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Kotum Deresi'nin Ağır Metal İçeriği ve Su Kalitesi Değerlendirmesi

Year 2026, Volume: 14 Issue: 2 , 396 - 408 , 19.04.2026
https://doi.org/10.29130/dubited.1744995
https://izlik.org/JA38DL52FD

Abstract

Tatvan (Kotum) Deresi, Nemrut Dağı civarındaki kaynaklardan beslenen küçük kolların oluşturduğu bir su kaynağıdır. Dere havzası, bazaltik ve andezitik kayaçların yaygın olduğu Doğu Anadolu Platosu'nun yüksek ve engebeli arazisinde yer almaktadır. Kışın yüksek kar örtüsü, ilkbaharda ise hızlı kar erimesi nedeniyle dere rejiminde mevsimsel değişimler görülür. Tatvan Deresi hidrolojik olarak Van Gölü'ne dökülen önemli kollardan biridir. Derenin taşıdığı alüvyon, ilkbaharda debiyi artırarak göl çevresinde delta oluşumuna katkıda bulunur. Ancak son yıllarda artan yerleşim ve tarımsal faaliyetler su kalitesini tehdit etmektedir. Bu çalışmada, Van Gölü Havzası'nda bulunan Kotum Deresi'nden alınan su örneklerindeki ağır metaller ve diğer kimyasal parametreler incelenmiştir. Kirlilik seviyelerini değerlendirmek için Ağır Metal Kirlilik İndeksi (HPI) ve Metal İndeksi (MI) hesaplanmıştır. Ayrıca, diğer su kalitesi parametreleri de yasal standartlara göre değerlendirilmiş ve yorumlanmıştır. Çalışmanın amacı, bölge için sürdürülebilir su yönetimi politikaları ve çevre koruma stratejileri geliştirmek için bilimsel bir temel sağlamaktır.

Project Number

(Project No. 2022.06)

