Reconfigurable resonators for chipless RFID applications
10211498 ยท 2019-02-19
Assignee
Inventors
Cpc classification
G06K7/10356
PHYSICS
International classification
G06K19/077
PHYSICS
G01S13/75
PHYSICS
G06K7/10
PHYSICS
Abstract
The reconfigurable resonators for chipless RFID applications provide spiral resonators for a multiple resonator passive RFID transponder tag. Each spiral resonator includes a U-shaped frame of conductive material and has a plurality (K1) of parallel adjusting or shorting elements disposed between the legs of the U-shaped frame. Each resonator has one leg coupled to a transmission line adapted for connection between a receiving antenna and a transmitting antenna (in some embodiments, a single antenna may be used for both receiving and transmitting), and one of the adjusting or shorting elements may be selectively connected to the opposing leg of the frame to configure the resonator to resonate at one of (K1) different resonant frequencies (K frequencies if none of the elements are connected) by a short metal jumper strip to change the length of the spiral resonator.
Claims
1. Reconfigurable resonators for chipless RFID applications, comprising a resonator circuit having: a substrate; a plurality of microstrip resonators disposed on the substrate, each of the resonators including: a U-shaped spiral resonator frame having opposed parallel legs; and a plurality of parallel shorting elements extending between and spaced apart from the opposed parallel legs of the frame; and a transmission line extending parallel to one of the opposed parallel legs of the frame of each of the resonators, the transmission line being spaced from the frame leg a distance permitting coupling of microwave signals between the transmission line and each of the resonators, the transmission line having opposing ends, each of the ends being adapted for connection to a corresponding antenna for reception and transmission of an interrogation signal to and from an RFID reader in order to form a chipless passive RFID tag; wherein each of the resonators is configured to resonate in a separate and distinct frequency range from the other resonators forming a stopband filter having a resonant frequency within the separate and distinct frequency range; and wherein each of the resonators is adapted for reconfiguration of the stopband filter's resonant frequency by operation without a jumper or by installation of a conductive jumper between one of the shorting elements and the leg of the U-shaped resonator frame opposite the leg coupled to the transmission line.
2. The reconfigurable resonators according to claim 1, wherein the substrate comprises a dielectric material and said resonators and said transmission line comprise conductive metal strips disposed on the dielectric material.
3. The reconfigurable resonators according to claim 2, wherein said dielectric material comprises a printed circuit board.
4. The reconfigurable resonators according to claim 1, wherein each said resonator encodes multiple bits of an RFID code.
5. The reconfigurable resonators according to claim 1, wherein each said resonator is capable of encoding multiple bits of an RFID code using a single frequency selected from a number of possible frequencies equal to the number of shorting elements plus one.
6. The reconfigurable resonators according to claim 1, wherein said resonator circuit is capable of encoding an RFID code using a number of possible frequencies equal to the number of resonators multiplied by the number of shorting elements per resonator plus one.
7. The reconfigurable resonators according to claim 1, wherein the substrate comprises a nonconductive material and said resonators and said transmission line comprise conductive ink printed on the nonconductive material.
8. The reconfigurable resonators according to claim 1, wherein at least one of said resonators further comprises a conductive jumper connecting one of said shorting elements to the leg of the U-shaped resonator frame opposite the leg coupled to the transmission line.
9. The reconfigurable resonators according to claim 1, wherein said conductive jumper comprises a metal strip.
10. The reconfigurable resonators according to claim 1, wherein said conductive jumper comprises conductive ink.
11. A passive RFID transponder tag, comprising the reconfigurable resonators according to claim 1 and at least one antenna connected to the opposite ends of the transmission line.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(11) Similar reference characters denote corresponding features consistently throughout the attached drawings.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(12) The reconfigurable resonators for chipless RFID applications provide spiral resonators for a multiple resonator passive RFID transponder tag. Each spiral resonator includes a U-shaped frame of conductive material and has a plurality (K1) of parallel adjusting or shorting elements disposed between the legs of the U-shaped frame. Each resonator has one leg coupled to a transmission line adapted for connection between a receiving antenna and a transmitting antenna (in some embodiments, a single antenna may be used for both receiving and transmitting), and one of the adjusting or shorting elements may be selectively connected to the opposing leg of the frame to configure the resonator to resonate at one of (K1) different resonant frequencies (K frequencies if none of the elements are connected) by a short metal jumper strip to change the length of the spiral resonator.
