Science BioTech Company, Daszyńskiego 31/13, 50-310 Wrocław, Poland; Private Dental Practice, Rzeszowska 2, 68-200 Żary, Poland.
Faculty of Mechanical Engineering, University of Zielona Góra, 65-516 Zielona Góra, Poland.
Injury. 2020 Jul;51(7):1527-1535. doi: 10.1016/j.injury.2020.03.057. Epub 2020 Apr 21.
The paper presents an innovative osteofixation system designed for bone fracture stabilization. Its special feature, which makes it different from other similar systems, is the possibility to precisely adjust the implant to the shape of the bone. Such a precise adjustment is particularly important in the case of multiple fractures, where proper stabilization is a condition for restoring bone geometry and thus obtaining the biomechanical function of a given segment of the body lost due to fracture. Based on the tested properties of the implant material, the presented system structure was verified for loading, stress, and share forces in multi-site fractures of the mandible. Numerical tests were performed for three different fracture models: unilateral double fracture of the body of mandible, unilateral double fracture of the body and the angle of mandible, and bilateral fracture of the mandible at the angle and body of the mandible. The results indicate that the proposed system may be used to stabilize broken bone fragments successfully, and the obtained stabilization would allow unrestricted use of the chewing function during bone healing and remodeling. The authors point out the advantages of the proposed implantation method thanks to which it is possible to obtain any shape of the implant and thus stabilize bone fragments in any case.
本文提出了一种创新的骨固定系统,用于骨折稳定。它的特点是能够精确地将植入物调整到骨骼的形状。这种精确的调整在多发性骨折的情况下尤为重要,因为适当的稳定是恢复骨骼几何形状的条件,从而获得由于骨折而丧失的身体某一特定部位的生物力学功能。基于植入物材料的测试性能,对下颌骨多部位骨折的加载、应力和分担力进行了所提出的系统结构的验证。对三种不同的骨折模型进行了数值试验:下颌体单侧双骨折、下颌体和下颌角单侧双骨折、下颌角和下颌体双侧骨折。结果表明,所提出的系统可成功稳定骨折的骨碎片,所获得的稳定可以在骨愈合和重塑过程中不受限制地使用咀嚼功能。作者指出了所提出的植入方法的优点,通过这种方法可以获得任何形状的植入物,从而在任何情况下都可以稳定骨碎片。