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测量会议和教室中模拟演讲时,HVAC 对空气中污染物暴露的影响。

Measured influence of overhead HVAC on exposure to airborne contaminants from simulated speaking in a meeting and a classroom.

机构信息

Indoor Environment Group, Energy Analysis and Environmental Impacts Division, Building Technologies and Urban Systems Division, Energy Technologies Area, Lawrence Berkeley National Laboratory, Berkeley, California, USA.

Department of Civil & Environmental Engineering, University of California, Berkeley, California, USA.

出版信息

Indoor Air. 2022 Jan;32(1):e12917. doi: 10.1111/ina.12917. Epub 2021 Sep 3.

Abstract

Tracer gas experiments were conducted in a 158 m room with overhead supply diffusers to study dispersion of contaminants from simulated speaking in physically distanced meeting and classroom configurations. The room was contained within a 237 m cell with open plenum return to the HVAC system. Heated manikins at desks and a researcher operating the tracer release apparatus presented 8-9 thermal plumes. Experiments were conducted under conditions of no forced air and neutral, cooled, or heated air supplied at 980-1100 cmh, and with/out 20% outdoor air. CO was released at the head of one manikin in each experiment to simulate small (<5 µm diameter) respiratory aerosols. The metric of exposure relative to perfectly mixed (ERM) is introduced to quantify impacts, based on measurements at manikin heads and at three heights in the center and corners of the room. Chilled or neutral supply air provided good mixing with ERMs close to one. Thermal stratification during heating produced higher ERMs at most manikins: 25% were ≥2.5 and the highest were >5× perfectly mixed conditions. Operation of two within-zone air cleaners together moving ≥400 cmh vertically in the room provided enough mixing to mitigate elevated exposure variations.

摘要

在一个 158 米的房间中进行示踪气体实验,该房间采用顶棚送风扩散器,以研究模拟远距离会议和教室环境中说话产生的污染物的扩散情况。房间位于一个 237 米的气腔中,通过开式静压箱回风到 HVAC 系统。在桌子上加热的人体模型和操作示踪剂释放装置的研究人员呈现了 8-9 个热羽流。实验在无强制空气、中性、冷却或加热空气供应为 980-1100 cmh 以及有无 20%室外空气的条件下进行。在每个实验中,在一个人体模型的头部释放 CO,以模拟小 (<5 µm 直径) 呼吸气溶胶。引入相对完全混合(ERM)的暴露度量来量化影响,这是基于人体模型头部和房间中心以及角落的三个高度的测量值。冷却或中性供应空气与 ERM 接近,混合良好。加热时的热分层导致大多数人体模型的 ERM 较高:25% 的 ERM 大于等于 2.5,最高的 ERM 大于完全混合条件的 5 倍。两个区域内空气净化器一起运行,在房间内垂直移动 ≥400 cmh,提供了足够的混合,以减轻升高的暴露变化。

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