Search results for "MAGNETIC FIELD"

showing 10 items of 1488 documents

Soret coefficient of nanoparticles in ferrofluids in the presence of a magnetic field

1998

Experiments on a nonstationary separation of nanometer-sized Mn0.5Zn0.5Fe2O particles of hydrocarbon-based ferrocolloids in a flat vertical thermal diffusion column are performed. By using a modified separation theory which accounts for a one-dimensional mixed (thermal and concentration) convection in the column, the Soret coefficient of lyophilized nanoparticles from the separation curves are calculated. It is shown that in a zero magnetic field particles are transferring toward decreasing temperatures. The thermal diffusion ratio αT reaches a value αT≈+20. A significant influence of a uniform magnetic field B on particle separation is observed. If B is oriented along the temperature gradi…

Fluid Flow and Transfer ProcessesConvectionPhysicsFerrofluidField (physics)Mechanical EngineeringComputational MechanicsThermodynamicsCondensed Matter PhysicsThermal diffusivityMagnetic fieldTemperature gradientNuclear magnetic resonanceMechanics of MaterialsParticleMagnetic pressurePhysics of Fluids
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A mathematical simulation of high temperature induction heating of electroconductive solids

2007

The mathematical model of non-stationary coupled electromagnetic and thermal processes in polarizable and magnetizable axisymmetric electroconductive solids subjected to electromagnetic field generated by external currents is proposed. The processes parameters are connected through heat sources and temperature dependence of material characteristics. The problem is solved by finite element method. The process of induction heating of a finite steel cylinder is considered.

Fluid Flow and Transfer ProcessesElectromagnetic fieldInduction heatingMaterials scienceMathematical modelMechanical EngineeringRotational symmetryThermodynamicsMechanicsCondensed Matter PhysicsFinite element methodPolarizabilityThermalElectrical conductorInternational Journal of Heat and Mass Transfer
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Solid inclusions in an electromagnetically induced recirculated turbulent flow: Simulation and experiment

2014

Abstract The paper presents the numerical and the experimental investigation of the particle-laden recirculated turbulent flow of liquid metal that is driven by electromagnetic force. Such flow is typical for induction metallurgical furnaces. The paper describes the behaviour of solid spherical particles that are mixed in the flow from a top surface of a melt and covers 3 stages of an admixing process as well as deposition of inclusions on the wall of a vessel. Experimental investigation of particles concentration at the quasi-stationary stage is fulfilled on the basis of a novel idea: ferromagnetic particles are proposed as a physical model of non-conductive inclusions in liquid metal at t…

Fluid Flow and Transfer ProcessesElectromagnetic fieldLiquid metalMaterials scienceTurbulenceMechanical EngineeringFlow (psychology)General Physics and AstronomyInduction furnaceMechanicsPhysics::Fluid DynamicsMagnetParticleDeposition (phase transition)International Journal of Multiphase Flow
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Phase boundary dynamics of bubble flow in a thick liquid metal layer under an applied magnetic field

2020

Dynamic neutron radiography is used to observe the effect of a transverse magnetic field on argon bubbles rising through a thick layer of liquid gallium without interactions with the container walls.

Fluid Flow and Transfer ProcessesLiquid metalPhase boundaryMaterials scienceArgonCondensed matter physicsPhysics::Instrumentation and DetectorsNeutron imagingDynamics (mechanics)Computational Mechanicschemistry.chemical_elementMagnetic fieldPhysics::Fluid DynamicschemistryModeling and SimulationBubble flowNuclear ExperimentLayer (electronics)Physical Review Fluids
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Optofluidic microconvection with magnetic nanoparticles: Novel interaction of thermal diffusion and magnetic field

2021

Abstract Light-matter interactions are exploited in many applications, whereas superparamagnetic nanoparticles allow to introduce magnetic field control in diverse fluid environments. We study the structure of laser-induced thermal lens in thin layers of ferromagnetic colloid and predict significant magnetoconvective motion around the beam spot. It was found that localized heating depletes/accumulates magnetic nanoparticles in the beam-spot by thermal diffusion and collective magnetic interactions of nanoparticles produce strong microconvective currents. This mode of mass transport can be controlled by magnetic field. We expect the novel magnetosolutal microconvective coupling, which we des…

Fluid Flow and Transfer ProcessesMaterials scienceThin layersMechanical EngineeringMicrofluidicsNanoparticle02 engineering and technology021001 nanoscience & nanotechnologyCondensed Matter PhysicsThermal diffusivity01 natural sciences010305 fluids & plasmasMagnetic fieldCoupling (physics)FerromagnetismChemical physics0103 physical sciencesMagnetic nanoparticles0210 nano-technologyInternational Journal of Heat and Mass Transfer
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One-dimensional Mixed MHD Convection

2006

The parallel, fully developed flow of an electrically conducting fluid between plane parallel walls under the simultaneous influence of a driving pressure head, buoyancy, and magnetohydrodynamic (MHD) forces is studied. The fluid is assumed to be internally heated and the flow is modeled as one-dimensional and incompressible, while the Boussinesq approximation is adopted for the buoyancy terms. Analytical solutions are obtained for temperature, velocity and electrical potential under different electrical boundary conditions, forced to natural convection intensity ratios and values of the magnetic induction. Generalized working charts are presented which synthetically describe the system''s …

