Literature DB >> 25226949

Finite element analysis of the femur during stance phase of gait based on musculoskeletal model simulation.

Jeong-Woo Seo1, Dong-Won Kang1, Ju-Young Kim1, Seung-Tae Yang1, Dae-Hyeok Kim1, Jin-Seung Choi2, Gye-Rae Tack2.   

Abstract

In this study, the accuracy of the inputs required for finite element analysis, which is mainly used for the biomechanical analysis of bones, was improved. To ensure a muscle force and joint contact force similar to the actual values, a musculoskeletal model that was based on the actual gait experiment was used. Gait data were obtained from a healthy male adult aged 29 who had no history of musculoskeletal disease and walked normally (171 cm height and 72 kg weight), and were used as inputs for the musculoskeletal model simulation to determine the muscle force and joint contact force. Among the phases of gait, which is the most common activity in daily life, the stance phase is the most affected by the load. The results data were extracted from five events in the stance phase: heel contact (ST1), loading response (ST2), early mid-stance (ST2), late mid-stance (ST4), and terminal stance (ST5). The results were used as the inputs for the finite element model that was formed using 1.5mm intervals computed tomography (CT) images and the maximum Von-Mises stress and the maximum Von-Mises strain of the right femur were examined. The maximum stress and strain were lowest at the ST4. The maximum values for the femur occurred in the medial part and then in the lateral part after the mid-stance. In this study, the results of the musculoskeletal model simulation using the inverse-dynamic analysis were utilized to improve the accuracy of the inputs, which affected the finite element analysis results, and the possibility of the bone-specific analysis according to the lapse of time was examined.

Entities:  

Keywords:  Musculoskeletal modeling; finite element analysis; inverse dynamics

Mesh:

Year:  2014        PMID: 25226949     DOI: 10.3233/BME-141062

Source DB:  PubMed          Journal:  Biomed Mater Eng        ISSN: 0959-2989            Impact factor:   1.300


  5 in total

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Journal:  Sci Rep       Date:  2017-12-12       Impact factor: 4.379

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3.  A Novel Ex Vivo Bone Culture Model for Regulation of Collagen/Apatite Preferential Orientation by Mechanical Loading.

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4.  Study on the relationship between age and the concentrations of heavy metal elements in human bone.

Authors:  Liang Chang; Sheng Shen; Zhe Zhang; Xiaoxiao Song; Qing Jiang
Journal:  Ann Transl Med       Date:  2018-08

5.  Biomechanical effect of intertrochanteric curved varus osteotomy on stress reduction in femoral head osteonecrosis: a finite element analysis.

Authors:  Yuzhu Wang; Go Yamako; Takato Okada; Hideki Arakawa; Yoshihiro Nakamura; Etsuo Chosa
Journal:  J Orthop Surg Res       Date:  2021-07-23       Impact factor: 2.359

  5 in total

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