Rfid transmitter
Abstract
Embodiments of the invention relate to the field of RFID interrogators, particularly RFID interrogators that combine low loss with high rates of communication from the interrogator to a tag. We describe a transmitter comprising a resonant circuit and a driver coupled to drive said resonant circuit, wherein said resonant circuit includes a resonance regeneration system such that during amplitude modulation of a resonant signal in said resonant circuit when an amplitude of said resonant signal is reduced energy from said reduction is stored and when said amplitude is increased said stored energy is used to regenerate said resonance signal.

Term
1.6 yearsleft in the term
Expires 7 May 2028.
- Priority
- Filed
- Granted
- Today
- Expires
15 claims: 15 independent, 0 dependent
- 1A transmitter (10) comprising a resonant circuit (L1, C1) and a driver (FET3, FET4) coupled to drive said resonant circuit, characterized in that said transmitter includes:a system (FET3, FET4, FET5, V_stop) configured to amplitude modulate a resonant signal in said resonant circuit (L1, C1), the system (FET3, FET4, FET5, V_stop) configured to reduce an amplitude of said resonant signal from a first amplitude to a second amplitude;and storage circuitry (C1;C2, C3) configured to store charge of a resonant current of said first amplitude of said resonant circuit (L1, C1) during said reduction , wherein the system is configured to increase an amplitude of said resonant signal from said second amplitude by releasing said stored charge of said resonant current of said first amplitude to use said stored charge to regenerate said resonant signal in said resonant circuit (L1, C1). Sender (10), umfassend eine Resonanzschaltung (L1, C1) und einen Treiber (FET3, FET4), der entsprechend geschaltet ist, um die Resonanzschaltung anzusteuern, dadurch gekennzeichnet, dass der Sender aufweist: ein System (FET3, FET4, FET5, V_stop), das dafür konfiguriert ist, ein Resonanzsignal in der Resonanzschaltung (L1, C1) einer Amplitudenmodulation zu unterziehen, wobei das System (FET3, FET4, FET5, V_stop) dafür konfiguriert ist, eine Amplitude des Resonanzsignals von einer ersten Amplitude auf eine zweite Amplitude zu reduzieren;undeine Speicherschaltungsanordrung (C1, C2, C3), die dafür konfiguriert ist, Ladung eines Resonanzstroms der ersten Amplitude der Resonanzschaltung (L1, C1) während der Reduzierung zu speichern, wobeidas System dafür konfiguriert ist, eine Amplitude des Resonanzsignals von der zweiten Amplitude ausgehend durch Freigeben der gespeicherten Ladung des Resonanzstroms der ersten Amplitude zu erhöhen, um die gespeicherte Ladung zur Regenerierung des Resonanzsignals in der Resonanzschaltung (L1, C1) zu verwenden. Émetteur (10) comprenant un circuit résonnant (L1, C1) et un pilote (FET3, FET4) couplé de manière à commander ledit circuit résonnant, caractérisé en ce que ledit émetteur comprend : un système (FET3, FET4, FET5, V_stop) configuré de manière à moduler en amplitude un signal de résonnance dans ledit circuit résonnant (L1, C1), le système (FET3, FET4, FET5, V_stop) étant configuré de manière à réduire une amplitude dudit signal de résonnance, d'une première amplitude à une seconde amplitude;etun montage de circuits de stockage (C1;C2, C3) configuré de manière à stocker une charge d'un courant de résonnance de ladite première amplitude dudit circuit résonnait (L1, C1) au cours de ladite réduction, dans lequelle système est configuré de manière à augmenter une amplitude dudit signal de résonnance à partir de ladite seconde amplitude en libérant ladite charge stockée dudit courant de résonnance de ladite première amplitude, en vue d'utiliser ladite charge stockée pour régénérer ledit signal de résonnance dans ledit circuit résonnant (L1, C1).
- 2A transmitter (10) as claimed in claim 1 wherein said resonant circuit (L1, C1) comprises at least one capacitor (C1), wherein said system (FET3 - FET5, V_stop) comprises a switch (FET5) in series with said at least one capacitor (C1), and an oscillator (L1, C1) synchronised to said resonant signal to control said switch (FET5). Sender (10) nach Anspruch 1, wobei die Resonanzschaltung (L1, C1) mindestens einen Kondensator (C1) umfasst, wobei das System (FET3 - FET5, V_stop) einen Schalter (FET5) in Reihe mit dem mindestens einen Kondensator (C1) und einen Oszillator (L1, C1) umfasst, der auf das Resonanzsignal abgestimmt ist, um den Schalter (FET5) zu steuern. Émetteur (10) selon la revendication 1, dans lequel ledit circuit résonnant (L1, C1) comprend au moins un condensateur (C1), dans lequel ledit système (FET3 - FET5, V_stop) comprend un commutateur (FET5) en série avec ledit au moins un condensateur (C1), et un oscillateur (L1, C1) synchronisé avec ledit signal de résonnance pour commander ledit commutateur (FET5).
- 3A transmitter (10) as claimed in claim 1 or 2 further comprising a transient control system (D1, R2, FET2, V_trans) to dissipate energy not stored by said system (FET3 - FET5, V_stop). Sender (10) nach Anspruch 1 oder 2, feiner umfassend ein Übergangskontrollsystem (D1, R2, FET2, V_trans), um Energie, die durch das System (FET3 - FET5, V_stop) nicht gespeichert wird, zu beseitigen. Émetteur (10) selon la revendication 1 ou 2, comprenant en outre un système de commande transitoire (D1, R2, FET2, V_trans) pour dissiper l'énergie non stockée par ledit système (FET3 - FETS, V_stop).
