Department of Chemical Engineering, Khalifa University of Science and Technology, Masdar City campus, P.O. Box 54224, Abu Dhabi, United Arab Emirates.
Department of Chemical Engineering, Khalifa University of Science and Technology, Masdar City campus, P.O. Box 54224, Abu Dhabi, United Arab Emirates.
J Hazard Mater. 2019 May 15;370:172-195. doi: 10.1016/j.jhazmat.2018.06.025. Epub 2018 Jun 12.
Research and development activities on standalone systems of membrane bioreactors and electrochemical reactors for wastewater treatment have been intensified recently. However, several challenges are still being faced during the operation of these reactors. The current challenges associated with the operation of standalone MBR and electrochemical reactors include: membrane fouling in MBR, set-backs from operational errors and conditions, energy consumption in electrochemical systems, high cost requirement, and the need for simplified models. The advantage of this review is to present the most critical challenges and opportunities. These challenges have necessitated the design of MBR derivatives such as anaerobic MBR (AnMBR), osmotic MBR (OMBR), biofilm MBR (BF-MBR), membrane aerated biofilm reactor (MABR), and magnetically-enhanced systems. Likewise, electrochemical reactors with different configurations such as parallel, cylindrical, rotating impeller-electrode, packed bed, and moving particle configurations have emerged. One of the most effective approaches towards reducing energy consumption and membrane fouling rate is the integration of MBR with low-voltage electrochemical processes in an electrically-enhanced membrane bioreactor (eMBR). Meanwhile, research on eMBR modeling and sludge reuse is limited. Future trends should focus on novel/fresh concepts such as electrically-enhanced AnMBRs, electrically-enhanced OMBRs, and coupled systems with microbial fuel cells to further improve energy efficiency and effluent quality.
最近,独立的膜生物反应器和电化学反应器在废水处理方面的研发活动日益活跃。然而,在这些反应器的运行过程中,仍然面临着一些挑战。目前,独立的 MBR 和电化学反应器在运行中面临的挑战包括:MBR 中的膜污染、操作失误和条件带来的倒退、电化学系统的能源消耗、高成本要求以及简化模型的需求。本综述的优势在于提出了最关键的挑战和机遇。这些挑战促使设计了 MBR 的衍生物,如厌氧 MBR(AnMBR)、渗透 MBR(OMBR)、生物膜 MBR(BF-MBR)、膜曝气生物膜反应器(MABR)和磁增强系统。同样,出现了具有不同配置的电化学反应器,如平行、圆柱、旋转叶轮电极、填充床和移动颗粒配置。在电增强膜生物反应器(eMBR)中,将 MBR 与低电压电化学过程集成是降低能耗和膜污染速率的最有效方法之一。同时,对 eMBR 建模和污泥再利用的研究有限。未来的趋势应该集中在新颖/新颖的概念上,例如电增强 AnMBR、电增强 OMBR 以及与微生物燃料电池耦合的系统,以进一步提高能源效率和出水质量。