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Finite Element Analysis of A Hip Joint Prosthesis with An Extramedullary Fixation System

机译:胚胎固定系统髋关节假体的有限元分析

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Hip joint prostheses generally enjoy intramedullary stems, with multitudinous designs and shapes, for fixation into the femur. There are patients, however, who are not able to use such prostheses, for instance, due to their very narrow medullary canals. This study is designed to investigate the feasibility of using an extramedullary fixation system for hip joint prostheses. The proposed design is based on Dynamic Hip Screw (DHS) which is originally used for the treatment of femoral neck fractures. A voxel-based finite element model of the femur is developed from QCT images of a cadaver. The model is validated by simulating an experimental in-vitro test which investigated the mechanical behavior of proximal femoral bone under compression loading. It is then used to assess the performance of a DHS-based extramedullary fixation system of the hip prosthesis, in comparison with that of a conventional long-stem design. Muscle and joint forces, extracted from a musculoskeletal analysis of the gait cycle, are applied to the model. The resulting stresses in the components of the two designs are analyzed to examine the possibility of their fracture. Also, the strain energy density in the periprosthetic bone is studied to investigate the long-term performance of the designs considering bone remodeling behavior. Results indicate very high stresses in the screws of the DHS-based system, larger than their endurance limit. Also, the DHS-based fixation is found to impose a large amount of stress shielding throughout the fixation site, raising the risk of bone failure or implant loosening due to bone remodeling. It is concluded that the DHS-based design, in its original configuration, might not be appropriate for hip arthroplasty. Suggestions have been given for the design of a practically successful extramedullary hip implant.
机译:髋关节假体通常享受髓内茎,具有众多的设计和形状,用于固定进入股骨。然而,有患者,谁不能使用这种假体,例如,由于它们非常狭窄的髓流量。本研究旨在探讨使用用于髋关节假体的髓质外固定系统的可行性。所提出的设计基于动态髋螺钉(DHS),最初用于治疗股骨颈骨折。股骨的基于体素的有限元模型是从骑马者的QCT图像开发的。通过模拟实验性体外试验来验证该模型,该试验研究了在压缩负荷下研究了近端股骨骨的力学行为。然后,与传统的长茎设计相比,使用该髋关节假体的基于DHS的髓质ullary固定系统的性能。从步态循环的肌肉骨骼分析中提取的肌肉和关节力量被应用于模型。分析了两种设计的组分中所得到的应力以检查其骨折的可能性。此外,研究了围骨质骨中的应变能密度,以研究考虑骨重塑行为的设计的长期性能。结果在基于DHS的系统的螺钉中表示非常高的应力,比其耐久极限大。此外,发现基于DHS的固定在整个固定部位施加大量的应力屏蔽,从而提高由于骨重塑引起的骨衰竭或植入物松动的风险。结论是,基于DHS的设计,其原始配置可能不适合髋关节置换术。已经提供了实际成功的extramedullary Hip植入物的设计。

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