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Wirelessly Powered Signal Regeneration to Improve the Remote Detectability of an Inductive Pressure Sensor

机译:无线供电的信号再生可改善感应压力传感器的远程检测能力

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Chronic pressure monitoring by wireless and batteryless sensors are desirable for maintaining proper function of biomedical implants. Compared to capacitive, piezoelectric, and piezoresistive sensors, inductive sensors are less susceptible to capacitance fluctuation in the environment, and they can convert loading pressure into inductance changes for wireless detection as resonance frequency shifts. However, inductive sensors normally require the use of ferromagnetic materials for frequency tuning; their frequency responses are harder to detect over larger distance separations. Without using ferromagnetic materials, we will utilize two coaxially coupled resonators whose mutual inductance (and thus resonance frequency) is modulated by the thickness of an elastic substrate that can deform under pressure loading. By modifying one of the coupled resonators into a parametric resonator that contains nonlinear capacitors and an extra conductor across its virtual grounds, the sensor can utilize wireless pumping power to enlarge backscattered signals whose peak response frequency is linearly correlated with the loading pressure. This linear relation is observable beyond the near-field region, even though the distance separation between the sensor and the measurement loop is ten-fold the sensors circuit dimension. This novel concept of wirelessly powered signal regeneration will improve the remote detectability and operation flexibility of various physiological sensors.
机译:通过无线和无电池传感器进行慢性压力监测对于维持生物医学植入物的正常功能是理想的。与电容式,压电式和压阻式传感器相比,电感式传感器在环境中不易受到电容波动的影响,它们可以将加载压力转换为电感变化,以便在谐振频率变化时进行无线检测。但是,电感式传感器通常需要使用铁磁材料进行频率调谐。它们的频率响应很难在较大的距离间隔内检测到。在不使用铁磁材料的情况下,我们将使用两个同轴耦合的谐振器,它们的互感(因此谐振频率)由弹性基底的厚度调节,该弹性基底的厚度在压力作用下会变形。通过将耦合谐振器之一修改为包含非线性电容器和跨其虚拟地线的额外导体的参数谐振器,该传感器可以利用无线泵浦功率来放大反向散射信号,其峰值响应频率与负载压力线性相关。即使传感器和测量回路之间的距离是传感器电路尺寸的十倍,该线性关系也可以在近场区域以外观察到。无线供电信号再生的这一新颖概念将改善各种生理传感器的远程检测能力和操作灵活性。

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