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一种用于恶劣环境应用的无源无线温度传感器。

A Passive Wireless Temperature Sensor for Harsh Environment Applications.

作者信息

Wang Ya, Jia Yi, Chen Qiushui, Wang Yanyun

机构信息

Department of Mechanical Engineering, University of Puerto Rico - Mayagüez Campus, Mayagüez, Puerto Rico, 00681-9045, USA.

Boston Applied Technologies, Inc., 6F Gill Street, Woburn, MA 01801, USA.

出版信息

Sensors (Basel). 2008 Dec 8;8(12):7982-7995. doi: 10.3390/s8127982.

Abstract

High temperature sensors capable of operating in harsh environments are needed in order to prevent disasters caused by structural or system functional failures due to increasing temperatures. Most existing temperature sensors do not satisfy the needs because they require either physical contact or a battery power supply for signal communication, and furthermore, neither of them can withstand high temperatures nor rotating applications. This paper presents a novel passive wireless temperature sensor, suitable for working in harsh environments for high temperature rotating component monitoring. A completely passive LC resonant telemetry scheme, relying on a frequency variation output, which has been applied successfully in pressure, humidity and chemical measurement, is integrated with a unique high-k temperature sensitive ceramic material, in order to measure the temperatures without contacts, active elements, or power supplies within the sensor. In this paper, the high temperature sensor design and performance analysis are conducted based on mechanical and electrical modeling, in order to maximize the sensing distance, the Q factor and the sensitivity. In the end, the sensor prototype is fabricated and calibrated successfully up to 235ºC, so that the concept of temperature sensing through passive wireless communication is proved.

摘要

为防止因温度升高导致结构或系统功能故障而引发灾难,需要能够在恶劣环境中运行的高温传感器。大多数现有的温度传感器无法满足需求,因为它们进行信号通信时需要物理接触或电池供电,而且它们既无法承受高温,也不适用于旋转应用。本文提出了一种新型无源无线温度传感器,适用于在恶劣环境中对高温旋转部件进行监测。一种完全无源的LC谐振遥测方案,依靠频率变化输出,已成功应用于压力、湿度和化学测量,该方案与一种独特的高k温度敏感陶瓷材料相结合,以便在无接触、无有源元件或无电源的情况下在传感器内测量温度。本文基于机械和电气建模进行高温传感器设计和性能分析,以最大化传感距离、品质因数和灵敏度。最后,成功制造并校准了高达235ºC的传感器原型,从而证明了通过无源无线通信进行温度传感的概念。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/036d/3791002/d913d60da97d/sensors-08-07982f1.jpg

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