(13) When an RFID reader broadcasts an interrogation signal, it is received by the receiving antenna and modulated at the transmission line by coupling to the resonators at different frequencies (referred to as a spectral signature), and then reflected back to the RFID reader through the transmitting antenna. The spiral resonators act as stopband (or bandstop) filters, attenuating the amplitude and causing jumps in the phase of backscatter or scattering parameters of the interrogation signal at the resonant frequency of the resonator. Such attenuation and/or phase jumps may be easily detected in the reflected signal transmitted by the RFID tag reader. Thus, amplitude attenuation or phase ripple may be interpreted as a logic 0 by the reader at the resonant frequency, while its absence may be interpreted as a logic 1. Each resonator is designed to operate within a different range of frequencies. Each resonator may encode bits of information, the number of bits depending on the number of states, K. If there are K1 adjusting or shorting elements and N resonators, then there are K.sup.N possible codes for encoding the tag. Thus, a single resonator circuit can be used for multiple applications by configuring the K1 adjusting or shorting elements of the N resonators, which is more economical than current chipless RFID tag designs.
(14) The present resonator circuit may provide for a compact chipless radio frequency identification (RFID) tag when coupled to a receiving antenna and a transmitting antenna (in some embodiments, a single antenna may be used for both receiving and transmitting). The resonator circuit comprises N resonators, and each resonator has (K1) arms (adjusting or shorting elements). For each resonator, K resonance frequencies are possible. Therefore, the tag can be reconfigured for K.sup.N codes and KN possible frequencies. The RFID reader for the chipless tags needs to read only N frequencies for each code.
(15) The reference to spiral means that the resonator curls around in a generally spiral pattern, although the present resonators include only the outer loop of the spiral. The present resonators have a spiral formed from straight segments. However, straight or curved segments can be used. The resonator has a plurality of conductive adjusting or shorting elements positioned within a U-shaped frame, and connection of the adjusting or shorting elements with the frame completes the spiral. In the case of a resonator with K resonance frequencies, (K1) elements are positioned in order to provide K states.
(16) The description conductive refers to the conductivity at a radio frequency at which resonance is desired. In a non-limiting example, this is the same as electric conductivity, although it is contemplated that the structure of the resonator may be such that conductivity is assured at the desired resonant frequency, but not necessarily at all frequencies or as DC conductivity. Therefore, while a metallic strip and metal elements may be described in the examples, the use of a metallic material is given by way of non-limiting example, and any suitable conductive material can be used. It is possible to make the strip out of any suitable radioconductive material.
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(18) For example, if N=4 and K=10, the disclosed structure provides 10000 codes. By contrast, a conventional bi-state resonator structure provides 16 codes for 4 resonators.
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(20) Any of these elements, E.sub.1 to E.sub.9 or arms, can be connected to the coupled line by a small metallic strip or other conductive jumper. One element of these arms, E.sub.1 to E.sub.9, connected to the coupled line produces a resonant frequency selected from f.sub.1 to f.sub.9, respectively. If none of the elements is connected, the resonator resonates at frequency f.sub.10, which could be considered to be a base frequency for that resonator. The tag has a plurality of resonators, each of the resonators being configured for a distinct frequency range, thereby allowing ordered detection of the resonation frequencies of each resonator.
(21) Table 1 shows the dimensions of the exemplary resonator of
(22) TABLE-US-00001 TABLE 1 Dimensions of exemplary resonator Physical value Parameter Parameter description (mm) L Length of the disclosed tag 28.5 W Width of the disclosed tag 15.35 L.sub.l Length of the spiral resonator 18.5 W.sub.l Width of the spiral resonator 7.7 W.sub.r Width of each element 1.05 Ws Width of the coupled line 1 W.sub.f Feeder width 2.45 Gap Gap between resonator and 0.2 microstrip feed line d.sub.x Separation between spiral 5 resonator and port d.sub.s Separation between two arms 0.7 of the resonator
(23) TABLE-US-00002 TABLE 2 Possible resonant frequencies Element connected to frame Identifier Frequency E.sub.1 f.sub.1 2.356 E.sub.2 f.sub.2 2.371 E.sub.3 f.sub.3 2.393 E.sub.4 f.sub.4 2.421 E.sub.5 f.sub.5 2.452 E.sub.6 f.sub.6 2.489 E.sub.7 f.sub.7 2.526 E.sub.8 f.sub.8 2.563 E.sub.9 f.sub.9 2.604 None f.sub.10 2.663
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(25) Simulations were performed using an electromagnetic simulator.
