An assessment of Arctic cloud water paths in atmospheric reanalyses

被引:0
|
作者
Mingyi Gu
Zhaomin Wang
Jianfen Wei
Xiaoyong Yu
机构
[1] Nanjing University of Information Science and Technology,School of Atmospheric Science
[2] Hohai University,College of Oceanography
[3] Nanjing University of Information Science and Technology,School of Environmental Science and Engineering
[4] Nanjing University of Information Science and Technology,Institute for Climate and Application Research (ICAR)
[5] Nanjing University of Information Science and Technology,School of Marine Sciences
[6] Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai),undefined
来源
Acta Oceanologica Sinica | 2021年 / 40卷
关键词
Arctic; clouds; cloud water paths (CWPs); reanalysis evaluation;
D O I
暂无
中图分类号
学科分类号
摘要
The role of Arctic clouds in the recent rapid Arctic warming has attracted much attention. However, Arctic cloud water paths (CWPs) from reanalysis datasets have not been well evaluated. This study evaluated the CWPs as well as LWPs (cloud liquid water paths) and IWPs (cloud ice water paths) from five reanalysis datasets (MERRA-2, MERRA, ERA-Interim, JRA-55, and ERA5) against the COSP (Cloud Feedback Model Intercomparison Project Observations Simulator Package) output for MODIS from the MERRA-2 CSP (COSP satellite simulator) collection (defined as M2Modis in short). Averaged over 1980–2015 and over the Arctic region (north of 60°N), the mean CWPs of these five datasets range from 49.5 g/m2 (MERRA) to 82.7 g/m2 (ERA-Interim), much smaller than that from M2Modis (140.0 g/m2). However, the spatial distributions of CWPs, show similar patterns among these reanalyses, with relatively small values over Greenland and large values over the North Atlantic. Consistent with M2Modis, these reanalyses show larger LWPs than IWPs, except for ERA-Interim. However, MERRA-2 and MERRA underestimate the ratio of IWPs to CWPs over the entire Arctic, while ERA-Interim and JRA-55 overestimate this ratio. ERA5 shows the best performance in terms of the ratio of IWPs to CWPs. All datasets exhibit larger CWPs and LWPs in summer than in winter. For M2Modis, IWPs hold seasonal variation similar with LWPs over the land but opposite over the ocean. Following the Arctic warming, the trends in LWPs and IWPs during 1980–2015 show that LWPs increase and IWPs decrease across all datasets, although not statistically significant. Correlation analysis suggests that all datasets have similar interannual variability. The study further found that the inclusion of re-evaporation processes increases the humidity in the atmosphere over the land and that a more realistic liquid/ice phase can be obtained by independently treating the liquid and ice water contents.
引用
收藏
页码:46 / 57
页数:11
相关论文
共 50 条
  • [41] Evaluation and Intercomparison of Cloud Fraction and Radiative Fluxes in Recent Reanalyses over the Arctic Using BSRN Surface Observations
    Zib, Behnjamin J.
    Dong, Xiquan
    Xi, Baike
    Kennedy, Aaron
    JOURNAL OF CLIMATE, 2012, 25 (07) : 2291 - 2305
  • [42] The Atmospheric Water Cycle Over South America as Seen in the New Generation of Global Reanalyses
    Quadro, Mario F. L.
    Berbery, Ernesto H.
    Silva Dias, Maria A. F.
    Herdies, Dirceu L.
    Goncalves, Luis G. G.
    RADIATION PROCESSES IN THE ATMOSPHERE AND OCEAN (IRS2012), 2013, 1531 : 732 - 735
  • [43] Fidelity of ENSO-associated atmospheric feedbacks in atmospheric reanalyses
    Hu, Zeng-Zhen
    Tan, Wei
    Zhang, Li
    Kumar, Arun
    Ebisuzaki, Wesley
    Li, Juan
    CLIMATE DYNAMICS, 2025, 63 (01)
  • [44] Controlled meteorological (CMET) free balloon profiling of the Arctic atmospheric boundary layer around Spitsbergen compared to ERA-Interim and Arctic System Reanalyses
    Roberts, Tjarda J.
    Dutsch, Marina
    Hole, Lars R.
    Voss, Paul B.
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2016, 16 (19) : 12383 - 12396
  • [45] Atmospheric observations of liquid water in cloud and of chemical species in aerosols and gases near the ground and in fallen snow at Svalbard, Arctic
    Wada, M
    Igarashi, M
    ATMOSPHERIC RESEARCH, 1998, 46 (3-4) : 383 - 389
  • [46] Retrievals of atmospheric temperature and water vapor profiles in the Arctic
    Liljegren, James C.
    Cadeddu, Maria P.
    Pazmany, Andrew
    2006 IEEE MICRORAD, 2006, : 241 - +
  • [47] The atmospheric hydrologic cycle over the Arctic basin from reanalyses. Part I: Comparison with observations and previous studies
    Cullather, RI
    Bromwich, DH
    Serreze, MC
    JOURNAL OF CLIMATE, 2000, 13 (05) : 923 - 937
  • [48] Spatiotemporal Variations in Summertime Arctic Aerosol Optical Depth Caused by Synoptic-Scale Atmospheric Circulation in Three Reanalyses
    Yamagami, A.
    Kajino, M.
    Maki, T.
    Toyoda, T.
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2023, 128 (22)
  • [49] Effect of Cloud Water Content on the Atmospheric Extinction
    Wang, Xiying
    Niu, Chenji
    Qi, Hong
    Ruan, Liming
    2011 2ND INTERNATIONAL CONFERENCE ON CHALLENGES IN ENVIRONMENTAL SCIENCE AND COMPUTER ENGINEERING (CESCE 2011), VOL 11, PT C, 2011, 11 : 1493 - 1498
  • [50] Climatology of Total Cloudiness in the Arctic: An Intercomparison of Observations and Reanalyses
    Chernokulsky, Alexander
    Mokhov, Igor I.
    ADVANCES IN METEOROLOGY, 2012, 2012