Maskay A, Hummels Donald M, Pereira Da Cunha M
IEEE Trans Ultrason Ferroelectr Freq Control. 2019 Jan;66(1):91-100. doi: 10.1109/TUFFC.2018.2875588. Epub 2018 Oct 11.
Surface-acoustic-wave resonators (SAWRs) have found widespread usage in various modern consumer radio frequency (RF) communications electronics, such as cellular phones, wireless devices, GPS devices, frequency control, and sensing applications. External mechanical vibrations modify an SAWR relative dimensions and the substrate's elastic properties, which alter the device's acoustic wave propagation velocity and ultimately cause the SAWR RF response to change. Detecting vibrations are desirable for dynamic strain or vibration sensing applications, whereas external mechanical excitations can result in spurious signals which compromise SAW-based filters and oscillators used in RF communication, frequency control, and sensors targeting measurands such as temperature and pressure. Therefore, understanding and characterizing the SAWR's response to external vibration is relevant for establishing device operation, and assisting in device design and packaging to either mitigate the impact of vibrations for RF communications and frequency control or enhance the SAWR response for sensor applications. This paper presents an in-phase and quadrature demodulation technique (I-Q technique) to detect, quantify, and analyze the effect of externally induced mechanical vibrations on an SAWR. The I-Q technique disclosed reveals that the mechanical vibrations cause both frequency and amplitude modulations of the SAWR RF response, which can be separated by this technique. Furthermore, the procedure also allows the direct measurement of vibration frequencies and vibration magnitude. The technique, measured results, and analysis established here provide a better understanding of the impact of external mechanical vibrations on an SAWR response, which is important in contemporary communications, frequency control, and sensing applications.
表面声波谐振器(SAWR)已在各种现代消费类射频(RF)通信电子产品中得到广泛应用,如手机、无线设备、全球定位系统(GPS)设备、频率控制及传感应用等。外部机械振动会改变SAWR的相对尺寸以及衬底的弹性特性,进而改变器件的声波传播速度,并最终导致SAWR的射频响应发生变化。对于动态应变或振动传感应用而言,检测振动是很有必要的,然而外部机械激励可能会产生杂散信号,这会损害用于射频通信、频率控制以及针对温度和压力等被测量的传感器中的基于表面声波的滤波器和振荡器。因此,了解并表征SAWR对外部振动的响应对于确定器件的工作情况、协助器件设计和封装以减轻振动对射频通信和频率控制的影响,或者增强SAWR对传感器应用的响应而言至关重要。本文提出了一种同相和正交解调技术(I-Q技术),用于检测、量化和分析外部机械振动对SAWR的影响。所公开的I-Q技术表明,机械振动会导致SAWR射频响应的频率和幅度调制,而该技术可以将它们分离。此外,该方法还能直接测量振动频率和振动幅度。此处建立的技术、测量结果及分析有助于更好地理解外部机械振动对SAWR响应的影响,这在当代通信、频率控制和传感应用中具有重要意义。