INTEGRATED NEUTRALIZATION-PRECIPITATION APPROACH FOR HEAVY METAL REMOVAL FROM METAL-CONTAINING INDUSTRIAL WASTEWATER

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Kholikulov Doniyor Bakhtiyorovich
Muzaffarov Umurbek Umarovich
Aripov Avaz Rozikovich
Khojiev Shokhrukh Toshpulatovich

Abstract

 Industrial wastewater generated by chemical and metallurgical processes often contains elevated concentrations of heavy metals, posing serious environmental and technological challenges. This study investigates the efficiency and mechanism of pH-controlled neutralization combined with hydroxide precipitation for the treatment of metal-containing industrial wastewater. Wastewater samples originating from different chemical production units were analyzed using ICP-OES and XRF techniques to determine their elemental composition before and after treatment. Neutralization was performed within the pH range of 6.5–8.5 to promote the precipitation of poorly soluble metal hydroxides. The results demonstrate a substantial reduction in the concentrations of copper, zinc, iron, nickel, lead, and cadmium after treatment. Copper and iron were identified as dominant components in the precipitated solid phase, while iron hydroxides played a crucial role in enhancing the removal of other metals through coprecipitation and adsorption mechanisms. Removal efficiencies exceeding 90% were achieved for the most toxic metals, ensuring significant detoxification of the treated effluent. Scanning electron microscopy coupled with energy-dispersive spectroscopy confirmed the formation of stable Cu–Zn–Fe-rich hydroxide phases in the solid residues. The proposed treatment approach enables simultaneous reduction of environmental risks and concentration of valuable metals into a solid form suitable for further stabilization or recovery. Overall, the findings provide a scientific basis for the development of integrated, resource-efficient technologies for industrial wastewater treatment and sustainable water management.

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INTEGRATED NEUTRALIZATION-PRECIPITATION APPROACH FOR HEAVY METAL REMOVAL FROM METAL-CONTAINING INDUSTRIAL WASTEWATER. (2026). Journal of Multidisciplinary Sciences and Innovations, 5(01), 583-592. https://doi.org/10.55640/

References

1.Гончарук В. В. Вода: проблемы устойчивого развития цивилизации в ХХI веке // Химия и технология воды. – 2004. – T.26, №1.–С.3-25.

2.Воробьев А. В., Каргинов К.Г., Ананикян С.А., Одинцова Е. С. Оценка воздействия на окружающую среду предприятий горной промышленности // Экологическая экспертиза. -2002.- №3.–С.96-104.

3.Трубецкой К.Н., Галченко Ю.П. Человек и природа: противоречия и пути их преодоления // Вестник Российской академии наук. –2002. Т. 72, № 5. –С. 405–409.

4.Скурлатов Ю.И., Дука Г.Г., Мизити А. Введение в экологическую химию // – М.: Высшая школа, –1994. –400 с.

5.Грушко Я. М. Вредные органические соединения в промышленных сточных водах // – Л.: Химия, 1982. –216 с.

6.Холикулов, Д. Б., Р. И. Нормуротов, and Ф. Э. Ахтамов. "Исследования по извлечению цветных металлов ионной флотацией из сбросных растворов. Горный вестник Узбекистана. 2 (2016): 68-70.

7.Якубов, М. М., et al. "Очистка сточных вод медного производства озоном." Узбекский химический журнал 3 (2018): 35-41.

8.Холикулов, Д.Б., Рахмонов Н.М., Кодиров С.И.. "Возможности применения ионной флотации для извлечения металлов из различных растворов. Научные основы и практика переработки руд и техногенного сырья: Матер. междунар. науч.-техн. конф. (г. Екатеринбург, 15-18 апр. 2007 г.). Екатеринбург: Форт-Диалог-Исеть. 2007.

9.Абдурахмонов С.А., Холикулов Д.Б., Пиримов А.П., Нормуротов Р.И., Назаров В.Ф. Статистическая обработка показателей ионной флотации металлов из сернокислых растворов. // Горный вестник Узбекистана, Навойи. 2005. № 4 – С. 67–69.

10.Hojiyev Sh.T., Karshiboyev Sh.B., Xudoymuratov Sh.J., Mutalibxonov S.S. Texnogen eritmalardan noyob metallarni ajratib olish imkoniyatlarini tadqiq etish // Sanoatda raqamli texnologiyalar. – 2025. – Vol. 3. – № 3. – P. 27–33.

11.Khojiev Sh.T., Khaydaraliev K.R., Mutalibkhonov S.S., Khudoymuratov S.J. Chemical kinetics and interfacial electron transfer in the hydrazine reduction of zinc ferrite // Development of Science. – 2025. – Vol. 11, No. 3. – P. 445–454.

12.Kholikulov D., Khojiev Sh., Khaydaraliev Kh., Boltayev O., Khujayev T., Abdiev O., Yusupov A. Application of ozone for the treatment of process solutions and wastewater in copper production // International Journal of Mechatronics and Applied Mechanics. – 2025. – T. 1. – № 19. – P. 193-197.

13.Kholikulov D.B., Khojiev Sh.T., Khudoymuratov Sh.J., Karshiboev Sh.B., Mutalibkhonov S.S. Potential–pH Analysis of Selective Separation Conditions of Dysprosium, Molybdenum, and Tellurium Metals from Technogenic Solutions // International Journal of Engineering and Information Systems (IJEAIS). – 2025. – Vol. 9. – № 4. – P. 216–221.

14.Kholiqulov D.B., Samadov A.U., Boltaev O.N., Munosibov Sh.M. About the possibility of extraction of metals from mother solutions processing of copper // International Journal of Advanced Research in Science, Engineering, and Technology. – 2019. – Vol. 6, Iss. 3. – P. 8527–8534.

15.Холикулов Д.Б., Болтаев О.Н., Самадов А.У., Абдурахмонов С. Изучение возможности извлечения никеля из отходов медного производства АО «Алмалыкский ГМК» // Advanced Science: сб. ст. V Междунар. науч.-практ. конф. (г. Пенза, 20 нояб. 2018 г.). – Пенза, 2018. – С. 234.

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