IP Library Granted Patent US 12,237,856
Granted Patent B2
US 12,237,856 · App. 18/439,891 · Granted Feb 25, 2025

Q-band block down converter

Inventors: Kumud Patel (Clarksburg, MD); Minheng Shan (Rockville, MD); Guojun Chen (Damascus, MD)
Assignee: Hughes Network Systems, LLC
H04B1/1027H03L7/0991H04B1/40
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Quick Facts
Patent No.
US 12,237,856
App. No.
18/439,891
Granted
Feb 25, 2025
Kind
B2
Abstract

In some implementations, a radiofrequency down converter comprises an input port to receive a radiofrequency input signal, and the down converter includes a first bandpass filter configured to filter the input signal. The down converter includes a mixer stage coupled to the bandpass filter, the mixer stage being configured to generate a mixer output signal by processing the filtered input signal using a gain adjustment device, one or more amplifiers, and a mixer. The down converter includes a signal adjustment stage coupled to receive the mixer output signal, the signal adjustment stage comprising: a temperature compensation device configured to compensate for changes in signal gain due to changes in temperature; a second bandpass filter; a gain adjustment device; one or more amplifiers; and a low pass filter. The down converter comprises an output port coupled to output an adjusted mixer output signal from the signal adjustment stage.

Claims (42)

1. A radiofrequency down converter, comprising:

an input port to receive a radiofrequency input signal;

a first bandpass filter comprising a microwave waveguide, the first bandpass filter being coupled to the input port and being configured to filter the radiofrequency input signal;

a frequency generator and a frequency multiplier that are used to generate an oscillator signal, wherein the frequency generator comprises at least one phase-locked loop and is configured to output a first signal having a first frequency, and wherein the frequency multiplier is configured to receive the first signal and output a second signal that has a second frequency that is a multiple of the first frequency;

a mixer stage coupled to the first bandpass filter, the mixer stage being configured to generate a mixer output signal by processing the filtered radiofrequency input signal using a frequency mixer that receives the oscillator signal;

a signal adjustment stage coupled to receive the mixer output signal, the signal adjustment stage comprising a second bandpass filter; and

an output port coupled to output an adjusted mixer output signal from the signal adjustment stage.

2. The radiofrequency down converter of claim 1 , wherein the signal adjustment stage further comprises a gain slope compensation device configured to reduce variation in frequency response gain across frequencies in the adjusted mixer output signal.

3. The radiofrequency down converter of claim 1 , wherein the radiofrequency down converter further comprises a temperature compensation device configured to compensate for changes in signal gain or attenuation due to changes in temperature.

4. The radiofrequency down converter of claim 1 , further comprising a microwave isolator located between the first bandpass filter and the mixer stage, the microwave isolator being configured to propagate microwave signals from the first bandpass filter to the mixer stage and to block propagation of microwave signals from the mixer stage to the first bandpass filter.

5. The radiofrequency down converter of claim 1 , wherein the radiofrequency down converter is configured to downconvert an input signal in a band within a range from 36 GHz to 46 GHz to an intermediate frequency signal in a band within a range from 1 GHz to 6 GHz.

6. The radiofrequency down converter of claim 1 , wherein the radiofrequency down converter is configured to downconvert input signals from 40 GHz to 42 GHz to an intermediate frequency of 2 GHz to 4 GHz.

7. The radiofrequency down converter of claim 1 , wherein the frequency generator is a frequency generating stage that comprises a first phase-locked loop coupled to receive a frequency reference signal, a second phase-locked loop coupled to receive output of the first phase-locked loop, and a third phase-locked loop coupled to receive output of the second phase-locked loop; and

wherein the first phase-locked loop is a digital phase-locked loop, wherein the second phase-locked loop that is a cleanup phase-locked loop, and wherein the third phase-locked loop configured to provide an output signal for the frequency generating stage at a predetermined frequency.

8. The radiofrequency down converter of claim 1 , further comprising an oven-controlled crystal oscillator coupled to provide an output signal to the at least one phase-locked loop.

9. The radiofrequency down converter of claim 8 , wherein the radiofrequency down converter comprises a temperature compensation device configured to compensate for changes in signal gain due to changes in temperature caused by the oven-controlled crystal oscillator.

