IP Library Granted Patent US 7,920,860
Granted Patent B2
US 7,920,860 · App. 11/590,709 · Granted Apr 5, 2011

System for managing the multiple air-to-ground communications links originating from each aircraft in an air-to-ground cellular communication network

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Quick Facts
Patent No.
US 7,920,860
App. No.
11/590,709
Granted
Apr 5, 2011
Kind
B2
Abstract

The Multi-Link Aircraft Cellular System makes use of multiple physically separated antennas mounted on the aircraft, as well as the use of additional optional signal isolation and optimization techniques to improve the call handling capacity of the Air-To-Ground cellular communications network. These additional techniques can include polarization domain and ground antenna pattern shaping (in azimuth, in elevation, or in both planes). Further, if code domain separation is added, dramatic increases in capacity are realized. Thus, the Air-To-Ground cellular communications network can increase its capacity on a per aircraft basis by sharing its traffic load among more than one cell or sector and by making use of multiple physically separated antennas mounted on the aircraft, as well as the use of additional optional signal isolation and optimization techniques.

Claims (54)

1. A system for managing radio frequency communications in a non-terrestrial region of space between a plurality of wireless subscriber devices located in an aircraft and a plurality of Air-To-Ground terrestrial base stations of an Air-To-Ground cellular communications network, comprising:

a plurality of Air-To-Ground terrestrial base stations of said Air-To-Ground cellular communications network for populating said non-terrestrial region of space with a plurality of multi-dimensional Radio Frequency sectors, each multi-dimensional Radio Frequency sector having a plurality of radio frequency characteristics, to exchange call traffic with an aircraft;

a plurality of independently operable radio frequency antennas mounted on the exterior surface of said aircraft;

interface, located in said aircraft, for generating radio frequency communication signals for selected ones of said plurality of independently operable antennas to establish multiple simultaneous Air-To-Ground Radio Frequency communications links to exchange call traffic between said plurality of wireless subscriber devices and a plurality of cells and sectors of said Air-To-Ground cellular communications network;

data flow controller, located in said aircraft, comprising:

traffic determination process for determining the traffic load in said aircraft,

network signaling process for receiving terrestrial network load balancing information received from said Air-To-Ground cellular communications network, and

data router, responsive to said determined traffic load and said received network traffic load balancing information, for distributing said call traffic from said plurality of wireless subscriber devices among said plurality of radio frequency antennas to simultaneously maintain multiple Air-To-Ground Radio Frequency communications links, each link serving a portion of said call traffic from said plurality of wireless subscriber devices.

2. The system for managing radio frequency communications of claim 1 , said data flow controller further comprising:

pilot signal determining process, located in each of said aircraft, for measuring a pilot signal strength at each of said plurality of radio frequency antennas; and

link selector, responsive to said determined pilot signal strengths, for activating said data router to apply radio frequency signals to said selected ones of said aircraft radio frequency antennas with radio frequency signals to match said plurality of radio frequency characteristics of said corresponding multi-dimensional Radio Frequency sectors.

3. The system for managing radio frequency communications of claim 2 wherein said plurality of Air-To-Ground terrestrial base stations comprises:

sector generator for generating a pattern of radio frequency signals that divides said multi-dimensional space into multi-dimensional Radio Frequency sectors in one of azimuth, elevation, altitude, and multiple planes.

4. The system for managing radio frequency communications of claim 3 wherein said plurality of radio frequency characteristics are selected from the set of characteristics that include: Time, Space, Code, Polarization, Antenna-Aircraft, Antenna-Ground, Frequency, Azimuth Sectoring, Elevation Sectoring, Pitch, Roll, Yaw, and Flight Speed.

5. The system for managing radio frequency communications of claim 1 wherein said plurality of Air-To-Ground terrestrial base stations comprises:

sector generator for generating a pattern of radio frequency signals that divides said multi-dimensional space into multi-dimensional Radio Frequency sectors in one of azimuth, elevation, altitude, and multiple planes.

6. The system for managing radio frequency communications of claim 1 wherein said data flow controller comprises:

logical path link for transmitting a first part of said call traffic on a first of said multiple Air-To-Ground Radio Frequency communications links and a second part of said call traffic on a second of said multiple Air-To-Ground Radio Frequency communications links, wherein individual data packets in said call traffic are not time synchronous.

7. The system for managing radio frequency communications of claim 1 , said data flow controller further comprising:

pilot signal determining process, located in each of said aircraft, for measuring a pilot signal strength at each of said plurality of radio frequency antennas; and

primary link selector, responsive to said determined pilot signal strengths, for selecting a primary one of said plurality of radio frequency antennas and associated polarization that corresponds to a strongest pilot signal strength.

8. The system for managing radio frequency communications of claim 7 , said data flow controller further comprising:

secondary link selector, responsive to said determined pilot signal strengths, for selecting a secondary one of said plurality of radio frequency antennas and associated polarization that corresponds to a second strongest pilot signal strength.

