钛和聚芳醚酮微型螺钉在不同插入角度下的生物力学性能比较:有限元分析

Q2 Dentistry
I. Ardani, Intan Vallentien Dwi Hariati, Alexander Patera Nugraha, I. Narmada, Achmad Syaifudin, Ida Bagus Agastya Perkasa, Guruh Putra Gunung, Shailesh Deshmukh, Rozita Hassan
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引用次数: 0

摘要

只有微型螺钉[临时固定装置(TAD)]才能在正畸治疗期间提供绝对的固定。钛(Ti)是制作微型螺钉的基本材料,但它有许多缺点。聚芳醚醚酮(PEEK)在微型螺钉的生产中可能具有各种优势。有限元分析(FEA)是计算复杂结构的应力、应变和加载力的一种有效而可靠的方法,而且更省时省力。 利用有限元分析研究钛和聚醚醚酮作为微型螺钉生物材料的生物力学性能。 本研究采用有限元分析进行三维(3D)模拟。首先,使用钛基底材料和聚醚醚酮(尺寸为 1.4 毫米 × 6 毫米)进行三维微型螺钉建模,并进行三维关节间隙骨建模。通过模拟插入角度(30°、60° 和 90°)并施加 200 克的加载力进行了模拟。然后使用有限元分析确定了微型螺钉的生物力学性能。 随着插入角度的增大,骨上的张力减小,TADs 上的应力增大,骨变形减小。与由钛和 PEEK 制成的 TAD 相比,仅由 PEEK 制成的 TAD 比由钛制成的 TAD 造成的骨应力更大。据观察,上颌的变形大于下颌。 与钛相比,PEEK 对骨骼的应力更大,因此,正如有限元分析所证实的那样,PEEK 可作为制造 TAD 的替代生物材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparison of biomechanical performance of titanium and polyaryletheretherketone miniscrews at different insertion angles: A finite element analysis
Only miniscrews [temporary anchoring devices, (TADs)] can provide absolute anchorage during orthodontic treatment. Titanium (Ti) is a fundamental material used in the production of miniscrews, but it has many disadvantages. Polyaryletheretherketone (PEEK) may have various benefits in the production of miniscrews. Finite element analysis (FEA) is a valid and reliable method for calculating stress, strain, and loading forces on complex structures and can be more time- and cost-efficient. To investigate the biomechanical performance of Ti and PEEK as miniscrew biomaterials employing FEA. This study is a 3-D (3D) simulation with FEA. First, 3D miniscrew modeling is done using Ti base material and PEEK (1.4 mm × 6 mm size), as well as 3D inter-radicular space bone modeling. The simulation was performed by modeling the insertion angles (30°, 60°, and 90°) and applying a 200-gram loading force. The biomechanical performance of the miniscrew was then determined using FEA. As the angle of insertion increases, the tension on the bone decreases, the stress on the TADs increases, and the bone deformation decreases. Compared to TADs made of Ti and PEEK, TADs made of PEEK alone cause more bone stress than TADs made of Ti. The distortion in the maxilla is observed to be larger than in the mandibular. PEEK has greater stress on the bones than Ti and may be prospected as an alternative biomaterial for TAD fabrication, as documented in the FEA.
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来源期刊
Journal of Orthodontic Science
Journal of Orthodontic Science Dentistry-Orthodontics
CiteScore
0.90
自引率
0.00%
发文量
46
审稿时长
19 weeks
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