WIDEBAND TRANSPARENT ELLIPTICAL ANTENNA APPLIQUE FOR ATTACHMENT TO GLASS
20170324142 · 2017-11-09
Inventors
- Timothy J. Talty (Beverly Hills, MI)
- Amit M. Patel (Santa Monica, CA, US)
- Keerti S. Kona (Woodland Hills, CA, US)
- James H. Schaffner (Chatsworth, CA, US)
- Hyok Jae Song (Oak Park, CA, US)
- Duane S. Carper (Davison, MI, US)
- ERAY YASAN (CANTON, MI, US)
Cpc classification
H01Q21/28
ELECTRICITY
H01Q9/28
ELECTRICITY
H01Q9/0407
ELECTRICITY
H01Q1/3291
ELECTRICITY
H01Q13/20
ELECTRICITY
International classification
H01Q1/52
ELECTRICITY
Abstract
A thin film, flexible, co-planar waveguide (CPW), antenna structure suitable to be mounted on vehicle glass and that has particular application for MIMO LTE applications in, for example, the 0.46-3.8 GHz frequency band. The antenna structure includes a planar antenna formed on a substrate that includes a ground plane having an elliptical cut-out slot section defined within an outer perimeter portion of the ground plane and an antenna radiating element extending into the slot from the perimeter portion.
Claims
1. An antenna structure comprising: a dielectric structure; a thin film substrate adhered to the dielectric structure by an adhesive layer; and a planar antenna formed on the substrate opposite to the adhesive layer, said planar antenna including a ground plane having an elliptical cut-out slot section defined within an outer perimeter portion of the ground plane, said antenna further including an antenna radiating element extending into the slot from the perimeter portion.
2. The antenna structure according to claim 1 wherein the antenna radiating element is a hexagonal-shaped antenna radiating element.
3. The antenna structure according to claim 1 wherein the antenna radiating element is a U-shaped antenna radiating element.
4. The antenna structure according to claim 1 wherein the antenna radiating element is a circular-shaped antenna radiating element.
5. The antenna structure according to claim 1 further comprising a feed structure electrically coupled to the perimeter portion and the antenna element.
6. The antenna structure according to claim 5 wherein the feed structure is a co-planar waveguide feed structure.
7. The antenna structure according to claim 6 further comprising a coaxial connector connected to the co-planar waveguide feed structure.
8. The antenna structure according to claim 1 wherein the perimeter portion is square.
9. The antenna structure according to claim 1 wherein the dielectric structure is a vehicle window.
10. The antenna structure according to claim 9 wherein the vehicle window is a vehicle windshield.
11. The antenna structure according to claim 1 wherein the antenna includes transparent conductors.
12. The antenna structure according to claim 1 wherein the thin film substrate is selected from the group consisting of mylar, Kapton, PET and flexible glass substrates.
13. The antenna structure according to claim 1 wherein the antenna provides signals for a multiple-input multiple output (MIMO) long term evolution (LTE) cellular system operating in the 0.46-3.8 GHz frequency band.
14. An antenna structure comprising: a vehicle window; a thin film substrate adhered to the vehicle window by an adhesive layer; and a planar antenna formed on the substrate opposite to the adhesive layer, said planar antenna including a ground plane having an elliptical cut-out slot section defined within an outer perimeter portion of the ground plane, said antenna further including an antenna radiating element extending into the slot from the perimeter portion, wherein the antenna provides signals for a multiple-input multiple output (MIMO) long term evolution (LTE) cellular system operating in the 0.46-3.8 GHz frequency band.
15. The antenna structure according to claim 14 wherein the antenna radiating element is a hexagonal-shaped antenna radiating element.
16. The antenna structure according to claim 14 wherein the antenna radiating element is a U-shaped antenna radiating element.
17. The antenna structure according to claim 14 wherein the antenna radiating element is a circular-shaped antenna radiating element.
