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Similarities and differences of aerosol optical properties between southern and northern sides of the Himalayas

机译:喜马拉雅山南北两侧气溶胶光学性质的异同

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The Himalaya mountains along the southern edge of the Tibetan Plateau act as a natural barrier for the transport of atmospheric aerosols from the polluted regions of South Asia to the main body of the Tibetan Plateau. In this study, we investigate the seasonal and diurnal variations of aerosol optical properties measured at two Aerosol Robotic Network (AERONET) sites on the southern side of the Himalaya (Pokhara, 812 m above sea level (a.s.l.) and EVK2-CNR, 5079 m a.s.l. in Nepal) and one on the northern side (Qomolangma (Mt. Everest) station for Atmospheric and Environmental Observation and Research, Chinese Academy of Sciences (QOMS_CAS) in Tibet, 4076 m a.s.l. in China). While observations at QOMS_CAS and EVK2-CNR can generally be representative of a remote background atmosphere, Pokhara is a lower-elevation suburban site with much higher aerosol load due to both the influence of local anthropogenic activities and to its proximity to the Indo-Gangetic Plains. The annual mean aerosol optical depth (AOD) during the investigated period was 0.05 at QOMS_CAS, 0.04 at EVK2-CNR and 0.51 at Pokhara, respectively. Seasonal variations of aerosols are profoundly affected by large-scale atmospheric circulation. Vegetation fires, peaking during April in the Himalayan region and northern India, contribute to a growing fine mode AOD at the three stations. Dust transported to these sites, wind erosion and hydrated/cloud-processed aerosols lead to an increase in coarse mode AOD during the monsoon season at QOMS_CAS and EVK2-CNR. Meanwhile, coarse mode AOD at EVK2-CNR is higher than at QOMS_CAS in August and September, indicating that the transport of coarse mode aerosols from the southern to the northern side may be effectively reduced. The effect of precipitation scavenging is clearly seen at Pokhara, which sees significantly reduced aerosol loads during the monsoon season. Unlike the seasonal variations, diurnal variations are mainly influenced by meso-scale systems and local topography. The diurnal pattern in precipitation appears to contribute to diurnal changes in AOD through the effect of precipitation scavenging. AOD exhibits diurnal patterns related to emissions in Pokhara, while it does not at the other two high-altitude sites. At EVK2-CNR, the daytime airflow carries aerosols up from lower-altitude polluted regions, leading to increasing AOD, while the other two stations are less influenced by valley winds. Surface heating influences the local convection, which further controls the vertical aerosol exchange and the diffusion rate of pollution to the surrounding areas. Fine and coarse mode particles are mixed together on the southern side of the Himalaya in spring, which may lead to the greater inter-annual difference in diurnal cycles of ?ngstr?m exponent (AE) at EVK2-CNR than that at QOMS_CAS.
机译:青藏高原南部边缘的喜马拉雅山脉是从南亚受污染地区向青藏高原主体输送大气气溶胶的天然屏障。在这项研究中,我们调查了在喜马拉雅山南侧(博卡拉,海拔812 m(asl)和EVK2-CNR,5079 m)的两个气溶胶机器人网络(AERONET)站点测量的气溶胶光学特性的季节性和昼夜变化。尼泊尔的Asl)和北侧的一个(中国科学院(QOMS_CAS)的珠穆朗玛峰(珠穆朗玛峰)大气和环境观测与研究站,中国的4076 m asl)。虽然在QOMS_CAS和EVK2-CNR上的观测值通常可以代表偏远的背景大气,但由于本地人为活动的影响以及它靠近印度恒河平原的影响,博卡拉是一个气溶胶负荷高得多的低海拔郊区地区。 。在调查期间,年平均气溶胶光学深度(AOD)在QOMS_CAS为0.05,在EVK2-CNR为0.04,在博克拉为0.51。气溶胶的季节性变化受到大规模大气环流的深刻影响。植被大火在四月份在喜马拉雅地区和印度北部达到顶峰,这导致三个站的精细模式AOD不断增加。在QOMS_CAS和EVK2-CNR的季风季节,粉尘运到这些地点,风蚀和水合/云处理的气溶胶导致粗模式AOD增加。同时,EVK2-CNR在8月和9月的粗模式AOD高于QOMS_CAS,这表明从南侧到北侧的粗模式气溶胶的传输可能会被减少。在博克拉清楚地看到了清除降水的效果,在季风季节,气溶胶的含量大大降低了。与季节变化不同,昼夜变化主要受中尺度系统和局部地形的影响。降水中的昼夜模式似乎通过降水清除的作用促进了AOD的昼夜变化。在博克拉,AOD表现出与排放有关的昼夜模式,而在其他两个高海拔站点则没有。在EVK2-CNR,白天气流从低海拔污染区带走气溶胶,导致AOD增加,而其他两个站点受到谷风的影响较小。表面加热会影响局部对流,从而进一步控制垂直气溶胶交换以及污染物向周围区域的扩散速度。春季,喜马拉雅山的南侧将细模式和粗模式粒子混合在一起,这可能导致EVK2-CNR的ngstrfm指数(AE)的昼夜周期年际差异大于QOMS_CAS。

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