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首页> 外文期刊>Current Science: A Fortnightly Journal of Research >Evaluation of PM2.5 forecast using chemical data assimilation in the WRF-Chem model: a novel initiative under the Ministry of Earth Sciences Air Quality Early Warning System for Delhi, India
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Evaluation of PM2.5 forecast using chemical data assimilation in the WRF-Chem model: a novel initiative under the Ministry of Earth Sciences Air Quality Early Warning System for Delhi, India

机译:WRF-Chem模型中化学数据同化的PM2.5预测评价:印度德里德里地球科学部的新倡议

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摘要

Air quality has become one of the most important environmental concerns for Delhi, India. In this perspective, we have developed a high-resolution air quality prediction system for Delhi based on chemical data assimilation in the chemical transport model Weather Research and Forecasting with Chemistry (WRF-Chem). The data assimilation system was applied to improve the PM2.5 forecast via assimilation of MODIS aerosol optical depth retrievals using three-dimensional variational data analysis scheme. Near real-time MODIS fire count data were applied simultaneously to adjust the fire-emission inputs of chemical species before the assimilation cycle. Carbon monoxide (CO) emissions from biomass burning, anthropogenic emissions, and CO inflow from the domain boundaries were tagged to understand the contribution of local and non-local emission sources. We achieved significant improvements for surface PM2.5 forecast with joint adjustment of initial conditions and fire emissions.
机译:空气质量已成为印度德里最重要的环境问题之一。 在这种观点中,我们基于化学运输模型天气研究和化学预测(WRF-Chem)的化学数据同化,开发了德里高分辨率空气质量预测系统。 应用数据同化系统通过使用三维变分数据分析方案同化改变MODIS气溶胶光学深度检索的PM2.5预测。 近实时Modis Fire Count数据同时应用,以在同化周期之前调整化学物质的火力排放输入。 标记来自生物质燃烧,人为排放的一氧化碳(CO)排放,域名边界的燃烧和CO流入,以了解本地和非局部排放来源的贡献。 我们对表面PM2.5的预测取得了重大改进,并通过联合调整初始条件和火灾排放。

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