Barile Claudia, Cianci Claudia, Paramsamy Kannan Vimalathithan, Pappalettera Giovanni, Pappalettere Carmine, Casavola Caterina, Laurenziello Michele, Ciavarella Domenico
Dipartimento di Meccanica, Matematica e Management, Politecnico di Bari, Bari, Italy.
Dipartimento di Medicina Sperimentale e Clinica, Università di Foggia, Foggia, Italy.
Sci Rep. 2024 Sep 14;14(1):21467. doi: 10.1038/s41598-024-72553-2.
Passive non-destructive evaluation tools such as acoustic emission (AE) testing and acousto-ultrasonics (AU) approach present a complex problem in damage localisation in complex and nonhomogeneous geometries. A novel AU-guided AE frequency interpretation approach is proposed in this research work which aims at overcoming this limitation. For the experimental evaluation, the damage sources from a geometrically complex clear dental aligners are tested under cyclic compression load and their origins are evaluated. Despite the rapid worldwide diffusion of the clear aligners, their mechanical behaviour is poorly investigated. In this work, the frequency characteristics of the artificially simulated stress wave, generated from different dental positions of the clear aligners, are studied using the AU approach. These frequency characteristics are then used to analyse the AE signals generated by these aligners when subjected to cyclic compressive loading. In addition, the time domain characteristics of the AE signals are studied using their Time of Arrival (ToA). The Akaike Information Criterion (AIC) is used to estimate the ToA. These frequency and time domain characteristics of the AE signals are used to estimate the local damage origin in the clear dental aligners. This will help in identifying localised damage sources during the usage period of the aligners. Experimental results revealed significant damages in the left maxillary premolar and right maxillary third molar of the aligners.
诸如声发射(AE)测试和声学超声(AU)方法等被动无损评估工具,在复杂且非均匀几何形状的损伤定位方面存在复杂问题。本研究工作提出了一种新颖的AU引导的AE频率解释方法,旨在克服这一局限性。为了进行实验评估,对几何形状复杂的透明牙齿矫正器在循环压缩载荷下的损伤源进行了测试,并对其起源进行了评估。尽管透明矫正器在全球迅速普及,但其力学行为却鲜有研究。在这项工作中,使用AU方法研究了从透明矫正器不同牙齿位置产生的人工模拟应力波的频率特性。然后利用这些频率特性分析这些矫正器在承受循环压缩载荷时产生的AE信号。此外,利用声发射信号的到达时间(ToA)研究其时域特性。采用赤池信息准则(AIC)来估计ToA。AE信号的这些频率和时域特性用于估计透明牙齿矫正器中的局部损伤起源。这将有助于在矫正器使用期间识别局部损伤源。实验结果显示矫正器的左上颌前磨牙和右上颌第三磨牙有明显损伤。