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Hydrochemistry modelling: evaluation of groundwater quality deterioration due to anthropogenic activities in Lahore, Pakistan

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Abstract

Anthropogenic activities adversely affect the drinking water quality. This study examined the effect of anthropogenic activities on groundwater quality of Lahore city, Pakistan. Hydrochemistry modelling approach was applied to thirteen tube wells of the study area. Lithology profiles (borehole logs and fence diagram) indicated variable lithology in the study area. It was categorized into two types, i.e. clay dominant and sand dominant. The physico-chemical characterization of groundwater samples revealed that all parameters were found within the WHO guidelines for drinking water, except alkalinity, Cd, Cr, Ni and Pb. Piper, Stiff, Durov and Schoeller diagrams indicated the presence of bicarbonates anionic and sodium and potassium cationic systems. The abundance of cations and anions was in the order of Na > K > Ca > Mg and HCO3 > Cl > SO4, respectively. In the ion exchange studies, negative chloro-alkaline indices values indicated the replacement of divalent cations with sodium. Saturation indices by PHREEQC modelling have values < 0 and Gibbs diagram indicated that groundwater tends to dissolve more minerals, leading to precipitation reactions in water. The plot of heavy metal concentrations using GIS maps specified the abundance of heavy metals in tube wells near River Ravi, likely caused by recharge of groundwater by the river which receives heavy quantities of untreated industrial effluents.

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References

  • Abbas, Z., Su, C., Tahira, F., Mapoma, H. W. T., & Aziz, S. Z. (2015). Quality and hydrochemistry of groundwater used for drinking in Lahore, Pakistan: Analysis of source and distributed groundwater. Environmental Earth Sciences, 74(5), 4281–4294.

    Article  CAS  Google Scholar 

  • Abou Zakhem, B., & Hafez, R. (2015). Heavy metal pollution index for groundwater quality assessment in Damascus Oasis, Syria. Environmental Earth Sciences, 73(10), 6591–6600. https://doi.org/10.1007/s12665-014-3882-5.

    Article  CAS  Google Scholar 

  • Aghazadeh, N., Chitsazan, M., & Golestan, Y. (2017). Hydrochemistry and quality assessment of groundwater in the Ardabil area, Iran. Applied Water Science, 7(7), 3599–3616.

    Article  CAS  Google Scholar 

  • Ahmad, S. R., Khan, M. S., Khan, A. Q., Ghazi, S., & Ali, S. (2012). Sewage water intrusion in the groundwater of Lahore, its causes and protections. Pakistan Journal of Nutrition, 11(5), 484.

    Article  CAS  Google Scholar 

  • Akhtar, M., & Tang, Z. (2013). Identification of contamination sources and TDS concentration in groundwater of second biggest city of Pakistan. International Journal of Environmental Science and Development, 4(3), 341.

    Article  CAS  Google Scholar 

  • Akhtar, M. M., Tang, Z., & Mohamadi, B. (2014). Contamination potential assessment of potable groundwater in Lahore, Pakistan. Polish Journal of Environmental Studies, 23(6), 1905–1916.

    CAS  Google Scholar 

  • American Public Health Association, American Water Works Association, Water Pollution Control Federation, & Water Environment Federation. (2014). Standard methods for the examination of water and wastewater (Vol. 22). Washington: American Public Health Association.

    Google Scholar 

  • Bai, Y., Wang, M., Peng, C., & Alatalo, J. M. (2016). Impacts of urbanization on the distribution of heavy metals in soils along the Huangpu River, the drinking water source for Shanghai. Environmental Science and Pollution Research, 23(6), 5222–5231. https://doi.org/10.1007/s11356-015-5745-3.

    Article  CAS  Google Scholar 

  • Basharat, M., & Rizvi, S. A. (2011). Groundwater extraction and waste water disposal regulation. Is Lahore Aquifer at stake with as usual approach. In Proceedings of World Water Day 2011 water for cities-urban challenges (pp 135–152).

  • Beal, C., Gardner, E., & Menzies, N. (2005). Process, performance, and pollution potential: A review of septic tank–soil absorption systems. Soil Research, 43(7), 781–802.

