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Influences of Longitudinal Heterogeneity on Nitrous Oxide Production from Membrane-Aerated Biofilm Reactor: A Modeling Perspective

机译:纵向异质性对膜充气生物膜反应器中氧化氮产生的影响:造型视角

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摘要

As a promising technology for sustainable nitrogen removal from wastewater, the membrane-aerated biofilm reactors (MABRs) performing autotrophic deammonification are faced with the problem of unwanted production of nitrous oxide (N_2O, a potent greenhouse gas). As a common tool to study N_2O production from such an MABR, the traditional one-dimensional modeling approach fails to simulate the existence of longitudinal gradients in the reactor and therefore might render N_2O production significantly deviated from reality. To this end, this work aims to study the influences of key longitudinal gradients (i.e., in oxygen, liquid-phase components, and biofilm thickness) on the N_2O production from a typical MABR performing autotrophic deammonification by applying a modified version of a newly developed compartmental model. Through comparing the modeling results of different reactor configurations, this work reveals that the single impact of the longitudinal gradients studied on the N_2O production from the MABR follows the order: oxygen (significant) > liquid-phase components (slight) > biofilm thickness (almost none). When multiple longitudinal gradients are present, they become correlated and would jointly influence the N_2O production and nitrogen removal of the MABR. The results also show the need for multispot measurements to get an accurate representation of spatial biofilm features of the MABR configuration with the membrane lumen designed/operated as a plug flow reactor. While the traditional modeling approach is acceptable to evaluate the nitrogen removal in most cases, it might overestimate or underestimate the N_2O production from the MABR with at least one of the longitudinal gradients in oxygen and liquid-phase components. For such an MABR, the longitudinal heterogeneity in biofilm thickness and the number of biofilm thickness classes to be included in the model would also make a difference to the simulation results, especially the N_2O production. The work also proposes that under the studied conditions, proper design/operation of the MABR in consideration of longitudinal heterogeneity has the theoretical potential of reducing the N_2O production by 77% without significantly compromising the nitrogen removal.
机译:作为对废水可持续氮的可持续氮的有希望的技术,膜充气生物膜反应器(MABR)表现为肌肤营养的脱氨酸,面临着不需要的氧化亚氮(N_2O,有效的温室气体)的问题。作为从这样的MABR研究N_2O生产的常见工具,传统的一维建模方法未能模拟反应器中的纵向梯度的存在,因此可能使N_2O产生显着偏离现实。为此,这项工作旨在通过应用新开发的改进版本,研究关键纵向梯度(即,氧气相致氧,生物膜厚度)对N_2O产生的影响,所述典型的MABR通过应用改进的新开发的改进版本隔间模型。通过比较不同反应器配置的建模结果,这项工作揭示了研究的纵向梯度从MABR中研究的纵向梯度的单一冲击下列顺序:氧气(显着)>液相组分(轻微)>生物膜厚度(几乎没有任何)。当存在多个纵向梯度时,它们变得相关,并将共同影响N_2O生产和氮去除MABR。结果还表明需要多点测量以获得MABR配置的空间生物膜特征的准确表示,其中膜腔设计/操作为塞流反应器。虽然传统的建模方法是可接受的,以评估大多数情况下的氮气去除,但它可能高估或低估了与氧和液相组分中的至少一个纵向梯度的N_2O产生。对于这种MABR,生物膜厚度和待包括在模型中的生物膜厚度等级的纵向异质性也会对模拟结果,尤其是N_2O生产产生差异。该工作还提出,在研究的条件下,考虑到纵向异质性的适当设计/运行,具有将N_2O产量降低77%的理论潜力,而不会显着损害氮气去除。

著录项

  • 来源
    《Environmental Science & Technology》 |2020年第17期|10964-10973|共10页
  • 作者单位

    College of Environment and Resources Fuzhou University Fujian 350116 China;

    School of Resources and Environmental Engineering East China University of Science and Technology Shanghai 200237 China;

    State Key Laboratory of Pollution Control and Resources Reuse College of Environmental Science and Engineering Tongji University Shanghai 200092 China;

    Centre for Technology in Water and Wastewater School of Civil and Environmental Engineering University of Technology Sydney Sydney NSW 2007 Australia;

    Centre for Technology in Water and Wastewater School of Civil and Environmental Engineering University of Technology Sydney Sydney NSW 2007 Australia;

    Centre for Technology in Water and Wastewater School of Civil and Environmental Engineering University of Technology Sydney Sydney NSW 2007 Australia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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