Review, 70, 313–327.

    Article  Google Scholar 

  • Doyi, I., Essumang, D., Gbeddy, G., Dampare, S., Kumassah, E., & Saka, D. (2018). Spatial distribution, accumulation and human health risk assessment of heavy metals in soil and groundwater of the Tano Basin, Ghana. Ecotoxicology and Environmental Safety, 165, 540–546.

    Article  CAS  Google Scholar 

  • Ene, A., Popescu, I. V., & Stihi, C. (2009). Applications of proton-induced X-ray emission technique in materials and environmental science. Ovidius University Annals of Chemistry’s, 20, 35–39.

    CAS  Google Scholar 

  • Flora, S. J., Flora, G., Saxena, G. (2006). Environmental occurrence, health effects and management of lead poisoning. In: José S. C, José S, editors. Lead. Amsterdam: Elsevier Science B.V.; 2006. pp. 158–228.

  • Ghani, A. (2011). Effect of chromium toxicity on growth, chlorophyll and some mineral nutrients of Brassica juncea L. Egyptian Academic Journal of Biological Sciences, 2, 9–15.

    Google Scholar 

  • Ghose, S. (2003). Environmental Chemistry. Dominant Publishers and Distributors. New Dehli, India.

  • Govil, P. K., Krishna, A. K. (2017). Soil and Water contamination by potentially hazardous elements: A case history from India. In: Environmental Geochemistry (Second Edition), De Vivo B, Belkin HE , Lima A (Editors), Elsevier Science, pp. 567–597.

  • Harvey, B. (2002). Managing elevated blood lead levels among young children: Recommendations from the Advisory Committee on Childhood Lead Poisoning Prevention.National Center for Environmental Health (U.S.). Division of Environmental Hazards and Health Effects. Lead Poisoning Prevention Branch.

  • Heddam, S., & Kisi, O. (2017). Extreme learning machines: A new approach for modeling dissolved oxygen (DO) concentration with and without water quality variables as predictors. Environmental Science and Pollution Research, 24, 16702–16724.

    Article  CAS  Google Scholar 

  • Hong, A. H., Law, P. L., & Selaman, O. S. (2014). Heavy metal concentration levels in soil at lake Geriyo irrigation site, Yola, Adamawa State, North Eastern Nigeria. International Journal of Environmental Monitoring and Analysis, 2, 106–111.

    Article  CAS  Google Scholar 

  • Hooda, P. S. (2010). Trace elements in soils. John Wiley & Sons, New York USA.

  • Izady, A., Davary, K., Alizadeh, A., Ziaei, A., Akhavan, S., Alipoor, A., Joodavi, A., & Brusseau, M. (2015). Groundwater conceptualization and modeling using distributed SWAT-based recharge for the semi-arid agricultural Neishaboor plain. Iran. Hydrogeology Journal, 23, 47–68.

    Article  Google Scholar 

  • Jaishankar, M., Tseten, T., Anbalagan, N., Mathew, B. B., & Beeregowda, K. N. (2014). Toxicity, mechanism and health effects of some heavy metals. Interdisciplinary toxicology7, 13.

    Article  CAS  Google Scholar 

  • Järup, L. (2003). Hazards of heavy metal contamination. British Medical Bulletin, 68, 167–182.

    Article  Google Scholar 

  • Jalali, M., Karami, S. & Fatehi Marj, A. F. (2019). On the problem of the spatial distribution delineation of the groundwater quality indicators via multivariate statistical and geostatistical approaches. Environmental Monitoring and Assessment, 191, 323. 2-1. https://doi.org/10.1007/s10661-019-7432-1

  • Khan, Z. I., Ashraf, M., Ahmad, K., Bayat, A., Mukhtar, M. K., Naqvi, S. A. H., Nawaz, R., Zaib, M. J., & Shaheen, M. (2012). Lead toxicity evaluation in Rams grazing on pasture during autumn and winter: A case study. Polish Journal of Environmental Studies, 21, 1257.

    CAS  Google Scholar 

  • Krishna, K. R. (2013). Agroecosystems: Soils, climate, crops, nutrient dynamics and productivity. Apple Academic Press, New York, USA.

