Search results for "Intermetallic"

showing 10 items of 101 documents

Crystal field splitting of some rare earth intermetallic compounds with Cu3Au structure

1980

Inelastic neutron scattering studies were performed in the paramagnetic phases of several rare earth compounds that crystallize in the cubic Cu3Au structure: ErPb3, ErTl3, ErIn3, HoPb3, HoTl3, HoIn3, PrSn3, PrPb3, PrTl3, PrIn3, CeIn3, La1−c Pr c Tl3, and Pr(In0.5Tl0.5)3. The energies, widths and intensities of the crystal field excitations are determined and discussed in terms of interactions between the rare earth ions. Variations of the crystal field parameters are observed across the series.

CrystalParamagnetismMaterials scienceField (physics)Condensed matter physicsCrystal field theoryRare earth ionsRare earthIntermetallicAtomic physicsCondensed Matter PhysicsInelastic neutron scatteringElectronic Optical and Magnetic MaterialsZeitschrift f�r Physik B Condensed Matter and Quanta
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Mechanically Activated SHS Reaction in the Fe-Al System: In Situ Time Resolved Diffraction Using Synchrotron Radiation

1998

The Mechanical Activation Self propagating High temperature Synthesis (M.A.S.H.S.) processing is a new way to produce nanocrystalline iron aluminide intermetallic compounds. This process is maily the combination of two steps ; in the one hand, a mechanical activation where the Fe - Al powder mixture was milled during a short time at given energy and frequency of shocks and in the other hand, a Self propagating High temperature Synthesis (S.H.S.) reaction, for which the exothermicity of the Fe + Al reaction is used. This fast propagated MASHS reaction has been in -situ investigated using the Time Resolved X - Ray Diffraction (TRXRD) using a X - ray synchrotron beam and an infrared thermograp…

DiffractionMaterials scienceMechanical EngineeringMetallurgyAnalytical chemistrySelf-propagating high-temperature synthesisIntermetallicSynchrotron radiationCondensed Matter PhysicsSynchrotronNanocrystalline materiallaw.inventionMechanics of MaterialslawPowder metallurgyGeneral Materials ScienceAluminideMaterials Science Forum
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Investigation of mechanically activated field-activated pressure-assisted synthesis processing parameters for producing dense nanostructured FeAl

2003

The parameters of the mechanically activated field-activated pressure-assisted synthesis (MAFAPAS) process, which were recently developed and patented for producing dense nanostructured materials, were studied in the case of the B2-FeAl intermetallic. Based on x-ray diffraction (XRD) experiments, residual stresses XRD analysis, relative density measurement, and secondary-electron microscopic observations, the optimal synthesis conditions (time, current intensity, and pressure) were studied. Fe + Al powders were comilled in a specially designed planetary mill to obtain a mixture of reactants at the nanoscale without the formation of any product. The milled mixtures were then subjected to a h…

DiffractionMaterials scienceMechanical EngineeringMetallurgyIntermetallicFEALCondensed Matter PhysicsMicrostructureChemical engineeringMechanics of MaterialsResidual stressRelative densityGeneral Materials ScienceCurrent densityIntensity (heat transfer)Journal of Materials Research
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Simultaneous IR and time-resolved X-ray diffraction measurements for studying self-sustained reactions.

1998

Self-propagating high-temperature synthesis provides an attractive practical method for producing advanced materials such as ceramics, composites and intermetallics. This kind of reaction has been investigated in situ using time-resolved X-ray diffraction, with an X-ray synchrotron beam (D43 beamline, LURE, Orsay) coupled to simultaneous IR thermography to study structural transformations and thermal evolution. With short acquisition times (30 ms per pattern) it has been possible to observe several steps before obtaining compounds. Two different compound formations have been described: (i) the different steps of reaction, aluminium melting, subsequent temperature increase and fast reaction …

DiffractionNuclear and High Energy PhysicsRadiationMaterials scienceAnalytical chemistrySelf-propagating high-temperature synthesisIntermetallicchemistry.chemical_elementFEALSynchrotronlaw.inventionCrystallographychemistryAluminiumlawPhase (matter)X-ray crystallographyInstrumentationJournal of synchrotron radiation
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Dissimilar joining of copper to stainless steel and TA6V to stainless steel by high power beams : understanding and modeling of physicochemical pheno…

