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    Explosively Driven Fragmentation Experiments for Continuum Damage Modeling

    Source: Journal of Pressure Vessel Technology:;2012:;volume( 134 ):;issue: 003::page 31209
    Author:
    David E. Lambert
    ,
    John Osborn
    ,
    Michael V. Hopson
    DOI: 10.1115/1.4006119
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: The explosively loaded right-circular tube geometry is used as the basis for dynamic fracture and fragmentation modeling. Details of the cylinder configuration are investigated to prescribe controlled loading conditions of uniaxial stress and plane strain. Earlier works by Goto et al. [2008, “Investigation of the Fracture and Fragmentation of Explosively Driven Rings and Cylinders,” Int. J. Impact Eng. 35 (12), pp. 1547–1556] had used thin-walled tubes to provide plane strain loading and shorter “rings” to establish uniaxial stress conditions. This paper extends on that work to look at alternative cylinder dimensions and metals of interest. A tungsten alloy, Aero-224, and a high strength steel, Eglin Steel (ES-1), are the subject metals. Transient continuum-mechanics simulations evaluated whether the stress triaxiality conditions were being met as design parameters of cylinder material, cylinder wall-thickness, cylinder length, and initiation configuration were varied. Design analysis shows that the thin cylinders of ES-1 steel do establish the desired plane strain conditions as it expands to failure. Ultra-high speed photography experiments verify the time of fracture and correlate casewall expansion and velocity measurements. Synchronization of the code and diagnostics measurements is presented as a valuable analysis method. On the other hand, rings (i.e., uniaxial stress) of the Aero-224 tungsten alloy were failing just short of uniaxial stress approximating conditions. Analysis of the Aero-224 rings indicated it must be capable of achieving at least a 25% strain to failure in order to have the triaxiality condition satisfied. Strain to failure measurements directly from recovered fragments were less than 14%. Nevertheless, a Weibull distribution was fit to the empirical data set and used to drive a statistically compensated fracture model. Results and discussion of the failure strain distribution and the ability for continuum codes to adequately conduct such simulations are presented.
    keyword(s): Stress , Fracture (Process) , Modeling , Cylinders , Failure , Plane strain , Wall thickness , Steel , Explosions , Engineering simulation , Design AND Dimensions ,
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      Explosively Driven Fragmentation Experiments for Continuum Damage Modeling

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    contributor authorDavid E. Lambert
    contributor authorJohn Osborn
    contributor authorMichael V. Hopson
    date accessioned2017-05-09T00:54:03Z
    date available2017-05-09T00:54:03Z
    date copyrightJune, 2012
    date issued2012
    identifier issn0094-9930
    identifier otherJPVTAS-28567#031209_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/150118
    description abstractThe explosively loaded right-circular tube geometry is used as the basis for dynamic fracture and fragmentation modeling. Details of the cylinder configuration are investigated to prescribe controlled loading conditions of uniaxial stress and plane strain. Earlier works by Goto et al. [2008, “Investigation of the Fracture and Fragmentation of Explosively Driven Rings and Cylinders,” Int. J. Impact Eng. 35 (12), pp. 1547–1556] had used thin-walled tubes to provide plane strain loading and shorter “rings” to establish uniaxial stress conditions. This paper extends on that work to look at alternative cylinder dimensions and metals of interest. A tungsten alloy, Aero-224, and a high strength steel, Eglin Steel (ES-1), are the subject metals. Transient continuum-mechanics simulations evaluated whether the stress triaxiality conditions were being met as design parameters of cylinder material, cylinder wall-thickness, cylinder length, and initiation configuration were varied. Design analysis shows that the thin cylinders of ES-1 steel do establish the desired plane strain conditions as it expands to failure. Ultra-high speed photography experiments verify the time of fracture and correlate casewall expansion and velocity measurements. Synchronization of the code and diagnostics measurements is presented as a valuable analysis method. On the other hand, rings (i.e., uniaxial stress) of the Aero-224 tungsten alloy were failing just short of uniaxial stress approximating conditions. Analysis of the Aero-224 rings indicated it must be capable of achieving at least a 25% strain to failure in order to have the triaxiality condition satisfied. Strain to failure measurements directly from recovered fragments were less than 14%. Nevertheless, a Weibull distribution was fit to the empirical data set and used to drive a statistically compensated fracture model. Results and discussion of the failure strain distribution and the ability for continuum codes to adequately conduct such simulations are presented.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleExplosively Driven Fragmentation Experiments for Continuum Damage Modeling
    typeJournal Paper
    journal volume134
    journal issue3
    journal titleJournal of Pressure Vessel Technology
    identifier doi10.1115/1.4006119
    journal fristpage31209
    identifier eissn1528-8978
    keywordsStress
    keywordsFracture (Process)
    keywordsModeling
    keywordsCylinders
    keywordsFailure
    keywordsPlane strain
    keywordsWall thickness
    keywordsSteel
    keywordsExplosions
    keywordsEngineering simulation
    keywordsDesign AND Dimensions
    treeJournal of Pressure Vessel Technology:;2012:;volume( 134 ):;issue: 003
    contenttypeFulltext
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