Electromagnetic Rotary Encoders based on Split Ring Resonators (SRR) Loaded Microstrip Lines

J. Mata-Contreras, C. Herrojo, F. Martín
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引用次数: 13

Abstract

This paper presents electromagnetic rotary encoders (used for angular velocity sensing) implemented in microstrip technology for the first time. The stator is a SRR-loaded microstrip line in bandpass configuration fed by a harmonic (single tone) signal. The rotor is a disc of dielectric material with a circular chain of SRRs., identical to the one of the stator, etched at the edge. By positioning the stator and the rotor with the SRR of the stator at short distance and face-to-face to the rotor chain, rotor motion modulates the amplitude of the feeding (carrier) signal at the output port of the line. This is due to the electromagnetic coupling between the SRR of the line and the SRRs of the chain, which in turn modulates the transmission coefficient of the line (stator) at the frequency of the carrier signal. Consequently, the envelope of the output (AM modulated) signal, which can be obtained by means of an envelope detector, exhibits pulses, and from the time distance between adjacent pulses, the angular velocity can be inferred. The main advantages of the proposed system, as compared to previous rotary encoders based on coplanar waveguide (CPW) technology, are backside isolation, necessary in certain applications, and, most important, major robustness against variations in the stator-to-rotor distance (air gap), caused by misalignments, rotor precession or rotor vibration.
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基于分裂环谐振器(SRR)加载微带线的电磁旋转编码器
本文首次提出了采用微带技术实现的电磁旋转编码器(用于角速度传感)。定子是一条负载srr的微带线,带通结构由谐波(单音)信号馈送。转子是一个圆盘的介电材料与一个圆形链的srr。和定子上的一模一样,边缘有蚀刻。通过使定子和转子的SRR与转子链近距离面对面定位,转子运动调制线路输出端口馈电(载波)信号的幅值。这是由于线路的SRR和链的SRR之间的电磁耦合,这反过来又在载波信号的频率上调制线路(定子)的传输系数。因此,可以通过包络检测器获得的输出(调幅调制)信号的包络线显示脉冲,并且从相邻脉冲之间的时间距离可以推断出角速度。与以前基于共面波导(CPW)技术的旋转编码器相比,所提出的系统的主要优点是背面隔离,在某些应用中是必要的,最重要的是,对定子到转子距离(气隙)的变化具有主要的鲁棒性,这些变化是由失调,转子进动或转子振动引起的。
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