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    Extension of Oxley’s Analysis of Machining to Use Different Material Models

    Source: Journal of Manufacturing Science and Engineering:;2003:;volume( 125 ):;issue: 004::page 656
    Author:
    Amir H. Adibi-Sedeh
    ,
    Vis Madhavan
    ,
    Behnam Bahr
    DOI: 10.1115/1.1617287
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: The aim of the present work is to extend the applicability of Oxley’s analysis of machining to a broader class of materials beyond the carbon steels used by Oxley and co-workers. The Johnson-Cook material model, history dependent power law material model and the Mechanical Threshold Stress (MTS) model are used to represent the mechanical properties of the material being machined as a function of strain, strain rate and temperature. A few changes are introduced into Oxley’s analysis to improve the consistency between the various assumptions. A new approach has been introduced to calculate the pressure variation along the alpha slip lines in the primary shear zone including the effects of both the strain gradient and the thermal gradient along the beta lines. This approach also has the added advantage of ensuring force equilibrium of the primary shear zone in a macroscopic sense. The temperature at the middle of the primary shear zone is calculated by integrating the plastic work thereby eliminating the unknown constant η. Rather than calculating the shear force from the material properties corresponding to the strain, strain rate and temperature of the material at the middle of the shear zone, the shear force is calculated in a consistent manner using the energy dissipated in the primary shear zone. The thickness of the primary and secondary shear zones, the heat partition at the primary shear zone, the temperature distribution along the tool-chip interface and the shear plane angle are all calculated using Oxley’s original approach. The only constant used to fine tune the model is the ratio of the average temperature to the maximum temperature at the tool-chip interface (ψ). The performance of the model has been studied by comparing its predictions with experimental data for 1020 and 1045 steels, for aluminum alloys 2024-T3, 6061-T6 and 6082-T6, and for copper. It is found that the model accurately reproduces the dependence of the cutting forces and chip thickness as a function of undeformed chip thickness and cutting speed and accurately estimates the temperature in the primary and secondary shear zones.
    keyword(s): Force , Temperature , Machining , Stress , Shear (Mechanics) , Cutting , Thickness AND Steel ,
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      Extension of Oxley’s Analysis of Machining to Use Different Material Models

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    https://yetl.yabesh.ir/yetl1/handle/yetl/128657
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    contributor authorAmir H. Adibi-Sedeh
    contributor authorVis Madhavan
    contributor authorBehnam Bahr
    date accessioned2017-05-09T00:10:40Z
    date available2017-05-09T00:10:40Z
    date copyrightNovember, 2003
    date issued2003
    identifier issn1087-1357
    identifier otherJMSEFK-27779#656_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/128657
    description abstractThe aim of the present work is to extend the applicability of Oxley’s analysis of machining to a broader class of materials beyond the carbon steels used by Oxley and co-workers. The Johnson-Cook material model, history dependent power law material model and the Mechanical Threshold Stress (MTS) model are used to represent the mechanical properties of the material being machined as a function of strain, strain rate and temperature. A few changes are introduced into Oxley’s analysis to improve the consistency between the various assumptions. A new approach has been introduced to calculate the pressure variation along the alpha slip lines in the primary shear zone including the effects of both the strain gradient and the thermal gradient along the beta lines. This approach also has the added advantage of ensuring force equilibrium of the primary shear zone in a macroscopic sense. The temperature at the middle of the primary shear zone is calculated by integrating the plastic work thereby eliminating the unknown constant η. Rather than calculating the shear force from the material properties corresponding to the strain, strain rate and temperature of the material at the middle of the shear zone, the shear force is calculated in a consistent manner using the energy dissipated in the primary shear zone. The thickness of the primary and secondary shear zones, the heat partition at the primary shear zone, the temperature distribution along the tool-chip interface and the shear plane angle are all calculated using Oxley’s original approach. The only constant used to fine tune the model is the ratio of the average temperature to the maximum temperature at the tool-chip interface (ψ). The performance of the model has been studied by comparing its predictions with experimental data for 1020 and 1045 steels, for aluminum alloys 2024-T3, 6061-T6 and 6082-T6, and for copper. It is found that the model accurately reproduces the dependence of the cutting forces and chip thickness as a function of undeformed chip thickness and cutting speed and accurately estimates the temperature in the primary and secondary shear zones.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleExtension of Oxley’s Analysis of Machining to Use Different Material Models
    typeJournal Paper
    journal volume125
    journal issue4
    journal titleJournal of Manufacturing Science and Engineering
    identifier doi10.1115/1.1617287
    journal fristpage656
    journal lastpage666
    identifier eissn1528-8935
    keywordsForce
    keywordsTemperature
    keywordsMachining
    keywordsStress
    keywordsShear (Mechanics)
    keywordsCutting
    keywordsThickness AND Steel
    treeJournal of Manufacturing Science and Engineering:;2003:;volume( 125 ):;issue: 004
    contenttypeFulltext
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