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Role of large eddies in the breakdown of the Reynolds analogy in an idealized mildly unstable atmospheric surface layer

Publication ,  Journal Article
McColl, KA; van Heerwaarden, CC; Katul, GG; Gentine, P; Entekhabi, D
Published in: Quarterly Journal of the Royal Meteorological Society
July 1, 2017

While the breakdown in similarity between turbulent transport of heat and momentum (or Reynolds analogy) is not disputed in the atmospheric surface layer (ASL) under unstably stratified conditions, the causes of this breakdown are still debated. One reason for the breakdown is differences between how coherent structures transport heat and momentum, and their differing responses to increasing instability. Monin—Obukhov Similarity Theory (MOST), which hypothesizes that only local length-scales play a role in ASL turbulent transport, implicitly assumes that large-scale structures are inactive, despite their large energy content. Widely adopted mixing-length models also rest on this assumption in the ASL. The difficulty of characterizing low-wavenumber turbulent motions with field measurements motivates the use of high-resolution Direct Numerical Simulation (DNS), which is free from subgrid-scale parametrizations and adhoc assumptions near the boundary. Despite the low Reynolds number and idealized geometry of the DNS, DNS-estimated MOST functions are consistent with ASL field experiments, as are low-frequency features of the spectra. Parsimonious spectral models for MO stability correction functions for momentum (φm) and heat (φh) are derived, based on idealized vertical velocity variance and buoyancy variance spectra fit to the corresponding DNS spectra. For φm, a spectral model, based only on local length-scales, matches DNS and field measurements well. In contrast, for φh, the model is substantially biased unless contributions from larger length-scales are also included. These results are supported by sensitivity analyses based on field measurements that are independent of the DNS. They show that ASL heat transport is not MO-similar, even under mild stratification, and in the absence of entrainment, non-stationarity and canopy effects. It further suggests that the breakdown of the Reynolds analogy is at least partially caused by the influence of large eddies on turbulent heat transport.

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Published In

Quarterly Journal of the Royal Meteorological Society

DOI

EISSN

1477-870X

ISSN

0035-9009

Publication Date

July 1, 2017

Volume

143

Issue

706

Start / End Page

2182 / 2197

Related Subject Headings

  • Meteorology & Atmospheric Sciences
  • 3701 Atmospheric sciences
  • 0406 Physical Geography and Environmental Geoscience
  • 0405 Oceanography
  • 0401 Atmospheric Sciences
 

Citation

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McColl, K. A., van Heerwaarden, C. C., Katul, G. G., Gentine, P., & Entekhabi, D. (2017). Role of large eddies in the breakdown of the Reynolds analogy in an idealized mildly unstable atmospheric surface layer. Quarterly Journal of the Royal Meteorological Society, 143(706), 2182–2197. https://doi.org/10.1002/qj.3077
McColl, K. A., C. C. van Heerwaarden, G. G. Katul, P. Gentine, and D. Entekhabi. “Role of large eddies in the breakdown of the Reynolds analogy in an idealized mildly unstable atmospheric surface layer.” Quarterly Journal of the Royal Meteorological Society 143, no. 706 (July 1, 2017): 2182–97. https://doi.org/10.1002/qj.3077.
McColl KA, van Heerwaarden CC, Katul GG, Gentine P, Entekhabi D. Role of large eddies in the breakdown of the Reynolds analogy in an idealized mildly unstable atmospheric surface layer. Quarterly Journal of the Royal Meteorological Society. 2017 Jul 1;143(706):2182–97.
McColl, K. A., et al. “Role of large eddies in the breakdown of the Reynolds analogy in an idealized mildly unstable atmospheric surface layer.” Quarterly Journal of the Royal Meteorological Society, vol. 143, no. 706, July 2017, pp. 2182–97. Scopus, doi:10.1002/qj.3077.
McColl KA, van Heerwaarden CC, Katul GG, Gentine P, Entekhabi D. Role of large eddies in the breakdown of the Reynolds analogy in an idealized mildly unstable atmospheric surface layer. Quarterly Journal of the Royal Meteorological Society. 2017 Jul 1;143(706):2182–2197.
Journal cover image

Published In

Quarterly Journal of the Royal Meteorological Society

DOI

EISSN

1477-870X

ISSN

0035-9009

Publication Date

July 1, 2017

Volume

143

Issue

706

Start / End Page

2182 / 2197

Related Subject Headings

  • Meteorology & Atmospheric Sciences
  • 3701 Atmospheric sciences
  • 0406 Physical Geography and Environmental Geoscience
  • 0405 Oceanography
  • 0401 Atmospheric Sciences