Search results for "Dislocation"

showing 10 items of 118 documents

Depth profiles of hardening in lithium fluoride irradiated with swift58Ni ions

2004

The changes of hardness and dislocation formation in LiF crystals irradiated with 630-MeV 58Ni ions up to a dose of 20 MGy were studied by microindentation and dislocation etching techniques. Above the threshold fluence of 2 × 1010 ions/cm2, a marked effect of hardening, which is related mainly to damage processes in the track core, has been observed. Its magnitude depends on ion fluence and energy loss. To investigate the depth distribution of hardening, indentation tests on crystal cross sections cleaved parallel to ion flux were performed. It has been found that the hardness change along the ion path correlates with the ion energy loss and reaches the highest value at the Bragg maximum. …

Materials scienceLithium fluorideWork hardeningStrain hardening exponentCondensed Matter PhysicsFluenceElectronic Optical and Magnetic MaterialsIonchemistry.chemical_compoundCrystallographychemistryHardening (metallurgy)IrradiationDislocationComposite materialphysica status solidi (a)
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Powder metallurgy processing and deformation characteristics of bulk multimodal nickel

2014

cited By 7; International audience; Spark plasma sintering was used to process bulk nickel samples from a blend of three powder types. The resulting multimodal microstructure was made of coarse (average size ∼ 135 μm) spherical microcrystalline entities (the core) surrounded by a fine-grained matrix (average grain size ∼ 1.5 μm) or a thick rim (the shell) distinguishable from the matrix. Tensile tests revealed yield strength of ∼ 470 MPa that was accompanied by limited ductility (∼ 2.8% plastic strain). Microstructure observation after testing showed debonding at interfaces between the matrix and the coarse entities, but in many instances, shallow dimples within the rim were observed indica…

Materials sciencePlasticityEBSDFlow stressDeformation CharacteristicsNickelPowder metallurgyPowder metallurgyGeneral Materials ScienceIn-situ TEMMicrostructureMicrostructure observationCrack tips[PHYS]Physics [physics][ PHYS ] Physics [physics]Deformation mechanismMechanical EngineeringMetallurgySpark plasma sinteringNickel powder metallurgyCondensed Matter PhysicsMicrostructureGrain sizeDeformationIn-situ transmission electron microscopiesDeformation mechanismMechanics of MaterialsMulti-modalGrain boundariesGrain boundaryPowder metallurgy processingDeformation (engineering)DislocationTensile testingTransmission electron microscopy
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The combined influence of grain size distribution and dislocation density on hardness of interstitial free steel

2020

Abstract Understanding the relationship between microstructure features and mechanical properties is of great significance for the improvement and specific adjustment of steel properties. The relationship between mean grain size and yield strength is established by the well-known Hall-Petch equation. But due to the complexity of the grain configuration within materials, considering only the mean value is unlikely to give a complete representation of the mechanical behavior. The classical Taylor equation is often used to account for the effect of dislocation density, but not thoroughly tested in combination with grain size influence. In the present study, systematic heat treatment routes and…

Materials sciencePolymers and PlasticsAnnealing (metallurgy)02 engineering and technology010402 general chemistryGrain size distribution01 natural scienceslaw.inventionCondensed Matter::Materials ScienceOptical microscopelawHardnessMaterials ChemistryDislocation densityComposite materialMechanical EngineeringMean valueMetals and Alloys021001 nanoscience & nanotechnologyMicrostructureGrain size0104 chemical sciencesMechanics of MaterialsParticle-size distributionCeramics and CompositesKurtosis0210 nano-technologyInterstitial free steel
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Dislocation interaction with C in α-Fe: a comparison between atomic simulations and elasticity theory

2008

International audience; The interaction of C atoms with a screw and an edge dislocation is modelled at an atomic scale using an empirical Fe-C interatomic potential based on the Embedded Atom Method (EAM) and molecular statics simulations. Results of atomic simulations are compared with predictions of elasticity theory. It is shown that a quantitative agreement can be obtained between both modelling techniques as long as anisotropic elastic calculations are performed and both the dilatation and the tetragonal distortion induced by the C interstitial are considered. Using isotropic elasticity allows to predict the main trends of the interaction and considering only the interstitial dilatatio…

Materials sciencePolymers and Plastics[ SPI.MAT ] Engineering Sciences [physics]/MaterialsFOS: Physical sciencesInteratomic potential02 engineering and technology[SPI.MAT] Engineering Sciences [physics]/Materials01 natural sciencesAtomic units[SPI.MAT]Engineering Sciences [physics]/MaterialsCondensed Matter::Materials ScienceTetragonal crystal systemedge dislocation0103 physical sciencesAtomanisotropic elasticityElasticity (economics)010306 general physicsAnisotropyComputingMilieux_MISCELLANEOUSCottrell atmospheresCondensed Matter - Materials ScienceCondensed matter physicsMetals and AlloysMaterials Science (cond-mat.mtrl-sci)Fe-C alloysbinding energy021001 nanoscience & nanotechnologyFinite element methodElectronic Optical and Magnetic Materialsscrew dislocationClassical mechanics[PHYS.COND.CM-MS]Physics [physics]/Condensed Matter [cond-mat]/Materials Science [cond-mat.mtrl-sci]Ceramics and CompositesDislocation0210 nano-technology
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Stress-induced dislocation generation in large FZ- and CZ-silicon single crystals—numerical model and qualitative considerations

2001

When growing silicon crystals with higher diameter (presently up to 300 mm) the thermal stresses and possible dislocation generation in single crystals become a serious problem for both FZ- and CZ-methods. A two-dimensional problem oriented code for the FEM-package ANSYS has been developed to calculate the temperature field in the growing crystal considering radiation exchange with reflectors and environment and thermal stresses. Comparing calculated stresses with critical stresses, the dislocated zone is determined. A qualitative concept for the occurrence of dislocations using the metastable state is developed. In a parametric study for different thermal boundary conditions and crystal ge…

