WO2006045817A2 - Power transfer for transponder devices - Google Patents
Power transfer for transponder devices Download PDFInfo
- Publication number
- WO2006045817A2 WO2006045817A2 PCT/EP2005/055566 EP2005055566W WO2006045817A2 WO 2006045817 A2 WO2006045817 A2 WO 2006045817A2 EP 2005055566 W EP2005055566 W EP 2005055566W WO 2006045817 A2 WO2006045817 A2 WO 2006045817A2
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- circuit part
- resonant circuit
- resonant
- reader
- value
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
Links
Classifications
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06K—GRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
- G06K19/00—Record carriers for use with machines and with at least a part designed to carry digital markings
- G06K19/06—Record carriers for use with machines and with at least a part designed to carry digital markings characterised by the kind of the digital marking, e.g. shape, nature, code
- G06K19/067—Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components
- G06K19/07—Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components with integrated circuit chips
- G06K19/0723—Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components with integrated circuit chips the record carrier comprising an arrangement for non-contact communication, e.g. wireless communication circuits on transponder cards, non-contact smart cards or RFIDs
- G06K19/0726—Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components with integrated circuit chips the record carrier comprising an arrangement for non-contact communication, e.g. wireless communication circuits on transponder cards, non-contact smart cards or RFIDs the arrangement including a circuit for tuning the resonance frequency of an antenna on the record carrier
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06K—GRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
- G06K7/00—Methods or arrangements for sensing record carriers, e.g. for reading patterns
- G06K7/0008—General problems related to the reading of electronic memory record carriers, independent of its reading method, e.g. power transfer
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06K—GRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
- G06K19/00—Record carriers for use with machines and with at least a part designed to carry digital markings
- G06K19/06—Record carriers for use with machines and with at least a part designed to carry digital markings characterised by the kind of the digital marking, e.g. shape, nature, code
- G06K19/067—Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components
- G06K19/07—Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components with integrated circuit chips
- G06K19/0723—Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components with integrated circuit chips the record carrier comprising an arrangement for non-contact communication, e.g. wireless communication circuits on transponder cards, non-contact smart cards or RFIDs
Definitions
- This invention relates to a memory tag, and a reader.
- Transponder devices in the form of Radio Frequency Identification (RFID) tags are well known in the prior art, comprising an integrated circuit with information stored on it and a coil which enables it to be interrogated by a read/write device generally referred to as a reader, for use in a variety of different applications.
- RFID Radio Frequency Identification
- FIG. 1 a reader is indicated generally at 10 and a tag at 12.
- the reader 10 comprises a radio frequency generator 13 and a resonant circuit part 11, in the present example comprising an inductor 14 and a capacitor 15 connected in parallel.
- the inductor 14 comprises a antenna.
- the resonant circuit part will have a particular resonant frequency in accordance with the capacitance and inductance of the capacitor 15 and the inductor
- the tag 12 similarly comprises a resonant circuit part generally illustrated at 16, a rectifying circuit part generally indicated at 17 and a memory 18.
- the resonant circuit part 16 comprises an inductor 19 which again comprises in this example a loop antenna, and a capacitor 20.
- the resonant circuit part 16 will thus have a resonant frequency set by the inductor 19 and capacitor 20.
- the resonant frequency of the resonant circuit part 16 is selected to be the same as that of the reader 10.
- the rectifying part comprises a forward-biased diode 21 and a capacitor 22 and thus effectively acts as a half- ware rectifier.
- a signal generated by the frequency generator 13 will cause the resonant circuit part 11 to generate a high frequency electromagnetic field.
- a current will be caused to flow in the resonant circuit part 16, drawing power from the time varying magnetic field generated by the reader.
- the rectifying circuit part 17 will then serve to smooth the voltage across the resonant frequency part and provide a DC power supply to the tag's memory 18.
- the rectifying circuit part 17 is sufficient to supply a sufficiently stable voltage to the memory 18 for the memory to operate.
- the resonant circuit part is also provided with a switch 23, here comprising a field effect transistor (FET).
- FET field effect transistor
- the FET is connected to the memory by a control line 24.
