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FEM Modeling of the Temperature Influence on the Performance of SAW Sensors Operating at GigaHertz Frequency Range and at High Temperature Up to 500 °C

机译:高温高达500°C在千赫兹频率范围内运行的SAW传感器性能对温度影响的FEM模型

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摘要

In this work, we present a two-dimensional Finite Element Method (2D-FEM) model implemented on a commercial software, COMSOL Multiphysics, that is used to predict the high temperature behavior of surface acoustic wave sensors based on layered structures. The model was validated by using a comparative study between experimental and simulated results. Here, surface acoustic wave (SAW) sensors consist in one-port synchronous resonators, based on the Pt/AlN/Sapphire structure and operating in the 2.45-GHz Industrial, scientific and medical (ISM) band. Experimental characterizations were carried out using a specific probe station that can perform calibrated measurements from room temperature to 500 °C. In our model, we consider a pre-validated set of physical constants of AlN and Sapphire and we take into account the existence of propagation losses in the studied structure. Our results show a very good agreement between the simulation and experiments in the full range of investigated temperatures, and for all key parameters of the SAW sensor such as insertion losses, resonance frequency, electromechanical factor of the structure (k ) and quality factor (Q). Our study shows that k increases with the temperature, while Q decreases. The resonance frequency variation with temperature shows a good linearity, which is very useful for temperature sensing applications. The measured value of the temperature coefficient of frequency (TCF) is equal to −38.6 ppm/°C, which is consistent with the numerical predictions.
机译:在这项工作中,我们介绍了一种在商业软件,COMSOL Multiphysics上实现的二维有限元方法(2D-FEM)模型,用于预测基于层状结构的表面声波传感器的高温行为。通过使用实验和模拟结果之间的比较研究验证了该模型。这里,表面声波(锯)传感器在一个端口同步谐振器中,基于Pt / Aln / Sapphire结构,并在2.45GHz工业,科学和医疗(ISM)频段中运行。使用特定的探针站进行实验表征,其可以从室温到500℃的校准测量。在我们的模型中,我们考虑了ALN和蓝宝石的预先验证的物理常数,并考虑了所研究结构中的传播损失的存在。我们的结果表明,在诸如插入损耗,结构(k)和质量因数的锯传感器(如插入损耗,谐振频率,机电因子)和锯切频率,Q)和质量因数的所有关键参数之间表现出非常好的一致性)。我们的研究表明,K随温度增加,而Q降低。温度的共振频率变化显示出良好的线性度,这对于温度传感应用非常有用。温度频率系数(TCF)的测量值等于-38.6ppm /°C,这与数值预测一致。

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