Materials Science and Engineering, Technische Universität Berlin, Berlin, Germany.
Materials Science and Engineering, Technische Universität Berlin, Berlin, Germany.
J Mech Behav Biomed Mater. 2024 Jul;155:106554. doi: 10.1016/j.jmbbm.2024.106554. Epub 2024 Apr 18.
This study utilized non-linear finite element (FE) models to explore polymerization shrinkage and its impact on marginal integrity in molars following both selective caries removal (SCR) and conventional treatment. Specifically, we performed 2D in silico simulations to study residual stresses post-resin polymerization shrinkage and their influence on the marginal integrity of various restoration types.
Initially, FE models were developed based on a cohesive zone framework to simulate crack propagation along the bonded interfaces between restoration and tooth structure in SCR-treated molars with class I and class II restorations. The modeled resin composite restorations first underwent polymerization shrinkage and were then subjected to various occlusal loading conditions. Stress magnitudes and distributions were identified to evaluate the margin integrity and predict the mechanism and location of interfacial failure.
The FE models computed polymerization shrinkage stresses of less than 1 MPa, exerting a minor influence on the composite/tooth interface. Occlusal loading, however, significantly impacted the load-bearing capacity of the composite/tooth (c/t) interface, potentially jeopardizing the restoration integrity. Especially under bi-axial occlusal loading, interfacial debonding occurred in the vertical cavity walls of the class I restorations, increasing the risk of failure. Notably, SCR-treated teeth exhibited better margin integrity than restored teeth after complete caries removal (NCR). These findings provide valuable insights into the mechanical behavior of SCR-treated teeth under different loading conditions and highlight the importance of considering the load scenarios that may lead to failure at the c/t interface. By investigating the factors influencing crack initiation and delamination, this novel research contributes to the optimization of restorative treatments and aids in the design of more resilient dental restorations.
本研究利用非线性有限元(FE)模型探讨了选择性龋去腐(SCR)和常规治疗后磨牙聚合收缩及其对边缘完整性的影响。具体来说,我们进行了 2D 数值模拟,研究了树脂聚合收缩后的残余应力及其对各种修复类型边缘完整性的影响。
首先,基于内聚区模型建立 FE 模型,以模拟 SCR 处理后 I 类和 II 类修复体的磨牙中沿着修复体与牙体结构之间的粘结界面的裂纹扩展。模拟的树脂复合材料修复体首先经历聚合收缩,然后承受各种咬合加载条件。确定应力大小和分布以评估边缘完整性并预测界面失效的机制和位置。
FE 模型计算的聚合收缩应力小于 1 MPa,对复合/牙体界面的影响较小。然而,咬合加载显著影响复合/牙体(c/t)界面的承载能力,可能危及修复体的完整性。特别是在双轴咬合加载下,I 类修复体的垂直腔壁发生界面脱粘,增加了失效的风险。值得注意的是,SCR 处理后的牙齿在完全去腐(NCR)后比修复后的牙齿具有更好的边缘完整性。这些发现提供了有关不同加载条件下 SCR 处理后的牙齿机械行为的宝贵见解,并强调了考虑可能导致 c/t 界面失效的加载情况的重要性。通过研究影响裂纹起始和分层的因素,这项新的研究有助于优化修复治疗,并有助于设计更具弹性的牙科修复体。