IP Library › Granted Patent US 10,283,872
Granted Patent B2
US 10,283,872 · App. 16/019,802 · Granted May 7, 2019

Methods and apparatus for enhanced radiation characteristics from antennas and related components

Inventor: Nathan Cohen (Belmont, MA)
Assignee: Fractal Antenna Systems, Inc.
H01Q15/0093H01L31/042H01Q1/288H01Q1/36H01Q1/44H01Q15/0013H01Q15/0026H01Q19/00H02S99/00Y02E10/50
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Quick Facts
Patent No.
US 10,283,872
App. No.
16/019,802
Granted
May 7, 2019
Kind
B2
Abstract

Aspect of the present disclosure are directed to methods and apparatus producing enhanced radiation characteristics, e.g., wideband behavior, in or for antennas and related components by providing concentric sleeves, with air or dielectric material as a spacer, where the sleeves include one or more conductive layers, at least a portion of which includes fractal resonators closely spaced, in terms of wavelength. A further aspect of the present disclosure is directed to surfaces that include dual-use or multiple-use apertures. Such aperture engine surfaces can include a first layer of antenna arrays, a second layer including a metal-fractal backplane player, and a third layer including solar cells for solar cell or solar oriented power collection. Fractal metamaterial ribbons with multiple closely-packed fractal resonators are also disclosed.

Claims (22)

1. An aperture engine array having a plurality of aperture engine panels, wherein each panel comprises:

an antenna layer having at least one antenna array, each array configured to receive and/or transmit radio frequency (RF) energy over a range of frequencies, wherein each array comprises fractal resonators configured to allow incident radiation to pass through to an adjacent layer;

a backplane layer, at least a portion of which contains a metal surface that acts as a reflective backplane for the at least one antenna array while allowing incident RF radiation pass to an adjacent layer; and

a solar cell layer including a panel of solar cells configured to absorb incident radiation and providing power thus provide a power source for the transmission and reception of the RF energy.

2. The aperture engine array of claim 1 , wherein the aperture engine array, wherein each of the plurality of aperture engine panels is configurable in multiple positions for optimum reception and/or transmission in a particular direction or directions.

3. The aperture engine array of claim 1 , wherein the plurality of aperture engine panels is configured as a surface, larger than an individual panel, for greater gathering of incident radiation and greater antenna gain.

4. The aperture engine array of claim 2 , wherein the array is part of a satellite or spacecraft.

5. The aperture engine array of claim 3 , wherein the aperture engine array is attached to a satellite or spacecraft.

6. The aperture engine array of claim 1 , wherein a transmitting apparatus is attached to the aperture engine array and is powered by power derived from the solar cells of the lowest layers of the aperture engine array panels.

7. The aperture engine array of claim 1 , wherein a receiving apparatus is attached to the aperture engine array and is powered by the collected power derived from the solar cells of the lowest layer.

8. The aperture engine array of claim 3 , wherein the plurality of aperture engine panels is placed in a remote environment and controlled by remote means.

9. The aperture engine array of claim 1 , wherein the aperture engine array is utilized for radar transmissions and reception.

10. The aperture engine array of claim 3 , wherein the aperture engine array is utilized for radar transmissions and reception.

11. The aperture engine array of claim 4 , wherein the aperture engine array is utilized for radar transmissions and reception.

12. The aperture engine array of claim 5 , wherein the aperture engine array is utilized for radar transmissions and reception.

13. The aperture engine array of claim 6 , wherein the aperture engine array is utilized for radar transmissions and reception.

14. The aperture engine array of claim 6 , wherein the aperture engine array is utilized for transmissions and reception.

15. The aperture engine array of claim 8 , wherein the aperture engine array is utilized for radar transmission and reception.

16. An aperture engine panel comprising:

an antenna layer having at least one antenna array, each array configured to receive and/or transmit radio frequency (RF) energy over a range of frequencies, wherein each array comprises fractal resonators configured to allow incident radiation to pass through to an adjacent layer;

a backplane layer, at least a portion of which contains a metal surface that acts as a reflective backplane for the at least one antenna array while allowing incident RF radiation pass to an adjacent layer; and

a solar cell layer including a panel of solar cells configured to absorb incident radiation and providing power thus provide a power source for the transmission and reception of the RF energy.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 18, 2018
From: COHEN, NATHAN
To: FRACTAL ANTENNA SYSTEMS, INC.
Reel/Frame 046896/0587 →
Continuity (9)
Continuation In Part 15483272 · Apr 10, 2017
Continuation 14714844 · May 18, 2015
Continuation 12761283 · Apr 15, 2010
Provisional Application 62528913 · Jul 5, 2017
Provisional Application 62525870 · Jun 28, 2017
Provisional Application 61222614 · Jul 2, 2009
Provisional Application 61187459 · Jun 16, 2009
Provisional Application 61169351 · Apr 15, 2009
Related Publication 20190020117A1 · Jan 17, 2019