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影响GHBMC M50肋骨在动态前后加载中数值响应和骨折位置的因素。

Factors affecting the numerical response and fracture location of the GHBMC M50 rib in dynamic anterior-posterior loading.

作者信息

Rampersadh Claire, Agnew Amanda M, Malcolm Skye, Gierczycka Donata, Iraeus Johan, Cronin Duane

机构信息

Department of Mechanical and Mechatronics Engineering, University of Waterloo, Waterloo, Canada.

Injury Biomechanics Research Center, The Ohio State University, Columbus, United States.

出版信息

J Mech Behav Biomed Mater. 2022 Dec;136:105527. doi: 10.1016/j.jmbbm.2022.105527. Epub 2022 Oct 19.

Abstract

Rib fractures are common traumatic injuries, with links to increased morbidity and mortality. Finite element ribs from human body models have struggled to predict the force-displacement response, force and displacement at fracture, and the fracture location for isolated rib tests. In the current study, the sensitivity of a human body model rib with updated anisotropic and asymmetric material models to changes in boundary conditions, material properties, and geometry was investigated systematically to quantify contributions to response. The updated material models using uncalibrated average material properties from literature improved the force-displacement response of the model, whereas the cross-sectional geometry was the only parameter to effect fracture location. The resulting uncalibrated model with improved material models and cross-sectional geometry closely predicted experimental average force-displacement response and fracture location.

摘要

肋骨骨折是常见的创伤性损伤,与发病率和死亡率的增加有关。人体模型中的有限元肋骨在预测孤立肋骨测试的力-位移响应、骨折时的力和位移以及骨折位置方面一直存在困难。在当前的研究中,系统地研究了具有更新的各向异性和非对称材料模型的人体模型肋骨对边界条件、材料特性和几何形状变化的敏感性,以量化对响应的贡献。使用文献中未经校准的平均材料特性的更新材料模型改善了模型的力-位移响应,而横截面几何形状是影响骨折位置的唯一参数。由此产生的具有改进材料模型和横截面几何形状的未校准模型紧密预测了实验平均力-位移响应和骨折位置。

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