Search results for "Damage mechanics"

showing 7 items of 37 documents

Virtual Element based formulations for computational materials micro-mechanics and homogenization

2021

In this thesis, a computational framework for microstructural modelling of transverse behaviour of heterogeneous materials is presented. The context of this research is part of the broad and active field of Computational Micromechanics, which has emerged as an effective tool both to understand the influence of complex microstructure on the macro-mechanical response of engineering materials and to tailor-design innovative materials for specific applications through a proper modification of their microstructure. While the classical continuum approximation does not account for microstructural details within the material, computational micromechanics allows detailed modelling of a heterogeneous…

Settore ING-IND/04 - Costruzioni E Strutture AerospazialiFibre-reinforced Composite Materials Computational Micro-mechanics Computational Homogenization Continuum Damage Mechanics Virtual Element Method Boundary Element Method
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Influence of custom-made and prefabricated insoles before and after an intense run

2017

[EN] Each time the foot contacts the ground during running there is a rapid deceleration that results in a shock wave that is transmitted from the foot to the head. The fatigue of the musculoskeletal system during running may decrease the ability of the body to absorb those shock waves and increase the risk of injury. Insoles are commonly prescribed to prevent injuries, and both custom-made and prefabricated insoles have been observed to reduce shock accelerations during running. However, no study to date has included a direct comparison of their behaviour measured over the same group of athletes, and therefore great controversy still exists regarding their effectiveness in reducing impact …

Shock waveMaleCritical Care and Emergency MedicinePhysiologylcsh:MedicineAccelerometerPathology and Laboratory MedicineMaterial FatigueRunning0302 clinical medicineMaterials PhysicsMedicine and Health SciencesTreadmillGroung Reaction Forcelcsh:ScienceMusculoskeletal SystemFatigueTrauma MedicineMultidisciplinaryPhysicsClassical MechanicsFoamShock (mechanics)Muscle FatiguePhysical SciencesLegsEngineering and TechnologyFemaleAnatomyShock AttenuationTraumatic InjuryResearch ArticleAdultmedicine.medical_specialtyMaterials by StructureMaterials ScienceSTRIDE03 medical and health sciencesAccelerationYoung AdultPhysical medicine and rehabilitationSigns and SymptomsDiagnostic MedicineTEORIA DE LA SEÑAL Y COMUNICACIONESmedicineHumansTibial Stress-FractureDamage Mechanicsbusiness.industryBiological Locomotionlcsh:RLimbs (Anatomy)Biology and Life Sciences030229 sport sciencesStride lengthShoesAthletesMusculoskeletal InjuryImpact loadingExercise Testlcsh:QFeet (Anatomy)ElectronicsAccelerometersbusiness030217 neurology & neurosurgery
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Modelling unilateral damage effect in strongly anisotropic materials by the introduction of the loading mode in damage mechanics

1999

Abstract Damage weakens the mechanical characteristics of materials. But this weakening can disappear if the cracks close again: this is called the unilateral effect of damage. We propose a model of this phenomenon using damage mechanics in the case of a diffuse network of identical microcracks. The microcracks state is defined with two internal state variables. These two variables are control parameters of the geometry of the microcracks. They also define the loading mode in damage mechanics as in fracture mechanics. In order to limit the anisotropy induced by the microcracks, hence by the loading, we suppose that the geometry of damage spreads into preferential directions. Therefore, this…

State variableMaterials sciencebusiness.industryApplied MathematicsMechanical EngineeringMode (statistics)Fracture mechanicsStructural engineeringComposite laminatesCondensed Matter PhysicsMechanics of MaterialsModeling and SimulationDamage mechanicsGeneral Materials ScienceComposite materialbusinessControl parametersAnisotropyInternational Journal of Solids and Structures
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Finite fracture mechanics analysis of crack onset at a stress concentration in a UD glass/epoxy composite in off-axis tension

2010

The presence of stress concentrations at holes and notches is known to reduce the strength of composite materials. Due to complexity of the damage processes at a stress raiser in a composite, different modeling approaches have been developed, ranging from empirical point and average stress criteria to involved damage mechanics or cohesive zone-based models of failure. Finite fracture mechanics approach with a coupled stress and energy failure criterion, recently developed and applied mainly to cracking in homogeneous isotropic materials, allows predicting the appearance and propagation of a crack using material strength and toughness characteristics obtained from independent tests. The pres…

Stress (mechanics)Materials scienceFracture toughnessDamage mechanicsUltimate tensile strengthGeneral EngineeringCeramics and CompositesFracture mechanicsComposite materialStrength of materialsStress intensity factorStress concentrationComposites Science and Technology
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Non associative damage interface model for mixed mode delamination and frictional contact

2019

Abstract The present paper proposes a new interface constitutive model based on the non-associative damage mechanics and frictional plasticity. The model is developed in a thermodynamically consistent framework, with three independent damage variables. The non associative flow rules drive the concurrent evolution of the three damage variables. The interface model provides two independent values for the mode I fracture energy and the mode II fracture energy and it is able to accurately reproduce arbitrary mixed mode fracture conditions. The model can also take into account the presence of frictional effects both at the fully debonded zones and at the partially debonded ones. The experimental…

ToughnessMaterials scienceDamage Delamination Fracture Mixed mode Interface model FrictionComputer simulationMechanical EngineeringConstitutive equationGeneral Physics and AstronomyTorsion (mechanics)Fracture mechanics02 engineering and technologyMechanicsPlasticity021001 nanoscience & nanotechnology020303 mechanical engineering & transports0203 mechanical engineeringMechanics of MaterialsDamage mechanicsGeneral Materials Science0210 nano-technologyAssociative propertyEuropean Journal of Mechanics - A/Solids
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A thermodynamically consistent cohesive-frictional interface model for mixed mode delamination

2016

Abstract A new interface constitutive model based on damage mechanics and frictional plasticity is presented. The model is thermodynamically consistent, it is able to accurately reproduce arbitrary mixed mode debonding conditions and it is proved that the separation work is always bounded between the fracture energy in mode I and the fracture energy in mode II. Analytical results are given for proportional loading paths and for two non-proportional loading paths, confirming the correct behavior of the model for complex loading histories. Numerical and analytical solutions are compared for three classical delamination tests and frictional effects on 4ENF are also considered.

Work (thermodynamics)Materials scienceConstitutive equation02 engineering and technologyPlasticity01 natural sciencesThermodynamic0203 mechanical engineeringDamage mechanicsMechanics of MaterialGeneral Materials Science0101 mathematicsComposite materialSettore ING-IND/15 - Disegno E Metodi Dell'Ingegneria IndustrialeMechanical EngineeringCohesive-frictional interfaceDelaminationMode (statistics)Fracture mechanicsMechanicsStrength of materials010101 applied mathematics020303 mechanical engineering & transportsMechanics of MaterialsMixed-mode delaminationMaterials Science (all)Settore ICAR/08 - Scienza Delle CostruzioniEngineering Fracture Mechanics
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Modelling of microcracked bodies using the concept of crack opening mode

2010

[ SPI.MAT ] Engineering Sciences [physics]/Materialsunilateral effect of damagedamage mechanics[SPI.MAT] Engineering Sciences [physics]/Materialsmicrocracks[SPI.MAT]Engineering Sciences [physics]/Materialscrack opening mode
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