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Kinetic Study of Adsorption of Metal Ions (Iron and Manganese) in Groundwater Using Calcium Carbide Waste

Treść / Zawartość
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Calcium carbide waste (CCW), the rest of the carbide welding workshop industry, is available in quite a lot and is immediately disposed of into the environment. Because CWW has a high pH value and a large specific surface area, it can act as an adsorbent in removing metals from groundwater. The content of metals in groundwater is indicated by a reddish color; however, upon contact with air, groundwater oxidation causes iron ions and manganese ions to precipitate. Synthetic groundwater was prepared in this experiment using reagents containing and . Observations were made in a batch process to assess the potential and ability of CCW to reduce iron and manganese levels in groundwater. In this study, to achieve equilibrium, CCW was mixed with 100 mL of synthetic solution and shaken at 25°C with a shaker. Operating time, levels of Fe(II) and (Mn(II) metals, and the mass of CCW were some of the parameters studied in this study. CCW was very good at reducing levels of iron ions and manganese ions after 60 minutes of operation. The percentage of removal of iron and manganese ions respectively – successively increased from 93.765 to 97.99% for iron ions and manganese ions from 91.83 to 95.14% for the initial concentration range of 40 mg/L, 60 mg/L, 80 mg/L, and 100 mg/L. Furthermore, the adsorption kinetics of CCW adsorbent in a mixture of iron ion and manganese ion solutions is a second-order kinetic equation. This confirms that the adsorption of CCW on iron ions and manganese ions is a chemisorption process. Calcium carbide waste has the potential to act as an absorbent of heavy metals in groundwater, especially iron and manganese ions.
Słowa kluczowe
Rocznik
Strony
155--165
Opis fizyczny
Bibliogr. 31 poz., rys., tab.
Twórcy
  • Department of Chemical Engineering, Faculty of Engineering, University of Muhammadiyah Palembang, Jalan Jendral Ahmad Yani 13 Ulu Palembang, 30263, Indonesia
  • Department of Chemical Engineering, Faculty of Engineering, Sriwijaya University, Jalan. Raya Indralaya – Prabumulih KM. 32 Indralaya 30662, Ogan Ilir, Indonesia
  • Department of Agricultural Industry Technology, Faculty of Agriculture, Sriwijaya University, Jalan. Raya Indralaya – Prabumulih KM. 32 Indralaya 30662, Ogan Ilir, Indonesia
  • Department of Agricultural Industry Technology, Faculty of Agriculture, University of Lampung Jalan Soemantri Brojonegoro No.1, Bandar Lampung 35145, Indonesia
Bibliografia
  • 1. Abdennebi N., Benhabib K., Goutaudier C., Bagane M. 2017. Removal of Aluminium and Iron Ions from Phosphoric Acid by Precipitation of Organo-Metallic Complex Using Organophosphorous Reagent. Journal of Materials and Environmental Science, 8, 557–565.
  • 2. Abuh M.A., Akpomie G.K., Nwagbara N.K., Abia-Bassey N., Ape D.I., Ayabie B.U. 2013. Application of Kinetic Rate Equation on Copper (II) and Zinc (II) Removal with Lignocellulosic Fibers Without Layer Modification Palm Tree Trunk Single Component System Study. International Journal of Basic and Applied Sciences, 50, 800–809.
  • 3. Abuh M.A., Akpomie G.K., Nwagbara N.K., Abia-Bassey N., Ape D.I., Ayabie B.U. 2013. Kinetic Rate Equations Application on the Removal of Copper (II) and Zinc (II) by Unmodified Lignocellulosic Fibrous Layer of Palm Tree Trunk-Single Component System Studies. International Journal of Basic and Applied Sciences, 50, 800–809.
  • 4. Al-Hobaib A.S., Al-Sheetan Kh.M., El Mir L. 2016. Effect of iron oxide nanoparticles on the performance of polyamide membrane for groundwater purification. Mater Sci Semicond Process 42(Part 1), 107–110.
  • 5. Al-Sayed M. Aly., Mahmoud M.K., Hamdy A., Khaled Z.M., Mohamed A.B. 2012. Reverse Osmosis Pretreatment: Removal of Iron in Groundwater Desalination Plant in Shupramant-Giza - A Case Study. Current World Environment, 7(1), 23–32.
  • 6. Amirnia S., Ray M.B., Margaritis A. 2016. Copper Ion Removal by Acer saccharum Leaves in a Regenerable Continuous-Flow Column. Chemical Engineering Journal, 287, 755–764.
  • 7. Arshid B., Lateef A.M., Sozia A., Taniya M., Mudasir A.B., Dar G.N. 2018. Altaf Hussain Pandith1 Removal of heavy metal ions from aqueous system by ionexchange and biosorption methods. Environmental Chemistry Letters.
  • 8. Barloková D., Ilavský J. 2009. Removal of Iron and Manganese from Water Using Filtration by Natural Materials. Polish J of Environ, 19(6), 1117–11122.
  • 9. Bhatnagar A., Sillanpää M. 2017 Removal of Natural Organic Matter (NOM) and Its Constituents from Water by Adsorption—A Review. Chemosphere, 166, 497–510.
  • 10. Dongmei H., Matthew J.C. 2016. Guoliang Cao cDeep challenges for China’s war on water pollution. Environmental Pollution, 218, 1222–1233.
  • 11. Esfandiar N., Nasernejad B., Ebadi T. 2014. Removal of Mn(II) from groundwater by sugarcane bagasse and activated carbon (a comparative study): Application of Response Surface Methodology (RSM). J. Ind. Eng. Chem., 2, 3726–3736.
