Search results for "Reynolds"

showing 10 items of 120 documents

EXPERIMENTAL STUDY ON THE FLUID FLOWIN THE CONDUCTS

2018

Fluids are high mobility environments that, under the action of external forces, are continuously and irreversibly deformed. The flow of fluid through a pipe is ensured by a pressure difference between its ends. The presented paper aims to experimentally determine the velocity profile of flowing a Newtonian fluid through a circular section pipe by measuring the local speed at five points on the pipe radius.

Physics::Fluid Dynamicslcsh:TA1-2040floweducationturbulentReynolds criterionlcsh:Engineering (General). Civil engineering (General)laminarAnalele Universităţii "Constantin Brâncuşi" din Târgu Jiu: Seria Inginerie
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Analysis of complex singularities in high-Reynolds-number Navier-Stokes solutions

2013

AbstractNumerical solutions of the laminar Prandtl boundary-layer and Navier–Stokes equations are considered for the case of the two-dimensional uniform flow past an impulsively-started circular cylinder. The various viscous–inviscid interactions that occur during the unsteady separation process are investigated by applying complex singularity analysis to the wall shear and streamwise velocity component of the two solutions. This is carried out using two different methodologies, namely a singularity-tracking method and the Padé approximation. It is shown how the van Dommelen and Shen singularity that occurs in solutions of the Prandtl boundary-layer equations evolves in the complex plane be…

Prandtl numberMathematics::Analysis of PDEsFOS: Physical sciencesPhysics::Fluid Dynamicssymbols.namesakeFlow separationSingularityboundary layer separation Navier–Stokes equations transition to turbulenceFOS: MathematicsMathematics - Numerical AnalysisComplex Variables (math.CV)Navier–Stokes equationsSettore MAT/07 - Fisica MatematicaMathematical PhysicsPhysicsMathematics - Complex VariablesMechanical EngineeringMathematical analysisFluid Dynamics (physics.flu-dyn)Reynolds numberLaminar flowPhysics - Fluid DynamicsMathematical Physics (math-ph)Numerical Analysis (math.NA)Condensed Matter PhysicsMechanics of MaterialssymbolsGravitational singularityPotential flow
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Numerical simulation of nanofluids for improved cooling efficiency in a 3D copper microchannel heat sink (MCHS)

2017

ABSTRACTIn this paper, laminar nanofluid flow in 3D copper microchannel heat sink (MCHS) with rectangular cross section, and a constant heat flux, has been treated numerically using the computational fluid dynamics software (FLUENT). Results for the temperature and velocity distributions in the investigated MCHS are presented. In addition, experimental and numerical values are compared in terms of friction factors, convective heat transfer coefficients, wall temperature and pressure drops, for various particle volume concentrations and Reynolds numbers. The numerical results show that enhancing the heat flux has a very weak effect on the heat transfer coefficient for pure water, but an appr…

Pressure dropConvective heat transferChemistry020209 energyHeat transfer enhancementReynolds numberThermodynamicsLaminar flow02 engineering and technologyHeat transfer coefficientMechanicsCondensed Matter PhysicsElectronic Optical and Magnetic MaterialsPhysics::Fluid Dynamicssymbols.namesakeNanofluidHeat flux0202 electrical engineering electronic engineering information engineeringMaterials ChemistrysymbolsPhysical and Theoretical ChemistryPhysics and Chemistry of Liquids
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Flow and Heat Transfer in Corrugated Passages: Direct and Large Eddy Simulation and Comparison with Experimental Results

1993

Direct and large-eddy numerical simulations are presented for the transitional and turbulent flow with heat transfer in corrugated passages, representative of compact heat exchangers such as rotary air preheaters (regenerators), at Reynolds number ranging from 103 to 104. Pressure drop and heat transfer results are compared with wind-tunnel experimental data; the agreement is quite satisfactory, and superior to that obtained by more traditional methods.

Pressure dropEngineeringbusiness.industryTurbulenceFlow (psychology)Reynolds numberThermodynamicsMechanicsPhysics::Fluid Dynamicssymbols.namesakeHeat exchangerHeat transfersymbolsMicro heat exchangerbusinessPhysics::Atmospheric and Oceanic PhysicsLarge eddy simulation
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Experimental Analysis of Local Pressure Losses for Microirrigation Laterals

2004

The accurate design of drip irrigation laterals needs to consider the variation of hydraulic head due to pipe elevation changes, head losses along the lines, and also, at a given operating pressure, emitter discharge variations related to manufacturing variability, clogging, and water temperature. Hydraulic head variations are consequent to both the friction losses and local losses due to the in-line or on-line emitters along the pipe, which determine the contraction and subsequent enlargement of the flow streamlines. Moreover, in-line emitters usually have a smaller diameter than the pipe, and therefore an additional friction loss must be considered. Evaluation of energy losses and consequ…

Pressure dropEngineeringbusiness.industryeducationReynolds numberLow-flow irrigation systemsDrip irrigationMechanicsAgricultural and Biological Sciences (miscellaneous)Friction lossPhysics::Fluid Dynamicssymbols.namesakeHydraulic headsymbolsPhysics::Accelerator PhysicsHead (vessel)Geotechnical engineeringStreamlines streaklines and pathlinesbusinessWater Science and TechnologyCivil and Structural EngineeringJournal of Irrigation and Drainage Engineering
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Fully developed laminar flow and heat transfer in serpentine pipes

