Lematre Michael, Ul Remy, Gratton Michel, Tran-Huu-Hue Louis-Pascal, Lethiecq Marc
IEEE Trans Ultrason Ferroelectr Freq Control. 2020 Aug;67(8):1715-1724. doi: 10.1109/TUFFC.2020.2979395. Epub 2020 Mar 9.
Barium titanate (BaTiO) is increasingly studied to replace lead-based piezoelectric materials, such as those which belong to the lead zirconate titanate (PZT) family, due to lead toxicity. In many applications, such as Tonpilz transducers, piezoelectric materials undergo mechanical stress simulation of which is important to control and predict electroacoustic effects. Thus, this article deals with a fully tensorial model that allows to simulate the behaviors of electrical displacements and elastic strains under mechanical stress. Simulated curves are compared with experimental ones obtained for BaTiO samples. It can be verified that the hysteretic curves of strains are well predicted for unpoled samples as well as for poled ones. The order of values and global behavior of the theoretical electrical displacement are also verified, even if a less precise agreement is observed. The optimized values of the physical parameters, such as d , are discussed, and improvements both of the model and the optimization procedure are finally proposed in order to better predict the mechanical behavior of BaTiO.
由于铅的毒性,人们越来越多地研究钛酸钡(BaTiO)以取代铅基压电材料,例如锆钛酸铅(PZT)家族的材料。在许多应用中,如Tonpilz换能器,压电材料会承受机械应力,对其进行模拟对于控制和预测电声效应很重要。因此,本文探讨了一个全张量模型,该模型能够模拟机械应力下电位移和弹性应变的行为。将模拟曲线与BaTiO样品获得的实验曲线进行了比较。可以验证,对于未极化样品和极化样品,应变的滞后曲线都能得到很好的预测。即使观察到的一致性不太精确,但理论电位移的值的顺序和整体行为也得到了验证。讨论了物理参数(如d)的优化值,最后提出了对模型和优化程序的改进,以便更好地预测BaTiO的力学行为。