359
Views
6
CrossRef citations to date
0
Altmetric
Articles

Electrochemical oxidation of the poultry manure anaerobic digested effluents for enhancing pollutants removal by Chlorella vulgaris

, , , &
Pages 1451-1460 | Received 15 Mar 2015, Accepted 08 Nov 2015, Published online: 16 Feb 2016

References

  • Kumar MS, Miao ZH, Wyatt SK. Influence of nutrient loads, feeding frequency and inoculum source on growth of Chlorella vulgaris in digested piggery effluent culture medium. Bioresour Technol. 2010;101:6012–6018.
  • Park J, Jin HF, Lim BR, et al. Ammonia removal from anaerobic effluent of livestock waste using green alga Scendesmus sp.. Bioresour Technol. 2010;101:8649–8657.
  • Wang L, Li YC, Chen Y, et al. Anaerobic digested dairy manure as a nutrient supplement for cultivation of oil-rich green microalgae Chlorella sp.. Bioresour Technol. 2010;101:2623–2628.
  • Singh M, Reynolds DL, Das KC. Microalgal system for treatment of effluent from poultry litter anaerobic digestion. Bioresour Technol. 2011;102:10841–10848.
  • Can OT, Kobya M, Demirbas E, et al. Treatment of the textile wastewater by combined electrocoagulation. Chemosphere. 2006;62:181–187.
  • Körbahti BK, Aktaş N, Tanyolaç A. Optimization of electrochemical treatment of industrial paint wastewater with response surface methodology. J Hazard Mater. 2007;148:83–90.
  • Vijayaraghavan K, Ahmad K, Yazid AYA. Electrolytic treatment of latex wastewater. Desalination. 2008;219:214–221.
  • Pazenko TY, Khalturuna TI, Kolova AF, et al. Electrocoagulation treatment of oil-containing wastewaters. J Appl Chem USSR. 1985;58:2383–2387.
  • Konig A, Pearson HW, Silva SA. Ammonia toxicity to algal growth in waste stabilization ponds. Water Sci Technol. 1987;19:115–122.
  • Gootzen JFE, Wonders AH, Visscher W, et al. A DEMS and cyclic voltammetry study of NH3 oxidation on platinized platinum. Electrochim Acta. 1998;43:1851–1861.
  • de Vooys ACA, Koper MTM, van Santen RA, et al. The role of adsorbates in the electrochemical oxidation of ammonia on noble and transition metal electrodes. J Electroanal Chem. 2001;506:127–137.
  • Kapałka A, Joss L, Anglada Á, et al. Direct and mediated electrochemical oxidation of ammonia on boron-doped diamond electrode. Electrochem Commun. 2010;12:1714–1717.
  • Kapałka A, Cally A, Neodo S, et al. Electrochemical behavior of ammonia at Ni/Ni(OH)2 electrode. Electrochem Commun. 2010;12:18–21.
  • Kapałka A, Fierro S, Frontistis Z, et al. Electrochemical oxidation of ammonia (/NH3) on thermally and electrochemically prepared IrO2 electrodes. Electrochim Acta. 2011;1361–1365.
  • Chiang LC, Chang JE, Wen TC. Indirect oxidation effect in electrochemical oxidation treatment of landfill leachate. Water Res. 1995;29:671–678.
  • Chen T, Shi H, Lu J. Electrochemical treatment of ammonia in wastewater by RuO2-IrO2-TiO2/Ti electrodes. J Appl Electrochem. 2007;37:1137–1144.
  • Szpyrkowicz L, Naumczyk F, Zilio-Grandi F. Electrochemcial treatment of tannery wastewater using Ti/Pt and Ti/Pt/Ir electrodes. Water Res. 1995;29:517–524.
  • Feng C, Sugiura N, Shimada S, et al. Development of high performance electrochemical wastewater treatment system. J Hazard Mater. 2003;103:65–78.
  • Li L, Liu Y. Ammonia removal in electrochemical oxidation: mechanism and pseudo-kinetics. J Harzard Mater. 2009;161:1010–1016.
  • Urtiaga A, Ortiz I, Anglada A, et al. Kinetic modeling of the electrochemical removal of ammonium and COD from landfill leachates. J Appl Eletrochem. 2012;42:779–786.
  • APHA, AWWA, WPCF. Standard methods for the examination of water and wastewater. 16th ed. Washington (DC): APHA–AWWA–WEF; 1985.
  • Wang MZ, Wu Y, Li BM, et al. Pretreatment of poultry manure anaerobic-digested effluents by electrolysis, centrifugation and autoclaving process for Chlorella vulgaris growth and pollutants removal. Environ Technol. 2015;36:837–843.
  • Lei XH, Maekawa T. Electrochemical treatment of anaerobic digestion effluent using a Ti/Pt-IrO2 electrode. Bioresour Technol. 2007;98:3521–3525.
  • Vlyssides AG, Karlis PK, Rori N, et al. Electrochemical treatment in relation to pH of domestic wastewater using Ti/Pt electrodes. J Hazard Mater. 2002;95:215–226.
  • Lin SH, Wu CL. Electrochemical removal of nitrite and ammonia for aquaculture. Water Res. 1996;30:715–721.
  • Chen GH. Electrochemical technologies in wastewater treatment. Sep Purif Technol. 2004;38:11–41.
  • Bektaş N, Akbulut H, Inan H, et al. Removal of phosphate from aqueous solutions by electro-coagulation. J. Hazard. Mater. 2004;106B:101–105.
  • İrdemez Ş, Yildiz YŞ, Tosunoğlu V. Optimization of phosphate removal from wastewater by electrocoagulation with aluminum plate electrodes. Sep Purif Technol. 2006;52:394–401.
  • Schmalz V, Dittmar T, Haaken D, et al. Electrochemical disinfection of biologically treated wastewater from small treatment systems by using boron-doped diamond (BDD) electrodes – contribution for direct reuse of domestic wastewater. Water Res. 2009;43:5260–5266.
  • Jeong J, Kim C, Yoon J. The effect of electrode material on the generation of oxidants and microbial inactivation in the electrochemical disinfection processes. Water Res. 2009;43:895–901.
  • Diao HF, Li XY, Gu JD, et al. Electron microscopic investigation of the bactericidal action of electrochemical disinfection in comparison with chlorination, ozonation and Fenton reaction. Process Biochem. 2004;39:1421–1426.
  • Furuta T, Tanaka H, Nishiki Y, et al. Legionella inactivation with diamond electrodes. Diamond Relat Mater. 2004;13:2016–2019.
  • Li HN, Zhu XP, Ni JR. Inactivation of Escherichia coli in Na2SO4 electrolyte using boron-doped diamond anode. Electrochimica Acta. 2010;56:448–453.
  • Van Hege K, Verhaege M, Verstraete W. Electro-oxidation abatement of low-salinity reverse osmosis membrane concentrates. Water Res. 2004;38:1550–1558.
  • Ihara I, Umetsu K, Kanamura K, et al. Electrochemical oxidation of the effluent from anaerobic digestion of dairy manure. Bioresour Technol. 2006;97:1360–1364.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.