The Effect of Ferrule/Crown Ratio and Post Length on the Applied Stress and Strain Distribution to the Endodontically Treated Maxillary Central Teeth: A Finite Element Analysis.

Q3 Dentistry Frontiers in Dentistry Pub Date : 2023-01-01 DOI:10.18502/fid.v20i16.12686
Ramin Mosharaf, Majid Abolhasani, Amir Hossein Fathi, Ali Rajabi
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引用次数: 1

Abstract

Objectives: One of the most common methods used for the reconstruction of endodontically treated teeth is post and core and crown. Various factors such as the remaining tissue above the cutting margin (ferrule) affect the fracture resistance of teeth restored with post and core and crown. This study aimed to investigate the effect of ferrule/crown ratio (FCR) on the strength of maxillary anterior central teeth using finite element analysis. Materials and Methods: A 3D scan of a central incisor was obtained, and the data were transferred to Mimics software. Then, a 3D model of the tooth was designed. Next, 300N load was applied at a 135° angle to the tooth model. Force was applied to the model both horizontally and vertically. Ferrule height was considered to be 5%, 10%, 15%, 20%, and 25% in the palatal surface and 50% in the buccal surface. The length of post in the model was 11, 13, and 15mm. Results: By increasing the FCR, stress and strain distribution increased in the dental model and decreased in the post itself. As the horizontal angle of load application increased, the level of stress and strain created in the dental model increased as well. The closer the force application site to the incisal area, the higher the stress and strain would be. Conclusion: Maximum stress was inversely correlated with FCR and post length. In ratios of 20% and higher, insignificant changes occurred in stress and strain patterns in the dental model.

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卡箍/冠比和桩长对根管治疗上颌中牙应力应变分布的影响
目的:根管治疗后重建牙体最常用的方法之一是桩核冠。切割缘(卡箍)上方的残余组织等多种因素影响桩核冠修复牙齿的抗断裂能力。本研究采用有限元分析的方法,探讨卡圈/冠比(FCR)对上颌前中牙强度的影响。材料和方法:获得中切牙的三维扫描,并将数据传输到Mimics软件中。然后,设计了牙齿的三维模型。接下来,在牙齿模型上以135°角施加300N的载荷。在水平方向和垂直方向上对模型施加力。卡箍高度分别在腭面为5%、10%、15%、20%和25%,在颊面为50%。模型中桩的长度分别为11、13、15mm。结果:随着FCR的增加,牙模型内的应力应变分布增大,而牙桩内的应力应变分布减小。随着水平加载角度的增加,牙体模型中产生的应力和应变水平也随之增加。受力部位越靠近切牙区,应力应变越高。结论:最大应力与FCR和桩长呈负相关。在比例为20%或更高时,牙模型的应力和应变模式发生了微不足道的变化。
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来源期刊
Frontiers in Dentistry
Frontiers in Dentistry Dentistry-General Dentistry
CiteScore
1.00
自引率
0.00%
发文量
34
审稿时长
12 weeks
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