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平面应变压缩对 GUR 1050UHMWPE 微观结构和摩擦学性能的影响。

Influence of plane-strain compression on the microstructure and tribological behavior of GUR 1050 UHMWPE.

机构信息

Biomechanics Engineering Laboratory, University Hospital (HU), Federal University of Santa Catarina, Florianópolis, Santa Catarina, Brazil.

GRANTE - Department of Mechanical Engineering, Federal University of Santa Catarina, Florianópolis, Brazil.

出版信息

J Mech Behav Biomed Mater. 2023 Jun;142:105816. doi: 10.1016/j.jmbbm.2023.105816. Epub 2023 Apr 5.

Abstract

Ultra-high molecular weight polyethylene (UHMWPE) has been used as a bearing surface in orthopedic implants due to its outstanding physical and mechanical properties. Modifications in the structure of the polymer have a direct effect on its wear. In this work, plane-strain compression in a channel die was applied to induce microstructural changes in specimens of UHMWPE GUR 1050. These structural changes were characterized using a combined approach involving Raman spectroscopy and atomic force microscopy. These qualitative and quantitative characterization resulted in a valuable understanding of the changes in the material microstructure when subjected to plastic deformation. A molecular non-uniform alignment of the UHMWPE molecules, with fragmentation and kinking of polymer lamellae, was observed in the direction of material flow, perpendicular to the compressive load direction, following an inhomogeneous strain field generated by the mechanical compression. The microstructural analyses revealed an increased crystalline content and decreased intermediate phase while amorphous phase content remained unchanged, in all the regions of the deformed specimen. The tribological performance, evaluated by the scratch resistance force, decreased along the material flow direction and increased along the load direction in the deformed polymer compared to that of the uncompressed polymer. Plane-strain compression was able to modify the polymer microstructure, introducing directional anisotropy in its tribological behavior that can impact the wear performance of the material.

摘要

超高分子量聚乙烯(UHMWPE)因其出色的物理和机械性能而被用作骨科植入物的轴承表面。聚合物结构的改变对其磨损有直接影响。在这项工作中,平面应变压缩在通道模具中应用于诱导 GUR 1050UHMWPE 样品的微观结构变化。使用涉及拉曼光谱和原子力显微镜的组合方法对这些结构变化进行了特征描述。这些定性和定量的表征导致对材料微观结构在经受塑性变形时的变化有了有价值的理解。在垂直于压缩载荷方向的材料流动方向上观察到 UHMWPE 分子的分子非均匀取向,聚合物层片的碎片化和扭曲,这是由机械压缩产生的不均匀应变场引起的。微观结构分析表明,在变形样品的所有区域中,结晶度含量增加,中间相减少,而无定形相含量保持不变。与未压缩聚合物相比,在变形聚合物中,通过划痕阻力评估的摩擦学性能沿材料流动方向降低,沿载荷方向升高。平面应变压缩能够改变聚合物的微观结构,在其摩擦学行为中引入各向异性,从而影响材料的磨损性能。

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