Search results for "Fluid dynamics"

showing 10 items of 1005 documents

Linear instability of mixed convection of cold water in a porous layer induced by viscous dissipation

2009

Accepted version of an article published in the journal: International Journal of Thermal Sciences, Elsevier Published version available on Science Direct: http://dx.doi.org/10.1016/j.ijthermalsci.2008.06.012 An analysis of linear stability of the stationary laminar Darcy flow in a horizontal porous layer is performed. The porous layer is saturated with cold water. The upper plane boundary is assumed to be subject to heat transfer with finite conductance to an environment at the temperature of maximum density of cold water. The lower plane boundary is adiabatic. Convective instabilities are caused by flow viscous dissipation, inducing a basic temperature distribution that decreases in the u…

VDP::Mathematics and natural science: 400::Mathematics: 410::Applied mathematics: 413Materials scienceDarcy's lawLINEAR STABILITYGeneral EngineeringThermodynamicsLaminar flowCondensed Matter PhysicsInstabilityVISCOUS DISSIPATIONVDP::Mathematics and natural science: 400::Physics: 430Physics::Fluid DynamicsDARCY LAWPOROUS MEDIUMCombined forced and natural convectionHeat transferThermalPorous mediumBUOYANT FLOWLinear stability
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Stability of Flow with Viscous Dissipation in a Horizontal Porous Layer with an Open Boundary Having a Prescribed Temperature Gradient

2010

Published version of an article in the journal: Transport in Porous Media. The original publication is available at www.springerlink.com, http://dx.doi.org/10.1007/s11242-010-9588-6 A buoyancy-induced stationary flow with viscous dissipation in a horizontal porous layer is investigated. The lower boundary surface is impermeable and subject to a uniform heat flux. The upper open boundary has a prescribed, linearly varying, temperature distribution. The buoyancy-induced basic velocity profile is parallel and non-uniform. The linear stability of this basic solution is analysed numerically by solving the disturbance equations for oblique rolls arbitrarily oriented with respect to the basic velo…

VDP::Mathematics and natural science: 400::Mathematics: 410::Applied mathematics: 413PhysicsBuoyancyOPEN BOUNDARYGeneral Chemical EngineeringBoundary (topology)MechanicsRayleigh numberPOROUS LAYERengineering.materialCritical valueVISCOUS DISSIPATIONInstabilityCatalysisTHERMAL INSTABILITYPhysics::Fluid DynamicsTemperature gradientClassical mechanicsHeat fluxPRESCRIBED TEMPERATURE GRADIENTengineeringVDP::Technology: 500::Materials science and engineering: 520Linear stabilityTransport in Porous Media
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Phase coexistence in finite van der Waals systems

1999

Phase coexistence in finite systems obeying van der Waals equation of state is studied by minimizing a model free energy function for a spherical liquid droplet and a gaseous phase around it. Phase diagrams are calculated for finite systems with a large range of sizes. According to this model, the highest temperature where a droplet and vapour can exist in equilibrium decreases as N −0.4, where N is the number of particles in the system. The model predicts higher equilibrium vapour pressures than molecular dynamics simulations.

Van der Waals equationParticle numberChemistryBiophysicsThermodynamicsCondensed Matter PhysicsTheorem of corresponding statesPhysics::Fluid Dynamicssymbols.namesakeMolecular dynamicsPhase (matter)symbolsVan der Waals radiusPhysical and Theoretical Chemistryvan der Waals forceMolecular BiologyPhase diagram
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Implementation and application of the actuator line model by OpenFOAM for a vertical axis wind turbine

2017

University of Stavanger has started The Smart Sustainable Campus & Energy Lab project, to gain knowledge and facilitate project based education in the field of renewable and sustainable energy and increase the research effort in the same area. This project includes the future installation of a vertical axis wind turbine on the campus roof. A newly developed Computational Fluid Dynamics (CFD) model by OpenFOAM have been implemented to study the wind behavior over the building and the turbine performance. The online available wind turbine model case from Bachant, Goude and Wosnik from 2016 is used as the starting point. This is a Reynolds-Averaged Navier-Stokes equations (RANS) case set up th…

Vertical axis wind turbineWind powerbusiness.industryPlanetary boundary layerComputer science020209 energy020208 electrical & electronic engineering02 engineering and technologyComputational fluid dynamicsTurbineRenewable energy0202 electrical engineering electronic engineering information engineeringActuatorbusinessReynolds-averaged Navier–Stokes equationsMarine engineeringIOP Conference Series: Materials Science and Engineering
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Numerical and experimental study of hydrostatic displacement machine

2012

This paper presents a simulation tool to determine the structural deflections and corresponding leakage flow in a hydrostatic displacement motor. The simulation tool is applied to a new motor principle that is categorized as an extreme low-speed high-torque motor with dimensions that calls for attention to the volumetric efficiency. To counteract structural deflections the motor is equipped with compensation pressure volumes that may be used to limit the leakage flow across the end faces of the circular rotor. This leakage flow is investigated by solving Reynolds equation for the pressure distribution across both end faces. The fluid pressure is combined with structural calculations in a fl…

