IP Library Patent Application 10938458
Patent Application
App. No. 10/938,458

Concealed planar antenna

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Quick Facts
Patent No.
US None
App. No.
10/938,458
Abstract

The invention involves a radio frequency (RF) antenna, having both reduced size and optimized impedance matching to free space over a range of wavelengths. The invention also involves methods for hiding an antenna by reducing its size and concealing it behind or within an object that is transparent to electromagnetic waves over a range of wavelengths being transmitted or received by the antenna.

Claims (60)

1 . A concealed antenna, comprising:

a planar radio frequency (RF) antenna having both reduced size and optimized impedance matching to free space over a range of wavelengths, said antenna comprising:

at least one ground plane,

at least one active element, and

at least one layer of dielectric material having a dielectric constant exceeding 1.0 and a permittivity to permeability ratio exceeding 1:1.

2 . The concealed antenna of claim 1 , further comprising an object transparent to electromagnetic waves of said range of wavelengths, said planar RF antenna being concealed by placing said antenna behind or within said object.

3 . The concealed antenna of claim 2 , wherein said object is an integral part of a mobile vehicle.

4 . The concealed antenna of claim 2 , wherein said object is an integral part of a shipping container.

5 . The concealed antenna of claim 2 , wherein said object has the shape of a louver vent, nose rail, bumper, body patch, comer protector, corner vent, or marker light.

6 . The concealed antenna of claim 1 , wherein said range of wavelengths is the VHF range.

7 . The concealed antenna of claim 1 , wherein said dielectric material is a ferroelectric material.

8 . The concealed antenna of claim 1 , wherein said dielectric material is selected from the group consisting of titania, titanium oxide, titanium dioxide, barium titanate, and rutile.

9 . The concealed antenna of claim 1 , wherein said dielectric material has a dielectric constant exceeding about 2 and a permittivity to permeability ratio exceeding about 2:1.

10 . The concealed antenna of claim 1 , further comprising a feed circuit, said feed circuit comprising at least one conducting cable, the end of said cable being electrically connected to, and positioned on, said at least one active element in such a way as to achieve said optimized impedance matching.

11 . The concealed antenna of claim 1 lacking aperture coupling.

12 . A concealed antenna, comprising:

a planar, radio frequency (RF) antenna having both reduced size and optimized impedance matching to free space over a range of wavelengths, said antenna comprising:

a first conducting layer, acting as a ground plane,

a second conducting layer opposite said first layer, said second layer acting as an active element, and

a layer of dielectric material situated between said first and said second conducting layers, said material having a dielectric constant exceeding 1.0 and a permittivity to permeability ratio exceeding 1:1.

13 . The concealed antenna of claim 12 , further comprising an object transparent to electromagnetic waves of said range of wavelengths, said planar RF antenna being concealed by placing said antenna behind or within said object.

14 . The concealed antenna of claim 13 , wherein said object is an integral part of a mobile vehicle.

15 . The concealed antenna of claim 13 , wherein said object is an integral part of a shipping container.

16 . The concealed antenna of claim 13 , wherein said object has the shape of a louver vent, nose rail, bumper, body patch, comer protector, corner vent, or marker light.

17 . The concealed antenna of claim 12 , wherein said range of wavelengths is the VHF range.

18 . The concealed antenna of claim 12 , wherein said dielectric material is a ferroelectric material.

19 . The concealed antenna of claim 12 , wherein said dielectric material is selected from the group consisting of titania, titanium oxide, titanium dioxide, barium titanate, and rutile.

20 . The concealed antenna of claim 12 , wherein said dielectric material has a dielectric constant exceeding about 2 and a permittivity to permeability ratio exceeding about 2:1.

21 . The concealed antenna of claim 12 , further comprising a feed circuit, said feed circuit comprising at least one conducting cable, the end of said cable being electrically connected to, and positioned on, said at least one active element in such a way as to achieve said optimized impedance matching.

22 . The concealed antenna of claim 12 lacking aperture coupling.