References

  • Al-Obaidi, B. S., & Sarhat, A. R. (2022). Assessment of Darbandikhan Reservoir’s water for different purposes by using (WQI), (HPI) and (MI) indices. IOP Conference Series: Earth and Environmental Science, 1120(1), Article 012014. https://doi.org/10.1088/1755-1315/1120/1/012014
  • Appiah-Opong, R., Ofori, A., Ofosuhene, M., Ofori-Attah, E., Nunoo, F. K. E., Tuffour, I., Gordon, C., Arhinful, D. K., Nyarko, A. K., & Fosu-Mensah, B. Y. (2021). Heavy metals concentration and pollution index (HPI) in drinking water along the southwest coast of Ghana. Applied Water Science, 11(3), Article 57. https://doi.org/10.1007/s13201-021-01386-5
  • Argun, Y. A. (2025). Examination of heavy metal concentrations and their interaction with anthropogenic sources in Ermenek Dam Lake (Turquoise Lake). Environmental Geochemistry and Health, 47(2), Article 58. https://doi.org/10.1007/s10653-025-02367-2
  • Badeenezhad, A., Soleimani, H., Shahsavani, S., Parseh, I., Mohammadpour, A., Azadbakht, O., Javanmardi, P., Faraji, H., & Babakrpur Nalosi, K. (2023). Comprehensive health risk analysis of heavy metal pollution using water quality indices and Monte Carlo simulation in R software. Scientific Reports, 13(1), Article 15817. https://doi.org/10.1038/s41598-023-43161-3
  • Baird, R. B., Eaton, A. D., & Rice, E. W. (2017). Standard methods for the examination of water and wastewater (23rd Ed.). American Public Health Association, American Water Works Association, Water Environment Federation.
  • Bhateria, R., & Jain, D. (2016). Water quality assessment of lake water: A review. Sustainable Water Resources Management, 2(2), 161–173. https://doi.org/10.1007/S40899-015-0014-7
  • Chaudhari, M., Chotaliya, R., Ali, G., Pandya, A., & Shrivastav, P. (2024). Assessment of heavy metal contamination in the groundwater of Gujarat, India using the Heavy Metal Pollution Index. Environmental Research and Technology, 7(3), 471–488. https://doi.org/10.35208/ERT.1433696
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  • Hayta, S., & Firat, E. (2022). Determination of heavy metal concentrations and soil samples of Betula pendula and Populus tremula in Nemrut Crater Lake. International Journal of Secondary Metabolite, 9(4), 504–512. https://doi.org/10.21448/IJSM.1082781
  • Husain, S., & Ali, G. (2024). Groundwater quality assessment with respect to heavy metal content by using heavy metal pollution index (HPI) of Moradabad district, Uttar Pradesh, India. International Journal of Environment and Climate Change, 14(6), 476–491. https://doi.org/10.9734/IJECC/2024/V14I64245
  • Hussain, F., Ahmed, S., Muhammad Zaigham Abbas Naqvi, S., Awais, M., Zhang, Y., Zhang, H., Raghavan, V., Zang, Y., Zhao, G., & Hu, J. (2025). Agricultural non-point source pollution: Comprehensive analysis of sources and assessment methods. Agriculture, 15(5), Article 531. https://doi.org/10.3390/AGRICULTURE15050531
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  • Jazza, S. H., Najim, S. S., & Adnan, M. A. (2022). Using heavy metals pollution index (HPI) for assessment quality of drinking water in Maysan province in southern east in Iraq. Egyptian Journal of Chemistry, 65(2), 703–709. https://doi.org/10.21608/EJCHEM.2021.89658.4295
  • Kahraman, T., Alemdar, S., Alişarlı, M., & Ağaoğlu, S. (2012). Heavy metal levels of drinking water in Bitlis province. Eurasian Journal of Veterinary Sciences, 28(3), 164-171.
  • Kar, D., Sur, P., Mandal, S. K., Saha, T., & Kole, R. K. (2008). Assessment of heavy metal pollution in surface water. International Journal of Environmental Science and Technology, 5(1), 119–124. https://doi.org/10.1007/BF03326004
