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Indoor Air Quality Modeling and Assessment

机译:室内空气质量建模与评估

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With recent public building design and construction coming closer to being "airtight," meeting or exceeding indoor air quality (IAQ) standards has become increasingly important. This driving influence and the demand for energy conservation have resulted in the goal of providing high-quality indoor air while using minimum resources. In designing systems to deliver breathable indoor air, the Ventilation Rate Procedure (VRP), which dilutes indoor air with outdoor air, has been the standard most industry and regulatory agencies have followed for 40 years. However, this dilution does not always ensure good IAQ, and VRP may underestimate the needed outdoor airflow in some cases, or it may overestimate the needed outdoor air. As an alternative, the Indoor Air Quality Procedure (IAQP) requires the determination/measurement of contaminant levels within spaces of interest and computes the amount of outdoor air in conjunction with air cleaning/filtering that is needed to meet industry and regulatory agency standards. In some cases, IAQP can provide the needed breathable air with less outdoor air, and potentially at a lower cost, than VRP. IAQP's drawbacks are the need for additional/reliable filtering/cleaning equipment and the need to monitor IAQ at regular intervals to ensure that contaminant levels are within acceptable ranges. This paper presents a comparison of VRP and IAQP for specific cases, using a combination VRP-IAQP model. Modeling results show how reduced intake of outdoor air compares to VRP's requirements: where IAQP may be a better choice than VRP and where VRP may be the better choice. Typically, VRP is better for situations where filtration/cleaning is minimal and the building/occupants produce reasonably significant contaminant levels. IAQP is better when outdoor air intake is reduced to no less than ~50% of VRP's intake and when filtration/cleaning efficiency is in the 50%+ range. For some specific cases, filtration/cleaning efficiency can be as low as 20% and still improve on VRP's contaminant concentrations. Future publications will work to demonstrate wide-ranging effects of modeling parameters, such as changing zone type, handling nonattainment regions, filter location (recirculated or both recirculated/outdoor air), recirculation fractions, flow reduction, 100% or proportional flow, and variable air volume (VA V). Recommendations include the need for field data which includes recording the important input information for air quality models. With that information, those models could then determine/back-out actual contaminant emissions and use those emissions to provide guidance in improving/modifying zone air quality through outdoor air intake increase/reduction combined with filtration/cleaning efficiency variation.
机译:随着最近的公共建筑设计和建造越来越接近“气密”,达到或超过室内空气质量(IAQ)标准变得越来越重要。这种驱动力的影响和对节能的需求导致了以最少的资源提供高质量的室内空气的目标。在设计用于提供可呼吸室内空气的系统时,用室外空气稀释室内空气的通风速率程序(VRP)成为40年来大多数行业和监管机构一直遵循的标准。但是,这种稀释不能总是确保良好的IAQ,在某些情况下VRP可能低估了所需的室外空气流量,或者可能高估了所需的室外空气。作为替代方案,室内空气质量程序(IAQP)需要确定/测量感兴趣空间内的污染物水平,并结合满足行业和监管机构标准所需的空气清洁/过滤功能,计算室外空气量。在某些情况下,与VRP相比,IAQP可以提供所需的透气空气,而室外空气更少,并且成本可能更低。 IAQP的缺点是需要额外/可靠的过滤/清洁设备,并且需要定期监视IAQ以确保污染物水平在可接受的范围内。本文使用VRP-IAQP组合模型对特定情况下的VRP和IAQP进行了比较。建模结果表明,与VRP的要求相比,减少了室外空气的摄入量:IAQP可能比VRP更好,VRP可能是更好的选择。通常,VRP在过滤/清洁最少且建筑物/居住者产生相当大的污染物水平的情况下更好。当室外进气量减少到VRP进气量的〜50%以上且过滤/清洁效率在50%+范围内时,IAQP会更好。在某些特定情况下,过滤/清洁效率可能低至20%,并且仍会提高VRP的污染物浓度。未来的出版物将努力证明建模参数的广泛影响,例如变化的区域类型,处理未达到的区域,过滤器位置(再循环或再循环/室外空气再循环),再循环分数,流量减少,100%或比例流量以及变量风量(VA V)。建议包括对现场数据的需求,其中包括记录空气质量模型的重要输入信息。有了这些信息,这些模型便可以确定/消除实际的污染物排放,并使用这些排放来通过增加/减少室外进气量以及过滤/清洁效率的变化来提供改善/修改区域空气质量的指导。

著录项

  • 来源
    《ASHRAE Transactions》 |2018年第2期|61-78|共18页
  • 作者单位

    Funding Circle, San Francisco, CA, USA;

    Teva Pharmaceuticals, Ltd., Salt Lake City, UT, USA;

    Keystone Inspections, Overland Park, KS, USA;

    North American Safety Valve, North Kansas City, MO, USA;

    University of Kansas, Lawrence, KS, USA;

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  • 正文语种 eng
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