钢板-骨接触对桥式钢板骨折固定生物力学的影响:计算、实验和分析模型。

IF 2.1 3区 医学 Q2 ORTHOPEDICS
Zachary A Koroneos, Hwabok Wee, J Spence Reid, Gregory S Lewis
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引用次数: 0

摘要

桥式钢板是粉碎性骨折常用的内固定方法。螺钉之间的内工作长度已被确定为控制术后生物力学稳定性的关键参数。然而,钢板与骨的接触可能以复杂的方式影响这些生物力学,并且钢板与骨之间的偏移量在手术中是可变的。本研究的目的是检查结构和加载参数对桥板结构的碎片间运动和最大板应力的影响。根据内部工作长度、板骨偏移量、断裂间隙大小以及加载类型和大小的变化建立了有限元模型。为了支持模型的可信度,还平行进行了人工骨实验。还建立了基于梁的弯曲和板的扭转的分析模型,假设刚度超出内工作长度。在无板骨接触的轴向和扭转载荷情况下,有限元和实验结果证实了内部工作长度与碎片间运动之间的线性关系。在这些情况下,碎片间运动的分析预测结果与有限元模拟结果非常吻合。相反,在钢板与骨接触的情况下,形成了较短的有效工作长度,并且结果取决于其他变量,如骨折间隙。该研究显示了如何基于梁理论来理解和预测到钢板-骨接触点的桥式钢板力学,以及在钢板-骨接触存在的情况下,手术变量的相互作用如何影响碎片间运动和最大钢板应力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of Plate-Bone Contact on Bridge Plate Fracture Fixation Biomechanics: Computational, Experimental, and Analytical Modeling.

Bridge plating is commonly used for internal fixation of comminuted fractures. The inner working length between screws has been established as a key parameter controlling postoperative biomechanical stability. However, plate-bone contact may affect these biomechanics in complex ways, and the offset between the plate and bone is variable across surgeries. The objective of this study was to examine the effects of construct and loading parameters on interfragmentary motion and maximum plate stress of bridge plating constructs. Finite element models were developed with variations in inner working length, plate-bone offset, fracture gap size, and loading type and magnitudes. Experiments with synthetic bones were conducted in parallel to support model credibility. Analytical models were also developed based on beam bending and torsion of the plate, assuming rigidity outside the inner working length. Finite element and experimental results of axial and torsional loading scenarios without plate-bone contact confirmed linear relationships between inner working length and interfragmentary motion. Analytical predictions of interfragmentary motion showed very good agreement with the finite element simulations in these scenarios. Conversely, in cases with plate-bone contact, a shorter effective working length was formed, and results were dependent on additional variables such as fracture gap. The study shows how the mechanics of bridge plating can be understood and predicted based on beam theory up to the point of plate-bone contact, and how interfragmentary motions and maximum plate stresses are influenced by the interaction of surgical variables in the presence of plate-bone contact.

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来源期刊
Journal of Orthopaedic Research®
Journal of Orthopaedic Research® 医学-整形外科
CiteScore
6.10
自引率
3.60%
发文量
261
审稿时长
3-6 weeks
期刊介绍: The Journal of Orthopaedic Research is the forum for the rapid publication of high quality reports of new information on the full spectrum of orthopaedic research, including life sciences, engineering, translational, and clinical studies.
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