Yıl: 2021 Cilt: 4 Sayı: 2 Sayfa Aralığı: 140 - 144 Metin Dili: İngilizce DOI: 10.35208/ert.845761 İndeks Tarihi: 29-07-2022

Investigation of microalgal treatment for poultry slaughterhouse wastewater after the dissolved air flotation unit

Öz:
Meat and meat products are some of the primary consumption products required for the continuation of life. The world population accessed over 7.5 billion that means the demand for food is increasing every day. Slaughterhouses and integrated meat facilities are being rapidly developed and established to meet meat and meat product requirements. In slaughterhouse poultry plants, high amounts of water are utilized for the meatpacking process. The poultry slaughterhouse wastewaters contain high levels of organic solids such as fat, blood, suspended matter, and dissolved protein, which can be treated using physical, chemical, and biological treatment methods. In this study, the treatment of poultry slaughterhouse wastewater preliminarily treated by dissolved air flotation, with microalgae culture (Chlorella Vulgaris) development, unlike traditional treatments, was investigated. Chemical oxygen demand and total suspended solids parameters for wastewater treatment have been monitored for 15 days of incubation. 0.8, 4, 8, 12, and 20% by volume algae were applied for slaughterhouse wastewater, and the optimum amount of algal inoculation was determined after 15 days. When the removal efficiencies were examined, the most appropriate amount of inoculation rate with 76 % chemical oxygen demand removal and 87% algal growth (as total suspended solids) was selected as 12%.
Anahtar Kelime: Chlorella vulgaris microalgae poultry slaughterhouse wastewater

Belge Türü: Makale Makale Türü: Araştırma Makalesi Erişim Türü: Erişime Açık
  • [1]. OECD-FAO, OECD-FAO Agricultural Outlook 2016–2025: Meats, 2016.
  • [2]. http://www.besd-bir.org/istatistikler, İSTATİSTİKLER - BESD-BİR Beyaz Et Sanayicileri ve Damızlıkçıları Birliği Derneği, (accessed 18 February 2020).
  • [3]. I.H. Franke-Whittle and H. Insam, “Treatment alternatives of slaughterhouse wastes, and their effect on the inactivation of different pathogens: A review,” Critical Reviews in Microbiology, Vol. 39, pp. 139–151, 2013.
  • [4]. G.S. Mittal, “Treatment of wastewater from abattoirs before land application - A review,” Bioresource Technology, Vol. 97, pp. 1119–1135, 2006.
  • [5]. C.F. Bustillo-Lecompte and M. Mehrvar, “Treatment of an actual slaughterhouse wastewater by integration of biological and advanced oxidation processes: Modeling, optimization, and cost-effectiveness analysis,” Journal of Environmental Management, Vol. 182, pp. 651–666, 2016.
  • [6]. I. Ruiz, M.C. Veiga, P. de Santiago and R. Blázquez, “Treatment of slaughterhouse wastewater in a UASB reactor and an anaerobic filter,” Bioresource Technology, Vol. 60, pp. 251–258, 1997.
  • [7]. R. Davarnejad and S. Nasiri, “Slaughterhouse wastewater treatment using an advanced oxidation process: Optimization study,” Environmental Pollution, Vol. 223, pp. 1–10, 2017.
  • [8]. W. Cao and M. Mehrvar, “Slaughterhouse wastewater treatment by combined anaerobic baffled reactor and UV/H2O2 processes,” Chemical Engineering Research and Design, Vol. 89, pp. 1136–1143, 2011.
  • [9]. D.I. Massé and L. Masse, “The effect of temperature on slaughterhouse wastewater treatment in anaerobic sequencing batch reactors,” Bioresource Technology, Vol. 76, pp. 91–98, 2001.
  • [10]. A.R. Rajab, M.R. Salim, J. Sohaili, A.N. Anuar, Salmiati and S.K. Lakkaboyana, “Performance of integrated anaerobic/aerobic sequencing batch reactor treating poultry slaughterhouse wastewater,” Chemical Engineering Journal, Vol. 313, pp. 967–974,2017.
  • [11]. K.V. Naderi, C.F. Bustillo-Lecompte, M. Mehrvar and M.J. Abdekhodaie, “Combined UV-C/H 2 O 2 -VUV processes for the treatment of an actual slaughterhouse wastewater,” Journal of Environmental Science and Health, Part B, Vol. 52, pp. 314–325, 2017.
  • [12]. L. Barsanti and P. Gualtieri, Algae: anatomy, biochemistry, and biotechnology, 44-0924-44- 0924, CRC Press, 2013.
  • [13]. C.U. Ugwu, H. Aoyagi and H. Uchiyama, “Photobioreactors for mass cultivation of algae,” Bioresource Technology, Vol. 99, pp. 4021–4028, 2008.
  • [14]. B. Bitton and L. Lustigman, “Algae biotechnology,” Vol. 2821, pp. 189 – 203, 1991.
