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A biomechanical study of the charleston brace for the treatment of scoliosis.

机译:查尔斯顿支架治疗脊柱侧弯的生物力学研究。

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STUDY DESIGN: A biomechanical study of the Charleston brace. OBJECTIVE: To model the nighttime Charleston brace treatment and study its biomechanical action. SUMMARY OF BACKGROUND DATA: The Charleston brace has been proposed as an alternative to the traditional daytime thoracolumbosacral orthosis for the treatment of moderate scoliotic deformities. It is worn at night and imposes a supine side-bending to reduce the major scoliotic curve. The biomechanics of the Charleston brace is still poorly understood. METHODS: The geometry of the spine, pelvis, rib cage, and of the external trunk surface of 2 scoliotic patients were acquired using a 3-dimensional multiview radiograph reconstruction technique and surface topography. A finite element model of each patient's trunk was created. Two sets of mechanical properties (stiff and normal) of the spine were tested. For each case, the transition from standing to supine position was first simulated by modifying the direction of the gravity forces acting on the patients' spine. Supine bending was simulated by applying a lateral displacement on the first thoracic vertebra. A custom-fit Charleston brace was modeled and positioned on the patient model. Tension was applied in the straps. Efficiency of the simulated Charleston braces was studied by computing geometrical corrections and effects on the internal stresses of the spine. RESULTS: The reduction of the major scoliotic curve varied between 58% and 97% and was in the range of published clinical data. Internal compressive stresses up to 1 MPa were generated on the convex side of the major scoliotic curve and tensile stresses up to 1 MPa on its concavity. In contrast, increased compressive stresses were exerted on the concavity of the secondary curves and added tensile stresses in their convexity. CONCLUSION: This study quantified the Charleston brace's biomechanical effect, which consists in inverting the asymmetrical compressive loading in the major scoliotic curve. It also highlighted that the Charleston brace worsens the asymmetrical compressive loading in the compensatory curves. The finite element model developed could help studying different brace designs and optimizing brace efficiency.
机译:研究设计:查尔斯顿支架的生物力学研究。目的:模拟夜间查尔斯顿支架治疗并研究其生物力学作用。背景数据概述:查尔斯顿支架已被提议作为传统的白天胸腰bo骨矫形器的替代品,用于治疗中度脊柱侧弯畸形。它在晚上佩戴,并进行仰卧侧弯以减少主要的脊柱侧弯。查尔斯顿支架的生物力学仍然知之甚少。方法:使用3维多视图X射线照片重建技术和表面形貌获取2名脊柱侧凸患者的脊柱,骨盆,肋骨笼和外躯干表面的几何形状。创建了每个患者躯干的有限元模型。测试了两组脊柱的机械性能(刚度和正常)。对于每种情况,首先通过修改作用在患者脊柱上的重力的方向来模拟从站立到仰卧的过渡。通过在第一胸椎上施加横向位移来模拟仰卧弯曲。对定制的查尔斯顿支架进行建模,并将其放置在患者模型上。在皮带上施加张力。通过计算几何校正和对脊柱内部应力的影响,研究了模拟查尔斯顿牙套的效率。结果:主要脊柱侧弯曲线的减少幅度在58%至97%之间,处于已发表的临床数据范围内。在主要脊柱弯曲曲线的凸面上产生高达1 MPa的内部压应力,在其凹形上产生高达1 MPa的拉伸应力。相反,增加的压应力施加在次级曲线的凹面上,并在其凸面上增加了张应力。结论:本研究量化了查尔斯顿支撑的生物力学作用,该作用包括反转主要脊柱侧弯曲线中的不对称压缩载荷。它还强调指出,查尔斯顿支撑会加剧补偿曲线中的不对称压缩载荷。开发的有限元模型可以帮助研究不同的支撑设计并优化支撑效率。

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