  • Khadija, D., Hicham, A., Rida, A., Hicham, E., Nordine, N., & Najlaa, F. (2021). Surface water quality assessment in the semi-arid area by a combination of heavy metal pollution indices and statistical approaches for sustainable management. Environmental Challenges, 5, Article 100230. https://doi.org/10.1016/J.ENVC.2021.100230
  • Kır, İ., Özan, S. T., & Tuncay, Y. (2007). The seasonal variations of some heavy metals in Kovada Lake’s water and sediment. Ege Journal of Fisheries and Aquatic Sciences, 24(1), 155–158.
  • Korkmaz, P. (2025). Determination of irrigation water quality of Mustafakemalpaşa Stream [Master’s thesis, Bursa Uludağ University]. https://uu245-102.uludag.edu.tr/bitstreams/e07d766d-1c88-4b19-b9b8-9343317ca5fc/download
  • Latif, M., Nasim, I., Ahmad, M., Nawaz, R., Tahir, A., Irshad, M. A., Al-Mutairi, A. A., Irfan, A., Al-Hussain, S. A., & Zaki, M. E. A. (2025). Human health risk assessment of drinking water using heavy metal pollution index: a GIS-based investigation in mega city. Applied Water Science, 15(1), Article 12. https://doi.org/10.1007/S13201-024-02341-W
  • Li, S., & Zhang, Q. (2010). Risk assessment and seasonal variations of dissolved trace elements and heavy metals in the Upper Han River, China. Journal of Hazardous Materials, 181(1–3), 1051–1058. https://doi.org/10.1016/J.JHAZMAT.2010.05.120
  • Mahapatra, S. R., Venugopal, T., Shanmugasundaram, A., Giridharan, L., & Jayaprakash, M. (2020). Heavy metal index and geographical information system (GIS) approach to study heavy metal contamination: A case study of north Chennai groundwater. Applied Water Science, 10(12), Article 238. https://doi.org/10.1007/s13201-020-01321-0
  • Nacar, S., Mete, B., & Bayram, A. (2020). Estimation of daily dissolved oxygen concentration using multivariate adaptive regression splines methods. Uludağ University Journal of the Faculty of Engineering, 25(3), 1479–1498. https://doi.org/10.17482/uumfd.750518
  • Ojekunle, O. Z., Ojekunle, O. V., Adeyemi, A. A., Taiwo, A. G., Sangowusi, O. R., Taiwo, A. M., & Adekitan, A. A. (2016). Evaluation of surface water quality indices and ecological risk assessment for heavy metals in scrap yard neighbourhood. SpringerPlus, 5(1), Article 560. https://doi.org/10.1186/S40064-016-2158-9
  • Oyan, V., & Tolluoǧlu, A. Ü. (2005). Na-Feldspar-rich leucogranitic rocks in the Bitlis Massif (Yolcular Metamorphic): A potential source for feldspar. Journal of the Earth Sciences Application and Research Centre of Hacettepe University, 26(3), 1–11.
  • Ölmez, M., & Saraç, D. (2009). Su ürünleri için pH’nın önemi. Ziraat Mühendisliği, (353), 12–17.
  • Reza, R., & Singh, G. (2010). Heavy metal contamination and its indexing approach for river water. International Journal of Environmental Science and Technology, 7(4), 785–792. https://doi.org/10.1007/BF03326187
  • Rosado-Berrios, C. A., & Bouldin, J. L. (2016). Turbidity and total suspended solids on the lower Cache River watershed, AR. Bulletin of Environmental Contamination and Toxicology, 96(6), 738–743. https://doi.org/10.1007/S00128-016-1793-8
  • Sarhat, A. R., & Al-Obaidi, B. S. (2023). Assessment of heavy metal pollution in Sirwan River by heavy metal pollution index (HPI) and metal index (MI). Water Conservation Science and Engineering, 8(1), Article 12. https://doi.org/10.1007/S41101-023-00187-Y
  • ASTM Committee D-19 on Water. (1960). Standard methods of test for suspended and dissolved matter (suspended and dissolved solids) in industrial water and industrial wastewater (D 1069–58). In Manual on industrial water and industrial wastewater (pp. 1–14). ASTM International. https://doi.org/10.1520/STP48540S
  • T.C. Çevre ve Şehircilik Bakanlığı. (2012). Yerüstü su kalitesi yönetmeliği. https://www.mevzuat.gov.tr/mevzuat?MevzuatNo=16806&MevzuatTur=7&MevzuatTertip=5
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Heavy Metal Content and Water Quality Assessment of Kotum Stream

