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Biomechanical Analysis of the Zirconia and Graphene-based CAD-CAM Dental Bridges at Different Pontic Length: A Finite Element Analysis

机译:不同州长度的氧化锆和石墨烯的CAD-CAM牙科桥梁生物力学分析:有限元分析

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During masticatory loading, dental bridges are subjected to various forces that might generate deflections in the bridge framework. For this reason, designing long-span bridges require great care about flexions that happen during the function. This can be compensated could be compensated by increasing occluso-gingival height, using rigid materials, and enhancing resistance to deflection by modifying the abutments’ preparations. The current study hypothesied that the stress, deflection, strain, and deformation of the fixed partial dentures are guided by the three-dimensional configurations of the pontic areas, and all other parameters could be mutually changed with different influence on the overall outcome.Aim: The study aimed to evaluate the difference in the amount of stress, deflection, strain, and deformation on using different materials and configurations in the pontic and connector area of the dental bridge using the 3D Finite Element Analysis (FEA).Materials and Methods: An invitro virtual biomechanical analysis using 3D FEA method was conducted. 3D models were created from the Cone Beam Computed Tomography (CBCT) of a dentulous patient and two materials were selected for this study, Zirconia and enhanced graphene-based polymer. The study models were assembled into four groups as the following: Group I: 3-unit Zirconia fixed-fixed bridge; Group II: 3-unit Graphene fixed-fixed bridge; Group III: 4-unit Zirconia fixed-fixed bridge; Group IV: 4-unit Graphene fixed-fixed bridge. Using FEA software a 600 N load was applied and the resultant normal stress, deflection, maximum equivalent strain and total deformation data were monitored, collected and interpreted.Results: The findings of the current study showed higher values of normal stress, deflection, equivalent elastic strain, and total deformation in Graphene-based bridges (group II and IV) than the Zirconia-based bridges (group I and III). It should also be mentioned that normal stress, deflection, equivalent elastic strain, and total deformation showed higher values in the three-unit bridge (group I and II) than their corresponding 4-unit bridge groups (group III and IV).Conclusion: This biomechanical analysis confirmed that the stress concentration and deflection of the fixed bridge are influenced by material characteristics. However, configuration of the pontic area could influence the studied mechanical parameters regardless the length of the dental bridge.
机译:在咀嚼载荷期间,牙桥受到可能在桥梁框架中产生偏转的各种力。因此,设计长跨度桥梁需要很好地关心在功能期间发生的屈曲。这可以通过使用刚性材料增加堵塞高度,通过改变基台的制剂来增加闭塞式牙龈高度,并通过改变基台的制剂来补偿来补偿。目前的研究假设固定部分假设的应力,偏转,应变和变形由逻辑区域的三维配置引导,并且所有其他参数都可以在不同影响方面相互改变。目的:研究旨在评估使用3D有限元分析(FEA)在牙科桥梁的不同材料和配置在牙科桥梁的不同材料和配置中的压力,偏转,应变和变形量的差异。材料和方法:进行了使用3D FEA方法的邀请委员会虚拟生物力学分析。 3D模型是从锥形光束计算断层扫描(CBCT)的锥形射线扫描(CBCT),为该研究,氧化锆和增强的基于石墨烯的聚合物选择了两种材料。将研究模型组装成以下四组:I组:3单元氧化锆固定固定桥;第三组:3单位石墨烯固定固定桥;第三组:4单元氧化锆固定固定桥;第四组:4单元石墨烯固定固定桥。使用FEA软件应用600N负载,并监测,收集和解释所得到的正常应力,偏转,最大等效应变和总变形数据。结果:目前研究的结果显示出更高的正常压力值,偏转比基于氧化锆基桥(Ⅰ和III组)的石墨烯基桥(II和IV族和IV族)的总变形,等效弹性应变和总变形。还应提到的是,正常应力,偏转,等效弹性应变和总变形显示于三单元桥(II和II)的较高值,而不是它们对应的4单元桥组(III组和IV)。

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