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首页> 外文期刊>Sensors Journal, IEEE >Microwave Encoders for Chipless RFID and Angular Velocity Sensors Based on S-Shaped Split Ring Resonators
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Microwave Encoders for Chipless RFID and Angular Velocity Sensors Based on S-Shaped Split Ring Resonators

机译:基于S形开口环形谐振器的无芯片RFID和角速度传感器的微波编码器

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In this paper, it is demonstrated that a chain of S-shaped split ring resonators (S-SRRs) etched on a dielectric substrate can modulate the amplitude of a carrier signal injected to a transmission line (a coplanar waveguide (CPW). To this end, the S-SRR chain must be transversally displaced above the CPW, in close proximity to it. By this means, the transmission coefficient of the line is modulated by the time-varying electromagnetic (inductive) coupling between the line and the S-SRRs of the chain, related to their relative motion. Based on this principle, two different applications can be envisaged: 1) angular velocity sensors and 2) near-field chipless radiofrequency identification (chipless-RFID) tags. In the former application, the S-SRR chain is circularly shaped and the S-SRRs are distributed uniformly along the perimeter of the rotor, at equidistant positions. By this means, the amplitude-modulated signal generated by rotor motion exhibits envelope peaks, whose distance is related to the angular velocity of the rotor. In the use of S-SRRs as microwave encoders for chipless RFID tags, not all the S-SRRs of the chain are present. Their presence or absence at the predefined (equidistant) positions is related to the logic state “1” or “0.” Tag reading is sequential, and it is achieved through tag motion (at constant velocity) above the reader, a CPW transmission line fed by a carrier signal. The ID code is contained in the envelope function of the resulting amplitude modulated signal, which can be obtained by means of an envelope detector. With the proposed approach, a high number of pulses in angular velocity sensors can be achieved (with direct impact on angle resolution and sensitivity to changes in instantaneous rotation speed). Moreover, chipless-RFID tags with unprecedented number of bits can be obtained. The proposed angular velocity sensors can be useful in space environments, whereas the chipless-RFID systems based on the proposed tags are useful in applications where reading range can be sacrificed in favor of high data capacity (large number of bits), e.g., security and authentication.
机译:在本文中,证明了在介电基片上蚀刻的S形开口环谐振器(S-SRR)链可以调制注入传输线(共面波导(CPW))的载波信号的幅度。最后,S-SRR链必须在CPW上方横向移动,并且必须紧邻CPW,这样,线路的传输系数就受到线路和S-之间的时变电磁(感应)耦合的调制链的SRR与它们的相对运动有关,基于此原理,可以设想两种不同的应用:1)角速度传感器和2)近场无芯片射频识别(chipless-RFID)标签。在前一种应用中,S-SRR链是圆形的,并且S-SRR沿着转子的周长均匀分布在等距位置。通过这种方式,由转子运动产生的调幅信号表现出包络峰,其距离与转子的角速度有关。在将S-SRR用作无芯片RFID标签的微波编码器时,并非链中的所有S-SRR都存在。它们在预定(相等)位置的存在或不存在与逻辑状态“ 1”或“ 0”有关。标签读取是顺序的,这是通过标签在读取器上方(以恒定速度)在由载波信号馈入的CPW传输线上方运动来实现的。 ID码包含在所得幅度调制信号的包络函数中,可以通过包络检波器获得。通过提出的方法,可以在角速度传感器中获得大量脉冲(直接影响角度分辨率和对瞬时转速变化的敏感性)。此外,可以获得具有空前数量的位数的无芯片RFID标签。所提出的角速度传感器可以在空间环境中使用,而基于所提出的标签的无芯片RFID系统在可以牺牲读取范围以支持高数据容量(大量位数)(例如安全性和可靠性)的应用中非常有用。身份验证。

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