Volumetric efficiencyEngineeringbusiness.industryMechanical EngineeringGeneral Physics and AstronomyLeakage flowStructural engineeringHigh torqueReynolds equationlaw.inventionPhysics::Fluid DynamicsLow speedlawFluid–structure interactionHydrostatic equilibriumbusinessLeakage (electronics)
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Numerical and experimental investigation of a cross-flow water turbine

2016

ABSTRACTA numerical and experimental study was carried out for validation of a previously proposed design criterion for a cross-flow turbine and a new semi-empirical formula linking inlet velocity to inlet pressure. An experimental test stand was designed to conduct a series of experiments and to measure the efficiency of the turbine designed based on the proposed criterion. The experimental efficiency was compared to that from numerical simulations performed using a RANS model with a shear stress transport (SST) turbulence closure. The proposed semi-empirical velocity formula was also validated against the numerical solutions for cross-flow turbines with different geometries and boundary c…

Water turbine020209 energyFlow (psychology)experimental facility02 engineering and technology010501 environmental sciences01 natural sciencesTurbinehydraulic modelSettore ICAR/01 - IdraulicaPhysics::Fluid Dynamics0202 electrical engineering electronic engineering information engineeringShear stressBoundary value problem0105 earth and related environmental sciencesWater Science and TechnologyCivil and Structural EngineeringTurbulenceMechanicshydraulics of renewable energy systemhydraulic machinery designCross-flow turbine; experimental facility; hydraulic machinery design; hydraulic model; hydraulics of renewable energy systems; RANS modelCross-flow turbineRANS modelEnvironmental scienceCross-flow turbineReynolds-averaged Navier–Stokes equations
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Well-posedness of Prandtl equations with non-compatible data

2013

In this paper we shall be concerned with Prandtl's equations with incompatible data, i.e. with initial data that, in general, do not fulfil the boundary conditions imposed on the solution. Under the hypothesis of analyticity in the streamwise variable, we shall prove that Prandtl's equations, on the half-plane or on the half-space, are well posed for a short time.

Well-posed problemApplied MathematicsPrandtl numberGeneral Physics and AstronomyStatistical and Nonlinear PhysicsNavier-Stokes equations Boundary Layer Theory.Physics::Fluid Dynamicssymbols.namesakesymbolsCalculusApplied mathematicsBoundary value problemTurbulent Prandtl numberSettore MAT/07 - Fisica MatematicaMathematical PhysicsWell posednessVariable (mathematics)Mathematics
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Two-Perfect Fluid Interpretation of an Energy Tensor

1990

The paper contains the necessary and sufficient conditions for a given energy tensor to be interpreted as a sum of two perfect fluids. Given a tensor of this class, the decomposition in two perfect fluids (which is determined up to a couple of real functions) is obtained.

Weyl tensorPhysicsTensor contractionFluidsPhysics and Astronomy (miscellaneous)Geometria diferencialMathematical analysisTensor fieldPhysics::Fluid Dynamicssymbols.namesakeExact solutions in general relativityRelativitat general (Física)symbolsSymmetric tensorStress–energy tensorTensorTensor density
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WING FLUTTER SUPPRESSION ENHANCEMENT USING A WELL-SUITED ACTIVE CONTROL MODEL

2007

State-space theory is employed here to model a new active wing flutter suppression control. In this paper, the design of a flutter suppression control law, for the NASA Benchmark Active Control Technology wing, is proposed through a single input-single output controller and unsteady aerodynamics is modelled using the Theodorsen's theory. Wing dynamic model is obtained by combining the aeroelastic equations of motion with the actuator model presented. Open-loop dynamic behaviour is examined for a single feedback variable that combines pitch and plunge accelerations. Here, a new formulation of control law, based on classical control techniques and featuring two feedback closed-loops, is succ…

WingComputer scienceAeroelasticity Flutter (aerodynamics) cycle oscillationMechanical EngineeringAerospace EngineeringEquations of motionAerodynamicsAeroelasticityPhysics::Fluid DynamicsControl theoryRobustness (computer science)Settore ING-IND/06 - FluidodinamicaFlutterActuator
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Correlation analysis of the power law parameters for viscosity of some engineering fluids

2017

Knowledge and estimation of transport properties of fluids which are sensitive to temperature variation like viscosity are necessary in mass flow and heat transfer computation. In the present work,...

Work (thermodynamics)010304 chemical physicsChemistryComputationMass flowThermodynamics02 engineering and technologyCondensed Matter Physics01 natural sciencesPower lawElectronic Optical and Magnetic MaterialsPhysics::Fluid DynamicsViscosity020401 chemical engineering0103 physical sciencesHeat transferCorrelation analysisMaterials Chemistry0204 chemical engineeringPhysical and Theoretical ChemistryPhysics and Chemistry of Liquids
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