Search results for "Heat Transfer"

showing 10 items of 442 documents

Conductive cooling in white organic light emitting diode for enhanced efficiency and life time

2015

We demonstrate white organic light emitting diodes with enhanced efficiency (26.8 lm/W) and life time (∼11 000 h) by improved heat dissipation through encapsulation composed of a metal (Cu, Mo, and Al) and mica sheet joined using thermally conducting epoxy. Finite element simulation is used to find effectiveness of these encapsulations for heat transfer. Device temperature is reduced by about 50% with the encapsulation. This, consequently, has improved efficiency and life time by about 30% and 60%, respectively, with respect to glass encapsulation. Conductive cooling of device is suggested as the possible cause for this enhancement.

Materials sciencePhysics and Astronomy (miscellaneous)business.industrychemistry.chemical_elementEpoxyCopperchemistryMolybdenumAluminiumvisual_artHeat transferOLEDvisual_art.visual_art_mediumOptoelectronicsMicabusinessElectrical conductorApplied Physics Letters
researchProduct

The inclination effect on the performance of water-filled heat pipes

1991

Abstract Heat pipes have been used in wide ranges of applications today including solar engineering. During this research study, the inclination dependent performance of water filled heat pipes was investigated both theoretically and experimentally for solar energy applications. The results showed that the performance of water-filled heat pipes are strongly dependent on the inclination and the heat source temperatures. As a general result, the heat transfer capability of water filled heat pipes is reduced dramatically below a 45° tilt angle.

Materials scienceRenewable Energy Sustainability and the Environmentbusiness.industryCritical heat fluxLoop heat pipeMechanicsSolar energyPhysics::Fluid DynamicsHeat pipeTilt (optics)OpticsHeat spreaderHeat transferAstrophysics::Earth and Planetary AstrophysicsbusinessRenewable Energy
researchProduct

Evaluation of the Performance of Published Point Defect Parameter Sets in Cone and Body Phase of a 300 mm Czochralski Silicon Crystal

2021

Prediction and adjustment of point defect (vacancies and self-interstitials) distribution in silicon crystals is of utmost importance for microelectronic applications. The simulation of growth processes is widely applied for process development and quite a few different sets of point defect parameters have been proposed. In this paper the transient temperature, thermal stress and point defect distributions are simulated for 300 mm Czochralski growth of the whole crystal including cone and cylindrical growth phases. Simulations with 12 different published point defect parameter sets are compared to the experimentally measured interstitial–vacancy boundary. The results are evaluated for stand…

Materials scienceSiliconGeneral Chemical EngineeringPhase (waves)chemistry.chemical_element02 engineering and technology01 natural sciencesInorganic ChemistryCrystalMonocrystalline silicon0103 physical sciencesheat transfercomputer simulationpoint defectsGeneral Materials SciencePoint (geometry)010302 applied physicsEquilibrium pointCrystallographyCzochralskisilicon021001 nanoscience & nanotechnologyCondensed Matter PhysicsCrystallographic defectthermal stressComputational physicschemistryQD901-999Heat transfer0210 nano-technologyCrystals
researchProduct

An Advanced Sensor for Particles in Gases Using Dynamic Light Scattering in Air as Solvent

2021

Dynamic Light Scattering is a technique currently used to assess the particle size and size distribution by processing the scattered light intensity. Typically, the particles to be investigated are suspended in a liquid solvent. An analysis of the particular conditions required to perform a light scattering experiment on particles in air is presented in detail, together with a simple experimental setup and the data processing procedure. The results reveal that such an experiment is possible and using the setup and the procedure, both simplified to extreme, enables the design of an advanced sensor for particles and fumes that can output the average size of the particles in air.

Materials scienceTP1-118501 natural sciencesBiochemistryArticleLight scatteringAnalytical Chemistry010309 opticsparticle sizingOpticsDynamic light scattering0103 physical sciencesElectrical and Electronic Engineeringair DLSInstrumentationSIMPLE (dark matter experiment)Data processingbusiness.industryChemical technology010401 analytical chemistrydynamic light scatteringAtomic and Molecular Physics and Optics0104 chemical sciencesSolventadvanced fire sensorParticle sizeScattered lightbusinessIntensity (heat transfer)Sensors
researchProduct

Peltier cells as temperature control elements: Experimental characterization and modeling

2014

Abstract The use of Peltier cells to realize compact and precise temperature controlled devices is under continuous extension in recent years. In order to support the design of temperature control systems, a simplified modeling of heat transfer dynamics for thermoelectric devices is presented. By following a macroscopic approach, the heat flux removed at the cold side of Peltier cell can be expressed as Q ˙ c = γ ( T c − T c eq ) , where γ is a coefficient dependent on the electric current, Tc and T c eq are the actual and steady state cold side temperature, respectively. On the other hand, a microscopic modeling approach was pursued via finite element analysis software packages. To validat…

Materials scienceTemperature controlSteady stateHeat fluxHeat transferThermoelectric effectEnergy Engineering and Power TechnologyThermodynamicsTransient (oscillation)Electric currentThermoelectric materialsIndustrial and Manufacturing EngineeringApplied Thermal Engineering
researchProduct

Impact of pump wavelength on terahertz emission of a cavity-enhanced spintronic trilayer

2018

We systematically study the pump-wavelength dependence of terahertz pulse generation in thin-film spintronic THz emitters composed of a ferromagnetic Fe layer between adjacent nonmagnetic W and Pt layers. We find that the efficiency of THz generation is essentially at for excitation by 150 fs pulses with center wavelengths ranging from 900 to 1500 nm, demonstrating that the spin current does not depend strongly on the pump photon energy. We show that the inclusion of dielectric overlayers of TiO2 and SiO2, designed for a particular excitation wavelength, can enhance the terahertz emission by a factor of of up to two in field.

