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Numerical evaluation of bulk material properties of dental composites using two-phase finite element models

机译:使用两相有限元模型对牙科复合材料块状材料性能进行数值评估

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摘要

Objectives. The aim of this study was to numerically evaluate the effects of filler contents and resin properties on the material properties of dental composites utilizing realistic 3D micromechanical finite element models. Methods. 3D micromechanical finite element models of dental composites containing irregular fillers with non-uniform sizes were created based on a large-scale, surrogate mixture fabricated from irregularly shaped stones and casting resin. The surrogate mixture was first scanned with a micro-CT scanner, and the images reassembled to produce a 3D finite element mode]. Different filler fractions were achieved by adjusting the matrix volume while keeping the fillers unchanged. Polymerization shrinkage, Young's modulus, Poisson's ratio and viscosity of the model composites were predicted using the finite element models, and their dependence on the filler fraction and material properties of the resin matrix were considered. Comparison of the numerical predictions with available experimental data and analytical models from the literature was performed. Results. Increased filler fraction resulted in lower material shrinkage, higher Young's modulus, lower Poisson's ratio and higher viscosity in the composite. Predicted shrinkage and Young's modulus agreed well with the experimental data and analytical predictions. The McGee-McCullough model best fit the shrinkage and Young's modulus predicted by the finite element method. However, a new parameter, used as the exponent of the filler fraction, had to be introduced to the McGee-McCullough model to better match the predicted viscosity and Poisson's ratio with those from the finite element analysis. Significance. Realistic micro-structural finite element models were successfully applied to study the effects of filler fraction and matrix properties on a wide range of mechanical properties of dental composites with irregular fillers. The results can be used to direct the design of such materials to achieve the desired mechanical properties.
机译:目标。这项研究的目的是使用逼真的3D微机械有限元模型,以数字方式评估填料含量和树脂性能对牙科复合材料材料性能的影响。方法。基于由不规则形状的石头和浇铸树脂制成的大型替代混合物,创建了包含不均匀尺寸不规则填充物的牙科复合材料的3D微机械有限元模型。首先用微型CT扫描仪扫描替代混合物,然后重新组装图像以产生3D有限元模式。通过调整基质体积,同时保持填料不变,可以得到不同的填料分数。使用有限元模型预测了模型复合材料的聚合收缩率,杨氏模量,泊松比和粘度,并考虑了它们对填料分数和树脂基体材料性能的依赖性。进行了数值预测与文献中可用的实验数据和分析模型的比较。结果。填料分数的增加导致复合材料中较低的材料收缩,较高的杨氏模量,较低的泊松比和较高的粘度。预测的收缩率和杨氏模量与实验数据和分析预测吻合得很好。 McGee-McCullough模型最适合通过有限元方法预测的收缩率和杨氏模量。但是,必须将新参数(用作填料分数的指数)引入McGee-McCullough模型,以更好地将预测粘度和泊松比与有限元分析中的参数相匹配。意义。实际的微观结构有限元模型已成功地用于研究填料分数和基体性能对具有不规则填料的牙科复合材料的广泛机械性能的影响。结果可用于指导此类材料的设计,以实现所需的机械性能。

著录项

  • 来源
    《Dental materials》 |2012年第9期|p.996-1003|共8页
  • 作者单位

    Minnesota Dental Research Center for Biomaterials and Biomechanics, School of Dentistry, Uniuersity of Minnesota, MN 55455, USA;

    Minnesota Dental Research Center for Biomaterials and Biomechanics, School of Dentistry, Uniuersity of Minnesota, MN 55455, USA;

    Minnesota Dental Research Center for Biomaterials and Biomechanics, School of Dentistry, Uniuersity of Minnesota, MN 55455, USA;

    School of Dentistry and Photon Science Institute, Uniuersity of Manchester, Manchester, UK,Institute of Materials Science and Technology, Friedrich-Schiller-Uniuersity, Jena, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    dental composites; filler fraction; material properties; finite element analysis;

    机译:牙科复合材料;填料分数材料特性;有限元分析;

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