References

  1. M. Abu-Daabes, H.A. Qdais, H. Alsyouri, Assessment of heavy metals and organics in municipal solid waste leachates from landfills with different ages in Jordan, J. Environ. Protect., 4 (2013) 344–352.
  2. Y. Peng, Perspectives on technology for landfill leachate treatment, Arab. J. Chem., 10 (2017) S2567–S2574.
  3. B.H. Zhang, X. Tian, A. Zhang, A. Ghulam, C.R. Fang, R. He, Investigation on characteristics of leachate and concentrated leachate in three landfill leachate treatment plants, Waste Manage., 33 (2013) 2277–2286.
  4. M.A. Kamaruddin, M.S. Yusoff, H.A. Aziz, Y.T. Hung, Sustainable treatment of landfill leachate, Appl. Water Sci., 5 (2014) 113–126.
  5. H. Sun, Y. Peng, X. Shi, Advanced treatment of landfill leachate using anaerobic-aerobic process: organic removal by simultaneous denitritation and methanogenesis and nitrogen removal via nitrite, Bioresour. Technol., 177 (2015) 337–345.
  6. T.A. Kurniawan, W.H. Lo, G.Y.S. Chan, Physico-chemical treatments for removal of recalcitrant contaminants from landfill leachate, J. Hazard. Mater., 129 (2006) 80–100.
  7. K.Y. Foo, L.K. Lee, B.H. Hameed, Batch adsorption of semiaerobic landfill leachate by granular activated carbon prepared by microwave heating, Chem. Eng. J., 222 (2013) 259–264.
  8. N. Yusof, A. Haraguchi, M.A. Hassan, M.R. Othman, M. Wakisaka, Y. Shirai, Measuring organic carbon, nutrients and heavy metals in rivers receiving leachate from controlled and uncontrolled municipal solid waste (MSW) landfills, Waste Manage., 29 (2009) 2666–2680.
  9. P. Intanoo, P. Chaimongkol, S. Chavadej, Hydrogen and methane production from cassava wastewater using two-stage upflow anaerobic sludge blanket reactors (UASB) with an emphasis on maximum hydrogen production, Int. J. Hydrogen Energy, 41 (2016) 6107–6114.
  10. F. Tisa, A.A. Abdul Raman, W.M.A. Wan Daud, Applicability of fluidized bed reactor in recalcitrant compound degradation through advanced oxidation processes: a review, J. Environ. Manage., 146 (2014) 260–275.
  11. J. Fyda, R. Babko, E. Fiałkowska, A. Pajdak-Stós, W. Kocerba- Soroka, M. Sobczyk, Ł. Sobczyk, Effect of high levels of the rotifer Lecane inermis on the ciliate community in laboratory-scale sequencing batch bioreactors (SBRs), Europ. J. Protistology, 51 (2015) 470–479.
  12. Lu, G. Zhen, J. Ni, T. Hojo, K. Kubota, Y.Y. Li, Effect of influent COD/SO42− ratios on biodegradation behaviors of starch wastewater in an upflow anaerobic sludge blanket (UASB) reactor, Bioresour. Technol., 214 (2016) 175–183.
  13. T. Alvarino, S. Suárez, M. Garrido, J.M. Lema, F. Omil, A UASB reactor coupled to a hybrid aerobic MBR as innovative plant configuration to enhance the removal of organic micropollutants, Chemosphere, 144 (2016) 452–458.
  14. Lu, B. George, H. Zhao, W. Liu, A case study of coupling upflow anaerobic sludge blanket (UASB) and ANITA Mox process to treat high-strength landfill leachate, Water Sci. Technol. J. Int. Assoc. Water Pollut. Res., 73 (2016) 662–668.
  15. A. Djalma Nunes Ferraz Júnior, M.H. Koyama, M.M. de Araújo Júnior, M. Zaiat, Thermophilic anaerobic digestion of raw sugarcane vinasse, Renew. Energy, 89 (2016) 245–252.
