首页> 美国卫生研究院文献>Materials >The Effect of Thermocycling on Surface Layer Properties of Light Cured Polymer Matrix Ceramic Composites (PMCCs) Used in Sliding Friction Pair
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The Effect of Thermocycling on Surface Layer Properties of Light Cured Polymer Matrix Ceramic Composites (PMCCs) Used in Sliding Friction Pair

机译:热循环对滑动摩擦副中光固化聚合物基陶瓷复合材料(PMCC)表面层性能的影响

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摘要

This paper discusses the problem of thermocycling effect of light-curing polymer–ceramic composites. Cyclic thermal shocks were simulated in laboratory conditions. As a rule, these loads were supposed to reproduce the actual conditions of biomaterials exploitation. Periodically variable stresses occurring in dental restorations are associated with the wear of cold and hot foods and beverages. They lead to changes in the properties of composites, including the properties of the surface layer. The aim of the work was to assess the impact of cyclic hydrothermal interactions on the properties of the surface layer of composites relevant to the operational quality. Two commercial materials manufactured by the world’s leading producer (3M ESPE)—Filtek Z550, Filtek Flow and two experimental, micro-hybrid and flow type composites marked Ex-mhyb(P) and Ex-flow(P), respectively. All tests were carried out before and after hydro-thermal cycles (flowing water thermocycling). Micro-hardness test using the Vickers method, indentation hardness, and resistance to tribological wear in a ball–disc system in sliding friction conditions were performed. In addition, observations of the surface layer of composites on the SEM (scanning electron microscope) were carried out. It was noticed that semi-liquid composites, containing a smaller amount of filler, retain higher stability of mechanical and tribological properties of the surface layer under cyclic hydro-thermal loads. Coefficient of friction of samples after hydro-thermal cycles increased for micro-hybrid materials and Filtek Flow (FFlow) composite. In the case of Ex-flow(P) material, the coefficient of friction decreased. The microhardness of composites also changed, the variability of this size depended on the type of material. Composites with a higher content of filler particles were characterized by greater variability of microhardness under the influence of thermocycles. The resistance to tribological wear also changed in a similar way. Composites containing higher volume fraction of inorganic filler showed higher tribological wear after thermocycling. The wear resistance of flow composites changed to a lesser extent, after thermocycling increased. The paper also showed that, in real kinematic nodes, the surface layer of light-curing ceramic–polymer composites is exposed to significant non-tribological (erosive, thermal, and chemical) defects that synergize with tribological ones. In slip pairs loaded dynamically, under mixed friction conditions, tribological wear of PMCCs (polymer matrix ceramic composites) is manifested by spalling (spalling of the material flakes, in particular the polymer phase) and pitting (crushing wear caused by wear products, in particular large filler particles or clusters, previously adhesively extracted).
机译:本文讨论了光固化聚合物-陶瓷复合材料的热循环效应问题。在实验室条件下模拟了循环热冲击。通常,这些负载被假定为再现生物材料开发的实际条件。牙齿修复物中周期性变化的应力与冷热食品和饮料的磨损有关。它们导致复合材料特性的变化,包括表面层的特性。这项工作的目的是评估循环水热相互作用对与操作质量有关的复合材料表面层性能的影响。由世界领先的生产商(3M ESPE)生产的两种商业材料-Filtek Z550,Filtek Flow和两种分别标记为Ex-mhyb(P)和Ex-flow(P)的实验性,微混合和流动型复合材料。所有测试均在水热循环(流水热循环)之前和之后进行。使用维氏(Vickers)方法进行显微硬度测试,压痕硬度以及在滑动摩擦条件下的球盘系统中的摩擦磨损性能。另外,在SEM(扫描电子显微镜)上观察复合材料的表面层。注意到含有较少量填料的半液体复合材料在循环水热负荷下仍具有较高的表面层机械和摩擦学性能稳定性。对于微混合材料和Filtek Flow(FFlow)复合材料,水热循环后样品的摩擦系数增加。在Ex-flow(P)材料的情况下,摩擦系数降低。复合材料的显微硬度也发生了变化,该尺寸的可变性取决于材料的类型。填料颗粒含量较高的复合材料的特征是,在热循环的影响下,显微硬度的变化较大。对摩擦磨损的抵抗力也以类似的方式变化。含有较高体积分数的无机填料的复合材料在热循环后表现出较高的摩擦磨损。热循环后,流动复合材料的耐磨性变化较小。该论文还表明,在真实的运动学节点中,光固化陶瓷-聚合物复合材料的表面层暴露于与摩擦学协同作用的重大非摩擦学(侵蚀,热和化学)缺陷。在混合摩擦条件下动态加载的滑副中,PMCC(聚合物基陶瓷复合材料)的摩擦磨损表现为散裂(材料薄片,特别是聚合物相的剥落)和点蚀(尤其是由磨损产物引起的压碎磨损)较大的填料颗粒或团簇,事先用胶粘剂提取)。

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