- the switch 23 When the switch 23 is closed, it causes an increased current to flow in the tag resonant circuit part 16. This increase in current flow in the tag results in an increased current flow in the reader's resonant circuit part 11 which can be detected as a change in_voltage drop across the reader inductor 14.
- the switch 23 data stored in the memory 18 of the tag 12 can be transmitted to the reader 10.
- a problem with such known systems is that although the components of the resonant circuit parts 11, 16 may have the same nominal value, in practice de-tuning of one or both resonant circuit parts can occur, for example because of differences in nominal and actual values of components or from interaction between the antennae 14, 19. The results of such de-tuning can cause undesirable effects. In particular, an amplitude modulated signal can be corrupted into a phase modulated signal with little or no amplitude variation being present.
- a reader is provided which is operable to perform amplitude and phase the demodulation of the returned signal, and also to attempt some tuning of the reader antenna depending on the value of the detected phase between a reference signal and a signal returned from the antenna coil. This solution is however complex and further takes into account of the power supplied to the memory tag.
- a reader for reading a memory tag comprising a controllable resonant circuit part having a resonant frequency, a frequency source operable to generate a driving signal and connected to the resonant circuit part to provide inductive coupling to a tag, a tuning detector responsive to the relative resonant frequencies of the resonant circuit part and a memory tag resonant circuit to generate a tuning signal, and a tuning controller responsive to the tuning signal to control resonant frequency of the resonant circuit part.
- Figure 1 is a schematic circuit diagram of a memory tag and reader of known type
- FIG. 2 is a diagrammatic illustration of a circuit for a memory tag and reader embodying the present invention
- Figure 3 is a diagrammatic circuit diagram of a further memory tag embodying the present invention
- Figure 4 is a flow chart illustrating a method of listing the reader of Figure 2
- Figure 5 is a graph showing variation in the amplitude against frequency of a reflected signal detected by the reader
- Figure 5b is a graph showing variation in the phase against frequency of a reflected signal detected by the reader
- Figure 6 is a graph showing the amplitude of data transmitted by the tag of Figure 2, an output voltage provided by a rectifying circuit of the tag of Figure 2 and an error signal and capacitance values of the reader of Figure 2.
- a memory tag embodying the present invention is shown at 30 and a reader shown at 31.
- 'memory tag' is intended to refer generally to a transponder device having a memory in which data is stored and where the transponder device is readable and powered by an appropriate reader through a radio-frequency wireless communication link, in the present example through inductive coupling.
- the term 'memory tag' may thus cover, but is not limited to, read only RFID devices and transponder devices with a memory which may be read and written to.
- the memory tag 30 comprises a memory tag resonant circuit part 32 and a rectifying circuit part 33, together with a memory 34.
- the resonant circuit part 32 comprises an inductor L2 shown at 35.
- the resonant circuit part 32 further comprises a controllable capacitive element generally indicated at 36, in the example of Figure 2 comprising these capacitors Cl, C2, C3 shown at 38a, 38b, 38c respectively each selected by a corresponding switch Sl, S2, S3 shown at 39a, 39b, 39c respectively.
- the rectifying circuit part 33 comprises a diode Dl shown at 40 connected to the resonant circuit part 32 in a forward biased direction and a capacitor C4 shown at 41 connected in parallel with the components of the resonant circuit part 32.
- the rectifying circuit part 33 operates in like manner to the rectifying circuit part 17 of Figure 1 as a half-wave rectifier to provide power to the memory 34.
- the values of capacitors Cl, C2 and C3 are selected such that when the inductor L2 and one of the capacitors, for example capacitor Cl, are connected in parallel, the resonant circuit part has a resonant frequency having a first value which generally equals to the nominal resonant frequency for coupling between the reader 31 and memory tag 32.
- the capacitors C2, C3 are selected to have appropriate capacitors such that, the difference between capacitors of capacitor C2 and Cl is equal to the difference between the capacitors of capacitors Cl and C3, so and the capacitance of Cl lies between those of C2 and C3.
