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    Validating Fatigue Safety Factor Calculation Methods for Cardiovascular Stents

    Source: Journal of Biomechanical Engineering:;2018:;volume( 140 ):;issue: 006::page 61001
    Author:
    Marrey, Ramesh
    ,
    Baillargeon, Brian
    ,
    Dreher, Maureen L.
    ,
    Weaver, Jason D.
    ,
    Nagaraja, Srinidhi
    ,
    Rebelo, Nuno
    ,
    Gong, Xiao-Yan
    DOI: 10.1115/1.4039173
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Evaluating risk of fatigue fractures in cardiovascular implants via nonclinical testing is essential to provide an indication of their durability. This is generally accomplished by experimental accelerated durability testing and often complemented with computational simulations to calculate fatigue safety factors (FSFs). While many methods exist to calculate FSFs, none have been validated against experimental data. The current study presents three methods for calculating FSFs and compares them to experimental fracture outcomes under axial fatigue loading, using cobalt-chromium test specimens designed to represent cardiovascular stents. FSFs were generated by calculating mean and alternating stresses using a simple scalar method, a tensor method which determines principal values based on averages and differences of the stress tensors, and a modified tensor method which accounts for stress rotations. The results indicate that the tensor method and the modified tensor method consistently predicted fracture or survival to 107 cycles for specimens subjected to experimental axial fatigue. In contrast, for one axial deformation condition, the scalar method incorrectly predicted survival even though fractures were observed in experiments. These results demonstrate limitations of the scalar method and potential inaccuracies. A separate computational analysis of torsional fatigue was also completed to illustrate differences between the tensor method and the modified tensor method. Because of its ability to account for changes in principal directions across the fatigue cycle, the modified tensor method offers a general computational method that can be applied for improved predictions for fatigue safety regardless of loading conditions.
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      Validating Fatigue Safety Factor Calculation Methods for Cardiovascular Stents

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    contributor authorMarrey, Ramesh
    contributor authorBaillargeon, Brian
    contributor authorDreher, Maureen L.
    contributor authorWeaver, Jason D.
    contributor authorNagaraja, Srinidhi
    contributor authorRebelo, Nuno
    contributor authorGong, Xiao-Yan
    date accessioned2019-02-28T11:11:06Z
    date available2019-02-28T11:11:06Z
    date copyright3/16/2018 12:00:00 AM
    date issued2018
    identifier issn0148-0731
    identifier otherbio_140_06_061001.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4253571
    description abstractEvaluating risk of fatigue fractures in cardiovascular implants via nonclinical testing is essential to provide an indication of their durability. This is generally accomplished by experimental accelerated durability testing and often complemented with computational simulations to calculate fatigue safety factors (FSFs). While many methods exist to calculate FSFs, none have been validated against experimental data. The current study presents three methods for calculating FSFs and compares them to experimental fracture outcomes under axial fatigue loading, using cobalt-chromium test specimens designed to represent cardiovascular stents. FSFs were generated by calculating mean and alternating stresses using a simple scalar method, a tensor method which determines principal values based on averages and differences of the stress tensors, and a modified tensor method which accounts for stress rotations. The results indicate that the tensor method and the modified tensor method consistently predicted fracture or survival to 107 cycles for specimens subjected to experimental axial fatigue. In contrast, for one axial deformation condition, the scalar method incorrectly predicted survival even though fractures were observed in experiments. These results demonstrate limitations of the scalar method and potential inaccuracies. A separate computational analysis of torsional fatigue was also completed to illustrate differences between the tensor method and the modified tensor method. Because of its ability to account for changes in principal directions across the fatigue cycle, the modified tensor method offers a general computational method that can be applied for improved predictions for fatigue safety regardless of loading conditions.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleValidating Fatigue Safety Factor Calculation Methods for Cardiovascular Stents
    typeJournal Paper
    journal volume140
    journal issue6
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.4039173
    journal fristpage61001
    journal lastpage061001-9
    treeJournal of Biomechanical Engineering:;2018:;volume( 140 ):;issue: 006
    contenttypeFulltext
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