- 4A transmitter (10) as claimed in claim 3 wherein said transient control system (D1, R2, FET2, V_trans) comprises a switch (FET2) coupled to an energy dissipating device (R2), and an oscillator (L1, C1) synchronised to said resonant signal to control said switch (FET2). Sender (10) nach Anspruch 3, wobei das Übergangskontrollsystem (D1, R2, FET2, V_trans) einen Schalter (FET2), der mit einer Energiebeseitigungsvorrichtung (R2) zusammengeschaltet ist, und einen Oszillator (L1, C1), der auf das Resonanzsignal zur Steuerung des Schalters (FET2) abgestimmt ist, umfasst. Émetteur (10) selon la revendication 3, dans lequel ledit système de commande transitoire (D1, R2, FET2, V_trans) comprend un commutateur (FET2) couplé à un dispositif de dissipation d'énergie (R2), et un oscillateur (L1, C1) synchronisé avec ledit signal de résonnance en vue de commander ledit commutateur (FET2).
- 5A transmitter (10) as claimed in claim 4, when dependent on claim 2 wherein said switch (FET5) of said system (FET3 - FET5, V_stop) and said switch (FET2) of said transient control system (D1, R2, FET2, V_trans) are controlled in synchronism such that when said system (FET3 - FET5, V_stop) is acting to store energy said transient control system (D1, R2, FET2, V_trans) is acting to dissipate energy and when said system (FET3 - FET5, V_stop) is acting to regenerate said resonant signal said transient control system (D1, R2, FET2, V_trans) is not substantially dissipating energy. Sender (10) nach Anspruch 4, wenn von Anspruch 2 abhängig, wobei der Schalter (FET5) des Systems (FET3 - FET5, V_stop) und der Schalter (FET2) des Übergangskontrollsystems (D1, R2, FET2, V_trans) synchron gesteuert werden, so dass, wenn das System (FET3 - FET5, V_stop) tätig wird, um Energie zu speichern, das Übergaugskoutrollsystem (D1, R2, FET2, V_trans) tätig wird, um Energie zu beseitigen, und wenn das System (FET3 - FET5, V_stop) tätig wird, um das Resonanzsignal zu regenerieren, das Übergangskontrollsystem (D1, R2, FET2, V_trans) im Wesentlichen keine Energie beseitigt. Émetteur (10) selon la revendication 4, lorsqu'elle est dépendante de la revendication 2, dans lequel ledit commutateur (FET5) dudit système (FET3 - FET5, V_stop) et ledit commutateur (FET2) dudit système de commande transitoire (D1, R2, FET2, V_trans) sont commandés de manière synchronisée, de sorte que, lorsque ledit système (FET3 - FET5, V_stop) est exploité de manière à stocker de l'énergie, ledit système de commande transitoire (D1, R2, FET2, V_trans) est exploité de manière à dissiper de l'énergie et, lorsque ledit système (FET3 - FET5, V_stop) est exploité de manière à régénérer ledit signal de résonance, ledit système de commande transitoire (D1, R2, FET2, V_trans) ne dissipe sensiblement aucune énergie.
- 6A transmitter (10) as claimed in claim 5 wherein said switch (FET5) of said resonance regeneration system (FET3 - FET5, V_stop) and said switch (FET2) of said transient control system each comprise an FET. Sender (10) nach Anspruch 5, wobei der Schalter (FET5) des Resonanzregenerationssystems (FET3 - FET5, V_stop) und der Schalter (FET2) des Übergangskontrollsystem jeweils einen FET umfassen. Émetteur (10) selon la revendication 5, dans lequel ledit commutateur (FET5) dudit système de régénération de résonance (FET3 - FET5, V_stop) et ledit commutateur (FET2) dudit système de commande transitoire comprennent chacun un transistor FET.
- 7A transmitter (10) as claimed in any one of claims 1 to 6 wherein said driver (D6, 5V, FET3, FET4) comprises a push-pull driver (FET3, FET4). Sender (10) nach einem der Ansprüche 1 bis 6, wobei der Treiber (D6, 5V, FET3, FET4) einen Gegentakttreiber (FET3, FET4) umfasst. Émetteur (10) selon l'une quelconque des revendications 1 à 6, dans lequel ledit pilote (D6, 5V, FET3, FET4) comprend un pilote symétrique (FET3, FET4).
- 8A transmitter (10) as claimed in any one of claims 1 to 7 further comprising a negative feedback circuit to compensate for transient changes in amplitude of said resonant signal, in particular wherein said feedback circuit comprises a pulse width modulating circuit or a passive feedback circuit. Sender (10) nach einem der Ansprüche 1 bis 7, ferner umfassend eine negative Rückkopplungsschaltung, um übergangsweise auftretende Änderungen der Amplitude des Resonanzsignals zu kompensieren, wobei insbesondere die Rückkopplungsschaltung eine Impulsbreitenmodulationsschaltung oder eine passive Rückkopplungsschaltung umfasst. Émetteur (10) selon l'une quelconque des revendications 1 à 7, comprenant en outre un circuit de contre réaction négative destiné à compenser les changements transitoires au niveau de l'amplitude dudit signal de résonnance, en particulier dans lequel ledit circuit de contre réaction comprend un circuit de modulation de largeur d'impulsion ou un circuit de contre réaction passive.
- 9A transmitter (10) as claimed in any preceding claim wherein said resonant circuit comprises a non-linear resonant circuit (L1, FET1, C1;C2, C3). Sender (10) nach einem der vorhergehenden Ansprüche, wobei die Resonanzschaltung eine nichtlineare Resonanzschaltung (L1, FET1, C1;C2, C3) umfasst. Émetteur (10) selon l'une quelconque des revendications précédentes, dans lequel ledit circuit résonnant comprend un circuit résonnant non linéaire (L1, FET1, C1 ;C2, C3).