Materials scienceTerahertz radiationFOS: Physical sciencesPhysics::Opticsterahertz emission02 engineering and technologyDielectricpump wavelength01 natural sciences530Condensed Matter::Materials Science0103 physical sciencesStimulated emissionCommon emitter010302 applied physicsSpintronicsbusiness.industry021001 nanoscience & nanotechnologyspintronic trilayerWavelengthTransmission (telecommunications)Physics::Accelerator PhysicsOptoelectronics0210 nano-technologybusinessIntensity (heat transfer)Optics (physics.optics)Physics - Optics
researchProduct

Heat transport of helium II in restricted geometries

1979

The linear heat transport of helium II contained in porous powder samples with mean pore diameters of 1.25µm, 0.17µm and 0.02µm was systematically studied in the temperature range between 0.8 K and 2 K. The effective thermal conductivity was determined by steady-state heat flow measurements and the effective thermal diffusivity by transitory temperature measurements. The experimental results are interpreted by a simple theoretical model. In the framework of this model the linear heat transport consists of two contributions: the laminar flow of the normal fluid (T≳1.4 K) and a diffusion mechanism (T≲1.4 K). At low temperatures (T≲1.2 K) the mean free paths of the elementary excitations of he…

Materials scienceThermal conductivityThermal resistanceHeat transferThermodynamicsRate of heat flowLaminar flowHeat transfer coefficientCondensed Matter PhysicsThermal conductionThermal diffusivityElectronic Optical and Magnetic MaterialsZeitschrift f�r Physik B Condensed Matter and Quanta
researchProduct

Prediction of the growth interface shape in industrial 300mm CZ Si crystal growth

2004

Abstract A model approach for a modification of the effective heat conductivity in the turbulent melt flow simulation for 28″ Si CZ crucibles is presented, which helped to overcome deficiencies in the growth interface shape prediction for industrial 300 mm Si CZ growth. The model has been incorporated into a CZ simulation tool based on the simulation software codes FEMAG for the global heat transfer and CFD-ACE for the turbulent melt flow simulation. The model predictions are compared to results from 300 mm Si CZ growth experiments with 200 kg charge weight in 28″ crucibles in a growth parameter range covered by standard industrial processes. The model is an engineering approach. Neverthele…

Materials scienceTurbulenceMineralogyThermodynamicsCrystal growthCondensed Matter Physicscomputer.software_genreThermal conductionSimulation softwareInorganic ChemistryThermal conductivityHeat transferPhenomenological modelMaterials ChemistrycomputerMelt flow indexJournal of Crystal Growth
researchProduct

Foam mat drying of yacon juice: Experimental analysis and computer simulation

2015

Abstract The foam mat drying of yacon juice (YJ) and concentrate yacon juice (CYJ) was conducted under various conditions of thickness of product (0.5, 1.0 and 1.5 cm) and air temperature (50, 60 and 70 °C). After drying the resulted dry powder was removed from the metallic tray and pulverized. Layer thickness and air temperature influenced statistically ( p  > 0.5) drying time, moisture content and water activity (Aw) of the product. The shortest drying time to reach the desired Aw (0.1–0.3) corresponds to the condition of 0.5 cm and 70 °C for both juices – 59 and 65 min for the YJ and CYJ, respectively. The process was modeled in terms of heat and mass transfer and then simulated by a fin…

Materials sciencebiologyWater activityFoam mat dryingModelingYacónbiology.organism_classificationYaconTrayDrying timeMass transferAir temperatureHeat transferHeat transferMass transferFood scienceComposite materialWater contentSimulationFood ScienceJournal of Food Engineering
researchProduct

Evolution towards centrosymmetry of the nonlinear-optical materialRbTiOPO4in the temperature range 293–973 K: Alkaline displacements and titanyl defo…

1998

The crystal structure of rubidium titanyl phosphate, ${\mathrm{RbTiOPO}}_{4}$ (space group ${\mathrm{Pna}2}_{1}$), has been refined at room temperature, and at 473, 673, 873, and 973 K, by using single-crystal x-ray-diffraction techniques. The data show a large anharmonic motion of the rubidium ions increasing with temperature. To describe the importance of this motion in the phase-transition procedure and in the ionic conductivity phenomenon, two models are developed. The study of the deviation to the centrosymmetric structure (space group Pnan) shows that the change towards centrosymmetry of the titanyl groups correlates directly with the observed variation of the second-harmonic generati…

Materials sciencebusiness.industryAnharmonicitychemistry.chemical_elementCrystal structureAtmospheric temperature rangeCentrosymmetryRubidiumIonCrystalOpticschemistryAtomic physicsbusinessIntensity (heat transfer)Physical Review B
researchProduct