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Bioengineering Materials and Conditions for Obtaining Low Friction with PVA Hydrogels

机译:PVA水凝胶获得低摩擦的生物工程材料和条件

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Biological materials that make up the body organs and tissues are soft, wet and visco-elastic. Hydrogels can mimic these aspects and show promise for bio-medical applications. Their tribological properties are very important for promising applications such as artificial cartilage and bio-models for endovascular surgery training. The present study investigates the friction of polyvinyl alcohol (PVA) hydrogel against nine different metallic and non-metallic bio-compatible engineering materials likely to occur as countermaterials in these two applications. All the materials exhibited a characteristic velocity-dependent peak friction coefficient. Comparing the peaks, we find that lowest peak friction coefficient is produced by ceramics and glass (μ < 0.05), followed by metal alloys (μ < 0.05-0.08) and highest for polymers (0.4 < μ < 1.5), including PTFE which typically has very low-adhesion. Our results suggest that to achieve low friction, polymers should be avoided as a counter-material to PVA-hydrogels. It is also shown that PVA surface roughness is critical for achieving early transition to elasto-hydrodynamic lubrication and low friction, as shown in our comparative calculations with two different values of surface roughness of the gel. In the mixed lubrication region, the general trend is for friction to increase with roughness of the counterbody, but internal damping properties and adhesion also play important role, as shown by a simple linear model fit.
机译:组成人体器官和组织的生物材料是柔软,潮湿和粘弹性的。水凝胶可以模拟这些方面,并显示出对生物医学应用的希望。它们的摩擦学特性对于有前景的应用(例如人造软骨和用于血管内手术培训的生物模型)非常重要。本研究调查了聚乙烯醇(PVA)水凝胶对九种不同的金属和非金属生物相容性工程材料在这两种应用中可能作为对立材料发生的摩擦。所有材料均表现出与速度相关的特征峰摩擦系数。比较这些峰,我们发现,陶瓷和玻璃的峰摩擦系数最低(μ<0.05),其次是金属合金(μ<0.05-0.08),而聚合物的最高峰(​​0.4 <μ<1.5),包括聚四氟乙烯。具有极低的粘附力。我们的结果表明,要实现低摩擦,应避免使用聚合物作为PVA-水凝胶的对立材料。还显示出,PVA表面粗糙度对于实现向弹性流体动力润滑的早期过渡和低摩擦至关重要,如我们在凝胶表面粗糙度的两个不同值的比较计算中所示。在混合润滑区域中,总的趋势是摩擦力会随着配体的粗糙度而增加,但是内部阻尼特性和附着力也起着重要作用,如简单的线性模型拟合所示。

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