Year 2026, Volume: 14 Issue: 2 , 396 - 408 , 19.04.2026
https://doi.org/10.29130/dubited.1744995
https://izlik.org/JA38DL52FD

Abstract

Tatvan (Kotum) Stream is a water source formed by small branches fed from springs around Nemrut Mountain. The watershed is located in the high and rugged terrain of the Eastern Anatolian Plateau, where basaltic and andesitic rocks are common. Due to high snow cover in winter and rapid snowmelt in spring, seasonal changes are observed in the stream regime. Hydrologically, Tatvan Stream is one of the important tributaries flowing into Lake Van. The alluvium carried by the stream increases the flow rate in spring and contributes to delta formation around the lake. However, in recent years, increasing settlement and agricultural activities have threatened the water quality. This study examines heavy metals and other chemical parameters in water samples from Kotum Stream within the Lake Van Basin. Heavy Metal Pollution Index (HPI) and Metal Index (MI) were calculated to assess pollution levels. Additionally, other water quality parameters were evaluated and interpreted according to regulatory standards. The aim of the study is to provide a scientific basis for developing sustainable water management policies and environmental protection strategies for the region.

Ethical Statement

This study does not involve human or animal participants. All procedures followed scientific and ethical principles, and all referenced studies are appropriately cited.

Supporting Institution

This work is supported by Bitlis Eren University Scientific Research Projects Coordinatorship within the scope of Independent Scientific Research Project (Project No. 2022.06).

Project Number

(Project No. 2022.06)

Thanks

This work is supported by Bitlis Eren University Scientific Research Projects Coordinatorship within the scope of Independent Scientific Research Project (Project No. 2022.06).

