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首页> 外文期刊>Water Science and Technology >Sequencing batch reactor (SBR) as optimal method for production of granular activated sludge (GAS) – fluid dynamic investigations
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Sequencing batch reactor (SBR) as optimal method for production of granular activated sludge (GAS) – fluid dynamic investigations

机译:顺序批处理反应器(SBR)作为生产颗粒活性污泥(GAS)的最佳方法–流体动力学研究

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摘要

Fluid dynamic investigations of multiphase flow (fluid, air, granules) in a sequencing batch reactor (SBR) are presented. SBR can be considered as an attractive technology for cultivation of granular activated sludge (GAS). Granulation is a complicated process and its mechanism is not fully understood yet. Many factors influence the formation and structure of aerobic granular sludge in a bioreactor. Extracellular polymer substances (EPS) and superficial gas velocity (SGV) play a crucial role for granules formation. Additionally, it is supposed that EPS production is stimulated by mechanical forces. It is also assumed that hydrodynamic effects have a major influence on the formation, shape and size of GAS in SBR under aerobic condition. However, the influence of stress on granulation is poorly investigated. Thus, in the present paper, fluid dynamic investigations of multiphase flow in a SBR, particularly effect of normal and shear strain, are reported. In order to analyse multiphase flow in the SBR, optical in-situ techniques with particle image velocimetry (PIV) and particle tracking velocimetry (PTV) are implemented. Obtained results show a characteristic flow pattern in a SBR. It is pointed out that additional effects like particle-wall collisions, inter particle collisions, erosion can also affect significantly granules formation.
机译:介绍了顺序批处理反应器(SBR)中多相流(流体,空气,颗粒)的流体动力学研究。 SBR可被视为培养颗粒活性污泥(GAS)的有吸引力的技术。制粒是一个复杂的过程,其机理尚不完全清楚。许多因素影响生物反应器中好氧颗粒污泥的形成和结构。细胞外聚合物物质(EPS)和表观气体速度(SGV)在颗粒形成中起关键作用。另外,可以认为机械力会刺激EPS的产生。还假设在好氧条件下,水动力效应对SBR中GAS的形成,形状和大小有重要影响。但是,应力对造粒的影响研究很少。因此,在本文中,报道了SBR中多相流的流体动力学研究,特别是正应变和剪切应变的影响。为了分析SBR中的多相流,实现了采用粒子图像测速(PIV)和粒子跟踪测速(PTV)的光学原位技术。所得结果显示了SBR中的特征流型。要指出的是,诸如颗粒-壁碰撞,颗粒间碰撞,侵蚀等附加效应也可以显着影响颗粒的形成。

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