Search results for "THERMODYNAMICS"

showing 10 items of 2774 documents

On the measurement of local gas hold-up, interfacial area and bubble size distribution in gas–liquid contactors via light sheet and image analysis: I…

2013

Abstract In this work a novel experimental technique for measuring local gas hold-up, interfacial area and bubble size distribution, in gas–liquid systems is proposed. The technique is based on advanced Image Processing coupled with experimental set-ups typically available for Particle Image Velocimetry. A fluorescent dye dissolved in the liquid phase allows to identify in-plane bubbles among all visible bubbles in the images. To this end, a suitable algorithm is proposed. The raw data so obtained are processed by previously developed statistical methods that result in a reliable reconstruction of actual dispersion properties. The technique is applied to the case of a gas-dispersed mechanic…

Work (thermodynamics)Materials scienceSettore ING-IND/25 - Impianti ChimiciGeneral Chemical EngineeringBubbleMixing (process engineering)Image processingIndustrial and Manufacturing EngineeringImagingPhysics::Fluid DynamicsOpticsGas-liquid dispersionContactorBubblebusiness.industryBUBBLESApplied MathematicsMIXINGMultiphase flowBUBBLE SIZE DISTRIBUTIONGeneral ChemistryMechanicsGas–liquid dispersionParticle image velocimetryMultiphase flowDispersion (chemistry)business
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Temperature Coefficients of Compensated Silicon Solar Cells – Influence of Ingot Position and Blend-in-ratio

2015

Published version of an article in the journal: Energy Procedia. Also available on Science Direct: http://dx.doi.org/10.1016/j.egypro.2015.07.004 Solar-grade silicon made from a metallurgical route presents boron and phosphorus compensation. Earlier work has shown that cells made from such material produce more energy than reference polysilicon modules when the temperature and irradiance is high. In the present study, solar cells from two different ingots with different blend-in-ratios were made from wafers at varying ingot heights in order to investigate how the temperature coefficients vary with compensation level and ingot height. The results suggest that solar modules made with solar ce…

Work (thermodynamics)Materials scienceSiliconIrradiancechemistry.chemical_elementsolar-grade siliconCompensated siliconCompensation (engineering)temperature coefficientEnergy(all)chemistryForensic engineeringmulticrystalline solar cellsWaferComposite materialIngotingot heightBoronTemperature coefficientEnergy Procedia
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Temperature profiles of field-aged multicrystalline silicon photovoltaic modules affected by microcracks

2021

In this work, the temperature sensitivities of field-aged multicrystalline silicon PV modules affected by microcracks are investigated. It is found that the temperature coefficient of efficiency of all modules has increased more than 10 times over the 20 years period, mainly due to a degradation in the temperature coefficients of fill factor. Temperature coefficient of efficiency of PV modules affected by microcracks changed from -0.44 %/ °C to -1.51 %/°C under solar irradiance conditions at 1010 - 1030 W/m2. Inconsistent values for the Evans–Floschuetz efficiency ratio versus temperature plots for the microcrack affected modules were also observed.

Work (thermodynamics)Materials scienceSiliconchemistryField (physics)Photovoltaic systemDegradation (geology)chemistry.chemical_elementFill factorComposite materialSolar irradianceTemperature coefficient2021 IEEE 48th Photovoltaic Specialists Conference (PVSC)
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Kinetics of block-copolymer aggregation in super critical CO2

2002

Small angle X-ray and neutron scattering (SAXS and SANS) are used to obtain structural information on the aggregation behavior of block-copolymers dissolved in supercritical CO2. The SANS technique is used to provide a detailed structural model for the micellar aggregates, which form below the critical micellization density (CMD), that we defined in our previous work. The SAXS technique (with a synchrotron source) is used to provide the first experimental information concerning the kinetic features of both formation and decomposition of such aggregates as soon as pressure jumps are applied to the solutions across the CMD. 2002 Elsevier Science B.V. All rights reserved.

Work (thermodynamics)Materials scienceSmall-angle X-ray scatteringKineticsThermodynamicsNeutron scatteringCondensed Matter PhysicsKinetic energySynchrotronSupercritical fluidElectronic Optical and Magnetic Materialslaw.inventionlawPolymer chemistryMaterials ChemistryCeramics and CompositesCopolymerJournal of Non-Crystalline Solids
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Magnetic Ion Exchange Interactions in NiO—MgO Solid Solutions

2006

In this work, a review of recent experimental data and their interpretation for NicMg1−c O solid solutions is given. In particular, the influence of exchange interactions between Ni2+ ions on the structural, optical, magnetic, and vibrational properties is discussed.

