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The effect of active muscle tension on the axial impact tolerance of the human foot/ankle complex.

机译:主动肌肉张力对人脚/踝复合体的轴向冲击耐受力的影响。

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摘要

Axial loading of the foot/ankle complex is an important injury mechanism in vehicular trauma responsible for severe injuries such as calcaneus, talus, and tibia pilon fractures. Axial loading may be applied to the leg externally in a car crash, by the toepan and/or pedals, as well as internally, by active muscle tension applied through the Achilles tendon during pre-impact bracing. In order to evaluate the effect of active muscle tension on the injury tolerance of the foot/ankle complex, axial impact tests were performed on isolated lower extremities with and without experimentally simulated muscle tension applied through the Achilles tendon. Acoustic emission was used to determine the exact time of fracture during the tests. The primary fracture mode was calcaneus fracture in both groups, but tibia pilon fractures occurred more frequently with the addition of Achilles tensioning. A survival analysis was performed on the combined injury data set using a Weibull regression model with specimen age, gender, mass, and level of Achilles tension as predictor variables. A closed-form solution was developed to calculate the risk of injury to the foot/ankle complex in terms of axial tibia force. Axial loading injury criteria that can be used predict injury to the foot/ankle complex in vehicle crash testing are presented for several types of dummy legs.
机译:足踝复合物的轴向负荷是车辆创伤中的重要损伤机制,车辆创伤造成诸如跟骨,距骨和胫骨骨钉骨折等严重伤害。在发生车祸时,可以通过脚趾和/或踏板在外部施加轴向载荷,也可以在内部通过在冲击前支撑期间通过跟腱施加的主动肌肉张力在内部施加轴向载荷。为了评估主动肌肉张力对脚/踝部复合物的损伤耐受性的影响,对孤立的下肢进行轴向冲击测试,无论是否通过阿基里斯腱施加实验模拟的肌肉张力。在测试过程中,使用声发射来确定确切的断裂时间。两组的主要骨折模式均为跟骨骨折,但随着阿喀琉斯拉力的增加,胫骨pilon骨折的发生率更高。使用Weibull回归模型对合并的伤害数据集进行生存分析,并将样本年龄,性别,体重和跟腱张力水平作为预测变量。开发了一种封闭形式的解决方案,以根据胫骨轴向力​​来计算脚/踝复合体受伤的风险。针对几种类型的假腿,提出了可以在车辆碰撞测试中预测脚/踝复合体受伤的轴向载荷损伤准则。

著录项

  • 作者

    Funk, James Robert.;

  • 作者单位

    University of Virginia.;

  • 授予单位 University of Virginia.;
  • 学科 Engineering Biomedical.; Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 245 p.
  • 总页数 245
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;机械、仪表工业;
  • 关键词

  • 入库时间 2022-08-17 11:47:49

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