TY - JOUR
T1 - Overlap statistics of shallow boundary layer clouds: Comparing ground-based observations with large-eddy simulations
AU - Corbetta, G.
AU - Orlandi, E.
AU - Heus, T.
AU - Neggers, Roel A.J.
AU - Crewell, S.
PY - 2015/10/16
Y1 - 2015/10/16
N2 - High-resolution ground-based measurements are used to assess the realism of fine-scale numerical simulations of shallow cumulus cloud fields. The overlap statistics of cumuli as produced by large-eddy simulations (LES) are confronted with Cloudnet data sets at the Jülich Observatory for Cloud Evolution. The Cloudnet pixel is small enough to detect cumuliform cloud overlap. Cloud fraction masks are derived for five different cases, using gridded time-height data sets at various temporal and vertical resolutions. The overlap ratio (R), i.e., the ratio between cloud fraction by volume and by area, is studied as a function of the vertical resolution. Good agreement is found between R derived from observations and simulations. An inverse linear function is found to best describe the observed overlap behavior, confirming previous LES results. Simulated and observed decorrelation lengths are smaller (∼300 m) than previously reported (>1 km). A similar diurnal variation in the overlap efficiency is found in observations and simulations. Key Points Inefficient cloud overlap at small scales is now supported by observations Inverse linear functions best describe cloud overlap LES and observations both indicate a diurnal cycle in the overlap parameter
AB - High-resolution ground-based measurements are used to assess the realism of fine-scale numerical simulations of shallow cumulus cloud fields. The overlap statistics of cumuli as produced by large-eddy simulations (LES) are confronted with Cloudnet data sets at the Jülich Observatory for Cloud Evolution. The Cloudnet pixel is small enough to detect cumuliform cloud overlap. Cloud fraction masks are derived for five different cases, using gridded time-height data sets at various temporal and vertical resolutions. The overlap ratio (R), i.e., the ratio between cloud fraction by volume and by area, is studied as a function of the vertical resolution. Good agreement is found between R derived from observations and simulations. An inverse linear function is found to best describe the observed overlap behavior, confirming previous LES results. Simulated and observed decorrelation lengths are smaller (∼300 m) than previously reported (>1 km). A similar diurnal variation in the overlap efficiency is found in observations and simulations. Key Points Inefficient cloud overlap at small scales is now supported by observations Inverse linear functions best describe cloud overlap LES and observations both indicate a diurnal cycle in the overlap parameter
KW - boundary layer clouds
KW - cloud overlap
KW - cloud parameterization
KW - Cloudnet
KW - confronting models with observations
KW - LES
UR - https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=84946944567&origin=inward
UR - https://www.scopus.com/inward/citedby.uri?partnerID=HzOxMe3b&scp=84946944567&origin=inward
U2 - 10.1002/2015GL065140
DO - 10.1002/2015GL065140
M3 - Article
SN - 0094-8276
VL - 42
SP - 8185
EP - 8191
JO - Geophysical Research Letters
JF - Geophysical Research Letters
IS - 19
ER -