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Research on neutralization of wastewater from pickling and electropolishing processes

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Process baths used for electropolishing and pickling of stainless steel have become increasingly contaminated with heavy metal ions over time. There is still lack of research on the neutralization of this type of technological wastewater with high concentrations of metal ions and containing complexing compounds, which significantly hinders their effective treatment. The aim of this paper is to study how the selected methods of heavy metals removal will affect the quality of the treated, industrial post-galvanic sewage from pickling and electropolishing of chromium-nickel steel on a laboratory and technical scale. The research used sodium sulphide or a decomplexing agent based on organic sulphur to neutralize wastewater containing triethanolamine or glycerol. Treatment of electropolishing wastewater poses a challenge. Nevertheless, wastewater with glycerol is easier to neutralize than those containing triethanolamine. In the industrial scale the use of a decomplexing agent is necessary to achieve the required nickel values in the wastewater after treatment below 1 ppm. Even in the case of high concentrations of nickel ions in raw wastewater, the neutralization process of the wastewater originating only from pickling alone was effective. The search for effective methods of neutralization of mixed wastewater is especially important in industrial conditions, where it is not always possible to completely separate these two types of sewage. The paper also presents the results of the composition of post-neutralization sludge, which may be useful in planning further management and disposal of this type of waste.
Rocznik
Strony
18--29
Opis fizyczny
Bibliogr. 45 poz., rys., tab., wykr.
Twórcy
  • Wrocław University of Environmental and Life Sciences, Institute of Environmental Engineering, Poland
  • Wrocław University of Environmental and Life Sciences, Institute of Environmental Engineering, Poland
  • Wrocław University of Environmental and Life Sciences, Institute of Environmental Engineering, Poland
  • Wrocław University of Environmental and Life Sciences, Institute of Environmental Engineering, Poland
Bibliografia
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  • 4. Andrus, M.E. (2000). A review of metal precipitation chemicals for metal-finishing applications, Metal Finishing, 98, 11, pp. 20-23. DOI: 10.1016/S0026-0576(00)83532-1
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  • 24. Kondratenko, Y., Zolotarev, A.A., Ignatyev, I., Ugolkov, V. & Kochina, T. (2020). Synthesis, crystal structure and properties of copper(II) complexes with triethanolamine and carboxylic acids (succinic, salicylic, cinnamic), Transition Metal Chemistry, 45, 1, pp. 71-81. DOI: 10.1007/s11243-019-00359-7
  • 25. Kowal, A.L. & Świderska-Bróż, M. (1981). Removal of heavy metals in water rejuvenation, Ochrona Środowiska. http://www.os.not.pl/docs/czasopismo/1981/Kowal_4_1981.pdf (in Polish)
  • 26. Kurama, H. (2009). Treatment and recovery of nickel rich precipitate from plating plant waste, Journal of Environmental Engineering and Landscape Management, 17, 4, pp. 212-218. DOI: 10.3846/1648-6897.2009.17.212-218
  • 27. Kurniawan, T.A., Chan, G.Y.S., Lo, W.H. & Babel, S. (2006). Physico-chemical treatment techniques for wastewater laden with heavy metals, Chemical Engineering Journal, 118, 1-2, pp. 83-98. DOI: 10.1016/j.cej.2006.01.015
  • 28. Li, C., Xie, F., Ma, Y., Cai, T., Li, H., Huang, Z. & Yuan, G. (2010). Multiple heavy metals extraction and recovery from hazardous electroplating sludge waste via ultrasonically enhanced two-stage acid leaching, Journal of Hazardous Materials, 178, 1-3, pp. 823-833. DOI: 10.1016/j.jhazmat.2010.02.013
  • 29. Lin, S.H. & Kiang, C.D. (2003). Chromic acid recovery from waste acid solution by an ion exchange process: Equilibrium and column ion exchange modeling, Chemical Engineering Journal, 92, 1-3, pp. 193-199. DOI: 10.1016/S1385-8947(02)00140-7
