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首页> 外文期刊>Clinical oral investigations >Evaluation of a new optical measuring system for experiments on fractured human mandibles: A biomechanical feasibility study in maxillofacial surgery
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Evaluation of a new optical measuring system for experiments on fractured human mandibles: A biomechanical feasibility study in maxillofacial surgery

机译:用于人类下颌骨骨折实验的新型光学测量系统的评估:颌面外科手术的生物力学可行性研究

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摘要

Objectives: Biomechanical loading on human mandibles was performed and a new optical measurement device was introduced for the quantification of interfragmentary movement in fractured mandibles stabilized with different osteosynthesis systems. Materials and methods: Comparison tests were performed with monocortical non-locking double plates and bicortical single locking plate. For the experiments on a specialized test bench, 18 ex vivo fractured human cadaveric mandibles were tested. Interfragmentary motion was detected in all three spatial dimensions using the optical measurement device PONTOS?. The movement was investigated over increasing incisal force and one summarized parameter was investigated. Results: For the maximal tested load of 300 N m, the resultant interfragmentary movements in the two investigated groups were 2. 96 ± 1. 85° for the fixation with two conventional miniplates (six hole, profile 1. 0 mm) and 4. 53 ± 2. 49° for single bicortically fixed locking plates (four hole, profile 1. 5 mm). For both plate systems, we used the 2. 0 mm screw system. Conclusions: The test bench in combination with the new optical device PONTOS? can test the primary stability of osteosynthesis. We offer a solution to the problem of rate of twist of the mandible as well as typical rotational problem in recent measurements. Further, the method can be used for development of new osteosynthesis products. Clinical relevance: Pseudoarthrosis formation is a common problem based on unsatisfying fixation of the fracture gap. The here presented combination of mechanical tests and numerical simulations can provide support for an improved treatment of fractured mandibles.
机译:目的:对人的下颌骨进行生物力学加载,并引入了一种新的光学测量装置,用于量化通过不同的骨合成系统稳定的下颌骨的碎片间运动。材料和方法:使用单皮质非锁定双板和双皮质单锁定板进行比较测试。对于在专用测试台上进行的实验,测试了18个离体破裂的人体尸体下颌骨。使用光学测量设备PONTOS?在所有三个空间维度上检测到了片段间运动。在增加切牙力的情况下研究了运动,并研究了一个汇总参数。结果:对于最大测试负载300 N m,在两个研究组中产生的片段间运动为2. 96±1. 85°,用于用两个常规微型板(六个孔,轮廓为1. 0 mm)和4。 53±2。49°,用于单侧面固定的锁定板(四个孔,轮廓1. 5 mm)。对于两个板系统,我们都使用了2. 0 mm螺丝系统。结论:测试台与新型光学设备PONTOS组合在一起?可以测试骨合成的主要稳定性。我们为下颌骨的扭曲率问题以及最近的测量中的典型旋转问题提供了解决方案。此外,该方法可用于开发新的骨合成产品。临床意义:假性关节炎的形成是基于骨折间隙固定不满意的常见问题。此处介绍的机械测试和数值模拟相结合可以为改进下颌骨骨折的治疗提供支持。

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