Lin Chun-Li, Chang Yen-Hsiang, Lin Yi-Feng
Department of Mechanical Engineering, Chang Gung University, Kwei-Shan, Tao-Yuan, Taiwan.
J Dent. 2008 Aug;36(8):626-36. doi: 10.1016/j.jdent.2008.04.013. Epub 2008 Jun 11.
The aim of this study was to determine the relative contribution of changes in restorative material, cavity dimensions, adhesive layer adaptation, and load conditions on the biomechanical response of an adhesive Class II MOD restoration during oral temperature changes.
A validated finite-element (FE) model was used to perform the structural-thermal coupled field analyses and the Taguchi method was employed to identify the significance of each design factor in controlling the stress.
The results indicated that thermal expansion in restorative material amplified the thermal effect and dominated the tooth stress value (69%) at high temperatures. The percentage contributions of the load conditions, cavity depth, and cement modulus increased the effect on tooth stress values 46%, 32%, and 14%, respectively, when the tooth temperature was returned to 37 degrees C. Load conditions were also the main factor influencing the resin cement stress values, irrespective of temperature changes. Increased stress values occurred with composite resin, lateral force, a deeper cavity, and a higher luting cement modulus.
The combined use of FE analysis and the Taguchi method efficiently identified that a deeper cavity might increase the risk of a restored tooth fracture, as well as a ceramic inlay with a lower thermal expansion, attaining a proper occlusal adjustment to reduce the lateral occlusal force and low modulus luting material application to obtain a better force-transmission mechanism are recommended.
本研究的目的是确定修复材料的变化、窝洞尺寸、粘结层适应性和负荷条件对Ⅱ类MOD粘结修复体在口腔温度变化期间生物力学响应的相对贡献。
使用经过验证的有限元(FE)模型进行结构-热耦合场分析,并采用田口方法确定每个设计因素在控制应力方面的重要性。
结果表明,修复材料中的热膨胀放大了热效应,并在高温下主导了牙齿应力值(69%)。当牙齿温度恢复到37℃时,负荷条件、窝洞深度和粘结剂模量的贡献百分比分别使牙齿应力值的影响增加了46%、32%和14%。负荷条件也是影响树脂粘结剂应力值的主要因素,与温度变化无关。复合树脂、侧向力、较深的窝洞和较高的粘结水门汀模量会导致应力值增加。
有限元分析和田口方法的联合使用有效地确定了较深的窝洞可能会增加修复牙齿骨折的风险,以及热膨胀较低的陶瓷嵌体,建议进行适当的咬合调整以减少侧向咬合力,并应用低模量粘结材料以获得更好的力传递机制。