    Article  Google Scholar 

  • Bundschuh, J. (1992). Hydrochemical and hydrogeological studies of groundwater in Peshawar Valley, Pakistan. Geological Bulletin University of Peshawar, 25, 23–37.

    Google Scholar 

  • Butt, I., & Ghaffar, A. (2012). Ground water quality assessment near Mehmood Boti landfill, Lahore, Pakistan. Aslan Journal of Social Sciences and Humanities, 1(2), 13–24.

    Google Scholar 

  • Chaudhry, A., & Chaudhry, R. M. (2009). Securing sustainable access to safe drinking water in Lahore. In M. Kugelman & R. M. Hathaway (Eds.), Running on empty: Pakistan’s water crisis. Washington, DC: Woodrow Wilson International Center.

    Google Scholar 

  • Farooqi, A., Masuda, H., & Firdous, N. (2007). Toxic fluoride and arsenic contaminated groundwater in the Lahore and Kasur districts, Punjab, Pakistan and possible contaminant sources. Environmental Pollution, 145(3), 839–849.

    Article  CAS  Google Scholar 

  • Gabriel, H., & Khan, S. (2010). Climate responsive urban groundwater management options in a stressed aquifer system. IAHS-AISH Publication, 338, 166–168.

    Google Scholar 

  • Haydar, S., Haider, H., Nadeem, O., Hussain, G., Jalees, I., & Qadeer, A. (2014). Effect of Hudiara drain on the quality of groundwater in the housing schemes of Lahore. Journal of Engineering and Technology, 21(2), 119–134.

    Google Scholar 

  • Jalali, M. (2010). Application of multivariate analysis to study water chemistry of groundwater in a semi-arid aquifer, Malayer, western Iran. Desalination and Water Treatment, 19(1–3), 307–317.

    Article  CAS  Google Scholar 

  • Jalees, M. I., Aslam, A., Fatima, R., Khalid, I., & Hassan, B. (2016). Statistical modeling of groundwater quality for source and ionic relationship: A case study for drinking water quality. Proceedings of Pakistan Academy of Sciences B: Life and Environmental Sciences, 53(1), 1–11.

    Google Scholar 

  • Kahlown, M. A., Tahir, M. A., & Rasheed, H. (2010). Water quality status, national water quality monitoring programme. In PCRWR.

  • Kasprzak, A., Motyka, J., & Wardas-Lasoń, M. (2013). Changes in the chemical composition of groundwater in quaternary aquifer in Old Krakow, Poland (years 2002–2012). Geology, Geophysics and Environment, 39, 143–152.

    Article  Google Scholar 

  • Khan, F. J., & Javed, Y. (2007). Delivering access to safe drinking water and adequate sanitation in Pakistan (Vol. 30). Islamabad: Pakistan Institute of Development Economics.

    Google Scholar 

  • Khattak, M. A., Ahmed, N., Qazi, M. A., Izhar, A., Ilyas, S., Chaudhary, M., et al. (2012). Evaluation of ground water quality for irrigation and drinking purposes of the areas adjacent to Hudiara industrial drain, Lahore, Pakistan. Pakistan Journal of Agricultural Sciences, 49(4), 549–556.

    Google Scholar 

  • Khurshid, S., & Zahreerudin, Z. (2000). Aquifer system and salinity hazards in parts of Yamuna river sub-basin, India. Earth Sciences, 12(1), 61–73.

    Google Scholar 

  • Kura, N., Ramli, M., Sulaiman, W., Ibrahim, S., Aris, A., & Mustapha, A. (2013). Evaluation of factors influencing the groundwater chemistry in a small tropical island of Malaysia. International Journal of Environmental Research and Public Health, 10(5), 1861–1881.

    Article  CAS  Google Scholar 

  • Liu, J., Feng, J., Gao, Z., Wang, M., Li, G., Shi, M., et al. (2019). Hydrochemical characteristics and quality assessment of groundwater for drinking and irrigation purposes in the Futuan River Basin, China. Arabian Journal of Geosciences, 12(18), 560.

