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On the variability of the Priestley-Taylor coefficient over water bodies

Publication ,  Journal Article
Assouline, S; Li, D; Tyler, S; Tanny, J; Cohen, S; Bou-Zeid, E; Parlange, M; Katul, GG
Published in: Water Resources Research
January 1, 2016

Deviations in the Priestley-Taylor (PT) coefficient αPT from its accepted 1.26 value are analyzed over large lakes, reservoirs, and wetlands where stomatal or soil controls are minimal or absent. The data sets feature wide variations in water body sizes and climatic conditions. Neither surface temperature nor sensible heat flux variations alone, which proved successful in characterizing αPT variations over some crops, explain measured deviations in αPT over water. It is shown that the relative transport efficiency of turbulent heat and water vapor is key to explaining variations in αPT over water surfaces, thereby offering a new perspective over the concept of minimal advection or entrainment introduced by PT. Methods that allow the determination of αPT based on low-frequency sampling (i.e., 0.1 Hz) are then developed and tested, which are usable with standard meteorological sensors that filter some but not all turbulent fluctuations. Using approximations to the Gram determinant inequality, the relative transport efficiency is derived as a function of the correlation coefficient between temperature and water vapor concentration fluctuations (RTq). The proposed approach reasonably explains the measured deviations from the conventional αPT = 1.26 value even when RTq is determined from air temperature and water vapor concentration time series that are Gaussian-filtered and subsampled to a cutoff frequency of 0.1 Hz. Because over water bodies, RTq deviations from unity are often associated with advection and/or entrainment, linkages between αPT and RTq offer both a diagnostic approach to assess their significance and a prognostic approach to correct the 1.26 value when using routine meteorological measurements of temperature and humidity.

Duke Scholars

Published In

Water Resources Research

DOI

EISSN

1944-7973

ISSN

0043-1397

Publication Date

January 1, 2016

Volume

52

Issue

1

Start / End Page

150 / 163

Related Subject Headings

  • Environmental Engineering
  • 4011 Environmental engineering
  • 4005 Civil engineering
  • 3707 Hydrology
  • 0907 Environmental Engineering
  • 0905 Civil Engineering
  • 0406 Physical Geography and Environmental Geoscience
 

Citation

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Assouline, S., Li, D., Tyler, S., Tanny, J., Cohen, S., Bou-Zeid, E., … Katul, G. G. (2016). On the variability of the Priestley-Taylor coefficient over water bodies. Water Resources Research, 52(1), 150–163. https://doi.org/10.1002/2015WR017504
Assouline, S., D. Li, S. Tyler, J. Tanny, S. Cohen, E. Bou-Zeid, M. Parlange, and G. G. Katul. “On the variability of the Priestley-Taylor coefficient over water bodies.” Water Resources Research 52, no. 1 (January 1, 2016): 150–63. https://doi.org/10.1002/2015WR017504.
Assouline S, Li D, Tyler S, Tanny J, Cohen S, Bou-Zeid E, et al. On the variability of the Priestley-Taylor coefficient over water bodies. Water Resources Research. 2016 Jan 1;52(1):150–63.
Assouline, S., et al. “On the variability of the Priestley-Taylor coefficient over water bodies.” Water Resources Research, vol. 52, no. 1, Jan. 2016, pp. 150–63. Scopus, doi:10.1002/2015WR017504.
Assouline S, Li D, Tyler S, Tanny J, Cohen S, Bou-Zeid E, Parlange M, Katul GG. On the variability of the Priestley-Taylor coefficient over water bodies. Water Resources Research. 2016 Jan 1;52(1):150–163.
Journal cover image

Published In

Water Resources Research

DOI

EISSN

1944-7973

ISSN

0043-1397

Publication Date

January 1, 2016

Volume

52

Issue

1

Start / End Page

150 / 163

Related Subject Headings

  • Environmental Engineering
  • 4011 Environmental engineering
  • 4005 Civil engineering
  • 3707 Hydrology
  • 0907 Environmental Engineering
  • 0905 Civil Engineering
  • 0406 Physical Geography and Environmental Geoscience