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    Evaluation of Cutting Forces During Single Pass Microtrenching of Poly (Methyl Methacrylate)

    Source: Journal of Micro and Nano-Manufacturing:;2014:;volume( 002 ):;issue: 004::page 41003
    Author:
    James, Thomas P.
    ,
    Eckman, Nathaniel B.
    ,
    Sagar, Amrit
    ,
    Saigal, Anil
    DOI: 10.1115/1.4028319
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Research was conducted to evaluate a microtrenching process to create microchannels on the surface of poly (methyl methacrylate) (PMMA) for applications in tissue engineering. Experiments with a trenching tool included an exaggerated cutting edge radius (48 خ¼m) to study the impact of a highly negative effective rake angle on forces during single pass microtrenching at subradius cutting conditions. During microtrenching, forces were measured by dynamometer and compared to a finite element (FE) model using an elasticperfectly plastic material model for an undeformed chip thickness from 9 to 64 خ¼m. During experiments, cutting was first observed when the ratio of undeformed chip thickness to cutting edge radius was 0.33. Measured and predicted values of thrust force exceeded cutting force up to an undeformed chip thickness equivalent to the cutting edge radius. The FE model predicted a linear trend in cutting force with feed (r = 0.99) and was substantiated by linear regression of experimental data (r = 0.99). However, at lower values of feed the model overestimated force, with a maximum difference of 42% at a feed of 22 خ¼m. Thrust force was also predicted to be linear (r = 0.99), but at greater feed the experiments indicated a nonlinear decline in thrust force, resulting in a maximum difference of 27% at 64 خ¼m. Finally, an analysis of nodal velocity plots from the FE model revealed a material stagnation zone developed along the cutting edge, rising from the workpiece surface in proportion to feed and then remaining fixed at 63 deg (stagnation angle) for all feeds greater than 35 خ¼m. While the application of an elasticperfectly plastic material model for PMMA was sufficient to predict microtrenching forces by the FE method, differences between predicted and measured thrust forces at greater undeformed chip thickness implies a more complex rheological model may add value.
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      Evaluation of Cutting Forces During Single Pass Microtrenching of Poly (Methyl Methacrylate)

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    http://yetl.yabesh.ir/yetl1/handle/yetl/156013
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    contributor authorJames, Thomas P.
    contributor authorEckman, Nathaniel B.
    contributor authorSagar, Amrit
    contributor authorSaigal, Anil
    date accessioned2017-05-09T01:11:32Z
    date available2017-05-09T01:11:32Z
    date issued2014
    identifier issn2166-0468
    identifier otherjmnm_002_04_041003.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/156013
    description abstractResearch was conducted to evaluate a microtrenching process to create microchannels on the surface of poly (methyl methacrylate) (PMMA) for applications in tissue engineering. Experiments with a trenching tool included an exaggerated cutting edge radius (48 خ¼m) to study the impact of a highly negative effective rake angle on forces during single pass microtrenching at subradius cutting conditions. During microtrenching, forces were measured by dynamometer and compared to a finite element (FE) model using an elasticperfectly plastic material model for an undeformed chip thickness from 9 to 64 خ¼m. During experiments, cutting was first observed when the ratio of undeformed chip thickness to cutting edge radius was 0.33. Measured and predicted values of thrust force exceeded cutting force up to an undeformed chip thickness equivalent to the cutting edge radius. The FE model predicted a linear trend in cutting force with feed (r = 0.99) and was substantiated by linear regression of experimental data (r = 0.99). However, at lower values of feed the model overestimated force, with a maximum difference of 42% at a feed of 22 خ¼m. Thrust force was also predicted to be linear (r = 0.99), but at greater feed the experiments indicated a nonlinear decline in thrust force, resulting in a maximum difference of 27% at 64 خ¼m. Finally, an analysis of nodal velocity plots from the FE model revealed a material stagnation zone developed along the cutting edge, rising from the workpiece surface in proportion to feed and then remaining fixed at 63 deg (stagnation angle) for all feeds greater than 35 خ¼m. While the application of an elasticperfectly plastic material model for PMMA was sufficient to predict microtrenching forces by the FE method, differences between predicted and measured thrust forces at greater undeformed chip thickness implies a more complex rheological model may add value.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleEvaluation of Cutting Forces During Single Pass Microtrenching of Poly (Methyl Methacrylate)
    typeJournal Paper
    journal volume2
    journal issue4
    journal titleJournal of Micro and Nano
    identifier doi10.1115/1.4028319
    journal fristpage41003
    journal lastpage41003
    identifier eissn1932-619X
    treeJournal of Micro and Nano-Manufacturing:;2014:;volume( 002 ):;issue: 004
    contenttypeFulltext
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