2010

The present study is dedicated to the comprehension of the mechanism of materials mixing during dissimilar welding by high power beam sources. We have been interested in joining of two couples of metallic materials which present different metallurgical problems: •copper- stainless steel (miscibility gap, important difference in physical properties);•TA6V- stainless steel (oxidation on air, formation of intermetallic phases which made the joint brittle).For the first couple of materials, continuous laser Nd:YAG welding and electron beam welding have been applied. The experimental study of morphology evolution, composition, microstructure and mechanical properties has allowed establishing the…

Electron beamLaser Nd:YAGIntermetallicsFaisceau d'électronsIntermétalliques[ PHYS.COND.CM-GEN ] Physics [physics]/Condensed Matter [cond-mat]/Other [cond-mat.other]Assemblage hétérogèneÉcoulement multiphasique[CHIM.OTHE] Chemical Sciences/Other[PHYS.COND.CM-GEN] Physics [physics]/Condensed Matter [cond-mat]/Other [cond-mat.other][PHYS.COND.CM-GEN]Physics [physics]/Condensed Matter [cond-mat]/Other [cond-mat.other][ CHIM.OTHE ] Chemical Sciences/OtherNumerical modelingNd:YAG laserDissimilar joiningMultiphase flowModélisation numérique[CHIM.OTHE]Chemical Sciences/OtherMicrostructure
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Towards ductilization of high strength 7XXX aluminium alloys via microstructural modifications obtained by friction stir processing and heat treatmen…

2021

Abstract High strength 7XXX aluminium series reach exceptional strength, higher than all other industrial aluminium alloys. However, they suffer from a lack of ductility compared to softer series. This work presents a procedure to improve the ductility of 7475 Al alloy in high strength condition, reaching a true fracture strain of 70% at full 500 MPa T6 yield strength. Using friction stir processing (FSP) and post-FSP heat treatments, 100% of industrial rolled material T6 yield stress is maintained but a 180% increase in fracture strain is measured for the processed material. This ductility improvement is studied by in-situ synchrotron X-ray tomography and is explained by the reduction of i…

Equiaxed crystalsFriction stir processingMaterials scienceAlloyIntermetallicchemistry.chemical_element02 engineering and technologyengineering.material030226 pharmacology & pharmacy[SPI.MAT]Engineering Sciences [physics]/Materials03 medical and health sciences0302 clinical medicineAluminiumFormabilityGeneral Materials ScienceComposite materialDuctilityMicrostructureCrack propagationPhysicsDuctilizationAluminium alloysFriction stir processing (FSP)021001 nanoscience & nanotechnologyMicrostructurechemistryengineering0210 nano-technology
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Nanoscale chemistry and atomic-scale microstructure of a bulk Ni3Sn material built using selective laser melting of elemental powder blends

2021

Abstract Cubic specimens of the intermetallic Ni3Sn compound were built using selective laser melting of elemental powder blends. A specimen built at a laser power of 200 W and a scanning speed of 0.5 m/s was determined to have a homogeneous distribution of Ni and Sn on a mesoscopic scale in spite of a 2 at.% Sn deficiency. Characterization of the microstructure using the HAADF-STEM technique reveals a dispersion of ultrafine Ni particles, nanoscale chemical inhomogeneity and the formation of antiphase nanodomains in the matrix of equiaxed Ni3Sn grains. While a mesoscopic homogeneity of the specimen demonstrates a prospect of additive manufacturing of a bulk intermetallic material using sel…

Equiaxed crystalsMaterials scienceSelective laser meltingIntermetallicsMechanical EngineeringElemental powder blendsIntermetallicMicrostructureHomogeneous distributionMechanics of MaterialsTA401-492General Materials ScienceHAADF-STEMLaser power scalingSelective laser meltingComposite materialSupercoolingNanoscopic scaleMicrostructureMaterials of engineering and construction. Mechanics of materialsMaterials & Design
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The Role of Zr in the High-Temperature Oxidation of Fe<sub>3</sub>Al

