Guo Fang, Huang Shuo, Hu Min, Yang Chuncheng, Li Dichen, Liu Changkui
Department of Oral and Maxillofacial Surgery, School of Stomatology, Xi'an Medical University, Xi'an, Shaanxi 710021, P.R. China.
Department of Oral and Maxillofacial Surgery, General Hospital of PLA, Beijing 100853, P.R. China.
Exp Ther Med. 2021 Apr;21(4):348. doi: 10.3892/etm.2021.9779. Epub 2021 Feb 11.
The present study aimed to evaluate the biomechanical behavior of a custom 3D-printed polyetheretherketone (PEEK) condylar prosthesis using finite element analysis and mechanical testing. The Mimics software was used to create a 3D model of the mandible, which was then imported into Geomagic Studio software to perform osteotomy of the lesion area. A customized PEEK condyle prosthesis was then designed and the finite element model of the PEEK condyle prosthesis, mandible and fixation screw was established. The maximum stress of the prosthesis and screws, as well as stress and strain of the cortical and cancellous bones in the intercuspal position, incisal clench, left unilateral molar clench and right unilateral molar clench was analyzed. The biomechanical properties of the prosthesis were studied using two models with different lesion ranges. To simulate the actual clinical situation, a special fixture was designed. The compression performance was tested at 1 mm/min for the condyle prosthesis, prepared by fused deposition modeling (FDM). The results of a finite element analysis suggested that the maximum stress of the condyle was 10.733 MPa and the maximum stress of the screw was 9.7075 MPa; both were far less than the yield strength of the material. The maximum force that the two designed prostheses were able to withstand was 3,814.7±442.6 N (Model A) and 4,245.7±348.3 N (Model B). Overall, the customized PEEK condyle prostheses prepared by FDM exhibited a uniform stress distribution and good mechanical properties, providing a theoretical basis for PEEK as a reconstruction material for repairing the temporomandibular joint.
本研究旨在通过有限元分析和力学测试,评估定制的3D打印聚醚醚酮(PEEK)髁突假体的生物力学行为。使用Mimics软件创建下颌骨的3D模型,然后将其导入Geomagic Studio软件以对病变区域进行截骨术。接着设计定制的PEEK髁突假体,并建立PEEK髁突假体、下颌骨和固定螺钉的有限元模型。分析了假体和螺钉的最大应力,以及在牙尖交错位、切牙紧咬、左侧单侧磨牙紧咬和右侧单侧磨牙紧咬时皮质骨和松质骨的应力和应变。使用两个具有不同病变范围的模型研究了假体的生物力学性能。为模拟实际临床情况,设计了一种特殊的固定装置。对通过熔融沉积建模(FDM)制备的髁突假体以1mm/min的速度进行压缩性能测试。有限元分析结果表明,髁突的最大应力为10.733MPa,螺钉的最大应力为9.7075MPa;两者均远低于材料的屈服强度。两种设计的假体能够承受的最大力分别为3814.7±442.6N(模型A)和4245.7±348.3N(模型B)。总体而言,通过FDM制备的定制PEEK髁突假体表现出均匀的应力分布和良好的力学性能,为PEEK作为修复颞下颌关节的重建材料提供了理论依据。