IP Library › Granted Patent US 12,490,111
Granted Patent B2
US 12,490,111 · App. 17/651,757 · Granted Dec 2, 2025

Antenna system of in-flight entertainment and communication system

Inventor: Jaideep Malhotra (Lake Forest, CA)
Assignee: Panasonic Avionics Corporation
H04W16/18H04B7/0617H04W4/42H04W76/10
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Quick Facts
Patent No.
US 12,490,111
App. No.
17/651,757
Granted
Dec 2, 2025
Kind
B2
Abstract

This patent document describes techniques related to antenna system of an in-flight entertainment and communication (IFEC) system provided in a commercial passenger vehicle. The antenna system comprises monitors associated with passenger seats on the commercial passenger vehicle and configured to display entertainment content for passengers, wireless transceivers disposed outside of the monitors and configured to transceive radio signals that have beam patterns defined according to locations of the wireless transceivers relative to passenger seats, and one or more processors communicatively coupled to the wireless transceivers and configured to support the wireless connectivity for the passengers through the wireless transceivers.

Claims (34)

1 . An antenna system of an in-flight entertainment and communication (IFEC) system provided in a commercial passenger vehicle, the antenna system comprising:

monitors associated with passenger seats on the commercial passenger vehicle and configured to display entertainment content for passengers;

wireless transceivers disposed outside of the monitors and configured to transceive radio signals that have beam patterns defined according to locations of the wireless transceivers relative to passenger seats; and

one or more control circuits communicatively coupled to the wireless transceivers and configured to support a wireless connectivity for the passengers through the wireless transceivers, and

wherein the wireless transceivers include 1) a first set of wireless transceivers configured to receive and transmit the radio signals and disposed in armrests of first passenger seats, 2) a second set of wireless transceivers configured to receive and transmit the radio signals and disposed in headrests of second passenger seats, 3) a third set of wireless transceivers configured to receive and transmit the radio signals and disposed in close proximity to monitors of third passenger seats, and 4) a fourth set of wireless transceivers configured to receive and transmit the radio signals and disposed in passenger controllers disposed at fourth passenger seats, and

wherein the first set of wireless transceivers is coupled to a first electronic circuit and configured to radiate a first beam pattern along an upward direction from the armrests of the first passenger seats, and the second set of wireless transceivers is coupled to a second electronic circuit and is configured to radiate a second beam pattern along a forward direction towards a front seat of the second passenger seats, the third set of wireless transceivers is coupled to a third electronic circuit and is configured to radiate a third beam pattern along the forward direction, and the fourth set of wireless transceivers is coupled to a fourth electronic circuit and is configured to radiate a fourth beam pattern along a lateral axis of the commercial passenger vehicle.

2 . The antenna system of claim 1 , wherein the first set of wireless transceivers have beam patterns in an upward direction with respect to a longitudinal axis of the commercial passenger vehicle.

3 . The antenna system of claim 1 , wherein the second set of wireless transceivers and the third set of wireless transceivers have beam patterns in a forward direction toward a front passenger seat.

4 . The antenna system of claim 1 , wherein the fourth set of wireless transceivers have beam patterns along a lateral axis of the commercial passenger vehicle.

5 . The antenna system of claim 1 , wherein the second set of wireless transceivers includes at least one of a single piece antenna, a split type of an antenna including multiple pieces, a flat type of an antenna, a curved type of an antenna, a wire type of an antenna, or a plate type of an antenna, and wherein the second set of wireless transceivers include an antenna having a rectangular shape, an oval shape, or a circle shape.

6 . The antenna system of claim 1 , wherein the second set of wireless transceivers includes a Yagi antenna, a phased array antenna, an inverted F antenna, a plate or helical antenna, a PCB (printed circuit board) antenna, or a miniature antenna.

7 . The antenna system of claim 1 , wherein the wireless transceivers are disposed at different locations with respect to passenger seats based on classes of the passenger seats.

