IP Library Granted Patent US 8,654,034
Granted Patent B2
US 8,654,034 · App. 13/506,402 · Granted Feb 18, 2014

Dynamically reconfigurable feed network for multi-element planar array antenna

Inventor: David J. Legare (Ava, NY)
Assignee: The United States of America as represented by the Secretary of the Air Force
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Quick Facts
Patent No.
US 8,654,034
App. No.
13/506,402
Granted
Feb 18, 2014
Kind
B2
Abstract

A dynamically-reconfigurable feed network antenna having a microstrip patchwork radiating surface wherein individual radiating patches and elements of a stripline feed structure can be connected to and disconnected from each other via photoconductive interconnections. Commands from software alternately turn light from light emitting sources on or off, the light or lack thereof being channeled from an underside layer of the antenna so as to enable or disable the photoconductive interconnections. The resultant connection or disconnection of the radiating patches to each other and to the stripline feed structure will vary the antenna's frequency, bandwidth, and beam pointing.

Claims (17)

1. In a planar array antenna having a radiating layer comprising a plurality of radiating elements and tuning elements; a ground plane layer; and a control layer; a feed network comprising:

RF feed point; and

a stripline feed network for connecting said RF feed points to said plurality of radiating elements and to said tuning elements, wherein

said stripline feed network comprises photoconductive connectors for establishing and de-establishing electrical connectivity between said RF feed points and said plurality of radiating elements; and

between said stripline feed network and any plurality of segments of said tuning elements; and wherein

said photoconductive connectors for establishing and de-establishing electrical connectivity being responsive to a plurality of means comprised within said control layer for producing and transmitting a control signal.

2. Said feed network of claim 1 , wherein each of said plurality of radiating elements and tuning elements comprises a conductive structure fabricated onto a substrate.

3. Said feed network of claim 1 , wherein said control signal propagates through a plurality of channels within said ground plane layer.

4. Said feed network of claim 3 , wherein each of said photoconductive connectors for establishing and de-establishing electrical connectivity corresponds in number and orientation to each of said plurality of channels.

5. Said feed network of claim 4 wherein said photoconductive connectors for establishing and de-establishing electrical connectivity are responsive to control signals comprising light.

6. Said feed network of claim 5 , wherein each of said plurality of means for producing and transmitting a control signal further comprises light emitting diodes.

7. Said feed network of claim 6 , wherein each of said plurality of means for producing and transmitting a control signal corresponds in number and orientation to each of said means for establishing and de-establishing electrical connectivity.

8. Said feed network of claim 3 , wherein each of said plurality of channels further comprises means to support the transmission of light from light emitting diodes.

9. Said feed network of claim 1 , wherein each of said plurality of means for producing and transmitting a control signal is responsive to computer commands, wherein said computer commands are in turn responsive to software control.

10. Said feed network of claim 1 , wherein said photoconductive connectors are responsive to light from light emitting diodes.

11. Said feed network of claim 1 , capable being incorporated into said planar antenna having said radiating layer, said ground plane layer, and said control layer which comprise a co-planar, vertical stack, and arranged in that respective order.

12. Said feed network of claim 1 wherein said plurality of radiating patches are electrically connected to said stripline feed network via conductive paths which transverse through said radiating layer and terminate at conductive patches on said stripline feed network.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 6, 2014
From: LEGARE, DAVID J
To: UNITED STATES AIR FORCE
Reel/Frame 031892/0461 →
Continuity (2)
Continuation In Part 13385469 · Jan 24, 2012
Related Publication 20130249751A1 · Sep 26, 2013