Combined membrane aeration and filtration for energy- and space-efficient COD removal in water reuse

IF 7.2 2区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL
Marijn J. Timmer , Maria Inês Vaz , Jolien De Paepe , Iris Jiaqi De Corte , Marina E. Perdigão , Adrie J.J. Straathof , Tim Van Winckel , Siegfried E. Vlaeminck
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Abstract

Due to climate change and increasing droughts, wastewater treatment and water reuse are gaining importance. Yet, the state-of-the-art bubble-aerated membrane bioreactor (BA-MBR) faces competitiveness challenges due to its high energy use and maintenance requirements, especially at small scale. This study investigates a novel membrane-aerated MBR (MA-MBR) that integrates membrane aeration and filtration to reduce energy consumption and system footprint, enabling resource-efficient non-potable reuse. The MA-MBR treated greywater for domestic reuse and achieved stable chemical oxygen demand (COD) removal efficiencies up to 95 % at high loading rates (up to 4 g L⁻¹ d⁻¹) and produced effluent with biological oxygen demand (BOD₅) values below 5 mg L⁻¹, meeting stringent reuse standards. Biomass dynamics revealed two distinct forms: biofilm on aeration membranes and flocs in suspension. Coarse bubble scouring facilitated biofilm detachment, enabling solid retention time (SRT) control. Oxidation-reduction potential (ORP) was linked to the biomass detachment efficiency, with negative ORP reducing mixed liquor suspended solids (MLSS) after scouring 5–10 times compared to operation at positive ORP. Reattachment of flocs reduced MLSS levels by 90 % within 60 min. A 25 % lower transmembrane pressure (TMP) in the MA-MBR compared to the BA-MBR after 72 h indicated lower fouling rates. Microbial communities were distinctly different between biofilm and flocs, especially under negative ORP conditions. These findings suggest the MA-MBR as low-footprint, low-fouling alternative for carbon removal from wastewaters with relatively high COD/N-ratios, and may improve resource efficiency for non-potable water reuse, for instance in decentralized source-separation applications.

Abstract Image

复合膜曝气和过滤在水回用中的能源和空间效率去除COD
由于气候变化和日益严重的干旱,废水处理和水回用变得越来越重要。然而,最先进的气泡曝气膜生物反应器(BA-MBR)由于其高能耗和维护要求而面临竞争挑战,特别是在小规模的情况下。本研究研究了一种新型的膜曝气MBR (MA-MBR),它集成了膜曝气和过滤,以减少能源消耗和系统足迹,实现资源高效的非饮用再利用。MA-MBR处理的污水用于家庭回用,在高负荷率下(高达4 g L -⁻¹)实现了高达95%的稳定的化学需氧量(COD)去除效率,并产生了生物需氧量(BOD₅)值低于5 mg L -⁻¹的废水,符合严格的再利用标准。生物量动态显示两种不同的形式:曝气膜上的生物膜和悬浮液中的絮凝体。粗泡冲刷促进生物膜分离,使固体保留时间(SRT)控制。氧化还原电位(ORP)与生物质剥离效率有关,与ORP为正的混合液悬浮物(MLSS)相比,经5 ~ 10次冲刷后,ORP为负的混合液悬浮物(MLSS)被还原。在60分钟内,絮凝体的再附着使MLSS水平降低了90%。72小时后,MA-MBR的跨膜压力(TMP)比BA-MBR低25%,表明污染率更低。微生物群落在生物膜和絮凝体之间存在明显差异,特别是在负ORP条件下。这些发现表明,MA-MBR是一种低足迹、低污染的替代方案,可以从COD/ n比相对较高的废水中去除碳,并且可以提高非饮用水再利用的资源效率,例如在分散的源分离应用中。
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来源期刊
Water Research X
Water Research X Environmental Science-Water Science and Technology
CiteScore
12.30
自引率
1.30%
发文量
19
期刊介绍: Water Research X is a sister journal of Water Research, which follows a Gold Open Access model. It focuses on publishing concise, letter-style research papers, visionary perspectives and editorials, as well as mini-reviews on emerging topics. The Journal invites contributions from researchers worldwide on various aspects of the science and technology related to the human impact on the water cycle, water quality, and its global management.
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