Exploring Aeration Strategies for Enhanced Simultaneous Nitrification and Denitrification in Membrane Aerated Bioreactors: A Computational Approach.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-08-07 DOI:10.1007/s11538-024-01343-8
Maryam Ghasemi, Sheng Chang, Sivabal Sivaloganathan
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Abstract

In this study we employ computational methods to investigate the influence of aeration strategies on simultaneous nitrification-denitrification processes. Specifically, we explore the impact of periodic and intermittent aeration on denitrification rates, which typically lag behind nitrification rates under identical environmental conditions. A two-dimensional deterministic multi-scale model is employed to elucidate the fundamental processes governing the behavior of membrane aerated biofilm reactors (MABRs). We aim to identify key factors that promote denitrification under varying aeration strategies. Our findings indicate that the concentration of oxygen during the off phase and the duration of the off interval play crucial roles in controlling denitrification. Complete discontinuation of oxygen is not advisable, as it inhibits the formation of anaerobic heterotrophic bacteria, thereby impeding denitrification. Extending the length of the off interval, however, enhances denitrification. Furthermore, we demonstrate that the initial inoculation of the substratum (membrane in this study) influences substrate degradation under periodic aeration, with implications for both nitrification and denitrification. Comparison between continuous and periodic/intermittent aeration scenarios reveals that the latter can extend the operational cycle of MABRs. This extension is attributed to relatively low biofilm growth rates associated with non-continuous aeration strategies. Consequently, our study provides a comprehensive understanding of the intricate interplay between aeration strategies and simultaneous nitrification-denitrification in MABRs. The insights presented herein can contribute significantly to the optimization of MABR performance in wastewater treatment applications.

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探索膜充气生物反应器中强化同时硝化和反硝化的曝气策略:计算方法。
在本研究中,我们采用计算方法研究了曝气策略对硝化-反硝化过程的影响。具体来说,我们探讨了周期性和间歇性曝气对脱硝速率的影响,在相同的环境条件下,脱硝速率通常落后于硝化速率。我们采用了一个二维确定性多尺度模型来阐明膜充气生物膜反应器(MABRs)行为的基本过程。我们的目标是找出在不同曝气策略下促进反硝化的关键因素。我们的研究结果表明,关闭阶段的氧气浓度和关闭间隔时间在控制反硝化过程中起着至关重要的作用。完全停止供氧并不可取,因为这会抑制厌氧异养细菌的形成,从而阻碍反硝化作用。然而,延长断氧间隔时间则能增强反硝化作用。此外,我们还证明,在周期性曝气条件下,基质(本研究中为膜)的初始接种会影响基质降解,从而对硝化和反硝化产生影响。对连续曝气和定期/间歇曝气方案进行比较后发现,后者可延长人与生物圈反应器的运行周期。之所以能延长运行周期,是因为非连续曝气策略的生物膜生长率相对较低。因此,我们的研究提供了对 MABRs 中曝气策略与同时硝化-反硝化之间错综复杂的相互作用的全面理解。本文提出的见解可大大有助于优化 MABR 在污水处理应用中的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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