Exploring the factors responsible for aerosol asymmetric trends over Indo-Gangetic Plain using remote sensing observations

IF 1.8 4区 地球科学 Q3 GEOCHEMISTRY & GEOPHYSICS
Krishna Kumar Shukla , Raju Attada , Chandan Sarangi , Ravi Kumar Kunchala , Venkata Phanikumar Devulapalli
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Abstract

The present study investigates the influencing factors responsible for the asymmetry in aerosol optical depth (AOD) trends using long-term datasets (2003–2019) over western and eastern Indo-Gangetic Plain (IGP) regions during the pre-monsoon season. Analysis from Modern-Era Retrospective Analysis for Research and Applications Version-2 (MERRA-2) for different aerosols illustrates that dust aerosols dominate over the western IGP (W-IGP), while sulphate and carbonaceous aerosols (black carbon (BC) and organic carbon (OC)) majorly contributed to the total AOD over the eastern IGP (E-IGP). Our study reveals a significant decline in AOD over the W-IGP, while a rising trend over E-IGP from Moderate Resolution Imaging Spectroradiometer (MODIS) satellite observations. A dipole pattern in AOD trends over IGP indicates the aerosol loading from combined effects of various natural and anthropogenic emissions under favourable meteorological conditions over the W-IGP and E-IGP, respectively. Furthermore, the declining AOD trend over W-IGP is mainly attributed to increased pre-monsoonal rainfall, which supports the wet deposition, increases soil moisture, thus reducing soil erodibility, and correlates strongly with meteorological factors. The rising AOD trend over the E-IGP appears to be influenced by increased anthropogenic emissions (i.e., BC, OC, and sulphate) from the industrialization of the region, decreased rainfall, and enhanced westerly-induced advection of aerosols from W-IGP. Our study indicates that the regional meteorological variables and anthropogenic sources influence changes in the AOD trends over the IGP region.

利用遥感观测探究造成印度洋-甘肃平原上空气溶胶不对称趋势的因素
本研究利用印度洋-甘肃平原(IGP)西部和东部地区季风前季节的长期数据集(2003-2019 年),调查了气溶胶光学深度(AOD)趋势不对称的影响因素。针对不同气溶胶的现代-年代研究和应用回顾分析版本-2(MERRA-2)分析表明,在印度洋-甘地平原西部(W-IGP),尘埃气溶胶占主导地位,而在印度洋-甘地平原东部(E-IGP),硫酸盐气溶胶和碳质气溶胶(黑碳(BC)和有机碳(OC))是总 AOD 的主要来源。我们的研究显示,根据中分辨率成像分光仪(MODIS)卫星观测数据,西部国际政府间地理学计划(W-IGP)上空的 AOD 呈显著下降趋势,而东部国际政府间地理学计划(E-IGP)上空的 AOD 则呈上升趋势。IGP上空的AOD趋势呈偶极模式,表明在有利的气象条件下,W-IGP和E-IGP上空的气溶胶负荷分别来自各种自然和人为排放的综合影响。此外,W-IGP 上的 AOD 下降趋势主要归因于季风前降雨量的增加,这支持了湿沉积,增加了土壤湿度,从而降低了土壤的可侵蚀性,并且与气象因素密切相关。东IGP 上的 AOD 上升趋势似乎受到该地区工业化导致的人为排放(即 BC、OC 和硫酸盐)增加、降雨减少以及西IGP 的气溶胶西风平流增强的影响。我们的研究表明,区域气象变量和人为来源影响着 IGP 区域上空 AOD 趋势的变化。
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来源期刊
Journal of Atmospheric and Solar-Terrestrial Physics
Journal of Atmospheric and Solar-Terrestrial Physics 地学-地球化学与地球物理
CiteScore
4.10
自引率
5.30%
发文量
95
审稿时长
6 months
期刊介绍: The Journal of Atmospheric and Solar-Terrestrial Physics (JASTP) is an international journal concerned with the inter-disciplinary science of the Earth''s atmospheric and space environment, especially the highly varied and highly variable physical phenomena that occur in this natural laboratory and the processes that couple them. The journal covers the physical processes operating in the troposphere, stratosphere, mesosphere, thermosphere, ionosphere, magnetosphere, the Sun, interplanetary medium, and heliosphere. Phenomena occurring in other "spheres", solar influences on climate, and supporting laboratory measurements are also considered. The journal deals especially with the coupling between the different regions. Solar flares, coronal mass ejections, and other energetic events on the Sun create interesting and important perturbations in the near-Earth space environment. The physics of such "space weather" is central to the Journal of Atmospheric and Solar-Terrestrial Physics and the journal welcomes papers that lead in the direction of a predictive understanding of the coupled system. Regarding the upper atmosphere, the subjects of aeronomy, geomagnetism and geoelectricity, auroral phenomena, radio wave propagation, and plasma instabilities, are examples within the broad field of solar-terrestrial physics which emphasise the energy exchange between the solar wind, the magnetospheric and ionospheric plasmas, and the neutral gas. In the lower atmosphere, topics covered range from mesoscale to global scale dynamics, to atmospheric electricity, lightning and its effects, and to anthropogenic changes.
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