2015

Abstract A serpentine pipe is a sequence of parallel straight pipe segments connected by U-bends. Its geometry is fully characterized by pipe radius, a , bend curvature radius, c and length of the straight segments, l . The repeated curvature inversion forces the recirculation (secondary flow) pattern to switch between two specular configurations, which may enhance mixing and heat or mass transfer with respect to a constant-curvature pipe at the cost of an increase in pressure drop. In the present work, fully developed laminar flow and heat transfer in serpentine pipes were investigated by numerical simulation. The curvature δ  =  a / c was made to vary between 0.1 and 0.5 while the paramet…

Pressure dropMaterials sciencePrandtl numberGeneral EngineeringCurved pipeReynolds numberLaminar flowMechanicsSerpentine pipeStokes flowComputational fluid dynamicsCondensed Matter PhysicsCurvatureNusselt numberPhysics::Fluid Dynamicssymbols.namesakeHeat transfersymbolsU bendSecondary flowSettore ING-IND/19 - Impianti Nucleari
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Numerical prediction of turbulent flow and heat transfer in helically coiled pipes

2010

Abstract Computational results were obtained for turbulent flow and heat transfer in curved pipes, representative of helically coiled heat exchangers. Following a grid refinement study, grid independent predictions from alternative turbulence models ( k – ɛ , SST k – ω and RSM– ω ) were compared with DNS results and experimental pressure drop and heat transfer data. Using the SST k – ω and RSM– ω models, pressure drop results were in excellent agreement with literature data and the Ito correlation. For heat transfer, the literature is not comparably complete or accurate, but a satisfactory agreement was obtained in the range of available data. Unsatisfactory results, both for pressure drop …

Pressure dropMaterials scienceTurbulenceGeneral EngineeringTurbulence modelingThermodynamicsReynolds stressCondensed Matter PhysicsChurchill–Bernstein equationNusselt numberHeat transferHeat exchangerhelically coiled tubes curved tubes pressure drop heat transfer turbulent flow turbulence modelsSettore ING-IND/19 - Impianti NucleariInternational Journal of Thermal Sciences
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A constructive approach of invariants of behavior laws with respect to an infinite symmetry group – Application to a biological anisotropic hyperelas…

2014

Abstract In this paper, six new invariants associated with an anisotropic material made of one fiber family are calculated by presenting a systematic constructive and original approach. This approach is based on the development of mathematical techniques from the theory of invariants: • Definition of the material symmetry group. • Definition of the generalized Reynolds Operator. • Calculation of an integrity basis for invariant polynomials. • Comparison between the new (constructed) invariants and the classical ones.

Pure mathematics02 engineering and technologyTheory of invariantsSymmetry groupConstructiveAnisotropic hyperelastic materialMaterials Science(all)0203 mechanical engineeringModelling and SimulationGeneral Materials ScienceBiomechanicsInvariant (mathematics)AnisotropyMaterial symmetryMathematicsApplied MathematicsMechanical EngineeringMathematical analysis021001 nanoscience & nanotechnologyCondensed Matter Physics020303 mechanical engineering & transportsMechanics of MaterialsModeling and SimulationHyperelastic material[PHYS.COND.CM-MS]Physics [physics]/Condensed Matter [cond-mat]/Materials Science [cond-mat.mtrl-sci]Reynolds operator0210 nano-technologyInternational Journal of Solids and Structures
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Flow resistance of overland flow on a smooth bed under simulated rainfall

2020

In this paper a recently theoretically deduced flow resistance equation, based on a power-velocity profile, was tested using laboratory measurements by Yoon and Wenzel for an overland flow on a smooth bed under rainfall. These measurements of the Darcy-Weisbach friction factor, corresponding to a wide range of the flow Reynolds number (191–5700), were carried out for an overland flow under a simulated rainfall characterized by different intensity values ranging from 13 to 381 mm h−1. At first, the available measured values of flow velocity, water depth, cross sectional area, wetted perimeter and bed slope were used to calibrate the relationship between the velocity profile parameter Γ, the …

RainfallDimensional analysi010504 meteorology & atmospheric sciencesFlow (psychology)01 natural sciencessymbols.namesakeWetted perimeterOverland flowVelocity profileFroude numberRange (statistics)Settore AGR/08 - Idraulica Agraria E Sistemazioni Idraulico-Forestali0105 earth and related environmental sciencesEarth-Surface ProcessesTurbulenceReynolds number04 agricultural and veterinary sciencesMechanicsSelf-similarityFlow velocityFlow resistance040103 agronomy & agriculturesymbols0401 agriculture forestry and fisheriesGeologyIntensity (heat transfer)
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Solid sediment transport in turbulent channel flow over irregular rough boundaries

2017

Abstract The presence of a loading of dispersed particles in a turbulent flow affects the dynamics of the carrier flow field which, in turn, drives grains movement. The focus of the paper is on the analysis of the coupling effects between near-bed turbulence structures and the dynamics of dispersed suspended solid particles in wall-bounded turbulent multiphase flows. We consider turbulent horizontal channel flows bounded by rough boundaries. The friction Reynolds number of the unladen flow is R e τ = 180 and the dispersed phase spans one order of magnitude of particle diameter. To analyze sedimentation and suspended phase transport, we adopt concepts and modeling ideas derived from the Eule…

Sedimentation (water treatment)Condensed Matter PhysicLagrangian particle tracking01 natural sciences010305 fluids & plasmasSettore ICAR/01 - IdraulicaPhysics::Fluid Dynamicssymbols.namesakePhase (matter)0103 physical sciences010306 general physicsPhysicsFluid Flow and Transfer ProcessesTurbulenceMechanical EngineeringParticle-laden flowReynolds numberParticle-laden flowsMechanicsCondensed Matter PhysicsTurbulenceClassical mechanicsFlow (mathematics)Point-particle DNSsymbolsLagrangian trackingParticle mass fluxRoughneOrder of magnitude
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