IP Library Granted Patent US 11,496,177
Granted Patent B2
US 11,496,177 · App. 16/917,445 · Granted Nov 8, 2022

Agile navigation transmitter system that includes a single amplifier system

Inventors: Gregory William Gerten (Marysville, OH); Gary Louis Green (Vandalia, OH); Rachel Eunice Reed (Dayton, OH); Jared T. Emerson (Columbus, OH); Sean Joseph Stasiak (Bel Air, MD); Steven John Billman (Riverside, OH)
Assignee: KBR Wyle Services, LLC
H04B1/406G06F16/9017H03D7/163H04B1/001H04B1/16H04B1/18H04B1/28G01S19/07G01S19/243G01S19/31G01S19/34G01S19/37H04B17/318H04B2001/0491
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Quick Facts
Patent No.
US 11,496,177
App. No.
16/917,445
Granted
Nov 8, 2022
Kind
B2
Abstract

A method and transmission system for amplifying and providing navigation signals. The system comprises a splitter circuit configured to receive a plurality of radio frequency (RF) signals oscillating at at least two different frequencies f 1 and f 2 . The splitter circuit is further configured to split and forward the RF signals having the f 1 frequency to a first bandpass filter and the RF signals having the f 2 frequency to a second bandpass filter. The system further comprises a first tunable amplifier configured to receive the RF signals from the first bandpass filter. The system further comprises a second tunable amplifier configured to receive the RF signals from the second bandpass filter at substantially the same time as the first tunable amplifier's receipt of the RF signals from the first bandpass filter. The first tunable amplifier is further configured to amplify its RF signals across a first band centered around the frequency f 1 . The second tunable amplifier is further configured to amplify its RF signals across a second band centered around the frequency f 2 . The amplified RF signals are fed substantially concurrently into a mixer circuit for transmission via an RF antenna to a navigation receiver.

Claims (37)

1. A transmission system for providing navigation signals, the system comprising:

a splitter circuit configured to receive a plurality of radio frequency (RF) signals oscillating at at least two different frequencies f 1 and f 2 , and configured to split and forward the RF signals having the f 1 frequency to a first bandpass filter and the RF signals having the f 2 frequency to a second bandpass filter;

a first tunable amplifier configured to receive the RF signals from the first bandpass filter;

a second tunable amplifier configured to receive the RF signals from the second bandpass filter at substantially the same time as the first tunable amplifier's receipt of the RF signals from the first bandpass filter; and

a digital processing circuit configured to generate the RF signals in digital form based on pre-stored signal characteristics specifying a plurality of navigation signals,

wherein the first tunable amplifier is further configured to amplify its RF signals across a first band centered around the frequency f 1 , and the second tunable amplifier is further configured to amplify its RF signals across a second band centered around the frequency f 2 , and the amplified RF signals are fed substantially concurrently into a mixer circuit for transmission via an RF antenna to a navigation receiver.

2. The transmission system of claim 1 , wherein the first and second tunable amplifiers amplify the RF signals without an up-conversion to a higher frequency prior to transmission via the RF antenna.

3. The transmission system of claim 1 , further comprising the mixer circuit and the mixer circuit is configured to mix and feed the RF signals into the RF antenna without an up-conversion to a higher frequency prior to transmission via the RF antenna.

4. The transmission system of claim 1 , wherein the tunable bandpass filters and tunable amplifiers are integrated into a single amplifier circuit.

5. The transmission system of claim 1 , wherein the RF signals are in analog form suitable for transmission over the RF antenna.

6. The transmission system of claim 1 , further comprising a controller component configured to provide the number of RF signals “n” and bands to the splitter circuit, wherein “n” is greater or equal to 2.

7. The transmission system of claim 1 , further comprising a non-volatile memory device configured to store the signal characteristics at time of manufacturing of the transmission system and maintain integrity of and ability to retrieve the signal characteristics after a loss of power to the transmission system.

8. The transmission system of claim 1 , further comprising a wideband filter configured to receive and filter the amplified RF signals prior to delivery to the RF antenna.

9. The transmission system of claim 1 , further comprising a reference timing source and ephemeris reference source in communication with a digital processing circuit that generates the RF signals.

10. The transmission system of claim 1 , further comprising the first and second bandpass filters, wherein the first bandpass filter is tunable for a band surrounding the frequency f 1 and the second bandpass filter is tunable for a band surrounding the frequency f 2 .