    Article  Google Scholar 

  • 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(3), 179–191.

    Article  CAS  Google Scholar 

  • Mazhar, F., & Jamal, T. (2009). Temporal population growth of Lahore. Journal of Scientific Research, 39(1), 53–58.

    Google Scholar 

  • Muhammad, A. M., & Zhonghua, T. (2014). Municipal solid waste and its relation with groundwater contamination in Lahore, Pakistan. Research Journal of Applied Sciences, Engineering and Technology, 7(8), 1551–1560.

    Article  CAS  Google Scholar 

  • Muhammad, A. M., Zhonghua, T., Dawood, A. S., & Earl, B. (2015). Evaluation of local groundwater vulnerability based on DRASTIC index method in Lahore, Pakistan. Geofísica internacional, 54(1), 67–81.

    Article  Google Scholar 

  • Narsimha, A., & Sudarshan, V. (2017). Contamination of fluoride in groundwater and its effect on human health: A case study in hard rock aquifers of Siddipet, Telangana State, India. Applied Water Science, 7(5), 2501–2512.

    Article  CAS  Google Scholar 

  • Oyesanya, O. (2019). Hydrogeochemical characteristics of the Opi Lakes: Potential role towards sustainable development in Southeastern Nigeria. Journal of Emerging Trends in Engineering and Applied Sciences, 10(2), 79–85.

    Google Scholar 

  • Singhal, B. B. S., & Gupta, R. P. (2010). Applied hydrogeology of fractured rocks. Berlin: Springer.

    Book  Google Scholar 

  • Srivastava, A. (2002). Aquifer geometry, basement-topography and ground water quality around Ken Graben, India. Journal of Spatial Hydrology, 2(2), 1–8.

    Google Scholar 

  • Umar, A., Umar, R., & Ahmad, M. (2001). Hydrogeological and hydrochemical framework of regional aquifer system in Kali-Ganga sub-basin, India. Environmental Geology, 40(4–5), 602–611.

    Article  CAS  Google Scholar 

  • Venkatramanan, S., Chung, S. Y., Kim, T. H., Prasanna, M. V., & Hamm, S. Y. (2015). Assessment and distribution of metals contamination in groundwater: A case study of Busan City, Korea. Water Quality, Exposure and Health, 7(2), 219–225. https://doi.org/10.1007/s12403-014-0142-6.

    Article  CAS  Google Scholar 

  • Wongsasuluk, P., Chotpantarat, S., Siriwong, W., & Robson, M. (2014). Heavy metal contamination and human health risk assessment in drinking water from shallow groundwater wells in an agricultural area in Ubon Ratchathani province, Thailand. Environmental Geochemistry and Health, 36(1), 169–182. https://doi.org/10.1007/s10653-013-9537-8.

    Article  CAS  Google Scholar 

  • Wu, H., Chen, J., Qian, H., & Zhang, X. (2015). Chemical characteristics and quality assessment of groundwater of exploited aquifers in Beijiao water source of Yinchuan, China: A case study for drinking, irrigation, and industrial purposes. Journal of Chemistry, 2015, 1–14.

    CAS  Google Scholar 

  • Younas, M., Shahzad, F., Afzal, S., Khan, M. I., & Ali, K. (1998). Assessment of Cd, Ni, Cu, and Pb pollution in Lahore Pakistan. Environment International, 24(7), 761–766.

    Article  CAS  Google Scholar 

Download references

Acknowledgements

The authors are thankful to Water and Sanitation Agency (WASA), Lahore, for providing relevant information and data. The authors are also thankful to Chemistry Department, UET, Institute of Chemistry, Punjab University, and Pakistan Council for Scientific and Industrial Research, Lahore, for providing analytical facilities for quality assurance.

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Correspondence to Muhammad Irfan Jalees.

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Jalees, M.I., Farooq, M.U., Anis, M. et al. Hydrochemistry modelling: evaluation of groundwater quality deterioration due to anthropogenic activities in Lahore, Pakistan. Environ Dev Sustain 23, 3062–3076 (2021). https://doi.org/10.1007/s10668-020-00703-3

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