  • [15]. L. Wang, M. Min, Y. Li, P. Chen, Y. Chen, Y. Liu, Y. Wang and R. Ruan, “Cultivation of Green Algae Chlorella sp. in Different Wastewaters from Municipal Wastewater Treatment Plant,” Applied Biochemistry and Biotechnology, Vol. 162, pp. 1174–1186, 2010.
  • [16]. T.E. Murphy and H. Berberoĝlu, “Effect of algae pigmentation on photobioreactor productivity and scale-up: A light transfer perspective,” Journal of Quantitative Spectroscopy and Radiative Transfer, Vol. 112, pp. 2826–2834, 2011.
  • [17]. R.N. Singh and S. Sharma, “Development of suitable photobioreactor for algae production - A review,” Renewable & Sustainable Energy Reviews, Vol. 16, pp. 2347–2353, 2012.
  • [18]. D. Amrei and P.F. Shariati, “A novel open raceway pond design for microalgae growth and nutrients removal from treated slaughterhouse wastewater,” Pollution, Vol. 4, pp. 103–110, 2018.
  • [19]. T. Cheng, C.H. Wei and T.O. Leiknes, “Polishing of anaerobic secondary effluent by Chlorella vulgaris under low light intensity,” Bioresource Technology, Vol. 241, pp. 360–368, 2017.
  • [20]. M.F. Blair, B. Kokabian and V.G. Gude, “Light and growth medium effect on Chlorella vulgaris biomass production,” Journal of Environmental Chemical Engineering, Vol. 2, pp. 665–674, 2014.
  • [21]. S. Zhu, S. Feng, Z. Xu, L. Qin, C. Shang, P. Feng, Z. Wang and Z. Yuan, “Cultivation of Chlorella vulgaris on unsterilized dairy-derived liquid digestate for simultaneous biofuels feedstock production and pollutant removal,” Bioresource Technology, Vol. 285, pp. 121353, 2019.
  • [22]. E.B. Sydney, T.E. da Silva, A. Tokarski, A.C. Novak, J.C. de Carvalho, A.L. Woiciecohwski, C. Larroche and C.R. Soccol, “Screening of microalgae with potential for biodiesel production and nutrient removal from treated domestic sewage,” Applied Energy, Vol. 88, pp. 3291–3294, 2011.
  • [23]. APHA, 2540 SOLIDS (2017), in: Stand. Methods Exam. Water Wastewater, 23rd ed., 2017.
  • [24]. C.M. Drapcho and D.E. Brune, “The partitioned aquaculture system: Impact of design and environmental parameters on algal productivity and photosynthetic oxygen production,” Aquacultural Engineering, Vol. 21, pp. 151–168, 2000.
  • [25]. Q. Lu, W. Zhou, M. Min, X. Ma, C. Chandra, Y.T.T. Doan, Y. Ma, H. Zheng, S. Cheng, R. Griffith, P. Chen, C. Chen, P.E. Urriola, G.C. Shurson, H.R. Gislerød and R. Ruan, “Growing Chlorella sp. on meat processing wastewater for nutrient removal and biomass production,” Bioresource Technology, Vol. 198, pp. 189–197, 2015.
  • [26]. L. Wang, M. Min, Y. Li, P. Chen, Y. Chen, Y. Liu, Y. Wang and R. Ruan, “Cultivation of green algae Chlorella sp. in different wastewaters from municipal wastewater treatment plant,” Applied Biochemistry and Biotechnology, Vol. 162, pp. 1174–1186, 2010.
  • [27]. R. Azam, R. Kothari, H.M. Singh, S. Ahmad, V. Ashokkumar and V. V Tyagi, “Production of algal biomass for its biochemical profile using slaughterhouse wastewater for treatment under axenic conditions,” Bioresource Technology, Vol. 306, pp. 123116, 2020.
  • [28]. E. Taşkan, “Performance of mixed algae for treatment of slaughterhouse wastewater and microbial community analysis,” Environmental Science and Pollution Research, Vol. 23, pp. 20474–20482, 2016.
  • [29]. D. Hernández, B. Riaño, M. Coca, M. Solana, A. Bertucco and M.C. García-González, “Microalgae cultivation in high rate algal ponds using slaughterhouse wastewater for biofuel applications,” Chemical Engineering Journal, Vol. 285, pp. 449–458, 2016.
  • [30]. Z. Kadhim, “Evaluation of Microalgae for Secondary and Tertiary Wastewater Treatment,” Master in Applied Science, Department of Civil and Environmental Engineering Carleton University, 2014.
  • [31]. K. Larsdotter, “Wastewater Treatment with Microalgae-A Literature Review,” VATTEN, Vol. 62, pp. 31–38, 2006.
  • [32]. M.T. Myint, A. Ghassemi and N. Nirmalakhandan, “A generic stoichiometric equation for microalgae-microorganism nexus by using clarified domestic wastewater as growth medium,” Desalination and Water Treatment, Vol. 51, pp. 6632–6640, 2013.
  • [33]. Y. Su, A. Mennerich and B. Urban, “Municipal wastewater treatment and biomass accumulation with a wastewater-born and settleable algal-bacterial culture,” Water Research, Vol. 45, pp. 3351–3358, 2011.
