Slot-fed dual horse shoe circularly-polarized broadband antenna
11189936 · 2021-11-30
Assignee
Inventors
- Frederick Joseph Verd (Santee, CA, US)
- John Harold Meloling (San Diego, CA, US)
- Terence R. Albert (San Diego, CA, US)
Cpc classification
International classification
H01Q21/06
ELECTRICITY
H01Q9/26
ELECTRICITY
Abstract
An antenna comprising: first and second dielectric layers; a conductive slot layer disposed between the first and second dielectric layers, wherein the slot layer has a slot therein with short and long axes of symmetry; a pair of arcs, rotated 180° from each other, made of conductive material, and disposed on top of the first dielectric layer, wherein proximal ends of the arcs are vertically-aligned with the short axis of symmetry and equidistant from the long axis of symmetry and electrically connected to the slot layer through vias in the first dielectric layer; and a forked feed made of conductive material disposed on the bottom of the second dielectric layer, wherein the forked feed has a centerline that is vertically-aligned with the short axis of symmetry.
Claims
1. An antenna comprising: first and second dielectric layers; a conductive slot layer disposed between a bottom surface of the first dielectric layer and a top surface of the second dielectric layer, wherein the slot layer has a slot therein, wherein the slot has short and long axes of symmetry; a pair of arcs made of conductive material and disposed on a top surface of the first dielectric layer, wherein the arcs are rotated 180° from each other and each arc has a distal end and a proximal end, the proximal ends being vertically-aligned with the short axis of symmetry and equidistant from the long axis of symmetry, and wherein the proximal ends are electrically connected to the slot layer through vias in the first dielectric layer; and a forked feed made of conductive material disposed on a bottom surface of the second dielectric layer, wherein the forked feed has a centerline that is vertically-aligned with the short axis of symmetry.
2. The antenna of claim 1, wherein the arcs are elliptical.
3. The antenna of claim 1, wherein the arcs are circular.
4. The antenna of claim 3, wherein each circular arc subtends an angle of approximately 270°±25° at the center of a circle.
5. The antenna of claim 1, wherein the arcs are shaped like calk-less horse-shoes.
6. The antenna of claim 2, wherein the slot is rectangular.
7. The antenna of claim 6, wherein the proximal ends of the arcs are offset from each other by greater than a width of the rectangular slot.
8. The antenna of claim 7, wherein the forked feed has a forked section disposed under the rectangular slot.
9. The antenna of claim 8, wherein the arcs are made of gold-plated copper.
10. The antenna of claim 9, wherein the forked feed and the slot layer are made of copper.
11. The antenna of claim 8, wherein the arcs are oriented so as to provide right-handed circular polarization.
12. The antenna of claim 8, wherein the arcs are oriented so as to provide left-handed circular polarization.
13. The antenna of claim 8, wherein the arcs are oriented so as to provide elliptical polarization.
14. The antenna of claim 8, further comprising a plurality of antennas, wherein each of the plurality of antennas is identical to the antenna, and wherein the plurality of antennas are disposed with respect to each other to form a passive retro-reflective antenna array such that no power sources other than incoming RF energy is required for the passive retro-reflective antenna array to generate a return RF signal in the direction of the incoming RF energy.
15. An antenna comprising: a slot layer having a rectangular slot cut therein, a pair of conductive arcs separated from the slot layer by a first dielectric layer, wherein proximal ends of the arcs are connected to the slot layer through vias in the first dielectric layer, and wherein the arcs are shaped and oriented with respect to each other and the rectangular slot so as to induce circular polarization and to function as an impedance matching device between the slot layer and air/space; and a feed conductor separated from the slot layer by a second dielectric layer such that the slot layer is disposed between the first and second dielectric layers, wherein the feed conductor is shaped and oriented with respect to the rectangular slot so as to function as an impedance matching device between incoming radio frequency radiation (RF) and the rectangular slot.
16. The antenna of claim 15, wherein each arc comprises a distal end that is positioned on the first dielectric layer with respect to the rectangular slot so as to cancel out an energy field emanating from the rectangular slot such that there is minimal frequency interaction between the distal ends and the rectangular slot.
17. The antenna of claim 16, further comprising a plurality of antennas, wherein each of the plurality of antennas is identical to the antenna, and wherein the plurality of antennas are disposed with respect to each other to form a passive retro-reflective antenna array such that no power sources other than incoming RF energy is required for the passive retro-reflective antenna array to generate a return RF signal in the direction of the incoming RF energy.
18. A passive, RF, retro-reflective antenna array comprising: a first dielectric layer having top and bottom surfaces; a plurality of arc-shaped antenna element pairs disposed on the top surface of the first dielectric layer; a conductive slot layer disposed on the bottom surface of the first dielectric layer, wherein a slot is formed in the slot layer under each arc-shaped antenna element pair, and wherein each arc-shaped antenna element pair is electrically connected through vias to the slot layer; a second dielectric layer having top and bottom surfaces, wherein the slot layer is disposed between the top surface of the second dielectric layer and the bottom layer of the first dielectric layer; and a transmission line layer disposed on the bottom surface of the second dielectric layer, wherein 50 Ohm transmission lines are formed in the transmission line layer, and wherein each transmission line terminates in a forked feed structure and corresponds to, and is aligned with, a separate arc-shaped antenna element pair.
