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    A Fracture Mechanics Approach to the Prediction of Tool Wear in Dry High-Speed Machining of Aluminum Cast Alloys—Part 1: Model Development

    Source: Journal of Tribology:;2007:;volume( 129 ):;issue: 001::page 23
    Author:
    Alexander Bardetsky
    ,
    Helmi Attia
    ,
    Mohamed Elbestawi
    DOI: 10.1115/1.2390718
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: The utilization of cast aluminum alloys in automotive industry continues to rise because of consumer demand for a future generation of vehicles that will offer excellent fuel efficiency and emissions reduction, without compromising safety, performance, or comfort. Unlike wrought aluminum alloys, the cutting speed for cast aluminum alloys is considerably restricted due to the detrimental effect of the alloy’s silicon constituencies on tool life. In the present study, a new wear model is developed for tool-life management and enhancement, in a high-speed machining environment. The fracture-mechanics-based model requires normal and tangential stresses, acting on the flank of the cutting tool, as input data. Analysis of the subsurface crack propagation in the cobalt binder of cemented carbide cutting tool material is performed using a finite element (FE) model of the tool-workpiece sliding contact. The real microstructure of cemented carbide is incorporated into the FE model, and elastic-plastic properties of cobalt, defined by continuum theory of crystal plasticity are introduced. The estimation of the crack propagation rate is then used to predict the wear rate of the cutting tool. The model allows the microstructural characteristics of the cutting tool and workpiece material, as well as the tool’s loading conditions to be taken into consideration. Analysis of the results indicates that the interaction between the alloy’s hard silicon particles and the surface of the cutting tool is most detrimental to tool life. The fatigue wear of the cutting tool is shown to be directly proportional to the silicon content of the alloy, silicon grain size, and to the tool’s loading conditions.
    keyword(s): Cobalt , Machining , Alloys , Particulate matter , Cutting tools , Fracture (Materials) , Crack propagation , Wear , Silicon , Binders (Materials) , Stress , Aluminum , Cutting , Finite element model AND Fracture mechanics ,
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      A Fracture Mechanics Approach to the Prediction of Tool Wear in Dry High-Speed Machining of Aluminum Cast Alloys—Part 1: Model Development

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    http://yetl.yabesh.ir/yetl1/handle/yetl/136955
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    • Journal of Tribology

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    contributor authorAlexander Bardetsky
    contributor authorHelmi Attia
    contributor authorMohamed Elbestawi
    date accessioned2017-05-09T00:26:00Z
    date available2017-05-09T00:26:00Z
    date copyrightJanuary, 2007
    date issued2007
    identifier issn0742-4787
    identifier otherJOTRE9-28746#23_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/136955
    description abstractThe utilization of cast aluminum alloys in automotive industry continues to rise because of consumer demand for a future generation of vehicles that will offer excellent fuel efficiency and emissions reduction, without compromising safety, performance, or comfort. Unlike wrought aluminum alloys, the cutting speed for cast aluminum alloys is considerably restricted due to the detrimental effect of the alloy’s silicon constituencies on tool life. In the present study, a new wear model is developed for tool-life management and enhancement, in a high-speed machining environment. The fracture-mechanics-based model requires normal and tangential stresses, acting on the flank of the cutting tool, as input data. Analysis of the subsurface crack propagation in the cobalt binder of cemented carbide cutting tool material is performed using a finite element (FE) model of the tool-workpiece sliding contact. The real microstructure of cemented carbide is incorporated into the FE model, and elastic-plastic properties of cobalt, defined by continuum theory of crystal plasticity are introduced. The estimation of the crack propagation rate is then used to predict the wear rate of the cutting tool. The model allows the microstructural characteristics of the cutting tool and workpiece material, as well as the tool’s loading conditions to be taken into consideration. Analysis of the results indicates that the interaction between the alloy’s hard silicon particles and the surface of the cutting tool is most detrimental to tool life. The fatigue wear of the cutting tool is shown to be directly proportional to the silicon content of the alloy, silicon grain size, and to the tool’s loading conditions.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleA Fracture Mechanics Approach to the Prediction of Tool Wear in Dry High-Speed Machining of Aluminum Cast Alloys—Part 1: Model Development
    typeJournal Paper
    journal volume129
    journal issue1
    journal titleJournal of Tribology
    identifier doi10.1115/1.2390718
    journal fristpage23
    journal lastpage30
    identifier eissn1528-8897
    keywordsCobalt
    keywordsMachining
    keywordsAlloys
    keywordsParticulate matter
    keywordsCutting tools
    keywordsFracture (Materials)
    keywordsCrack propagation
    keywordsWear
    keywordsSilicon
    keywordsBinders (Materials)
    keywordsStress
    keywordsAluminum
    keywordsCutting
    keywordsFinite element model AND Fracture mechanics
    treeJournal of Tribology:;2007:;volume( 129 ):;issue: 001
    contenttypeFulltext
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