Modica Francesco, Basile Vito, Surace Rossella, Fassi Irene
CNR-STIIMA Institute of Intelligent Industrial Technologies and Systems for Advanced Manufacturing, Via P. Lembo, 38F, 70124 Bari, Italy.
CNR-STIIMA Institute of Intelligent Industrial Technologies and Systems for Advanced Manufacturing, Via A. Corti, 12, 20133 Milano, Italy.
Micromachines (Basel). 2023 Feb 24;14(3):523. doi: 10.3390/mi14030523.
In articular joint implants, polymeric inserts are usually exploited for on-contact sliding surfaces to guarantee low friction and wear, a high load-bearing capacity, impact strength and stiffness, and biocompatibility. Surface micro-structuring can drastically reduce friction and wear by promoting hydrostatic friction due to synovial fluid. Ultra-High Molecular Weight Polyethylene (UHMWPE) is a suitable material for these applications due to its strong chemical resistance, excellent resistance to stress, cracking, abrasion, and wear, and self-lubricating property. However, surface micro-texturing of UHMWPE is hardly achievable with the currently available processes. The present study investigates UHMWPE's micro-textured surface replication capability via injection molding, comparing the results with the more easily processable High-Density Polyethylene (HDPE). Four different micro-texture cavities were designed and fabricated on a steel mold by micro-EDM milling, and used for the experimental campaign. Complete samples were fabricated with both materials. Then, the mold and samples were geometrically characterized, considering the dimensions of the features and the texture layout. The replication analysis showed that HDPE samples present geometrical errors that span from 1% to 9% resulting in an average error of 4.3%. In comparison, the UHMWPE samples display a higher variability, although still acceptable, with percentage errors ranging from 2% to 31% and an average error of 11.4%.
在关节植入物中,聚合物插入物通常用于接触滑动表面,以确保低摩擦和磨损、高承载能力、冲击强度和刚度以及生物相容性。表面微结构化可以通过促进滑液产生的静液压摩擦来大幅降低摩擦和磨损。超高分子量聚乙烯(UHMWPE)因其强大的耐化学性、出色的抗应力、抗开裂、抗磨损和自润滑性能,是这些应用的合适材料。然而,利用目前可用的工艺很难实现UHMWPE的表面微纹理化。本研究通过注塑成型研究了UHMWPE的微纹理表面复制能力,并将结果与更易于加工的高密度聚乙烯(HDPE)进行比较。通过微电火花加工铣削在钢模具上设计并制造了四个不同的微纹理型腔,并用于实验。用这两种材料制作了完整的样品。然后,考虑特征尺寸和纹理布局,对模具和样品进行几何表征。复制分析表明,HDPE样品的几何误差在1%至9%之间,平均误差为4.3%。相比之下,UHMWPE样品的变异性更高,尽管仍可接受,百分比误差在2%至31%之间,平均误差为11.4%。