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首页> 外文期刊>Journal of Geophysical Research, D. Atmospheres: JGR >Planetary boundary layer errors inmesoscale inversions of column-integrated CO_2 measurements
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Planetary boundary layer errors inmesoscale inversions of column-integrated CO_2 measurements

机译:行星边界层误差引起的柱积分CO_2测量结果的中尺度反演

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Observing platforms of greenhouse gas column mole fractions using remote sensing instruments have enhanced the capability of carbon data assimilation systems at large scales and helped improve our understanding of the underlying processes involved in the exchange of carbon at the surface of the globe. In this study, we quantify the additional information carried by these measurements at finer scales and consider the impact of vertical transport errors in current modeling systems, one of the main sources of uncertainties in regional inverse flux estimates. Surface-based column-integrated sensors are shown to be a significant source of information to constrain local surface fluxes at fine scales. Gain and error reduction are only about 20% lower than for in situ instruments. Column measurements show less dependence on near-field surface fluxes compared to in situ, with the error reduction being more homogeneously distributed. However, vertical transport errors still impact the flux retrievals, as with in situ measurements but to a lesser extent. Inverse fluxes from both types of measurements were affected by errors in vertical mixing and mean horizontal winds, with a larger impact on the inverse carbon balance using in situ measurements. The use of remote sensing measurements also appeared to constrain significantly the boundary concentrations, a critical limitation in current regional inversions. We finally performed a pseudo-data experiment combining both types of instruments, creating an optimal observing network with a lower impact of planetary boundary layer transport errors on the surface fluxes and the boundary concentrations, and a more widely distributed reduction of the errors over the boundaries.
机译:使用遥感仪器观测温室气体柱摩尔分数的平台,已增强了大规模碳数据同化系统的能力,并有助于增进我们对地球表面碳交换所涉及的潜在过程的了解。在这项研究中,我们以较小的规模量化了这些测量所携带的其他信息,并考虑了当前建模系统中垂直传输误差的影响,当前建模系统是区域逆通量估计的不确定性的主要来源之一。基于表面的列集成传感器显示为重要信息来源,可在小范围内约束局部表面通量。增益和误差减少仅比现场仪器低约20%。与原位测量相比,柱测量结果显示出对近场表面通量的依赖性更小,误差减小的分布更均匀。但是,垂直传输误差仍会影响磁通量的恢复,与原位测量一样,但程度较小。两种测量方法的反向通量都受到垂直混合和平均水平风的误差的影响,使用原位测量对反向碳平衡的影响更大。遥感测量的使用似乎也显着限制了边界浓度,这是当前区域反演的一个关键限制。最后,我们结合两种类型的仪器进行了伪数据实验,创建了一个最优的观测网络,其行星边界层传输误差对表面通量和边界浓度的影响较小,并且边界上误差的分布范围更广。

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