23 . A method of concealing an RF antenna, the method comprising:

creating a planar radio frequency (RF) antenna having both reduced size and optimized impedance matching to free space over a range of wavelengths, said antenna comprising:

at least one ground plane,

at least one active element, and

at least one layer of dielectric material having a dielectric constant exceeding 1.0 and a permittivity to permeability ratio exceeding 1:1; and

concealing said planar antenna behind or within an object transparent to electromagnetic waves of said range of wavelengths.

24 . The method of claim 23 , wherein said object is an integral part of a mobile vehicle.

25 . The method of claim 23 , wherein said object is an integral part of a shipping container.

26 . The method of claim 23 , wherein said object has the shape of a louver vent, nose rail, bumper, body patch, comer protector, corner vent, or marker light.

27 . The method of claim 23 , wherein said range of wavelengths is the VHF range.

28 . The method of claim 23 , wherein said dielectric material is a ferroelectric material.

29 . The method of claim 23 , wherein said dielectric material is selected from the group consisting of titania, titanium oxide, titanium dioxide, barium titanate, and rutile.

30 . The method of claim 23 , wherein said dielectric material has a dielectric constant exceeding about 2 and a permittivity to permeability ratio exceeding about 2:1.

31 . The method of claim 23 , said planar RF antenna further comprising a feed circuit, said feed circuit comprising at least one conducting cable, the end of said cable being electrically connected to, and positioned on, said at least one active element in such a way as to achieve said optimized impedance matching.

32 . The method of claim 23 wherein said planar RF antenna lacks aperture coupling.

33 . A method of concealing an RF antenna, the method comprising:

creating a planar radio frequency (RF) antenna having both reduced size and optimized impedance matching to free space over a range of wavelengths, said antenna comprising:

a first conducting layer, acting as a ground plane,

a second conducting layer opposite said first layer, said second layer acting as an active element, and

a layer of dielectric material situated between said first and said second conducting layers, said material having a dielectric constant exceeding 1.0 and a permittivity to permeability ratio exceeding 1:1; and

concealing said planar antenna behind or within an object transparent to electromagnetic waves of said range of wavelengths.

34 . The method of claim 33 , wherein said object is an integral part of a mobile vehicle.

35 . The method of claim 33 , wherein said object is an integral part of a shipping container.

36 . The method of claim 33 , wherein said object has the shape of a louver vent, nose rail, bumper, body patch, corner protector, corner vent, or marker light.

37 . The method of claim 33 , wherein said range of wavelengths is the VHF range.

38 . The method of claim 33 , wherein said dielectric material is a ferroelectric material.

39 . The method of claim 33 , wherein said dielectric material is selected from the group consisting of titania, titanium oxide, titanium dioxide, barium titanate, and rutile.

40 . The method of claim 33 , wherein said dielectric material has a dielectric constant exceeding about 2 and a permittivity to permeability ratio exceeding about 2:1.

41 . The method of claim 33 , said planar RF antenna further comprising a feed circuit, said feed circuit comprising at least one conducting cable, the end of said cable being electrically connected to, and positioned on, said at least one active element in such a way as to achieve said optimized impedance matching.

42 . The method of claim 33 wherein said planar RF antenna lacks aperture coupling.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 25, 2010
From: GENERAL ELECTRIC COMPANY
To: ASSET INTELLIGENCE, LLC
Reel/Frame 023839/0006 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 14, 2009
From: GE EQUIPMENT SERVICES-ASSET INTELLIGENCE AND OPERATING DIVISION OF GENERAL ELECTRIC CAPITAL
To: GENERAL ELECTRIC COMPANY
Reel/Frame 023647/0603 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 4, 2005
From: JESSON, JOSEPH; BREEN, THOMAS B.; MACKENZIE, PATRICIA D.; THEURER, CHARLES B.; PINTO, WILLIAM
To: GE EQUIPMENT SERVICES - ASSET INTELLIGENCE AND OPERATING DIVISION OF GENERAL ELECTRIC CAPITAL
Reel/Frame 016524/0924 →