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Control of the mechanical properties of the synthetic anterior longitudinal ligament and its effect on the mechanical analogue lumbar spine model.

机译:人工合成前纵韧带的机械性能控制及其对机械模拟腰椎模型的影响。

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摘要

The development and validation of an anatomically correct mechanical analogue spine model would serve as a valuable tool in helping researchers and implant designers understand and alleviate low back pain. Advanced composite ligaments were designed to mimic the tensile mechanical properties of human spinal ligaments. By changing the composite properties, the stiffness and deformation at toe were controlled in a repeatable manner. Five analogue spine models, with three different Anterior Longitudinal Ligament (ALL) stiffness configurations, were tested in bending and compression using displacement control in a MTS load frame. The bending stiffness and kinematic ranges of motion of the spines were compared for each ALL stiffness configuration. The ALL stiffness had a significant effect on the stiffness and peak moment in extension of the overall spine model. The study demonstrated that a change in the synthetic ligament properties successfully controls the biomechanics of the analogue spine model and the model effectively mimics the human cadaveric biomechanical response.
机译:解剖学上正确的机械模拟脊柱模型的开发和验证将成为帮助研究人员和植入物设计者了解并减轻腰痛的宝贵工具。先进的复合韧带旨在模拟人类脊柱韧带的拉伸机械性能。通过改变复合材料的性能,脚趾的刚度和变形以可重复的方式得到控制。在MTS载荷框架中使用位移控制在弯曲和压缩状态下测试了五个具有三种不同的前纵韧带(ALL)刚度配置的模拟脊柱模型。对于每种ALL刚度配置,比较了脊的弯曲刚度和运动学运动范围。在整个脊柱模型的伸展过程中,ALL刚度对刚度和峰值力矩有显着影响。研究表明,合成韧带特性的改变成功地控制了模拟脊柱模型的生物力学,并且该模型有效地模拟了人体尸体的生物力学反应。

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