18. The antenna structure according to claim 14 wherein the vehicle window is a vehicle windshield.
19. The antenna structure according to claim 14 wherein the antenna includes transparent conductors.
20. An antenna structure comprising: a dielectric structure; a thin film substrate adhered to the dielectric structure by an adhesive layer; a planar antenna formed on the substrate opposite to the adhesive layer, said planar antenna including a ground plane having an elliptical cut-out slot section defined within an outer perimeter portion of the ground plane, said antenna further including a hexagonal-shaped antenna radiating element extending into the slot from the perimeter portion; and a co-planar waveguide feed structure electrically coupled to the perimeter portion and the antenna element.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0017] The following discussion of the embodiments of the invention directed to a thin film, flexible, CPW antenna structure including an elliptical slot applicable for a MIMO LTE cellular system and being suitable to be adhered to a curved dielectric structure is merely exemplary in nature, and is in no way intended to limit the invention or its applications or uses. For example, the discussion herein talks about the antenna structure being applicable to be adhered to automotive glass. However, as will be appreciated by those skilled in the art, the antenna structure will have application for other dielectric structures other than automotive structures and other than transparent or translucent surfaces.
[0018]
[0019] As discussed above, it is often desirable to provide antennas on vehicles that are transparent and can be integrated in a conformal manner to the curved windshield or vehicle glass. The present invention proposes an antenna structure that has particular application for MIMO LTE cellular systems operating in, for example, the 0.46-3.8 GHz frequency band when mounted or integrated on the vehicle glass. The antenna structure can be shaped and patterned into a transparent conductor and a co-planar structure where both the antenna and ground conductors are printed on the same layer. The antenna structure can be designed to operate on automotive glass of various physical thicknesses and dielectric properties, where the antenna structure operates as intended when installed on the glass or other dielectric since in the design process the glass or other dielectric is considered in the antenna geometry pattern development.
[0020]
[0021] The antenna 30 can be formed by any suitable low loss conductor, such as copper, gold, silver, silver ceramic, metal grid/mesh, etc. If the antenna 30 is at a location on the vehicle glass that requires the driver or other vehicle occupant to see through the glass, then the conductor can be any suitable transparent conductor, such as indium tin oxide (ITO), silver nano-wire, zinc oxide (ZnO), etc. Performance of the antenna 30 when it is made of a transparent conductor could be enhanced by adding a conductive frame along the edges of the antenna 30 as is known in the art.
[0022] The thickness of automotive glass may vary between 2.8 mm-5 mm and have a relative dielectric constant ∈.sub.r in the range of 4.5-7.0. The antenna 30 includes a single layer conductor and a co-planar waveguide (CPW) feed structure to excite the antenna radiator. The CPW feed structure can be configured for mounting the connector 38 in a manner appropriate for the CPW feed line or for a pigtail or a coaxial cable. When the connector 38 or the pigtail connection to the CPW line is completed, the antenna 30 can be protected with the passivation layer 36. In one embodiment, when the antenna 30 is installed on the glass layer 26, a backing layer of the transfer tape can be removed. By providing the antenna conductor on the inside surface of the vehicle windshield 22, degradation of the antenna 30 can be reduced from environmental and weather conditions.
[0023]
[0024] Any suitable feed structure can be employed for feeding the antenna element 60.
[0025]
[0026]
[0027] Each of the antenna radiating elements 60, 86 and 106 is designed to be wideband and operate in the LTE 700 MHz-2400 MHz LTE frequency band. As is apparent, the elliptical slots 52, 84 and 104 for each of the antenna structures 40, 80 and 100 have a different size and shape. The configuration of the slots 52, 84 and 104 would be specific to the shape of the radiating element 60, 86 and 106, respectively, for the wideband use determined through simulation or other techniques. As discussed above, MIMO systems for LTE services generally require two antenna elements that are spaced apart from each so that the signal ports of the antenna elements are not correlated. In the embodiments discussed above, the outer ground planes 50, 82 and 102 provide signal isolation between the antenna structures. Two or more of the antenna structures 40, 80 and 100 can be placed on the window glass at different locations and receive the same frequency signals to provide the MIMOs signal reception, where the antenna structures 40, 80 and 100 can be mixed and matched for different applications.
[0028] The foregoing discussion discloses and describes merely exemplary embodiments of the present invention. One skilled in the art will readily recognize from such discussion and from the accompanying drawings and claims that various changes, modifications and variations can be made therein without departing from the spirit and scope of the invention as defined in the following claims.