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The long-term mechanical integrity of non-reinforced PEEK-OPTIMA polymer for demanding spinal applications: experimental and finite-element analysis

机译:非增强PEEK-OPTIMA聚合物在苛刻脊柱应用中的长期机械完整性:实验和有限元分析

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摘要

Polyetheretherketone (PEEK) is a novel polymer with potential advantages for its use in demanding orthopaedic applications (e.g. intervertebral cages). However, the influence of a physiological environment on the mechanical stability of PEEK has not been reported. Furthermore, the suitability of the polymer for use in highly stressed spinal implants such as intervertebral cages has not been investigated. Therefore, a combined experimental and analytical study was performed to address these open questions. A quasi-static mechanical compression test was performed to compare the initial mechanical properties of PEEK-OPTIMA polymer in a dry, room-temperature and in an aqueous, 37°C environment (n=10 per group). The creep behaviour of cylindrical PEEK polymer specimens (n=6) was measured in a simulated physiological environment at an applied stress level of 10 MPa for a loading duration of 2000 hours (12 weeks). To compare the biomechanical performance of different intervertebral cage types made from PEEK and titanium under complex loading conditions, a three-dimensional finite element model of a functional spinal unit was created. The elastic modulus of PEEK polymer specimens in a physiological environment was 1.8% lower than that of specimens tested at dry, room temperature conditions (P<0.001). The results from the creep test showed an average creep strain of less than 0.1% after 2000 hours of loading. The finite element analysis demonstrated high strain and stress concentrations at the bone/implant interface, emphasizing the importance of cage geometry for load distribution. The stress and strain maxima in the implants were well below the material strength limits of PEEK. In summary, the experimental results verified the mechanical stability of the PEEK-OPTIMA polymer in a simulated physiological environment, and over extended loading periods. Finite element analysis supported the use of PEEK-OPTIMA for load-bearing intervertebral implants.
机译:聚醚醚酮(PEEK)是一种新型聚合物,具有潜在的优势,可用于要求严格的整形外科应用(例如椎间融合器)中。但是,尚未报道生理环境对PEEK的机械稳定性的影响。此外,尚未研究该聚合物在高应力脊柱植入物如椎间笼中的适用性。因此,进行了组合的实验和分析研究,以解决这些悬而未决的问题。进行了准静态机械压缩测试,以比较PEEK-OPTIMA聚合物在干燥的室温和37°C的水性环境中的初始机械性能(每组n = 10)。圆柱形PEEK聚合物样品(n = 6)的蠕变行为是在模拟的生理环境中以10 MPa的施加应力水平进行的,加载时间为2000小时(12周)。为了比较由PEEK和钛制成的不同椎间融合器在复杂载荷条件下的生物力学性能,建立了功能性脊柱单元的三维有限元模型。 PEEK聚合物样品在生理环境下的弹性模量比在干燥,室温条件下测试的样品低1.8%(P <0.001)。蠕变测试的结果表明,在加载2000小时后,平均蠕变应变小于0.1%。有限元分析表明,骨骼/植入物界面处的应力和应力集中度很高,从而强调了保持架几何形状对载荷分布的重要性。植入物中的最大应力和应变远低于PEEK的材料强度极限。总而言之,实验结果证明了PEEK-OPTIMA聚合物在模拟的生理环境中以及在延长的负载期间内的机械稳定性。有限元分析支持将PEEK-OPTIMA用于承重的椎间植入物。

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