Search results for "Free Convection"

showing 6 items of 6 documents

Influence of a Magnetic Field on Liquid Metal Free Convection in an Internally Heated Cubic Enclosure

2002

The buoyancy‐driven magnetohydrodynamic flow in a cubic enclosure was investigated by three‐dimensional numerical simulation. The enclosure was volumetrically heated by a uniform power density and cooled along two opposite vertical walls, all remaining walls being adiabatic. A uniform magnetic field was applied orthogonally to the gravity vector and to the temperature gradient. The Prandtl number was 0.0321 (characteristic of Pb–17Li at 300°C), the Rayleigh number was 104, and the Hartmann number was made to vary between 0 and 2×103. The steady‐state Navier–Stokes equations, in conjunction with a scalar transport equation for the fluid's enthalpy and with the Poisson equation for the electr…

PhysicsFinite volume methodNatural convectionApplied MathematicsMechanical EngineeringPrandtl numberEnclosureFree ConvectionInternal Heat GenerationMechanicsRayleigh numberMagnetohydrodynamicHartmann numberComputer Science ApplicationsPhysics::Fluid Dynamicssymbols.namesakeClassical mechanicsMechanics of MaterialssymbolsPoisson's equationConvection–diffusion equationSettore ING-IND/19 - Impianti Nucleari
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MHD free convection in a liquid-metal filled cubic enclosure. I. Differential heating

2002

Fluid Flow and Transfer ProcessesEnclosureMechanical EngineeringFree ConvectionMagnetohydrodynamicCFDCondensed Matter PhysicsSettore ING-IND/19 - Impianti NucleariInternational Journal of Heat and Mass Transfer
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Natural Convection Cooling of a Hot Vertical Wall Wet by a Falling Liquid Film

2008

Abstract The system studied is a plane channel in which one of the two vertical walls is kept at an arbitrary temperature profile and may be partially or completely wet by a falling liquid film, while the opposite wall is adiabatic. Air from the environment flows along the channel with a mass flow rate which depends on the balance between hydraulic resistances and buoyancy forces. These latter, in their turn, depend on the distribution of temperature and humidity (hence, density) along the channel and eventually on the heat and mass transferred from wall and film to the humid air. A simplified computational model of the above system was developed and applied to the prediction of relevant qu…

ConvectionBuoyancyMaterials scienceThermodynamicsengineering.materialPhysics::Fluid DynamicsMass flow rateEvaporative CoolingFluid FlowPhysics::Atmospheric and Oceanic PhysicsEngineering & allied operationsSettore ING-IND/19 - Impianti NucleariFluid Flow and Transfer ProcessesNatural convectionNatural ConvectionMechanical Engineeringfree convection liquid film humid air evaporative cooling containment cooling heat and mass transferHumidityMechanicsContainmentCondensed Matter PhysicsHeat TransferPassive CoolingCoolantVolumetric flow rateLiquid FilmNuclear ReactorDecay Heat Removalengineeringddc:620Evaporative cooler
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A Computer-Controlled Experimental Facility for the Investigation of High Rayleigh Number Free Convection in Enclosures

1999

EnclosureFree convectionHeat flow meterSettore ING-IND/19 - Impianti Nucleari
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Thermally unstable throughflow of a power–law fluid in a vertical porous cylinder with arbitrary cross–section

2021

Abstract The present paper investigates how the cross–sectional shape of a vertical porous cylinder affects the onset of thermoconvective instability of the Rayleigh–Benard type. The fluid saturating the porous medium is assumed to be a non–Newtonian power–law fluid. A linear stability analysis of the vertical thorughflow is carried out. Three special shapes of the cylinder cross–section are analysed: square, circular and elliptical. The effect of changing the power–law index is investigated. The stability of a steady base state with vertical throughflow is analysed. The resulting stability problem is a differential eigenvalue problem that is solved numerically through the shooting method. …

Power-law fluid020209 energy02 engineering and technologyPéclet number01 natural sciences010305 fluids & plasmasPhysics::Fluid Dynamicssymbols.namesakeShooting methodConvective instability0103 physical sciencesFree convection0202 electrical engineering electronic engineering information engineeringCylinderPhysicsNatural convectionConvective instabilityGeneral EngineeringRayleigh numberPorous mediumRayleigh numberMechanicsCondensed Matter PhysicsPower–law fluidsymbolsMarginal stabilityVertical throughflow
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MHD free convection in a liquid-metal filled cubic enclosure. II. Internal heating

2002

The buoyancy-driven magnetohydrodynamic flow in a liquid-metal filled cubic enclosure was investigated by three-dimensional numerical simulation. The enclosure was differentially heated at two opposite vertical walls, all other walls being adiabatic, and a uniform magnetic field was applied orthogonal to the temperature gradient and to the gravity vector. The Rayleigh number was 105 and the Prandtl number was 0.0321 (characteristic of Pb–17Li at 573 K). The Hartmann number was made to vary between 102 and 103 and the electrical conductance of the walls between 0 and ∞. The continuity, momentum and enthalpy transport equations, in conjunction with a Poisson equation for the electric potentia…

Fluid Flow and Transfer ProcessesConvectionPhysicsNatural convectionEnclosureMechanical EngineeringPrandtl numberEnclosureFree ConvectionInternal Heat GenerationThermodynamicsRayleigh numberMechanicsMagnetohydrodynamicCondensed Matter PhysicsHartmann numberPhysics::Fluid Dynamicssymbols.namesakesymbolsMagnetohydrodynamic driveMagnetohydrodynamicsCFDSettore ING-IND/19 - Impianti NucleariInternational Journal of Heat and Mass Transfer
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