- the resonant frequency of a resonant circuit part 32 is set either to a second value or a third value respectively, an equal frequency difference above or below the nominal resonant frequency corresponding to the capacitor Cl.
- One of the capacitors Cl, C2, C3 may be selected by operating the appropriate corresponding switch Sl, S2, S3 under the control of a program running on the memory 34, as illustrated by control lines 37a, 37b, 37c.
- a first capacitor C5 shown at 60 and a second capacitor C6 shown at 61 are connected in series and together in parallel with the inductor L2.
- a third capacitor C7, shown at 63 is connected in parallel with the inductor L2, and in series with a switch S5 shown at 64.
- a fourth capacitor C8 shown at 64 is connected in parallel with the inductor L2.
- the switches S4, S5 are controlled by a program running on the memory 34 as shown by control line 56, 67 respectively.
- a NOT gate 68 is included in the control line 66.
- This configuration is operable in such a way that when the memory tag 35 is initially powered and the control lines 66, 67 are both low, the switch 55 is set to an open circuit and the switch 54 is set to be a short circuit where, when the capacitors C5, C6, C7, C8 all have the same value, the first initial capacitance value of the resonant circuit parts 82' will be 2C and the resonant frequency will have a first value accordingly.
- line 66 is held high and by selecting low or high on control line 67, the value of the capacitance can be switched between 3C/2 and 5C/2. In this example, it is first possible to switch between the second and third values of the resonant frequency by operating a single control line rather than two control lines as in the memory tag 30 of Figure 2.
- the reader 31 comprises a reader resonant circuit part 42 which comprises an inductor shown at 43, in this example an antenna.
- a variable capacitance element comprising a variable capacitor VCl shown at 44 is connected in parallel to the inductor 43 and a further variable capacitance element VC2 shown at 45 connected in series with the inductor 43.
- a frequency generator 46 is connected to the resonant circuit part 42 to provide a driving signal.
- the reader 31 further comprises a demodulator, generally shown at 46.
- the demodulator 47 comprises a power splitter 48 connected between the frequency generator 46 and the resonant circuit part 42 to split off a part of the driving signal to provide a reference signal.
- a coupler 49 is provided to split off a reflected signal reflected back from the resonant circuit part 42, and pass the reflected signal to a multiplier indicated at 50.
- the multiplier 50 multiplies the reflected signal received from the coupler 49 and the reference signal received from the splitter 48 and passes the output to a low pass filter 51.
- the low pass filter 51 passes a signal corresponding to the phase difference between the reference signal and the reflected signal to an output 52.
- the inductor Ll 43 comprises an antenna of the reader 31, and the inductor 35 comprises an antenna of the tag 30.
- the reader 31 further comprises a tuning detector, in this example a power meter 53 which is also connected to the coupler 49, and a tuning controller 54 which is operable to control the variable capacitors VCl, VC2 as shown by control lines 55a, 55b.
- the power monitor 53 is operable to generate an tuning signal based on the power reflected from the resonant circuit part 42: in a simple example the power monitor 53 may be a rectifier circuit and the tuning signal will be a voltage proportional to the returned power.
- the output signal is passed to the tuning controller 54, which is operable to control the variable capacitors VCl, VC2 as described in more detail below.
- the memory tag 30 and reader 31 are operable as follows:
- the capacitance of the resonant circuit part 32, 32' is set to a first value.
- the tuning controller 54 then controls the variable capacitors VCl and VC2 to minimise the power reflected from the resonant circuit part 42.
- the reflected power from the resonant circuit part 42 will be inversely related to the power transferred to the memory tag 30, which itself depends on the relative tuning between the resonant circuit parts 32, 42.
- the tuning detector that is the power detector 53, will thus be responsive to the difference in the relative resonant frequencies of the resonant circuit parts 32, 42.
- the resonant circuit part 42 will be tuned to an appropriate resonant frequency to match that of the tag 30.
- a method of tuning the resonant circuit part 42 under control of the tuning controller 54 is shown in Figure 4.
- the error signal is the signal received from the power monitor 53
- the variable err old is a stored previous value of the error signal
- Delta (X) is the tuning step by which the values of the variable capacitor are changed
- the minimum target is a value below which it is desired to reduce the error signal from the power monitor 53.