  • 12. Gotić M., Jurkin T., Musić S., Unfried K., Sydlik U., Bauer-Šegvić A. 2013 Microstructural Characterization of Different Mn-Oxide Nanoparticles Used as Models in Toxicity Studies. Journal of Molecular Structure, 1044, 248–254.
  • 13. Hongfang S., Zishanshan L., Jing B., Shazim A.M., Biqin D, Yuan F., Weiting Xu., Feng X. 2015. Properties of Chemically Combusted Calcium Carbide Residue and Its Influence on Cement Properties. Materials, 8, 638–651.
  • 14. Hosseini H., Rezaei H., Shahbazi A., Maghsudlu A. 2016 Application of Nano-Lignocellulose to Remove Nickel Ions from Aqueous Solutions. Environmental Resources Research, 4, 213–229.
  • 15. Huang K., Zhu H.M. 2012. Removal of Pb2+ from aqueous solution by adsorption on chemically modified muskmelon peel. Environ Sci Pollut Res. DOI: 10.1007/s11356-012-1361-7
  • 16. Ihsanullah, Aamir A., Adnan M., Al-Amer, Tahar L., Mohammed J.A.M., Mustafa S.N, Majeda K., Muataz A.A. 2016. Heavy metal removal from aqueous solution by advanced carbon nanotubes: Critical review of adsorption applications. Separation and Purification Technology, 157, 141–161.
  • 17. Khan J.A., He X., Khan H.M., Shah N.S. 2013. Dionysiou, Oxidative degradation of atrazine in aqueous solution by UV/H2O2/Fe2+, UV//Fe2+ and UV//Fe2+ processes: a comparative study. Chem. Eng. J., 218, 376–383.
  • 18. Javadian H., Ghorbani F., Tayebi H., Asl S.H. 2015. Study of Adsorption of Cd(II) from Aqueous Solutions Using Zeolite-Based Geopolymers, Synthesized from Coal Fly Ash; Kinetic Studies, Isotherms, and Thermodynamics. Journal of Arabic Chemistry, 8, 837–849.
  • 19. Jawed A., Pandey L.M. 2019. Application of bimetallic Al-doped ZnO nano-assembly for heavy metal removal and decontamination of wastewater. Water Sci. Technol., 1–12
  • 20. Jiang H.X., Sunb Q., Zhang L.L., Zhao J.Z., Al-Ti-C. 2018. Master alloy with nano-sized TiC particles dispersed in the matrix prepared by using carbon nanotubes as a C source. J. Alloys Compd., 748, 774–782.
  • 21. Al-Sudani H.I.Z. 2018. Hydrochemical Evaluation and Utilization of Groundwater. Khanaqin Area, Diyala Governorate - East of Iraq. Iraqi Journal of Science, 59(4C), 2279–2288.
  • 22. Kai H., Yifan X., Hongmin Z. 2014 Removal of heavy metal ions from aqueous solution by chemically modified mangosteen pericarp. Desalination and Water Treatment, 52, 7108–7116.
  • 23. Liu, H.Y., Guo, H.M., Xing, L.N., Zhan, Y.H., Li, F.L., Shao, J.L., N, H., L, X., Li, C.Q. 2016. Geochemical behaviors of rare earth elements in groundwater along a flow path in the North China Plain. Journal of Asian Earth Sciences, 117, 33–51.
  • 24. Lo S., Wang S., Tsai M., Lin L. 2012. Adsorption capacity and removal efficiency of heavy metal ions by Moso and Ma bamboo activated carbons. Chemical Engineering Research and Design, 90, 1397–1406.
  • 25. Nik N., Daud N., Nur H. 2013. Improving Groundwater Quality using the Aeration and Filtration Method in Selangor, Malaysia. International Journal of Environmental and Ecological Engineering, 7(6), 309–313.
  • 26. Piuleac C.G., Sáez C., Cañizares P., Curteanu, S. 2012. Hybrid Model of a Wastewater-Treatment Electrolytic Process. International Journal of Electrochemical Science, 7, 6289–6301.
  • 27. Richard J., Debus. FTIR studies of metal ligands, networks of hydrogen bonds, and water molecules near the active site Mn4CaO5 cluster in Photosystem II. Biochimica et Biophysica Acta (BBA) - Bioenergetics, 1847, 19–34.
  • 28. Wan M.W., Kan C.C., Rogel B.D., Dalida M.L.P. 2010. Adsorption of copper (ii) and lead (ii) ions from aqueous solution on chitosan-coated sand Carbohydr. Polym, 80, 891–899.
  • 29. WHO. 2011. Guidelines for Drinking Water Quality. World Health Organization, Geneva, Switzerland. http://apps.who.int/iris/bitstream/10665/44584/1/9789241548151_eng.pdf
  • 30. Xiaodong Y., Yongshan W., Yulin Z., Feng H., Zebin Y., Jun H., Hailong W., Yong S.O., Yinshan J., Bin G. 2019. Surface functional groups of carbon-based adsorbents and their roles in the removal of heavy metals from aqueous solutions: a critical review. Chem. Eng. J., 366, 608–621.
  • 31. Xing D., Guangyang L., Fangshu Q., Kai L., Senlin S., Guibai L., Heng L. 2019. Removal of iron, manganese, and ammonia from groundwater using a PAC-MBR system: The anti-pollution ability, microbial population, and membrane fouling. Desalination, 403, 97–106.
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-1bd8e9bc-98db-4890-9ac5-30700be4c52c
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