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contributor authorHouston, Adam L.
contributor authorNiyogi, Dev
date accessioned2017-06-09T17:28:41Z
date available2017-06-09T17:28:41Z
date copyright2007/09/01
date issued2007
identifier issn0027-0644
identifier otherams-85996.pdf
identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4229504
description abstractNumerical experiments are conducted using an idealized cloud-resolving model to explore the sensitivity of deep convective initiation (DCI) to the lapse rate of the active cloud-bearing layer [ACBL; the atmospheric layer above the level of free convection (LFC)]. Clouds are initiated using a new technique that involves a preexisting airmass boundary initialized such that the (unrealistic) adjustment of the model state variables to the imposed boundary is disassociated from the simulation of convection. Reference state environments used in the experiment suite have identical mixed layer values of convective inhibition, CAPE, and LFC as well as identical profiles of relative humidity and wind. Of the six simulations conducted for the experiment set, only the three environments with the largest ACBL lapse rates support DCI. The simulated deep convection is initiated from elevated sources (parcels in the convective clouds originate near 1300 m) despite the presence of a surface-based boundary. Thermal instability release is found to be more likely in the experiments with larger ACBL lapse rates because the forced ascent at the preexisting boundary is stronger (despite nearly identical boundary depths) and because the parcels? LFCs are lower, irrespective of parcel dilution. In one experiment without deep convection, DCI failure occurs even though thermal instability is released. Results from this experiment along with the results from a heuristic Lagrangian model reveal the existence of two convective regimes dependent on the environmental lapse rate: a supercritical state capable of supporting DCI and a subcritical state that is unlikely to support DCI. Under supercritical conditions the rate of increase in buoyancy due to parcel ascent exceeds the reduction in buoyancy due to dilution. Under subcritical conditions, the rate of increase in buoyancy due to parcel ascent is outpaced by the rate of reduction in buoyancy from dilution. Overall, results demonstrate that the lapse rate of the ACBL is useful in diagnosing and/or predicting DCI.
publisherAmerican Meteorological Society
titleThe Sensitivity of Convective Initiation to the Lapse Rate of the Active Cloud-Bearing Layer
typeJournal Paper
journal volume135
journal issue9
journal titleMonthly Weather Review
identifier doi10.1175/MWR3449.1
journal fristpage3013
journal lastpage3032
treeMonthly Weather Review:;2007:;volume( 135 ):;issue: 009
contenttypeFulltext


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