Investigation of the Effect of Taqchakhana Salt Dome on the Quality of Namak AB River, Takhar province

Authors

Keywords:

Taqchakhana, Salt Dome, Water Salinity, Dissolved Solids

Abstract

Salt domes affect the quality of surface and groundwater, as well as the soil quality in the downstream areas, due to the dissolution of various salts. During this process, a significant volume of salts enters the seawater each year and, under the influence of various erosive factors, especially water, it reaches the lower areas and affects the water quality. The aim of this research is to examine the impact of the Taqchakhana salt dome on the water quality of the downstream areas. To conduct this research, 9 water samples were collected from the Namakab river, springs on the right and left sides of the river, and water emerging from beneath the salt dome over a period of 2 days from these areas. The variables of arsenic, copper, iron, zinc, measure dissolved solids, electrical conductivity, magnesium, nitrite, bacteria, dissolved oxygen, and pH were measured and examined. Additionally, the studied parameters were compared with the standards of WHO, USEPA, and Indian Standard. The results indicate that the concentration of dissolved solids in Namakab from the salt dome is higher (TDS=136PPM) and lower from the salt dome (TDS=1943PPM), the concentration of dissolved salts is higher from the salt dome (EC=0.18 ϻs/cm) and lower from the salt dome (EC=2.59 ϻs/cm), turbidity is higher from the salt dome (NTU=1.14 NTU) and lower from the salt dome (NTU=70.4 NTU), nitrate is higher from the salt dome (Nitrate=1-2 Mg/L) and lower from the salt dome (Nitrate=2-5 Mg/L), dissolved oxygen is higher from the salt dome (O=5 Mg/L) and lower from the salt dome (O=4 Mg/L), pH is higher and lower from the salt dome (pH=7.5), temperature is 25°C, arsenic concentration is higher and lower from the salt dome (0µg/L), copper concentration is higher from the salt dome (Cu=0.09 Mg/L) and lower from the salt dome (Cu=1.96Mg/L), and iron and zinc concentration is higher and lower from the salt dome (Zn-Fe=0.01 Mg/L). From comparing the obtained results with globally accepted standards, it can be concluded that the water of Namakab is not suitable for drinking and irrigating agricultural lands after passing through the mining area.

Author Biographies

  • Mohammad Arif Nero, Badakhshan University

    Senior Teaching Assistant, Department of Geology and Mines, Faculty of Engineering, Badakhshan     University, Badakhshan, Afghanistan (Corresponding Author). 

  • Mohammad Farid Aliyawer, Jawzjan University

    Associate Prof, Department of Geology, Prospecting and Exploration of Mineral, Faculty of Geology and Mine, Jawzjan University, Jawzjan, Afghanistan.

  • Nesar Ahmad Bahije

    Engineer, Department of Environmental Geology, Environmental Geology Directorate, Ministry of Mines and Petroleum, Kabul, Afghanistan. 

References

تیموری، مهدی؛ نظری، لیلا و عارفخانه کلاته، سلمان. (1393). مهندسی و مدیریت منابع آب: ارزیابی پارامترهای کیفیت آب رودخانه اترک با استفاده از روش تجزیه عاملی. کنگره ملی مهندسی عمران. https://sid.ir/paper/891677/fa

جانیان، سلیمان؛ جعفری، محمدرضا و عیدی، ضیاءالدین. (1394). آب سطحی: بررسی تغییرات سالیانه پارامترهای فیزیکی و شیمیایی آب رودخانه دویرج. کنگره ملی آبیاری و زهکشی ایران. https://sid.ir/paper/870939/fa

حقیقی، پارسا و همکاران. (1395). تحلیل پارامترهای کیفی آب‌های سطحی جهت مدیریت بهینه منابع آب (مطالعه موردی: حوضه گاوخونی). کنگره پیشگامان پیشرف. https://sid.ir/paper/866054/fa

خدابخش، سعید؛ کبیر، شیما و افشارنیا، مینا. (1398). ارزیابی کیفی آب سطحی و زیرزمینی حوضه رودخانه خررود (جنوب استان قزوین). هایدروجیولوجی ، 42-53، 4 (1). doi: 10.22034/hydro.2019.8531

سلطانی، سعید و همکاران. (1398). بررسی تغییرات پارامترهای کیفیت آب در حوضه آبخیز سد زاینده رود. نشریه محیط زیست طبیعی. 72 (4)، 445-458، 10.22059/jne.2020.271369.1589

شعبانی، محمد. (1388). بررسی تغییرات کیفی آب‌های زیرزمینی دشت ارسنجان. جغرافیای طبیعی، 1(3)، 71-82 https://sid.ir/paper/185066/fa

فیروز، نور محمد. (1357). جیولوجی منطقوی افغانستان. کابل: انتشارات وزارت تحصیلات عالی افغانستان.

