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全髋关节置换术中股骨扩孔时嵌顿事件的定量特征。

Quantitative characterisation of impaction events during femoral broaching in total hip arthroplasty.

机构信息

DePuy Synthes Joint Reconstruction, St Anthony's Rd, Leeds LS11 8DT, United Kingdom.

DePuy Synthes Joint Reconstruction, St Anthony's Rd, Leeds LS11 8DT, United Kingdom.

出版信息

Med Eng Phys. 2020 Feb;76:13-19. doi: 10.1016/j.medengphy.2019.12.004. Epub 2019 Dec 27.

DOI:10.1016/j.medengphy.2019.12.004
PMID:31889620
Abstract

Total hip arthroplasty (THA) broaching involves impacting a broach handle with a mallet, facilitating force transmission to progress broaches into the femoral medullary canal. Limited surgical access during direct anterior THAs increases off-axis forces, potentially contributing to tissue damage. The aim was to characterise impactions during broaching. In a cadaver lab, movement of handle, femur and instrumented mallet was tracked during direct-anterior approach (DAA) and posterior approach (PA). Mallet velocity, broach displacement and input energy were calculated. Following the cadaver lab, different impaction strategies were investigated using bone simulants for a simulated DAA. The effects of reduced mallet velocity inputs and the influence of different impaction locations on the broach handle strike plate were investigated. To seat the broach in cadaveric bone, lower impaction energy (-59%) and number of strikes (-53%) were observed during PA compared to DAA. Suboptimal broach progression was reached in bone simulant at low mallet velocities (3.1 ± 0.3 m/s). Impacting the strike plate's upper part caused larger deflections (p < 0.001) of the Sawbones femur which suggested that higher off axis forces occurred. Awareness of reduced load transmission during DAA broaching using off-axis broach handles, compared to the traditional PA, could help promoting a more efficient and careful impaction strategy in surgeries.

摘要

全髋关节置换术(THA)扩孔涉及用锤子撞击扩孔手柄,从而将力传递到扩孔器上,使其进入股骨髓腔。直接前路 THA 术中手术入路有限,会增加非轴向力,可能导致组织损伤。本研究旨在描述扩孔过程中的撞击情况。在尸体实验室中,在直接前路(DAA)和后路(PA)入路时,跟踪手柄、股骨和仪器化锤子的运动。计算了锤子速度、扩孔器位移和输入能量。在尸体实验室之后,使用骨模拟物研究了不同的撞击策略,用于模拟 DAA。研究了降低锤子速度输入的影响以及不同撞击位置对扩孔手柄撞击板的影响。与 DAA 相比,PA 时,在尸体骨中插入扩孔器需要更低的撞击能量(-59%)和更少的撞击次数(-53%)。在骨模拟物中,当锤子速度较低时(3.1±0.3 m/s),扩孔器的推进情况并不理想。撞击 Sawbones 股骨撞击板的上部会导致更大的挠度(p<0.001),这表明会出现更高的非轴向力。与传统的 PA 相比,在 DAA 扩孔过程中使用非轴向扩孔手柄时,意识到负载传递减少,这有助于在手术中促进更高效和更谨慎的撞击策略。

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