  • Kwami, I. A., Ishaku, J. M., Hamza, Y. S., Bello, A. M., & Mukkafa, S. (2019). Application of multivariate statistical techniques for the interpretation of groundwater quality in Gombe and Environs, North-East Nigeria. Journal of Geosciences and Geomatics, 7, 9-14.

  • Li, P., Qian, H., Wu, J., Chen, J., Zhang, Y., & Zhang, H. (2014a). Occurrence and hydrogeochemistry of fluoride in alluvial aquifer of Weihe River, China. Environmental Earth Sciences, 71, 3133–3145.

    Article  CAS  Google Scholar 

  • Li, W., Wang, M. Y., Liu, L. Y., Wang, H. F., & Yu, S. (2015). Groundwater heavy metal levels and associated human health risk in the North China Plain. Arabian Journal of Geosciences8(12), 10389-10398.

    Article  CAS  Google Scholar 

  • Li, Z., Ma, Z., van der Kuijp, T. J., Yuan, Z., & Huang, L. (2014b). A review of soil heavy metal pollution from mines in China: Pollution and health risk assessment. Science of the Total Environment, 468, 843–853.

    Article  CAS  Google Scholar 

  • Liu, C.-W., Lin, K.-H., & Kuo, Y.-M. (2003). Application of factor analysis in the assessment of groundwater quality in a blackfoot disease area in Taiwan. Science of the Total Environment, 313, 77–89.

    Article  CAS  Google Scholar 

  • Liu, S., Tian, S., Li, K., Wang, L., & Liang, T. (2018). Heavy metal bioaccessibility and health risks in the contaminated soil of an abandoned, small-scale lead and zinc mine. Environmental Science and Pollution Research, 25, 15044–15056.

    Article  CAS  Google Scholar 

  • Mahurpawar, M. (2015). Effects of heavy metals on human health. International Journal of Research -GRANTHAALAYAH, 3, 1-7.

  • Malik, R. N., Jadoon, W. A., & Husain, S. Z. (2010). Metal contamination of surface soils of industrial city Sialkot, Pakistan: A multivariate and GIS approach. Environmental Geochemistry and Health, 32, 179–191.

    Article  CAS  Google Scholar 

  • Mohammadi, Z., Salimi, M., & Faghih, A. (2014). Assessment of groundwater recharge in a semi-arid groundwater system using water balance equation, southern Iran. Journal of African Earth Sciences, 95, 1–8.

    Article  Google Scholar 

  • Nair, G. A., Mohamed, A., & Premkumar, K. (2005). Physico chemical parameters and correlation coefficients of ground waters of north-east Libya. Pollution Research, 24, 1.

    CAS  Google Scholar 

  • Najeeb, U., Ahmad, W., Zia, M. H., Zaffar, M., & Zhou, W. (2017). Enhancing the lead phytostabilization in wetland plant Juncus effusus L. through somaclonal manipulation and EDTA enrichment. Arabian Journal of Chemistry, 10, S3310–S3317.

    Article  CAS  Google Scholar 

  • Ogundele, D., Adio, A., & Oludele, O. (2015). Heavy metal concentrations in plants and soil along heavy traffic roads in North Central Nigeria. Journal of Environmental & Analytical Toxicology, 5, 1.

    Google Scholar 

  • Oti, W. O. (2015). Bioaccumulation factors and pollution indices of heavy metals in selected fruits and vegetables from a derelict mine and their associated health implications. International Journal of Environment and Sustainability, 4,15-23.

  • Owamah, I. H., Asiagwu, A. K., Egboh, S. H. O., & Phil-Usiayo, S. (2013). Drinking water quality at Isoko North communities of the Niger Delta Region, Nigeria. Toxicological & Environmental Chemistry, 95, 1116–1128.

    Article  CAS  Google Scholar 

  • PCRWR (Pakistan Council of Research in Water Resources). (2007). National Water Quality Monitoring Programme. Pakistan Council of Research in Water Resources (PCRWR), Islamabad, Pakistan,Vol.84,1-286.

  • Pšenková, M., Toman, R., Tančin, V. (2020). Concentrations of toxic metals and essential elements in raw cow milk from areas with potentially undisturbed and highly disturbed environment in Slovakia. Environmental Science and Pollution Research, 27, 26763–26772.