نصرتی، کاظم، امینی، مصطفی، انصاری، مهدی، و بیژن نژاد، احسان. (1395). بررسی تاثیر گنبد نمکی بر کیفیت خاک مناطق پایین دست با بهره‌گیری از روش‌های آماری چندمتغیره (مطالعه موردی: گنبد نمکی کرسیا، دشت داراب). مدیریت بیابان، 4(8)، 1-14. https://sid.ir/paper/252859/fa

Abdullah, S., & Chmyriov, V. M. (1977). Map of mineral resources of Afghanistan: Kabul, Afghanistan, Democratic Republic of Afghanistan, Ministry of Mines and Industries, Department of Geological and Mineral Survey. V/O Technoexport USSR, scale, 1(500,000).‏

Baghernejad, T., Feiznia, S., and Hashemi, S.A.A. (2014). The effect of salt domes on the land uses (Case staudy: South of Semnan). Second National Conference of Desert with Approach of Dry and Kavir Region Management, Tehran.

Dehghan, A. (2004). Salt domes roles in desertification (Case study: salt dome of Dashti). Journal of forest and rangeland, 62, 83-89.

Houben, G., Tünnermeier, T., Eqrar, N., & Himmelsbach, T. (2009). Hydrogeology of the Kabul Basin (Afghanistan), part II: groundwater geochemistry. Hydrogeology journal, 17(4), 935.‏

Jawadi, H. A., Sagin, J., & Snow, D. D. (2020). A detailed assessment of groundwater quality in the Kabul Basin, Afghanistan, and suitability for future development. Water, 12(10), 2890.‏ https://doi.org/10.3390/w12102890

Mahaqi, A., Moheghi, M. M., Mehiqi, M., & Moheghy, M. A. (2018). Hydrogeochemical characteristics and groundwater quality assessment for drinking and irrigation purposes in the Mazar-i-Sharif city, North Afghanistan. Applied Water Science, 8, 1-10.‏

Ouyang, Y. (2005). Evaluation of river water quality monitoring stations by principal component analysis. Water research, 39(12), 2621-2635.‏ https://doi.org/10.1016/j.watres.2005.04.024

Ramesht, M.H., Ghazi, A., Moayeri, M and Fotouhi, S. (2007). The effect of salt domes in the salinity of groundwaters of playa of Darab. Journal of Isfahan University, 27, 144-129.

SHNIZAI, Z., & IQBAL, A. R. (2021). Physico-Chemical Properties of Groundwater In The Kabul Basin, Afghanistan. Kabul Polytechnic University, 1(1).‏

Shrestha, S., & Kazama, F. (2007). Assessment of surface water quality using multivariate statistical techniques: A case study of the Fuji river basin, Japan. Environmental Modelling & Software, 22(4), 464-475.‏ https://doi.org/10.1016/j.envsoft.2006.02.001

Singh, K. P., Malik, A., & Sinha, S. (2005). Water quality assessment and apportionment of pollution sources of Gomti river (India) using multivariate statistical techniques—a case study. Analytica Chimica Acta, 538(1-2), 355-374.‏ https://doi.org/10.1016/j.aca.2005.02.006

USEPA. (2018), Edition of the Drinking Water Standards and Health Advisories Tables: United States Environmental Protection Agency, Office of Water. 2018.

WHO Geneva, (2008), Guidelines for drinking-water quality (electronic resource), 3rd

Trudgill, Wu, L., , B.D., & Kluth, C. F. (2016). Salt diapir reactivation and normal faulting in an

oblique extensional system, Vulcan Sub-basin, NW Australia. Journal of the Geological Society, 2008-2016

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Published

2026-08-04