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Contraction behaviors of dental composite restorations - Finite element investigation with DIC validation

机译:牙科复合材料修复体的收缩行为-通过DIC验证进行有限元研究

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The objective of this study was to examine the effects of cavity configuration on the polymerization shrinkage and stress of light-cured composite restorations by combining local strain measurement and a finite element analysis (FEA). Dental mesio-occluso-distal cavities of various widths and depths (each for 2 vs. 4 mm), representing different configuration factors, were prepared on extracted molars. The displacements of the bonded tooth cusps and cavity floors, caused by polymerization shrinkage of composite restorations, were assessed utilizing a digital-image-correlation (DIC) technique. The cervical marginal microleakage was investigated by examining the resin replicas of these restorations under SEM. The local material properties of the polymerized composite along the curing depth were defined by the nanoindentation test and applied in the subsequent FEA. In the FEA, four models were generated to correspond with the experimental restorations. In the DIC measurement results, the 4(w)×4(D)mm cavity presented the greatest values of inward displacements at the cusp and floor. The cavity depth, rather than the cavity width, was found to significantly correlate to the floor deformation, the location of shrinkage centers, and also the cervical microleakage ratio. The FEA simulation results showed that the 2(w)×4(D)mm cavity presented the maximal von Mises and principal stress located respectively on the cervical margins and cavity floor. Additional safety factor analysis showed a high risk of bond failure over the cavity floor in the 4-mm deep cavity. With the experimental validation, the simulation revealed that the cavity depth was significant to the formation of contraction stress and the incidence of interfacial debonding.
机译:这项研究的目的是通过结合局部应变测量和有限元分析(FEA)来研究空腔结构对光固化复合修复体聚合收缩和应力的影响。在提取的磨牙上制备了代表不同构型因子的各种宽度和深度(分别为2毫米至4毫米)的近中牙远中牙洞。使用数字图像关联(DIC)技术评估了由复合修复体的聚合收缩引起的粘结牙尖和空腔底部的位移。通过在SEM下检查这些修复体的树脂复制品,研究了宫颈边缘微渗漏。通过纳米压痕测试定义了聚合复合材料沿固化深度的局部材料性能,并将其应用于后续的FEA中。在有限元分析中,生成了四个与实验修复体相对应的模型。在DIC测量结果中,4(w)×4(D)mm的腔体在尖头和底部呈现最大的向内位移。发现腔深度而不是腔宽度与地板变形,收缩中心的位置以及颈椎微渗漏率显着相关。有限元分析的结果表明,2(w)×4(D)mm的腔分别具有最大的von Mises和主应力,分别位于子宫颈边缘和腔底。附加的安全系数分析表明,在4毫米深的型腔中,型腔底板上的粘结失败风险很高。通过实验验证,模拟表明腔深度对于收缩应力的形成和界面脱粘的发生率具有重要意义。

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