- 10A transmitter (10) as claimed in claim 9 wherein said resonant circuit (L1, FET1, C1; C2, C3) comprises an inductor (L1) coupled in series to a first capacitor (C1) to form a resonant circuit, the resonant circuit further comprising a controllable element (FET1), a second capacitor (C2) controllably coupled across said first capacitor (C1) by said controllable element (FET1), and a control device (C3, Vgate) to control said controllable element (FET1) such that a total effective capacitance of said first and second capacitor (C1, C2) varies over a duty cycle of an oscillatory signal in said resonant circuit, in particular wherein said controllable element comprises a transistor (FET1) and wherein said control device comprises a bias circuit (C3, Vgate) for said transistor (FET1). Sender (10) nach Anspruch 9, wobei die Resonanzschaltung (L1, FET1, C1; C2, C3) einen Induktor (L1) umfasst, der in Reihe mit einem ersten Kondensator (C1) geschaltet ist, um eine Resonanzschaltung zu bilden, wobei die Resonanzschaltung ferner umfasst,:ein steuerbares Element (FET1), einen zweiten Kondensator (C2), der durch das steuerbare Element (FET1) zu dem ersten Kondensator (C1) steuerbar parallelgeschaltet ist, und eine Steuervorrichtung (C3, Vgate) zur Steuerung des steuerbaren Elements (FET1), so dass eine effektive Gesamtkapazität des ersten und zweiten Kondensators (C1, C2) über eine relative Einschaltdauer eines Schwingungssignals in der Resonanzschaltung variiert, wobei das steuerbare Element einen Transistor (FET1) umfasst und wobei die Steuervorrichtung eine Vorspannungsschaltung (C3, Vgate) für den Transistor (FET1) umfasst. Émetteur (10) selon la revendication 9, dans lequel ledit circuit résonnant (L1, FET1, C1;C2, C3) comprend une inductance (L1) couplée en série à un premier condensateur (C1) pour former un circuit résonnant, le circuit résonnant comprenant en outre un élément contrôlable (FET1), un second condensateur (C2) couplé de manière contrôlable audit premier condensateur (C1) par ledit élément contrôlable (PET1), et un dispositif de commande (C3, Vgate) pour commander ledit élément contrôlable (FET1), de sorte qu'une capacité totale effective desdits premier et second condensateurs (C1, C2) varie sur un cycle de service d'un signal oscillant dans ledit circuit résonnant, en particulier, dans lequel ledit élément contrôlable comprend un transistor (FET1) et dans lequel ledit dispositif de commande comprend un circuit de polarisation (C3, Vgate) pour ledit transistor (FET1).
- 11An RFID tag interrogator (5), wireless power transmission system (1, 5), active RFID tag (1), or reader (5) for an active RFID tag (1), incorporating a transmitter (11) as claimed in any one of claims 1 to 10. Interrogateur d'étiquettes RFID (5) ;système sans fil de transmission électrique sans fil (1,5);étiquette RFID active (1) ;ou lecteur (5) pour une étiquette RFID (1), intégrant un émetteur (11) selon l'une quelconque des revendications 1 à 10. RFID-Etikettabfragevorrichtung (5), drahtloses Leistungsübertragungssystem (1, 5), aktives RFID-Etikett (1) oder Lesevorrichtung (5) für ein aktives RFID-Etikett (1), umfassend einen Sender (11) nach einem der Ansprüche 1 bis 10.
- 12A method of switching a resonant oscillation on and off in a resonant circuit (L1, C1) using a switch (FET5) coupled in series with said resonant circuit (L1, C1), the method comprising:driving said resonant circuit (L1, C1) with a stimulus;determining a relative phase between said stimulus and an output current from said resonant circuit (L1, C1);switching said oscillation off using said switch (FET5) and stopping said stimulus;andswitching said oscillation on and restarting said stimulus using said determined relative phase to control a relative timing between said switching on and said stimulus restarting. Procédé destiné à mettre sous/hors tension une oscillation de résonance dans un circuit résonnant (L1, C1) en utilisant un commutateur (FET5) couplé en série avec ledit circuit résonnant (L1, C1), le procédé comprenant les étapes ci-dessous coxxsistant à : exciter ledit circuit résonnant (L1, C1) avec un stimulus;déterminer une phase relative entre ledit stimulus et un courant de sortie provenant dudit circuit résonnant (L1, C1);mettre ladite oscillation hors tension en utilisant ledit commutateur (FET5) et mettre fin audit stimulus ;etmettre ladite oscillation sous tension et redémarrer ledit stimulus en utilisant ladite phase relative déterminé, en vue de commander une temporisation relative entre ladite mise sous tension et ledit redémarrage du stimulus. Verfahren zum Ein- und Ausschalten einer Resonanzschwingung in einer Resonanzschaltung (L1, C1) unter Verwendung eines Schalters (FET5), der in Reihe mit der Resonanzschaltung (L1, C1) geschaltet ist, wobei das Verfahren umfasst: Ansteuern der Resonanzschaltung (L1, C1) mittels eines Stimulus;Bestimmen einer relativen Phase zwischen dem Stimulus und einem von der Resonanzschaltung (L1, C1) abgegebenen Ausgangstrom;Ausschalten der Schwingung unter Verwendung des Schalters (FET5) und Abbruch des Stimulus;undEinschalten der Schwingung und Neustarten des Stimulus unter Verwendung der bestimmten relativen Phase, um einen relativen Takt zwischen dem Einschalten und Neustarten des Stimulus zu steuern.
