Deformation and failure mechanism in AISI 4340 steel under ballistic impact

Deformation and failure mechanism in quench-hardened AISI 4340 steel under ballistic impact is investigated. The influence of microstructure on damage evolution is also evaluated. Strain localization and shear failure along adiabatic shear bands are the dominant deformation and failure mechanisms. T...

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Published inTheoretical and applied fracture mechanics Vol. 45; no. 1; pp. 18 - 24
Main Authors Odeshi, A.G., Al-ameeri, S., Mirfakhraei, S., Yazdani, F., Bassim, M.N.
Format Journal Article
LanguageEnglish
Published Amsterdam Elsevier Ltd 01.02.2006
Elsevier
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Abstract Deformation and failure mechanism in quench-hardened AISI 4340 steel under ballistic impact is investigated. The influence of microstructure on damage evolution is also evaluated. Strain localization and shear failure along adiabatic shear bands are the dominant deformation and failure mechanisms. The time and critical strain for the commencement of strain localization is influenced by strain rate and microstructure. The microstructure of the steel sample also influenced the type of adiabatic shear bands formed during impact. Failure mechanism involves nucleation of micro-voids, which clusters to form bigger pores. Extremely fine micro-cracks are initiated adjacent to the pores and in shear flow direction along the shear bands. These micro-cracks become interconnected and grow to macro-cracks, which cause fracture of some of the investigated cylindrical steel samples under impact. The susceptibility of the adiabatic shear bands to cracking increases with decreasing tempering temperature of the steel.
AbstractList Deformation and failure mechanism in quench-hardened AISI 4340 steel under ballistic impact is investigated. The influence of microstructure on damage evolution is also evaluated. Strain localization and shear failure along adiabatic shear bands are the dominant deformation and failure mechanisms. The time and critical strain for the commencement of strain localization is influenced by strain rate and microstructure. The microstructure of the steel sample also influenced the type of adiabatic shear bands formed during impact. Failure mechanism involves nucleation of micro-voids, which clusters to form bigger pores. Extremely fine micro-cracks are initiated adjacent to the pores and in shear flow direction along the shear bands. These micro-cracks become interconnected and grow to macro-cracks, which cause fracture of some of the investigated cylindrical steel samples under impact. The susceptibility of the adiabatic shear bands to cracking increases with decreasing tempering temperature of the steel.
Author Yazdani, F.
Odeshi, A.G.
Al-ameeri, S.
Mirfakhraei, S.
Bassim, M.N.
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Issue 1
Keywords AISI 4340 steel
High strain-rate deformation
Adiabatic shear bands
Microstructure
Dynamic shear failure
Deformation band
Shear test
Heat treatment
Rupture
Mechanical properties
Metal
Steel
Cavitation
Dynamic test
Adiabatic approximation
Inelasticity
Elastoplasticity
High speed
Ballistics
Localization
Shear band
Impact test
Mechanical shock
Damaging
Language English
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Snippet Deformation and failure mechanism in quench-hardened AISI 4340 steel under ballistic impact is investigated. The influence of microstructure on damage...
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SubjectTerms Adiabatic shear bands
AISI 4340 steel
Dynamic shear failure
Exact sciences and technology
Fracture mechanics (crack, fatigue, damage...)
Fundamental areas of phenomenology (including applications)
High strain-rate deformation
Inelasticity (thermoplasticity, viscoplasticity...)
Microstructure
Physics
Solid mechanics
Structural and continuum mechanics
Title Deformation and failure mechanism in AISI 4340 steel under ballistic impact
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