References

  1. Y.A. Alemayehu, S.L. Asfaw, T.A. Tirfie, Management options for coffee processing wastewater. A review, J. Mater. Cycles Waste Manage., 22 (2020) 454–469.
  2. H.M. Bui, Optimisation of electrocoagulation of instant coffee production wastewater using the response surface methodology, Polish J. Chem. Technol., 19 (2017) 67–71.
  3. A.S.P. Moreira, M.N. Fernando, S. Cristiana, D. Pedro, Data on coffee composition and mass spectrometry analysis of mixtures of coffee related carbohydrates, phenolic compounds and peptides, Data Brief, 13 (2017) 145–161.
  4. A. Haddis, R. Devi, Effect of effluent generated from coffee processing plant on the water bodies and human health in its vicinity, J. Hazard. Mater., 152 (2008) 259–262.
  5. L. Louzada, L.F. Andrade-vieira, J. Augusto, D.O. David, Ecotoxicology and environmental safety evaluation of the toxic potential of coffee wastewater on seeds, roots and meristematic cells of Lactuca sativa L., Ecotoxicol. Environ. Saf., 133 (2016) 366–372.
  6. A. Beyene, Y. Kassahun, T. Addis, The impact of traditional coffee processing on river water quality in Ethiopia and the urgency of adopting sound environmental practices, 184 (2012) 7053–7063.
  7. P. Doraisamy, M. Maheswar, N. Nandakumar, M. Selvamurugan, High rate anaerobic treatment of coffee processing wastewater using upflow anaerobic hybrid reactor, Iran. J. Environ. Health Sci. Eng., 7 (2010) 129–136.
  8. F.R.L. Fia, A.T. Matos, A.C. Borges, R. Fia, P.R. Cecon, Treatment of wastewater from coffee bean processing in anaerobic fixed bed reactors with different support materials: performance and kinetic modeling, J. Environ. Manage., 108 (2012) 14–21.
  9. S. Rattan, A.K. Parande, V.D. Nagaraju, G.K. Ghiwari, A comprehensive review on sutilisation of wastewater from coffee processing, Environ. Sci. Pollut. Res., 22 (2015) 6461–6472.
  10. M. Villanueva-Rodríguez, R. Bello-Mendoza, D.G. Wareham, E.J. Ruiz-Ruiz, M.L. Maya-Treviño, Discoloration and organic matter removal from coffee wastewater by electrochemical advanced oxidation processes, Water Air Soil Pollut., 225 (2014) 12,.
  11. V. Gomes de Barros, S.D. Rodrigues, W. Alirio, B. Suarez, R.M. Duda, R. Alves de Oliveira, E.S. Da Silva, Treatment of biodigested coffee processing wastewater using Fenton’s oxidation and coagulation/flocculation, Environ. Pollut., 259 (2020) 113–796.
  12. M. Tomizawa, S. Kurosu, M. Kobayashi, Y. Kawase, Zerovalent iron treatment of dark brown colored coffee effluent: contributions of a core-shell structure to pollutant removals, J. Environ. Manage., 183 (2016) 478–487.
  13. S. Ismadji, S.K. Bhatia, Adsorption of flavour esters on granular activated carbon, Can. J. Chem. Eng., 78 (2000) 892–901.
  14. J.P. Wang, Y.Z. Chen, X.W. Ge, H.Q. Yu, Optimisation of coagulation-flocculation process for a paper-recycling wastewater treatment using response surface methodology, Colloids Surf. A, 302 (2007) 204–210.
  15. O.T. Can, E. Gengec, M. Kobya, TOC and COD removal from instant coffee and coffee products production wastewater by chemical coagulation assisted electrooxidation, J. Water Process Eng., 28 (2019) 28–35.
  16. R. Devi, V. Singh, A. Kumar, COD and BOD reduction from coffee processing wastewater using Avacado peel carbon, Bioresour. Technol., 99 (2008) 1853–1860.
  17. R. Devi, Innovative technology of COD and BOD reduction from coffee processing wastewater using Avocado Seed Carbon (ASC), Water Air Soil Pollut., 207 (2010) 299–306.