19. The passive, RF, retro-reflective antenna array of claim 18, further comprising: a third dielectric layer having top and bottom surfaces, wherein the transmission line layer is disposed between the top surface of the third dielectric layer and the bottom surface of the second dielectric layer; and a ground plane disposed on the bottom surface of the third dielectric layer.
20. The passive, RF, retro-reflective antenna array of claim 19, wherein the transmission line lengths are kept to multiple wavelengths of a center frequency of the passive, RF, retro-reflective antenna array.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Throughout the several views, like elements are referenced using like references. The elements in the figures are not drawn to scale and some dimensions are exaggerated for clarity.
(2)
(3)
(4)
(5)
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(7)
DETAILED DESCRIPTION OF EMBODIMENTS
(8) The disclosed antenna below may be described generally, as well as in terms of specific examples and/or specific embodiments. For instances where references are made to detailed examples and/or embodiments, it should be appreciated that any of the underlying principles described are not to be limited to a single embodiment, but may be expanded for use with any of the other methods and systems described herein as will be understood by one of ordinary skill in the art unless otherwise stated specifically.
(9)
(10) The slot layer 14 is conductive and is disposed on a bottom surface 20 of the first dielectric layer 12. The slot layer 14 has a slot 22 therein. In the embodiment of the slot-fed antenna 10 shown in
(11) The pair of arcs 16 are made of conductive material and are disposed on a top surface 29 of the first dielectric layer 12. The arcs are rotated 180° from each other and each arc 16 has a distal end 30 and a proximal end 32. As shown in
(12) The forked feed 18 (or feed conductor) is made of conductive material and is disposed on a bottom surface 40 of the second dielectric layer 17. The forked feed 18 has a centerline 42 that is vertically-aligned with the short axis of symmetry 24. The forked feed 18 may be made of any conductive material. For example, a suitable example of material from which the forked feed 18 may be made, is, but is not limited to, copper. The forked feed 18 is separated from the slot layer 14 by the second dielectric layer 17. The forked feed 18 is shaped and oriented with respect to the slot 22 so as to function as an impedance matching device between incoming radio frequency radiation (RF) and the slot 22.
(13) The slot-fed antenna 10 shown in the figures and described herein is flat and compact, which also supports satellite requirements or communication systems that have limited space for antennas. The slot-fed antenna 10 is slot-fed which eliminates phase matching issues when transitioning electromagnetic fields from transmission lines to antennas. The feed and slot size are carefully designed to support the best phase response and electromagnetic field exchange from transmission line balun, to slot, then to dual feed antenna elements. The size selected for these structures support the bandwidth of the antenna system. The type of metal and PCB material used in manufacturing can vary depending on desired performance. The slot-fed antenna 10 supports the transition from linear to circular polarization.
(14) Many slot-fed antennas 10 may be used together in an array so as to form a passive, retro-reflective antenna array for RF energy. Passive, in that no power sources other than incoming RF energy is required to generate a return signal in the direction of the incoming RF energy. The slot-fed antenna 10 may also be used in a phased-array for communications or radar applications.
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(17) The following equations represent the behavior of the passive, RF, retro-reflective antenna array 50:
ΦTxAnt=ΦRxAnt=−90deg=−Π/2 (Eq. 1)
In Equation 1, ΦTxAnt is the phase of a transmitting antenna, ΦRxAnt is the phase of a receiving antenna, and 2Π 360° at a center frequency of the RF, retro-reflective antenna array 50.
ΦPair=ΦRxAnt+ΦTxAnt−βl=−(Π/2+2Πm) (Eq. 2)
In equation 2, ΦPair is the phase of a connected pair of slot-fed antennas 10 (such as 10.sub.a and 10.sub.b shown in
−βl=−ΦRxAnt−ΦTxAnt−Π/2−2Πm (Eq. 3)
−βl=Π/2+Π/2−Π/2−2Πm (Eq. 4)
−βl=Π/2−2Πm=(Π/2−2Π)−2Πm (Eq. 5)
−βl=−3Π/2−2Πm or −βl=−270deg−2Πm (Eq. 6)
Equations 3-6 illustrate how the electrical length of a transmission line must be −270 deg−2 Πm.
(18)
(19) The following is a description of the materials and dimensions of one embodiment of the passive, RF, retro-reflective antenna array 50 shown in
(20) From the above description of the slot-fed antenna 10, it is manifest that various techniques may be used for implementing the concepts of the antenna without departing from the scope of the claims. The described embodiments are to be considered in all respects as illustrative and not restrictive. The method/apparatus disclosed herein may be practiced in the absence of any element that is not specifically claimed and/or disclosed herein. It should also be understood that the slot-fed antenna 10 is not limited to the particular embodiments described herein, but is capable of many embodiments without departing from the scope of the claims.