EP1538546A2

Low voltage signal stripping circuit for an RFID reader

Abstract

A reader of an RFID system has excitation circuitry for generating a higher voltage excitation signal, receiving circuitry for reading a lower voltage transponder signal and an antenna coupled with the excitation circuitry for transmitting the excitation signal and coupled with the receiving circuitry for receiving the transponder signal. The receiving circuitry includes a low voltage signal stripping circuit coupled with the antenna for isolating the transponder signal from the excitation signal preliminary to the receiving circuitry reading the transponder signal. The bulk of the components of the low voltage signal stripping circuit are low voltage components, which can be included in an application specific integrated circuit.

EP1538546A2, drawing sheet 1
Sheet 1 of 4

Term

Term ended

Projected expiry passed 1 December 2024, 1.8 years ago.

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  2. Filed
  3. Published
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  5. Today

18 claims: 11 independent, 7 dependent

  1. 1
    A reader of an RFID system comprising:excitation circuitry for generating a higher voltage excitation signal;receiving circuitry for reading a lower voltage transponder signal;an antenna coupled with said excitation circuitry for transmitting said excitation signal and coupled with said receiving circuitry for receiving said transponder signal;and a low voltage signal stripping circuit included in said receiving circuitry coupled with said antenna for isolating said transponder signal from said excitation signal preliminary to said receiving circuitry reading said transponder signal, said low voltage signal stripping circuit comprising an inlet resistor, an amplifier, a feedback circuit and a DC shift voltage or a DC shift current source.
  2. 5
    The reader of any preceding claim, wherein said inlet resistor is a high voltage component and said amplifier and said feedback circuit are low voltage components.
  3. 6
    The reader of any preceding claim, wherein said amplifier and said feedback circuit are included in an application specific integrated circuit.
  4. 7
    The reader of any preceding claim, further comprising a summing node positioned upstream of said amplifier and downstream of said inlet resistor, said feedback circuit and said DC shift voltage or said DC shift current source to sum outputs from said inlet resistor, said feedback circuit and said DC shift voltage or said DC shift current source.
  5. 9
    The reader of any preceding claim , wherein said amplifier has a first input coupled with said inlet resistor and a second input tied to a reference voltage.
  6. 10
    A method for processing a high voltage antenna signal comprising the steps of:receiving a high voltage antenna signal containing readable information from an antenna at an input of a low voltage stripping circuit;limiting a voltage of said high voltage antenna signal to create a low voltage output signal containing said readable information;creating a DC shift voltage or a DC shift current;selectively distributing a feedback signal from an amplifier having an output operating range;creating a summed signal containing said readable information by summing said low voltage output signal, said selectively distributed feedback signal, and said DC shift voltage or said DC shift current;passing said summed signal through said amplifier to create an amplifier output signal containing said readable information;and reading said readable information on said amplifier output signal.
  7. 14
    The method of any of claims 10 to 13, wherein said voltage of said high voltage antenna signal is limited by passing said high voltage antenna signal through an inlet resistor.
  8. 15
    The method of any of claims 10 to 14, wherein said amplifier has a first input and a second input held to substantially the same voltage value, wherein said summed signal is input to said first input and a voltage reference is input to said second input.
  9. 16
    The method of any of claims 10 to 15, wherein said amplifier has an inverting input and a non-inverting input held to substantially the same voltage value, wherein said summed signal is input to said inverting input and a voltage reference is input to said non-inverting input.
  10. 17
    The method of any of claims 10 to 16, wherein said feedback signal is selectively distributed by a feedback circuit having a first pathway with a low impedance to said feedback signal when a voltage of said feedback signal is above an upper limit of a predetermined voltage range, a second pathway with a low impedance to said feedback signal when said voltage of said feedback signal is below a lower limit of said predetermined voltage range, and a third pathway with a low impedance to said feedback signal when a voltage of said feedback signal is within said predetermined voltage range.
  11. 18
    The method of any of claims 10 to 17, wherein said amplifier provides gain to said summed signal varying as a function of a voltage of said feedback signal distributed to said summed signal, said gain being reduced when said voltage of said feedback signal distributed to said summed signal is outside said predetermined voltage range.