IP Library › Granted Patent US 8,493,185
Granted Patent B2
US 8,493,185 · App. 12/901,952 · Granted Jul 23, 2013

Radio frequency identification reader antenna having a dynamically adjustable Q-factor

Inventor: Leigh Bateman (Jandowae, AU)
Assignee: Aleis Pty Ltd
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Quick Facts
Patent No.
US 8,493,185
App. No.
12/901,952
Granted
Jul 23, 2013
Kind
B2
Abstract

Turning now to the drawings, systems and methods for reading RFID transponders utilizing readers in which the Q-factor of the resonant antenna of the reader shifts over the course of the reader's interrogation cycle in response to the detection of data from FDX and HDX RFID transponders in accordance with embodiments of the invention are illustrated. One embodiment having a dynamically adjustable Q-factor, wherein the reader transmits an activation signal configured to activate half duplex and full duplex transponders includes a signal source configured to drive a resonant antenna and a dynamic switching circuit configured to set the Q-factor of the resonant antenna to a first value during the transmission of the activation signal. In addition, the dynamic switching circuit is configured to set the Q-factor of the resonant antenna to a second value below the first value during and/or in response to detection of a data signal from a full duplex transponder, the dynamic switching circuit is also configured to set the Q-factor of the resonant antenna to a third value below the second value when the RFID reader is not transmitting the activation signal, and the resonant antenna is multi-filar and the dynamic switching circuit is configured to control the Q-factor of the multi-filar resonant antenna by controlling the filars that are incorporated into the resonant antenna circuit.

Claims (40)

1. A reader circuit for a radio frequency identification (RFID) reader having a dynamically adjustable Q-factor, wherein the reader transmits an activation signal configured to activate half duplex and full duplex transponders, the reader circuit comprising:

a signal source configured to drive a resonant antenna; and

a dynamic switching circuit configured to set the Q-factor of the resonant antenna to a first value during the transmission of the activation signal;

wherein the resonant antenna is a multi-filar antenna comprising a primary filar and a set of secondary filars and a resistor is connected in series with at least one of the filars in the multi-filar antenna;

wherein the dynamic switching circuit is configured to set the Q-factor of the resonant antenna to a second value below the first value during detection of a data signal from a full duplex transponder;

wherein the dynamic switching circuit is configured to set the Q-factor of the resonant antenna to a third value below the second value when the RFID reader is not transmitting the activation signal; and

wherein the dynamic switching circuit is configured to control the Q-factor of the multi-filar resonant antenna by controlling the filars that are incorporated into the resonant antenna circuit by:

setting the Q-factor of the resonant antenna at a first value during the transmission of an activation signal comprises incorporating at least two of the filars into the resonant antenna circuit so that the resistor is not incorporated within the resonant antenna circuit;

decreasing the Q-factor of the resonant antenna during receipt of a data signal from any full duplex transponders present and during the transmission of the activation signal comprises incorporating a primary filar into the resonant antenna circuit so that the resistor is not incorporated in the resonant antenna circuit; and

decreasing the Q-factor of the resonant antenna upon stopping the transmission of the activation signal comprises incorporating the primary filar and the resistor into the resonant antenna circuit.

2. The reader circuit of claim 1 , wherein

the dynamic switching circuit is configured to set the Q-factor of the resonant antenna to a third value below the first Q-factor value when the RFID reader is not transmitting the activation signal.

3. The reader circuit of claim 2 , wherein the second Q-factor value is higher than the third Q-factor value.

4. The reader circuit of claim 2 , wherein the dynamic switching circuit further includes a dynamic tuning network configured to tune the resonant antenna to a first resonant frequency value during transmission of the activation signal and to a second resonant frequency value when the RFID reader is not transmitting the activation signal.

5. The reader circuit of claim 2 , wherein the dynamic switching circuit is configured to control the Q-factor of the multi-filar resonant antenna by controlling the filers that are incorporated into the resonant antenna circuit.

6. The reader circuit of claim 5 , wherein the resonant antenna is a tri-filar antenna.

7. The reader circuit of claim 5 , wherein the resonant antenna is a bi-filar antenna.

8. The reader circuit of claim 2 , wherein the resonant antenna includes multiple resonant circuits and the dynamic switching circuit is configured to independently drive each of the resonant circuits.

9. The reader circuit of claim 2 , wherein the resonant antenna includes a switched resistor and the dynamic switching circuit is configured to set the Q-factor of the resonant antenna using the switched resistor.

10. A process for interrogating full duplex transponders using a radio frequency identification (RFID) reader having a resonant circuit with a dynamically adjustable Q-factor, comprising:

setting the Q-factor of a resonant antenna at a first value during the transmission of an activation signal, wherein:

the resonant circuit comprises a resonant antenna and the resonant antenna is a multi-filar antenna comprising a primary filar and a set of secondary filars and a resistor is connected in series with at least one of the filars in the multi-filar antenna; and

setting the Q-factor of the resonant antenna at a first value during the transmission of an activation signal comprises incorporating at least two filars in the multi-filar antenna into the resonant antenna circuit so that the resistor is not incorporated within the resonant antenna circuit;

decreasing the Q-factor of the resonant antenna during receipt of a data signal from any full duplex transponders present during the transmission of the activation signal by incorporating the primary filar into the resonant antenna so that the resistor is not incorporated in the resonant antenna;

increasing the Q-factor of the resonant antenna to the first value during the remainder of the transmission of the activation signal;

capturing data from the received data signal; and

decreasing the Q-factor of the resonant antenna upon stopping the transmission of the activation signal by incorporating the primary filar and the resistor into the resonant antenna circuit.

11. The process of claim 10 , wherein the process further comprises interrogating half duplex transponders by

remaining at a reduced level during receipt of a data signal from any half duplex transponders present.

12. The process of claim 11 , wherein the Q-factor of the resonant antenna during data capture from any full duplex transponders present is greater than the Q-factor of the resonant antenna during data capture from any half duplex transponders present.

13. The process of claim 11 , wherein the resonant antenna includes multiple resonant circuits.

14. The process of claim 13 , wherein setting the Q-factor of the resonant antenna to a first level comprises driving at least two of the resonant circuits during the transmission of an activation signal.

15. The process of claim 11 , wherein the resonant antenna includes a switched resistor.

16. The process of claim 15 , wherein decreasing the Q-factor of the resonant antenna upon stopping the transmission of the activation signal comprises switching the resistor into the resonant antenna circuit.

17. The process of claim 11 , further comprising:

tuning the resonant antenna to a first resonant frequency value during transmission of the activation signal; and

tuning the resonant antenna to a second resonant frequency value when the RFID reader is not transmitting the activation signal.

18. The process of claim 10 , wherein the resonant antenna is a tri-filar antenna.

19. The process of claim 10 , wherein:

the resonant antenna is a bi-filar antenna.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 18, 2019
From: ALEIS PTY LTD
To: ALLFLEX AUSTRALIA PTY LTD
Reel/Frame 050420/0430 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 26, 2011
From: BATEMAN, LEIGH
To: ALEIS PTY LTD.
Reel/Frame 026349/0386 →
Continuity (2)
Provisional Application 61250400 · Oct 9, 2009
Related Publication 20110205026A1 · Aug 25, 2011