Materials scienceSiliconField (physics)Mineralogychemistry.chemical_elementMechanicsCondensed Matter PhysicsFinite element methodInorganic ChemistryStress (mechanics)CrystalchemistryMetastabilityThermalMaterials ChemistryDislocationJournal of Crystal Growth
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Heteroepitaxial growth of Co on W(110) investigated by scanning tunneling microscopy

2003

We investigated the growth of Co submonolayers on bcc W(110) by scanning tunneling microscopy. Due to the strong Co-W bonding, monolayers of Co grow in equilibrium pseudomorphically on W(110) until the monolayer is almost completed. When excess atoms are deposited atop the pseudomorphic monolayer, it transforms to a close-packed (cp) monolayer with misfit dislocation lines parallel to $[11\ifmmode\bar\else\textasciimacron\fi{}0]$ (Nishiyama-Wassermann orientation). The structure of the cp monolayer, as concluded from atomically resolved STM images, deviates from the rigid hard-sphere model of a cp (111) layer. Details of the structure are compared to a structure model previously proposed by…

Materials sciencebusiness.industrylaw.inventionCrystallographyOpticslawMonolayerDislocationStructured modelScanning tunneling microscopebusinessLayer (electronics)Embedded atom modelBar (unit)Physical Review B
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<title>Hardening and long-range stress effects in LiF caused by high-fluence irradiation with fast Bi, Ni, Kr, and S ions</title>

2005

The limits of the hardening, and the effects of ion-induced internal and long-range stresses in LiF crystals irradiated with Bi, Ni, Kr, and S ions, having a specific energy of the order of 10 MeV/u and the fluence up to 1013cm-2, are studied. A considerable hardness increase, bending of the crystals, formation of dislocations in distant nonirradiated parts of the crystals, and initiation of fracturing under the high-fluence irradiation are observed. It is shown that the irradiation with heavy ions (Bi) gives rise to dislocations and work hardening mainly in the region adjacent to the irradiated one. In the case of lighter ions (Ni and S), the work hardening takes place also inside the irra…

Materials sciencechemistryKryptonHardening (metallurgy)chemistry.chemical_elementSpecific energyWork hardeningIrradiationDislocationFluenceMolecular physicsNuclear chemistryIonSPIE Proceedings
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Anterior Capsule Opening Contraction and Late Intraocular Lens Dislocation after Cataract Surgery in Patients with Weak or Partially Absent Zonular S…

2021

Background and Objectives: To evaluate anterior capsule opening (ACO) contraction and late intraocular lens (IOL) dislocation after cataract surgery in patients with weak or partially absent zonular support and assess methods of reducing these complications. Materials and Methods: For this prospective study, we enlisted cataract surgery patients in our hospital with preoperative diagnoses of weak zonules. All patients received phacoemulsification surgery with implantation of a hydrophobic acrylic IOL and capsular tension ring (CTR). ACO reductions were measured for six months after enrolment. Data on late IOL dislocations were collected five years after enrolment of the last patient. Result…

Medicine (General)medicine.medical_specialtyIntraocular Lens Dislocationgenetic structuresmedicine.medical_treatmentIntraocular lensAfter cataractArticleCataractlate intraocular lens dislocationR5-920Postoperative ComplicationsLens Implantation IntraocularmedicineHumansProspective StudiesProspective cohort studyweak zonules; anterior capsule opening reduction; late intraocular lens dislocation; capsular tension ringReduction (orthopedic surgery)Lenses IntraocularPhacoemulsificationbusiness.industryweak zonulescapsular tension ringGeneral MedicinePhacoemulsificationCataract surgeryLens Subluxationmedicine.diseaseComorbidityeye diseasesSurgeryanterior capsule opening reductionsense organsbusinessMedicina
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Dynamical features of forest interactions

2000

Abstract The 3D computer simulations presented here were developed to study at the mesoscopic scale the formation of junctions and their impact on hardening of crystals. The simulations consider the evolution of a dislocation interacting with immobile dislocations in a fcc single crystal of copper where we incorporate well known dislocation interaction mechanisms. From these studies, we deduced a `breaking angle' which characterize the strength of the junctions.

Mesoscopic physicsMaterials scienceGeneral Computer ScienceCondensed matter physicsGeneral Physics and AstronomyGeneral ChemistryCondensed Matter::Mesoscopic Systems and Quantum Hall EffectCondensed Matter::Materials ScienceComputational MathematicsCrystallographyMechanics of MaterialsCondensed Matter::SuperconductivityHardening (metallurgy)General Materials ScienceDislocationSingle crystalThree dimensional modelComputational Materials Science
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A 3D mesoscopic approach for discrete dislocation dynamics

2001

In recent years a noticeable renewed interest in modeling dislocations at the mesoscopic scale has been developed leading to significant advances in the field. This interest has arisen from a desire to link the atomistic and macroscopic length scales. In this context, we have recently developed a 3D-discrete dislocation dynamics model (DDD) based on a nodal discretization of the dislocations. We present here the basis of our DDD model and two examples of studies with single and multiple slip planes.

Mesoscopic physicsMaterials scienceScale (ratio)DiscretizationField (physics)Basis (linear algebra)Mechanical EngineeringDynamics (mechanics)Context (language use)Condensed Matter PhysicsCondensed Matter::Materials ScienceMechanics of MaterialsGeneral Materials ScienceStatistical physicsDislocationSimulationMaterials Science and Engineering: A
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