IP Library Granted Patent US 11,277,163
Granted Patent B2
US 11,277,163 · App. 17/086,588 · Granted Mar 15, 2022

Radio frequency waveguide communication in high temperature environments

Inventors: Jonathan Gilson (West Hartford, CT); Joseph V. Mantese (Ellington, CT); Goran Djuknic (New York, NY); Gurkan Gok (Milford, CT); Brenda J. Lisitano (Middletown, CT); Coy Bruce Wood (Ellington, CT); Sanjay Bajekal (Simsbury, CT)
Assignee: RAYTHEON TECHNOLOGIES CORPORATION
H04B1/38F02C9/00G05B15/02H01P3/12H04L67/12F05D2220/32F05D2270/80
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Quick Facts
Patent No.
US 11,277,163
App. No.
17/086,588
Granted
Mar 15, 2022
Kind
B2
Abstract

A system of a machine includes a network of nodes distributed throughout the machine. A means is operable to communicate with the network of nodes through one or more electromagnetic signals. A plurality of waveguides is configured to guide transmission of the one or more electromagnetic signals. A radio frequency antenna is coupled to a first waveguide of the plurality of waveguides. A radio frequency transceiver is coupled between the means and the radio frequency antenna. A membrane is configured to support communication between the first waveguide and at least one node of the plurality of nodes.

Claims (38)

1. A system of a machine, the system comprising:

a network of nodes distributed throughout the machine;

a controller operable to communicate with the network of nodes through one or more electromagnetic signals;

a plurality of waveguides configured to guide transmission of the one or more electromagnetic signals;

a radio frequency antenna coupled to a first waveguide of the plurality of waveguides;

a radio frequency transceiver coupled between the controller and the radio frequency antenna; and

a membrane configured to support communication between the first waveguide and at least one node of the plurality of nodes.

2. The system of claim 1 , wherein the first waveguide comprises a hollow metallic waveguide.

3. The system of claim 1 , wherein the radio frequency transceiver is configured to output a pulse train to the radio frequency antenna to broadcast within the first waveguide responsive to the controller.

4. The system of claim 3 , further comprising a dielectric disk in the first waveguide proximate to the membrane, wherein the dielectric disk is configured to generate a plurality of acoustic pressure waves to mechanically vibrate the membrane responsive to the pulse train broadcast through the first waveguide, and the at least one node comprises an effector node.

5. The system of claim 1 , wherein the at least one node comprises an oscillator and a modulator configured to vibrate the membrane based on a sensor response, and the radio frequency transceiver is configured to detect vibration of the membrane.

6. The system of claim 5 , wherein the radio frequency transceiver is configured to output a pulse train to the radio frequency antenna to broadcast within the first waveguide responsive to the controller.

7. The system of claim 6 , further comprising a dielectric ring in the first waveguide proximate to the membrane, wherein the dielectric ring is configured to generate a plurality of acoustic pressure waves to mechanically vibrate the membrane responsive to the pulse train broadcast through the first waveguide, and the at least one node comprises an effector and sensor node.

8. A system for a gas turbine engine, the system comprising:

a network of a plurality of nodes distributed throughout the gas turbine engine, each of the nodes associated with at least one sensor and/or effector of the gas turbine engine and operable to communicate through one or more electromagnetic signals;

a controller of the gas turbine engine operable to communicate with the network of nodes through the one or more electromagnetic signals;

a plurality of waveguides configured to guide transmission of the one or more electromagnetic signals between the controller and one or more of the nodes;

a radio frequency antenna coupled to a first waveguide of the plurality of waveguides;

a radio frequency transceiver coupled between the controller and the radio frequency antenna; and

a membrane configured to support communication between the first waveguide and at least one node of the plurality of nodes.

9. The system of claim 8 , wherein one or more of the nodes are located at least one of a fan section, a compressor section, a combustor section and a turbine section of the gas turbine engine, and the first waveguide comprises a hollow metallic waveguide.

