Department of Mechanical Engineering, SRM Institute of Science and Technology, Kattankulathur, Tamil Nadu, India.
Int J Artif Organs. 2022 Aug;45(8):704-714. doi: 10.1177/03913988221108752.
The major concern after total hip arthroplasty (THA) is the incidence of periprosthetic fracture in the weaker bone, which can lead to subsequent revision surgery. Achieving the suitable fixation without affecting the stability of the well-fixed prosthesis remains controversial. Most of the studies examined the behavior of the Periprosthetic Fracture (PF) fixation (Vancouver "B1" type) through computational and experimentation on healthy bone condition with metal plates. The aim of the present study is to analyze the influences of the metal and composite bone plate PF fixation on the axial and shear movement at the fracture site. The PF fixation constructs were modeled with medical graded stainless-steel plate (construct A), titanium plate (construct B) and carbon/epoxy composite bone plate (construct C) with 12 holes and a 4 mm fracture gap. Analysis was carried out for all the stages (stage 1-Normal bone, stage 2-THA, stage 3-Immediate Post-Operative (IPO), stage 4-Post-Operative (PO) and, stage 5-Healed Bone (HB)) under various loadings for intact and osteoporosis conditions. The results showed higher stress in cortical bone for stage 3, whereas in all the other stages lower stresses were experienced in the cortical and cancelous bone under peak load in construct C for osteoporosis model compared with other constructs. The present study suggested the construct C may be suitable for osteoporosis bone conditions.
全髋关节置换术后(THA)的主要关注点是在较弱的骨头上发生假体周围骨折的发生率,这可能导致随后进行翻修手术。在不影响固定良好的假体稳定性的情况下实现合适的固定仍然存在争议。大多数研究通过在健康骨骼条件下使用金属板进行计算和实验来研究假体周围骨折(PF)固定(温哥华“B1”型)的行为。本研究的目的是分析金属和复合骨板 PF 固定对骨折部位轴向和剪切运动的影响。使用医用级不锈钢板(结构 A)、钛板(结构 B)和碳纤维/环氧树脂复合骨板(结构 C)模拟 PF 固定结构,均带有 12 个孔和 4mm 的骨折间隙。对所有阶段(阶段 1-正常骨骼、阶段 2-THA、阶段 3-术后即刻(IPO)、阶段 4-术后(PO)和阶段 5-愈合骨骼(HB))进行了分析,在完整和骨质疏松条件下,对不同的载荷进行了分析。结果表明,在阶段 3 时,皮质骨中的应力更高,而在所有其他阶段,在骨质疏松模型中,与其他结构相比,在构造 C 下,皮质骨和松质骨在峰值载荷下的受力更低。本研究表明,结构 C 可能适用于骨质疏松骨骼条件。