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Experimental and numerical investigation of micro-environmental conditions in public transportation buses

机译:公交客车微环境条件的实验与数值研究

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摘要

This study examines both numerically and experimentally the micro-environmental conditions in public transportation buses. A Computational Fluid Dynamics (CFD) model was developed and experimentally validated. The developed CFD model was used to calculate the spatial distributions of the mean age and mean residual lifetime of air in the bus environment and evaluate the efficiency of the bus ventilation system. Additionally, the passengers’ exposures to a variety of environmental conditions were experimentally monitored in “real world” field campaigns using the Harvard University shuttle bus system. Real time continuous monitoring systems were used to assess indoor environmental quality in the buses. It was found that CO levels were very low, while the levels of particulate matter varied and were influenced by the ambient air penetrated into the bus through the operation of the doors and the ventilation system. The CO level was found elevated and greatly affected by occupancy conditions. The elevated CO level indicates that the current bus ventilation is insufficient to dilute air pollutants in the bus especially under heavy occupancy conditions. This lack of sufficient ventilation indicates an elevated risk for airborne transmitted diseases in such a popular public transportation system.
机译:这项研究在数值和实验上都研究了公共交通公交车的微观环境条件。开发了计算流体动力学(CFD)模型并进行了实验验证。所开发的CFD模型用于计算公交车环境中空气的平均年龄和平均剩余寿命的空间分布,并评估公交车通风系统的效率。此外,使用哈佛大学穿梭巴士系统在“现实世界”野外运动中,通过实验监控了乘客在各种环境条件下的暴露情况。实时连续监测系统用于评估公交车的室内环境质量。已经发现,CO水平非常低,而颗粒物的水平却有所变化,并且受到通过门和通风系统的操作渗透到公交车中的环境空气的影响。发现一氧化碳水平升高,并且受居住条件的影响很大。一氧化碳水平升高表明当前的公交车通风不足以稀释公交车中的空气污染物,尤其是在高占用率条件下。缺乏足够的通风指示在这种流行的公共交通系统中,空气传播疾病的风险增加。

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