Claims
- 1. An array antenna comprising:
a radiating antenna element; at least one parasitic antenna element; at least one voltage-tunable capacitor connected to said at least one parasitic antenna element; and a controller for applying a voltage to each voltage-tunable capacitor to change the capacitance of each voltage-tunable capacitor and thus control the directions of maximum radiation beams and minimum radiation beams of a radio signal emitted from said radiating antenna element and said at least one parasitic antenna element.
- 2. The array antenna of claim 1, wherein each voltage-tunable capacitor includes a tunable ferroelectric layer and a pair of metal electrodes separated by a predetermined distance and located on top of the ferroelectric layer.
- 3. The array antenna of claim 1, wherein each parasitic antenna element is arranged a predetermined distance from said radiating antenna element.
- 4. The array antenna of claim 1, wherein said radiating antenna element and said at least one parasitic antenna element are separated from one another by about 0.2λ0-0.5λ0 where λ0 is a working free space wavelength of the radio signal.
- 5. The array antenna of claim 1, wherein said radiating antenna element and said at least one parasitic antenna element each have one of the following configurations:
a monopole antenna; a dipole antenna; a planar microstrip antenna; a patch antenna; a ring antenna; or a helix antenna.
- 6. The array antenna of claim 1, wherein said minimum radiation beams are nulls and said maximum radiation beams are 360 degree steerable radiation beams.
- 7. The array antenna of claim 1, wherein:
said radiating antenna element is a dual band radiating antenna element; and said at least one parasitic antenna element includes at least one low frequency parasitic antenna element and at least one high frequency parasitic antenna.
- 8. An array antenna comprising:
a radiating antenna element excited by radio frequency energy of a radio signal; at least one parasitic antenna element; at least one voltage-tunable capacitor connected to said at least one parasitic antenna element; each parasitic antenna element receives the radio frequency energy of the radio signal emitted from said radiating antenna element and then re-radiates the radio frequency energy of the radio signal after the radio frequency energy has been reflected and phase changed by each voltage-tunable capacitor; and a controller that phase changes the radio frequency energy at each parasitic antenna element by applying a voltage to each voltage-tunable capacitor to change the capacitance of each voltage-tunable capacitor and thus enables the steering of the radiation beams and nulls of the radio signal emitted from said radiating antenna element and said at least one parasitic antenna element.
- 9. The array antenna of claim 8, wherein each voltage-tunable capacitor includes a tunable ferroelectric layer and a pair of metal electrodes separated by a predetermined distance and located on top of the ferroelectric layer.
- 10. The array antenna of claim 8, wherein said at least one parasitic antenna element is arranged on a circumference of a predetermined circle around said radiating antenna element.
- 11. The array antenna of claim 8, wherein said radiating antenna element and said at least one parasitic antenna element are separated from one another by about 0.2λ0-0.5λ0 where λ0 is a working free space wavelength of the radio signal.
- 12. The array antenna of claim 8, wherein said radiating antenna element and said at least one parasitic antenna element each have one of the following configurations:
a monopole antenna; a dipole antenna; a planar microstrip antenna; a patch antenna; a ring antenna; or a helix antenna.
- 13. The array antenna of claim 8, wherein:
said radiating antenna element is a dual band radiating antenna element; and said at least one parasitic antenna element includes at least one low frequency parasitic antenna element and at least one high frequency parasitic antenna.
- 14. A wireless communication network comprising:
a hub node having at least one dynamically directionally controllable communications link; and a network controller for dynamically controlling the direction of the communications link to enable transmission of radio signals between said hub node and a plurality of remote nodes, wherein said hub node includes an array antenna comprising:
a radiating antenna element; at least one parasitic antenna element; and at least one voltage-tunable capacitor connected to said at least one parasitic antenna element, wherein said network controller applies a voltage to each voltage-tunable capacitor to change the capacitance of each voltage-tunable capacitor and thus control the directions of maximum radiation beams and minimum radiation beams of the radio signals emitted from said hub node to said remote users.
- 15. The wireless communication network of claim 14, wherein each voltage-tunable capacitor includes a tunable ferroelectric layer and a pair of metal electrodes separated by a predetermined distance and located on top of the ferroelectric layer.
- 16. The wireless communication network of claim 14, wherein said at least one parasitic antenna element is arranged on a circumference of a predetermined circle around said radiating antenna element.
- 17. The wireless communication network of claim 14, wherein said radiating antenna element and said at least one parasitic antenna element are separated from one another by about 0.2λ0-0.5λ0 where λ0 is a working free space wavelength of the radio signal.
- 18. The wireless communication network of claim 14, wherein said radiating antenna element and said at least one parasitic antenna element each have one of the following configurations:
a monopole antenna; a dipole antenna; a planar microstrip antenna; a patch antenna; a ring antenna; or a helix antenna.
- 19. The wireless communication network of claim 14, wherein:
said radiating antenna element is a dual band radiating antenna element; and said at least one parasitic antenna element includes at least one low frequency parasitic antenna element and at least one high frequency parasitic antenna.
- 20. The wireless communication network of claim 14, wherein said remote nodes include mobile phones, laptop computers or personal digital assistants.
- 21. A method for transmitting communications signals comprising the steps of:
providing a hub node having at least one dynamically directionally controllable communications link; providing a network controller for dynamically controlling the direction of the communications link to enable transmission of radio signals between said hub node and a plurality of remote nodes, wherein said hub node includes an array antenna comprising:
a radiating antenna element; at least one parasitic antenna element; and at least one voltage-tunable capacitor connected to said at least one parasitic antenna element, wherein said network controller applies a voltage to each voltage-tunable capacitor to change the capacitance of each voltage-tunable capacitor and thus control the directions of maximum radiation beams and minimum radiation beams of the radio signals emitted from said hub node to said remote users.
- 22. The method of claim 21, wherein each voltage-tunable capacitor includes a tunable ferroelectric layer and a pair of metal electrodes separated by a predetermined distance and located on top of the ferroelectric layer.
- 23. The method of claim 21, wherein said at least one parasitic antenna element is arranged on a circumference of a predetermined circle around said radiating antenna element.
- 24. The method of claim 21, wherein said radiating antenna element and said at least one parasitic antenna element are separated from one another by about 0.2λ0-0.5λ0 where λ0 is a working free space wavelength of the radio signal.
- 25. The method of claim 21, wherein said radiating antenna element and said at least one parasitic antenna element each have one of the following configurations:
a monopole antenna; a dipole antenna; a planar microstrip antenna; a patch antenna; a ring antenna; or a helix antenna.
- 26. The method of claim 21, wherein:
said radiating antenna element is a dual band radiating antenna element; and said at least one parasitic antenna element includes at least one low frequency parasitic antenna element and at least one high frequency parasitic antenna.
- 27. The method of claim 21, wherein said remote nodes include mobile phones, laptop computers or personal digital assistants.
CLAIMING BENEFIT OF PRIOR FILED PROVISIONAL APPLICATION
[0001] This application claims the benefit of U.S. Provisional Application Serial No. 60/372,742 filed on Apr. 15, 2002 and entitled “Electronically Steerable Passive Array antenna with 360 Degree Beam and Null Steering Capability” which is incorporated by reference herein.
Provisional Applications (1)
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Number |
Date |
Country |
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60372742 |
Apr 2002 |
US |