IP Library Granted Patent US 10,090,597
Granted Patent B1
US 10,090,597 · App. 14/287,487 · Granted Oct 2, 2018

Mechanically reconfigurable dual-band slot antennas

Inventors: Ibrahim Turki Nassar (Lake Forest, CA); Thomas McCrea Weller (Lutz, FL); Craig Perry Lusk (Lutz, FL)
Assignee: University of South Florida
H01Q13/10
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Quick Facts
Patent No.
US 10,090,597
App. No.
14/287,487
Granted
Oct 2, 2018
Kind
B1
Abstract

In some embodiments, a mechanically reconfigurable slot antenna includes an electrically conductive layer having multiple slots, multiple electrically conductive parasitic patches, each patch associated with one of the slots, and a rack-and-pinion mechanism adapted to simultaneously linearly displace at least two of the patches along their associated slots.

Claims (29)

1. A mechanically reconfigurable slot antenna comprising:

an electrically conductive layer having multiple slots;

multiple electrically conductive parasitic patches, each patch associated with one of the slots; and

a rack-and-pinion mechanism adapted to simultaneously linearly displace at least two of the patches along their associated slots.

2. The antenna of claim 1 , wherein the electrically conductive layer is formed on a non-conductive substrate.

3. The antenna of claim 1 , wherein the electrically conductive layer comprises a wide slot and narrow slots and wherein the parasitic patches are positioned over the narrow slots.

4. The antenna of claim 3 , wherein the narrow slots extend from an end of the wide slot.

5. The antenna of claim 4 , wherein the electrically conductive layer comprises two wide slots and wherein two narrow slots extend from an end of each of the wide slots.

6. The antenna of claim 5 , wherein a short narrow slot and a long narrow slot extends from each wide slot.

7. The antenna of claim 6 , wherein the longitudinal axes of the long narrow slots align with the longitudinal axes of the short narrow slots.

8. The antenna of claim 1 , wherein the parasitic patches are mounted to support arms that are used to linearly displace the patches.

9. The antenna of claim 8 , wherein the rack-and-pinion mechanism drives the support arms.

10. The antenna of claim 9 , wherein the rack-and-pinion mechanism comprises a pinion and two racks, each of the racks associated with a support arm.

11. The antenna of claim 10 , wherein the pinion comprises a toothed gear and the racks each comprise a row of teeth that mesh with the gear.

12. The antenna of claim 11 , wherein the antenna comprises two rack-and-pinion mechanisms, a first rack-and-pinion mechanism that simultaneously linearly displaces two parasitic patches and a second rack-and-pinion mechanism that simultaneously linearly displaces two other parasitic patches.

13. The antenna of claim 11 , wherein the rack-and-pinion mechanism simultaneously linearly displaces four parasitic patches.

14. The antenna of claim 1 , further comprising a stepper motor that drives the rack-and-pinion mechanism.

15. A mechanically reconfigurable dual-band slot antenna comprising:

a non-conductive substrate;

an electrically conductive layer formed on top of the substrate, the layer defining a first wide slot having an end from which a first short narrow slot and a first long narrow slot extend and a second wide slot having an end from which a second short narrow slot and a second long narrow slot extend, wherein the short narrow slots are used to control the frequency of a first band of the antenna and the long narrow slots are used to control the frequency of a second band of the antenna;

four electrically conductive parasitic patches, each patch positioned over one of the narrow slots;

support arms to which the parasitic patches are mounted; and

a rack-and-pinion mechanism adapted to linearly displace the support arms of at least two of the patches so as to displace the patches along their associated narrow slots to change the effective length of the narrow slots and thereby tune the antenna.

16. The antenna of claim 15 , wherein the rack-and-pinion mechanism comprises a pinion and two racks, wherein the pinion comprises a toothed gear and the racks each comprise a row of teeth that mesh with the gear.

17. The antenna of claim 15 , wherein the antenna comprises two rack-and-pinion mechanisms, a first rack-and-pinion mechanism that simultaneously linearly displaces two of the parasitic patches and a second rack-and-pinion mechanism that simultaneously linearly displaces the other two parasitic patches.

18. The antenna of claim 15 , wherein the rack-and-pinion mechanism simultaneously linearly displaces all four parasitic patches.

19. A method for tuning a slot antenna, the method comprising:

linearly displacing parasitic patches along slots of the antenna using a rack-and-pinion mechanism.

20. The method of claim 19 , wherein the rack-and-pinion mechanism simultaneously linearly displaces multiple parasitic patches along their associated slots.

Assignments (2)
CONFIRMATORY LICENSE Recorded Dec 30, 2014
From: UNIVERSITY OF SOUTH FLORIDA
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 034715/0495 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 27, 2014
From: NASSAR, IBRAHIM TURKI; WELLER, THOMAS MCCREA; LUSK, CRAIG PERRY
To: UNIVERSITY OF SOUTH FLORIDA (A FLORIDA NON-PROFIT CORPORATION)
Reel/Frame 032965/0704 →