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首页> 外文期刊>Journal of Environmental Engineering >Integrated modeling of anaerobic fluidized bed bioreactor for deicing waste treatment. II: Simulation and experimental studies
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Integrated modeling of anaerobic fluidized bed bioreactor for deicing waste treatment. II: Simulation and experimental studies

机译:用于除冰废物处理的厌氧流化床生物反应器的集成模型。二:仿真与实验研究

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This paper examines the influence of bed segregation on the performance of an anaerobic fluidized bed bioreactor (AFBR) using both an integrated mathematical model previously described in Part I of this study, and experimental data obtained from a laboratory-scale AFBR continuous flow system and batch serum vial tests. Local hydrodynamics within the bed are shown to determine mixing intensities and patterns of bioparticles thereby controlling biofilm thickness and composition along the bed height. Results of the model simulations and the experimental data indicate that shallow biofilms that allow full substrate penetration are dominantly populated with faster growing micro-organisms. The internal mass transfer resistance in thicker biofilm significantly influences population distribution resulting in the increase of population of slower growing micro-organisms in a deeper layer of the biofilm. The serum bottle tests also confirm that microbial distribution inside a multispecies biofilm is determined by the hydrodynamic condition of the reactor. This study illustrates the importance of hydrodynamic regimes in the AFBR, and demonstrates the impact of bed segregation on bioparticle properties and total system performance. [References: 34]
机译:本文使用先前在本研究第一部分中描述的集成数学模型以及从实验室规模的AFBR连续流系统和批次获得的实验数据,研究了床分离对厌氧流化床生物反应器(AFBR)性能的影响。血清小瓶测试。示出了床内的局部流体动力学以确定混合强度和生物颗粒的模式,从而沿床高度控制生物膜的厚度和组成。模型仿真和实验数据的结果表明,可以使基质完全渗透的浅层生物膜主要是生长较快的微生物。较厚的生物膜中的内部传质阻力显着影响种群分布,从而导致生物膜较深层中生长较慢的微生物的种群增加。血清瓶测试还证实,多种生物膜内的微生物分布是由反应器的流体动力学条件决定的。这项研究说明了AFBR中流体动力学机制的重要性,并证明了床分离对生物颗粒性质和整个系统性能的影响。 [参考:34]

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