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Prediction of Air Pollutant from Poultry Houses by a Modified Gaussian Plume Model

机译:改进的高斯羽流模型预测禽舍中的空气污染物

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摘要

Concentrated animal feeding operations release a variety of potential pollutants, such as ammonia and particulate matters (PM). Field measurements are time consuming, costly, and only provide a limited amount of spatial and temporal information. Air dispersion models can serve as an alternative solution, especially if coupled with field sampling. The Gaussian plume model (GPM) is a mathematical model that assumes steady state condition. Previous studies have used the GPM to evaluate and analyze source. However, much less is known about utilizing GPM to simulate plumes from horizontal sources, such as the exhaust fans from poultry houses. The purpose of this study is to modify and validate a GPM to predict air pollutant emissions from the poultry houses. Two major assumptions were applied on the model, 1) a virtual releasing point was proposed behind the ventilation fan, and 2) ventilation fan was considered as the dominant wind direction in the model for short distance (< 50 m). The modified model was validated with field experimental data. Performance and sensitivity of the model were also evaluated. Fraction of predictions within a factor of two of observations (FAC2) of NH 3 and PM were 0.609 and 0.625. Model-predicted concentrations of NH3 were 1.5 times of the measured values on average. Model-predicted concentrations of PM was 0.98 times of the observed values on average.
机译:集中的动物饲养操作会释放各种潜在的污染物,例如氨和颗粒物(PM)。现场测量既费时又昂贵,并且只能提供有限的空间和时间信息。空气扩散模型可以作为替代解决方案,尤其是与现场采样结合使用时。高斯羽状流模型(GPM)是假设稳态条件的数学模型。先前的研究已经使用GPM来评估和分析来源。但是,对于利用GPM模拟来自水平源(例如禽舍的排风扇)的羽流的知之甚少。本研究的目的是修改和验证GPM,以预测禽舍的空气污染物排放。在模型上应用了两个主要假设:1)在通风机后面提出了一个虚拟释放点,并且2)在短距离(<50 m)中,通风机被视为模型中的主要风向。修改后的模型已通过现场实验数据验证。还评估了模型的性能和敏感性。在NH 3和PM的两个观测值(FAC2)范围内的预测分数分别为0.609和0.625。模型预测的NH3浓度平均为测量值的1.5倍。模型预测的PM浓度平均为观测值的0.98倍。

著录项

  • 作者

    Yang, Zijiang.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Environmental engineering.;Agricultural engineering.
  • 学位 M.S.
  • 年度 2017
  • 页码 197 p.
  • 总页数 197
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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