无套圈上颌中央切口的应力分布:桩核系统的有限元分析

Akihiro Tagahara, C. Masaki, T. Nodai, T. Munemasa, T. Mukaibo, Y. Kondo, R. Hosokawa
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引用次数: 1

摘要

目的:本研究的目的是通过三维有限元分析和三点弯曲试验,确定无套圈中切牙的最佳桩核材料。方法:采用铸造金属柱芯(MP)、单用复合树脂芯、直型纤维增强柱复合树脂芯(FSR)、锥形纤维增强柱组合树脂芯、纯钛柱组合树脂心(TSR)和锥形钛柱复合树脂心(TTR)六种模型进行应力分析。以与牙齿长轴成45°的角度向舌侧表面施加100-N的载荷。用有限元分析软件计算了最大von Mises应力分布。对复合树脂、直纤维增强柱、直钛柱、直纤维加强柱和复合树脂以及直钛柱和复合材料各5个样品进行三点弯曲试验,然后进行方差分析和Tukey多重比较试验。结果:TTR上的应力分布最佳。在TSR(693MPa)和TTR(556MPa)中,桩颈侧的最大von Mises应力最大。在MP(110 MPa)中,桩顶侧的最大应力最大。牙本质周围的最大应力在MP(203 MPa)和TTR(250 MPa)最低。MP的间隙距离最小(0.09mm),FSR的间隙距离最大(0.26mm)。平均最大三点弯曲力在复合树脂中最低(26.9N/mm),在钛柱和复合树脂中最高(97.1N/mm)。钛桩的抗弯强度始终高于纤维增强桩(p<0.01)。结论:这些结果表明,锥形钛桩和树脂组合具有最佳的应力分布和高抗弯强度,表明这种组合可以最有效地预防没有套圈的前牙的牙根或牙柱骨折。
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Stress Distribution in Maxillary Central Incisors without Ferrules: A Finite Element Analysis of Post and Core Systems
Purpose: The purpose of this study was to identify optimal post and core materials for central incisors without ferrules using three-dimensional finite element analysis and three-point bending tests. Methods: Stress analyses were performed with six models: cast metal post and core (MP), composite resin core alone, straight fiber-reinforced post-composite resin core (FSR), tapered fiber-reinforced post-composite resin core, straight titanium post-composite resin core (TSR), and tapered titanium post-composite resin core (TTR). A 100-N load was applied to the lingual surface at a 45° angle to the long axis of the tooth. Maximum von Mises stress distributions were calculated with finite element analysis software. Five samples each of composite resin, straight fiber-reinforced post, straight titanium post, straight fiber-reinforced post and composite resin, and straight titanium post and composite resin were subjected to three-point bending tests, followed by analysis of variance and Tukey’s multiple comparison test. Results: Stress distribution was optimal on TTR. Maximum von Mises stress on the cervical side of the post was greatest in TSR (693 MPa) and TTR (556 MPa). Maximum stress on the apical side of the post was greatest in MP (110 MPa). Maximum stress in surrounding dentin was lowest in MP (203 MPa) and TTR (250 MPa). Gap distance was smallest in MP (0.09 mm) and largest in FSR (0.26 mm). Mean maximum three-point bending force was lowest in composite resin (26.9 N/mm) and highest in titanium post and composite resin (97.1 N/mm). Titanium post bending strength was consistently greater than that of the fiber-reinforced post (p < 0.01). Conclusion: These results revealed optimal stress distribution and high bending strength with the tapered titanium post and resin combination, suggesting that this combination can most effectively prevent root or post fracture in an anterior tooth without a ferrule.
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