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Modeling based experimental investigation on polymerization shrinkage and micro-hardness of nano alumina filled resin based dental material

机译:基于纳米氧化铝基牙科牙科材料的聚合收缩和微硬度的基于模拟实验研究

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This paper investigates the effect of %wt composition of BisGMA/TEGDMA, stirring time, bench time, curing time and filler loading on polymerization shrinkage and micro-hardness of resin based dental composites. The investigation was carried out in two stages. In first stage, samples were prepared with different %wt composition of BisGMA/TEGDMA, stirring time, bench time, and curing time to access the effect of different input parameters for minimum polymerization shrinkage and maximum micro-hardness using Taguchi methodology. Selecting optimum values of input factors from first stage, second stage optimization was performed to investigate the effects of different filler loading on different %wt composition of BisGMA/TEGDMA using full factorial design. Prediction model was developed using Design Expert software and analysis of effect of input parameters on output responses were carried out using 3D surface plots. ANOVA were performed to check the significance of prediction model. In first stage, optimum stirring time, bench time and curing time were found to be 4 h, 50 min and 30 s, respectively. In second stage, optimum polymerization shrinkage and micro-hardness of 3.54% and 310 H-v, were predicted at 22.89% of TEGDMA content and 20% filler loading. Taguchi methodology and full factorial design were successfully implemented to access the effect of multi-input parameters on responses for resin based dental composites.
机译:本文研究了BISGMA / TEGDMA,搅拌时间,长凳时间,固化时间和填料对树脂基牙科复合材料聚合收缩和微硬度的影响。调查在两个阶段进行。在第一阶段,用不同的WT组合物的Bisgma / TEGDMA,搅拌时间,长凳时间和固化时间制备样品,以访问不同输入参数的效果,用于使用TAGUCHI方法获得最小聚合收缩和最大微硬度的影响。选择从第一阶段的输入因子的最佳值,进行第二阶段优化,以研究不同填料对BISGMA / TEGDMA的不同填料WT组成的影响,使用完整的因子设计。使用设计专家软件开发了预测模型,并使用3D表面图进行了输出响应的输入参数的影响分析。进行ANOVA以检查预测模型的重要性。在第一阶段,发现最佳搅拌时间,长凳时间和固化时间分别为4小时,50分钟和30秒。在第二阶段,最佳的聚合收缩和310%和310h-V的微硬度预测为TEGDMA含量的22.89%和20%填料载荷。成功实施了Taguchi方法和完整因子设计,以访问多输入参数对基于树脂牙科复合材料的响应的影响。

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