Institute of Marine Biology and Pharmacology, Ocean College, Zhejiang University, Zhoushan 316021, Zhejiang, PR China.
Ocean Academy, Zhejiang University, Zhoushan 316021, Zhejiang, PR China.
Bioresour Technol. 2021 Jul;331:125045. doi: 10.1016/j.biortech.2021.125045. Epub 2021 Mar 27.
Fixed-bed baffled reactors packed with carbon fiber (CFBR), polyurethane, or non-woven fabrics were developed to support microbial nitrification-denitrification reactions for nitrogen removal from synthetic aquaculture wastewater. The CFBR showed the best performance, with a short hydraulic retention time and low C/N ratio. Microbial communities in the reactor's biofilms and deposited sludge were analyzed using high-throughput sequencing and quantitative polymerase chain reactions. The biofilms efficiently enriched the nitrifying and denitrifying bacteria in the CFBR. Moreover, bacteria capable of denitrification under aerobic conditions were detected in the aerobic chamber biofilm, showing positive correlations with the main nitrifiers and denitrifiers, which provides potential synergistic interactions for simultaneous nitrification-denitrification in the aerobic chamber. A network analysis revealed that the CFBR had more complex cooperative interactions than others. This study provides insights into the influence of different carrier materials on biofilm formation, proving that the CFBR has potential applications in aquaculture wastewater treatment.
固定床挡板式反应器中填充碳纤维(CFBR)、聚氨酯或无纺纤维,以支持微生物硝化-反硝化反应,从而从合成水产养殖废水中去除氮。CFBR 表现出最佳性能,水力停留时间短,C/N 比低。采用高通量测序和定量聚合酶链反应分析了反应器生物膜和沉积污泥中的微生物群落。生物膜有效地富集了 CFBR 中的硝化和反硝化细菌。此外,在好氧室生物膜中检测到了在好氧条件下进行反硝化的细菌,它们与主要的硝化菌和反硝化菌呈正相关,这为好氧室中的同步硝化-反硝化提供了潜在的协同相互作用。网络分析表明,CFBR 的协同相互作用比其他的更复杂。本研究探讨了不同载体材料对生物膜形成的影响,证明 CFBR 在水产养殖废水处理中有潜在的应用。