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Warianty tytułu
Języki publikacji
Abstrakty
Acidic water from the coal of mining pool has been polluted from the surrounding coal stockpile stocpile industry. Water quality in mining ponds can threaten the biota in it. During this time, coal mining pool the local community uses water extensively for everyday requirements like drinking, washing, and bathing. More than time it turns out that coal mine acidic water has been polluted. This problem needs to be sought a solution, one of which is required treatment technology for creating water quality that satisfies requirements for drinking water quality. This research tries to use NF270 membrane type Nanofiltration membrane technology to eliminate COD, TSS, TDS, and metal parameters (Fe, Mn). This research was conducted by analyzing the influence pressure (4, 5, and 6 bar) on each component’s rejection rate and flux each parameter. The results of the study show the processed results as follows; Turbidity, Color, COD, TSS, TDS, Fe and Mn at pressures 4, 5, and 6 bar of acid mine rejection water values, namely; Turbidity (96.23%; 98.7%; 100%), Color (79%; 98%; 100%), COD (57.9%; 63.7%; 83.19%), TSS (73, 3%; 87.2%; 95.8%), TDS (62.7%; 66%; 70.19%), Fe (36%; 74.5%; 100%), Mn (100%; 100 %; 100%). Acidic water treatment in coal mining ponds can be turned into drinking water using nanofiltration membranes producing the best percentage of rejection at pressures of 5 and 6 bar. Water treatment with Nanofiltration membrane technology has produced treated water in accordance with drinking water quality standards required by Priest of Wellbeing Pronouncement of the Republic of Indonesia No. 907/Menkes/Sk/VII/2002 and Clergyman of Climate Pronouncement the Decree of the Minister of Environment No. 492 / IV / 2010 / MENKES / PER. NF 270 membrane can remove heavy metals and other impurities in acidic water by more than 90%.
Słowa kluczowe
Wydawca
Rocznik
Tom
Strony
34--45
Opis fizyczny
Bibliogr. 48 poz., rys., tab.
Twórcy
autor
- Faculty of Health Sciences, Universitas Teuku Umar, Alue Peunyareng St., Ujong Tanoh Darat, Meureubo, West Aceh District, Aceh 23681, Indonesia Master of Fisheries Science Study Program, Universitas Teuku Umar, Indonesia
- Master of Fisheries Science Study Program, Universitas Teuku Umar, Indonesia
autor
- kiswanto@utu.ac.id
- Faculty of Health Sciences, Universitas Teuku Umar, Alue Peunyareng St., Ujong Tanoh Darat, Meureubo, West Aceh District, Aceh 23681, Indonesia
- Faculty of Engineering, Civil Engineering Study Program, Universitas Teuku Umar, Indonesia
Bibliografia
- 1. Kiswanto, H. Susanto, Sudarno, Wintah. 2021. FF270 Membrane Technology: New-Product From Acid Mine Drainage, J. Green Eng., 11(1), 807–823.
- 2. Kiswanto, H. Susanto, Sudarno. 2018. Characteristics of Coal Acidic Water in the PT Bukit Asam (PTBA) Former Coal Mine Pond. Conf. Nas. IDEC., 7–8.
- 3. Alghifary, F., Widayati, S. 2020. Coal Characteristics and Formation of Acid Mine Drainage at PT GHI Coal Mine, East Kalimantan Province, 6(2), 636–641.
- 4. Nugraha, A., Kirmi, H., Haryanto B. 2020. Analysis of acid mine drainage treatment on palm bunch media and compost with subsurface flow anaerobic wetland system at PT berau coal, SPECTA J. Technol., 4(2), 13–22.
- 5. Said. I.N, Yudo S. 2021. Status of Water Quality in Void Ponds of Coal Mining in Satui Mine, Tanah Laut Districct, South Borneo, 22(1), 048–057.
- 6. Ekwule, O.R., Akpen, G.D., Ugbede, G.M. 2019. The effect of coal mining on the water quality of water sources in Nigeria, Bartın Univ. Int. J. Nat. Appl. Sci., 2(2), 251–260.
- 7. Kilian, A., Widodo, Sri., Jafar N. 2018. Potential Triggers Of Acid Mine Drainage In Mining, 6(2), 49–53.
- 8. Talukdar, B., Das, J., Kalita, H.K., Basumatary S. 2016. Impact of open cast coal mining on fish and fisheries of simsang river, Meghalaya, India, J. Mar. Sci. Res. Dev., 6(6), 1–7.
- 9. Geomine, J., Wahyudin, I., Widodo, S., Nurwaskito, A. 2018. Analysis Of Coal Mine Acid Water Treatment, 6(2), 85–89.
- 10. Said, I.N., Yudo, S. 2021. Status of water quality in former coal mine ponds at satui mine, tanah laut regency, South Kalimantan, J. Technol. Environ., 22(1), 48–57.
