Broad band half Vivaldi antennas and feed methods
10276946 ยท 2019-04-30
Assignee
Inventors
Cpc classification
H01Q21/08
ELECTRICITY
International classification
H01Q13/00
ELECTRICITY
H01Q21/06
ELECTRICITY
H01Q21/08
ELECTRICITY
H01Q13/08
ELECTRICITY
Abstract
A single Vivaldi antenna plate (half Vivaldi antenna) over a ground plane can be used to achieve a 50-ohm impedance, or two or more single plates over a ground plane to achieve other impedances. Unbalanced 50-ohm transmission lines, e.g., coaxial cables, can be used to directly feed the antenna.
Claims
1. A half Vivaldi antenna, comprising: a ground plane; a single conductive plate supported in a spaced relationship to the ground plane, wherein the single conductive plate and the ground plane do not touch each other at any place, wherein the single conductive plate and the ground plane have a gap therebetween that is narrowest at a throat and increases along a first curved surface of the single conductive plate to a first distal tip; an electrical feed end located at the throat, wherein the apparatus has a 50-ohm impedance and wherein a 50-ohm coaxial cable is fed directly at the feed end; and a conductive support with a non-conductive base located at the feed end, further comprising a non-conductive support located at the distal end tip, wherein the non-conductive base isolates the conductive support from the ground plane, wherein the conductive support together with the non-conductive support fixedly place the first single conductive plate over the ground plane.
2. The half Vivaldi antenna of claim 1, wherein the single conductive plate is a solid piece of material.
3. The half Vivaldi antenna of claim 1, wherein the single conductive plate comprises a plurality of holes.
4. The half Vivaldi antenna of claim 1, wherein the single conductive plate comprises a wire mesh.
5. The half Vivaldi antenna of claim 1, further comprising director elements positioned in and extending outwardly from the gap.
6. The half Vivaldi antenna of claim 1, further comprising one or more reflector elements positioned behind the throat relative to the distal tip.
7. The half Vivaldi antenna of claim 6, wherein the one or more reflector elements comprises a plurality of parallel wires or a solid plate.
8. An apparatus, comprising: a ground plane; a first conductive plate supported in a spaced relationship to the ground plane, wherein the first conductive plate and the ground plane do not touch each other at any place, wherein the first conductive plate and the ground plane have a gap therebetween that is narrowest at a throat and increases along a first curved surface of the first conductive plate to a first distal tip; and a second conductive plate supported in a second spaced relationship to the ground plane, wherein the second conductive plate is electrically connected in parallel with the first conductive plate, wherein the second conductive plate is physically connected to the first conductive plate, wherein the second conductive plate and the ground plane do not touch each other at any place, wherein the second conductive plate and the ground plane have the same gap therebetween as between the first conductive plate and the ground plane, wherein the second conductive plate is narrowest at the first throat and increases along a second curved surface of the second conductive plate to a second distal tip.
9. An apparatus, comprising: a ground plane; a first conductive plate supported in a spaced relationship to the ground plane, wherein the first conductive plate and the ground plane do not touch each other at any place, wherein the first conductive plate and the ground plane have a gap therebetween that is narrowest at a throat and increases along a first curved surface of the first conductive plate to a first distal tip; and at least one additional conductive plate supported in at least one additional respective spaced relationship to the ground plane, wherein the at least one additional conductive plate is electrically connected in parallel with the first conductive plate, wherein the at least one additional conductive plate is physically connected to the first conductive plate, wherein the at least one additional conductive plate and the ground plane do not touch each other at any place, wherein the at least one additional conductive plate and the ground plane have the same gap therebetween as between the first conductive plate and the ground plane, wherein the at least one additional conductive plate is narrowest at a respective at least one additional throat and increases along a respective at least one additional curved surface of the respective at least one additional conductive plate to a respective at least one additional distal tip.
10. The apparatus of claim 9, wherein the first conductive plate and the at least one additional conductive plate are solid, perforated or wire mesh.
11. The apparatus of claim 9, wherein the first conductive plate and the at least one additional conductive plate are joined together at a first common edge and form a first angle of less than 90 degrees therebetween.
12. The apparatus of claim 9, wherein the first conductive plate and the at least one additional conductive plate are spaced and parallel to each other.
13. The apparatus of claim 9, wherein the first conductive plate and the at least one additional conductive plate are flat.
14. The apparatus of claim 9, wherein the first conductive plate and the at least one additional conductive plate are curved.
15. The half Vivaldi antenna of claim 1, wherein the center conductor of the coaxial cable is directly connected to the electrical feed end and wherein the outer conductor of the coaxial cable is connected to the ground plane.
