Geosyntec Consultants, Inc., Toronto, Ontario, Canada.
Geosyntec Consultants, Inc., Albany, NY, USA.
Sci Total Environ. 2020 Oct 20;740:139988. doi: 10.1016/j.scitotenv.2020.139988. Epub 2020 Jun 10.
Volatile organic compounds (VOCs) and radon progeny pose potential health risks to occupants of certain buildings via subsurface vapor intrusion (VI) to indoor air. VI mitigation is usually performed using systems that extract gas from below the building, and the system performance is typically evaluated by measuring the distribution of applied vacuum below the floor. This article provides a new approach to assessing the radius of influence (ROI) for subslab venting systems based on mass flux instead of static vacuum distribution and includes an analyses of 121 pneumatic tests performed at 65 different suction points in 16 different buildings. The mathematical model represents a two-layer system with horizontal radial flow through transmissive material below the floor slab and vertical flow through discontinuities in the floor slab (which is simplified to approximate an equivalent porous medium). The analysis includes comparisons of the flux-based ROI to values calculated using the two-layer model for 1) vacuum, 2) velocity, and 3) travel time, which may be useful as alternative performance metrics for mitigation systems.
挥发性有机化合物 (VOCs) 和氡子体通过地下蒸气入侵 (VI) 对某些建筑物的居住者构成潜在健康风险,进入室内空气。VI 缓解通常采用从建筑物下方抽取气体的系统进行,系统性能通常通过测量地板下方施加的真空分布来评估。本文提供了一种基于质量通量而不是静态真空分布来评估基板下通风系统影响半径 (ROI) 的新方法,并对在 16 栋不同建筑物的 65 个不同抽吸点进行的 121 次气动测试进行了分析。数学模型表示一个具有水平径向流动的双层系统,穿过地板下方的可渗透材料,以及穿过地板裂缝的垂直流动(简化为近似等效多孔介质)。分析包括通量基 ROI 与使用双层模型计算的真空、速度和旅行时间的比较,这些值可能是缓解系统的替代性能指标。