Qi Bowen, Cui Juan, Zheng Yongqiu, Zhang Bingrui, Chu Chengqun, Yan Xiaolong, Gao Xiang, Xue Chenyang
The Key Laboratory of Instrumentation Science & Dynamic Measurement Ministry of Education, North University of China, Taiyuan 030051, China.
Department of mechanics, Jinzhong University, Jinzhong 030619, China.
Micromachines (Basel). 2023 Dec 26;15(1):48. doi: 10.3390/mi15010048.
The condition monitoring (CM) of sealed metal compartments (SMCs) is an urgently required restructure. Ultrasound penetrates SMCs to power and communicate with built-in sensors, enabling the CM of SMCs. However, current ultrasonic wireless power transfer and data communication (UWPTADC) systems are large and complex, and limited by the efficiency of energy transfer and data reliability. In this paper, an optimized design of a high-efficiency wireless passive monitoring system using UWPTADC techniques is proposed for SMC. The circuit model of the system is developed and analyzed to achieve an optimal design for efficient wireless power transfer and effective data communication coupling. A test system was constructed using a steel wall of 11 mm thickness as a validation object. At the ultrasonic carrier frequency of 1.045 MHz, the system has an energy transfer efficiency of 60%, and a communication rate of 50 kbps. In addition, the system realizes temperature and humidity monitoring inside a 13 mm thick cylindrical SMC, simulating the process of ultrasonic CM of an actual engine compartment. The system provides a wiring-free and battery-free solution for CM in SMCs, advancing CM in aerospace, marine and other fields.
密封金属舱(SMC)的状态监测(CM)是一项迫切需要的重构工作。超声波可穿透SMC为内置传感器供电并与之通信,从而实现SMC的状态监测。然而,当前的超声无线功率传输与数据通信(UWPTADC)系统体积庞大且复杂,并且受到能量传输效率和数据可靠性的限制。本文针对SMC提出了一种采用UWPTADC技术的高效无线无源监测系统的优化设计。开发并分析了该系统的电路模型,以实现高效无线功率传输和有效数据通信耦合的优化设计。使用厚度为11毫米的钢壁作为验证对象构建了一个测试系统。在1.045兆赫兹的超声载波频率下,该系统的能量传输效率为60%,通信速率为50千比特每秒。此外,该系统实现了对厚度为13毫米的圆柱形SMC内部温度和湿度的监测,模拟了实际发动机舱的超声状态监测过程。该系统为SMC的状态监测提供了一种无需布线和无需电池的解决方案,推动了航空航天、船舶等领域的状态监测发展。