10. A radiofrequency down converter, comprising:

an input port to receive a radiofrequency input signal;

a first bandpass filter comprising a microwave waveguide, the first bandpass filter being coupled to the input port and being configured to filter the radiofrequency input signal;

a mixer stage coupled to the first bandpass filter, the mixer stage being configured to generate a mixer output signal by processing the filtered radiofrequency input signal using a frequency mixer that receives an oscillator signal;

a signal adjustment stage coupled to receive the mixer output signal and to provide an intermediate frequency output signal, the signal adjustment stage comprising a second bandpass filter; and

an output port coupled to output an adjusted mixer output signal from the signal adjustment stage, wherein the radiofrequency down converter is configured to downconvert input signals in a band within a range from 36 GHz to 46 GHz to output signals in a band within a range from 1 GHz to 6 GHz.

11. The radiofrequency down converter of claim 10 , wherein the signal adjustment stage further comprises a gain slope compensation device configured to reduce variation in frequency response gain across frequencies in the adjusted mixer output signal.

12. The radiofrequency down converter of claim 10 , wherein the radiofrequency down converter further comprises a temperature compensation device configured to compensate for changes in signal gain or attenuation due to changes in temperature.

13. The radiofrequency down converter of claim 1 , further comprising a microwave isolator located between the first bandpass filter and the mixer stage, the microwave isolator being configured to propagate microwave signals from the first bandpass filter to the mixer stage and to block propagation of microwave signals from the mixer stage to the first bandpass filter.

14. A method comprising:

generating a first oscillator signal at a predetermined frequency using one or more phase-locked loops of a down converter;

generating a second oscillator signal that is a multiple of the first oscillator signal using a frequency multiplier of the down converter;

receiving a radiofrequency signal at an input of the down converter;

filtering the radiofrequency signal using a first bandpass filter of the down converter, the first bandpass filter comprising a microwave waveguide;

mixing the filtered radiofrequency signal with the second oscillator signal using a frequency mixer of the down converter;

filtering output of the frequency mixer using a second bandpass filter of the down converter; and

outputting, as an output of the down converter, an intermediate frequency signal based on output of the second bandpass filter.

15. The method of claim 14 , further comprising receiving input of a reference signal at a first frequency;

wherein generating the first oscillator signal comprises generating the first oscillator signal using a series of multiple phase-locked loops that increase in frequency over multiple stages, the first oscillator signal being generated in alignment with respect to the reference signal.

16. The method of claim 14 , comprising adjusting gain applied to signals output from the frequency mixer in response to a control signal from one or more processors of the down converter.

17. The method of claim 14 , wherein the down converter comprises multiple temperature compensation elements placed at different positions in a signal path through the down converter to adjust for temperature-induced variation of signal gain of different components of the down converter.

18. The method of claim 14 , wherein the down converter is configured to downconvert an input signal in a band within a range from 36 GHz to 46 GHz to an intermediate frequency signal in a band within a range from 1 GHz to 6 GHz.

19. The method of claim 14 , wherein the down converter is configured to downconvert input signals from 40 GHz to 42 GHz to an intermediate frequency of 2 GHz to 4 GHz.

20. The method of claim 14 , wherein the down converter is configured to generate the first oscillator signal synchronized with a reference signal at substantially 10 Ghz;

wherein the second oscillator signal has a frequency of substantially 9.5 GHz; and

wherein the frequency multiplier is configured to output the second oscillator signal at substantially 38 GHz.

Assignments (3)
SECURITY INTEREST Recorded May 20, 2025
From: HUGHES NETWORK SYSTEMS, LLC,
To: U.S. BANK TRUST COMPANY, NATIONAL ASSOCIATION
Reel/Frame 071166/0167 →
SECURITY INTEREST Recorded May 14, 2024
From: HUGHES NETWORK SYSTEMS, LLC
To: U.S. BANK NATIONAL ASSOCIATION
Reel/Frame 067407/0535 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 13, 2024
From: PATEL, KUMUD; CHEN, GUOJUN; SHAN, MINHENG
To: HUGHES NETWORK SYSTEMS, LLC
Reel/Frame 066448/0207 →
Continuity (3)
Continuation 17940750 · Sep 8, 2022
Provisional Application 63242438 · Sep 9, 2021
Related Publication 20240348275A1 · Oct 17, 2024
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