  16. N.K. Singh, S. Pandey, S. Singh, S. Singh, A.A. Kazmi, Post treatment of UASB effluent by using inorganic coagulants: role of zeta potential and characterization of solid residue, J. Environ. Chem. Eng., 4 (2016) 1495–1503.
  17. A.P. Trzcinski, D.C. Stuckey, Inorganic fouling of an anaerobic membrane bioreactor treating leachate from the organic fraction of municipal solid waste (OFMSW) and a polishing aerobic membrane bioreactor, Bioresour. Technol., 204 (2016) 17–25.
  18. A.P. Trzcinski, D.C. Stuckey, Effect of sparging rate on permeate quality in a submerged anaerobic membrane bioreactor (SAMBR) treating leachate from the organic fraction of municipal solid waste (OFMSW), J. Environ. Manage., 168 (2016) 67–73.
  19. H. Gulsen, M. Turan, Treatment of sanitary landfill leachate using a combined anaerobic fluidized bed reactor and Fenton’s oxidation, Environ. Eng. Sci., 21 (2004) 627–636.
  20. R.A. Hamza, O.T. Iorhemen, J.H. Tay, Advances in biological systems for the treatment of high-strength wastewater, J. Water Process Eng., 10 (2016) 128–142.
  21. Singh, A.K. Mittal, Toxicity and treatability of leachate: application of UASB reactor for leachate treatment from Okhla landfill, New Delhi, Water Sci. Technol., 65 (2012) 1887–1894.
  22. T. Salthammer, The formaldehyde dilemma, Int. J. Hyg. Environ. Health, 218 (2015) 433–436.
  23. V.G.d. Barros, R.M. Duda, R.A.d. Oliveira, Biomethane production from vinasse in upflow anaerobic sludge blanket reactors inoculated with granular sludge, Brazil. J. Microbiol., 47 (2016) 628–639.
  24. APHA, Standard Methods for the Examination of Water and Waste Water, 20th ed., American Public Health Association, American Water Works Association, Water Pollution control Federation, Washington, D.C., 1998
  25. M. Kawai, M. Kishi, M.R. Hamersley, N. Nagao, J. Hermana, T. Toda, Biodegradability and methane productivity during anaerobic co-digestion of refractory leachate, Int. Biodeterior. Biodegrad., 72 (2012) 46–51.
  26. R. Rodriguez, Moreno, L., Simulation of a UASB Reactor, 10th International Conference on Modelling, Monitoring and Management of Water Pollution, Bucharest, WIT Press, 2011, pp. 301–310.
  27. S. Chelliapan, T. Wilby, P.J. Sallis, Performance of an up-flow anaerobic stage reactor (UASR) in the treatment of pharmaceutical wastewater containing macrolide antibiotics, Water Res., 40 (2006) 507–516.
  28. Y. Deng, C.M. Ezyske, Sulfate radical-advanced oxidation process (SR-AOP) for simultaneous removal of refractory organic contaminants and ammonia in landfill leachate, Water Res., 45 (2011) 6189–6194.
  29. H. Chen, H. Meng, Z. Nie, M. Zhang, Polyhydroxyalkanoate production from fermented volatile fatty acids: effect of pH and feeding regimes, Bioresour. Technol., 128 (2013) 533–538.
  30. J. Ye, Y. Mu, X. Cheng, D. Sun, Treatment of fresh leachate with high-strength organics and calcium from municipal solid waste incineration plant using UASB reactor, Bioresour. Technol., 102 (2011) 5498–5503.
  31. R. Alkarimiah, S.B. Mahat, A. Yuzir, M.F.M. Din, S. Chelliapan, Performance of an innovative multi-stage anaerobic reactor during start-up period, Afr. J. Biotechnol., 10 (2011) 11294–11302.
  32. S.M.B.B. Correa, E. Ruiz, F. Romero, Evolution of operational parameters in a UASB wastewater plant, Water SA, 29 (2003) 345–352.
