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Application of Improved CFD Modeling for Prediction and Mitigation of Traffic-Related Air Pollution Hotspots in a Realistic Urban Street

机译:改进CFD建模在现实城市街道中交通相关空气污染热点预测与减轻的应用

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摘要

The correct prediction of air pollutants dispersed in urban areas is of paramount importance to safety, public health and a sustainable environment. Vehicular traffic is one of the main sources of nitrogen oxides (NO x) and particulate matter (PM), strongly related to human morbidity and mortality. In this study, the pollutant level and distribution in a section of one of the main road arteries of Antwerp (Belgium, Europe) are analyzed. The assessment is performed through computational fluid dynamics (CFD), acknowledged as a powerful tool to predict and study dispersion phenomena in complex atmospheric environments. The two main traffic lanes are modeled as emitting sources and the surrounding area is explicitly depicted. A Reynolds-averaged Navier- Stokes (RANS) approach specific for Atmospheric Boundary Layer (ABL) simulations is employed. After a validation on a wind tunnel urban canyon test case, the dispersion within the canopy of two relevant urban pollutants, nitrogen dioxide (NO2) and particulate matter with an aerodynamic diameter smaller than 10 mu m (PM10), is studied. An experimental field campaign led to the availability of wind velocity and direction data, as well as PM10 concentrations in some key locations within the urban canyon. To accurately predict the concentration field, a relevant dispersion parameter, the turbulent Schmidt number, Sc is prescribed as a locally variable quantity. The pollutant distributions in the area of interest - exhibiting strong heterogeneity - are finally demonstrated, considering one of the most frequent and concerning wind directions. Possible local remedial measures are conceptualized, investigated and implemented and their outcomes are directly compared. A major goal is, by realistically reproducing the district of interest, to identify the locations inside this intricate urban canyon where the pollutants are stagnating and to analyze which solution acts as best mitigation measure. It is demonstrated that removal by electrostatic precipitation (ESP), an active measure, and by enhancing the dilution process through wind catchers, a passive measure, are effective for local pollutant removal in a realistic urban canyon. It is also demonstrated that the applied ABL methodology resolves some well known problems in ABL dispersion modeling.
机译:分散在城市地区空气污染物的正确预测是非常重要的安全,公众健康和可持续发展的环境。车辆交通的氮氧化物(NO x)和颗粒物(PM),密切相关的人的发病率和死亡率的主要来源之一。在这项研究中,安特卫普(比利时,欧洲)的主要干道之一的部分污染物的水平和分布进行了分析。评估是通过计算流体动力学(CFD),承认作为一个强大的工具来预测和研究色散现象在复杂的大气环境中进行。两个主车道被建模为发射源及周边区域被明确示出。甲雷诺平均Navier-斯托克斯(RANS)方法特异于大气边界层(ABL)的模拟中采用。上的风洞城市峡谷测试用例验证之后,空气动力学直径小于10微米(PM10)两个相关城市污染物,二氧化氮(NO2)和颗粒物的冠层内的分散性,进行了研究。试验田运动导致风速和风向数据的可用性,以及在城市峡谷中的某些关键位置PM10浓度。准确地预测浓度场,相关色散参数,湍流施密特数,SC被规定为一个局部可变数量。表现出非均质性强 - - 在感兴趣的区域的污染物分布终于证实,考虑到最频繁,涉及风方向之一。可能当地的补救措施是概念化,调查和执行及其结果进行直接比较。一个主要目标是,通过逼真再现感兴趣的地区,以确定这个复杂的城市峡谷,其中的污染物停滞不前内的位置,并分析其解决方案作为最佳的减缓措施。据证实通过静电沉淀(ESP),有源措施,去除,并通过捕风,无源量度增强稀释过程中,能有效地在一个现实的城市峡谷本地污染物去除。它也表明,应用ABL的方法解决了ABL扩散模拟一些众所周知的问题。

著录项

  • 来源
    《Atmospheric environment》 |2021年第2期|118127.1-118127.30|共30页
  • 作者单位

    Univ Antwerp Res Grp Sustainable Energy Air & Water Technol Groenenborgerlaan 171 B-2020 Antwerp Belgium|von Karman Inst Fluid Dynam Environm & Appl Fluid Dynam Dept Waterloosesteenweg 72 B-1640 Rhode St Genese Belgium;

    Univ Libre Bruxelles Aerothermomecan Dept Brussels Belgium|Politecn Milan Dipartimento Chim Mat & Ingn Chim G Natta Milan Italy;

    Univ Antwerp Res Grp Sustainable Energy Air & Water Technol Groenenborgerlaan 171 B-2020 Antwerp Belgium;

    Politecn Milan Dipartimento Chim Mat & Ingn Chim G Natta Milan Italy;

    Univ Libre Bruxelles Aerothermomecan Dept Brussels Belgium|Univ Libre Bruxelles Combust & Robust Optimizat Grp BURN Brussels Belgium|Vrije Univ Brussel Brussels Belgium;

    Univ Libre Bruxelles Aerothermomecan Dept Brussels Belgium|Univ Libre Bruxelles Combust & Robust Optimizat Grp BURN Brussels Belgium|Vrije Univ Brussel Brussels Belgium|Univ Texas Austin Dept Aerosp Engn & Engn Mech Austin TX 78712 USA;

    von Karman Inst Fluid Dynam Environm & Appl Fluid Dynam Dept Waterloosesteenweg 72 B-1640 Rhode St Genese Belgium;

    Univ Antwerp Res Grp Sustainable Energy Air & Water Technol Groenenborgerlaan 171 B-2020 Antwerp Belgium;

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

    Atmospheric environment; Air pollution; Computational fluid dynamics (CFD); Mitigation strategy; Sustainability; Natural ventilation;

    机译:大气环境;空气污染;计算流体动力学(CFD);缓解策略;可持续性;自然通风;

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