Work (thermodynamics)Materials scienceSolid-state physicsIon exchangeChemistryInorganic chemistryNon-blocking I/OGeneral MedicineCondensed Matter PhysicsElectronic Optical and Magnetic MaterialsInterpretation (model theory)IonChemical physicsSolid solutionChemInform
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Spinodal decomposition of a two-dimensional model alloy with mobile vacancies

1991

Abstract Monte Carlo simulations are performed for the initial stages of phase separation in a model binary alloy (AB), where unmixing is caused by a repulsive energy between atoms of different kind ( e AA = e BB = e ), and a small fraction c v of mobile vacancies is present (typically c v = 0.04.) Unlike previous work, where interdiffusion was modelled in an unrealistic way by direct interchange of A and B atoms for c v = 0, were use the vacancy mechanism of diffusion: A-atoms may jump to vacant sites with a rate Γ A and B-atoms may jump to vacant sites with a rate Γ B , no direct A–B interchange being permitted. It is shown that the overall time-scale on which phase separation proceeds ty…

Work (thermodynamics)Materials scienceSpinodal decompositionScatteringVacancy defectMonte Carlo methodGeneral EngineeringThermodynamicsDiffusion (business)AnisotropyStructure factorActa Metallurgica et Materialia
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Phase separation of an asymmetric binary fluid mixture confined in a nanoscopic slit pore: Molecular-dynamics simulations

2008

As a generic model system of an asymmetric binary fluid mixture, hexadecane dissolved in carbon dioxide is considered, using a coarse-grained bead-spring model for the short polymer, and a simple spherical particle with Lennard-Jones interactions for the carbon dioxide molecules. In previous work, it has been shown that this model reproduces the real phase diagram reasonable well, and also the initial stages of spinodal decomposition in the bulk following a sudden expansion of the system could be studied. Using the parallelized simulation package ESPResSo on a multiprocessor supercomputer, phase separation of thin fluid films confined between parallel walls that are repulsive for both types…

Work (thermodynamics)Materials scienceStatistical Mechanics (cond-mat.stat-mech)Spinodal decompositionCenter (category theory)FOS: Physical sciencesHexadecaneCondensed Matter - Soft Condensed MatterMolecular physicschemistry.chemical_compoundMolecular dynamicschemistryPerpendicularSoft Condensed Matter (cond-mat.soft)ParticleStatistical physicsCondensed Matter - Statistical MechanicsPhase diagram
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Subamorphous thermal conductivity of crystalline half-Heusler superlattices

2021

The quest to improve the thermoelectric figure of merit has mainly followed the roadmap of lowering the thermal conductivity while keeping unaltered the power factor of the material. Ideally an electron-crystal phonon-glass system is desired. In this work, we report an extraordinary reduction of the cross-plane thermal conductivity in crystalline (TiNiSn):(HfNiSn) half-Heusler superlattices (SLs). We create SLs with thermal conductivities below the effective amorphous limit, which is kept in a large temperature range (120–300 K). We measured thermal conductivity at room temperature values as low as 0.75 W m−1 K−1, the lowest thermal conductivity value reported so far for half-Heusler compou…

Work (thermodynamics)Materials scienceSuperlatticesSuperlatticeFOS: Physical sciences02 engineering and technology01 natural sciencesThermal conductivity0103 physical sciencesThermalGeneral Materials ScienceDeposition (law)010302 applied physicsCondensed Matter - Materials ScienceCondensed matter physicsUltralow thermal conductivityMaterials Science (cond-mat.mtrl-sci)Atmospheric temperature range021001 nanoscience & nanotechnologyCondensed Matter PhysicsAtomic and Molecular Physics and OpticsAmorphous solidThermoelectric generatorAmorphous limit of thermal conductivityMechanics of Materials0210 nano-technology
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The global cracking laws for a finite-element model of no-tension material

1992

Abstract For perfect no-tension materials (NRT) the validity of the local stability postulate of Drucker, well known in plasticity, has been assumed so far and utilized to derive the local cracking laws, which relate cracking strain states and stress states to each other. On this base a finite-element (FE) model with suitable constitutive behaviour for the single FE is presented. Classical FE approaches enforce the cracking laws at the Gauss points of the FEs. In this work it is shown that taking into account cracking strains, suitably modelled, over the whole domain of the FE and making use of an energy approach lead to general cracking laws describing the constitutive behaviour of the who…

Work (thermodynamics)Materials scienceTension (physics)business.industryApplied MathematicsMechanical EngineeringFracture mechanicsPlasticityMasonryFinite element methodStress (mechanics)CrackingMechanics of MaterialsLawbusinessInternational Journal of Non-Linear Mechanics
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Two relaxation times and thermal nonlinear waves along wires with lateral heat exchange

2021

Abstract We propose a model for studying several nonlinear waves for heat transport along a cylindrical system with lateral non-linear heat transfer to the environment. We consider relaxational equations, each with its own relaxation time, for longitudinal heat transfer and for lateral heat transfer across the wall. We consider two kinds of nonlinear lateral heat transport: radiative heat transport, and flux-limited heat transport. This work generalizes our previous studies in which the relaxation time for the lateral heat transfer was considered equal to that of the longitudinal heat flux. We explore the influence of both relaxation times on the propagation speed of linear and nonlinear wa…

Work (thermodynamics)Materials scienceThermal solitonsRelaxation (NMR)Statistical and Nonlinear PhysicsMechanicsRadiant heatCondensed Matter Physics01 natural sciencesHeat waves010305 fluids & plasmasHeat flux saturationNonlinear systemHeat flux0103 physical sciencesThermalHeat exchangerHeat transferRadiative transferMaxwell–Cattaneo law010306 general physicsAuxiliary equation methodPhysica D: Nonlinear Phenomena
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