- 13A method as claimed in claim 12 wherein said resonant circuit (L1, C1) comprises a non-linear resonant circuit (L1, FET1, C1;C2, C3). Procédé selon la revendication 12, dans lequel ledit circuit résonnant (L1, C1) comprend un circuit résonnant non linéaire (L1, FET1, C1;C2, C3). Verfahren nach Anspruch 12, wobei die Resonanzschaltung (L1, C1) eine nichtlineare Resonanzschaltung (L1, FET1, C1;C2, C3) umfasst.
- 14A method as claimed in claim 12 or 13 wherein said resonant circuit (L1, C1) forms part of a transmitter (10) and wherein said output current comprises a current to an antenna (L1, R1) of said transmitter (10). Procédé selon la revendication 12 ou 13, dans lequel ledit circuit résonnant (L1, C1) fait partie d'un émetteur (10) et dans lequel ledit courant de sortie comprend un courant vers une antenne (L1, R1) dudit émetteur (10). Verfahren nach Anspruch 12 oder 13, wobei die Resonanzschaltung (L1, C1) Teil eines Senders (10) ist und wobei der abgebene Strom einen Strom zu einer Antenne (L1, R1) des Senders (10) umfasst.
- 15A system comprising a transmitter according to claim 1, the system for switching a resonant oscillation on and off in said resonant circuit (L1, C1) using a switch (FET5) coupled in series with said resonant circuit (L1, C1), the system comprising:means for driving (FET3, FET4) said resonant circuit (L1, C1) with a stimulus;means for determining a relative phase (V_stop) between said stimulus and an output current from said resonant circuit (L1, C1);means for switching said oscillation off (V_stop) using said switch (FET5) and stopping said stimulus;andmeans for switching said oscillation on (V_stop) and restarting said stimulus using said determined relative phase to control a relative timing between said switching on and said stimulus restarting. System, umfassend einen Sender nach Anspruch 1, wobei das System zum Ein- und Ausschalten einer Resonanzschwingung in der Resonanzschaltung (L1, C1) einen Schalter (FET5) verwendet, der in Reihe mit der Resonanzschaltung (L1, C1) geschaltet ist, wobei das System umfasst: ein Mittel zum Ansteuern (FET3, FET4) der Resonanzschaltung (L1, C1) mittels eines Stimulus;ein Mittel zum Bestimmen einer relativen Phase (V_stop) zwischen dem Stimulus und einem von der Resonanzschaltung (L1, C1) abgegebenen Ausgangstrom;ein Mittel zum Ausschalten der Schwingung (V_stop) unter Verwendung des Schalters (FET5) und zum Abbruch des Stimulus;undein Mittel zum Einschalten der Schwingung (V_stop) und zum Neustarten des Stimulus unter Verwendung der bestimmten relativen Phase, um einen relativen Takt zwischen dem Einschalten und dem Neustarten des Stimulus zu steuern. Système comprenant un émetteur selon la revendication 1, le système étant destiné à mettre sous/hors tension une oscillation de résonance dans un circuit résonnant (L1, C1) en utilisant un commutateur (FET5) couplé en série avec ledit circuit résonnant (L1, C1), le système comprenant : un moyen pour exciter (FET3, FET4) ledit circuit résonnant (L1, C1) avec un stimulus ;un moyen pour déterminer une phase relative (V_stop) entre ledit stimulus et un courant de sortie provenant dudit circuit résonnant (L1, C1);un moyen pour mettre ladite oscillation hors tension (V_stop) en utilisant ledit commutateur (FET5) et pour mettre fin audit stimulus;etun moyen pour mettre ladite oscillation sous tension (V_stop) et pour redémarrer ledit stimulus en utilisant ladite phase relative déterminée, en vue de commander une temporisation relative entre ladite mise sous tension et ledit redémarrage du stimulus.
Independent claims15
49 paragraphs in 5 sections, as filed
FIELD OF INVENTION
Embodiments of the invention relate to the field of transmitters, particularly RFID transmitters that combine low loss with high rates of communication. Embodiments of the invention include RFID interrogators, active RFID tags, and general radio transmitters.
BACKGROUND TO THE INVENTION
In an RFID system resonant circuits are generally used in both the reader and the transponder. Their use increases the efficiency of energy transfer between the two circuits, which would otherwise be much lower, severely limiting the range of operation. Optimal read range may be achieved when the reader is stimulated at its resonance frequency, and this also matches the resonant frequency of the transponder.
The inventor's earlier patent applications <patcit id="pcit0001" dnum="GB2006050436W"><text>PCT/GB2006/050436</text></patcit> and <patcit id="pcit0002" dnum="GB2006050440W"><text>PCT/GB2006/050440</text></patcit> outline methods that allow the use of a high Q antenna in an RFID reader. These methods prevent the conventional problems of a high Q resonant system associated with a narrow bandwidth. Firstly, a resonator is described that naturally tunes to the stimulus frequency over a wide bandwidth, independent of the level of loss. Secondly, a feedback method is described that increases the speed of response of the reader to load modulation in the tag, whilst maintaining the low loss for slowly varying signals.
Document <patcit id="pcit0003" dnum="JP2007013790B"><text>JP2007013790</text></patcit> describes a radio transmitter and a phase modulator with reduced circuit scale, reduced power consumption and a wide frequency range.
