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Influence of Atmosphere Near-Surface Layer Properties on Development of Cloud Convection
by
Abshaev, Magomet T.
, Yousef, Latifa
, Zakinyan, Arthur R.
, Farrah, Sufian
, Al-Owaidi, Qasim Shakir Kadhim
, Wehbe, Youssef
, Abshaev, Ali M.
, Kulgina, Ludmila M.
, Zakinyan, Robert G.
, Al Mandous, Abdulla
in
Air
/ Air temperature
/ artificial convection
/ Atmosphere
/ atmosphere surface layer
/ Atmospheric boundary layer
/ Atmospheric circulation
/ Atmospheric conditions
/ Atmospheric models
/ cloud convection
/ Cloud development
/ Clouds
/ Condensation
/ condensation level
/ Continuity equation
/ Convection
/ Convection heating
/ Convective development
/ Criteria
/ Dew
/ Dew point
/ Equations of motion
/ Exact solutions
/ General circulation
/ Global positioning systems
/ GPS
/ Heat conduction
/ Heating
/ Height
/ Mathematical models
/ Mesoscale models
/ Model accuracy
/ Near-surface layer
/ Parameters
/ Phase transitions
/ Physics
/ Precipitation
/ Stimulation
/ Studies
/ sub-cloud convection
/ Surface boundary layer
/ Surface layers
/ Temperature distribution
/ Temperature gradients
/ Temperature requirements
/ Theoretical analysis
/ Thermal conductivity
/ Tornadoes
/ Two dimensional analysis
/ Two dimensional models
/ two-dimensional model of convection
/ Updraft
/ Velocity
/ Vertical distribution
/ Water vapor
/ Water vapour
/ Weather forecasting
2019
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Influence of Atmosphere Near-Surface Layer Properties on Development of Cloud Convection
by
Abshaev, Magomet T.
, Yousef, Latifa
, Zakinyan, Arthur R.
, Farrah, Sufian
, Al-Owaidi, Qasim Shakir Kadhim
, Wehbe, Youssef
, Abshaev, Ali M.
, Kulgina, Ludmila M.
, Zakinyan, Robert G.
, Al Mandous, Abdulla
in
Air
/ Air temperature
/ artificial convection
/ Atmosphere
/ atmosphere surface layer
/ Atmospheric boundary layer
/ Atmospheric circulation
/ Atmospheric conditions
/ Atmospheric models
/ cloud convection
/ Cloud development
/ Clouds
/ Condensation
/ condensation level
/ Continuity equation
/ Convection
/ Convection heating
/ Convective development
/ Criteria
/ Dew
/ Dew point
/ Equations of motion
/ Exact solutions
/ General circulation
/ Global positioning systems
/ GPS
/ Heat conduction
/ Heating
/ Height
/ Mathematical models
/ Mesoscale models
/ Model accuracy
/ Near-surface layer
/ Parameters
/ Phase transitions
/ Physics
/ Precipitation
/ Stimulation
/ Studies
/ sub-cloud convection
/ Surface boundary layer
/ Surface layers
/ Temperature distribution
/ Temperature gradients
/ Temperature requirements
/ Theoretical analysis
/ Thermal conductivity
/ Tornadoes
/ Two dimensional analysis
/ Two dimensional models
/ two-dimensional model of convection
/ Updraft
/ Velocity
/ Vertical distribution
/ Water vapor
/ Water vapour
/ Weather forecasting
2019
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Influence of Atmosphere Near-Surface Layer Properties on Development of Cloud Convection
by
Abshaev, Magomet T.
, Yousef, Latifa
, Zakinyan, Arthur R.
, Farrah, Sufian
, Al-Owaidi, Qasim Shakir Kadhim
, Wehbe, Youssef
, Abshaev, Ali M.
, Kulgina, Ludmila M.
, Zakinyan, Robert G.
, Al Mandous, Abdulla
in
Air
/ Air temperature
/ artificial convection
/ Atmosphere
/ atmosphere surface layer
/ Atmospheric boundary layer
/ Atmospheric circulation
/ Atmospheric conditions
/ Atmospheric models
/ cloud convection
/ Cloud development
/ Clouds
/ Condensation
/ condensation level
/ Continuity equation
/ Convection
/ Convection heating
/ Convective development
/ Criteria
/ Dew
/ Dew point
/ Equations of motion
/ Exact solutions
/ General circulation
/ Global positioning systems
/ GPS
/ Heat conduction
/ Heating
/ Height
/ Mathematical models
/ Mesoscale models
/ Model accuracy
/ Near-surface layer
/ Parameters
/ Phase transitions
/ Physics
/ Precipitation
/ Stimulation
/ Studies
/ sub-cloud convection
/ Surface boundary layer
/ Surface layers
/ Temperature distribution
/ Temperature gradients
/ Temperature requirements
/ Theoretical analysis
/ Thermal conductivity
/ Tornadoes
/ Two dimensional analysis
/ Two dimensional models
/ two-dimensional model of convection
/ Updraft
/ Velocity
/ Vertical distribution
/ Water vapor
/ Water vapour
/ Weather forecasting
2019
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Influence of Atmosphere Near-Surface Layer Properties on Development of Cloud Convection
Journal Article
Influence of Atmosphere Near-Surface Layer Properties on Development of Cloud Convection
2019
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Overview
A two-dimensional mathematical model of moist air convection in the sub-cloud and cloud layers is proposed. A theoretical analysis of the influence of near ground atmospheric parameters on the development of sub-cloud and cloud convection is provided, and the criteria of convection development are considered. As a rule, this relationship is parameterized in general circulation, regional or mesoscale models of the atmosphere. Therefore, achieving a more complete and correct understanding of this relationship can lead to an improvement in the accuracy of weather forecasts. The mathematical model describes the system of the equations of motion, heat conductivity and the continuity equations for a two-dimensional vertical plane. The approximate analytical solution of the system of equations is obtained. Expressions for the estimation of the convection height and height of maximum velocity are derived for vertical and horizontal components of updraft wind and for vertical distribution of temperature. From the expressions obtained, the criterion of sub-cloud convection development is derived. The expressions for the convection parameters at a condensation level have also been formulated, from which the criterion of cloud development through convection is derived. It is established that the development of cloud convection depends on absolute values of the dew point deficit in a near-surface layer and, in a greater degree, on vertical gradients of water vapor mass fraction. It is shown that at certain critical values of a vertical gradient of water vapor mass fraction “explosive convective growth” is observed. The application of the obtained results to artificial stimulation of convection by means of air heating in the near-ground atmosphere has shown that the success of such an application and the required air heating-up depend on: (i) the vertical temperature gradient; (ii) the vertical dew-point gradient; and (iii) the value of the dew point deficit in the near-ground layer. The analysis performed has shown the possibility of successful stimulation of artificial convection under specific favorable atmospheric conditions.
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