11. A method of amplifying and providing navigation signals to a navigation receiver, the method comprising:

receiving a plurality of radio frequency (RF) signals oscillating at at least two different frequencies f 1 and f 2 ;

splitting and forwarding the RF signals having the f 1 frequency to a first bandpass filter and the RF signals having the f 2 frequency to a second bandpass filter;

receiving the RF signals from the first bandpass filter;

receiving the RF signals from the second bandpass filter at substantially the same time as the first tunable amplifier's receipt of the RF signals from the first bandpass filter;

amplifying by a first tunable amplifier the RF signals received from the first bandpass filter across a first band centered around the frequency f 1 ;

amplifying by a second tunable amplifier the RF signals received from the second bandpass filter across a second band centered around the frequency f 2 ;

feeding the amplified RF signals substantially concurrently into a mixer circuit for transmission via an RF antenna to the navigation receiver; and

generating the RF signals by a digital processing circuit in digital form based on pre-stored signal characteristics specifying a plurality of navigation signals.

12. The method of claim 11 , wherein feeding the RF signals into the mixer circuit comprises maintaining the RF signals at substantially the same frequencies f 1 and f 2 without an up-conversion to a higher frequency prior to transmission via the RF antenna.

13. The method of claim 11 , further comprising mixing and feeding the RF signals into the RF antenna without an up-conversion to a higher frequency prior to transmission via the RF antenna.

14. The method of claim 11 , wherein the tunable bandpass filters and tunable amplifiers are integrated into a single amplifier circuit.

15. The method of claim 11 , wherein the RF signals are and remain in analog form suitable for transmission over the RF antenna during splitting and amplification.

16. The method of claim 11 , further comprising providing the number of RF signals “n” and bands to a splitter circuit that is configured to perform splitting and forwarding of the RF signals, wherein “n” is greater or equal to 2.

17. The method of claim 11 , further comprising storing in a non-volatile memory device the signal characteristics at time of manufacturing to maintain integrity of and ability to retrieve the signal characteristics after a loss of power.

18. The method of claim 11 , further comprising filtering with a wideband filter the amplified RF signals prior to delivery to the RF antenna.

19. A transmission system for providing navigation signals, the system comprising:

a splitter circuit configured to receive a plurality of radio frequency (RF) signals oscillating at at least two different frequencies f 1 and f 2 , and configured to split and forward the RF signals having the f 1 frequency to a first bandpass filter and the RF signals having the f 2 frequency to a second bandpass filter;

a first tunable amplifier configured to receive the RF signals from the first bandpass filter;

a second tunable amplifier configured to receive the RF signals from the second bandpass filter at substantially the same time as the first tunable amplifier's receipt of the RF signals from the first bandpass filter; and

a reference timing source and ephemeris reference source in communication with a digital processing circuit that generates the RF signals,

wherein the first tunable amplifier is further configured to amplify its RF signals across a first band centered around the frequency f 1 , and the second tunable amplifier is further configured to amplify its RF signals across a second band centered around the frequency f 2 , and the amplified RF signals are fed substantially concurrently into a mixer circuit for transmission via an RF antenna to a navigation receiver.

Assignments (4)
CONFIRMATORY LICENSE Recorded Aug 2, 2024
From: KBR WYLE SERVICES LLC
To: GOVERNMENT OF THE UNITED STATES AS REPRESENTED BY THESECRETARY OF THE AIR FORCE
Reel/Frame 068292/0423 →
MERGER Recorded Sep 2, 2022
From: CENTAURI, LLC
To: KBR WYLE SERVICES, LLC
Reel/Frame 060984/0467 →
SECURITY INTEREST Recorded Jan 6, 2021
From: CENTAURI, LLC
To: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 054827/0992 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 21, 2020
From: GERTEN, GREGORY WILLIAM; GREEN, GARY LOUIS; REED, RACHEL EUNICE; EMERSON, JARED T.; STASIAK, SEAN JOSEPH; BILLMAN, STEVEN JOHN
To: CENTAURI, LLC
Reel/Frame 053271/0729 →
Continuity (2)
Provisional Application 62869841 · Jul 2, 2019
Related Publication 20210006281A1 · Jan 7, 2021