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  4. Environmental metrics and trade-off for aeration-driven nitrogen removal in a pilot-scale hybrid membrane-aerated biofilm reactor treating low-C/N municipal wastewater
 
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Environmental metrics and trade-off for aeration-driven nitrogen removal in a pilot-scale hybrid membrane-aerated biofilm reactor treating low-C/N municipal wastewater

Journal
Desalination
Journal Volume
626
Start Page
119954
ISSN
00119164
Date Issued
2026-05-15
Author(s)
Lin, Hsin-Chieh
Wu, Ting-Wei
Lee, Mengshan
Shon, Ho Kyong
CHIA-HUNG HOU  
DOI
10.1016/j.desal.2026.119954
URI
https://www.scopus.com/record/display.uri?eid=2-s2.0-105030442854&origin=resultslist
https://scholars.lib.ntu.edu.tw/handle/123456789/736605
Abstract
Hybrid membrane-aerated biofilm reactor (MABR) has emerged as a promising upgrade for conventional nitrogen removal processes. This pilot-scale study provides a comprehensive technical and environmental performance evaluation of a hybrid MABR treating low-C/N municipal wastewater, benchmarked against a conventional modified Ludzack–Ettinger (MLE) process. The hybrid MABR demonstrated stable oxygen transfer rates of 13.6–14.2 g O2/m2/day without external carbon addition and nitrifying liquid reflux, attaining a total nitrogen (TN) removal rate 3.6 times higher than the MLE system. Results from life cycle assessment (LCA) revealed that the hybrid MABR reduced overall environmental impacts and global warming potential (GWP) by approximately 70% and 75%, respectively, compared with the MLE process. While MABR-related components contributed less than 4% of total environmental impacts, operation under excessively low inlet airflow impaired nitrogen removal, thereby increasing GWP per unit of TN removed. These findings provide, for the first time at pilot scale, quantitatively substantiated evidence of environmental trade-offs between aeration efficiency and treatment capacity, as presented by life-cycle metrics. Scenario analysis further suggests potential environmental improvements through MABR expansion and renewable-energy integration. Microbial analysis also confirmed the stable biofilm-mediated nitrification–denitrification under carbon-limited conditions. Overall, the study provides quantitative insight into the energy–performance–environment nexus of hybrid MABR systems and establishes a framework for low-carbon operation and retrofitting of municipal wastewater treatment plants under low C/N conditions.
Subjects
Bubble-less aeration
Hybrid membrane-aerated biofilm reactor
Life cycle assessment
Low carbon to nitrogen ratio wastewater
Nitrogen removal
Publisher
Elsevier B.V.
Type
journal article

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