An RFID interrogator provides for both tag to reader communication and also reader to tag communication. The prior art provides an improved efficiency method for tag to reader communications through the use of a high Q antenna. However, for reader to tag communications modulations of the reader energising field are required. A high Q resonator may not provide sufficient speed of response to allow amplitude modulations at the required rate simply through turn off and turn on of the stimulus. Obvious extensions to this are the use of a damping circuit to attenuate the reader field quickly at turn off, and drawing increased current from the power supply to accelerate the subsequent turn on.
The drawback of these prior art methods are that the turn on/off time may still be limited, and also they involve the dissipation of the resonance energy at each modulation. When data is passed from the reader to the tag, for example in programming or password exchange, the benefits of the high Q reader antenna will not be realised.
There is therefore the requirement for an RFID interrogator capable of both efficient tag to reader communication and also efficient reader to tag communication.
There are similar requirements for active RFID tags. Here a powered tag contains a transmitter for communication to a base station or another tag. A high Q resonator gives efficient operation increasing battery lifetime for given transmitter amplitude, however this also limits the achievable rate of amplitude modulations. The rate of modulation may be increased through the use of dissipation of the resonator energy, however this reduces the efficiency and the benefits of the high Q reader antenna will not be realised.
In fact any transmitter has limits on data rate when based on a resonator with a given Q. There is therefore a general requirement for a transmitter capable of both efficient operation and high speed communication.
SUMMARY OF THE INVENTION
The invention is set forth in the independent claims.
In embodiments the field generated by an RFID interrogator may be modulated at a high rate without the energy loss associated with dissipation of the resonance energy at each modulation cycle.
In other embodiments the field generated by an active RFID tag may be modulated at a high rate without the energy loss associated with dissipation of the resonance energy at each modulation cycle.
In still further embodiments the field generated by a general radio transmitter may be modulated at a high rate without the energy loss associated with dissipation of the resonance energy at each modulation cycle.
In embodiments the oscillation of the resonator is stopped suddenly and the resonance energy stored in the form of charge. Transients may be generated when the resonator is stopped and these may be controlled with a separate block to dissipate such unwanted currents.
The energy stored when the resonator is stopped may be recycled when the resonator is turned back on. The resonator may therefore be re-started in a high amplitude, without the usual time constant associated with ramp up of a resonant system from a low energy state.
The resonator may be a nonlinear resonator incorporating a MOSFET that is switched over on/off over a full cycle in response to the amplitude of a waveform in the resonator. Such a resonator has the beneficial property that it is able to adapt to the driving frequency over a given bandwidth, independent of the level of loss in the circuit. This allows a high Q resonator to be used in the RFID interrogator, active RFID tag, or general radio transmitter without a fine tuning circuit.
Alternatively the resonator may be a conventional linear resonator and may include a tuning circuit.
The RFID interrogator, active RFID tag, or general radio transmitter may incorporate feedback to reduce transient changes in the amplitude of the resonator. Implementation of feedback may improve the speed of response of the interrogator when used as a reader. Also the feedback may reduce transients in the amplitude of the resonator when it is restarted over the course of the modulation of the interrogator field. Alternatively the RFID interrogator may not implement feedback.
The interrogator, active RFID tag, or general radio transmitter may measure the behaviour in normal oscillation to determine the timing of the stimulus pulses relative to the resonance current. It may then use this to calculate a turn on time that will result in a more smooth turn on waveform. Alternatively the interrogator, active RFID tag, or general radio transmitter may turn on with a default timing and the feedback may reduce the transient changes in the resonator amplitude.
Modulation for the interrogator field may be used for reader to tag communications, including tag programming and password exchange for encryption. Modulation for the active RFID tag, or general radio transmitter may be used for data transfer.
The modulation may be used for half duplex reading in addition to full duplex reading.
The methods outlined in this patent, although focussed on RFID interrogation, may generally applied to amplitude modulation. These methods allow high-speed communication with high efficiency and improve on conventional methods that may dissipate the energy in the modulating signal. They may be applied to any application where decreased turn off or turn on times of an oscillatory signal are required.
The methods may be applied over a wide frequency band ranging from sub-sonic to microwave frequencies and beyond. More specifically to RFID, all common RFID frequency bands are included, such as 125kHz, 134kHz, 13.56MHz, 869MHz, 915MHz, etc.
