PSO法研究PZT传感器在液体中的谐振行为

M. Maroufi, M. Shamshirsaz
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引用次数: 3

摘要

谐振式压电激发毫米级悬臂梁(PEMC)在液位和密度传感等方面的应用引起了许多研究人员的兴趣。由于在这些应用中,PEMC部分浸没在液体中,因此需要一个合适的分析模型来预测这些器件的动态行为。在本工作中,设计并制作了一个用于液位传感的PEMC。建立了一个分析模型,并应用于该装置在不同尖端浸没深度下的性能评价。为了验证所提模型的有效性,将两种不同共振模式下尖端在水中浸泡深度为5 ~ 15 mm的实验结果与理论结果进行了比较。已观察到理论模型和实验模型之间有轻微的偏差。在建模中考虑了不确定参数和水动力修正系数,以证明误差的合理性。为了更好地估计浸没深度变化对水动力的影响,在理论建模中引入了修正系数。为了根据实验结果确定这些参数,采用粒子群优化(PSO)方法。应用该方法,理论结果与实验数据的偏差明显减小。结果表明,在不同浸水深度下,不确定参数对PEMC固有频移的影响可以忽略不计,相反,水动力修正系数对其影响较大。结果表明,为了改进部分浸入液体的电磁兼容谐振特性的建模,对于不同的浸入深度,需要通过插入水动力校正因子来适当地估计液体力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Resonant behavior study of PZT sensor in liquid using PSO method
Resonant Piezoelectric-excited Millimeter-sized Cantilevers (PEMC), has attracted many researchers' interests in the applications such as liquid level and density sensing. As in these applications, the PEMC are partially immersed in liquid, an appropriate analytical model is needed to predict the dynamic behavior of these devices. In this work, a PEMC has been designed and fabricated for liquid level sensing. An analytical model is developed and applied to evaluate the behavior of this device with respect to different tip immersion depths. To validate the proposed model, the theoretical results are compared with the experimental results for the tip immersion depths varying from 5 mm to 15 mm in water for two different resonant modes. A slight deviation between theoretical and experimental model have been observed. To justify the deviations, uncertain parameters and also hydrodynamic force's correction factor have been considered in modeling. This correction factor is introduced in theoretical modeling order to achieve a better estimation of the effect of immersion depth variation on the hydrodynamic force. To determine these parameters using experimental results, Particle Swarm Optimization (PSO) method is utilized. Applying this method, the deviation of theoretical results from experimental data is being significantly reduced. The results show that the uncertain parameters have negligible effect on the natural frequency shift of the PEMC in different immersion depths and on the contrary the hydrodynamic force's correction factor affects it drastically. It is concluded that to improve resonant behavior modeling of the PEMC partially immersed in liquid, for different immersion depths, an appropriate estimation of liquid force is required by insertion of hydrodynamic correction factor.
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