评估单皮质和双皮质锚定植入体的初级稳定性。有限元分析

Matías Guelfi, David Fuks, María Constanza Ibáñez, Juan Carlos Ibáñez
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引用次数: 0

摘要

目的通过三维有限元模型分析将种植体固定在一个或两个皮质中的效果。材料和方法:使用有限元分析进行体外实验研究。第一组种植体仅锚定在咬合面的骨皮质中,而第二组种植体的顶点也锚定在鼻腔的皮质中,因此它们成为单皮质或双皮质锚定。通过模拟在基台水平施加 170 牛顿/厘米和 700 牛顿/厘米的 60 度倾斜力,使种植体在骨中产生微动。测量微动量。结果:当种植体为单冠锚定并承受 170 牛顿厘米的力时,所有种植体的微动量相似(平均 27.4 微米)。而在承受 700 牛顿/厘米的力时,所有情况下的微动都有所增加。(平均 113.49 微米)。当使用双皮质锚固时,所有种植体的微动都会减少,无论是施加 170 牛顿/厘米的力时(平均 8.58 微米)还是施加 700 牛顿/厘米的力时(平均 34.71 微米)。就长度而言,短种植体的微动较小。结论根据所获得的结果,双皮质锚定可以减少锥形种植体的微动,尤其是在承受副功能力和种植体长度较大的情况下,至少在通过有限元分析进行的三维模拟中,双皮质锚定可以确保微动水平更符合骨结合的要求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluation Of Primary Stability In Mono- And Bicortical Anchored Implants. A Finite Element Analysis
Objective: To analyze by means of a 3D finite element model the effect of anchoring dental implants in one or two cortical. Materials and Methods: An in vitro experimental investigation was performed using Finite Elements Analysis. Six conical implants of three different designs and different lengths were designed and placed in a 3D model of the anterior maxilla with type III bone, anchoring a first group of implants only in the occlusal cortical of the bone, while in a second group the apex of the implants was anchored in the cortex of the nasal passages too, so they become monocortical or bicortical anchored. Micromovements of the implants in the bone were generated by simulating a 60-degree inclined force applied at the abutment level with 170 Ncm and 700 Ncm. Amount of micromovements were measured. Results: Micromovements obtained when the implants were monocortical anchorage and subjected to forces of 170 Ncm, were similar for all the implants (average 27.4um). Whereas with forces of 700 Ncm, the micro-movements increased in all cases. (average 113.49 µm.) Micromovements decreased in all implants when bicortical anchorage was used, both when applying 170Ncm forces (average 8.58 µm) or applying 700Ncm forces (average 34.71µm). In relation to length, short implants showed less micromotion. Conclusion: According to the results obtained, bicortical anchoring reduces the micromotion of conical implants especially when they are subjected to parafunctional forces and in implants of greater length, ensuring levels of micromotion more compatible with osseointegration, at least in a three-dimensional simulation through FEA.
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