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The value of using seasonality and meteorological variables to model intraurban PM_(2.5) variation

机译:使用季节性和气象变量模拟城市内PM_(2.5)变化的价值

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摘要

A yearlong air monitoring campaign was conducted to assess the impact of local temperature, relative humidity, and wind speed on the temporal and spatial variability of PM2.5 in El Paso, Texas. Monitoring was conducted at four sites purposely selected to capture the local traffic variability. Effects of meteorological events on seasonal PM2.5 variability were identified. For instance, in winter low-wind and low-temperature conditions were associated with high PM2.5 events that contributed to elevated seasonal PM2.5 levels. Similarly, in spring, high PM2.5 events were associated with high-wind and low-relative humidity conditions. Correlation coefficients between meteorological variables and PM2.5 fluctuated drastically across seasons. Specifically, it was observed that for most sites correlations between PM2.5 and meteorological variables either changed from positive to negative or dissolved depending on the season. Overall, the results suggest that mixed effects analysis with season and site as fixed factors and meteorological variables as covariates could increase the explanatory value of LUR models for PM2.5.
机译:进行了为期一年的空气监测活动,以评估局部温度,相对湿度和风速对德克萨斯州埃尔帕索PM2.5的时空变化的影响。在四个专门选择的站点进行了监视,以捕获本地流量的变化。确定了气象事件对季节性PM2.5变异的影响。例如,在冬季,低风和低温条件与高PM2.5事件相关,导致PM2.5季节性升高。同样,在春季,高PM2.5事件与高风和低相对湿度条件相关。气象变量与PM2.5之间的相关系数随季节而剧烈波动。具体而言,据观察,对于大多数站点,PM2.5与气象变量之间的相关性根据季节从正变为负或已溶解。总体而言,结果表明,以季节和地点为固定因素,以气象变量作为协变量的混合效应分析可以提高LUR模型对PM2.5的解释价值。

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