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首页> 外文期刊>Atmospheric chemistry and physics >Comparing the CarbonTracker and TM5-4DVar data assimilation systems for CO2 surface flux inversions
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Comparing the CarbonTracker and TM5-4DVar data assimilation systems for CO2 surface flux inversions

机译:比较用于二氧化碳表面通量反演的CarbonTracker和TM5-4DVar数据同化系统

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摘要

Data assimilation systems allow for estimating surface fluxes of greenhouse gases from atmospheric concentration measurements. Good knowledge about fluxes is essential to understand how climate change affects ecosystems and to characterize feedback mechanisms. Based on the assimilation of more than 1 year of atmospheric in situ concentration measurements, we compare the performance of two established data assimilation models, CarbonTracker and TM5-4DVar (Transport Model 5 - Four-Dimensional Variational model), for CO2 flux estimation. CarbonTracker uses an ensemble Kalman filter method to optimize fluxes on ecoregions. TM5-4DVar employs a 4-D variational method and optimizes fluxes on a 6 degrees x 4 degrees longitude-latitude grid. Harmonizing the input data allows for analyzing the strengths and weaknesses of the two approaches by direct comparison of the modeled concentrations and the estimated fluxes. We further assess the sensitivity of the two approaches to the density of observations and operational parameters such as the length of the assimilation time window.
机译:数据同化系统可以根据大气浓度测量值估算温室气体的表面通量。对通量的充分了解对于理解气候变化如何影响生态系统和表征反馈机制至关重要。基于对超过1年的大气原位浓度测量结果的同化,我们比较了两个已建立的数据同化模型CarbonTracker和TM5-4DVar(运输模型5-二维变分模型)对CO2通量估算的性能。 CarbonTracker使用集成卡尔曼滤波方法来优化生态区域上的通量。 TM5-4DVar采用4-D变分方法,并在6度x 4度的经纬度网格上优化了通量。协调输入数据可以通过直接比较建模浓度和估算通量来分析两种方法的优缺点。我们进一步评估了两种方法对观测密度和操作参数(如同化时间窗口的长度)的敏感性。

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