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Enhanced efficacy of nitrifying biomass by modified PVA_SB entrapment technique
Authors:Sen Qiao  Xiumei Duan  Jiti Zhou  Yingjun Cheng  Zafar Bhatti
Institution:1. Key Laboratory of Industrial Ecology and Environmental Engineering (Ministry of Education, China), School of Environmental Science and Technology, Dalian University of Technology, Dalian, 116024, People’s Republic of China
2. Division of Resource Conservation and Environmental Protection, Dalian Municipal Development and Reform Commission, Dalian, 116001, People’s Republic of China
3. Safe Drinking Water Branch, Ontario Ministry of the Environment, 2-St. Clair Ave. W, 19 Fl., Toronto, ON, M4V 1L5, Canada
Abstract:In this study, we developed a novel technique for preparing polyvinyl alcohol (PVA) hydrogel as an immobilizing matrix by the addition of sodium bicarbonate. This resulted in an increase in the specific surface area of PVA_sodium bicarbonate (PVA_SB) hydrogel beads to 65.23 m2 g?1 hydrogel beads, which was approximately 85 and 14 % higher than those of normal PVA and PVA_sodium alginate (PVA_SA) hydrogel beads, respectively. The D e value of PVA_SB hydrogel beads was calculated as 7.49 × 10?4 cm2 s?1, which was similar to the D e of PVA_SA hydrogel beads but nearly 38 % higher than that of the normal PVA hydrogel beads. After immobilization with nitrifying biomass, the oxygen uptake rate and the ammonium oxidation rate of nitrifying biomass entrapped in PVA_SB hydrogel beads were determined to be 19.53 mg O2 g MLVSS?1 h?1 and 10.59 mg N g MLVSS?1 h?1, which were 49 and 43 % higher than those of normal PVA hydrogel beads, respectively. Scanning electron microscopy observation of the PVA_SB hydrogel beads demonstrated relatively higher specific surface area and revealed loose microstructure that was considered to provide large spaces for microbial growth. This kind of structure was also considered beneficial for reducing mass transfer resistance and increasing pollutant uptake.
Keywords:
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