References

  • Al-Obaidi, B. S., & Sarhat, A. R. (2022). Assessment of Darbandikhan Reservoir’s water for different purposes by using (WQI), (HPI) and (MI) indices. IOP Conference Series: Earth and Environmental Science, 1120(1), Article 012014. https://doi.org/10.1088/1755-1315/1120/1/012014
  • Appiah-Opong, R., Ofori, A., Ofosuhene, M., Ofori-Attah, E., Nunoo, F. K. E., Tuffour, I., Gordon, C., Arhinful, D. K., Nyarko, A. K., & Fosu-Mensah, B. Y. (2021). Heavy metals concentration and pollution index (HPI) in drinking water along the southwest coast of Ghana. Applied Water Science, 11(3), Article 57. https://doi.org/10.1007/s13201-021-01386-5
  • Argun, Y. A. (2025). Examination of heavy metal concentrations and their interaction with anthropogenic sources in Ermenek Dam Lake (Turquoise Lake). Environmental Geochemistry and Health, 47(2), Article 58. https://doi.org/10.1007/s10653-025-02367-2
  • Badeenezhad, A., Soleimani, H., Shahsavani, S., Parseh, I., Mohammadpour, A., Azadbakht, O., Javanmardi, P., Faraji, H., & Babakrpur Nalosi, K. (2023). Comprehensive health risk analysis of heavy metal pollution using water quality indices and Monte Carlo simulation in R software. Scientific Reports, 13(1), Article 15817. https://doi.org/10.1038/s41598-023-43161-3
  • Baird, R. B., Eaton, A. D., & Rice, E. W. (2017). Standard methods for the examination of water and wastewater (23rd Ed.). American Public Health Association, American Water Works Association, Water Environment Federation.
  • Bhateria, R., & Jain, D. (2016). Water quality assessment of lake water: A review. Sustainable Water Resources Management, 2(2), 161–173. https://doi.org/10.1007/S40899-015-0014-7
  • Chaudhari, M., Chotaliya, R., Ali, G., Pandya, A., & Shrivastav, P. (2024). Assessment of heavy metal contamination in the groundwater of Gujarat, India using the Heavy Metal Pollution Index. Environmental Research and Technology, 7(3), 471–488. https://doi.org/10.35208/ERT.1433696
  • Coşkun, S. (2020). Trend analysis of precipitation in Van Lake closed basin. Journal of Engineering Sciences and Design, 8(2), 521–532. https://doi.org/10.21923/JESD.685420
  • Findik, Ö., & Aras, S. (2023). Application of the metal pollution indices on surface waters for assessment of environmental risk: a case study for Damsa reservoir (Cappadocia, Türkiye). International Journal of Environmental Science and Technology, 20(2), 1689–1698. https://doi.org/10.1007/s13762-022-04102-1
  • Gad, M., El-Safa, M. M. A., Farouk, M., Hussein, H., Alnemari, A. M., Elsayed, S., Khalifa, M. M., Moghanm, F. S., Eid, E. M., & Saleh, A. H. (2021). Integration of water quality indices and multivariate modeling for assessing surface water quality in Qaroun Lake, Egypt. Water, 13(16), Article 2258. https://doi.org/10.3390/W13162258
  • Giri, S., & Singh, A. K. (2014). Assessment of surface water quality using heavy metal pollution index in Subarnarekha River, India. Water Quality, Exposure and Health, 5(4), 173–182. https://doi.org/10.1007/S12403-013-0106-2
  • Güldiren, O., & Tekin-Özan, S. (2017). The seasonal variations of some heavy metals in water and sediment of Seyhan Dam Lake (Adana). Journal of Yalvaç Academy, 2(1), 99–111.
  • Guo, W., Zou, J., Liu, S., Chen, X., Kong, X., Zhang, H., & Xu, T. (2022). Seasonal and spatial variation in dissolved heavy metals in Liaodong Bay, China. International Journal of Environmental Research and Public Health, 19(1), Article 608. https://doi.org/10.3390/IJERPH19010608
  • Hamahsaeed, M. A. (2024). The using heavy metals pollution index (HPI) and metal index (MI) for Assessing quality of drinking water in Bardarash-Akre basin in Duhok governorate northern Iraq: Using heavy metals pollution index (HPI) for assessment quality of drinking water in Bardarash-Akre basin in Duhok governorate north Iraq. Tikrit Journal of Pure Science, 29(2), 30–44. https://doi.org/10.25130/tjps.v29i2.1592
  • Hamidu, H., Halilu, F. B., Yerima, K. M., Garba, L. M., Suleiman, A. A., Kankara, A. I., & Abdullahi, I. M. (2021). Heavy metals pollution indexing, geospatial and statistical approaches of groundwater within Challawa and Sharada industrial areas, Kano City, North-Western Nigeria. SN Applied Sciences, 3(7), Article 690. https://doi.org/10.1007/s42452-021-04662-w
  • Hayta, S., & Firat, E. (2022). Determination of heavy metal concentrations and soil samples of Betula pendula and Populus tremula in Nemrut Crater Lake. International Journal of Secondary Metabolite, 9(4), 504–512. https://doi.org/10.21448/IJSM.1082781
  • Husain, S., & Ali, G. (2024). Groundwater quality assessment with respect to heavy metal content by using heavy metal pollution index (HPI) of Moradabad district, Uttar Pradesh, India. International Journal of Environment and Climate Change, 14(6), 476–491. https://doi.org/10.9734/IJECC/2024/V14I64245
  • Hussain, F., Ahmed, S., Muhammad Zaigham Abbas Naqvi, S., Awais, M., Zhang, Y., Zhang, H., Raghavan, V., Zang, Y., Zhao, G., & Hu, J. (2025). Agricultural non-point source pollution: Comprehensive analysis of sources and assessment methods. Agriculture, 15(5), Article 531. https://doi.org/10.3390/AGRICULTURE15050531
  • International Organization for Standardization (ISO). (2024). ISO 5667-3:2024: Water quality — sampling — part 3: preservation and handling of water samples. https://www.iso.org/standard/82273.html
