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Modelling of multispecies biofilm population dynamics in a trickle-bed bioreactor used for waste gas treatment

机译:滴流床生物反应器中用于废气处理的多种生物膜种群动态模型

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The dynamics of a multispecies biofilm population in a laboratory-scale trickle-bed bioreactor for the treatment of waste gas is described. Calculations using a simplified multispecies-multisubstrate model were compared to existing experimental data. The bioreactor was operated under transient conditions by applying pollutant concentration shifts and a prolonged starvation period. A non-pollutant degrading population was predominantly existing in the biofilm. These so-called saprophytes utilized a secondary carbon source consisting of intermediates and lysis products. The modelled microbial interactions were proto-cooperation and competition. According to experimental evidence, the biofilm was considered as a heterogeneous structure with strong backmixing. A satisfactory agreement of model calculations and measured time courses of the population fractions was achieved. According to the calculations, the pollutant degraders reacted about 4-10 times faster after a shift-up of the pollutant supply rate than the inactive cells and the saprophytes. Hence, the bioreactor performance adapted relatively fast to abrupt changes of the pollutant supply rate. Even after the prolonged starvation period, the culture was able to recover within a few hours indicating that the biological system was robust.
机译:描述了在实验室规模的滴流床生物反应器中用于处理废气的多种生物膜种群的动力学。使用简化的多物种多底物模型进行的计算与现有实验数据进行了比较。通过施加污染物浓度变化和延长饥饿期,生物反应器在瞬时条件下运行。生物膜中主要存在无污染的降解种群。这些所谓的腐生植物利用了由中间体和裂解产物组成的次级碳源。建模的微生物相互作用是原型合作和竞争。根据实验证据,生物膜被认为是具有强反向混合的异质结构。模型计算和测得的人口分数时程获得了令人满意的协议。根据计算,污染物供应速率上调后,污染物降解剂的反应速度比非活性细胞和腐生植物快4-10倍。因此,生物反应器的性能相对较快地适应了污染物供应速率的突然变化。即使延长了饥饿时间,培养物也能在数小时内恢复,表明该生物系统很坚固。

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