- the method proceeds by varying the value of one of the variable capacitors, VCl, VC2 for a number of tries, and then varying the value of the other capacitor for a number of tries, and repeating the steps for each capacitor until the method times out or the error signal is reduced below the minimum target.
- the first capacitor to be varied is selected and at step 72 the control is set to vary the capacitor and test the error signal for n times.
- the value of the variable capacitor is changed by the amount delta (X), and at step 74 the returned error signal compared with the stored error signal err old. If the error signal is less then the err old, then at step 75 it is compared with the minimum target and if the error signal is less than the minimum target as shown at step 76 the tuning process ends and the process of data transfer can begin. If the error signal is not less than the minimum target, then at step 77 err old is set to equal the error signal.
- step 74 if the error signal is greater than the stored error signal, then the reflected power is increasing and the tuning the capacitor has moved away from the minimum value. Hence, at step 78 the delta (X) is set to -1 times its previous value to reverse the direction in which the capacitor value is altered, and the method then proceeds from step 77.
- step 79 if the capacitor value has not been tested n times, the method returns to step 73, the capacitor value is changed by delta (X) and the process repeats again. If the required number of tests has been performed, then at 80 the method checks whether the time out limit has been passed and if so ends the tuning process. Otherwise at step 81 the other variable capacitor is selected and the method returns to step 72 to begin a set of n tests with that capacitor.
- This thus provides a gradient search method which attempts to locate the best available tuning condition and thus power transfer.
- the tuning method compensates the effects of separation of the antenna and circuit components tolerances in the interrogator and remote device.
- the program running on the memory 34 is operable to select one of the second value and third value for the capacitance of the resonant circuit element 32, 32' in order to transmit data from the memory tag 30 to the reader 31.
- A amplitude of the reference signal
- a amplitude of the reflected signal
- CO the frequency of the signal generated by the frequency source 45.
- R(t) is multiplied by the carrier reference signal S(t) at the multiplier 49, producing a resulting signal
- the first of these terms, the second harmonic, is simply filtered by the low pass filter 50 leaving the second term that comprises the phase difference between the reference and reflected signals.
- the effects of selecting one of the second value and third value are shown in the graphs of Figures 5a and 5b.
- the graph of Figure 5a is a plot of the amplitude of the signal reflected back from the memory tag. The minimum of each plot represents the maximum power transfer, when the resonant frequency of the resonant current part 32 matches the frequency of the signal from the frequency source 45. The change in the resonant frequency when the second value is selected and when the third value is selected is apparent from the two plots on the graphs.
- the relative phase of the reflected signal will vary between one of two values and the output of the demodulator will be a train of pulses as shown in the 'Data' plot of Figure 6.
- the transferred power is generally constant whichever the value for capacitance of the resonant circuit part is selected.
- the DC supply generated in the memory tag will be generally constant and stable, as shown in the plot V DD of Figure 6, while the error signal will fail to approximately send and the capacitors VCl, VC2 will converge on stable values.
- the resonant frequency of the resonant circuit part 42, and hence the frequency of the signal generated by the frequency source 45 is about 2.45 GHz
- the resonant frequency of the resonant circuit part 32 is modulated by about 0.05 GHz either side of this reference frequency.
- component values for the inductors and the capacitors are small - for example, the overall capacitance of the resonant circuit part may be about 0.3 pF - allowing easy integration of the circuit and require relatively small areas of silicon on an integrated circuit.
- the tag 30 be provided as a integrated circuit, for example as a CMOS integrated circuit.
- the scheme of the present invention is effective to implement, and is practicable at GHz frequencies (here defined as frequencies greater than 1 GHz).
- variable capacitance element to vary the resonant frequency of the tag resonant circuit part
- the resonant frequency may be varied by other means as desired.
- a variable inductive element may be provided, or a second inductor may be switched in and out of the resonant circuit part.