  • International Organization for Standardization (ISO). (2014). ISO 5667-6:2014: Water quality — sampling — part 6: guidance on sampling of rivers and streams. https://www.iso.org/standard/55451.html
  • Jazza, S. H., Najim, S. S., & Adnan, M. A. (2022). Using heavy metals pollution index (HPI) for assessment quality of drinking water in Maysan province in southern east in Iraq. Egyptian Journal of Chemistry, 65(2), 703–709. https://doi.org/10.21608/EJCHEM.2021.89658.4295
  • Kahraman, T., Alemdar, S., Alişarlı, M., & Ağaoğlu, S. (2012). Heavy metal levels of drinking water in Bitlis province. Eurasian Journal of Veterinary Sciences, 28(3), 164-171.
  • Kar, D., Sur, P., Mandal, S. K., Saha, T., & Kole, R. K. (2008). Assessment of heavy metal pollution in surface water. International Journal of Environmental Science and Technology, 5(1), 119–124. https://doi.org/10.1007/BF03326004
  • Khadija, D., Hicham, A., Rida, A., Hicham, E., Nordine, N., & Najlaa, F. (2021). Surface water quality assessment in the semi-arid area by a combination of heavy metal pollution indices and statistical approaches for sustainable management. Environmental Challenges, 5, Article 100230. https://doi.org/10.1016/J.ENVC.2021.100230
  • Kır, İ., Özan, S. T., & Tuncay, Y. (2007). The seasonal variations of some heavy metals in Kovada Lake’s water and sediment. Ege Journal of Fisheries and Aquatic Sciences, 24(1), 155–158.
  • Korkmaz, P. (2025). Determination of irrigation water quality of Mustafakemalpaşa Stream [Master’s thesis, Bursa Uludağ University]. https://uu245-102.uludag.edu.tr/bitstreams/e07d766d-1c88-4b19-b9b8-9343317ca5fc/download
  • Latif, M., Nasim, I., Ahmad, M., Nawaz, R., Tahir, A., Irshad, M. A., Al-Mutairi, A. A., Irfan, A., Al-Hussain, S. A., & Zaki, M. E. A. (2025). Human health risk assessment of drinking water using heavy metal pollution index: a GIS-based investigation in mega city. Applied Water Science, 15(1), Article 12. https://doi.org/10.1007/S13201-024-02341-W
  • Li, S., & Zhang, Q. (2010). Risk assessment and seasonal variations of dissolved trace elements and heavy metals in the Upper Han River, China. Journal of Hazardous Materials, 181(1–3), 1051–1058. https://doi.org/10.1016/J.JHAZMAT.2010.05.120
  • Mahapatra, S. R., Venugopal, T., Shanmugasundaram, A., Giridharan, L., & Jayaprakash, M. (2020). Heavy metal index and geographical information system (GIS) approach to study heavy metal contamination: A case study of north Chennai groundwater. Applied Water Science, 10(12), Article 238. https://doi.org/10.1007/s13201-020-01321-0
  • Nacar, S., Mete, B., & Bayram, A. (2020). Estimation of daily dissolved oxygen concentration using multivariate adaptive regression splines methods. Uludağ University Journal of the Faculty of Engineering, 25(3), 1479–1498. https://doi.org/10.17482/uumfd.750518
  • Ojekunle, O. Z., Ojekunle, O. V., Adeyemi, A. A., Taiwo, A. G., Sangowusi, O. R., Taiwo, A. M., & Adekitan, A. A. (2016). Evaluation of surface water quality indices and ecological risk assessment for heavy metals in scrap yard neighbourhood. SpringerPlus, 5(1), Article 560. https://doi.org/10.1186/S40064-016-2158-9
  • Oyan, V., & Tolluoǧlu, A. Ü. (2005). Na-Feldspar-rich leucogranitic rocks in the Bitlis Massif (Yolcular Metamorphic): A potential source for feldspar. Journal of the Earth Sciences Application and Research Centre of Hacettepe University, 26(3), 1–11.
  • Ölmez, M., & Saraç, D. (2009). Su ürünleri için pH’nın önemi. Ziraat Mühendisliği, (353), 12–17.
  • Reza, R., & Singh, G. (2010). Heavy metal contamination and its indexing approach for river water. International Journal of Environmental Science and Technology, 7(4), 785–792. https://doi.org/10.1007/BF03326187
  • Rosado-Berrios, C. A., & Bouldin, J. L. (2016). Turbidity and total suspended solids on the lower Cache River watershed, AR. Bulletin of Environmental Contamination and Toxicology, 96(6), 738–743. https://doi.org/10.1007/S00128-016-1793-8
  • Sarhat, A. R., & Al-Obaidi, B. S. (2023). Assessment of heavy metal pollution in Sirwan River by heavy metal pollution index (HPI) and metal index (MI). Water Conservation Science and Engineering, 8(1), Article 12. https://doi.org/10.1007/S41101-023-00187-Y
  • ASTM Committee D-19 on Water. (1960). Standard methods of test for suspended and dissolved matter (suspended and dissolved solids) in industrial water and industrial wastewater (D 1069–58). In Manual on industrial water and industrial wastewater (pp. 1–14). ASTM International. https://doi.org/10.1520/STP48540S
  • T.C. Çevre ve Şehircilik Bakanlığı. (2012). Yerüstü su kalitesi yönetmeliği. https://www.mevzuat.gov.tr/mevzuat?MevzuatNo=16806&MevzuatTur=7&MevzuatTertip=5
  • Climate-Data.org. (2025). Tatvan climate: weather Tatvan & temperature by month. Retrieved December 11, 2025, from https://en.climate-data.org/asia/turkey/bitlis/tatvan-15386/
  • Turkish State Meteorological Service (MGM). (n.d.). Forecast cities. Retrieved December 11, 2025, from https://www.mgm.gov.tr/eng/forecast-cities.aspx
  • Türk Standardları Enstitüsü (TSE). (1997). TS 266: Water intended for human consumption. https://intweb.tse.org.tr/standard/standard
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There are 44 citations in total.