  18. Y. Ku, K.C. Lee, Removal of phenols from aqueous solution by XAD-4 resin, J. Hazard. Mater., 80 (2000) 59–68.
  19. W. Beita-Sandí, T. Karanfil, Removal of both N-nitrosodimethylamine and trihalomethanes precursors in a single treatment using ion exchange resins, Water Res., 124 (2017) 20–28.
  20. M.J.K. Bashir, H.A. Aziz, M.S. Yusoff, A.A.M. Huqe, S. Mohajeri, Effects of ion exchange resins in different mobile ion forms on semi-aerobic landfill leachate treatment, Water Sci. Technol., 61 (2010) 641–649.
  21. T.M. Zewail, N.S. Yousef, Kinetic study of heavy metal ions removal by ion exchange in batch conical air spouted bed, Alexandria Eng. J., 54 (2015) 83–90.
  22. M. Greluk, Z. Hubicki, Evaluation of polystyrene anion exchange resin for removal of reactive dyes from aqueous solutions, Chem. Eng. Res. Des., 91 (2013) 1343–1351.
  23. M. Wawrzkiewicz, Removal of CII Basic Blue 3 dye by sorption onto cation exchange resin, sfunctionalised and nonsfunctionalised polymeric sorbents from aqueous solutions and wastewaters, Chem. Eng. J., 217 (2013) 414–425.
  24. K.C. Graf, D.A. Cornwell, T.H. Boyer, Removal of dissolved organic carbon from surface water by anion exchange and adsorption: bench-scale testing to simulate a two-stage countercurrent process, Sep. Purif. Technol., 122 (2014) 523–532.
  25. T.H. Boyer, Removal of dissolved organic matter by magnetic ion exchange resin, Curr. Pollut. Rep., 1 (2015) 142–154.
  26. I. Levchuk, J.J. Rueda Márquez, M. Sillanpää, Removal of natural organic matter (NOM) from water by ion exchange – a review, Chemosphere, 192 (2018) 90–104.
  27. H. Song, Z. Yao, M. Wang, J. Wang, Z. Zhu, A. Li, Effect of dissolved organic matter on nitrate-nitrogen removal by anion exchange resin and kinetics studies, J. Environ. Sci. (China), 25 (2013) 105–113.
  28. I. Langmuir, The constitution and fundamental properties of solids and liquids. II. Liquids, J. Am. Chem. Soc., 39 (1917) 1848–1906.
  29. M. Caetano, C. Valderrama, A. Farran, J.L. Cortina, Phenol removal from aqueous solution by adsorption and ion exchange mechanisms onto polymeric resins, J. Colloid Interface Sci., 338 (2009) 402–409.
  30. H. Freundlich, Über die Adsorption in Lösungen, Zeitschrift für Phys. Chemie, 57 (1906) 1.
  31. M.S. Hossain, F. Omar, A.J. Asis, R.T. Bachmann, M.Z. Islam Sarker, M.O. Ab Kadir, Effective treatment of palm oil mill effluent using FeSO4 7H2O waste from titanium oxide industry: coagulation adsorption isotherm and kinetics studies, J. Cleaner Prod., 219 (2019) 86–98.
  32. E. Pagalan, M. Sebrona, S. Gomeza, S.J. Salvaa, R. Ampusta, Activated carbon from spent coffee grounds as an adsorbent for treatment of water contaminated by aniline yellow dye, Ind. Crops Prod., 145 (2020) 111–953.
  33. M. Yazdani, N. Mohammad Mahmoodi, M. Arami, H. Bahrami, Isotherm, kinetic, and thermodynamic of cationic dye removal from binary system by Feldspar, Sep. Sci. Technol., 47 (2012) 1660–1672.
  34. K. Araucz, A. Aurich, D. Kołodyńska, Novel multifunctional ion exchangers for metal ions removal in the presence of citric acid, Chemosphere, 251 (2020) 126331.
