Observational constraints on entrainment and the entrainment interface layer in stratocumulus

Aircraft sampling of the stratocumulus-topped boundary layer (STBL) during the Physics of Stratocumulus Top (POST) experiment was primarily achieved using sawtooth flight patterns, during which the atmospheric layer 100 m above and below cloud top was sampled at a frequency of once every 2 min. The...

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Main Authors: J. K. Carman, D. L. Rossiter, D. Khelif, H. H. Jonsson, I. C. Faloona, P. Y. Chuang
Format: Article
Language:English
Published: Copernicus Publications 2012-11-01
Series:Atmospheric Chemistry and Physics
Online Access:http://www.atmos-chem-phys.net/12/11135/2012/acp-12-11135-2012.pdf
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author J. K. Carman
D. L. Rossiter
D. Khelif
H. H. Jonsson
I. C. Faloona
P. Y. Chuang
author_facet J. K. Carman
D. L. Rossiter
D. Khelif
H. H. Jonsson
I. C. Faloona
P. Y. Chuang
author_sort J. K. Carman
collection DOAJ
description Aircraft sampling of the stratocumulus-topped boundary layer (STBL) during the Physics of Stratocumulus Top (POST) experiment was primarily achieved using sawtooth flight patterns, during which the atmospheric layer 100 m above and below cloud top was sampled at a frequency of once every 2 min. The large data set that resulted from each of the 16 flights document the complex structure and variability of this interfacial region in a variety of conditions. In this study, we first describe some properties of the entrainment interface layer (EIL), where strong gradients in turbulent kinetic energy (TKE), potential temperature and moisture can be found. We find that defining the EIL by the first two properties tends to yield similar results, but that moisture can be a misleading tracer of the EIL. These results are consistent with studies using large-eddy simulations. We next utilize the POST data to shed light on and constrain processes relevant to entrainment, a key process in the evolution of the STBL that to-date is not well-represented even by high resolution models. We define "entrainment efficiency" as the ratio of the TKE consumed by entrainment to that generated within the STBL (primarily by cloud-top cooling). We find values for the entrainment efficiency that vary by 1.5 orders of magnitude, which is even greater than the one order magnitude that previous modeling results have suggested. Our analysis also demonstrates that the entrainment efficiency depends on the strength of the stratification of the EIL, but not on the TKE in the cloud top region. The relationships between entrainment efficiency and other STBL parameters serve as novel observational contraints for simulations of entrainment in such systems.
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spelling doaj.art-7ae1c047227a477ba5ccc72d9613fd732022-12-22T01:34:49ZengCopernicus PublicationsAtmospheric Chemistry and Physics1680-73161680-73242012-11-011222111351115210.5194/acp-12-11135-2012Observational constraints on entrainment and the entrainment interface layer in stratocumulusJ. K. CarmanD. L. RossiterD. KhelifH. H. JonssonI. C. FaloonaP. Y. ChuangAircraft sampling of the stratocumulus-topped boundary layer (STBL) during the Physics of Stratocumulus Top (POST) experiment was primarily achieved using sawtooth flight patterns, during which the atmospheric layer 100 m above and below cloud top was sampled at a frequency of once every 2 min. The large data set that resulted from each of the 16 flights document the complex structure and variability of this interfacial region in a variety of conditions. In this study, we first describe some properties of the entrainment interface layer (EIL), where strong gradients in turbulent kinetic energy (TKE), potential temperature and moisture can be found. We find that defining the EIL by the first two properties tends to yield similar results, but that moisture can be a misleading tracer of the EIL. These results are consistent with studies using large-eddy simulations. We next utilize the POST data to shed light on and constrain processes relevant to entrainment, a key process in the evolution of the STBL that to-date is not well-represented even by high resolution models. We define "entrainment efficiency" as the ratio of the TKE consumed by entrainment to that generated within the STBL (primarily by cloud-top cooling). We find values for the entrainment efficiency that vary by 1.5 orders of magnitude, which is even greater than the one order magnitude that previous modeling results have suggested. Our analysis also demonstrates that the entrainment efficiency depends on the strength of the stratification of the EIL, but not on the TKE in the cloud top region. The relationships between entrainment efficiency and other STBL parameters serve as novel observational contraints for simulations of entrainment in such systems.http://www.atmos-chem-phys.net/12/11135/2012/acp-12-11135-2012.pdf
spellingShingle J. K. Carman
D. L. Rossiter
D. Khelif
H. H. Jonsson
I. C. Faloona
P. Y. Chuang
Observational constraints on entrainment and the entrainment interface layer in stratocumulus
Atmospheric Chemistry and Physics
title Observational constraints on entrainment and the entrainment interface layer in stratocumulus
title_full Observational constraints on entrainment and the entrainment interface layer in stratocumulus
title_fullStr Observational constraints on entrainment and the entrainment interface layer in stratocumulus
title_full_unstemmed Observational constraints on entrainment and the entrainment interface layer in stratocumulus
title_short Observational constraints on entrainment and the entrainment interface layer in stratocumulus
title_sort observational constraints on entrainment and the entrainment interface layer in stratocumulus
url http://www.atmos-chem-phys.net/12/11135/2012/acp-12-11135-2012.pdf
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