Beet sugar wastewater treatment in a hybrid biological reactor: operational optimization and kinetic coefficients calculation

Document Type : Research Paper

Authors

1 Department of Chemical Engineering, Faculty of Engineering, University of Isfahan, Iran

2 Department of Chemical and Petroleum Engineering, Sharif University of Technology, Tehran, Iran

Abstract

The lab-scale treatment of strong beet sugar wastewater was carried out with a combination of a moving bed biofilm reactor (MBBR) and upflow sludge blanket filtration (USBF). The hybrid bioreactor was filled (35% of volume) with industrial packings made of polyethylene with an effective surface area of 480 m2/m3 to provide the necessary surface for biofilm growth. The effect of various operating conditions, including hydraulic retention time (HRT = 12-20 hr), biomass concentration (6000– 8000 mg/L), and initial chemical oxygen demand (COD) (3000-5000 mg/L) level, were assessed on the overall COD removal efficiency using response surface methodology (RSM). The optimal conditions were an HRT = 20 hr, biomass concentration = 8000 mg/L, an initial COD = 3000 mg/L, and an organic loading rate (OLR) of 3.6 kg COD/m3.day under which the COD removal efficiency was 98%. The modified Stover–Kincannon model was applied to predict the biokinetic coefficients for COD removal; the saturation constant (KB) and the maximum total substrate utilization rate (Umax) were in the range 58-101.6 and 57.5- 97 as g/L.day, respectively.  The results revealed that raising HRT or biomass concentration promoted COD removal while increasing the initial COD deteriorated the removal performance. 

Graphical Abstract

Beet sugar wastewater treatment in a hybrid biological reactor: operational optimization and kinetic coefficients calculation