16. An apparatus, comprising: a ground plane; a first conductive plate supported in a spaced relationship to the ground plane, wherein the first conductive plate and the ground plane do not touch each other at any place, wherein the first conductive plate and the ground plane have a gap therebetween that is narrowest at a throat and increases along a first curved surface of the first conductive plate to a first distal tip; and one or more reflector elements positioned behind the throat relative to the distal tip, wherein the one or more reflector elements are selected from a plurality of conductive rods of various lengths, each slightly longer than half the wavelength of a respective frequency of operation of the apparatus.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will be more fully understood by reference to the following drawings which are for illustrative purposes only:
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DETAILED DESCRIPTION OF THE INVENTION
(15) Referring more specifically to the drawings, for illustrative purposes the present invention is embodied in the apparatus generally shown in
(16) A simple Vivaldi antenna 50 of the invention, shown in
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(18) Dual Vivaldi antennas of the invention, having 50-ohm impedances, are shown in
(19) Dual Vivaldi antenna 90, shown in
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(21) Similarly, to the dual Vivaldi antenna, other impedances of 100/n ohms can be produced using n Vivaldi antennas in parallel. For example, a triple Vivaldi antenna 120, made up of three antennas 122, 124, 126 arranged in an angularly diverging configuration as in
(22) While the plates in the various Vivaldi antennas of the invention previously described have had flat plates, the plates may also be curved.
(23) While each of the Vivaldi antennas of the invention previously described have had two plates per antenna, a half Vivaldi antenna of the invention can be formed of a single plate of a Vivaldi antenna over a full or partial ground plane. Since a two plate antenna has a natural impedance of 100 ohms, a single plate antenna will have a 50-ohm impedance. Thus the single plate antenna can be fed directly with a 50-ohm coaxial cable.
(24) A Vivaldi antenna operates in standard tapered slot mode from a lowest frequency defined by the height of the antenna (generally 0.53, where is the wavelength of the lowest frequency). The Vivaldi structure also exhibits a relatively closely matched impedance at a frequency defined by the length of the diagonal from the feed point to each furthest corner (tip). In another aspect of the invention, a pair of stub plates (or a single stub plate in the case of a half Vivaldi) are used to match the impedance over the frequency range from lowest tapered slot mode down to diagonal dipole mode in order to extend low frequency bandwidth by at least a factor of 2. As shown in
(25) One advantage of the Vivaldi antenna configurations of the invention is the ability to make a direct feed connection to a standard 50-ohm coaxial cable. This direct feed connection is shown in
(26) An alternate direct feed connection of cable 208 to antenna 190 of
(27) Either of the feed configurations shown in
(28) Any of the above described Vivaldi configurations can be used as a very broadband driver element feed for director elements. As shown in
(29) A reflector element or a plurality thereof may also be used in accordance with the invention to match the impedance over the frequency range from the lowest tapered slot mode down to the diagonal dipole mode in order to extend the low frequency bandwidth by at least a factor of 1.5. In addition, the reflector element(s) also increase forward antenna gain at the low frequency end of the tapered slot mode as well as through the diagonal dipole mode. As shown in
(30) A reflector or a plurality of reflectors, each slightly longer than half the wavelength at their respective frequencies, can be added to increase forward gain and/or front/back (f/b) ratio. As shown in
(31) Thus, the invention provides an improved broad band antenna for UWB communications and other applications. The invention includes a dual Vivaldi or tapered slot antenna that places the pairs of spaced conducting plates of a pair of prior art Vivaldi antennas in a parallel configuration. The dual Vivaldi antenna is formed without a dielectric substrate as an essential part of the antenna; any dielectric material is used only as a structural support to hold the conducting antenna plates in the proper geometric configuration. The dual Vivaldi antenna configuration reduces the antenna impedance to 50-ohms, thereby facilitating direct feed connections to 50-ohm coaxial cables without any impedance matching elements or circuits. Additional pairs of Vivaldi plates can also be placed in parallel with the dual antenna to form an n-multiple antenna. The invention also includes a ground plane and a single Vivaldi antenna plate or multiple single antenna plates connected in parallel and positioned over the ground plane. The gain and low frequency bandwidth may also be increased by the addition of stub plates or reflectors.
(32) Although the description above contains many details, these should not be construed as limiting the scope of the invention but as merely providing illustrations of some of the presently preferred embodiments of this invention. Therefore, it will be appreciated that the scope of the present invention fully encompasses other embodiments which may become obvious to those skilled in the art, and that the scope of the present invention is accordingly to be limited by nothing other than the appended claims, in which reference to an element in the singular is not intended to mean one and only one unless explicitly so stated, but rather one or more. All structural and functional equivalents to the elements of the above-described preferred embodiment that are known to those of ordinary skill in the art are expressly incorporated herein by reference and are intended to be encompassed by the present claims. Moreover, it is not necessary for a device to address each and every problem sought to be solved by the present invention, for it to be encompassed by the present claims. Furthermore, no element or component in the present disclosure is intended to be dedicated to the public regardless of whether the element or component is explicitly recited in the claims. No claim element herein is to be construed under the provisions of 35 U.S.C. 112, sixth paragraph, unless the element is expressly recited using the phrase means for.