Fluid Flow and Transfer ProcessesPhysicsBuoyancyNatural convectionMagnetohydrodynamic generatorMechanical EngineeringMAGNETIC FIELDMechanicsCUBIC ENCLOSUREengineering.materialCondensed Matter PhysicsOpen-channel flowlaw.inventionPhysics::Fluid DynamicsClassical mechanicslawCombined forced and natural convectionCHANNEL FLOWengineeringMagnetohydrodynamic driveMagnetohydrodynamicsBoussinesq approximation (water waves)LIQUID-METAL
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Three-dimensional linear stability analysis of the flow in a liquid spherical droplet driven by an alternating magnetic field

2003

The paper presents a numerical stability analysis of the flow driven by an alternating (AC) magnetic field in an electromagnetically levitated liquid metal droplet. The basic axisymmetric flow is found to become unstable at Reynolds numbers in the order of 100. The critical Reynolds number Rec and the corresponding most unstable azimuthal wave number m are found for several configurations of the magnetic field depending on the skin-depth d. For a uniform external AC magnetic field the azimuthal wave number of the most unstable mode is m=3. An additional steady (DC) magnetic field imposed along the axis of symmetry increases the stability of the flow.

Fluid Flow and Transfer ProcessesPhysicsCondensed matter physicsMechanical EngineeringComputational MechanicsReynolds numberMagnetic Reynolds numberCondensed Matter PhysicsMagnetic fieldPhysics::Fluid Dynamicssymbols.namesakeFlow (mathematics)Mechanics of MaterialssymbolsMagnetic pressureMagnetohydrodynamicsMagnetic levitationNumerical stabilityPhysics of Fluids
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Stability of electrically conducting liquid flow driven by a rotating magnetic dipole in a ring channel

2020

The stability of electrically conducting liquid flow in a cylindrical ring channel is studied numerically. The flow is driven by a rotating magnetic dipole placed at the ring’s center. Depending on ring’s width, two distinct flow regimes are observed. In a narrow ring, the flow itself and its instability resemble the related rotating magnetic field driven flow in a cylinder. This changes in a wide ring when an intense radial jet develops on the midplane. Within this jet, the driving magnetic force is overwhelmed by inertial and viscous forces similar to how it occurs in the boundary layer flow. The instability develops as an azimuthally periodic wave-like deformation of this jet. Non-unifor…

Fluid Flow and Transfer ProcessesPhysicsJet (fluid)Rotating magnetic fieldMechanical EngineeringComputational MechanicsMechanicsCondensed Matter PhysicsRing (chemistry)01 natural sciencesInstability010305 fluids & plasmasMagnetic fieldPhysics::Fluid DynamicsBoundary layerMechanics of Materials0103 physical sciencesCylinder010306 general physicsMagnetic dipolePhysics of Fluids
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Anomalous wave structure in magnetized materials described by non-convex equations of state

2014

Agraïments: Institute for Pure and Applied Mathematics (UCLA) 2012 program on "Computational Methods in High Energy Density Plasmas. We analyze the anomalous wave structure appearing in flow dynamics under the influence of magnetic field in materials described by non-ideal equations of state. We consider the system of magnetohydrodynamics equations closed by a general equation of state (EOS) and propose a complete spectral decomposition of the fluxes that allows us to derive an expression of the nonlinearity factor as the mathematical tool to determine the nature of the wave phenomena. We prove that the possible formation of non-classical wave structure is determined by both the thermodynam…

Fluid Flow and Transfer ProcessesPhysicsPhase transitionMechanical EngineeringNumerical analysisNon-convex equation of stateComputational MechanicsCondensed Matter PhysicsComposite wavesMagnetic fieldsymbols.namesakeNonlinear systemMagnetohydrodynamicsClassical mechanicsRiemann problemFlow (mathematics)Mechanics of MaterialsPhase transitionssymbolsMagnetohydrodynamicsComplex wave structureMaterial properties
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Permanent magnet bottom-stirred swirling flow in coaxial shallow cylindrical containers

2021

Here, an original rotating permanent magnet (RPM) system placed coaxially with the liquid metal container is studied as an effective means of generating flow in shallow cylinders for potential application in aluminum metallurgy (e.g., for ladle stirring and metal dosing). The studied RPM system generates volume force with strong axial variation and force maximum near the radial midpoint. The numerical and experimental data show that, in the shallow cylinder case, the azimuthal velocity follows the force radial distribution. The resulting velocity maximum occurs near the radial midpoint, unlike in the traditional rotating magnetic field (RMF) stirrer systems, where the velocity maximum occur…

Fluid Flow and Transfer ProcessesPhysicsRotating magnetic fieldAngular momentumLiquid metalMechanical EngineeringComputational MechanicsRadiusMechanicsCondensed Matter Physics01 natural sciences010305 fluids & plasmasPhysics::Fluid DynamicsBoundary layerMechanics of MaterialsMagnet0103 physical sciencesCylinderCoaxial010306 general physicsPhysics of Fluids
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