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(27) A prototype of the resonator circuit was designed on RT Duroid 5880 substrate with dielectric constant 2.2, loss tangent of 0.0009, and thickness of 0.79 mm. This resonator circuit comprised N resonators and each resonator has (K1) arms. For each resonator, K-resonance frequencies are possible, therefore; so that the tag can be reconfigured for K.sup.N codes and KN possible frequencies. The chipless RFID reader needs to read only N frequency bands, which are read simultaneously, for each code. Table 3 shows the forty possible frequencies for the prototype of the resonator circuit shown in
(28) TABLE-US-00003 TABLE 3 Table of frequencies (GHz) for prototype of four resonator embodiment #A f.sub.1 f.sub.2 f.sub.3 f.sub.4 f.sub.5 f.sub.6 f.sub.7 f.sub.8 f.sub.9 f.sub.10 2.356 2.371 2.393 2.421 2.452 2.489 2.526 2.563 2.604 2.663 #B f.sub.11 f.sub.12 f.sub.13 f.sub.14 f.sub.15 f.sub.16 f.sub.17 f.sub.18 f.sub.19 f.sub.20 2.756 2.771 2.796 2.824 2.855 2.892 2.932 2.973 3.013 3.081 #C f.sub.21 f.sub.22 f.sub.23 f.sub.24 f.sub.25 f.sub.26 f.sub.27 f.sub.28 f.sub.29 f.sub.30 3.224 3.242 3.264 3.292 3.326 3.363 3.404 3.444 3.484 3.559 #D f.sub.31 f.sub.32 f.sub.33 f.sub.34 f.sub.35 f.sub.36 f.sub.37 f.sub.38 f.sub.39 f.sub.40 3.673 3.695 3.717 3.745 3.776 3.813 3.853 3.893 3.934 4.005
(29) The resonator circuit of
(30) In order to further validate the reconfigurable resonators for chipless RFID applications, an embodiment of the resonator circuit of
(31) The size of the circuit is 5.522.830.08 cm.sup.3 (lengthwidthheight). The scattering or s-parameter responses were simulated by electromagnetic simulator and also measured. In order to measure the s-parameter responses, coaxial cable connectors (ports) were connected to opposite ends of the transmission line (Feeder) of the resonator circuit of
(32) The simulated and measured insertion loss (S.sub.21) of the selected four-resonator configuration are plotted and compared in
(33) In use, the reconfigurable resonators for chipless RFID applications may be used to represent RFID codes as follows. Each resonator can be configured to represent one of K states. Where the RFID code is a binary number, and where K=10, e.g., as in the above examples, each state can represent a binary number up to four digits in length. Thus, Table 2 could be extended as shown in
(34) TABLE-US-00004 TABLE 4 Exemplary RFID coding for resonator with K = 10 states Element connected to Frequency RFID State frame Identifier (GHz) Code 1 E.sub.1 f.sub.1 2.356 0000 2 E.sub.2 f.sub.2 2.371 0001 3 E.sub.3 f.sub.3 2.393 0010 4 E.sub.4 f.sub.4 2.421 0011 5 E.sub.5 f.sub.5 2.452 0100 6 E.sub.6 f.sub.6 2.489 0101 7 E.sub.7 f.sub.7 2.526 0110 8 E.sub.8 f.sub.8 2.563 0111 9 E.sub.9 f.sub.9 2.604 1000 10 None f.sub.10 2.663 1001 11 These RFID Codes are unused 1010 12 1011 13 1100 14 1101 15 1110 16 1111
(35) It is to be understood that the reconfigurable resonators for chipless RFID applications is not limited to the specific embodiments described above, but encompasses any and all embodiments within the scope of the generic language of the following claims enabled by the embodiments described herein, or otherwise shown in the drawings or described above in terms sufficient to enable one of ordinary skill in the art to make and use the claimed subject matter.