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    Dynamic Processes in Structural Thermo-Viscoplasticity

    Source: Applied Mechanics Reviews:;1995:;volume( 048 ):;issue: 006::page 301
    Author:
    Hans Irschik
    ,
    Franz Ziegler
    DOI: 10.1115/1.3005104
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: A multiple field theory dates back to developments in linear thermo-elasticity where the thermal strain is considered to be imposed on the linear elastic background structure in an isothermal state. Load strain and thermal strain fields are coupled by the boundary conditions or exhibit volume coupling. Taking into account a proper auxiliary problem, eg, the structure loaded by a unit force under isothermal conditions, results in Maysel’s formula and thus represents the solution in an optimal manner. That approach was generalized to dynamic problems and its efficiency was enhanced by splitting the solution in the quasi-static part and in the dynamic part thus considering the inertia of mass in the latter portion. This paper reviews recent extensions of such a multiple field theory to nonlinear problems of structural thermo-viscoplasticity. Their basis is given in formulations of micromechanics. In an incremental setting, the inelastic strains enter the background material as a second imposed strain field. Considering the rate form of the generalized Hooke’s law such a three-field representation is identified by inspection. Geometric nonlinearity is not fully taken into account, only approximations based on a second order theory, and, for beams and plates with immovable boundaries, in Berger’s approximation, render a third “strain field” to be imposed on the linearized background structure. A novel derivation of the dynamic generalization of Maysel’s formula is given in the paper. An elastic-viscoplastic semi-infinite impacted rod serves as the illustrative example of the fully dynamic analysis in the multiple field approach. Ductile damage is taken into account and the dissipated energy is deposited under adiabatic conditions. Material parameters are considered temperature dependent. An extension to a finite element discretization of the background structure seems to be possible, when preserving the solely linear elastic solution technique. Quite naturally, the domain integral boundary element method of solution results from such a multiple field approach.
    keyword(s): Viscoplasticity , Field theories (Physics) , Approximation , Formulas , Thermoelasticity , Boundary-value problems , Inertia (Mechanics) , Force , Temperature , Inspection , Stress , Micromechanics (Engineering) , Hooke's law , Boundary element methods , Dynamic analysis , Finite element analysis AND Plates (structures) ,
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      Dynamic Processes in Structural Thermo-Viscoplasticity

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    contributor authorHans Irschik
    contributor authorFranz Ziegler
    date accessioned2017-05-08T23:46:11Z
    date available2017-05-08T23:46:11Z
    date copyrightJune, 1995
    date issued1995
    identifier issn0003-6900
    identifier otherAMREAD-25691#301_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/114733
    description abstractA multiple field theory dates back to developments in linear thermo-elasticity where the thermal strain is considered to be imposed on the linear elastic background structure in an isothermal state. Load strain and thermal strain fields are coupled by the boundary conditions or exhibit volume coupling. Taking into account a proper auxiliary problem, eg, the structure loaded by a unit force under isothermal conditions, results in Maysel’s formula and thus represents the solution in an optimal manner. That approach was generalized to dynamic problems and its efficiency was enhanced by splitting the solution in the quasi-static part and in the dynamic part thus considering the inertia of mass in the latter portion. This paper reviews recent extensions of such a multiple field theory to nonlinear problems of structural thermo-viscoplasticity. Their basis is given in formulations of micromechanics. In an incremental setting, the inelastic strains enter the background material as a second imposed strain field. Considering the rate form of the generalized Hooke’s law such a three-field representation is identified by inspection. Geometric nonlinearity is not fully taken into account, only approximations based on a second order theory, and, for beams and plates with immovable boundaries, in Berger’s approximation, render a third “strain field” to be imposed on the linearized background structure. A novel derivation of the dynamic generalization of Maysel’s formula is given in the paper. An elastic-viscoplastic semi-infinite impacted rod serves as the illustrative example of the fully dynamic analysis in the multiple field approach. Ductile damage is taken into account and the dissipated energy is deposited under adiabatic conditions. Material parameters are considered temperature dependent. An extension to a finite element discretization of the background structure seems to be possible, when preserving the solely linear elastic solution technique. Quite naturally, the domain integral boundary element method of solution results from such a multiple field approach.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleDynamic Processes in Structural Thermo-Viscoplasticity
    typeJournal Paper
    journal volume48
    journal issue6
    journal titleApplied Mechanics Reviews
    identifier doi10.1115/1.3005104
    journal fristpage301
    journal lastpage316
    identifier eissn0003-6900
    keywordsViscoplasticity
    keywordsField theories (Physics)
    keywordsApproximation
    keywordsFormulas
    keywordsThermoelasticity
    keywordsBoundary-value problems
    keywordsInertia (Mechanics)
    keywordsForce
    keywordsTemperature
    keywordsInspection
    keywordsStress
    keywordsMicromechanics (Engineering)
    keywordsHooke's law
    keywordsBoundary element methods
    keywordsDynamic analysis
    keywordsFinite element analysis AND Plates (structures)
    treeApplied Mechanics Reviews:;1995:;volume( 048 ):;issue: 006
    contenttypeFulltext
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