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Towards a conceptual mathematical tool linking physical and biological processes for a reduction of ghg emissions from an mb-mbr plant

机译:迈向连接物理和生物过程以减少MB-MBR工厂的GHG排放的概念数学工具

摘要

The current study explores the influence of the air flow rate on greenhouse gas (GHG) emissions (direct and indirect), the operational costs (OCs), the effluent quality index (EQI) and effluent fines (EF). An University Cape Town (UCT) moving bed (MB) membrane bioreactor (MBR) pilot plant has been considered as case study where the influence of the air flow rate on the biological and physical processes has been analyzed. Constitutive relationships between the air flow rate and some performance indicators (i.e., EQI, OCs, direct and indirect GHG emissions) have been identified. Results showed that the EQI increases at low flow rate likely due to the dissolved oxygen (DO) limitation in the biological processes. Direct GHGs are influenced by air flow exponentially increasing with the increase of the air flow due to the anoxic N2O contribution. Irreversible membrane fouling reduce from 98% to 85% with the increasing of the air flow rate from 0.57 m3 h-1 to 2.56 m3 h- 1. However, the increase of the air flow rate leads to the increase of the N2O-N flux emitted from the MBR (from 40% to 80%). In order to establish a mathematical tool to reduce GHG emissions maintaining good effluent quality, results suggest of adopting a relationship based on a “multiple objective”.
机译:当前的研究探讨了空气流速对温室气体(GHG)排放(直接和间接),运营成本(OCs),废水质量指数(EQI)和废​​水罚款(EF)的影响。已将大学开普敦(UCT)移动床(MB)膜生物反应器(MBR)中试工厂视为案例研究,其中分析了空气流速对生物和物理过程的影响。空气流速与某些性能指标(即EQI,OCs,直接和间接GHG排放量)之间的本构关系已经确定。结果表明,EQI在低流速下可能由于生物过程中溶解氧(DO)的限制而增加。由于缺氧N2O的作用,直接GHG受气流的影响呈指数增长,并且随着气流的增加而增加。随着空气流速从0.57 m3 h-1增加到2.56 m3 h-1,不可逆膜污染从98%减少到85%。但是,空气流速的增加导致N2O-N通量的增加从MBR发射(从40%到80%)。为了建立一种数学工具以减少温室气体排放并保持良好的废水质量,结果建议采用基于“多个目标”的关系。

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