Keywords

Main Subjects


[1] Saravanan, A., Senthil Kumar. P., Jeevanantham, S., Karishma, S., Tajsabreen, B., Yaashikaa, R., Reshma, B. (2021). Effective water/wastewater treatment methodologies for toxic pollutants removal: Processes and applications towards sustainable development. Chemosphere, 280(1), 130-141.
https://doi.org/10.1016/j.chemosphere.2021.130595
[2] Zohaib Nawaz, M., Bilal, M., Tariq, A., Iqbal, N., Alghamdi, H. A., Cheng, H. (2020). Bio-purification of sugar industry wastewater and production of high-value industrial products with a zero-waste concept. Critical Reviews in Food Science and Nutrition, 61(21), 3537-3554. https://doi.org/10.1080/10408398.2020.1802696
[3] Panhwar, A. (2021). Chemical treatment options of wastewater from sugarcane industry and its priority parameters comparision as per smartrules of sindeh environmental protection agency. Pakistan Journal of Science, 73(1), 12-18.‏
[4] Asaithambi, P., Matheswaran, M. (2016). Electrochemical treatment of simulated sugar industrial effluent: optimization and modeling using a response surface methodology. Arabian Journal of Chemistry, 9(12), 981-987.‏ doi.org/10.1016/j.arabjc.2011.10.004
[5] Farhadian, M., Borghei, M., Umrania, V. (2007). Treatment of beet sugar wastewater by UAFB bioprocess. Bioresource Technology, 98(16), 3080-3083. https://doi.org/10.1016/j.biortech.2006.10.039
[6] Yadav, M., Yadav, R. K., Gole, V. L. (2021). Sugar industry wastewater treatment: Current practices and advances. In Microbial Ecology of Wastewater Treatment Plants (pp. 151-174). Elsevier.
[7] Dębowski, M., Zieliński, M. (2022). Wastewater Treatment and Biogas Production: Innovative Technologies, Research and Development Directions. Energies, 15(6), 2122.-2133.
[8] Abdollahzade Sharghi, E, Ghasemian, P., Davarpanah, L., Faridizad, G. (2023). Investigation of a membrane bioreactor’s performances in treating sunflower oil refinery wastewater containing high oleic acid at different SRTs. Bioprocess and Biosystems Engineering, 46(1) 1-13.
‏       https://doi.org/10.1007/s00449-023-02923-z
[9] Noroozi, A., Farhadian, M., Solaimanynazar, A. (2016). Kinetic coefficients for the domestic wastewater treatment using hybrid activated sludge process. Desalination and Water Treatment, 57(10), 4439-4446.‏
https://doi.org/10.1080/19443994.2014.991943
[10] Mahvi, A., Nabizadeh, R., Pishrafti, M., Zarei, T. (2008). Evaluation of single stage USBF in removal of nitrogen and phosphorus from wastewater. European Journal of Scientific Research, 23(2), 204-211.
       https://doi.org/10.1006/12743994.2008.792083
[11] Rodriguez-Sanchez, A., Munoz-Palazon, B., Hurtado-Martinez, M., Mikola, A., Gonzalez-Lopez, J., Vahala, R., Gonzalez-Martinez, A. (2020). Analysis of microbial communities involved in organic matter and nitrogen removal in a full-scale moving bed biofilm reactor located near the Polar Arctic Circle. International Biodeterioration and Biodegradation, 146(5), 1048-1057.
[12] Qaderi, F., Sayahzadeh, A. H., Azizi, M. (2018). Efficiency optimization of petroleum wastewater treatment by using of serial moving bed biofilm reactors. Journal of Cleaner Production, 192(6), 665-677.‏
[13] Anterrieu, S., Quadri, L., Geurkink, B., Dinkla, I., Bengtsson, S., Arcos-Hernandez, M., Werker, A. (2014). Integration of biopolymer production with process water treatment at a sugar factory. New Biotechnology, 31(4), 308-323.‏
[14] Di Trapani, D., Christensso, M., Ødegaard, H. (2011). Hybrid activated sludge/biofilm process for the treatment of municipal wastewater in a cold climate region: a case study. Water Science and Technology, 63(6), 1121-1129.‏
https://doi.org/10.2166/wst.2011.350
[15] Meena, M., Yadav, G., Sonigra, P., Shah, P. (2022). A comprehensive review on application of bioreactor for industrial wastewater treatment. Letters in Applied Microbiology, 74(2), 131-158.‏
       https://doi.org/10.1111/lam.13557
[16] Chelladurai, S., Murugan, K., Ray, P., Upadhyaya, M., Narasimharaj, V., Gnanasekaran, S. (2021). Optimization of process parameters using response surface methodology: A review. Materials Today: Proceedings, 37(5), 1301-1304.‏
[17] Boutra, B., Sebti, A., Trari, M. (2022). Response surface methodology and artificial neural network for optimization and modeling the photodegradation of organic pollutants in water. International Journal of Environmental Science and Technology, 19(11), 11263-11278.‏ https://doi.org/10.1007/s13762-021-03875-1
[18] Myers, H., Montgomery, C.,  Anderson Cook, M. (2009). Response surface methodology: process and product optimization using designed experiments. John Wiley and Sons. https://doi.org/10.1001/12743974.2009.792183
[19] Hadiyanto, H., Christwardana, M., Pratiwi, Z., Purwanto, P., Sudarno, S., Haryani, K., Hoang, T. (2022). Response surface optimization of microalgae microbial fuel cell (MMFC) enhanced by yeast immobilization for bioelectricity production. Chemosphere, 287(9), 132-145.‏
https://doi.org/10.1016/j.chemosphere.2021.132275
[20] Rodríguez-Solana, R., Salgado, M., Domínguez, M., Cortés-Diéguez, S. (2014). Estragole quantity optimization from fennel seeds by supercritical fluid extraction (carbon dioxide–methanol) using a Box–Behnken design. Characterization of fennel extracts. Industrial Crops and Products, 60(5), 186-192.‏ https://doi.org/10.1016/j.indcrop.2014.05.027
[21] Massart, D. L., Vandeginste, B. G., Buydens, L. M., Lewi, P. J., Smeyers-Verbeke, J., Jong, S. D. (1998). Handbook of chemometrics and qualimetrics. Elsevier Science Inc.
[22] American Public Health Association. (1926). Standard methods for the examination of water and wastewater (Vol. 6). American Public Health Association.
[23] Aqeel, H., Basuvaraj, M., Liss, N. (2021). Microbial population selection in integrated fixed-film sequencing batch reactors operated with different lengths of oxic and anoxic conditions. Environmental Science: Water Research and Technology, 7(5), 913-926.‏ https://doi.org/10.1039/D0EW01022G
[24] Madan, S., Madan, R., Hussain, A. (2022). Advancement in biological wastewater treatment using hybrid moving bed biofilm reactor (MBBR): a review. Applied Water Science, 12(6), 141-150.
https://doi.org/10.1007/s13201-022-01662-y
[25] Yu, H., Wilson, F., Tay, H. (1998). Kinetic analysis of an anaerobic filter treating soybean wastewater. Water Research, 32(11), 3341-3352.‏
https://doi.org/10.1016/S0043-1354(98)00102-X
[26] Kavoosi, A., Borgheei, M. (2005). The use of light expanded clay aggregates as a biological support in wastewater treatment. Journal of Water and Wastewater, 53(2), 37-47. 
https://doi.org/10.1002/12783974.2005.792883
[27] Borghei, M., Sharbatmaleki, M., Pourrezaie, P., Borghei, T. (2008). Kinetics of organic removal in fixed-bed aerobic biological reactor. Bioresource Technology, 99(5), 1118-1124.‏