Broadly we will describe the following areas <ol id="ol0001" compact="compact" ol-style=""><li>1. A resonator that is made to undergo amplitude modulation such that when it is turned off the energy is stored as potential energy in the resonator capacitors, and is subsequently reused when turned back on again.</li><li>2. A circuit incorporating the resonator of point 1, and also including a block to reduce the amplitude of turn off transients.</li><li>3. A circuit incorporating the resonator of point 1 or 2 that also uses feedback to minimise the transient changes to the amplitude of the resonator, which may be used to speed up the response of resonator to load modulation in a tag.</li><li>4. A circuit according to any of the above points that also uses feedback to minimise the transient changes to the amplitude of the resonator, which may be used reduce the amplitude and/or duration of turn on transients.</li><li>5. A circuit according to any of the above points that makes use of a nonlinear adaptive resonator.</li><li>6. A circuit according to any of the above points that makes use of a high Q antenna with a Q prefereably greater than 20 and more preferably greater than 50.</li><li>7. An RFID interrogator based on any of the above points.</li><li>8. A communication system based on any of the above points.</li><li>9. A wireless energy transfer system based on any of the above points.</li><li>10. An system that measures the timing of the stimulus pulses relative to the antenna current in normal operation and then uses this to calculate the timing for turn on. This may be used to improve the smoothness of the turn on waveform.</li></ol>
BRIEF DESCRIPTION OF THE DRAWINGS
<ul id="ul0001" list-style="none"><li><figref idref="f0001">Figure 1</figref> is a schematic of an interrogator incorporating a self-adaptive resonator, negative feedback, and a high Q antenna.</li><li><figref idref="f0002">Figure 2</figref> is a waveform showing the free decay of the antenna current.</li><li><figref idref="f0003">Figure 3</figref> is a schematic of an interrogator with a MOSFET to cut off the current in the antenna.</li><li><figref idref="f0004">Figure 4A</figref> is a graph of the antenna current when it is cut off, <figref idref="f0004">figure 4B</figref> is a graph of the control voltage to the cut-off MOSFET, and <figref idref="f0004">figure 4C</figref> is the corresponding graph of the resonance voltage.</li><li><figref idref="f0005">Figure 5</figref> is a schematic of an interrogator with an added block to dissipate the energy of the turn-off transient.</li><li><figref idref="f0006">Figure 6A</figref> is a waveform of the circuit in <figref idref="f0005">figure 5</figref> when the antenna current is cut off and the turn-off transient controlled. <figref idref="f0006">Figure 6B</figref> is the control voltage to the turn-off MOSFET, and figure 6V is the corresponding graph of the resonance voltage.</li><li><figref idref="f0007">Figure 7</figref> shows additional waveforms of the circuit in <figref idref="f0005">figure 5</figref>. <figref idref="f0007">Figure 7A</figref> shows the source voltage of the resonance MOSFET, <figref idref="f0007">figure 7B</figref> the drain voltage of the cut-off MOSFET. <figref idref="f0007">Figure 7C</figref> shows the control voltage to the MOFSET used for control of the turn-off transient.</li><li><figref idref="f0008">Figure 8</figref> shows waveforms of the circuit in <figref idref="f0005">figure 5</figref> where the resonator is both stopped and re-started. <figref idref="f0008">Figure 8A</figref> shows the antenna current, <figref idref="f0008">figure 8B</figref> shows the control voltage to the turn-off MOSFET, and <figref idref="f0008">figure 8C</figref> shows the resonance voltage.</li><li><figref idref="f0009">Figure 9a</figref> shows a block diagram of an active RFID tag and active RFID tag reader.</li><li><figref idref="f0009">Figure 9b</figref> shows a more detailed block diagram of the active RFID tag. <figref idref="f0010">Figure 9c</figref> shows a more detailed block diagram of the active RFID tag reader.</li><li><figref idref="f0011">Figure 10</figref> shows a block diagram of a general radio transmitter.</li></ul>
DETAILED DESCRIPTION OF EMBODIMENTS
<figref idref="f0001">Figure 1</figref> shows an embodiment of an RFID interrogator incorporating a nonlinear resonator. The resonator comprises an antenna with inductance 90mH and series resistance of 0.7Ω, giving a Q at 125kHz of approximately 100. The antenna is connected to a capacitive network C1, C2, C3 and MOSFET FET1. The capacitive network has two distinct states with the FET1 on and FET1 off. When FET1 is on the total capacitance is 43nF, since C2 is shorted out, whereas when FET1 is off the total capacitance is 15.6nF. FET1 is turned on or off depending on the amplitude of the waveform at the source potential, relative to the fixed gate voltage Vgate. The duty cycle of the FET1 on state varies with the resonance amplitude, which naturally adjusts to allow the resonator to match the 125kHz stimulus frequency. The amplitude of the resonator is controlled through Vgate, increasing as this voltage is reduced to negative voltages.
The stimulus to the resonator is supplied through the complementary MOSFET pair, FET3 and FET4, which are controlled through two voltage sources. The stimulus pulse is approximately 2.5 µs in duration, also with a deadband delay between the two voltage sources to prevent shoot through current.
The resonance energy supply is provided by the 5V voltage source that is connected to the positive stimulus pulse through shottkey diode D1. C10 provides a path for transient current before the required energy to maintain the resonance is drawn through D1. The combination of energy supply through D1 and C10 also provides feedback that reduces transient changes in the resonator amplitude in response to load modulations from a tag. This property has been shown to increase the speed of response of an RFID reader to load modulations, whilst still maintaining low loss for steady state powering signals. One alternative to this implementation of feedback is PWM feedback from the resonance amplitude to the width of the stimulus pulse supplied through FET3 and FET4.
<figref idref="f0002">Figure 2</figref> shows the antenna current as a function of time when the stimulus pulses are turned off at approximately 0.5ms. The resonator is initially oscillating with amplitude of approximately 1A. When the stimulus is turned off then this follows an exponential decay over the next 1ms. The low loss of the resonant system translates as a long decay time that does not allow for fast communication from the interrogator to the tag.
An alternative to the free decay is to stop the energy in the resonator with a switch such as a MOSFET. <figref idref="f0003">Figure 3</figref> shows such an arrangement where a low loss MOSFET FET5 is introduced in series with the resonance current. This is controlled by a voltage source V_stop. <figref idref="f0004">Figure 4</figref> shows waveforms that illustrate the behaviour when the resonance current is turned off.
<figref idref="f0004">Figure 4A</figref> shows the resonance current as a function of time and <figref idref="f0004">figure 4B</figref> the control voltage V_stop. FET5 is turned off during the negative portion of the antenna current, which completes its full cycle through the body diode of this MOSFET. At this point the stimulus pulses to the resonator are also halted. When the negative polarity current is complete then the MOSFET blocks the path of the resonance current, which then drops to low levels. The subsequent high frequency oscillation of the antenna current at lower amplitude is the result of the antenna resonating with a much lower capacitance corresponding to the drain capacitance of FET5 when turned off.
<figref idref="f0004">Figure 4C</figref> shows the corresponding graph of the resonance voltage as a function of time. Although the current drops to low levels after the MOSFET transition, the resonance voltage does not. The higher frequency of the remaining current manifests itself as a resonance voltage similar in magnitude to the earlier oscillation of the resonance.
