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Numerical simulation of the insertion process of an uncemented hip prosthesis in order to evaluate the influence of residual stress and contact distribution on the stem initial stability

机译:非骨水泥型髋关节假体插入过程的数值模拟,以评估残余应力和接触分布对骨干初始稳定性的影响

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The long-term success of a cementless total hip arthroplasty depends on the implant geometry and interface bonding characteristics (fit, coating and ingrowth) and on stem stiffness. This study evaluates the influence of stem geometry and fitting conditions on the evolution and distribution of the bone-stem contact, stress and strain during and after the hip stem insertion, by means of dynamic finite element techniques. Next, the influence of the mechanical state (bone-stem contact, stress and strain) resulted from the insertion process on the stem initial resistance to subsidence is investigated. In addition, a study on the influence of bone-stem interface conditions (friction) on the insertion process and on the initial stem stability under physiological loading is performed. The results indicate that for a stem with tapered shape the contact in the proximal part of the stem was improved, but contact in the calcar region was achieved only when extra press-fit conditions were considered. Changes in stem geometry towards a more tapered shape and extra press fit and variation in the bone-stem interface conditions (contact amount and high friction) led to a raise in the total insertion force. A direct positive relationship was found between the stem resistance to subsidence and stem geometry (tapering and press fit), bone-stem interface conditions (bone-stem contact and friction interface) and the mechanical status at the end of the insertion (residual stress and strain). Therefore, further studies on evaluating the initial performance of different stem types should consider the parameters describing the bone-stem interface conditions and the mechanical state resulted from the insertion process.
机译:非骨水泥全髋关节置换术的长期成功取决于植入物的几何形状和界面粘合特性(贴合度,涂层和向内生长)以及茎的硬度。这项研究通过动态有限元技术评估了髋关节插入过程中和插入后的茎干几何形状和拟合条件对骨干接触,应力和应变的演变和分布的影响。接下来,研究了插入过程导致的机械状态(骨干接触,应力和应变)对茎部初始抗沉降性的影响。此外,还进行了骨干界面条件(摩擦)对插入过程的影响以及在生理负荷下对初始茎的稳定性的研究。结果表明,对于具有锥形形状的杆,杆的近端部分的接触得到了改善,但仅在考虑了额外的压入条件时,才在骨car区域实现了接触。茎部几何形状朝着更锥形的方向变化以及额外的压配合以及骨干界面条件(接触量和高摩擦力)的变化导致总插入力增加。在茎对沉陷的抵抗力和茎的几何形状(锥度和压入配合),骨干界面条件(骨干接触和摩擦界面)与插入结束时的机械状态(残余应力和应变)。因此,有关评估不同茎类型的初始性能的进一步研究应考虑描述骨干界面条件和插入过程产生的机械状态的参数。

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