A simplified model of precipitation enhancement over a heterogeneous surface
Soil moisture heterogeneities influence the onset of convection and subsequent evolution of precipitating systems through the triggering of mesoscale circulations. However, local evaporation also plays a role in determining precipitation amounts. Here we aim at disentangling the effect of advect...
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Copernicus Publications
2018-06-01
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doaj-b4d9b98cc93d42659e23ca27ae7715de2020-11-24T22:36:05ZengCopernicus PublicationsHydrology and Earth System Sciences1027-56061607-79382018-06-01223197321210.5194/hess-22-3197-2018A simplified model of precipitation enhancement over a heterogeneous surfaceG. Cioni0G. Cioni1G. Cioni2C. Hohenegger3C. Hohenegger4Max Planck Institute for Meteorology, Hamburg, GermanyInternational Max-Planck Research School on Earth System Modelling, Hamburg, GermanyHans-Ertel-Zentrum for Weather ResearchMax Planck Institute for Meteorology, Hamburg, GermanyHans-Ertel-Zentrum for Weather ResearchSoil moisture heterogeneities influence the onset of convection and subsequent evolution of precipitating systems through the triggering of mesoscale circulations. However, local evaporation also plays a role in determining precipitation amounts. Here we aim at disentangling the effect of advection and evaporation on precipitation over the course of a diurnal cycle by formulating a simple conceptual model. The derivation of the model is inspired by the results of simulations performed with a high-resolution (250 m) large eddy simulation model over a surface with varying degrees of heterogeneity. A key element of the conceptual model is the representation of precipitation as a weighted sum of advection and evaporation, each weighed by its own efficiency. The model is then used to isolate the main parameters that control precipitation variations over a spatially drier patch. It is found that these changes surprisingly do not depend on soil moisture itself but instead purely on parameters that describe the atmospheric initial state. The likelihood for enhanced precipitation over drier soils is discussed based on these parameters. Additional experiments are used to test the validity of the model.https://www.hydrol-earth-syst-sci.net/22/3197/2018/hess-22-3197-2018.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
G. Cioni G. Cioni G. Cioni C. Hohenegger C. Hohenegger |
spellingShingle |
G. Cioni G. Cioni G. Cioni C. Hohenegger C. Hohenegger A simplified model of precipitation enhancement over a heterogeneous surface Hydrology and Earth System Sciences |
author_facet |
G. Cioni G. Cioni G. Cioni C. Hohenegger C. Hohenegger |
author_sort |
G. Cioni |
title |
A simplified model of precipitation enhancement over a heterogeneous surface |
title_short |
A simplified model of precipitation enhancement over a heterogeneous surface |
title_full |
A simplified model of precipitation enhancement over a heterogeneous surface |
title_fullStr |
A simplified model of precipitation enhancement over a heterogeneous surface |
title_full_unstemmed |
A simplified model of precipitation enhancement over a heterogeneous surface |
title_sort |
simplified model of precipitation enhancement over a heterogeneous surface |
publisher |
Copernicus Publications |
series |
Hydrology and Earth System Sciences |
issn |
1027-5606 1607-7938 |
publishDate |
2018-06-01 |
description |
Soil moisture heterogeneities influence the onset of convection and
subsequent evolution of precipitating systems through the triggering of
mesoscale circulations. However, local evaporation also plays a role in
determining precipitation amounts. Here we aim at disentangling the effect of
advection and evaporation on precipitation over the course of a diurnal cycle
by formulating a simple conceptual model. The derivation of the model is
inspired by the results of simulations performed with a high-resolution
(250 m) large eddy simulation model over a surface with varying degrees of
heterogeneity. A key element of the conceptual model is the representation of
precipitation as a weighted sum of advection and evaporation, each weighed by
its own efficiency. The model is then used to isolate the main parameters
that control precipitation variations over a spatially drier patch. It
is found that these changes surprisingly do not depend on soil moisture
itself but instead purely on parameters that describe the atmospheric initial
state. The likelihood for enhanced precipitation over drier soils is
discussed based on these parameters. Additional experiments are used to test
the validity of the model. |
url |
https://www.hydrol-earth-syst-sci.net/22/3197/2018/hess-22-3197-2018.pdf |
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