IP Library Granted Patent US 7,772,997
Granted Patent B2
US 7,772,997 · App. 11/843,781 · Granted Aug 10, 2010

Reducing leakage noise in directly sampled radio frequency signals

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Quick Facts
Patent No.
US 7,772,997
App. No.
11/843,781
Granted
Aug 10, 2010
Kind
B2
Abstract

The present disclosure includes a system and method for reducing leakage noise in directly sampled radio frequency signals. In some implementations, a Radio Frequency IDentification (RFID) reader includes an antenna, an Analog-to-Digital Converter (ADC), a synthesizer module, and a Carrier Noise Reduction (CNR) module. The antenna is configured to receive Radio Frequency (RF) signals and pass the RF signals to a receive path. The ADC is configured to directly sample RF signals in the receive path in accordance with a clock signal and generate a digital signal. The synthesizer module is configured to generate the clock signal and a signal used to upconvert a transmitter signal. The clock signal and the upconversion signal are phase locked. The CNR module is configured to reduce leakage noise in the receive path.

Claims (48)

1. A Radio Frequency IDentification (RFID) reader, comprising:

an antenna configured to receive Radio Frequency (RF) signals and pass the RF signals to a receive path;

an Analog-to-Digital Converter (ADC) configured to directly sample RF signals in the receive path in accordance with a clock signal and generate a digital signal;

a synthesizer module configured to generate the clock signal and an upconversion a signal used to upconvert a transmitter signal, wherein the clock signal and the upconversion signal are phase locked; and

a Carrier Noise Reduction (CNR) section configured to reduce leakage noise in the receive path.

2. The RFID reader of claim 1 , wherein the synthesizer module comprises:

a reference oscillator configured to generate a signal oscillating at a substantially stable frequency; and

a frequency synthesizer configured to receive the oscillating signal and generate two control signals to phase-lock the clock signal and the upconversion signal to the reference oscillator, wherein the clock signal and the upconversion signal are phase-locked.

3. The RFID reader of claim 2 , wherein the reference oscillator comprises a temperature-compensated crystal oscillator.

4. The RFID reader of claim 2 , wherein the reference oscillator comprises a frequency-stable reference oscillator, the synthesizer module further comprising:

a second oscillator configured to generate the ADC clock signal based, at least in part, on a first of the two phase-locked-loop control signals; and

a third, oscillator configured to generate the upconversion signal based, at least in part, on a second of the two phase-locked loop control, signals.

5. The RFID reader of claim 4 , wherein the second oscillator comprises a voltage controlled crystal oscillator.

6. The RFID reader of claim 4 , wherein the third oscillator comprises a voltage controlled oscillator.

7. The RFID reader of claim 1 , further comprising:

a controller configured to generate control signals used to generate an RF signal for reducing leakage signals in the receive path; and

wherein the CNR module is further configured to subtract the reduction signal from the leakage signal in the receive path.

8. The RFID reader of claim 1 , wherein the directly sampled RF signal is equal to or greater than 800 MegaHertz (MHz).

9. The RFID reader of claim 1 , further comprising a Band Pass Filter (BPF) configured to permit the desired frequency band of RF signals received by the antenna to pass to the ADC while rejecting undesired frequencies.

10. The RFID reader of claim 1 , wherein leakage transmitter signal power is reduced by at least 20 dB.

11. The reader of claim 1 , further comprising:

a Digital Frequency Synthesizer (DFS) configured to generate waveforms based, at least in part, on index associated with accumulated phase; and

a mixer configured to mix the digital signal and the generated waveform to down convert the digital signal to a baseband signal for demodulation.

12. The reader of claim 11 , wherein the DFS includes a sinusoid table with a length equal to a frequency of the clock signal divided by the channel spacing.

13. A method, comprising:

receiving Radio Frequency (RF) signals and pass the RF signals to a receive path;

directly sampling RF signals in the receive path in accordance with a clock signal to generate a digital signal;

generating the clock signal and an upconversion a signal used to upconvert a transmitter signal, wherein the clock signal and the upconversion signal are phase locked; and

reducing leakage noise in the receive path.

14. The method of claim 13 , wherein generating the clock signal and the upconversion signal comprises:

generating a signal oscillating at a substantially stable frequency; and

generating two control signals to phase-lock the clock signal and the upconversion signal to a reference oscillator, such that the clock signal and the upconversion signal are mutually phase-locked.

15. The method of claim 14 , wherein the oscillating signal is generated from a temperature compensated crystal oscillator.

16. The method of claim 14 , wherein generating the clock signal and the upconversion signal comprises:

generating an ADC clock signal based, at least in part, on a first of a two phase-locked-loop control signals; and

generating the upconversion signal based, at least in part, on a second of the two phase-locked loop control signals.

17. The method of claim 16 , wherein the ADC clock signal is generated from a voltage controlled crystal oscillator.

18. The method of claim 16 , wherein the upconversion signal is generated from a voltage controlled oscillator.

19. The method of claim 13 , further comprising:

generating control signals used to generate an RF signal for reducing leakage signals in the receive path; and

subtracting the reduction signal from the leakage signal in the receive path.

20. The method of claim 13 , wherein the directly sampled RF signal is equal to or greater than 800 MegaHertz (MHz).

21. The method of claim 13 , further comprising filtering out a band of the RF signals in the receive path prior to directly sampling the band of the RF signals.

22. The method of claim 13 , wherein leakage transmitter signal power is reduced by at least 20 dB.

23. The method of claim 13 , further comprising:

a Digital Frequency Synthesizer (DFS) configured to generate waveforms based, at least in part, on index associated with accumulated phase; and

a mixer configured to mix the digital signal and the generated waveform to down convert the digital signal to a baseband signal for demodulation.

24. The method of claim 23 , wherein the DFS includes a sinusoid table with a length equal to a frequency of the clock signal divided by the channel spacing.

Assignments (7)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 9, 2017
From: 3M INNOVATIVE PROPERTIES COMPANY
To: NEOLOGY, INC.
Reel/Frame 043508/0104 →
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE'S ADDRESS PREVIOUSLY RECORDED ON REEL 027395 FRAME 0623. ASSIGNOR(S) HEREBY CONFIRMS THE MERGER DOCUMENT. Recorded Jan 11, 2013
From: SIRIT TECHNOLOGIES INC.
To: SIRIT INC.
Reel/Frame 029610/0643 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 12, 2012
From: SIRIT INC.
To: 3M INNOVATIVE PROPERTIES COMPANY
Reel/Frame 029277/0188 →
RELEASE AND REASSIGNMENT OF PATENTS Recorded Feb 24, 2012
From: BANK OF MONTREAL
To: SIRIT CORP.
Reel/Frame 027756/0785 →
MERGER Recorded Dec 15, 2011
From: SIRIT TECHNOLOGIES INC.
To: SIRIT INC.
Reel/Frame 027395/0623 →
SECURITY AGREEMENT Recorded May 10, 2011
From: SIRIT CORP.
To: BANK OF MONTREAL, AS COLLATERAL AGENT
Reel/Frame 026254/0216 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 23, 2007
From: FREDERICK, THOMAS J.; REPKE, JOSEPH P.
To: SIRIT TECHNOLOGIES INC., A CORPORATION OF CANADA
Reel/Frame 019738/0451 →