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Development and validation of a long-term, global, terrestrial sensible heat flux dataset

Publication ,  Journal Article
Siemann, AL; Chaney, N; Wood, EF
Published in: Journal of Climate
August 1, 2018

Sensible heat flux is a turbulent flux driving interactions between the Earth's surface and the atmosphere, propelling local and regional climate. While turbulent fluxes are measured in situ, global scales require estimates at larger spatial scales, which can be made using remotely sensed satellite data. This study uses a first-order approximation to calculate the unconstrained hourly, terrestrial, 0.5°-resolution sensible heat flux using a land surface temperature consistent with the High Resolution Infrared Radiation Sounder (HIRS) retrievals, six reanalysis-based air temperature products, and a dataset of Zilitinkevich empirical constant Czil values. This sensible heat flux dataset is constrained using the daily Bowen ratio and available energy, to produce nine constrained, daily products. All resulting global, terrestrial averages are within the uncertainty range of ±6.3 W m-2 from the 38.8 W m-2 global annual average previously reported in the literature. The product constrained with the net radiation using the Moderate Resolution Infrared Spectroradiometer (MODIS) albedo and air temperature from the National Centers for Environmental Protection (NCEP) Climate Forecast System Reanalysis (CFSR) performs closest to the FLUXNET ground observations in the monthly analysis. These sensible heat flux estimates should be used for benchmarking global climate models at monthly or annual scales, and improvements should be made to the accuracy of input variables, particularly the temperature gradient, Czil estimates, and the roughness length.

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Published In

Journal of Climate

DOI

ISSN

0894-8755

Publication Date

August 1, 2018

Volume

31

Issue

15

Start / End Page

6073 / 6095

Related Subject Headings

  • Meteorology & Atmospheric Sciences
  • 3708 Oceanography
  • 3702 Climate change science
  • 3701 Atmospheric sciences
  • 0909 Geomatic Engineering
  • 0405 Oceanography
  • 0401 Atmospheric Sciences
 

Citation

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Siemann, A. L., Chaney, N., & Wood, E. F. (2018). Development and validation of a long-term, global, terrestrial sensible heat flux dataset. Journal of Climate, 31(15), 6073–6095. https://doi.org/10.1175/JCLI-D-17-0732.1
Siemann, A. L., N. Chaney, and E. F. Wood. “Development and validation of a long-term, global, terrestrial sensible heat flux dataset.” Journal of Climate 31, no. 15 (August 1, 2018): 6073–95. https://doi.org/10.1175/JCLI-D-17-0732.1.
Siemann AL, Chaney N, Wood EF. Development and validation of a long-term, global, terrestrial sensible heat flux dataset. Journal of Climate. 2018 Aug 1;31(15):6073–95.
Siemann, A. L., et al. “Development and validation of a long-term, global, terrestrial sensible heat flux dataset.” Journal of Climate, vol. 31, no. 15, Aug. 2018, pp. 6073–95. Scopus, doi:10.1175/JCLI-D-17-0732.1.
Siemann AL, Chaney N, Wood EF. Development and validation of a long-term, global, terrestrial sensible heat flux dataset. Journal of Climate. 2018 Aug 1;31(15):6073–6095.

Published In

Journal of Climate

DOI

ISSN

0894-8755

Publication Date

August 1, 2018

Volume

31

Issue

15

Start / End Page

6073 / 6095

Related Subject Headings

  • Meteorology & Atmospheric Sciences
  • 3708 Oceanography
  • 3702 Climate change science
  • 3701 Atmospheric sciences
  • 0909 Geomatic Engineering
  • 0405 Oceanography
  • 0401 Atmospheric Sciences