Jakubinek Michael B, O'Neill Catherine, Felix Chris, Price Richard B, White Mary Anne
Department of Physics, Dalhousie University, Halifax, Nova Scotia, Canada B3H 3J5.
Dent Mater. 2008 Nov;24(11):1468-76. doi: 10.1016/j.dental.2008.03.012. Epub 2008 May 2.
Excessive heat produced during the curing of light-activated dental restorations may injure the dental pulp. The maximum temperature excursion at the pulp-dentin junction provides a means to assess the risk of thermal injury. In this investigation we develop and evaluate a model to simulate temperature increases during light-curing of dental restorations and use it to investigate the influence of several factors on the maximum temperature excursion along the pulp-dentin junction.
Finite element method modeling, using COMSOL 3.3a, was employed to simulate temperature distributions in a 2D, axisymmetric model tooth. The necessary parameters were determined from a combination of literature reports and our measurements of enthalpy of polymerization, heat capacity, density, thermal conductivity and reflectance for several dental composites. Results of the model were validated using in vitro experiments.
Comparisons with in vitro experiments indicate that the model provides a good approximation of the actual temperature increases. The intensity of the curing light, the curing time and the enthalpy of polymerization of the resin composite were the most important factors. The composite is a good insulator and the greatest risk occurs when using the light to cure the thin layer of bonding resin or in deep restorations that do not have a liner to act as a thermal barrier.
The results show the importance of considering temperature increases when developing curing protocols. Furthermore, we suggest methods to minimize the temperature increase and hence the risk of thermal injury. The physical properties measured for several commercial composites may be useful in other studies.
光固化牙科修复材料固化过程中产生的过多热量可能会损伤牙髓。牙髓-牙本质交界处的最大温度变化提供了一种评估热损伤风险的方法。在本研究中,我们开发并评估了一个模型,以模拟牙科修复材料光固化过程中的温度升高,并使用该模型研究几个因素对牙髓-牙本质交界处最大温度变化的影响。
采用有限元方法,利用COMSOL 3.3a软件,对二维轴对称模型牙的温度分布进行模拟。通过结合文献报道以及我们对几种牙科复合材料的聚合焓、热容、密度、热导率和反射率的测量,确定了必要的参数。利用体外实验对模型结果进行了验证。
与体外实验的比较表明,该模型能够很好地近似实际温度升高情况。固化光强度、固化时间和树脂复合材料的聚合焓是最重要的因素。复合材料是一种良好的绝缘体,在使用光固化粘结树脂薄层或在没有用作热屏障的衬层的深修复体中时,热损伤风险最大。
结果表明在制定固化方案时考虑温度升高的重要性。此外,我们提出了将温度升高降至最低从而降低热损伤风险的方法。对几种商用复合材料测量的物理性能可能在其他研究中有用。