8 . An antenna system of an in-flight entertainment and communication (IFFC) system provided in a commercial passenger vehicle, the antenna system comprising:

a first set of antennas, each contoured to be affixed on an armrest of a first passenger seat;

a second set of antennas, each comprising one or more elements structured to be fitted within a headrest of a second passenger seat;

a third set of antennas, each contoured to fit along a boundary of a seatback portion of a third passenger seat; and

a fourth set of antennas, each contoured to fit in a passenger controller associated with a fourth passenger seat, and

wherein the first set of antennas is coupled to a first electronic circuit and is configured to radiate a first beam pattern along an upward direction from the armrest of the first passenger seat, the second set of antennas is coupled to a second electronic circuit and is configured to radiate a second beam pattern along a forward direction towards a front seat of the second passenger seat, the third set of antennas is coupled to a third electronic circuit and is configured to radiate a third beam pattern along the forward direction, and the fourth set of antennas is coupled to a fourth electronic circuit and is configured to radiate a fourth beam pattern along a lateral axis of the commercial passenger vehicle.

9 . The antenna system of claim 8 , wherein the one or more elements correspond to a single element disposed on the second passenger seat and having a rectangular shape, an elliptical shape, a circular shape, or a planner shape, or wherein the one or more elements correspond to multiple elements disposed on the second passenger seat and having a rectangular shape, an elliptical shape, a circular shape, or a planner shape.

10 . The antenna system of claim 8 , wherein the one or more elements correspond to multiple elements disposed on the second passenger seat and include at least one of a Yagi antenna, a phased array antenna, an inverted F antenna, a plate or helical antenna, a PCB (printed circuit board) antenna, or a miniature antenna.

11 . The antenna system of claim 8 , wherein the second set of antennas and the third set of antennas feed forward signals corresponding to the front seat of the second passenger seat from the second passenger seat.

12 . The antenna system of claim 8 , wherein the third set of antennas are disposed on a monitor of a fifth passenger seat that is located behind the third passenger seat.

13 . A method for supporting a wireless connectivity to passengers on a commercial passenger vehicle, the method comprising:

operating a wireless network onboard the commercial passenger vehicle by configuring wireless transceivers that are disposed outside seatback monitors according to beam patterns that depend on a relative position of the wireless transceivers with respect to passenger seats;

receiving a request via one or more wireless transceivers, from an electronic device on the commercial passenger vehicle, to connect the electronic device to a communication network; and

establishing a connection of the electronic device to the communication network using a selected wireless transceiver having a selected beam pattern suitable for the electronic device, and

wherein the selected wireless transceiver is selected to minimize a radio interference with other devices on the commercial passenger vehicle caused by wave propagations along the selected beam pattern, and

wherein the configuring of the wireless transceivers includes 1) configuring a first set of wireless transceivers operating to receive and transmit radio signals and disposed in armrests of first passenger seats, 2) configuring a second set of wireless transceivers operating to receive and transmit the radio signals and disposed in headrests of second passenger seats, 3) configuring a third set of wireless transceivers operating to receive and transmit the radio signals and disposed in close proximity to monitors of third passenger seats, and 4) configuring a fourth set of wireless transceivers operating to receiving and transmit the radio signals and disposed in passenger controllers disposed at fourth passenger seats, and

wherein the first set of wireless transceivers is coupled to a first electronic circuit and configured to radiate a first beam pattern along an upward direction from the armrests of the first passenger seats, and the second set of wireless transceivers is coupled to a second electronic circuit and is configured to radiate a second beam pattern along a forward direction towards a front seat of the second passenger seats, the third set of wireless transceivers is coupled to a third electronic circuit and is configured to radiate a third beam pattern along the forward direction, and the fourth set of wireless transceivers is coupled to a fourth electronic circuit and is configured to radiate a fourth beam pattern along a lateral axis of the commercial passenger vehicle.

14 . The method of claim 13 , wherein the configuring the wireless transceivers includes configuring multiple wireless transceivers in one passenger seat.

15 . The method of claim 13 , wherein the configuring the wireless transceivers includes configuring the wireless transceivers in the passenger seats in one to one correspondence.

16 . The method of claim 13 , wherein the configuring the wireless transceivers includes configuring a wireless transceiver as one single component.

17 . The method of claim 13 , wherein the configuring the wireless transceivers includes configuring a wireless transceiver with multiple components.

18 . The method of claim 13 , wherein the beam patterns include at least one of an upward direction toward a ceiling of the commercial passenger vehicle, a forward direction toward a front seat of a corresponding passenger seat, an upward direction, or a lateral direction along a lateral axis of the commercial passenger vehicle.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 18, 2022
From: MALHOTRA, JAIDEEP
To: PANASONIC AVIONICS CORPORATION
Reel/Frame 059052/0631 →
Continuity (1)
Related Publication 20230269597A1 · Aug 24, 2023
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