The behaviour illustrated in <figref idref="f0004">figure 4</figref> does lead to an output field, dependent on the antenna current, that is useful for reader to tag communication. The amplitude of the field at the tag resonant frequency drops sharply at the end of one cycle, rather than the slow free decay shown in <figref idref="f0002">figure 2</figref>. However the subsequent high frequency oscillation is likely to cause problems with the generation of interference and EMC compliance failure.
<figref idref="f0005">Figure 5</figref> shows an embodiment, similar to <figref idref="f0003">figure 3</figref> but with an additional block that controls the oscillation of the resonator after the current is switched off by FET5. The new block comprises a diode D1, resistor R2, and MOSFET FET2. When the resonator is oscillating then FET2 is turned off by the control voltage V_trans. This prevents forward conduction through FET2 and the diode D 1 prevents conduction in the opposite direction through the body diode of FET2; the block is effectively isolated from the resonator. When FET5 is turned off to stop the resonator current, then FET2 is turned on for a duration of 8µs. When the negative portion of the antenna current completes and the resonator current is blocked then the resonance voltage jumps to positive values. However now that FET2 is on, this results in conduction through D1, R2 and FET2. The energy in the high frequency oscillation shown in <figref idref="f0004">figure 4</figref> is dissipated in R2 and the resonance stops cleanly.
<figref idref="f0006">Figure 6</figref> shows this behaviour with similar graphs to those shown in <figref idref="f0004">figure 4</figref>. Now the high frequency oscillation in the antenna current and resonance voltage is absent and the modulation of the interrogator field has near-ideal turn off characteristics. Additional graphs are shown in <figref idref="f0007">figure 7</figref> that show the final state of the resonator. <figref idref="f0007">Figure 7</figref> shows the voltage at the FET1 source, which jumps from negative values to approximately 0V once the antenna current is stopped. The corresponding voltage at FET5 drain shows a jump from 0V to approximately 50V. <figref idref="f0007">Figure 7C</figref> shows the control voltage V_trans, which turns on FET2 for 8ms.
The resonator current is close to zero when it is turned off, and nearly all the resonance energy is stored as charge in the capacitors. This charge is responsible for the voltage that results at the FET5 drain and is still available as energy available to restart the resonator when required. Graphs that illustrate the behaviour of the resonator when it is re-started are shown in <figref idref="f0008">figure 8</figref>.
<figref idref="f0008">Figure 8A</figref> shows the antenna current at a function of time when the resonator is stopped at approximately 0.1 ms and turned on again at 0.2ms. <figref idref="f0008">Figure 8B</figref> shows the corresponding voltage waveform of V_stop and <figref idref="f0008">figure 8C</figref> shows the resonance voltage. When the resonator is turned back on, V_stop jumps to 5V, turning on FET5 and allowing the resonance current to flow. At this point the stimulus pulses are also turned back on allowing the resonator to maintain its amplitude when re-started. The timing of the stimulus pulses and the turn on of the antenna current with V_stop may be adjusted to smooth the re-start behaviour. In this example the turn on takes place 100µs after turn off and this results in the stimulus pulses at a similar point in the resonance cycle right from turn on. If these are mismatched then there will be some transients in the amplitude at turn on, however these are minimised through the feedback present in the interrogator design.
The use of feedback is not critical for a smooth turn on however it does increase the tolerance in the accuracy of the turn on time that results in acceptable behaviour. The interrogator may measure the behaviour in normal oscillation to determine the timing of the stimulus pulses relative to the resonance current. It may then use this to calculate a turn on time that will result in a smooth waveform. Alternatively the interrogator may turn on with a default timing and the feedback may reduce the transient changes in the resonator amplitude.
In summary, this embodiment shows how a high Q resonator may be used in an RFID interrogator for fast reader to tag communications. The interrogator current may be turned off quickly, with the energy of the resonator stored as charge on the system capacitors. In the process unwanted signals may be generated as a result of the sharp turn off and a method for control of such signals has been described. When the resonator is re-started the stored energy may be released and the resonator started in a high amplitude state without a gradual ramp up. As a result the interrogator may have excellent turn off and turn on modulation characteristics allowing high speed reader to tag communications. The re-use of the resonance energy gives the interrogator high efficiency operation not only when used as a reader, but also for reader to tag communications.
The resonator used in the embodiments described is a nonlinear resonator that matches to the stimulus over a range of frequencies. Such a resonator may have advantages in high Q RFID systems, however there is no intended limitation to this class of resonator. In fact a conventional linear resonator may be employed in the same manner. The linear resonator may be stopped sharply with the energy stored for subsequent re-use and control of any transient oscillations generated. The linear resonator may also include feedback to minimise transients in the amplitude of the resonance, which may also speed up the response of the reader to load modulations in a tag.
The 125kHz frequency band chosen for the embodiments is purely by way of example. Applications of the invention are not limited to frequencies around this band, and extend to include all frequencies ranging from sub-sonic to microwave frequencies and beyond. More specifically to RFID, all common RFID frequency bands are included, such as 125kHz, 134kHz, 13.56MHz, 869MHz, 915MHz, and the like.
The modulation method may be used in an RFID interrogator for all reader to tag communications including tag programming and communication for encryption. It may also be employed for half duplex reading of a tag. In fact any communication that requires high speed and low loss may benefit from the methods disclosed within.