10. The system of claim 8 , wherein the radio frequency transceiver is configured to output a pulse train to the radio frequency antenna to broadcast within the first waveguide responsive to the controller.

11. The system of claim 10 , further comprising a dielectric disk in the first waveguide proximate to the membrane, wherein the dielectric disk is configured to generate a plurality of acoustic pressure waves to mechanically vibrate the membrane responsive to the pulse train broadcast through the first waveguide, and the at least one node comprises an effector node.

12. The system of claim 8 , wherein the at least one node comprises an oscillator and a modulator configured to vibrate the membrane based on a sensor response, and the radio frequency transceiver is configured to detect vibration of the membrane.

13. The system of claim 12 , wherein the radio frequency transceiver is configured to output a pulse train to the radio frequency antenna to broadcast within the first waveguide responsive to the controller, and further comprising a dielectric ring in the first waveguide proximate to the membrane, wherein the dielectric ring is configured to generate a plurality of acoustic pressure waves to mechanically vibrate the membrane responsive to the pulse train broadcast through the first waveguide, and the at least one node comprises an effector and sensor node.

14. A method of establishing electromagnetic communication through a machine, the method comprising:

configuring a network of a plurality of nodes to communicate through one or more electromagnetic signals, wherein the nodes are distributed throughout the machine;

initiating communication between a controller and the network of nodes through the one or more electromagnetic signals;

guiding transmission of the one or more electromagnetic signals in a plurality of waveguides between the controller and one or more of the nodes;

propagating a portion of the one or more electromagnetic signals through a radio frequency antenna coupled to a first waveguide of the plurality of waveguides, a radio frequency transceiver coupled between the controller and the radio frequency antenna, and a membrane configured to support communication between the first waveguide and at least one node of the plurality of nodes.

15. The method of claim 14 , wherein the first waveguide comprises a hollow metallic waveguide.

16. The method of claim 14 , further comprising outputting a pulse train from the radio frequency transceiver to the radio frequency antenna to broadcast within the first waveguide responsive to the controller.

17. The method of claim 16 , wherein a dielectric disk in the first waveguide is proximate to the membrane, and further comprising generating a plurality of acoustic pressure waves to mechanically vibrate the membrane responsive to the pulse train broadcast through the first waveguide and the dielectric disk, and the at least one node comprises an effector node.

18. The method of claim 14 , wherein the at least one node comprises an oscillator and a modulator, and further comprising:

vibrating the membrane based on a sensor response modulated with a carrier frequency of the oscillator by the modulator; and

detecting vibration of the membrane by the radio frequency transceiver.

19. The method of claim 18 , further comprising outputting a pulse train by the radio frequency transceiver to the radio frequency antenna to broadcast within the first waveguide responsive to the controller.

20. The method of claim 19 , wherein a dielectric ring in the first waveguide is proximate to the membrane, and further comprising generating a plurality of acoustic pressure waves by the dielectric ring to mechanically vibrate the membrane responsive to the pulse train broadcast through the first waveguide, and the at least one node comprises an effector and sensor node.

Assignments (3)
CHANGE OF NAME Recorded Jul 27, 2023
From: RAYTHEON TECHNOLOGIES CORPORATION
To: RTX CORPORATION
Reel/Frame 064714/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 2, 2020
From: GILSON, JONATHAN; MANTESE, JOSEPH V.; DJUKNIC, GORAN; GOK, GURKAN; LISITANO, BRENDA J.; WOOD, COY BRUCE; BAJEKAL, SANJAY
To: UNITED TECHNOLOGIES CORPORATION
Reel/Frame 054240/0289 →
CHANGE OF NAME Recorded Nov 2, 2020
From: UNITED TECHNOLOGIES CORPORATION
To: RAYTHEON TECHNOLOGIES CORPORATION
Reel/Frame 054278/0140 →
Continuity (2)
Continuation 16692125 · Nov 22, 2019
Related Publication 20210159930A1 · May 27, 2021
Cited By (3)
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