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    An Explicit Coupling Model for Accurate Prediction of Force-Induced Deflection in Thin-Walled Workpiece Milling

    Source: Journal of Manufacturing Science and Engineering:;2022:;volume( 144 ):;issue: 008::page 81005-1
    Author:
    Shi, Da-Ming
    ,
    Huang, Tao
    ,
    Zhang, Xiao-Ming
    ,
    Ding, Han
    DOI: 10.1115/1.4053682
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Cutting force-induced vibrations in thin-walled parts milling may cause violation of dimensional tolerance while accurate modeling of the milling error distribution is still a challenging work because of the coupling effect between the dynamic cutting forces and the resulting steady-state vibrations. It greatly increases the computational complexity to capture the true cutter–workpiece engagement with classic time domain or iteration method. This paper proposes a novel explicit model to predict the error distribution considering this coupling relationship without iterative calculation. A new cutting force model with variable coefficients with respect to the deflections is developed to describe the dynamic cutting forces. The effectiveness of the force model is verified by a group of calibration experiments. The analytical solution of the dynamic model is discussed and a semi-analytical method is constructed to predict the error distribution directly. Machined surface as well as the deformation errors are derived and thin-walled workpiece milling experiments for verification are conducted. Comparisons between simulations and experiments show that the proposed method is accurate and efficient.
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      An Explicit Coupling Model for Accurate Prediction of Force-Induced Deflection in Thin-Walled Workpiece Milling

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4283855
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    • Journal of Manufacturing Science and Engineering

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    contributor authorShi, Da-Ming
    contributor authorHuang, Tao
    contributor authorZhang, Xiao-Ming
    contributor authorDing, Han
    date accessioned2022-05-08T08:22:50Z
    date available2022-05-08T08:22:50Z
    date copyright2/16/2022 12:00:00 AM
    date issued2022
    identifier issn1087-1357
    identifier othermanu_144_8_081005.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4283855
    description abstractCutting force-induced vibrations in thin-walled parts milling may cause violation of dimensional tolerance while accurate modeling of the milling error distribution is still a challenging work because of the coupling effect between the dynamic cutting forces and the resulting steady-state vibrations. It greatly increases the computational complexity to capture the true cutter–workpiece engagement with classic time domain or iteration method. This paper proposes a novel explicit model to predict the error distribution considering this coupling relationship without iterative calculation. A new cutting force model with variable coefficients with respect to the deflections is developed to describe the dynamic cutting forces. The effectiveness of the force model is verified by a group of calibration experiments. The analytical solution of the dynamic model is discussed and a semi-analytical method is constructed to predict the error distribution directly. Machined surface as well as the deformation errors are derived and thin-walled workpiece milling experiments for verification are conducted. Comparisons between simulations and experiments show that the proposed method is accurate and efficient.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleAn Explicit Coupling Model for Accurate Prediction of Force-Induced Deflection in Thin-Walled Workpiece Milling
    typeJournal Paper
    journal volume144
    journal issue8
    journal titleJournal of Manufacturing Science and Engineering
    identifier doi10.1115/1.4053682
    journal fristpage81005-1
    journal lastpage81005-13
    page13
    treeJournal of Manufacturing Science and Engineering:;2022:;volume( 144 ):;issue: 008
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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