将路边护栏效应对分散的影响纳入AERMOD。

IF 2.1 4区 环境科学与生态学 Q3 ENGINEERING, ENVIRONMENTAL
Dianna M Francisco, David K Heist, Akula Venkatram, Lydia H Brouwer, Steven G Perry
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引用次数: 0

摘要

本文重点研究了与没有障碍物的公路相比,位于公路上风侧的固体障碍物在降低道路下风侧车辆相关浓度方面的影响。在美国环境保护局的气象风洞中进行的测量表明,逆风屏障的缓解影响与顺风屏障相当。逆风障碍物通过将排放物从高速公路吸引到障碍物上来降低污染浓度。然后,排放物被夹带到再循环区上方的气流中,并在顺风时垂直分散。车辆排放物的这种逆风传输导致道路中心的浓度比在有顺风屏障的道路上测量的浓度高出大约200-300%。道路上浓度之间的差异表明,尽管这两种类型的障碍物都能减轻道路下风处车辆排放的影响,但逆风障碍物可能会对道路上的人造成不利的空气质量影响。我们已经建立了一个半经验色散模型,该模型结合了风洞测量揭示的物理特性。该模型改进了Ahangar等人提出的模型。(2017)通过调整风速,在逆风屏障的下风处获得更真实的羽流分散,并通过提供地面浓度之外的浓度垂直剖面。本文中提出的逆风障碍物模型和Francisco等人(2022)中描述的顺风障碍物模型已作为非调节选项纳入AERMOD(21112版),包括在对同一道路上的两个障碍物建模时的新的双障碍物选项。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Incorporating the impact of roadside barrier effects on dispersion into AERMOD.

This paper focuses on the impact of solid barriers located upwind of a highway in reducing vehicle related concentrations that occur downwind of the roadway, compared to a highway without barriers. Measurements made in the United States Environmental Protection Agency's meteorological wind tunnel show that the mitigating impact of an upwind barrier is comparable to that of a downwind barrier. Upwind barriers lead to reductions in pollution concentrations by drawing emissions in from the highway toward the barrier. The emissions are then entrained into the flow above the recirculation zone and dispersed vertically as they are advected downwind. This upwind transport of vehicle emissions leads to concentrations at the center of the roadways that are roughly 200-300% higher than those measured on roadways with downwind barriers. This difference between on-road concentrations indicates that although both types of barriers mitigate the impact of vehicle emissions downwind of a roadway, the upwind barrier may create adverse air quality impacts for the people on the road.We have formulated a semiempirical dispersion model that incorporates the physics revealed by the wind tunnel measurements. This model improves upon a model proposed by Ahangar et al. (2017) by adjusting the wind speed to get a more realistic plume dispersion just downwind of the upwind barrier and also by providing vertical profiles of concentrations in addition to ground-level concentrations. The upwind barrier model proposed in this paper and the downwind barrier model described in Francisco et al. (2022) have been incorporated into AERMOD (version 21112) as a nonregulatory option, including the new two-barrier option when modeling both barriers on the same roadway.Implications: Our paper presents an air dispersion model algorithm for modeling the effect of upwind noise barriers on dispersion of traffic-related emissions from roadways, which was incorporated into EPA's AERMOD and then evaluated using observations from a wind tunnel experiment. The results are compared and contrasted with results from both a no-barrier case and downwind barrier cases. This manuscript expands on previously published work analyzing the effect of barrier height and source-to-barrier distance on downwind dispersion (Atmos. Pollut. Res., 13:101385, 2022, https://doi.org/10.1016/j.apr.2022.101385). The current manuscript uses the same wind tunnel setup as reported there, but focuses on a different subset of cases, namely the upwind barrier cases, when developing dispersion model algorithms to simulate the observed effects. We believe the evaluations of the vertical profiles from the wind tunnel study, development, and incorporation of the upwind barrier algorithms into AERMOD, and model evaluation of these new algorithms are significant contributions to understanding the effects of these commonly used roadside barriers.

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来源期刊
Journal of the Air & Waste Management Association
Journal of the Air & Waste Management Association ENGINEERING, ENVIRONMENTAL-ENVIRONMENTAL SCIENCES
CiteScore
5.00
自引率
3.70%
发文量
95
审稿时长
3 months
期刊介绍: The Journal of the Air & Waste Management Association (J&AWMA) is one of the oldest continuously published, peer-reviewed, technical environmental journals in the world. First published in 1951 under the name Air Repair, J&AWMA is intended to serve those occupationally involved in air pollution control and waste management through the publication of timely and reliable information.
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