Department of Power Mechanical Engineering, Institute of Nano Engineering and MicroSystems, National Tsing Hua University, Hsinchu 30013, Taiwan.
Department of Mechanical Engineering, National Chung Cheng University, Chiayi 621301, Taiwan.
Sensors (Basel). 2022 Oct 2;22(19):7471. doi: 10.3390/s22197471.
In this study, a piezoelectric micromachined ultrasonic transducer (PMUT) is integrated with a microliter-sized volume-tunable Helmholtz resonator. The passive Helmholtz resonator is constructed using an SU8 photolithography-defined square opening plate as the neck portion, a 3D-printed hollow structure with a threaded insert nut, and a precision set screw to form the volume-controllable cavity of the Helmholtz resonator. The fabricated piezoelectric films acted as ultrasonic actuators attached to the surface of the neck SU8 plate. Experimental results show that the sound pressure level (SPL) and operation bandwidth could be effectively tuned, and a 200% SPL increase and twofold bandwidth enhancement are achieved when setting the cavity length to 0.75 mm compared with the open-cavity case. A modified Helmholtz resonator model is proposed to explain the experimental results. The adjusting factors of the effective mass and viscous damper are created to modify the existing parameters in the conventional Helmholtz resonator model. The relationship between the adjusting factors and cavity length can be described well using a two-term power series curve. This modified Helmholtz resonator model not only provides insight into this active-type Helmholtz resonator operation but also provides a useful estimation for its optimal design and fabrication.
在这项研究中,将压电微机械超声换能器 (PMUT) 与微升级可调谐亥姆霍兹谐振器集成在一起。无源亥姆霍兹谐振器使用 SU8 光刻定义的方形开口板作为颈部部分、具有螺纹插入螺母的 3D 打印空心结构以及精密设置螺丝来形成亥姆霍兹谐振器的可调节体积腔。制造的压电薄膜充当附着在颈部 SU8 板表面的超声致动器。实验结果表明,声压级 (SPL) 和工作带宽可以有效调节,与开腔情况相比,当腔长设置为 0.75mm 时,SPL 可提高 200%,带宽可提高两倍。提出了一种改进的亥姆霍兹谐振器模型来解释实验结果。创建了有效质量和粘性阻尼器的调整因子来修改传统亥姆霍兹谐振器模型中的现有参数。调整因子与腔长之间的关系可以很好地用两项幂级数曲线来描述。该改进的亥姆霍兹谐振器模型不仅提供了对这种主动型亥姆霍兹谐振器工作的深入了解,而且还为其优化设计和制造提供了有用的估计。