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Can the Increased Loosening Rate of the Modular-Neck Hip Systems Be Attributed to Geometric Design Parameters? An Alternative Approach Using Finite Element Analysis

机译:模块颈部髋关节系统的宽松率增加归因于几何设计参数吗?一种使用有限元分析的替代方法

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Modular necks are a relatively new innovation in total hip arthroplasty (THA). They offer the surgeon the potential to effectively restore hip biomechanics with the ability to independently adjust offset, version, and limb length during operation. These should theoretically improve implant stability, decrease the dislocation and impingement rate, and assist in equalization of leg length (Grupp et al. 2010). Initially they were reserved for the severe torsional deformities of the developmental hip dysplasia (Umeda et al. 2003). However, due to their compelling rationale, the intraoperative flexibility and the fast learning curve, indications quickly expanded up to the younger and more active patients. To further serve the demands of these patients, several manufacturers currently combine modular necks with hard bearings, either metal on metal (MoM) or ceramic on ceramic (CoC) (Grupp et al. 2010). However, whether the advantages conferred by the neck modularity outweigh the additional complexity remains a question. Since the introduction of the modular-neck systems in the clinical practice, vulnerabilities of their application are being continuously revealed.
机译:模块化颈部是总髋关节置换术(THA)的相对较新的创新。他们提供外科医生,有效地恢复髋部生物力学的能力,能够在操作期间独立调整偏移,版本和肢体长度。这些理论上应该改善植入物稳定性,降低脱位和冲击率,并有助于腿长均衡(Grupp等,2010)。最初,它们被保留用于发育髋关节发育不良的严重扭转畸形(Umeda等,2003)。然而,由于他们引人注目的理由,术中灵活性和快速学习曲线,适应症迅速扩大到年轻和更活跃的患者。为了进一步满足这些患者的需求,若干制造商目前将模块化颈部与硬轴承相结合,金属(MOM)或陶瓷(COC)上的陶瓷(GRUPP等,2010)。然而,颈部模块化赋予的优点是越来越多的复杂性仍然是一个问题。由于在临床实践中引入了模块化颈部系统,因此不断揭示其应用的脆弱性。

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