2008

The paper describes an examination of the effect of the addition of zirconium as a third element on the heat-resisting properties and explains the high temperature oxidation mechanism of Fe3Al intermetallic compounds. The Fe3Al and Fe3Al-0,05Zr specimens have been isothermally oxidized in the temperature range of 1173-1473 K in synthetic air for 100 hrs. The formed oxide layer, about 1,5-2 μm thick, was Al2O3. An examination of the cross-sectioned scales by SEM-EDS showed that the alumina layer consisted of a small inner columnar layer and an outer equiaxed grain layer. Additionally, very fine (50-150 nm) oxide grains rich in Zr, further identified as ZrO2, were found across the alumina sca…

Equiaxed crystalsZirconiumMaterials scienceMechanical EngineeringMetallurgyOxideIntermetallicchemistry.chemical_elementAtmospheric temperature rangeCondensed Matter PhysicsFocused ion beamchemistry.chemical_compoundchemistryChemical engineeringMechanics of MaterialsGeneral Materials ScienceGrain boundaryLayer (electronics)Materials Science Forum
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Determination of transport and kinetic properties in self-propagating high-temperature synthesis

2007

International audience; Exothermic reactions in solid powders are analyzed using the usual macroscopic modeling based on the heat transfer equation coupled to an Arrhenius type of dynamics. This problem have important applications in the synthesis of intermetallics and ceramic materials which occur when a high temperature reaction wave propagates throughout the system. Understanding the mechanism of such processes are thus crucial in mastering real laboratory experiments. We first analyze the model, both theoretically and numerically, for a set of representative parameters. We then use traditional data analyses procedures to estimate from the temperature profiles the same set of representat…

Exothermic reactionChemical substanceIntermetallics[ PHYS.COND.CM-MS ] Physics [physics]/Condensed Matter [cond-mat]/Materials Science [cond-mat.mtrl-sci]Self-propagating high-temperature synthesisThermodynamics02 engineering and technologyActivation energy010402 general chemistryKinetic energy01 natural sciencessymbols.namesakePowder metallurgyMaterials ChemistryThermal analysisThermal analysisArrhenius equationChemistryMechanical EngineeringMetals and AlloysMechanicsComputer simulation021001 nanoscience & nanotechnology0104 chemical sciences[ PHYS.PHYS.PHYS-CHEM-PH ] Physics [physics]/Physics [physics]/Chemical Physics [physics.chem-ph]Mechanics of MaterialsHeat transfer[PHYS.COND.CM-MS]Physics [physics]/Condensed Matter [cond-mat]/Materials Science [cond-mat.mtrl-sci]symbols[PHYS.PHYS.PHYS-CHEM-PH]Physics [physics]/Physics [physics]/Chemical Physics [physics.chem-ph]Solid-state reactions0210 nano-technologyJournal of Alloys and Compounds
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Study of the reactive dynamics of nanometric metallic multilayers using Molecular Dynamics: the Al−Ni system

2012

A molecular dynamics study of a layered Ni-Al-Ni system is developed using an embedded atom method potential. The specific geometry is designed to model a Ni-Al nanometric metallic multilayer. The system is initially thermalized at the fixed temperature of 600 K. We first observe the interdiffusion of Ni and Al at the interfaces, which is followed by the spontaneous phase formation of B2-NiAl in the Al layer. The solid-state reaction is associated with a rapid system's heating which further enhances the diffusion processes. NiAl phase is organized in small regions separated by grain boundaries. This study confirms the hypothesis of a layer-by-layer development of the new phase. For longer t…

Exothermic reactionNialMaterials scienceDiffusionmultilayersIntermetallicnanometric metallic multilayersNanotechnology02 engineering and technology01 natural sciencesinterfacesMolecular dynamicsPhase (matter)0103 physical sciencesGeneral Materials Scienceintermetallics010306 general physicscomputer.programming_languageRadiationnanoscale effects[CHIM.MATE]Chemical Sciences/Material chemistry021001 nanoscience & nanotechnologyCondensed Matter PhysicsMicrostructuremolecular dynamics[ PHYS.PHYS.PHYS-CHEM-PH ] Physics [physics]/Physics [physics]/Chemical Physics [physics.chem-ph]Chemical physics[ CHIM.MATE ] Chemical Sciences/Material chemistryGrain boundary[PHYS.PHYS.PHYS-CHEM-PH]Physics [physics]/Physics [physics]/Chemical Physics [physics.chem-ph]0210 nano-technologycomputer
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