  • 30. Liu, H.L., Chen, B.Y., Lan, Y.W. & Cheng, Y.C. (2004). Biosorption of Zn(II) and Cu(II) by the indigenous Thiobacillus thiooxidans, Chemical Engineering Journal, 97, 2-3, pp. 195-201. DOI: 10.1016/S1385-8947(03)00210-9
  • 31. Lochynski, P., Kowalski, M., Szczygiel, B. & Kuczewski, K. (2016). Improvement of the stainless steel electropolishing process by organic additives, Polish Journal of Chemical Technology, 18, 4, pp. 76-81. DOI: 10.1515/pjct-2016-0074
  • 32. Lugo-Lugo, V., Barrera-Díaz, C., Bilyeu, B., Balderas-Hernández, P., Ureña-Nuñez, F. & Sánchez-Mendieta, V. (2010). Cr(VI) reduction in wastewater using a bimetallic galvanic reactor, Journal of Hazardous Materials, 176, 1-3, pp. 418-425. DOI: 10.1016/j.jhazmat.2009.11.046
  • 33. Łyczkowska-Widłak, E., Lochyński, P. & Nawrat, G. (2020). Electrochemical polishing of austenitic stainless steels, Materials, 13, 11, pp. 1-25. DOI: 10.3390/ma13112557
  • 34. Malaviya, P. & Singh, A. (2011). Physicochemical technologies for remediation of chromium-containing waters and wastewaters, Critical Reviews in Environmental Science and Technology, 41, 12, pp. 1111-1172. DOI: 10.1080/10643380903392817
  • 35. Panayotova, M. & Velikov, B. (2002). Kinetics of heavy metal ions removal by use of natural zeolite, Journal of Environmental Science and Health - Part A Toxic/Hazardous Substances and Environmental Engineering, 37, 2, pp. 139-147. DOI: 10.1081/ESE-120002578
  • 36. Papadopoulos, A., Fatta, D., Parperis, K., Mentzis, A., Haralambous, K. J. & Loizidou, M. (2004). Nickel uptake from a wastewater stream produced in a metal finishing industry by combination of ion-exchange and precipitation methods, Separation and Purification Technology, 39, 3, pp. 181-188. DOI: 10.1016/j.seppur.2003.10.010
  • 37. Petrinic, I., Korenak, J., Povodnik, D. & Hélix-Nielsen, C. (2015). A feasibility study of ultrafiltration/reverse osmosis (UF/RO)-based wastewater treatment and reuse in the metal finishing industry, Journal of Cleaner Production, 101, pp. 292-300. DOI: 10.1016/j.jclepro.2015.04.022
  • 38. Priya, P.G., Basha, C.A., Ramamurthi, V. & Begum, S.N. (2009). Recovery and reuse of Ni(II) from rinsewater of electroplating industries, Journal of Hazardous Materials, 163, 2-3, pp. 899-909. DOI: 10.1016/j.jhazmat.2008.07.072
  • 39. Rodríguez-Iznaga, I., Gómez, A., Rodríguez-Fuentes, G., Benítez-Aguilar, A. & Serrano-Ballan, J. (2002). Natural clinoptilolite as an exchanger of Ni2+ and NH4+ ions under hydrothermal conditions and high ammonia concentration, Microporous and Mesoporous Materials, 53, 1-3, pp. 71-80. DOI: 10.1016/S1387-1811(02)00325-6
  • 40. Rubel, E., Tomassi, P. & Ziółkowski, J. (2009). Best Available Techniques (BAT) - Wytyczne dla powierzchniowej obróbki metali i tworzyw sztucznych. pp. 91. (in Polish)
  • 41. Szymański, K., Janowska, B., Sidełko, R. & Maciołek, P. (2018). Impact of environmental conditions on transformation of mineral pollutants present in landfill leachates, Przemysl Chemiczny, 97, 9, pp. 1517-1519. DOI: 10.15199/62.2018.9.23
  • 42. Taha, A.A., Shreadah, M. A., Heiba, H.F. & Ahmed, A.M. (2017). Validity of Egyptian Na-montmorillonite for adsorption of Pb2+, Cd2+ and Ni2+ under acidic conditions: characterization, isotherm, kinetics, thermodynamics and application study, Asia-Pacific Journal of Chemical Engineering, 12, 2, pp. 292-306. DOI: 10.1002/apj.2072
  • 43. Thomas, M., Białecka, B. & Zdebik, D. (2018). Removal of copper, nickel and tin from model and real industrial wastewater using sodium trithiocarbonate. The negative impact of complexing compounds, Archives of Environmental Protection, 44, 1, pp. 33-47. DOI: 10.24425/118179
  • 44. Thomas, M., Kozik, V., Bąk, A., Barbusiński, K., Jazowiecka-Rakus, J. & Jampilek, J. (2021). Removal of Heavy Metal Ions from Wastewaters: An Application of Sodium Trithiocarbonate and Wastewater Toxicity Assessment, Materials, 14, 3, pp. 655. DOI: 10.3390/ma14030655
  • 45. Wang, Z., Li, J., Song, W., Zhang, X. & Song, J. (2019). Decomplexation of electroplating wastewater by ozone-based advanced oxidation process, Water Science and Technology, 79, 3, pp. 589-596. DOI: 10.2166/wcc.2018.167
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-5e55d922-bec1-4f52-91b6-d477a1238f95
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