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- Engineering & Computer Science (AREA)
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Theoretical Computer Science (AREA)
- Computer Networks & Wireless Communication (AREA)
- Computer Hardware Design (AREA)
- Microelectronics & Electronic Packaging (AREA)
- Artificial Intelligence (AREA)
- Computer Vision & Pattern Recognition (AREA)
- Near-Field Transmission Systems (AREA)
- Radar Systems Or Details Thereof (AREA)
Abstract
Description
Claims
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US11/718,227 US8536982B2 (en) | 2004-10-09 | 2005-10-26 | Automatic tuning for RFID systems by changing capacitor values in case of an error |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| GB0424099.0 | 2004-10-09 | ||
| GB0424099A GB2419777B (en) | 2004-10-29 | 2004-10-29 | Power transfer for transponder devices |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| WO2006045817A2 true WO2006045817A2 (en) | 2006-05-04 |
| WO2006045817A3 WO2006045817A3 (en) | 2006-07-06 |
Family
ID=33515805
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/EP2005/055566 Ceased WO2006045817A2 (en) | 2004-10-09 | 2005-10-26 | Power transfer for transponder devices |
Country Status (3)
| Country | Link |
|---|---|
| US (1) | US8536982B2 (en) |
| GB (1) | GB2419777B (en) |
| WO (1) | WO2006045817A2 (en) |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| GB0525623D0 (en) | 2005-12-16 | 2006-01-25 | Hill Nicholas P R | RFID reader |
| US9130602B2 (en) * | 2006-01-18 | 2015-09-08 | Qualcomm Incorporated | Method and apparatus for delivering energy to an electrical or electronic device via a wireless link |
| US8447234B2 (en) | 2006-01-18 | 2013-05-21 | Qualcomm Incorporated | Method and system for powering an electronic device via a wireless link |
| US10149177B2 (en) * | 2006-11-18 | 2018-12-04 | Rfmicron, Inc. | Wireless sensor including an RF signal circuit |
| US9774086B2 (en) * | 2007-03-02 | 2017-09-26 | Qualcomm Incorporated | Wireless power apparatus and methods |
| GB0709575D0 (en) | 2007-05-18 | 2007-06-27 | Cambridge Resonant Technologie | RFIC Iterrogator |
| US9124120B2 (en) | 2007-06-11 | 2015-09-01 | Qualcomm Incorporated | Wireless power system and proximity effects |
| CN101842962B (en) * | 2007-08-09 | 2014-10-08 | 高通股份有限公司 | Increasing the Q factor of a resonator |
| EP2188863A1 (en) | 2007-09-13 | 2010-05-26 | QUALCOMM Incorporated | Maximizing power yield from wireless power magnetic resonators |
| EP2201641A1 (en) * | 2007-09-17 | 2010-06-30 | Qualcomm Incorporated | Transmitters and receivers for wireless energy transfer |
| EP2208279A4 (en) * | 2007-10-11 | 2016-11-30 | Qualcomm Inc | Wireless power transfer using magneto mechanical systems |
| US20090102663A1 (en) * | 2007-10-19 | 2009-04-23 | Hillegass Raymond R | Apparatus and method for tuning a radio frequency antenna |
| US8629576B2 (en) * | 2008-03-28 | 2014-01-14 | Qualcomm Incorporated | Tuning and gain control in electro-magnetic power systems |
| US20090299918A1 (en) * | 2008-05-28 | 2009-12-03 | Nigelpower, Llc | Wireless delivery of power to a mobile powered device |
| US8579195B2 (en) | 2008-08-25 | 2013-11-12 | Nxp B.V. | Reconfigurable radio-frequency front-end |
| GB2465223A (en) * | 2008-11-14 | 2010-05-19 | Cambridge Resonant Technologies Ltd | Tuned resonant circuits |
| US9305606B2 (en) * | 2009-08-17 | 2016-04-05 | Micron Technology, Inc. | High-speed wireless serial communication link for a stacked device configuration using near field coupling |
| US20120082963A1 (en) * | 2010-09-30 | 2012-04-05 | Assa Abloy Ab | Antenna calculation interface |