  33. T. Abbasi, S.M. Tauseef, S.A. Abbasi, Anaerobic digestion for global warming control and energy generation – an overview, Renew. Sustain. Energy Rev., 16 (2012) 3228–3242.
  34. R. Mahmoudkhani, A.H. Hassani, S.M. Borghei, Study on Anaerobic Landfill Leachate Treatability by Membrane Bioreactor, International Conference on Biology, Environment and Chemistry IPCBEE, IACSIT Press, Singapore, 2011, pp. 5–9.
  35. A. Abbassi-Guendouz, D. Brockmann, E. Trably, C. Dumas, J.P. Delgenès, J.P. Steyer, R. Escudié, Total solids content drives high solid anaerobic digestion via mass transfer limitation, Bioresour. Technol., 111 (2012) 55–61.
  36. S.Y. Xu, H.P. Lam, O.P. Karthikeyan, J.W.C. Wong, Optimization of food waste hydrolysis in leach bed coupled with methanogenic reactor: effect of pH and bulking agent, Bioresour. Technol., 102 (2011) 3702–3708.
  37. B. Dong, X. Liu, L. Dai, X. Dai, Changes of heavy metal speciation during high-solid anaerobic digestion of sewage sludge, Bioresour. Technol., 131 (2013) 152–158.
  38. P.M. Thanh, B. Ketheesan, Z. Yan, D. Stuckey, Trace metal speciation and bioavailability in anaerobic digestion: a review, Biotechnol. Adv., 34 (2016) 122–136.
  39. A. Cestonaro do Amaral, A. Kunz, R.L. Radis Steinmetz, K.C. Justi, Zinc and copper distribution in swine wastewater treated by anaerobic digestion, J. Environ. Manage., 141 (2014) 132–137.
  40. H. Zhao, C. Zhong, H. Chen, J. Yao, L. Tan, Y. Zhang, J. Zhou, Production of bioflocculants prepared from formaldehyde wastewater for the potential removal of arsenic, J. Environ. Manage., 172 (2016) 71–76.
  41. A.G. Tekerlekopoulou, M. Tsiflikiotou, L. Akritidou, A. Viennas, G. Tsiamis, S. Pavlou, K. Bourtzis, D.V. Vayenas, Modelling of biological Cr(VI) removal in draw-fill reactors using microorganisms in suspended and attached growth systems, Water Res., 47 (2013) 623–636.
  42. Z. Lu, W. Hegemann, Anaerobic toxicity and biodegradation of formaldehyde in batch cultures, Water Res., 32 (1998) 209–215.
  43. G. Vidal, Z.P. Jiang, F. Omil, F. Thalasso, R. Méndez, J.M. Lema, Continuous anaerobic treatment of wastewaters containing formaldehyde and urea, Bioresour. Technol., 70 (1999) 283–291.
  44. D. de la Varga, M.A. Díaz, I. Ruiz, M. Soto, Heavy metal removal in an UASB-CW system treating municipal wastewater, Chemosphere, 93 (2013) 1317–1323.
  45. S. Xie, Y. Ma, P.J. Strong, W.P. Clarke, Fluctuation of dissolved heavy metal concentrations in the leachate from anaerobic digestion of municipal solid waste in commercial scale landfill bioreactors: the effect of pH and associated mechanisms, J. Hazard. Mater., 299 (2015) 577–583.
  46. A. Singh, S. Pandeya, Sorption and release of cadmium-fulvic acid complexes in sludge treated soils, Bioresour. Technol., 66 (1998) 119–127.
  47. R. Mandal, M.S. Salam, J. Murimboh, N.M. Hassan, C.L. Chakrabarti, M.H. Back, D.C. Grégoire, Competition of Ca(II) and Mg(II) with Ni(II) for binding by a well-characterized fulvic acid in model solutions, Environ. Sci. Technol., 34 (2000) 2201–2208.