Search results for "Stress corrosion cracking"

showing 6 items of 6 documents

Localized hydrogen cracking in the austenitic phase of a duplex stainless steel

1996

The aim of this study is to investigate the role of hydrogen on the mechanical behavior of an austenitic phase, in the particular situation of duplex stainless steels. In these duplex alloys, in presence of hydrogen, the ferritic phase is embrittled by hydrogen and the resistance to cracking is mainly related to the behavior of the austenitic phase. Thus, a discussion of the role of hydrogen at the crack tip of a duplex alloy (as function of the microstructure) has been proposed by T. Perng and C.J. Altester after experiments conducted in gaseous environment. A similar experimental approach has been followed in this study; slow strain rate tests (SSRT) have been performed on duplex stainles…

AusteniteMaterials scienceHydrogenMechanical EngineeringAlloyMetallurgyMetals and Alloyschemistry.chemical_elementengineering.materialCondensed Matter PhysicsMicrostructureCorrosionchemistryMechanics of MaterialsengineeringGeneral Materials ScienceStress corrosion crackingEmbrittlementHydrogen embrittlementScripta Materialia
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KNOWN RESIDUAL STRESS SPECIMENS USING OPPOSED INDENTATION

2009

In order to test new theories for residual stress measurement or to test the effects of residual stress on fatigue, fracture, and stress corrosion cracking, a known stress test specimen was designed and then fabricated, modeled, and experimentally validated. To provide a unique biaxial stress state, a 60 mm diameter 10 mm thick disk of 316L stainless steel was plastically compressed through the thickness with an opposing 15 mm diameter hard steel indenters in the center of the disk. For validation, the stresses in the specimen were first mapped using time-of-flight neutron diffraction and Rietveld full pattern analysis. Next, the hoop stresses were mapped on a cross section of two disks usi…

Engineering drawingMaterials scienceRESIDUAL STRESS CONTOUR METHODMechanical EngineeringBauschinger effectBiaxial tensile testCondensed Matter PhysicsSettore ING-IND/14 - Progettazione Meccanica E Costruzione Di MacchineMechanics of MaterialsResidual stressIndentationHardening (metallurgy)Cylinder stressGeneral Materials ScienceStress corrosion crackingComposite materialElastic modulus
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Mechanism of brittle fracture in a ductile 316 alloy during stress corrosion

1990

Abstract The ductile f.c.c. 316 alloy is shown to exhibit brittle transgranular (and intergranular) stress corrosion cracking in a 153°C MgCl2 solution at free corrosion potential. Tests on smooth and pre-cracked specimens are performed to identify the mechanisms of fracture. Transgranular cracking is related to both a discontinuous microcleavage mainly on {100} planes and a microshearing on {111} planes. A new physical modelization is proposed to explain the brittle transgranular cracking. It is based on the influence of the localized anodic dissolution on the enhancement of the plasticity at the crack tip. The formation of dislocation pile-ups and the conditions of restricted slip induce …

Fracture toughnessBrittlenessMaterials scienceMetallurgyGeneral EngineeringFracture mechanicsIntergranular corrosionStress corrosion crackingPlasticityEnvironmental stress fractureCorrosionActa Metallurgica et Materialia
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A Grain-Scale Model of Inter-Granular Stress Corrosion Cracking in Polycrystals

2017

In this contribution, we propose a cohesive grain-boundary model for hydrogen-assisted inter-granular stress corrosion cracking at the grain-scale in 3D polycrystalline aggregates. The inter-granular strength is degraded by the presence of hydrogen and this is accounted for by employing traction-separation laws directly depending on hydrogen concentration, whose diffusion is represented at this stage through simplified phenomenological relationships. The main feature of the model is that all the relevant mechanical fields are represented in terms of grain-boundary variables only, which couples particularly well with the employment of traction-separation laws.

Materials scienceMechanical EngineeringMetallurgyMicromechanicsStress corrosion cracking02 engineering and technology01 natural sciencesStrength of materials010101 applied mathematics020303 mechanical engineering & transportsPolycrystalline material0203 mechanical engineeringMechanics of MaterialsBoundary element methodMechanics of MaterialGeneral Materials ScienceMaterials Science (all)0101 mathematicsStress corrosion crackingComposite materialCohesive zone modelingMicromechanicScale modelBoundary element methodEnvironmental stress fractureKey Engineering Materials
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Grain-boundary modelling of hydrogen assisted intergranular stress corrosion cracking

2018

Abstract A novel hybrid strategy for modelling intergranular hydrogen embrittlement in polycrystalline microstructures is proposed. The technique is based on a grain-boundary integral representation of the polycrystalline micro-mechanics, numerically solved by the boundary element method, coupled with an explicit finite element model of the intergranular hydrogen diffusion. The intergranular interaction between contiguous grains in the aggregate is modelled through extrinsic cohesive-frictional traction-separation laws, whose parameters depend on the concentration of intergranular hydrogen, which diffuses over the interface according to the Fick’s second law, inducing the weakening of the i…

Materials scienceMetallurgyMicromechanicsMicro-mechanicStress corrosion cracking02 engineering and technologyMechanicsIntergranular corrosion021001 nanoscience & nanotechnologyFinite element method020303 mechanical engineering & transportsPolycrystalline material0203 mechanical engineeringDiffusion processMechanics of MaterialsBoundary element methodGeneral Materials ScienceGrain boundaryDiffusion (business)0210 nano-technologyHydrogen embrittlementInstrumentationBoundary element methodHydrogen embrittlementMechanics of Materials
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Electrochemistry for Mechanically-assisted Corrosion

2019

Abstract: This chapter will not discuss the basics of electrochemistry; these aspects have been largely developed in the previous corrosion thematic school on stress corrosion cracking (SCC).

Materials science[CHIM] Chemical SciencesMetallurgyStress corrosion crackingElectrochemistryCorrosion
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