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Quality of motion considerations in numerical analysis of motion restoring implants of the spine.

机译:脊柱运动恢复植入物的数值分析中对运动质量的考虑。

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BACKGROUND: Motion restoring implants function in a dynamic environment that encompasses the full range of spinal kinematics. Accurate assessment of the in situ performance of these devices using numerical techniques requires model verification and validation against the well-established nonlinear quality of motion of the spine, as opposed to the previous norm of matching kinematic endpoint metrics such as range of motion and intervertebral disc pressure measurements at a single kinematic reference point. METHODS: Experimental data was obtained during cadaveric testing of nine three-functional spinal unit (L3-S1) lumbar spine segments. Each specimen was tested from 8Nm of applied flexion moment to 6 Nm of applied extension moment with an applied 400N compressive follower preload. A nonlinear kinematic curve representing the spinal quality of motion (applied moment versus angular rotation) for the index finite element model was constructed and compared to the kinematic responses of the experimental specimens. The effect of spinal soft tissue structure mechanical behaviors on the fidelity of the model's quality of motion to experimental data was assessed by iteratively modifying the material representations of annulus fibrosus, nucleus pulposus, and ligaments. FINDINGS: The present work demonstrated that for this model, the annulus fibrosus played a small role in the nonlinear quality of motion of the model, whereas changes in ligament representations had a large effect, as validated against the full kinematic range of motion. An anisotropic continuum representation of the annulus fibrosus was used, along with nonlinear fabric representations of the ligaments and a hyperelastic representation of the nucleus pulposus. INTERPRETATION: Our results suggest that improvements in current methodologies broadly used in numerical simulations of the lumbar spine are needed to fully describe the highly nonlinear motion of the spine.
机译:背景:运动恢复植入物在动态环境中起作用,该环境涵盖了整个脊柱运动学范围。使用数值技术准确评估这些设备的原位性能需要针对公认的脊柱运动非线性进行模型验证和确认,这与先前的运动学终点指标(例如运动范围和椎间盘)匹配规范相反在单个运动参考点上的压力测量。方法:在尸体测试九个三功能脊柱单位(L3-S1)腰椎节段的过程中获得了实验数据。在施加400N压缩从动件预紧力的情况下,从施加的8Nm的屈伸力矩到施加的6Nm的伸长力矩测试每个样本。构造了一个非线性运动学曲线,该运动学曲线代表了索引有限元模型的运动质量(施加的力矩与角旋转),并将其与实验样本的运动学响应进行了比较。通过反复修改纤维环,髓核和韧带的材料表示,评估了脊柱软组织结构力学行为对模型运动质量保真度的影响。结果:目前的研究表明,对于这种模型,纤维环在模型的非线性运动质量中起着很小的作用,而韧带表示的变化则具有很大的作用,这一点已在整个运动学范围内进行了验证。使用了纤维环的各向异性连续体表示法,以及韧带的非线性织物表示法和髓核的超弹性表示法。解释:我们的结果表明,需要充分利用腰椎脊柱数值模拟中广泛使用的当前方法,才能充分描述脊椎的高度非线性运动。

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