Evaluation of OCO‐2 X Variability at Local and Synoptic Scales using Lidar and In Situ Observations from the ACT‐America Campaigns
作者:Emily Bell, C. O’Dell, K. J. Davis, J. F. Campbell, E. V. Browell, Scott Denning, J. T. Dobler, W. H. Erxleben, Tai‐Fang Fan, S. A. Kooi, Bing Lin, Sandip Pal, Brad Weir · 发表于:Journal of Geophysical Research Atmospheres · 年份:2020 · DOI:10.1029/2019jd031400 · 被引用次数:27 · 研究领域:Atmospheric and Environmental Gas Dynamics、Atmospheric chemistry and aerosols、Spectroscopy and Laser Applications
Abstract With nearly 1 million observations of column‐mean carbon dioxide concentration (X ) per day, the Orbiting Carbon Observatory 2 (OCO‐2) presents exciting possibilities for monitoring the global carbon cycle, including the detection of subcontinental column CO 2 variations. While the OCO‐2 data set has been shown to achieve target precision and accuracy on a single‐sounding level, the validation of X spatial gradients on subcontinental scales remains challenging. In this work, we investigate the use of an integrated path differential absorption (IPDA) lidar for evaluation of OCO‐2 observations via NASA's Atmospheric Carbon and Transport (ACT)‐America project. The project has completed eight clear‐sky underflights of OCO‐2 with the Multifunctional Fiber Laser Lidar (MFLL)—along with a suite of in situ instruments—giving a precisely colocated, high‐resolution validation data set spanning nearly 3,800 km across four seasons. We explore the challenges and opportunities involved in comparing the MFLL and OCO‐2 X data sets and evaluate their agreement on synoptic and local scales. We find that OCO‐2 synoptic‐scale gradients generally agree with those derived from the lidar, typically to ±0.1 ppm per degree latitude for gradients ranging in strength from 0 to 1 ppm per degree latitude. CO 2 reanalysis products also typically agree to ±0.25 ppm per degree when compared with an in situ‐informed CO 2 “curtain.” Real X features at local scales, however, remain challenging to obse...