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Vertical profiles of nocturnal boundary layer chemistry in polluted urban environments: Field observations and model studies.

机译:在受污染的城市环境中夜间边界层化学物质的垂直剖面:实地观察和模型研究。

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Nocturnal chemistry in the atmospheric boundary layer determines initial chemical conditions for morning photochemistry and influences the budgets of O3 and NO2. Despite its importance, chemistry in the nocturnal boundary layer (NBL), especially in heavily polluted urban areas, has received surprisingly little attention so far. In particular, the influence of vertical mixing on chemical processes leads to complex vertical profiles of reactive species and makes NBL chemistry altitude-dependent. The processing of pollutants is thus driven by a complicated, and not well understood, interplay between chemistry and vertical mixing.; To gain a better understanding of NBL chemistry in urban environments, a field study was carried out in the downtown area of Phoenix, AZ. Vertical profiles of reactive species such as O3, NO2, and NO 3 were observed in the lowest 140 m of the troposphere. The disappearance of vertical profiles during the morning coincided with the transition from a stable NBL to a well-mixed convective layer. The vertical profiles were dependent on both surface NOx emissions and the vertical stability of the NBL. The analysis of Ox (the sum of O3 and NO 2) vertical distribution reveals the dominant role of the O3+NO reaction for the vertical variations of NBL chemistry in typical urban areas. Dry deposition, direct emissions, and other chemical pathways also play a role in some circumstances. Strong positive NO3 vertical gradients are predominantly determined by NO3 loss processes and the vertical distribution of the reservoir species (N2O5). The altitude-dependent NO3-N2O5 chemistry suggests complex vertical distributions of atmospheric denoxification, which is critical for nocturnal Ox loss. A 1-D chemical transport model was applied to study these vertical profiles and the relevant chemical processes. Model results agree well with the general features of observed profiles, showing its applicability for describing the altitude-dependent NBL chemistry and predicting the initial atmospheric conditions for photochemistry in typical urban areas. The NBL Ox budget and the ultimate impact on O3 levels are discussed based on field observations and model results. Although the nighttime O x loss dominates the O3 reduction in clean areas, the NO x accumulation in a polluted urban NBL is found to have a strong impact on morning O3 levels.
机译:大气边界层的夜间化学决定了早晨光化学的初始化学条件,并影响了O3和NO2的预算。尽管具有重要意义,但迄今为止,夜间边界层(NBL)中的化学物质(尤其是在污染严重的城市地区)很少受到关注。特别地,垂直混合对化学过程的影响导致反应物种的垂直分布复杂,并使NBL化学高度依赖性。因此,污染物的处理是由化学反应和垂直混合之间复杂的,尚未充分理解的相互作用驱动的。为了更好地了解城市环境中的NBL化学,我们在亚利桑那州菲尼克斯市区进行了现场研究。在对流层最低的140 m处观察到了诸如O3,NO2和NO 3等反应性物质的垂直剖面。早晨垂直剖面的消失与从稳定的NBL过渡到充分混合的对流层相吻合。垂直轮廓取决于表面NOx排放量和NBL的垂直稳定性。对Ox(O3和NO 2的总和)垂直分布的分析揭示了O3 + NO反应对于典型城市地区NBL化学物质垂直变化的主导作用。在某些情况下,干沉积,直接排放和其他化学途径也起作用。强烈的NO3垂直正梯度主要由NO3损失过程和储层物质(N2O5)​​的垂直分布确定。取决于海拔高度的NO3-N2O5化学物质表明大气中的脱氧反应具有复杂的垂直分布,这对于夜间的氧气损失至关重要。一维化学传输模型用于研究这些垂直剖面和相关的化学过程。模型结果与观察到的剖面的总体特征非常吻合,表明其可用于描述依赖于海拔的NBL化学和预测典型城市地区光化学的初始大气条件。基于野外观察和模型结果,讨论了NBL Ox预算和对O3含量的最终影响。尽管夜间Ox的损失在清洁区域的O3减少中占主导地位,但发现污染的城市NBL中的NOx积累对早晨的O3水平有很大影响。

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