| CN104025464B (en) * | 2012-03-06 | 2016-08-17 | 松下电器产业株式会社 | Communicator |
| DE102012004716B4 (en) * | 2012-03-07 | 2021-02-11 | Dehn Se + Co Kg | Circuit arrangement for status control and logging of surge protection devices or surge protection systems |
| AT513220B1 (en) * | 2012-07-24 | 2016-07-15 | Siemens Ag | Device for resonant - inductive energy transmission |
| US9601267B2 (en) | 2013-07-03 | 2017-03-21 | Qualcomm Incorporated | Wireless power transmitter with a plurality of magnetic oscillators |
| US10852519B2 (en) * | 2016-11-30 | 2020-12-01 | Asm Technology Singapore Pte Ltd | Confocal imaging of an object utilising a pinhole array |
| FR3066336B1 (en) * | 2017-05-11 | 2019-07-12 | Stmicroelectronics (Tours) Sas | ADAPTATION OF ELECTROMAGNETIC RECHARGE |
| US11429831B2 (en) | 2017-08-16 | 2022-08-30 | Rf Ideas, Inc. | RFID reader with automatic tuning |
| US11133845B2 (en) * | 2019-12-05 | 2021-09-28 | Assa Abloy Ab | Detuning detection and compensation for inductive coupling systems |
| EP4081942B1 (en) | 2019-12-28 | 2026-04-01 | Avery Dennison Retail Information Services LLC | Tuning assemblies for rfid chips |
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| US5550548A (en) * | 1988-07-08 | 1996-08-27 | Texas Instruments Deutschland Gmbh | Interrogator for detecting adjacent transponders |
| US5287112A (en) * | 1993-04-14 | 1994-02-15 | Texas Instruments Incorporated | High speed read/write AVI system |
| DE4327642C2 (en) * | 1993-05-17 | 1998-09-24 | Anatoli Stobbe | Reader for a detection plate |
| US5541604A (en) * | 1993-09-03 | 1996-07-30 | Texas Instruments Deutschland Gmbh | Transponders, Interrogators, systems and methods for elimination of interrogator synchronization requirement |
| US6472975B1 (en) * | 1994-06-20 | 2002-10-29 | Avid Marketing, Inc. | Electronic identification system with improved sensitivity |
| JPH0830749A (en) * | 1994-07-13 | 1996-02-02 | Mitsubishi Electric Corp | Non-contact IC card |
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| GB2321726A (en) * | 1997-01-30 | 1998-08-05 | Motorola Inc | Apparatus and method for regulating power on a contactless portable data carrier |
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| US6650227B1 (en) * | 1999-12-08 | 2003-11-18 | Hid Corporation | Reader for a radio frequency identification system having automatic tuning capability |
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| FI113809B (en) * | 2000-11-01 | 2004-06-15 | Rafsec Oy | Method for making a smart sticker and a smart sticker |
| GB2395626B (en) * | 2002-11-21 | 2006-05-10 | Hewlett Packard Co | A memory tag and a reader |
| US7444118B2 (en) * | 2003-04-29 | 2008-10-28 | Nxp B.V. | Electronic communications system |
| US7592961B2 (en) * | 2005-10-21 | 2009-09-22 | Sanimina-Sci Corporation | Self-tuning radio frequency identification antenna system |
| CA2696413C (en) * | 2007-09-24 | 2014-09-02 | Cooper Tire & Rubber Company | Automatic antenna tuner system for rfid |
-
2004
- 2004-10-29 GB GB0424099A patent/GB2419777B/en not_active Expired - Fee Related
-
2005
- 2005-10-26 WO PCT/EP2005/055566 patent/WO2006045817A2/en not_active Ceased
- 2005-10-26 US US11/718,227 patent/US8536982B2/en not_active Expired - Fee Related
Also Published As
| Publication number | Publication date |
|---|---|
| GB2419777B (en) | 2010-02-10 |
| WO2006045817A3 (en) | 2006-07-06 |
| US20090002175A1 (en) | 2009-01-01 |
| GB0424099D0 (en) | 2004-12-01 |
| GB2419777A (en) | 2006-05-03 |
| US8536982B2 (en) | 2013-09-17 |
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