An update on hybrid membrane aerated biofilm reactor technology.

IF 1.9 4区 环境科学与生态学 Q3 ENGINEERING, ENVIRONMENTAL Water Environment Research Pub Date : 2025-04-01 DOI:10.1002/wer.70065
Huanqi He, Avery Lachlann Carlson, Brett Wagner, Cheng Yang, Yi Cao, Mohammed Dilshaad Uzair, Glen T Daigger
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Abstract

The hybrid membrane aerated biofilm reactor (MABR) process combines the advantages of the counter-diffusional biofilm and bubbleless aeration of the MABR with the good bioflocculation and carbon processing capabilities of suspended growth processes. These features result in a process with reduced physical footprint, excellent biological nutrient removal capabilities, potentially reduced greenhouse gas (GHG) emissions, and significantly reduced energy requirements that can be easily retrofitted into existing suspended growth processes. Commercially introduced in the mid-2010s, the demonstrated advantages of the hybrid MABR process are resulting in rapid full-scale adoption. Meanwhile, researchers are advancing knowledge on the hybrid MABR process and revealing potential opportunities for improved performance. This paper summarizes recent findings and identifies areas that can be further developed to advance hybrid MABR process evaluation and development. PRACTITIONER POINTS: Rapid application of the hybrid MABR process is leading to significant new developments that can enhance performance. Sizing MABR for nearly complete nitrification allows significant downsizing of the bioreactor, coupled with excellent nitrogen removal and energy savings. Online exhaust gas % O2 and bulk ammonia concentration can be used to create a soft sensor characterizing changes in biofilm thickness enabling biofilm control to optimize performance. Further advancements through improved aeration control, configurations to achieve partial nitritation and annammox, and achieving granulation offer further significant advances.

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混合膜曝气生物膜反应器技术进展。
混合膜曝气生物膜反应器(MABR)工艺将MABR的反扩散生物膜和无气泡曝气的优点与悬浮生长过程良好的生物絮凝和碳处理能力相结合。这些特点导致该工艺具有减少物理足迹,出色的生物营养去除能力,潜在地减少温室气体(GHG)排放,并显着降低能源需求,可以很容易地改造到现有的悬浮生长过程中。混合MABR工艺于2010年代中期引入商业应用,其优势得到了迅速的全面应用。与此同时,研究人员正在推进混合MABR工艺的知识,并揭示了提高性能的潜在机会。本文总结了最近的发现,并确定了可以进一步发展的领域,以推进混合MABR过程的评估和开发。从业者观点:混合MABR流程的快速应用正在导致能够提高性能的重大新发展。上浆MABR几乎完全硝化允许显著缩小生物反应器,再加上出色的脱氮和节能。在线废气% O2和散装氨浓度可用于创建表征生物膜厚度变化的软传感器,使生物膜控制优化性能。通过改进曝气控制、实现部分硝化和氨氧化的配置以及实现造粒的进一步进展提供了进一步的重大进展。
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来源期刊
Water Environment Research
Water Environment Research 环境科学-工程:环境
CiteScore
6.30
自引率
0.00%
发文量
138
审稿时长
11 months
期刊介绍: Published since 1928, Water Environment Research (WER) is an international multidisciplinary water resource management journal for the dissemination of fundamental and applied research in all scientific and technical areas related to water quality and resource recovery. WER''s goal is to foster communication and interdisciplinary research between water sciences and related fields such as environmental toxicology, agriculture, public and occupational health, microbiology, and ecology. In addition to original research articles, short communications, case studies, reviews, and perspectives are encouraged.
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