  • [34]. P.G. Stephenson, C.M. Moore, M.J. Terry, M. V. Zubkov and T.S. Bibby, “Improving photosynthesis for algal biofuels: Toward a green revolution,” Trends in Biotechnology, Vol. 29, pp. 615–623, 2011.
  • [35]. A. Otondo, B. Kokabian, S. Stuart-Dahl and V.G. Gude, “Energetic evaluation of wastewater treatment using microalgae, Chlorella vulgaris,” Journal of Environmental Chemical Engineering, Vol. 6, pp. 3213–3222, 2018.
  • [36]. S. Hongyang, Z. Yalei, Z. Chunmin, Z. Xuefei and L. Jinpeng, “Cultivation of Chlorella pyrenoidosa in soybean processing wastewater,” Bioresource Technology, Vol. 102, pp. 9884–9890, 2011.
  • [37]. Republic of Turkey Ministry of Environment and Urbanisation, Regulation of Water Pollution and Control, Ankara, 2004.
  • [38]. F.G. Acién Fernández, J.M. Fernández Sevilla and E. Molina Grima, “Costs Analysis of Microalgae Production, Biofuels from Algae,” Elsevier B.V., Second Edition, 551-566, 2019.
APA AKSU M, Tanattı P, ERDEN B, SENGİL İ (2021). Investigation of microalgal treatment for poultry slaughterhouse wastewater after the dissolved air flotation unit. , 140 - 144. 10.35208/ert.845761
Chicago AKSU MERYEM,Tanattı Pınar N.,ERDEN BÜSRA,SENGİL İ.AYHAN Investigation of microalgal treatment for poultry slaughterhouse wastewater after the dissolved air flotation unit. (2021): 140 - 144. 10.35208/ert.845761
MLA AKSU MERYEM,Tanattı Pınar N.,ERDEN BÜSRA,SENGİL İ.AYHAN Investigation of microalgal treatment for poultry slaughterhouse wastewater after the dissolved air flotation unit. , 2021, ss.140 - 144. 10.35208/ert.845761
AMA AKSU M,Tanattı P,ERDEN B,SENGİL İ Investigation of microalgal treatment for poultry slaughterhouse wastewater after the dissolved air flotation unit. . 2021; 140 - 144. 10.35208/ert.845761
Vancouver AKSU M,Tanattı P,ERDEN B,SENGİL İ Investigation of microalgal treatment for poultry slaughterhouse wastewater after the dissolved air flotation unit. . 2021; 140 - 144. 10.35208/ert.845761
IEEE AKSU M,Tanattı P,ERDEN B,SENGİL İ "Investigation of microalgal treatment for poultry slaughterhouse wastewater after the dissolved air flotation unit." , ss.140 - 144, 2021. 10.35208/ert.845761
ISNAD AKSU, MERYEM vd. "Investigation of microalgal treatment for poultry slaughterhouse wastewater after the dissolved air flotation unit". (2021), 140-144. https://doi.org/10.35208/ert.845761
APA AKSU M, Tanattı P, ERDEN B, SENGİL İ (2021). Investigation of microalgal treatment for poultry slaughterhouse wastewater after the dissolved air flotation unit. Environmental Research & Technology, 4(2), 140 - 144. 10.35208/ert.845761
Chicago AKSU MERYEM,Tanattı Pınar N.,ERDEN BÜSRA,SENGİL İ.AYHAN Investigation of microalgal treatment for poultry slaughterhouse wastewater after the dissolved air flotation unit. Environmental Research & Technology 4, no.2 (2021): 140 - 144. 10.35208/ert.845761
MLA AKSU MERYEM,Tanattı Pınar N.,ERDEN BÜSRA,SENGİL İ.AYHAN Investigation of microalgal treatment for poultry slaughterhouse wastewater after the dissolved air flotation unit. Environmental Research & Technology, vol.4, no.2, 2021, ss.140 - 144. 10.35208/ert.845761
AMA AKSU M,Tanattı P,ERDEN B,SENGİL İ Investigation of microalgal treatment for poultry slaughterhouse wastewater after the dissolved air flotation unit. Environmental Research & Technology. 2021; 4(2): 140 - 144. 10.35208/ert.845761
Vancouver AKSU M,Tanattı P,ERDEN B,SENGİL İ Investigation of microalgal treatment for poultry slaughterhouse wastewater after the dissolved air flotation unit. Environmental Research & Technology. 2021; 4(2): 140 - 144. 10.35208/ert.845761
IEEE AKSU M,Tanattı P,ERDEN B,SENGİL İ "Investigation of microalgal treatment for poultry slaughterhouse wastewater after the dissolved air flotation unit." Environmental Research & Technology, 4, ss.140 - 144, 2021. 10.35208/ert.845761
ISNAD AKSU, MERYEM vd. "Investigation of microalgal treatment for poultry slaughterhouse wastewater after the dissolved air flotation unit". Environmental Research & Technology 4/2 (2021), 140-144. https://doi.org/10.35208/ert.845761