Winters Shane, Pereira da Cunha Mauricio
IEEE Trans Ultrason Ferroelectr Freq Control. 2025 Sep;72(9):1293-1301. doi: 10.1109/TUFFC.2025.3593192.
Dynamic strain and temperature are critical physical quantities to be monitored in industrial environments to assure safe operational conditions and to diagnose for required maintenance. Dynamic strain and temperature feedback signals are particularly important for equipment and structural health monitoring (SHM) applications in aerospace, automotive, power generation, and advanced manufacturing. Challenges presented by dynamic strain sensing include sensor adhesion, packaging, stability, and temperature cross-sensitivity. Surface acoustic wave resonator (SAWR) sensors have demonstrated the ability to function under a variety of industrial/harsh environmental conditions for monitoring quantities, such as temperature, strain, vibration, gases, and neutron flux. SAWR sensors have the added benefits of being compact in size and capable of wireless and battery-free operation. In further exploring the versatility of SAWR devices and sensors, this article reports on the utilization of a single SAWR device that can simultaneously measure temperature and dynamic strain using a power spectral technique. Since the SAWR sensitivity to dynamic strain is also dependent on temperature, using the inherent temperature sensing capability of the SAWR itself offers an excellent method for selecting the appropriate strain sensor calibration curve. Once the temperature is known and the appropriate strain calibration curve is selected, real-time tracking of the strain magnitude can then be obtained from the relative amplitude of the SAWR dynamic strain spectral components to the main resonant peak. To demonstrate this method, SAWRs were initially calibrated for temperature and dynamic strain from room temperature (RT) to 190 °C and subjected to 500 Hz dynamic strain test signals ranging from 11 to $26~\mu \varepsilon $ . The accuracy of the SAWR-measured temperature remains within 2 °C of a reference thermocouple for temperatures greater than 100 °C, resulting in an overall strain discrepancy of less than 4% when compared to a commercial strain gauge.
动态应变和温度是工业环境中需要监测的关键物理量,以确保安全运行条件并诊断所需的维护工作。动态应变和温度反馈信号对于航空航天、汽车、发电和先进制造等领域的设备和结构健康监测(SHM)应用尤为重要。动态应变传感面临的挑战包括传感器粘附、封装、稳定性和温度交叉敏感性。表面声波谐振器(SAWR)传感器已证明能够在各种工业/恶劣环境条件下运行,用于监测温度、应变、振动、气体和中子通量等物理量。SAWR传感器具有尺寸紧凑、能够无线和无电池运行的额外优势。在进一步探索SAWR器件和传感器的多功能性时,本文报道了一种利用单个SAWR器件通过功率谱技术同时测量温度和动态应变的方法。由于SAWR对动态应变的灵敏度也取决于温度,利用SAWR本身固有的温度传感能力提供了一种选择合适应变传感器校准曲线的极佳方法。一旦知道温度并选择了合适的应变校准曲线,就可以从SAWR动态应变谱分量相对于主谐振峰的相对幅度中实时跟踪应变大小。为了演示这种方法,首先对SAWR在从室温(RT)到190°C的温度和动态应变下进行校准,并施加范围从11到26 με的500 Hz动态应变测试信号。对于温度高于100°C的情况,SAWR测量的温度精度保持在参考热电偶的2°C以内,与商用应变计相比,整体应变差异小于4%。