Zhao Ziqi, Yamamoto Michitaka, Takamatsu Seiichi, Itoh Toshihiro
Department of Precision Engineering, Graduate School of Engineering, The University of Tokyo, Tokyo 113-8656, Japan.
Sensors (Basel). 2024 Jan 23;24(3):717. doi: 10.3390/s24030717.
In this study, we developed a novel wireless, passive pressure-sensing method functional at cryogenic temperatures (-196 °C). The currently used pressure sensors are inconvenient and complicated in cryogenic environments for their weak low-temperature tolerances and long wires for power supply and data transmission. We propose a novel pressure-sensing method for cryogenic applications by only using low-temperature-tolerant passive devices. By innovatively integrating a magnetoresistor (MR) on a backscattering antenna, the pressure inside a cryogenic environment is transferred to a wirelessly obtainable return loss. Wireless passive measurement is thus achieved using a backscattering method. In the measurement, the pressure causes a relative displacement between the MR and a magnet. The MR's resistance changes with the varied magnetic field, thus modulating the antenna's return loss. The experimental results indicate that our fabricated sensor successfully identified different pressures, with high sensitivities of 4.3 dB/MPa at room temperature (24 °C) and 1.3 dB/MPa at cryogenic temperature (-196 °C). Additionally, our method allows for simultaneous wireless readings of multi sensors via a single reading device by separating the frequency band of each sensor. Our method performs low-cost, simple, robust, passive, and wireless pressure measurement at -196 °C; thus, it is desirable for cryogenic applications.
在本研究中,我们开发了一种新型的无线无源压力传感方法,该方法在低温(-196°C)环境下仍能发挥作用。当前使用的压力传感器在低温环境中存在不便且结构复杂的问题,因为它们的低温耐受性较差,并且需要长长的电线来供电和进行数据传输。我们提出了一种仅使用耐低温无源器件的新型低温应用压力传感方法。通过创新性地将磁阻元件(MR)集成到背散射天线上,低温环境中的压力被转换为可通过无线方式获取的回波损耗。这样就利用背散射方法实现了无线无源测量。在测量过程中,压力会导致MR与磁体之间产生相对位移。MR的电阻会随着磁场变化而改变,从而调制天线的回波损耗。实验结果表明,我们制造的传感器成功识别了不同的压力,在室温(24°C)下灵敏度高达4.3 dB/MPa,在低温(-196°C)下为1.3 dB/MPa。此外,我们的方法通过分离每个传感器的频段,允许使用单个读取设备同时对多个传感器进行无线读数。我们的方法在-196°C下实现了低成本、简单、稳健、无源且无线的压力测量;因此,它适用于低温应用。