  35. J. Wang, H. Huang, Thermodynamics of NO 3-adsorption on different kinds of anion exchange resins, 48 (2016) 73–79.
  36. A. Cruz-Salomón, E. Ríos-Valdovinos, F. Pola-Albores, S. Lagunas-Rivera, R. Meza-Gordillo, V.M. Ruíz-Valdiviezo, Evaluation of hydraulic retention time on treatment of coffee processing wastewater (CPWW) in EGSB bioreactor, Sustainability, 10 (2017) 83–94.
  37. B.S.C. Asrat Gebremariam Woldesenbet, Belay Woldeyes, Wet Coffee Processing Waste Management Practice in Ethiopia, Asian J. Sci. Technol., 6 (2015) 1467–1471.
  38. N.S.M. Said, S.R.S. Abdullah, N. Izzati Ismail, H.A. Hasan, A.R. Othman, Phytoremediation of real coffee industry effluent through a continuous two-stage constructed wetland system, Environ. Technol. Innov., 17 (2020) 100502.
  39. H.N. Ibarra-Taquez, E. GilPavas, E.R. Blatchley, M.Á. Gómez- García, I. Dobrosz-Gómez, Integrated electrocoagulationelectrooxidation process for the treatment of soluble coffee effluent: optimisation of COD degradation and operation time analysis, J. Environ. Manage., 200 (2017) 530–538.
  40. F.C. Moreira, R.A.R. Boaventura, E. Brillas, V.J.P. Vilar, Electrochemical advanced oxidation processes: a review on their application to synthetic and real wastewaters, Appl. Catal. B, 202 (2017) 217–261.
  41. M.D. Víctor-Ortega, J.M. Ochando-Pulido, G. Hodaifa, A. Martínez-Ferez, Ion exchange as an efficient pretreatment system for reduction of membrane fouling in the purification of model OMW, Desalination, 343 (2014) 198–207.
  42. M.F.M.A. Zamri, M.A. Kamaruddin, M.S. Yusoff, H.A. Aziz, K.Y. Foo, Semi-aerobic sstabilised landfill leachate treatment by ion exchange resin: isotherm and kinetic study, Appl. Water Sci., 7 (2017) 581–590.
  43. M.M. Bazri, Kinetics and Fate of Natural Organic Matter Under Different Water Matrices Using Basic Ion Exchange Resins, Ubc, no. September, 2015.
  44. P. Seruga, M. Krzywonos, J. Pyzanowska, A. Urbanowska, H. Pawlak-Kruczek, Ł. Niedźwiecki, Removal of ammonia from the municipal waste treatment effuents using natural minerals, Molecules, 24 (2019) 20.
  45. Y. Yang, Z. Zheng, W. Ji, M. Yang, Q. Ding, X. Zhang, The study of bromate adsorption onto magnetic ion exchange resin: optimisation using response surface methodology, Surf. Interfaces, 17 (2019) 100385.
  46. D. Pathania, S. Sharma, P. Singh, Removal of methylene blue by adsorption onto activated carbon developed from Ficus carica bast, Arab. J. Chem., 10 (2017) 1445–1451.
  47. V. Vadivelan, K. Vasanth Kumar, Equilibrium, kinetics, mechanism, and process design for the sorption of methylene blue onto rice husk, J. Colloid Interface Sci., 286 (2005) 90–100.
  48. C. Yang, L. Li, J. Shi, C. Long, A. Li, Advanced treatment of textile dyeing secondary effluent using magnetic anion exchange resin and its effect on organic fouling in subsequent RO membrane, J. Hazard. Mater., 284 (2015) 50–57.
  49. G. Liang, W. Zhaowei, Y. Xing, Q. Tingting, X. Xiaoyun, Z. Jing, Efficient removal of oxytetracycline from aqueous solution using magnetic montmorillonite-biochar composite prepared by one step pyrolysis, Sci. Total Environ., 695 (2019) 133800.
  50. J. Fu, Z. Jianhua, W. Zhiwei, W. Yahuan, W. Shaomin, Y. Ruiqiang, X. Qun, Highly-efficient and selective adsorption of anionic dyes onto hollow polymer microcapsules having a high surface-density of amino groups: isotherms, kinetics, thermodynamics and mechanism, J. Colloid Interface Sci., 542 (2019) 123–135.