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首页> 外文期刊>The Science of the Total Environment >Effect of the micro-flocculation stage on the flocculation/sedimentation process: The role of shear rate
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Effect of the micro-flocculation stage on the flocculation/sedimentation process: The role of shear rate

机译:微絮凝阶段对絮凝/沉淀过程的影响:剪切速率的作用

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摘要

Dynamic analysis on the variation of particle size distribution (PSD) and the fractal characteristics of PSD (Df) were investigated to better understand the continuous procedure of the floc growth and optimize the control of flocculation process. It was found that the flocculation process could be divided into three stages, i.e., the micro-flocculation stage, the growth stage and the steady (or breakage) stage. As the stage which is crucial to the morphology of micro-flocs (the building blocks of large flocs), the micro-flocculation stage plays an important role on flocculation/sedimentation process. The results showed that an increase in shear rate (11s−1−1) during the micro-flocculation stage contributed to micro-flocs with larger size and more compact structure. As shear rate further increased (30s−1−1), the micro-floc average size gently decreased from 13.61μm to 10.91μm, whereas two-dimension fractal dimension of micro-flocs gradually increased from 1.85 to 1.89. This indicated that further increase of shear rate during the micro-flocculation was incline to the formation of smaller micro-flocs with more compact structure. According to the results of final floc properties, the moderate shear rate (G=30s−1) benefited to the micro-floc formation to form final flocs with desired properties, further improved the treatment efficiency in the whole process. Based on the kinetics in the micro-flocculation stage, a conceptual model was proposed to describe the micro-floc growth under different shear rates, further revealed the reason for the different properties of final flocs under various shear rate during the micro-flocculation stage. Combining the results with model, it was concluded that shear rate during the micro-flocculation stage mainly affected final flocs by the domination of micro-floc structure. This research gives indications both for theoretical and actual works to improve the efficiency in the solid/liquid process.
机译:通过动态分析颗粒大小分布(PSD)的变化和PSD的分形特征(Df),可以更好地了解絮体的连续生长过程,并优化絮凝过程的控制。发现絮凝过程可分为三个阶段,即微絮凝阶段,生长阶段和稳定(或破碎)阶段。作为对微絮凝物形态(大絮状物的构建基块)至关重要的阶段,微絮凝阶段对絮凝/沉淀过程起着重要作用。结果表明,在微絮凝阶段,剪切速率的增加(11s-1-1)有助于形成较大尺寸和更紧凑结构的微絮凝体。随着剪切速率的进一步提高(30s-1-1),微絮体的平均尺寸从13.61μm逐渐减小至10.91μm,而微絮凝剂的二维分形维数从1.85逐渐增大至1.89。这表明在微絮凝过程中剪切速率的进一步增加倾向于形成具有更紧凑结构的较小的微絮凝物。根据最终絮凝物的结果,适度的剪切速率(G = 30s-1)有利于微絮凝物的形成,形成具有所需性能的最终絮凝物,进一步提高了整个工艺的处理效率。基于微絮凝阶段的动力学,提出了一个概念模型来描述在不同剪切速率下微絮凝物的生长,进一步揭示了在微絮凝阶段最终絮凝物在不同剪切速率下特性不同的原因。将结果与模型相结合,得出的结论是,微絮凝阶段的剪切速率主要受微絮凝体结构的影响,主要影响最终絮凝体。这项研究为提高固/液过程的效率提供了理论和实际工作的指示。

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