IP Library Granted Patent US 11,876,595
Granted Patent B2
US 11,876,595 · App. 17/886,837 · Granted Jan 16, 2024

Terrestrial based high speed data communications mesh network

Inventor: Donald Alcorn (Montgomery, AL)
Assignee: SMARTSKY NETWORKS LLC
H04B7/18506H04B7/1851H04B7/18508H04L27/2601H04W84/005H04W84/06
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Quick Facts
Patent No.
US 11,876,595
App. No.
17/886,837
Granted
Jan 16, 2024
Kind
B2
Abstract

A network for providing high speed data communications may include multiple terrestrial transmission stations that are located within overlapping communications range and a mobile receiver station. The terrestrial transmission stations provide a continuous and uninterrupted high speed data communications link with the mobile receiver station employing a wireless radio access network protocol.

Claims (45)

1. A ground station among a network of ground stations configured to provide high speed wirelessly transmitted data communications to an in-flight aircraft, the ground station comprising:

an antenna assembly operably coupled to software defined radio to control the antenna assembly; and

a radio operably coupled to the antenna assembly to process signals sent or received at the antenna assembly utilizing Orthogonal Frequency Division Multiplexing (OFDM),

wherein the radio is configured to communicate with a receiver station located on board the in-flight aircraft to provide a high speed data communications link with the receiver station employing,

wherein the high speed data communications link is maintained while the in-flight aircraft transitions between a coverage area provided by the ground station and coverage areas of respective ones of the other ground stations as the in-flight aircraft moves from the coverage area provided by the ground station to one of the respective ones of the coverage areas provided by the respective ones of the other ground stations, and

wherein the ground station is configured to provide the high speed data communications link having a bandwidth greater than 10 MHz.

2. The ground station of claim 1 , wherein the high speed data communications link employs Long Term Evolution (LTE) terrestrial radio access network protocols.

3. The ground station of claim 1 , wherein a frame structure utilized for the high speed data communications link provides dynamically assignable uplink and downlink burst profiles based on link conditions.

4. The ground station of claim 1 , wherein multiple media access control protocol data units are linkable to a single burst.

5. The ground station of claim 1 , wherein the high speed data communications link provides internet access, streaming video, and voice-over IP to the receiver station.

6. The ground station of claim 1 , wherein the ground station is configured to communicate with multiple aircraft simultaneously.

7. The ground station of claim 1 , wherein the radio employs forward error correction to compensate for Doppler while the in-flight aircraft is at a speed in excess of 140 mph.

8. A ground station among a network of ground stations configured to provide high speed wirelessly transmitted data communications to an in-flight aircraft, the ground station comprising:

an antenna assembly operably coupled to software defined radio to control the antenna assembly; and

a radio operably coupled to the antenna assembly to process signals sent or received at the antenna assembly utilizing Orthogonal Frequency Division Multiplexing (OFDM),

wherein the radio is configured to communicate with a receiver station located on board the in-flight aircraft to provide a high speed data communications link with the receiver station employing,

wherein the high speed data communications link is maintained while the in-flight aircraft transitions between a coverage area provided by the ground station and coverage areas of respective ones of the other ground stations as the in-flight aircraft moves from the coverage area provided by the ground station to one of the respective ones of the coverage areas provided by the respective ones of the other ground stations, and

wherein the software defined radio employs narrow beams of less than 10 degrees beamwidth in azimuth or elevation to provide the high speed data communications link with a range of greater than 50 miles and have forward error correction capability to enable the high speed data communications link to be maintained with the in-flight aircraft at speeds of at least 140 miles per hour.

9. A ground station among a network of ground stations configured to provide high speed wirelessly transmitted data communications to an in-flight aircraft, the ground station comprising:

an antenna assembly operably coupled to software defined radio to control the antenna assembly; and

a radio operably coupled to the antenna assembly to process signals sent or received at the antenna assembly utilizing Orthogonal Frequency Division Multiplexing (OFDM),

wherein the radio is configured to communicate with a receiver station located on board the in-flight aircraft to provide a high speed data communications link with the receiver station employing,

wherein the high speed data communications link is maintained while the in-flight aircraft transitions between a coverage area provided by the ground station and coverage areas of respective ones of the other ground stations as the in-flight aircraft moves from the coverage area provided by the ground station to one of the respective ones of the coverage areas provided by the respective ones of the other ground stations, and

wherein the software defined radio is configured to favor establishing the high speed data communications link with a more distant aircraft rather than a closer aircraft.

