Qian Wei, Qian Chunqi
Department of Electrical and Computer Engineering, Michigan State University, East Lansing, MI, 48824, USA.
Department of Radiology, Michigan State University, East Lansing, MI, 48824, USA.
IEEE Trans Instrum Meas. 2020 Apr;69(4):1690-1697. doi: 10.1109/tim.2019.2916242. Epub 2019 May 13.
It is of both fundamental importance and practical value to measure the frequency of an LC resonator beyond the near-field region, especially when the resonator is used as a standalone capacitive sensor embedded inside a closed environment. To improve the coupling efficiency between the resonator and the external sniffer loop, we propose a novel method to integrate the LC resonator with a wirelessly-powered parametric resonator whose oscillation signal can be remotely identified in a noisy background. By measuring the minimum power level that is required for oscillation at different pumping frequencies, the resonator can be indirectly characterized by the frequency response curve. Starting from the basic principle of parametric oscillation, we will predict the measurable extremities in the frequency-dependent power curve under various circumstances that are classified based on the relative ratio between the lower and higher resonance frequencies. Our analytical models are validated by on-bench measurements performed on several parametric resonators with different circuit topologies. Their ability for remote characterization will make parametric resonators useful in structural health sensors or biomedical implants.
在近场区域之外测量LC谐振器的频率具有至关重要的基础意义和实用价值,特别是当谐振器用作嵌入封闭环境中的独立电容式传感器时。为了提高谐振器与外部探测环之间的耦合效率,我们提出了一种将LC谐振器与无线供电的参量谐振器集成的新方法,其振荡信号可以在嘈杂背景中远程识别。通过测量不同泵浦频率下振荡所需的最小功率水平,谐振器可以通过频率响应曲线间接表征。从参量振荡的基本原理出发,我们将预测在基于较低和较高谐振频率的相对比率分类的各种情况下,频率相关功率曲线中的可测量极值。我们的分析模型通过对具有不同电路拓扑的几个参量谐振器进行的实验台测量得到验证。它们的远程表征能力将使参量谐振器在结构健康传感器或生物医学植入物中发挥作用。