曝气
氧化剂
锰
陶瓷膜
化学工程
水处理
化学
活性炭
饮用水净化
膜
环境工程
材料科学
环境科学
冶金
吸附
生物化学
有机化学
工程类
作者
Wei Song,Zhitian Peng,Jiawan Li,Xiaokai Wang,Caixia Fu,Xing Du,Kunyan Kuang,Ziyuan Wang,Wenjun Wang,Zhiwei Zhao
标识
DOI:10.1016/j.jhazmat.2024.134827
摘要
In our work, a gravity-driven ceramic membrane bioreactor (GDCMBR) was developed to remove Mn2+ and NH3-N simultaneously through the birnessite water purification layer in-situ construction on the ceramic membrane due to chemical pre-oxidation (powdered activated carbon (PAC)-MnOx). Considering the trade-off of biofouling and water production, the daily intermittent short-term vertical aeration mode was involving to balance this contradiction with the excellent water purification and improved membrane permeability. And the GDCMBR permeability of operation flux was improved for 5-7 LHM with intermittent short-term vertical aeration. Furthermore, only ~7% irreversible membrane resistance (Rir) also confirmed the improved membrane permeability with intermittent short-term vertical aeration. And some manganese oxidizing bacteria (MnOB) and ammonia oxidizing bacteria (AOB) species at genus level were identified during long-term operation with the contact circulating flowing raw water, resulting in the better Mn2+ and NH3-N removal efficiency. Additionally, the nano-flower-like birnessite water purification layer was verified in ceramsite@PAC-MnOx coupled GDCMBR, which evolute into a porous flake-like structure with the increasing intermittent short-term aeration duration. Therefore, the sustainable and effective intermittent short-term aeration mode in ceramsite@PAC-MnOx coupled GDCMBR could improve the membrane permeability with the satisfactory groundwater purification efficiency, as well as providing an energy-efficient strategy for membrane technologies applications in water supply safety. A gravity-driven ceramic membrane reactor (GDCMBR) was developed to remove Mn2+ and NH3-N simultaneously based on the in-situ construction of birnessite water purification layer on the ceramic membrane due to chemical pre-oxidation (powdered activated carbon (PAC)-MnOx). However, considering the trade-off of biofouling and water production efficiency in water purification layer, the daily intermittent short-term vertical aeration mode was involving to balance this contradiction with the excellent water purification and improved membrane permeability. And ceramsite@PAC-MnOx coupled GDCMBR could improve membrane permeability with satisfactory groundwater purification effect, as well as providing an energy-efficient strategy for membrane technologies applications in water supply safety.
科研通智能强力驱动
Strongly Powered by AbleSci AI