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采用创新的可扩展双层膜,在 MBfR 中同时提高硝酸盐去除通量和甲烷利用效率,实现好氧甲烷氧化偶联反硝化。

Simultaneous enhancement of nitrate removal flux and methane utilization efficiency in MBfR for aerobic methane oxidation coupled to denitrification by using an innovative scalable double-layer membrane.

机构信息

School of Civil and Environmental Engineering, Harbin Institute of Technology (Shenzhen), Shenzhen 518055, People's Republic of China.

School of Civil and Environmental Engineering, Harbin Institute of Technology (Shenzhen), Shenzhen 518055, People's Republic of China; Shenzhen Key Laboratory of Water Resource Utilization and Environmental Pollution Control, Shenzhen, 518055, People's Republic of China.

出版信息

Water Res. 2021 Apr 15;194:116936. doi: 10.1016/j.watres.2021.116936. Epub 2021 Feb 16.

Abstract

Endevours on the enhancement of nitrate removal efficiency during methane oxidation coupled with denitrification (AME-D) has always overlooked the role of membrane employed. It would be highly beneficial to enrich the biomass content and to manage biofilm on the membrane, in the utilization of methane and denitrification. In this study, an innovative and scalable double-layer membrane (DLM) was designed and prepared for a membrane biofilm reactor (MBfR), to simultaneously enhance nitrate removal flux and methane utilization efficiency during aerobic methane oxidation coupled with the denitrification (AME-D) process. The DLM allowed quick bacterial attachment and biomass accumulation for biofilm growth, which would be then self-regulated for well distribution of functional microbes on/within the DLM. Upon a high biofilm density of over 70 g-VSS m achieved on the DLM, the methane utilization efficiency of the MBfR was enhanced significantly to over 1.3 times than the control MBfR with conventional polypropylene membrane. The MBfR employed DLM also demonstrated the maximum nitrate removal flux of 740 mg-NO-N m d that was approximately 1.64 times of that in control MBfR at continuous-mode operation. This DLM indeed favored the enrichment of Type II aerobic methanotrophs of Methylocystaceae, and methanol-utilization denitrifiers of Rhodocyclaceae that preferentially utilize methanol as the cross-feeding intermediates to promote the methane utilization efficiency, and thus to enhance the nitrate removal flux. These results raised from new designed DLM confirmed the importance of membrane surface properties on the effectiveness of MBfR, and offered great potential to address challenging problems of MBfRs during engineering application.

摘要

在甲烷氧化耦合反硝化(AME-D)过程中提高硝酸盐去除效率的努力,一直忽视了所使用的膜的作用。在利用甲烷和反硝化的过程中,丰富生物量含量并管理膜上的生物膜,这将是非常有益的。在这项研究中,设计并制备了一种创新的和可扩展的双层膜(DLM),用于膜生物膜反应器(MBfR),以在有氧甲烷氧化耦合反硝化(AME-D)过程中同时提高硝酸盐去除通量和甲烷利用效率。DLM 允许细菌快速附着和生物膜生长的生物量积累,然后通过自我调节,在 DLM 上/内实现功能微生物的良好分布。当 DLM 上的生物膜密度超过 70 g-VSS m 时,MBfR 的甲烷利用效率显著提高,比使用传统聚丙烯膜的对照 MBfR 提高了 1.3 倍以上。采用 DLM 的 MBfR 还在连续运行模式下表现出 740 mg-NO-N m d 的最大硝酸盐去除通量,约为对照 MBfR 的 1.64 倍。这种 DLM 确实有利于富集 II 型好氧甲烷营养菌(Methylocystaceae)和甲醇利用反硝化菌(Rhodocyclaceae),它们优先利用甲醇作为交叉喂养中间体,以促进甲烷利用效率,从而提高硝酸盐去除通量。这些由新设计的 DLM 得出的结果证实了膜表面特性对 MBfR 有效性的重要性,并为解决工程应用中 MBfR 的挑战性问题提供了巨大的潜力。

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