- 11. Yildirim, Y., Ince, M., Kajama, M.N. 2019. The Use Of NF and RO Membrane System For Reclamation and Recycling Of Wastewaters Generated From A Hard Coal Mining, 38(4), 1048–1055.
- 12. Kiswanto, Wintah, S., Sriwahyuni, Nurdin. 2022. Post-mining pond water suitability for fisheries culture in West Aceh, Indonesia,”AACL Bioflux, 15(1), 436–445.
- 13. Arifin, U.R.S., Jadid, M.M.E., Widiono, B. 2019. Treatment of Gold Mine Acidic Waste Water with Coagulation Flocculation Neutralization Process, 5(9), 112–120.
- 14. Setiawan, A.A., Budianta, D., Suheryanto, S., Priadi D.P. 2018. Review: Pollution due to Coal Mining Activity and its Impact on Environment, Sriwij. J. Environ., 3(1), 1–5.
- 15. Hidayah. M.P. 2018. Wastewater Treatment into Drinking Water by Removing Ammonium and E-Coli Bacteria through Nanofiltration Membrane, 2(1), 6–13.
- 16. Kiswanto, H. Susanto, Sudarno. 2020. Treatment of coal mine acid water using NF270 membrane as environmentally friendly technology, J. Pendidik. IPA Indonesia., 9(3),147–157.
- 17. Vatra, R.P.R., Arifin. 2023. Treatment of leachate water from batu layang landfill using electrocoagulation and filtration methods, Jurnal Teknologi Terapan, 7(2), 737–744.
- 18. Kiswanto, Wintah, J. Maulana. 2019. Reduction of Color, Tss, Cod, and Cr in Batik Tulis Waste by Electrolysis and Biosand in Kalipucang Wetan Village, Batang Regency, Ristek J. Research, Inov. And Technol. Batang Regency, 4(1), 7–17.
- 19. Wenten, I.G. 2015. Membrane Technology in Industrial Water and Waste Treatment. Case Study: Utilization of Ultrafiltration for Sewage Treatment 1.
- 20. Theron, J., Walker, J.A., Cloete T.E. 2008. Nanotechnology and water treatment: applications and emerging opportunities., Crit. Rev. Microbiol., 34(1), 43–69.
- 21. Ghasem N. 2023. Modeling the effectiveness of hollow fiber membrane contactors for CO2 capture using ionic liquids: A comparative study, J. Membr. Sci. Res., 9(4), 1–16.
- 22. Munirasu, S., Haija, M.A., Banat F. 2016. Use of Membrane Technology For Oil Field and Refinery Produced Water Treatment–A review, Process Saf. Environ. Prot., 100(2), 183–202.
- 23. Istirokhatun, T., Susanto, H., Budihardjo, M.A., Septiyani, E., Wibowo, A.R., and Karamah E.F. 2021. Treatment of batik industry wastewater plant effluent using nanofiltration, Int. J. Technol., 12(4), 770–780.
- 24. Tan, Y.K., Lau, W.J., Nawi, N.S.M., Roslan R.A. and Ng P.S. 2024. Assessing membrane performance for landfill leachate treatment in accordance with local regulatory requirements, J. Membr. Sci. Res., 10(1), 1–8.
- 25. Ramos, R.L., Grossi, L.B., Ricci, B.C., Amaral, M.C.S. 2020. Journal of Environmental Chemical Engineering Membrane selection for the Gold mining pressure-oxidation process ( POX ) e ffl uent reclamation using integrated UF-NF-RO processes, J. Environ. Chem. Eng., 8(5), 40–56
- 26. Ysulat, M.L.M., Ysulat, J.A.N., Caparanga, A.R., Pasag, J.M., Cruz R.A.T. 2023. Fabrication and surface characterization of lignin-polyamide thin film composite membrane for reverse osmosis desalination, J. Membr. Sci. Res., 9(4), 1–1.
- 27. Kiswanto, Wintah. 2023. Coal mine pond water treatment using membrane for aquaculture,” Journal Environment Engennering., 29(3), 1–13.
- 28. Ang, W.L., Mohammad, A.W., Hilal, N., Leo C.P. 2015. A Review on The Applicability of Integrated/ hybrid Membrane Processes in Water Treatment and Desalination Plants, Desalination, 363(3), 1–18.
- 29. Bodzek, M. 2015. Advances in Membrane Technologies for Water Treatment.
- 30. Li, M., Shi, J., Chen, C., Li N. 2017. Optimized Permeation and Antifouling of PVDF Hybrid Ultrafiltration Membranes: Synergistic Effect of Dispersion and Migration for Fluorinated Graphene Oxide.
