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首页> 外文期刊>Aerosol and Air Quality Research >Determination of Silt Loading Distribution Characteristics Using a Rapid Silt Loading Testing System in Tianjin, China
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Determination of Silt Loading Distribution Characteristics Using a Rapid Silt Loading Testing System in Tianjin, China

机译:利用天津市快速粉尘载荷测试系统确定粉尘载荷分布特征

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摘要

Silt loading (sL) is an important parameter in the fugitive road dust (FRD) emission inventory because it can indicate the cleaning degree of roads. In this study, we combined Testing Re-entrained Aerosol Kinetic Emissions from Roads (TRAKER) with the AP-42 method to measure the sL values of paved roads in Tianjin, China, and we developed a rapid silt loading testing system for the period from January to October in 2015. This allowed us to establish the FRD sL reservoir in a more feasible manner on a larger urban scale compared with sL measurements alone. We found that the background-corrected TRAKER signals tended to increase slightly as the speed of the mobile monitoring system increased, and the sL values increased exponentially with the speed-corrected TRAKER signals. The sL values determined by TRAKER were quite different, where branch roads minor arterials major arterials outer ring expressway, due to differences in the average speed and traffic volume. Furthermore, the sL values determined using TRAKER were higher in the slow lanes than the other lanes (except for the outer ring), whereas the sL values produced by TRAKER in the express lanes of the outer ring were the highest among all the vehicle lanes. The frequency distribution of the sL values obtained by TRAKER for various types of roads differed significantly from each other in terms of magnitude, especially on the branch roads and minor arterials. In terms of the temporal distribution, the sL values obtained by TRAKER were substantially higher in summer, followed by spring and autumn, and lowest in winter.
机译:淤泥负荷(sL)是逃逸性道路扬尘(FRD)排放清单中的重要参数,因为它可以指示道路的清洁程度。在这项研究中,我们结合了“道路重夹带气溶胶动力学排放测试”(TRAKER)和AP-42方法,以测量中国天津市铺装道路的sL值,并开发了一个快速的泥沙荷载测试系统2015年1月至10月。与仅进行sL测量相比,这使我们能够在更大的城市规模上以更可行的方式建立FRD sL水库。我们发现,随着移动监控系统速度的提高,背景校正的TRAKER信号趋于略有增加,并且sL值随速度校正的TRAKER信号呈指数增加。 TRAKER确定的sL值有很大不同,这是由于平均速度和交通流量的差异,分支路>小动脉>大动脉>外环>高速公路。此外,使用TRAKER确定的sL值在慢车道上高于其他车道(外圈除外),而TRAKER在外圈特快车道上产生的sL值在所有车道中最高。 TRAKER针对各种类型的道路获得的sL值的频率分布在幅度方面存在显着差异,尤其是在分支道路和小动脉上。就时间分布而言,TRAKER获得的sL值在夏季明显较高,其次是春季和秋季,而在冬季最低。

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