Literature DB >> 33868502

Minimum aerosol layer detection sensitivities and their subsequent impacts on aerosol optical thickness retrievals in CALIPSO level 2 data products.

Travis D Toth1, James R Campbell2, Jeffrey S Reid2, Jason L Tackett3, Mark A Vaughan4, Jianglong Zhang1, Jared W Marquis1.   

Abstract

Due to instrument sensitivities and algorithm detection limits, level 2 (L2) Cloud-Aerosol Lidar with Orthogonal Polarization (CALIOP) 532nm aerosol extinction profile retrievals are often populated with retrieval fill values (RFVs), which indicate the absence of detectable levels of aerosol within the profile. In this study, using 4 years (2007-2008 and 2010-2011) of CALIOP version 3 L2 aerosol data, the occurrence frequency of daytime CALIOP profiles containing all RFVs (all-RFV profiles) is studied. In the CALIOP data products, the aerosol optical thickness (AOT) of any all-RFV profile is reported as being zero, which may introduce a bias in CALIOP-based AOT climatologies. For this study, we derive revised estimates of AOT for all-RFV profiles using collocated Moderate Resolution Imaging Spectroradiometer (MODIS) Dark Target (DT) and, where available, AErosol RObotic NEtwork (AERONET) data. Globally, all-RFV profiles comprise roughly 71% of all daytime CALIOP L2 aerosol profiles (i.e., including completely attenuated profiles), accounting for nearly half (45 %) of all daytime cloud-free L2 aerosol profiles. The mean collocated MODIS DT (AERONET) 550 nm AOT is found to be near 0.06 (0.08) for CALIOP all-RFV profiles. We further estimate a global mean aerosol extinction profile, a so-called "noise floor", for CALIOP all-RFV profiles. The global mean CALIOP AOT is then recomputed by replacing RFV values with the derived noise-floor values for both all-RFV and non-all-RFV profiles. This process yields an improvement in the agreement of CALIOP and MODIS over-ocean AOT.

Entities:  

Year:  2018        PMID: 33868502      PMCID: PMC8051137          DOI: 10.5194/amt-11-499-2018

Source DB:  PubMed          Journal:  Atmos Meas Tech        ISSN: 1867-1381            Impact factor:   4.176


  2 in total

1.  Approach to simultaneously denoise and invert backscatter and extinction from photon-limited atmospheric lidar observations.

Authors:  Willem J Marais; Robert E Holz; Yu Hen Hu; Ralph E Kuehn; Edwin E Eloranta; Rebecca M Willett
Journal:  Appl Opt       Date:  2016-10-10       Impact factor: 1.980

2.  Quantifying the low bias of CALIPSO's column aerosol optical depth due to undetected aerosol layers.

Authors:  Man-Hae Kim; Ali H Omar; Mark A Vaughan; David M Winker; Charles R Trepte; Yongxiang Hu; Zhaoyan Liu; Sang-Woo Kim
Journal:  J Geophys Res Atmos       Date:  2017-01-27       Impact factor: 4.261

  2 in total

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