首页> 外文期刊>Ecological engineering: The Journal of Ecotechnology >Optimization of hydraulic efficiency and wastewater treatment performances using a new design of vertical flow Multi-Soil-Layering (MSL) technology
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Optimization of hydraulic efficiency and wastewater treatment performances using a new design of vertical flow Multi-Soil-Layering (MSL) technology

机译:利用垂直流量多土层(MSL)技术新设计液压效率和废水处理性能的优化

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The study gives a new method for contaminants removal from domestic wastewater using a novel design of Multi-Soil-Layering (MSL) eco-technology. Two MSL reactors were built and operated under laboratory conditions: a standard and modified MSL design (S-MSL and M-MSL). A tracer test using KCl indicated varying degrees of dispersion, short-circuiting, dead space, effective volume ratio and hydraulic efficiency in two MSL reactors. The new MSL design was found to be most effective in improving hydrodynamic flow conditions. The M-MSL reactor increased the mean HRT from 15.79 to 22.07 h, and decreased the dead space rate from 38% to 8%. The early arrival of the distribution peak, indicator of short-circuiting, was mainly noted in the case of S-MSL RTD which is around 57% of the nominal HRT. A high dead space rate was found to occur in the S-MSL reactor, and produced a poor hydraulic performance. The large difference between the nominal and mean HRT confirms the presence of zones of stagnation in the S-MSL system. The new MSL design increased the effective volume ratio from 0.62 to 0.92. The hydraulic efficiency was increased from 0.26 to 0.84 and reached a good level (lambda. = 0.75) highlighting the excellent hydraulic performance of the M-MSL design. Obtained results revealed that M-MSL had an optimal hydraulic profile and enhanced sanitary and physicochemical performances compared to S-MSL. The mean log reduction of total coliforms, fecal coliforms and fecal streptococci was increased from 1.25, 1.26 and 1.15 log units for the S-MSL to 2.36, 2.38 and 2.11 log units for the M-MSL reactor. Both MSL reactors achieved high and satisfactory TSS and organics removal. The M-MSL reactor accomplished a 92% removal of TN, while the S-MSL achieved a slightly less effective result. The M-MSL reactor was also found to be more efficient in reducing TP by 98% compared to a removal rate of 76% in the S-MSL reactor. Therefore, the new design of MSL eco-technology could be adopted as an alternative to the current design for efficient domestic wastewater treatment.
机译:该研究通过多土分层(MSL)生态技术的新设计,给出了一种新的污染物污染物去除的污染物。在实验室条件下建立并运行两个MSL反应器:标准和修改的MSL设计(S-MSL和M-MSL)。使用KCL的示踪剂测试表明两个MSL反应器中的不同程度的分散体,短路,死空间,有效体积比和液压效率。发现新的MSL设计在改善流体动力学条件方面最有效。 M-MSL反应器从15.79增加到22.07小时的平均HRT,并降低了死亡空间率从38%到8%。在S-MSL RTD的情况下,分布峰值的早期到达,短路指示器,占标称HRT的57%。发现高死空间率发生在S-MSL反应器中,并产生较差的液压性能。标称和平均HRT之间的巨大差异确认了S-MSL系统中的停滞区域。新的MSL设计增加了0.62至0.92的有效量比。液压效率从0.26增加到0.84,达到良好的水平(λ= 0.75)突出了M-MSL设计的优异水力性能。获得的结果显示,与S-MSL相比,M-MSL具有最佳的液压轮廓和增强的卫生和物理化学性能。总大肠杆菌,粪便大肠杆菌和粪便链球菌的平均降低从1.25,1.26和1.15对数M-MSL反应器的2.36,2.38和2.11对数单位的Log单位增加。两个MSL反应器都达到了高且令人满意的TSS和有机物去除。 M-MSL反应器完成了TN的92%,而S-MSL达到了略微较低的效果。与S-MSL反应器中的76%的去除率相比,也发现M-MSL反应器在将TP减小98%更有效。因此,可以采用MSL生态技术的新设计作为当前设计的替代方案,以实现高效的国内废水处理。

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