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Biomechanical testing of hip protectors and energy-absorbing floors for the prevention of fall-related hip fractures

机译:髋部保护器和能量吸收地板的生物力学测试,以防止与秋季有关的髋部骨折

摘要

The general objective of my thesis research was to characterize the stiffness and force distribution characteristics of the hip region during the impact phase of sideways falls, and to advance our understanding of the potential for external engineering interventions (e.g. hip protectors and compliant floors) to reduce hip fracture risk by reducing the force applied to the proximal femur during such falls. This thesis is comprised of five studies. In the first I characterized the degree of non-linearity in pelvic stiffness, and examined the influence of stiffness characterization methods on the accuracy of mathematical models (mass-spring and Voigt) in predicting impact dynamics during falls on the hip. In the second study I employed a pelvis release paradigm (a method of inducing low severity but clinically relevant falls) to examine whether soft shell hip protectors alter the distribution of force throughout the hip region during impact. The third study entailed a sensitivity analysis to determine the influence of mechanical test system properties on the force attenuation provided by hip protectors. In the fourth study I used pelvis release experiments to determine how the force applied to the pelvis is affected by body impact configuration and floor stiffness; I also examined the ability of a mass-spring model to predict these relationships. The final study used a mechanical fall simulator to assess the attenuation in femoral neck force provided by four low stiffness floors compared to a standard rigid floor, and assessed the influence of these floors on fall risk through a range of static and dynamic balance tests with fifteen elderly women. Overall, this thesis demonstrates that compliant floors and soft shell hip protectors substantially reduce the force applied to the proximal femur during the impact stage of sideways falls. Of equal importance, this work demonstrates the need for international standards for the biomechanical testing and market approval of these devices. These are essential steps for increasing the quality of hip protectors and compliant floors available in the marketplace, and consequently, for enhancing their ability to reduce hip fracture risk in vulnerable populations.
机译:本论文研究的总体目标是表征侧向跌落冲击阶段髋区域的刚度和力分布特征,并加深我们对外部工程干预(例如髋部保护器和顺应地板)的潜力的了解,以减少在这种跌倒过程中,通过减少施加于股骨近端的力可降低髋部骨折的风险。本论文包括五项研究。在第一篇文章中,我描述了骨盆僵硬度的非线性程度,并研究了僵硬度表征方法对数学模型(质量弹簧和Voigt)在预测髋部跌倒时的冲击动力学方面的准确性的影响。在第二项研究中,我采用了骨盆释放范例(一种导致低度严重但与临床相关的跌倒的方法)来检查软壳髋部保护器在撞击过程中是否改变了整个髋部区域的力分布。第三项研究需要进行敏感性分析,以确定机械测试系统性能对髋部保护器提供的力衰减的影响。在第四项研究中,我使用骨盆释放实验来确定施加在骨盆上的力如何受到身体撞击结构和地板刚度的影响;我还检查了质量弹簧模型预测这些关系的能力。最终研究使用机械跌倒模拟器评估了四个低刚度地板与标准刚性地板相比在股骨颈力上的衰减,并通过一系列的十五次静态和动态平衡测试评估了这些地板对跌倒风险的影响老年妇女。总体而言,本论文证明了顺应性地板和软壳髋部保护器可在侧向跌落的冲击阶段显着降低施加到股骨近端的力。同样重要的是,这项工作表明对这些设备的生物力学测试和市场认可需要国际标准。这些是提高市场上可用的髋部保护器和顺应地板的质量,从而增强其降低脆弱人群髋部骨折风险的能力的重要步骤。

著录项

  • 作者

    Laing Andrew Charles Thomas;

  • 作者单位
  • 年度 2008
  • 总页数
  • 原文格式 PDF
  • 正文语种 English
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