- 31. Al Abdulgader H., V. Kochkodan, N. Hilal. 2021. Hybrid ion Exchange - Pressure Driven Membrane Processes in Water Treatment: A Review, Separation and Purification Technology, 116 2013., 253–264.
- 32. Kiswanto, K., Hamada, N.A., Sudarno, S., Purnaweni H. 2021. Removing Content of Color and Heavy Metals (Pb) in The Waste Liquid Using Batik Industries Membrane Technology NF 270, 2nd Int. Conf. Public Heal., October, 209–215.
- 33. Qu, X., Alvarez, P.J.J. and Li, Q. 2018. Applications Of Nanotechnology In Water And Wastewater Treatment, Water Res., 47(12), 3931–3946.
- 34. Kiswanto, H. Susanto, Sudarno. 2018. Characterization of Coal Acid Water in Void Pools of Coal Mining in South Kalimantan, E3S Web Conf., 73.
- 35. Ministry of Environment. 2021. Regulation of the Minister of Environment and Forestry of the Republic of Indonesia Number 5 of 2021 concerning Procedures for Issuing Technical Approval of Operational Feasibility Letters in the Field of Environmental Pollution Control, Ministry of Environment. Life.
- 36. Zoka, L., Narbaitz, R.M., Matsuura T. 2020. Effect of surface modification with electrospun nanofibers on the performance of an ultrafiltration membrane, J. Membr. Sci. Res., 6(4), 351–358.
- 37. Alkhudhiri, A., Darwish, N., Hilal N. 2013. Produced Water Treatment: Application Of Air Gap Membrane Distillation, Desalination, 309(4), 46–51.
- 38. Wu, N., Wei, C., Zhou, X., Pi, Y., Zhang, L., Wang, Y., Wei Y. 2022. Study on treatment of organic wastewater from cutting fluid by electro-flocculation-multiphase fenton/ultrasonic system, Polish J. Environ. Stud., 31(6), 5329–5342.
- 39. Parashar, R., Nailwa, B.C., Goswami, N., Lenka, R.K., Kar, S., Adak, A.K., Sinha, A.K., Parida, S.C., Mukhopadhyay S. 2022. Composite palladium alloy membranes for separation and recovery of hydrogen in bio-jet fuel production unit, J. Membr. Sci. Res., 8(4), 1–9.
- 40. Almazán, J.E., Romero-Dondiz, E.M., Rajal, V.B., Castro-Vidaurre E.F. 2015. Nanofiltration of glucose: analysis of parameters and membrane characterization, Chem. Eng. Res. Des., 94, 485–493.
- 41. Malinovic, B.N., Djuricic, T., Malesevic, R., Bjelic, D. 2022. E Lectrochemical Removal Of Hexavalent Chromium By, 15(1), 23–28.
- 42. Ntshangase, N.C., Sadare, O.O., Daramola M.O. 2022. Comparative study of separation performance of hydroxy sodalite infused polysulfone (HSOD/ PSf) and silica sodalite infused polysulfone (SSOD/ PSf) Membrane for acid mine drainage treatment, J. Membr. Sci. Res., 8(4), 1–8.
- 43. Onstad, G.D., Weinberg, H.S., Krasner S.W. 2008. Occurrence of halogenated furanones in u.s. drinking waters, environ. Sci. Technol., 42(9), 3341–3348.
- 44. Oluwasola, I.E., Ahmad, A.L., Shoparwe N.F. 2022. Preliminary study on the stability of self plasticised thin-flat PIM for the extraction of 2-(4-Isobutylphenyl) propanoic acid (Ibuprofen), J. Membr. Sci. Res., 8(4), 1–11.
- 45. Mena, E., Villaseñor, J., Cañizares, P., Rodrigo M.A. 2016. Effect Of Electric Field On The Performance Of Soil Electro-Bioremediation With A Periodic Polarity Reversal Strategy,” Chemosphere, 146, 300–307.
- 46. El-Sayed, A.M., Abdallah, H.M., Abdel-Goad, M., Abobeah, R., Amin, S.K. 2024. Geopolymer and alkali-activated membranes opportunities and assessment of performance, J. Membr. Sci. Res., 10(1), 1–7.
- 47. Kiswandono, A.A., Sindiani, A.V., Khotimah, R.K., Rabbani, M.B., Kurniawan, B., Rinawati, Herlian, E.P. 2024. Transport of malachite green using the polyeugenol-based polymer inclusion membrane (PIM) Method, J. Membr. Sci. Res., 10(1), 1–5.
- 48. Mahardika D.I. and Salami I.R.S.S. 2012. Distribution profile of heavy metal pollution in water and river sediment from leachate from Sari Mukti landfill site, J. Teh. Lingkung., 18(1), 30–42.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-4ba1c268-3255-470d-99bf-73072ca5cd37