Details

Primary Language English
Subjects Environmental Pollution and Prevention, Health and Ecological Risk Assessment, Environmental Engineering (Other), Water Resources and Water Structures
Journal Section Research Article
Authors

Çiğdem Özer 0000-0002-3206-6288

Mehmet Cihan Aydın 0000-0002-5477-1033

Project Number (Project No. 2022.06)
Submission Date July 17, 2025
Acceptance Date January 24, 2026
Publication Date April 19, 2026
DOI https://doi.org/10.29130/dubited.1744995
IZ https://izlik.org/JA38DL52FD
Published in Issue Year 2026 Volume: 14 Issue: 2

Cite

APA Özer, Ç., & Aydın, M. C. (2026). Heavy Metal Content and Water Quality Assessment of Kotum Stream. Duzce University Journal of Science and Technology, 14(2), 396-408. https://doi.org/10.29130/dubited.1744995
AMA 1.Özer Ç, Aydın MC. Heavy Metal Content and Water Quality Assessment of Kotum Stream. DUBİTED. 2026;14(2):396-408. doi:10.29130/dubited.1744995
Chicago Özer, Çiğdem, and Mehmet Cihan Aydın. 2026. “Heavy Metal Content and Water Quality Assessment of Kotum Stream”. Duzce University Journal of Science and Technology 14 (2): 396-408. https://doi.org/10.29130/dubited.1744995.
EndNote Özer Ç, Aydın MC (April 1, 2026) Heavy Metal Content and Water Quality Assessment of Kotum Stream. Duzce University Journal of Science and Technology 14 2 396–408.
IEEE [1]Ç. Özer and M. C. Aydın, “Heavy Metal Content and Water Quality Assessment of Kotum Stream”, DUBİTED, vol. 14, no. 2, pp. 396–408, Apr. 2026, doi: 10.29130/dubited.1744995.
ISNAD Özer, Çiğdem - Aydın, Mehmet Cihan. “Heavy Metal Content and Water Quality Assessment of Kotum Stream”. Duzce University Journal of Science and Technology 14/2 (April 1, 2026): 396-408. https://doi.org/10.29130/dubited.1744995.
JAMA 1.Özer Ç, Aydın MC. Heavy Metal Content and Water Quality Assessment of Kotum Stream. DUBİTED. 2026;14:396–408.
MLA Özer, Çiğdem, and Mehmet Cihan Aydın. “Heavy Metal Content and Water Quality Assessment of Kotum Stream”. Duzce University Journal of Science and Technology, vol. 14, no. 2, Apr. 2026, pp. 396-08, doi:10.29130/dubited.1744995.
Vancouver 1.Çiğdem Özer, Mehmet Cihan Aydın. Heavy Metal Content and Water Quality Assessment of Kotum Stream. DUBİTED. 2026 Apr. 1;14(2):396-408. doi:10.29130/dubited.1744995