A wireless multiparameter cryogenic monitoring method using passive backscatter sensors

IF 5.4 3区 材料科学 Q2 CHEMISTRY, PHYSICAL
Ziqi Zhao, Michitaka Yamamoto, Seiichi Takamatsu, Toshihiro Itoh
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引用次数: 0

Abstract

In this paper, we proposed the first wireless multiparameter monitoring method for cryogenic environments (−196 ℃). Present-day cryogenic industries implement a large array of wired sensors to monitor key parameters in fabrication processes. The wirings for a large sensor array greatly complicate the monitoring system. We presented the first wireless multiparameter monitoring method for cryogenic environments by making two efforts. First, a novel wireless passive vibration and pressure sensor is developed. We transfer vibrations and pressures to a relative displacement between a magnet and a tunnel magnetoresistor (TMR). This affects the magnetic field at the TMR and changes the TMR’s resistance. By integrating the TMR on a backscattering antenna, the antenna’s wireless return loss is modulated by both vibrations and pressures. We proposed a decoupling method for simultaneously monitoring vibration and pressure by a single sensor. Second, we demonstrated and evaluated the first wireless multiparameter cryogenic monitoring system. A wireless passive temperature sensor is developed by integrating a resistance temperature detector (RTD) on a backscattering antenna. The developed vibration and pressure sensor and temperature sensor are tuned to separate frequency bands, embedded in cryogenic environments, and calibrated in situ. Vibrations, pressures, and temperatures in cryogenic environments are synchronously obtained by our wireless cryogenic monitoring system, with an accuracy of 80∼90 %. This research provides a wireless option in large-scale automated cryogenic monitoring, thus it is desirable in implementing the Internet of Things in cryogenic industries.

利用无源反向散射传感器的无线多参数低温监测方法
在本文中,我们首次提出了用于低温环境(-196 ℃)的无线多参数监测方法。当今的低温工业采用大量有线传感器阵列来监测制造过程中的关键参数。大型传感器阵列的布线大大增加了监测系统的复杂性。我们通过两方面的努力,首次提出了用于低温环境的无线多参数监测方法。首先,我们开发了一种新型无线无源振动和压力传感器。我们将振动和压力传递到磁体和隧道磁阻(TMR)之间的相对位移。这会影响隧道磁阻的磁场,并改变隧道磁阻的电阻。通过在反向散射天线上集成 TMR,天线的无线回波损耗会受到振动和压力的调制。我们提出了一种解耦方法,可通过单个传感器同时监测振动和压力。其次,我们展示并评估了首个无线多参数低温监测系统。通过在反向散射天线上集成电阻温度探测器(RTD),我们开发出了无线无源温度传感器。所开发的振动和压力传感器以及温度传感器被调谐到不同的频段,嵌入到低温环境中,并在现场进行校准。我们的无线低温监测系统可同步获取低温环境中的振动、压力和温度,精确度可达 80∼90%。这项研究为大规模自动化低温监测提供了一种无线选择,因此在低温工业中实施物联网是可取的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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