Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/7037
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dc.contributor.authorSharma, Akashen_US
dc.date.accessioned2022-03-17T01:00:00Z-
dc.date.accessioned2022-03-21T10:52:11Z-
dc.date.available2022-03-17T01:00:00Z-
dc.date.available2022-03-21T10:52:11Z-
dc.date.issued2020-
dc.identifier.citationSharma, A., & Daggumati, S. (2020). Computational micromechanical modeling of transverse tensile damage behavior in unidirectional glass fiber-reinforced plastic composite plies: Ductile versus brittle fracture mechanics approach. International Journal of Damage Mechanics, 29(6), 943-964. doi:10.1177/1056789519894379en_US
dc.identifier.issn1056-7895-
dc.identifier.otherEID(2-s2.0-85077437634)-
dc.identifier.urihttps://doi.org/10.1177/1056789519894379-
dc.identifier.urihttps://dspace.iiti.ac.in/handle/123456789/7037-
dc.description.abstractA detailed micromechanical finite element analysis methodology is presented to predict the transverse tensile (fiber perpendicular) failure behavior of a unidirectional (UD) glass fiber-reinforced plastic composite ply. In order to understand the constituent-level stress–strain and damage behavior, finite element analysis is accomplished using representative volume element (RVE) that consists of random fiber distribution as observed in the microscopic image of an actual composite ply. For modeling the fiber/matrix interface failure behavior, cohesive zone module (cohesive surface/cohesive element) of Abaqus® is used. In order to capture the epoxy matrix stiffness and strength degradation, the following two different approaches are used: (i) initially, the linear Drucker–Prager plasticity model in combination with a ductile fracture criterion is used; (ii) later, a brittle failure approach such as the quadratic normal stress criterion within the framework of eXtended finite element method is used. From the detailed micromechanical analysis of the RVE, it is observed that the initial damage in the RVE occurs in the form of fiber/matrix interface decohesion. With increasing tensile load, interface crack propagates and creates a stress concentration region in the matrix material, adjacent to the crack tip. Further load application causes both interface crack tip and matrix stress concentration to move away from the load application direction. As soon as the interface crack tip reaches approximately 60° to 70° away from the load application direction, the conjunction of the matrix damage with the interface crack leads to the RVE final failure. The predicted average stress–strain curves from the above-mentioned two different epoxy matrix failure criterions (ductile and brittle) correlate very well with the experimental results, indicating that the brittle failure behavior of a UD fiber-reinforced plastic composite ply under transverse tensile load is mainly controlled by the fiber/matrix interface properties. © The Author(s) 2019.en_US
dc.language.isoenen_US
dc.publisherSAGE Publications Ltden_US
dc.sourceInternational Journal of Damage Mechanicsen_US
dc.subjectBrittle fractureen_US
dc.subjectCrack propagationen_US
dc.subjectCrack tipsen_US
dc.subjectDuctile fractureen_US
dc.subjectFiber reinforced plasticsen_US
dc.subjectGlass fibersen_US
dc.subjectMicromechanicsen_US
dc.subjectPlasticityen_US
dc.subjectPolymer matrix compositesen_US
dc.subjectReinforcementen_US
dc.subjectStiffness matrixen_US
dc.subjectStress concentrationen_US
dc.subjectTensile stressen_US
dc.subjectDuctile damageen_US
dc.subjectExtended finite element methoden_US
dc.subjectFiber-reinforced plastic compositesen_US
dc.subjectFiber/matrix interfaceen_US
dc.subjectFracture mechanics approachen_US
dc.subjectMicromechanical finite element analysisen_US
dc.subjectPlasticity modelen_US
dc.subjectRepresentative volume element (RVE)en_US
dc.subjectFinite element methoden_US
dc.titleComputational micromechanical modeling of transverse tensile damage behavior in unidirectional glass fiber-reinforced plastic composite plies: Ductile versus brittle fracture mechanics approachen_US
dc.typeJournal Articleen_US
Appears in Collections:Department of Mechanical Engineering

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