9. A method for managing radio frequency communications in a non-terrestrial region of space between a plurality of wireless subscriber devices located in an aircraft and a plurality of Air-To-Ground terrestrial base stations of an Air-To-Ground cellular communications network, comprising:

populating, using a plurality of Air-To-Ground terrestrial base stations of said Air-To-Ground cellular communications network, said non-terrestrial region of space with a plurality of multi-dimensional Radio Frequency sectors, each multi-dimensional Radio Frequency sector having a plurality of radio frequency characteristics, to exchange call traffic with an aircraft;

operating a plurality of independently operable radio frequency antennas mounted on the exterior surface of said aircraft;

generating, in said aircraft, radio frequency communication signals for selected ones of said plurality of independently operable antennas to establish multiple simultaneous Air-To-Ground Radio Frequency communications links to exchange call traffic between said plurality of wireless subscriber devices and a plurality of cells and sectors of said Air-To-Ground cellular communications network;

controlling data flow in said aircraft, comprising:

determining the traffic load in said aircraft,

receiving terrestrial network load balancing information received from said Air-To-Ground cellular communications network, and

distributing, in each of said aircraft, responsive to said determined traffic load and said received network traffic load balancing information said call traffic from said plurality of wireless subscriber devices among said plurality of radio frequency antennas to simultaneously maintain multiple Air-To-Ground Radio Frequency communications links, each link serving a portion of said call traffic from said plurality of wireless subscriber devices.

10. The method for managing radio frequency communications of claim 9 , said step of controlling data flow further comprising:

measuring, in each of said aircraft, a pilot signal strength at each of said plurality of radio frequency antennas; and

activating, in response to said determined pilot signal strengths, said step of distributing to apply radio frequency signals to said selected ones of said aircraft radio frequency antennas with radio frequency signals to match said plurality of radio frequency characteristics of said corresponding multi-dimensional Radio Frequency sectors.

11. The method for managing radio frequency communications of claim 10 wherein said step of populating comprises:

generating a pattern of radio frequency signals that divides said multi-dimensional space into multi-dimensional Radio Frequency sectors in one of azimuth, elevation, altitude, and multiple planes.

12. The method for managing radio frequency communications of claim 11 wherein said plurality of radio frequency characteristics are selected from the set of characteristics that include: Time, Space, Code, Polarization, Antenna-Aircraft, Antenna-Ground, Frequency, Azimuth Sectoring, Elevation Sectoring, Pitch, Roll, Yaw, and Flight Speed.

13. The method for managing radio frequency communications of claim 9 wherein said step of populating comprises:

generating a pattern of radio frequency signals that divides said multi-dimensional space into multi-dimensional Radio Frequency sectors in one of azimuth, elevation, altitude, and multiple planes.

14. The method for managing radio frequency communications of claim 9 , said step of distributing further comprising:

transmitting a first part of said call traffic on a first of said multiple Air-To-Ground Radio Frequency communications links and a second part of said call traffic on a second of said multiple Air-To-Ground Radio Frequency communications links, wherein individual data packets in said call traffic are not time synchronous.

15. The method for managing radio frequency communications of claim 9 , said step of controlling data flow further comprising:

measuring, in each of said aircraft, a pilot signal strength at each of said plurality of radio frequency antennas; and

selecting, in response to said determined pilot signal strengths, a primary one of said plurality of radio frequency antennas and associated polarization that corresponds to a strongest pilot signal strength.

16. The method for managing radio frequency communications of claim 15 , said step of controlling data flow further comprising:

selecting, in response to said determined pilot signal strengths, a secondary one of said plurality of radio frequency antennas and associated polarization that corresponds to a second strongest pilot signal strength.

17. The system for managing radio frequency communications of claim 1 wherein said data router comprises:

data multiplexor for recombining data received from multiple Air-To-Ground Radio Frequency communications links into a single data flow.

18. The system for managing radio frequency communications of claim 1 wherein said data router comprises:

data multiplexor for dividing data received from a single data flow onto multiple Air-To-Ground Radio Frequency communications links.

19. The method for managing radio frequency communications of claim 9 wherein said step of selectively applying comprises:

recombining data received from multiple Air-To-Ground Radio Frequency communications links into a single data flow.

20. The method for managing radio frequency communications of claim 9 wherein said step of selectively applying comprises:

dividing data received from a single data flow onto multiple Air-To-Ground Radio Frequency communications links.

