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Errors and improvements in the use of archived meteorological data for chemical transport modeling: an analysis using GEOS-Chem?v11-01 driven by GEOS-5 meteorology

机译:用于化学传输建模的存档气象数据的错误和改进:使用Geos-Chem的分析?V11-01由Geos-5气象驱动

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Global simulations of atmospheric chemistry are commonly conducted with off-line chemical transport models?(CTMs) driven by archived meteorological data from general circulation models?(GCMs). The off-line approach has the advantages of simplicity and expediency, but it incurs errors due to temporal averaging in the meteorological archive and the inability to reproduce the GCM transport algorithms exactly. The CTM simulation is also often conducted at coarser grid resolution than the parent GCM. Here we investigate this cascade of CTM errors by using sup222/supRn–sup210/supPb–sup7/supBe chemical tracer simulations off-line in the GEOS-Chem CTM at rectilinear 0.25° × 0.3125° (≈?25?km) and 2° × 2.5° (≈?200?km) resolutions and online in the parent GEOS-5 GCM at cubed-sphere?c360 (≈?25?km) and c48 (≈?200?km) horizontal resolutions. The c360 GEOS-5 GCM meteorological archive, updated every 3?h and remapped to 0.25° × 0.3125°, is the standard operational product generated by the NASA Global Modeling and Assimilation Office?(GMAO) and used as input by GEOS-Chem. We find that the GEOS-Chem sup222/supRn simulation at native 0.25° × 0.3125° resolution is affected by vertical transport errors of up to 20?% relative to the GEOS-5?c360 online simulation, in part due to loss of transient organized vertical motions in the GCM (resolved convection) that are temporally averaged out in the 3?h meteorological archive. There is also significant error caused by operational remapping of the meteorological archive from a cubed-sphere to a rectilinear grid. Decreasing the GEOS-Chem resolution from 0.25° × 0.3125° to 2° × 2.5° induces further weakening of vertical transport as transient vertical motions are averaged out spatially and temporally. The resulting sup222/supRn concentrations simulated by the coarse-resolution GEOS-Chem are overestimated by up to 40?% in surface air relative to the online c360 simulations and underestimated by up to 40?% in the upper troposphere, while the tropospheric lifetimes of sup210/supPb and sup7/supBe against aerosol deposition are affected by 5–10?%. The lost vertical transport in the coarse-resolution GEOS-Chem simulation can be partly restored by recomputing the convective mass fluxes at the appropriate resolution to replace the archived convective mass fluxes and by correcting for bias in the spatial averaging of boundary layer mixing depths.
机译:全球仿真大气化学通常用离线化学传输模型进行?(CTMS)由一般循环模型的存档气象数据驱动驱动?(GCMS)。离线方法具有简单性和权宜之计的优点,但由于气象归档中的时间平均值,它会引起错误,并且无法完全重现GCM传输算法。 CTM模拟通常在较粗糙的网格分辨率下比父GCM进行。在这里,我们通过使用Geos-Chem在线上脱离线路的 222 rn- 210 Pb- 7 PB- 7 PB- 7 。在直线的CTM 0.25°×0.3125°(≈25μm)和2°×2.5°(≈1m≤km)分辨率和在父母GEOS-5 GCM中的分辨率在立方 - 球体?C360(≈α25Ω·km )和C48(≈1mb)水平分辨率。 C360 Geos-5 GCM气象档案,每3次更新一次,并重新映射到0.25°×0.3125°,是NASA全球建模和同化办公室产生的标准操作产品吗?(GMAO)并用作Geos-Chem的投入。我们发现Geos-Chem 222在天然0.25°×0.3125°分辨率下的垂直传输误差相对于Geos-5的垂直传输误差影响,部分由于GCM(已解决的对流)中的瞬态有组织垂直运动丢失,这些垂直运动在3?H气象档案中暂时平均。由于从立方体到直线网格的移动归档而导致气象归档的操作重新引起的显着误差。从0.25°×0.3125°减小到2°×2.5°的Geos-Chem分辨率引起垂直传输的进一步削弱,因为瞬态垂直运动在空间上和时间上平均。由粗分辨率的Geos-chem模拟的得到的 222 rn浓度相对于在线C360模拟,在表面空气中高达40μm,并在上层对流层中低至40℃下低估而且, 210s pb和 7 抵抗气溶胶沉积的对流层寿命受5-10μm的影响。通过在适当的分辨率下重新计算对流质量通量来部分地恢复粗分辨率的垂直传输,以替换存档的对流质量通量并通过校正边界层混合深度的空间平均中的偏置。

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