10. A network configured to provide high speed wirelessly transmitted data communications to an in-flight aircraft, the network comprising:

a plurality of ground transmission stations, the ground transmission stations being located such that at least some of the ground transmission stations are within overlapping communications range of respective other ones of the ground transmission stations, the ground transmission stations being configured to communicate with a receiver station located on board the in-flight aircraft to provide a high speed data communications link to the in-flight aircraft; and

a software defined radio at each of the ground transmission stations, the software defined radio being operably coupled to an antenna assembly of each respective one of the ground transmission stations to control the antenna assembly, the software defined radio being configured to enable processing of signals sent or received at the antenna assembly utilizing Orthogonal Frequency Division Multiplexing (OFDM),

wherein the high speed data communications link is maintained while the in-flight aircraft is within a coverage area provided by one of the plurality of ground transmission stations and as the in-flight aircraft transitions from the coverage area provided by the one of the plurality of ground transmission stations to a coverage area provided by another of the plurality of ground transmission stations, and

wherein each of the ground transmission stations is configured to provide the high speed data communications link having a bandwidth greater than 10 MHz.

11. The network of claim 10 , wherein the high speed data communications link employs Long Term Evolution (LTE) terrestrial radio access network protocols.

12. The network of claim 10 , wherein a frame structure utilized for the high speed data communications link provides dynamically assignable uplink and downlink burst profiles based on link conditions.

13. The network of claim 10 , wherein multiple media access control protocol data units are linkable to a single burst.

14. The network of claim 10 , wherein the high speed data communications link provides internet access, streaming video, or voice-over IP to the receiver station.

15. The network of claim 10 , wherein each one of the ground transmission stations is configured to communicate with multiple aircraft simultaneously.

16. The network of claim 10 , wherein the radio employs forward error correction to compensate for Doppler while the in-flight aircraft is at a speed in excess of 140 mph.

17. A network configured to provide high speed wirelessly transmitted data communications to an in-flight aircraft, the network comprising:

a plurality of ground transmission stations, the ground transmission stations being located such that at least some of the ground transmission stations are within overlapping communications range of respective other ones of the ground transmission stations, the ground transmission stations being configured to communicate with a receiver station located on board the in-flight aircraft to provide a high speed data communications link to the in-flight aircraft; and

a software defined radio at each of the ground transmission stations, the software defined radio being operably coupled to an antenna assembly of each respective one of the ground transmission stations to control the antenna assembly, the software defined radio being configured to enable processing of signals sent or received at the antenna assembly utilizing Orthogonal Frequency Division Multiplexing (OFDM),

wherein the high speed data communications link is maintained while the in-flight aircraft is within a coverage area provided by one of the plurality of ground transmission stations and as the in-flight aircraft transitions from the coverage area provided by the one of the plurality of ground transmission stations to a coverage area provided by another of the plurality of ground transmission stations, and

wherein the software defined radio employs narrow beams of less than 10 degrees beamwidth in azimuth or elevation to provide the high speed data communications link with a range of greater than 50 miles and have forward error correction capability to enable the high speed data communications link to be maintained with the in-flight aircraft at speeds of at least 140 miles per hour.

18. A network configured to provide high speed wirelessly transmitted data communications to an in-flight aircraft, the network comprising:

a plurality of ground transmission stations, the ground transmission stations being located such that at least some of the ground transmission stations are within overlapping communications range of respective other ones of the ground transmission stations, the ground transmission stations being configured to communicate with a receiver station located on board the in-flight aircraft to provide a high speed data communications link to the in-flight aircraft; and

a software defined radio at each of the ground transmission stations, the software defined radio being operably coupled to an antenna assembly of each respective one of the ground transmission stations to control the antenna assembly, the software defined radio being configured to enable processing of signals sent or received at the antenna assembly utilizing Orthogonal Frequency Division Multiplexing (OFDM),

wherein the high speed data communications link is maintained while the in-flight aircraft is within a coverage area provided by one of the plurality of ground transmission stations and as the in-flight aircraft transitions from the coverage area provided by the one of the plurality of ground transmission stations to a coverage area provided by another of the plurality of ground transmission stations, and

wherein the network is configured to, for determining which of the ground transmission stations is to establish the high speed data communications link with the receiver station, favor a more distant one of the ground transmission stations over a closer one of the ground transmission stations.

Assignments (2)
SECURITY INTEREST Recorded May 9, 2023
From: SMARTSKY NETWORKS, LLC
To: WILMINGTON SAVINGS FUND SOCIETY, FSB, AS AGENT
Reel/Frame 063779/0317 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 1, 2022
From: ALCORN, DONALD L.
To: SMARTSKY NETWORKS LLC
Reel/Frame 060963/0668 →
Continuity (14)
Continuation 17864822 · Jul 14, 2022
Continuation 16951493 · Nov 18, 2020
Continuation 16599519 · Oct 11, 2019
Continuation 15964694 · Apr 27, 2018
Continuation 15068783 · Mar 14, 2016
Continuation 13862508 · Apr 15, 2013
Continuation 13601413 · Aug 31, 2012
Continuation 13601452 · Aug 31, 2012
Continuation 13552896 · Jul 19, 2012
Continuation 13552896 · Jul 19, 2012
Continuation 12355341 · Jan 16, 2009
Continuation In Part 11622811 · Jan 12, 2007
Continuation In Part 11206695 · Aug 18, 2005
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