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Biomechanical pull-out strength of the cervical spine locking plate (CSLP) expansion screws

机译:颈椎锁定板(CSLP)膨胀螺钉的生物力学抗拉强度

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This study was designed to evaluate the biomechanical pull-out strength and mechanism of pull-out in cantilever bending of the Synthes cervical spine locking plate (CSLP) using a porcine spine model of four different length 4.35 mm diameter expansion screws and the 3.5 mm bicortical cancellous screw with and without end plates removed. Ten constructs using each screw length were tested in single cycle cantilever bending by loading the free end of the plate in both flexion and extension, with vertebral end plates both intact and violated. No discernable yield during loading in extension was observed while a yield was observed in flexion. Loads at specific displacements were greater once the end plates had been violated. The load experienced by unicortical screws of long constructs using cantilever bending was greater with the end plate violated. This was not expected, but is explained by the viscoelastic behavior of bone. This deformation mechanism accounts for the higher loads necessary for failure when the end plates are removed. In light of these results, the addition of a 16 mm or longer 4.35 mm expansion screw seems warranted, keeping in mind that the 18 mm and longer screws have some threat of penetrating the posterior cortex of the vertebral body.
机译:这项研究旨在评估猪的脊柱模型,使用四个不同长度的4.35 mm直径膨胀螺钉和3.5 mm双皮质的猪脊柱模型,评估Synthes颈椎锁定板(CSLP)悬臂弯曲的生物力学拉出强度和拉出机理。松散螺钉,带和不带端板。通过将板的自由端同时弯曲和延伸,并保持椎骨端板完整和不弯曲,在每个周期的悬臂弯曲中测试了使用每种螺钉长度的十种结构。拉伸时未观察到屈服,屈曲时未见屈服。一旦违反了端板,在特定位移下的载荷就会更大。长形结构的单皮质螺钉承受悬臂弯曲时承受的载荷更大,从而违反了端板。这是意料之外的,但可以通过骨骼的粘弹性行为来解释。当端板被移除时,这种变形机制解决了故障所必需的更高的载荷。根据这些结果,似乎有必要添加一个16毫米或更长的4.35毫米膨胀螺钉,同时请记住18毫米或更长的螺钉存在穿透椎体后皮质的威胁。

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