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A theoretical-experimental framework for the analysis of the dynamic response of a QEPAS tuning fork device immersed in a fluid medium

机译:用于分析Qepas调谐叉装置浸入流体介质中的动态响应的理论实验框架

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Quartz-enhanced photoacoustic spectroscopy (QEPAS) is a trace gas sensing technique that employs a designed high-quality factor quartz tuning fork (QTF) as acousto-electric transducer. The first in-plane skew-symmetric flexural mode of the QTF is excited when weak resonant sound waves are generated between the QTF prongs. Thus, the performance of a QEPAS sensor strongly depends on the resonance properties of the QTF, namely the determination of flexural eigenfrequencies and air damping loss.In this work, we present a mixed theoretical-experimental framework to study the dynamic response of a QTF while vibrating in a fluid environment. Due to the system linearity, the dynamic response of the resonator immersed in a fluid medium is obtained by employing a Boundary Element formulation based on an ad hoc calculated Green's function. In particular, the QTF is modelled as constituted by a pair of two Euler-Bernoulli cantilevers partially coupled by a distributed linear spring. As for the forces exerted by the fluid on QTF structure, the fluid inertia and viscosity as well as an additional diffusivity term, whose influence is crucial for the correct evaluation of the system response, have been taken into account. By corroborating the theoretical analysis with the experimental outcomes obtained by means of a vibro-acoustic setup, the fluid response coefficients and the dynamics of the QTF immersed in a fluid environment are fully determined.
机译:石英增强的光声光谱(QEPAS)是一种痕量气体传感技术,采用设计的高质量因子石英调谐叉(QTF)作为声电换能器。当在QTF叉之间产生弱共振声波时,QTF的第一面内偏斜对称弯曲模式是兴奋的。因此,QEPAS传感器的性能强烈取决于QTF的共振性质,即弯曲特征频道和空气阻尼损失的确定。在这项工作中,我们提出了一种混合的理论实验框架来研究QTF的动态响应在流体环境中振动。由于系统线性度,通过采用基于Ad Hoc计算的绿色功能的边界元件制定来获得浸入流体介质中的谐振器的动态响应。特别地,QTF由由分布式线性弹簧部分耦合的一对两个欧拉-Bernoulli悬臂构成建模。关于QTF结构上的流体施加的力,已经考虑了已经考虑了对系统响应的正确评估的影响,流体惯性和粘度以及额外的扩散术语,其影响对于正确评估系统响应的影响至关重要。通过通过通过驾驶方法获得的实验结果来证实理论分析,完全确定浸入流体环境中的QTF的流体响应系数和动力学。

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