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Applying internal circulation anaerobic reactor for wastewater treatment: a case study in saigon paper mill wastewater treatment plant

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Internal Circulation reactor (IC reactor) is an anaerobic digestive system with the capability to treat high-load Chemical Oxygen Demand (COD) of industrial wastewater (e.g. brewery, potato starch, pulp and paper). IC reactor advantages include of the following: only small areas required, shock load resistance, produces more biogas and uses less energy compared to the Upflow Anaerobic Sludge Blanket (UASB) reactor. BIOPAQ@ICX is an upgrade to BIOPAQ@IC that has higher efficiency, lower volume, able to build from the current anaerobic reactor, and its trial has produced positive results in many different countries and with various types of wastewater. A case study of the wastewater treatment plant at Saigon Paper’s mills shows that the IC reactor COD removal rate is over 80% when the COD is not over 2300 mg/L; Volumetric Load Rate (VLR) is 6-14 kgCOD/m3.day and the removal rate is higher with a higher load and could reach 80% at 14 kgCOD/m3.day; granular sludges settle very well, and the three-phase separator is efficient of preventing sludge from washing out; pH, Total Suspended Solids (TSS), alkalinity, Volatile Fatty Acids (VFA), N-NH4+, P-PO4 3- , Ca2+, SO4 2- were also analysed and indicated that the IC reactor is operating well.
Rocznik
Strony
145--151
Opis fizyczny
Bibliogr. 17 poz.
Twórcy
autor
  • BSc; Department of Environmental Sciences, Saigon University, 273 An Duong Vuong Street, District 5, Ho Chi Minh City 700000, Vietnam
autor
  • PhD; Department of Environmental Sciences, Saigon University, 273 An Duong Vuong Street, District 5, Ho Chi Minh City 700000, Vietnam
Bibliografia
  • [1] Ha, M. B., Yuan, P. S., & Huong, D. T. G. (2016). The use of artificial neural network for modelling coagulation of reactive dyeing wastewater using Cassia Fistula gum. Journal of Environmental Science and Management, 19(2), 1-10.
  • [2] Radaideh, J. A., Al Abdulgader, H., & Barjenbruch, M. (2017). Evaluation of Absorption Process for Heavy Metals Removal Found in Pharmaceutical Wastewater. Journal of Medical Toxicology and Clinical Forensic Medicine, 3(02), 1-12.
  • [3] Ha, M. B. (2018). Decolorization of Suncion Red P2B Solution by Gamma Co-60 Irradiation in the Presence of Hydrogen Peroxide. Journal of Advanced Oxidation Technologies, 21(1), 118-126.
  • [4] Ha, M. B. (2018). Decolorization of Suncion Red P2B Solution by Gamma Co-60 Irradiation in the Presence of Hydrogen Peroxide. Journal of Advanced Oxidation Technologies, 21(1), 118-126.
  • [5] Nguyen, P. T. T., Van Nguyen, P., Truong, H. T. B., & Bui, H. M. (2016). The Formation and Stabilization of Aerobic Granular Sludge in a Sequencing Batch Airlift Reactor for Treating Tapioca-Processing Wastewater. Polish Journal of Environmental Studies, 25(5).
  • [6] Truong, H. T. B., Nguyen, T., Thi, P., & Bui, H. M. (2018). Integration of aerobic granular sludge and membrane filtration for tapioca processing wastewater treatment: fouling mechanism and granular stability. Journal of Water Supply: Research and Technology-Aqua, 67(8), 846-857.
  • [7] Daud, M. K., Rizvi, H., Akram, M. F., Ali, S., Rizwan, M., Nafees, M., & Jin, Z. S. (2018). Review of upflow anaerobic sludge blanket reactor technology: effect of different parameters and developments for domestic wastewater treatment. Journal of Chemistry, 2018.
  • [8] Zhang, G. Y., Deng, C. B., Zhang, J., & Zhu, H. X. (2013). Applications about the internal circulation anaerobic reactor in wastewater treatment industry. Advanced Materials Research, 694, 3264-3268.
  • [9] Zhang, A., Shen, J., & Ni, Y. (2015). Anaerobic digestion for use in the pulp and paper industry and other sectors: an introductory mini-review. BioResources, 10(4), 8750-8769.
  • [10] Jahren, S. J., & Rintala, J. A. (1997). The closure of water circuits by internal thermophilic (55 and 70°C) anaerobic treatment in the thermomechanical pulping process. Water Science and Technology, 35(2), 49-56.
  • [11] Valijanian, E., Tabatabaei, M., Aghbashlo, M., Sulaiman, A., & Chisti, Y. (2018). Biogas Production Systems. Springer.
  • [12] Reith, J. H., Wijffels, R. H., & Barten, H. (2003). Biomethane and bio-hydrogen: status and perspectives of biological methane and hydrogen production. Dutch Biological Hydrogen Foundation.
  • [13] Hou, L., Ji, D., & Zang, L. (2018). Inhibition of Anaerobic Biological Treatment: A Review. IOP Conference Series: Earth and Environmental Science, 112(112), 1-7.
  • [14] Zhu, L. F., Guo, Y. P., Huang, D. D., Tian, Y. e., & Liu, L. L. (2018). Operating Characteristic of IC Reactor Treating Wastewater of Sweet Potato Starch. Advanced Materials Research, 374, 905-908.
  • [15] Cairns, R., & Mead, P. (2017). Performance of a UASB effluent treatment plant treating malt ingredient manufacturing wastewater. Environmental Management and Sustainable Development, 6(2), 198-210.
  • [16] Buchauer, K. (1998). A comparison of two simple titration procedures to determine volatile fatty acids in influents to waste-water and sludge treatment processes. Water SA Pretoria, 24, 49-56.
  • [17] Long, Y., Fang, Y., Shen, D., Feng, H., & Chen, T. (2016). Hydrogen sulfide (H2S) emission control by aerobic sulfate reduction in landfill. Scientific reports, 6, 38103-38103.
Uwagi
PL
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-8e7414f6-485d-44bd-a9f4-9c0337f5d2e4
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