<figref idref="f0009">Figure 9a</figref> shows a further embodiment of the invention. Here an active tag 1 is shown comprising an antenna 2 attached to an electronics block 3 containing the components that resonate with the antenna and associated control, and also a battery 4 to power the active tag. The active tag communicates with a reader 5, which also includes an antenna 6, an electronics block 7, and a power source 8. The power source may be a battery or a mains power supply. The reader may also be another active tag capable of communicating with the active tag 1.
<figref idref="f0009">Figure 9b</figref> shows an embodiment of the active tag shown in <figref idref="f0009">figure 9a</figref>. This diagram shows the antenna 2 and battery 4 together with a more detailed block diagram of the electronics block 3. The electronics block comprises a resonance driver that drives the antenna and resonance capacitors. The resonance capacitors may form a nonlinear resonator that adapts to the stimulus frequency, as shown in earlier embodiments, or a conventional linear resonator. Also shown is a resonant current switch that can turn the resonance current on and off, storing the resonance energy as charge on the resonance capacitors. The resonance current switch may be a mosfet. Lastly, there is a transient control block that controls the transients that would otherwise be generated when the resonator is stopped or started.
<figref idref="f0010">Figure 9c</figref> shows an embodiment of the reader shown in <figref idref="f0009">figure 9b</figref>. This diagram shows the antenna 6 and power source 8 together with a more detailed block diagram of the electronics block 7. The electronics block comprises a resonance driver that drives the antenna and resonance capacitors. The resonance capacitors may form nonlinear resonator that adapts to the stimulus frequency, as shown in earlier embodiments, or a conventional linear resonator. Also shown is a resonant current switch that can turn the resonance current on and off, storing the resonance energy as charge on the resonance capacitors. The resonance current switch may be a mosfet. Lastly, there is a transient control block that controls the transients that would otherwise be generated when the resonator is stopped or started.
In the embodiment shown in <figref idref="f0009 f0010">figures 9a to 9c</figref> the methods outlined herein have been applied to both an active tag and an active tag reader. It is noted that these methods may equally well be applied in the tag only, or in the reader only, and there is no implied limitation to using them in combination.
<figref idref="f0011">Figure 10</figref> shows a block diagram of a general purpose radio transmitter. This contains the same elements as the active tag and active tag reader including an antenna 9, power supply 11, and an electronics block 10. The electronics block comprises a resonance driver that drives the antenna and resonance capacitors. The resonance capacitors may form a nonlinear resonator that adapts to the stimulus frequency, as shown in earlier embodiments, or a conventional linear resonator. Also shown is a resonant current switch that can turn the resonance current on and off, storing the resonance energy as charge on the resonance capacitors. The resonance current switch may be a mosfet. Lastly, there is a transient control block that controls the transients that would otherwise be generated when the resonator is stopped or started.
Through the use of the resonance current switch and the transient control block the general purpose radio transmitter may be used to achieve high speed amplitude modulation with a high Q resonator. This offers improved performance over a conventional system that would limit the speed of data modulation, or alternatively would reduce the efficiency of the system, loosing the benefits of the high Q resonator. In fact for any resonator Q, this approach offers increased speed of amplitude modulation, even for lower values of Q. When transmitting a fixed data length then the duration of the transmission may be reduced, which not only allows for faster communications but also reduced power. The system may be setup to use this reduced power requirement for increased battery lifetime, or alternatively the battery lifetime may be kept constant and the resonator amplitude increased. This will increase the range of the transmitter.
No doubt many other effective alternatives will occur to the skilled person. It will be understood that the invention is not limited to the described embodiments and encompasses modifications apparent to those skilled in the art lying within the scope of the claims appended hereto.
Contents5
11 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4 Sheet 5 Sheet 6 Sheet 7 Sheet 8 Sheet 9 Sheet 10 Sheet 11
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| Document | Relation | Office | Cited during |
|---|---|---|---|
| JP2007013790A | Cites | Japan | Examiner |
| JP2007013790A | Cites | Japan | – |
| WO2007068974A | Cites | World Intellectual Property Organization (WIPO) | – |
| WO2007068975A | Cites | World Intellectual Property Organization (WIPO) | – |
9 priority claims, no other members on record
Priority claims9
| Document | Office | Kind | Date |
|---|---|---|---|
| 0709575 | United Kingdom | A | |
| 0709575 | United Kingdom | A | |
| 0709575 | United Kingdom | – | |
| 2008050335 | United Kingdom | W | |
| 2008050335 | United Kingdom | W | |
| 0709575 | – | – | – |
| GB20070009575 | – | – | – |
| GB2008050335 | – | – | – |
| WO2008GB50335 | – | – | – |
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Numbers
- Publication
- 2156366
- Publication, DOCDB
- 2156366
- Publication, EPODOC
- EP2156366
- Application
- 8737259
- Application, DOCDB
- 08737259
- Application, EPODOC
- EP20080737259
Titles3
- German
- RFID-SENDER
- English
- RFID TRANSMITTER
- French
- EMETTEUR RFID
Classification
- CPC, 3
- G06K7/0008
- H03K17/162
- H04B1/02
- IPC, 3
- G06K7 00
- H03K17 04
- H04B1 02
Designated states34
- Contracting states, 34
- Austria
- Belgium
- Bulgaria
- Switzerland
- Cyprus
- Czechia
- Germany
- Denmark
- Estonia
- Spain
- Finland
- France
- United Kingdom
- Greece
- Croatia
- Hungary
- Ireland
- Iceland
- Italy
- Liechtenstein
- Lithuania
- Luxembourg
- Latvia
- Monaco
and 10 moreShow fewer
- Malta
- Netherlands (Kingdom of the)
- Norway
- Poland
- Portugal
- Romania
- Sweden
- Slovenia
- Slovakia
- Türkiye