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dc.contributor.editorTarantino, Angelo Marcello
dc.contributor.editorMajorana, Carmelo
dc.contributor.editorLuciano, Raimondo
dc.contributor.editorBacciocchi, Michele
dc.date.accessioned2022-01-11T13:33:32Z
dc.date.available2022-01-11T13:33:32Z
dc.date.issued2021
dc.identifierONIX_20220111_9783036509907_232
dc.identifier.urihttps://directory.doabooks.org/handle/20.500.12854/76496
dc.description.abstractIt is well known that many structural and physical problems cannot be solved by analytical approaches. These problems require the development of numerical methods to get approximate but accurate solutions. The minite element method (FEM) represents one of the most typical methodologies that can be used to achieve this aim, due to its simple implementation, easy adaptability, and very good accuracy. For these reasons, the FEM is a widespread technique which is employed in many engineering fields, such as civil, mechanical, and aerospace engineering. The large-scale deployment of powerful computers and the consequent recent improvement of the computational resources have provided the tools to develop numerical approaches that are able to solve more complex structural systems characterized by peculiar mechanical configurations. Laminated or multi-phase composites, structures made of innovative materials, and nanostructures are just some examples of applications that are commonly and accurately solved by the FEM. Analogously, the same numerical approaches can be employed to validate the results of experimental tests. The main aim of this Special Issue is to collect numerical investigations focused on the use of the finite element method
dc.languageEnglish
dc.subject.classificationthema EDItEUR::G Reference, Information and Interdisciplinary subjects::GP Research and information: generalen_US
dc.subject.classificationthema EDItEUR::T Technology, Engineering, Agriculture, Industrial processes::TB Technology: general issuesen_US
dc.subject.otherbeam element
dc.subject.otherQuasi-3D
dc.subject.otherstatic bending
dc.subject.otherfunctionally graded beam
dc.subject.otherMonte Carlo method
dc.subject.othercoalbed methane
dc.subject.otherstochastic fracture network
dc.subject.otherfracture geometric parameters
dc.subject.otherdual-porosity and dual-permeability media
dc.subject.otherfinite element method
dc.subject.otherthree-phase composite materials
dc.subject.otherFinite Element modeling
dc.subject.othersandwich plates
dc.subject.otherzig-zag theory
dc.subject.othercarbon nanotubes
dc.subject.otherfree vibrations
dc.subject.othersoda-lime glass
dc.subject.othercohesive zone model
dc.subject.otherrate-dependent
dc.subject.otherimpact loading
dc.subject.otherfinite element
dc.subject.otherFGM
dc.subject.otherplate
dc.subject.othermaterial-oriented shape functions
dc.subject.otherNURBS
dc.subject.otherFinite elements
dc.subject.otherfinite bending
dc.subject.other3D elasticity
dc.subject.otherEulerian slenderness
dc.subject.othercompactness index
dc.subject.otherSearle parameter
dc.subject.otherElastica
dc.subject.otherpultruded beams
dc.subject.othereffective stiffness matrix
dc.subject.otherFRP
dc.subject.otherhollow circular beams
dc.subject.otherrigid finite element method
dc.subject.othercomposite
dc.subject.othersteel-polymer concrete
dc.subject.othermachine tool
dc.subject.othermultibody system
dc.subject.otherorthotropic failure criteria
dc.subject.otherimplementation
dc.subject.otherplasticity
dc.subject.othermasonry
dc.subject.othergeometric nonlinearity
dc.subject.otherFEM
dc.subject.otherthermoelasticity
dc.subject.otherbowing
dc.subject.othertransient heat flux
dc.subject.otheracoustic black holes
dc.subject.otheracoustic-oriented design
dc.subject.otheradditive manufacturing
dc.subject.othervibroacoustics
dc.subject.othermaterial parameter identification
dc.subject.othermodel order reduction
dc.subject.otherreinforced concrete
dc.subject.otherfinite element analysis
dc.subject.othercrack band
dc.subject.otherstrain localization
dc.subject.otherpost-peak softening
dc.subject.otherviscoplastic regularization
dc.subject.otherconvergence
dc.subject.othermesh sensitivity
dc.subject.otherbond–slip
dc.subject.otherflexural behavior
dc.subject.othern/a
dc.titleAdvances in Structural Mechanics Modeled with FEM
dc.typebook
oapen.identifier.doi10.3390/books978-3-0365-0991-4
oapen.relation.isPublishedBy46cabcaa-dd94-4bfe-87b4-55023c1b36d0
oapen.relation.isbn9783036509907
oapen.relation.isbn9783036509914
oapen.pages266
oapen.place.publicationBasel, Switzerland


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