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首页> 外文期刊>Environmental Processes >Identification and Localization of Hydrodynamic Anomalies in a Real Wastewater Treatment Plant by an Integrated Approach: RTD-CFD Analysis
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Identification and Localization of Hydrodynamic Anomalies in a Real Wastewater Treatment Plant by an Integrated Approach: RTD-CFD Analysis

机译:通过综合方法:RTD-CFD分析鉴定和定位实际废水处理厂中的水动力异常

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摘要

The presence of hydrodynamic anomalies (HAs) in biological reactor reduces pollutants removal yields and increases management costs. This work aims to study the hydrodynamic behaviour of biological reactors of a real wastewater treatment plant (WWTP) in order to detect the presence of hydrodynamic anomalies (dead volume and bypass). The identification and the localization of these anomalies were conducted by an integrated residence time distribution (RTD) analysis - computational fluid dynamic (CFD) numerical analysis. From the results of the RTD analysis a dead volume of 30% was quantified without bypass. The three-dimensional CFD model revealed a dead volume inside the oxidationitrification tank equal to 10% located downstream of the baffle wall. Employing the RTD-CFD integrated analysis approach, the size of dead volume located in the denitrification reactor was quantified as equal to 60%. RTD analysis allowed for the quantification of the HAs while CFD analysis provided for the position of the HAs with reliable accuracy. RTD-CFD integrated approach is a preparatory tool for planning any corrective actions in a focused way in order to use all the volume of the reactor, maximizing the efficiency of the treatment processes, minimizing management costs and reducing the consumption of energy.
机译:生物反应器中的流体动力异常(具有)的存在降低了污染物去除产量并提高了管理成本。这项工作旨在研究真实废水处理厂(WWTP)的生物反应器的流体动力学行为,以检测流体动力异常(死体积和旁路)的存在。通过综合停留时间分布(RTD)分析 - 计算流体动态(CFD)数值分析来进行这些异常的鉴定和定位。从RTD分析的结果,无旁路量化了30%的死体积。三维CFD模型在氧化/硝化罐内的死体积等于位于挡板壁的下游的10%。采用RTD-CFD综合分析方法,定量位于脱氮反应器中的死体积的尺寸定量为等于60%。 RTD分析允许定量的虽然CFD分析为具有可靠精度的位置提供。 RTD-CFD综合方法是一种预备工具,用于规划以聚焦方式规划任何纠正措施,以便使用反应器的所有体积,最大限度地提高治疗过程的效率,最大限度地减少管理成本并降低能量消耗。

著录项

  • 来源
    《Environmental Processes》 |2020年第2期|563-578|共16页
  • 作者单位

    Department of Civil and Architectural Engineering University of Pavia Via Ferrata 1 27100 Pavia Italy Interdepartmental Centre for Water Research University of Pavia Via Ferrata 3 27100 Pavia Italy;

    Department of Civil and Architectural Engineering University of Pavia Via Ferrata 1 27100 Pavia Italy;

    Department of Civil and Architectural Engineering University of Pavia Via Ferrata 1 27100 Pavia Italy Interdepartmental Centre for Water Research University of Pavia Via Ferrata 3 27100 Pavia Italy;

    Department of Civil and Architectural Engineering University of Pavia Via Ferrata 1 27100 Pavia Italy Interdepartmental Centre for Water Research University of Pavia Via Ferrata 3 27100 Pavia Italy;

    Department of Civil and Architectural Engineering University of Pavia Via Ferrata 1 27100 Pavia Italy;

    ASMia S.r.l Viale Tiziano Vecellio Mortara Pavia 540 - 27036 Italy;

    Department of Civil Environmental Architectural Engineering and Mathematics University of Brescia Via Branzc 43 25123 Brescia Italy;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Hydrodynamic functionality checks; RTD; CFD; Activated sludge; Wastewater treatment plant;

    机译:流体动力学功能检查;RTD;CFD;活性污泥;污水处理厂;

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