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首页> 外文期刊>Acta biomaterialia >Fracture resistance of short, randomly oriented, glass fiber-reinforced composite premolar crowns.
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Fracture resistance of short, randomly oriented, glass fiber-reinforced composite premolar crowns.

机译:短的,随机取向的玻璃纤维增​​强复合材料前磨牙冠的抗断裂性。

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The aim of this work was to determine the static load-bearing capacity of posterior composite crowns made of experimental composite resin (FC) with short fiber fillers and a semi-interpenetrating polymer network (IPN) matrix. In addition, we wanted to investigate how load-bearing capacity of surface composite resins was affected by substructures of fiber-reinforced composite (FRC) and FC, and by different curing systems. Five groups of crowns were fabricated (n=6). The crowns were either polymerized with a hand-light curing unit (LCU) or cured in a vacuum curing device (VLC) before they were statically loaded at a speed of 1mm min(-1) until fracture. Failure modes were visually examined. Data were analyzed using ANOVA. ANOVA revealed that crowns made from the FC had a statistically significant higher load-bearing capacity than the control PFC composite. Crowns with FRC substructure and PFC covering gave force values of 348N (LCU) and 1199N (VLC), respectively, which were lower than the values of FC composite. No statistically significant difference was found between crowns made from plain FC composite and those made from FC composite with a surface layer of PFC (P=0.892 and 1.00). Restorations made from short glass fiber-containing composite resin with IPN-polymer matrix showed better load bearing capacity than those made with either plain PFC or PFC reinforced with FRC substructure.
机译:这项工作的目的是确定由复合短纤维填料和半互穿聚合物网络(IPN)基质的实验性复合树脂(FC)制成的后复合冠的静态承重能力。此外,我们想研究表面复合树脂的承重能力如何受到纤维增强复合材料(FRC)和FC的亚结构以及不同固化体系的影响。制作了五组冠(n = 6)。将牙冠用手动光固化装置(LCU)聚合或在真空固化设备(VLC)中固化,然后以1mm min(-1)的速度静态加载牙冠直至破裂。目视检查失效模式。使用ANOVA分析数据。方差分析显示,由FC制成的牙冠在统计学上比对照PFC复合材料具有更高的承重能力。具有FRC子结构和PFC覆盖的牙冠的力值分别为348N(LCU)和1199N(VLC),低于FC复合材料的值。在由普通FC复合材料制成的冠和由具有PFC表面层的FC复合材料制成的冠之间,没有发现统计学上的显着差异(P = 0.892和1.00)。用含IPN聚合物基体的含玻璃纤维的复合短树脂进行的修复比采用普通PFC或FRC子结构增强的PFC进行的修复具有更好的承载能力。

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