Mechanical evaluation of different fixation materials used for mandibular condyle fractures: Finite element analysis

Eroi Cansiz, Suzan Cansel Dogru, Y. Arslan
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引用次数: 1

Abstract

In this study, comparative evaluation of the mechanical properties of resorbable and titanium miniplates, which are used for the fixation of the mandibular condyle fractures, was carried out using finite element analysis (FEA). To do so, first two dimensional computed tomography images of mandibles recorded from ten adult patients were converted into three-dimensional solid body models. Then these models were transferred to the finite element software. In the finite element stage of the study, a condyle fracture was created onto the mandible and double-titanium and double-resorbable miniplates were separately fixed to the mandible surface such that the fractured sites to be firmly attached. Stress distribution over the plates and interfragmentary displacements between adjacent surfaces, which stem from the mastication force applying to the mandible, were calculated using FEA. It was observed from the results that maximum stresses occurred in the titanium miniplates were significantly higher than those obtained from resorbable miniplates (p<;0.01). Furthermore, higher maximum displacements between fractured surfaces were observed in the case of resorbable plate systems than thatofthe titanium system (p>0.01). Maximum stress and displacement values obtained from both titanium and resorbable plate systems were under clinically and mechanically acceptable limits. According to the results, resorbable plates showed a similar reliability of mechnanical strength with titanium miniplates.
不同固定材料用于下颌髁突骨折的力学评价:有限元分析
在本研究中,采用有限元分析(FEA)对用于下颌髁突骨折固定的可吸收钢板和钛微型钢板的力学性能进行了比较评估。为了做到这一点,首先从10名成年患者身上记录的下颌二维计算机断层图像被转换成三维实体模型。然后将这些模型转换到有限元软件中。在研究的有限元阶段,在下颌骨上制造髁突骨折,将双钛和双可吸收微型钢板分别固定在下颌骨表面,使骨折部位牢固附着。利用有限元法计算了下颌骨咀嚼力作用下板上的应力分布和相邻表面之间的碎片间位移。结果表明,微型钛板的最大应力显著高于可吸收微型钛板(p0.01)。从钛板和可吸收板系统获得的最大应力和位移值均在临床和机械上可接受的范围内。结果表明,可吸收板具有与微型钛板相似的机械强度可靠性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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