Machado Alexandre Coelho, Soares Paulo Vinícius, Soares Christian de Almeida, Reis Bruno Rodrigues, Zeola Lívia Fávaro, Raposo Luís Henrique Araújo
Department of Operative Dentistry and Dental Materials, Technical School of Health, Federal University of Uberlândia. Uberlândia- Minas Gerais, Brazil.
Department Occlusion, Fixed Prosthodontics and Dental Materials, School of Dentistry, University of Uberlândia. Uberlândia - Minas Gerais, Brazil.
Braz Dent J. 2025 Aug 11;36:e246150. doi: 10.1590/0103-644020256150. eCollection 2025.
This study evaluated the influence of different occlusal loading and cyclic fatigue on the biomechanical behavior of sound maxillary premolars using three-dimensional (3D) finite element analysis (FE) and strain-gauge tests. The 3D models were submitted to two occlusal loading (150 N): axial load (AL) and oblique load (OL), applied at the inner ridges. Dynamic fatigue was simulated in post-processing and analyzed by life criterion. For the experimental laboratory test, 30 sound premolars with similar dimensions had two strain gauges positioned parallel to the long axis of enamel and dentin to record the strains under AL and OL loading, before and after mechanical fatigue. FE maximum principal criteria showed higher stress concentration in the cervical enamel and dentin for OL (67.26 MPa and 17.43 MPa, respectively) compared to AL (0.87 MPa and 0.02 MPa, respectively). The equivalent elastic strain criterion showed higher strain values in dentin for OL (1.77e-4). The FE fatigue simulation showed higher damage for enamel near the cementoenamel junction with OL, predicting a lifespan of less than 200,000 cycles. Strain-gauge analysis showed that OL loading and mechanical fatigue resulted in higher strains, both enamel (p<0.001) and dentin (p<0.001). Very strong (0.927) and weak (0.184) correlations were found between the number of cycles and strain magnitude for enamel (p<0.0001) and dentin (p=0.0374), respectively. Non-axial occlusal loading, combined with cyclic mechanical fatigue, promotes high stress and strain concentration in the cervical enamel and dentin of sound premolars, potentially causing more damage to dental structures.
本研究采用三维(3D)有限元分析(FE)和应变片测试,评估了不同咬合负荷和循环疲劳对健康上颌前磨牙生物力学行为的影响。3D模型承受两种咬合负荷(150 N):轴向负荷(AL)和斜向负荷(OL),施加于内嵴处。在后期处理中模拟动态疲劳,并通过寿命准则进行分析。对于实验室内测试,30颗尺寸相似的健康前磨牙在牙釉质和牙本质长轴平行方向放置两个应变片,以记录机械疲劳前后在AL和OL负荷下的应变。FE最大主应力准则显示,与AL(分别为0.87 MPa和0.02 MPa)相比,OL作用下牙颈部牙釉质和牙本质中的应力集中更高(分别为67.26 MPa和17.43 MPa)。等效应变准则显示,OL作用下牙本质中的应变值更高(1.77e - 4)。FE疲劳模拟显示,OL作用下靠近牙骨质牙釉质交界处的牙釉质损伤更大,预测寿命少于200,000次循环。应变片分析表明,OL负荷和机械疲劳导致牙釉质(p<0.001)和牙本质(p<0.001)中的应变更高。牙釉质(p<0.0001)和牙本质(p = 0.0374)的循环次数与应变大小之间分别发现了非常强的相关性(0.927)和弱相关性(0.184)。非轴向咬合负荷与循环机械疲劳相结合,会促进健康前磨牙牙颈部牙釉质和牙本质中的高应力和应变集中,可能对牙齿结构造成更多损伤。