Cheng Kang-Jie, Wang Ang, Ma Yu-Xuan, Tian Ye, Wang Russell, Liu Yun-Feng
College of Mechanical Engineering, Zhejiang University of Technology, 288 Liuhe Rd, Hangzhou, 310023, China.
Zhejiang Key Laboratory of High-Precision and Efficiency Hybrid Processing Technology and Equipment, Zhejiang University of Technology, Hangzhou, 310023, China.
Clin Oral Investig. 2025 Aug 7;29(9):399. doi: 10.1007/s00784-025-06486-z.
Clear orthodontic appliances without metal brackets are highly favored by orthodontic patients due to their aesthetic appearance, easy to clean, and comfort. This pilot study aimed to investigate a new shape memory polyurethane (SMP) composite material for orthodontic applications.
Finite element (FE) analysis was used to evaluate the mechanical performance of the composite material, which consists of polydl-lactide and hydroxyapatite (PDLLA/HA) model based on viscoelasticity and phase transition theories. Experimental characterization included determination of glass transition temperature (T), tensile properties, and creep behaviors. A customized UMAT subroutine was developed for Abaqus to simulate the thermodynamic process of shape memory effect based on the experimental data. Orthodontic forces generated by aligners fabricated from the composite were evaluated under simulated intraoral conditions.
The results showed a progressive decline in T of the SMP samples following immersion in water, with T values decreasing to 45, 37, and 35 ℃ after 5, 10, and 15 days, respectively. When displacing teeth 0.1, 0.2, and 0.3 mm facially using this aligner, the initial orthodontic forces recorded were approximately 0.16, 0.17, and 0.35 N, respectively, achieving 85.3% agreement with the FE simulation results.
PDLLA/HA composite exhibits an appropriate and stable shape recovery force under simulated oral conditions, indicating its potential suitability for application in orthodontic treatment.
Incorporating FE analysis enables the prediction of orthodontic forces exerted by clear aligners under various malocclusion conditions, thereby optimizing orthodontic treatment plans in clinical practice.
无金属托槽的隐形正畸矫治器因其美观、易清洁和舒适等特点,深受正畸患者青睐。本初步研究旨在探究一种用于正畸的新型形状记忆聚氨酯(SMP)复合材料。
采用有限元(FE)分析评估该复合材料的力学性能,该复合材料由基于粘弹性和相变理论的聚消旋乳酸和羟基磷灰石(PDLLA/HA)模型组成。实验表征包括玻璃化转变温度(T)的测定、拉伸性能和蠕变行为。基于实验数据,为Abaqus开发了定制的UMAT子程序,以模拟形状记忆效应的热力学过程。在模拟口腔条件下评估由该复合材料制成的矫治器产生的正畸力。
结果显示,SMP样品在水中浸泡后T逐渐下降,分别在5、10和15天后T值降至45、37和35℃。使用该矫治器使牙齿向面部移动0.1、0.2和0.3mm时,记录的初始正畸力分别约为0.16、0.17和0.35N,与FE模拟结果的一致性达到85.3%。
PDLLA/HA复合材料在模拟口腔条件下表现出合适且稳定的形状恢复力,表明其在正畸治疗中的潜在适用性。
纳入FE分析能够预测隐形矫治器在各种错牙合畸形条件下施加的正畸力,从而在临床实践中优化正畸治疗方案。