  • Rezaei, A., & Mohammadi, Z. (2017). Annual safe groundwater yield in a semiarid basin using combination of water balance equation and water table fluctuation. Journal of African Earth Sciences, 134, 241–248.

    Article  Google Scholar 

  • Rice, E. W., Baird, R. B., Eaton, A. D., & Clesceri, L. S. (2012). Standard methods for the examination of water and wastewater, 10. American Public Health Association Washington.

    Google Scholar 

  • Riedel, T. (2019). Temperature-associated changes in groundwater quality. Journal of Hydrology, 572, 206–212.

  • Schirrmann, M., Gebbers, R., Kramer, E., & Seidel, J. (2011). Soil pH Mapping with an On-The-Go Sensor. Sensors, 11, 573–598.

    Article  CAS  Google Scholar 

  • Şen, Z. (2015). Groundwater quality. In: Practical and applied hydrogeology. Elsevier Science, pp. 279–339.

  • Shakeri, A., Moore, F., & Modabberi, S. (2009). Heavy metal contamination and distribution in the Shiraz industrial complex zone soil, South Shiraz, Iran. World Applied Sciences Journal, 6, 413–425.

    CAS  Google Scholar 

  • Sharma, M. R., & Raju, N. (2013). Correlation of heavy metal contamination with soil properties of industrial areas of Mysore, Karnataka, India by cluster analysis. International Research Journal of Environment Sciences, 2, 22–27.

    Google Scholar 

  • Sueker, J. K. (1964). 5 - Chromium. In R. D. Morrison & B. L. Murphy (Eds.), Environmental Forensics (pp. 81–95). Academic Press.

    Chapter  Google Scholar 

  • Thirupathaiah, M., Samatha, C., & Sammaiah, C. (2012). Analysis of water quality using physico-chemical parameters in lower manair reservoir of Karimnagar district, Andhra Pradesh. International Journal of Environmental Sciences, 3, 172.

    CAS  Google Scholar 

  • Ustaoğlu, F., & Tepe, Y. (2019). Water quality and sediment contamination assessment of Pazarsuyu Stream, Turkey using multivariate statistical methods and pollution indicators. International Soil and Water Conservation Research, 7, 47–56.

    Article  Google Scholar 

  • Waqas, M., Li, G., Khan, S., Shamshad, I., Reid, B. J., Qamar, Z., & Chao, C. (2015). Application of sewage sludge and sewage sludge biochar to reduce polycyclic aromatic hydrocarbons (PAH) and potentially toxic elements (PTE) accumulation in tomato. Environmental Science and Pollution Research, 22, 12114–12123.

    Article  CAS  Google Scholar 

  • WHO. (2007). Guideline for drinking water quality recommendation. World Health Organization.

    Google Scholar 

  • WHO. (2012). Guideline for drinking water quality standard, drinking water quality standard. World Health Organization.

    Google Scholar 

  • WHO. (2017). Guidelines for drinking-water quality. Incorporatiing the First Addendum. World Health Organization.

  • Wuana, R. A., & Okieimen, F. E. (2011). Heavy metals in contaminated soils: a review of sources, chemistry, risks and best available strategies for remediation. International Scholarly Research Notices, 2011, 1-20.

  • Yilmaz, E., & Koç, C. (2014). Physically and chemically evaluation for the water quality criteria in a farm on Akcay. Journal of Water Resource and Protection, 6, 63.

    Article  CAS  Google Scholar 

  • Zhang, R., & Wienhold, B. J. (2002). The effect of soil moisture on mineral nitrogen, soil electrical conductivity, and pH. Nutrient Cycling in Agroecosystems, 63, 251–254.

    Article  CAS  Google Scholar 

  • Zwolak, A., Sarzyńska, M., Szpyrka, E., & Stawarczyk, K. (2019). Sources of soil pollution by heavy metals and their accumulation in vegetables: A review. Water, Air, & Soil Pollution, 230, 164. https://doi.org/10.1007/s11270-019-4221-y

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Khan, A., Naeem, M., Bilal, M. et al. Assessing the physico-chemical parameters and some metals of underground water and associated soil in the arid and semiarid regions of Tank District, Khyber Pakhtunkhwa, Pakistan. Environ Monit Assess 193, 610 (2021). https://doi.org/10.1007/s10661-021-09370-x

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