Assignments (20)
PATENT SECURITY AGREEMENT Recorded Dec 3, 2024
From: GOGO BUSINESS AVIATION LLC
To: HPS INVESTMENT PARTNERS, LLC, AS COLLATERAL AGENT
Reel/Frame 069479/0335 →
RELEASE OF SECURITY INTEREST IN INTELLECTUAL PROPERTY COLLATERAL Recorded May 6, 2021
From: U.S. BANK NATIONAL ASSOCIATION
To: GOGO LLC; GOGO BUSINESS AVIATION LLC
Reel/Frame 056153/0033 →
RELEASE OF SECURITY INTEREST Recorded May 4, 2021
From: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
To: GOGO LLC
Reel/Frame 057252/0208 →
SECURITY INTEREST Recorded Apr 30, 2021
From: GOGO BUSINESS AVIATION LLC
To: MORGAN STANLEY SENIOR FUNDING, INC., AS COLLATERAL AGENT
Reel/Frame 056106/0471 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 15, 2020
From: GOGO LLC
To: GOGO BUSINESS AVIATION LLC
Reel/Frame 053782/0669 →
SECURITY INTEREST Recorded Aug 27, 2019
From: GOGO LLC
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 050193/0797 →
SECURITY INTEREST Recorded May 2, 2019
From: GOGO LLC
To: U.S. BANK NATIONAL ASSOCIATION
Reel/Frame 049074/0225 →
RELEASE OF SECURITY INTEREST IN PATENTS AT REEL/FRAME NO. 039381/0484 Recorded Apr 26, 2019
From: U.S. BANK NATIONAL ASSOCIATION
To: GOGO LLC
Reel/Frame 049013/0360 →
PATENT SECURITY AGREEMENT Recorded Jul 18, 2016
From: GOGO LLC
To: U.S. BANK NATIONAL ASSOCIATION, AS COLLATERAL AGENT
Reel/Frame 039381/0484 →
RELEASE OF SECURITY INTEREST IN PATENT COLLATERAL AT REEL/FRAME NO. 028430/0658 Recorded Jun 17, 2016
From: MORGAN STANLEY SENIOR FUNDING, INC.
To: GOGO LLC
Reel/Frame 039070/0289 →
SECURITY AGREEMENT Recorded Jun 22, 2012
From: GOGO LLC
To: MORGAN STANLEY SENIOR FUNDING, INC.
Reel/Frame 028430/0658 →
CHANGE OF NAME Recorded Jun 21, 2011
From: AIRCELL LLC
To: GOGO LLC
Reel/Frame 026474/0520 →
PATENT SECURITY RELEASE AGREEMENT (JUNE 13, 2008) Recorded Jan 8, 2010
From: AC ACQUISITION I LLC
To: AC HOLDCO INC. (SUCCESSOR IN INTEREST TO AC HOLDCO LLC); AIRCELL LLC; AIRCELL BUSINESS AVIATION SERVICES LLC; AIRCELL INTERNATIONAL, INC.; AC BIDCO LLC
Reel/Frame 023750/0847 →
PATENT SECURITY RELEASE AGREEMENT (JANUARY 23, 2009) Recorded Jan 8, 2010
From: AC ACQUISITION I LLC
To: AC HOLDCO INC. (SUCCESSOR IN INTEREST TO AC HOLDCO LLC); AIRCELL LLC; AIRCELL INTERNATIONAL, INC.; AIRCELL AVIATION, INC.; SPECTRALABS TECHNOLOGIES LLC; AC BIDCO LLC
Reel/Frame 023750/0838 →
RELEASE OF SECURITY INTEREST Recorded Oct 30, 2009
From: THE BANK OF NOVA SCOTIA
To: AIRCELL BUSINESS AVIATION SERVICES LLC; AIRCELL LLC
Reel/Frame 023449/0542 →
SECURITY AGREEMENT Recorded Nov 7, 2008
From: AC HOLDCO LLC; AIRCELL LLC; AIRCELL BUSINESS AVIATION SERVICES LLC; AIRCELL INTERNATIONAL INC.; AC BIDCO LLC
To: AC ACQUISITION I LLC, AS ADMINISTRATIVE AGENT
Reel/Frame 021805/0051 →
SECURITY AGREEMENT Recorded Jun 19, 2008
From: AIRCELL BUSINESS AVIATION SERVICES LLC; AIRCELL LLC
To: THE BANK OF NOVA SCOTIA, AS ADMINISTRATIVE AGENT
Reel/Frame 021109/0905 →
SECURITY AGREEMENT Recorded Mar 28, 2008
From: AC HOLDCO LLC; AIRCELL LLC; AIRCELL INTERNATIONAL, INC.; AIRCELL AVIATION, INC.; SPECTRALABS TECHNOLOGIES LLC; AC BIDCO LLC
To: AC ACQUISITION I LLC, AS ADMINISTRATIVE AGENT
Reel/Frame 020710/0958 →
DOCUMENT ID NO. 700333512 Recorded Jul 13, 2007
From: AIRCELL, INC.
To: AIRCELL LLC
Reel/Frame 019668/0363 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 15, 2006
From: CHARI, ANAND K.; SAROKA, HAROLD G.; JOYCE, TIM; WALSH, PATRICK J.; LIU, YONG; MCKENNA, DANIEL B.
To: AIRCELL, INC.
Reel/Frame 018674/0351 →