Wide band directional antenna
11757187 · 2023-09-12
Assignee
Inventors
- Lorenzo Mezzadrelli (Mantova, IT)
- Mercurio D'Aleo (Volta Mantovana, IT)
- Vittorio Loi (Villagrande Strisaili, IT)
- Luigi Corrà (Marano Vicentino, IT)
Cpc classification
H01Q21/30
ELECTRICITY
H01Q5/321
ELECTRICITY
H01Q5/49
ELECTRICITY
International classification
H01Q5/321
ELECTRICITY
H01Q5/49
ELECTRICITY
Abstract
A wide band directional antenna includes three elements which are partially aligned, electrically isolated from each other, of which a lower element includes at least one reflector circuit, a middle element comprises at least one dipole circuit connected to a transmission line, and an upper element includes a director circuit, wherein the dipole circuit includes at least one first pair of conductive elements, suitable for forming a minor dipole connected to the transmission line, and at least one second pair of electrically isolated conductive elements, excited with capacitive effect by the minor dipole, in such a way as to form a major dipole.
Claims
1. A wide band directional antenna, comprising: a transmission line, at least three elements which are at least partially aligned in a stack configuration, electrically isolated from each other, the at least three elements including: a lower element comprising at least one reflector circuit, a middle element comprising at least one dipole circuit connected to the transmission line, and an upper element comprising at least one director circuit, wherein the at least one dipole circuit comprises at least one first pair of conductive elements, for forming a minor dipole connected to the transmission line, and at least one second pair of electrically isolated conductive elements, excited with capacitive effect by the minor dipole, to form a major dipole, a first element of the at least one first pair of conductive elements and a first element of the at least one second pair of electrically isolated conductive elements at least partially overlapping one another, and a second element of the at least one first pair of conductive elements and a second element of the at least one second pair of electrically isolated conductive elements at least partially overlapping one another.
2. The antenna according to claim 1, and further comprising two identical dipole circuits connected to the transmission line, to form an antenna array.
3. The antenna according to claim 1, wherein at least one of the first and second elements of the at least one second pair of electrically isolated conductive elements comprises a bent extension parallel to a body of the major dipole, to favor impedance adjustment at a lower frequency band.
4. The antenna according to claim 3, wherein the bent extension reaches the second element of the at least one second pair of electrically isolated second conductive elements to form a capacitive coupling.
5. The antenna according to claim 1, wherein the transmission line comprises a coaxial cable and at least one double-wire line, for connection to the antenna.
6. The antenna according to claim 1, wherein the at least one reflector circuit of the lower element comprises two reflector circuits which are substantially specular and electrically isolated from each other.
7. The antenna according to claim 1, wherein the at least one reflector circuit comprises a cut which is transversal relative to the dipoles, and at least partially aligned with the transmission line, to extend a path of the currents and to maintain electrical continuity.
8. The antenna according to claim 1, wherein the at least one reflector circuit comprises at least one non-conductive island, with a substantially polygonal shape, to improve the behavior of at least one reflector circuit at a higher frequency band.
9. The antenna according to claim 8, wherein the at least one non-conductive island has a quadrangular shape.
10. The antenna according to claim 8, wherein the at least one non-conductive island includes two parallel sides which are sized to allow functionality of the at least one reflector circuit for two different frequency bands, whose quarter wavelength substantially corresponds to lengths of the two parallel sides.
11. The antenna according to claim 8, wherein the at least one non-conductive island includes two non-conductive islands which are positioned symmetrically relative to a transversal cut separating the two non-conductive islands.
12. The antenna according to claim 1, wherein the upper element comprises two director circuits which are substantially symmetrical, such that each faces one of the dipoles.
13. The antenna according to claim 12, wherein at least one of the director circuits has a trapezoidal shape, to improve behavior of the at least one of the director circuits at a higher frequency band and to bring the at least one dipole circuit back to resonance.
14. The antenna according to claim 1, wherein the upper element comprises a horizontal “H”-shaped third director circuit, to improve impedance adjustment at a lower frequency band.
15. The antenna according to claim 1, and further comprising a plurality of spacers, for separating the middle element from the lower element and from the upper element, to optimize an efficiency of the antenna.
16. A wide band directional antenna, comprising: a transmission line, at least three elements which are at least partially aligned, electrically isolated from each other, the at least three elements including: a lower element comprising at least one reflector circuit, a middle element comprising at least one dipole circuit connected to the transmission line, and an upper element comprising at least one director circuit, wherein the at least one dipole circuit comprises at least one first pair of conductive elements, forming a minor dipole connected to the transmission line, and at least one second pair of electrically isolated conductive elements, excited with capacitive effect by the minor dipole, to form a major dipole, wherein the at least one reflector circuit comprises a cut which is transversal relative to the dipoles, and at least partially aligned with the transmission line, to extend a path of the currents and to maintain electrical continuity.
17. A wide band directional antenna, comprising: a transmission line, at least three elements which are at least partially aligned, electrically isolated from each other, the at least three elements including: a lower element comprising at least one reflector circuit, a middle element comprising at least one dipole circuit connected to the transmission line, and an upper element comprising at least one director circuit, wherein the at least one dipole circuit comprises at least one first pair of conductive elements, forming a minor dipole connected to the transmission line, and at least one second pair of electrically isolated conductive elements, excited with capacitive effect by the minor dipole, to form a major dipole, wherein the at least one reflector circuit comprises at least one non-conductive island, with a substantially polygonal shape, to improve behavior of the at least one reflector circuit at a higher frequency band, wherein the at least one non-conductive island includes two parallel sides which are sized to allow functionality of the at least one reflector circuit for two different frequency bands, whose quarter wavelength substantially corresponds to lengths of the two parallel sides.
18. The antenna according to claim 17, wherein the at least one non-conductive island includes two non-conductive islands which are positioned symmetrically relative to a transversal cut separating the two non-conductive islands.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further advantages and features of the invention will be more apparent in the detailed description which follows, with reference to the accompanying drawings, which show an example, non-limiting embodiment, in which:
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
(9) As seen in the figures, the invention relates to a wide band directional antenna, particularly suitable for transmitting and receiving radio frequency signals operating in the mobile communication standards sector, particularly 4G and 5G. In this specific use, the invention allows use to be made of many frequency bands included in a vast range which goes from frequencies below 1000 MHz, for example the band included between 698 and 960 MHz, up to frequencies higher than 3000 MHz and beyond, for example the band included between 3300 and 3800 MHz. However, that does not compromise use of the invention even for other frequency bands used for this and other purposes, such as, for example, WiFi transmissions, next generation cellular networks or other single-band or multi-band communication standards used in civilian, military, industrial, medical or other sectors. The antenna 10, shown in an assembly configuration without the containment structure, comprises at least three elements 1, 2, 3 which are at least partially aligned, electrically isolated from each other, of which a lower element 1 comprises at least one reflector circuit 11, a middle element 2 comprises at least one dipole circuit 21 connected to a transmission line 4, and an upper element 3 comprises at least one director circuit 31. The three elements 1, 2, 3, visible in the exploded view of
(10) The reflector circuit 11 reflects the electromagnetic field which strikes it; the dipole circuit 21, connected to the transmission line 4 transmits and receives the signal of interest from and to a telecommunications unit, not shown here; the director circuit 31 promotes the propagation of the electromagnetic field arriving from the dipole circuit 21 and from the reflector circuit 11 in a predetermined direction.
(11) In a preferred embodiment of the antenna 10, the dipole circuit 21, shown in
(12) In the embodiment shown in the figures, the antenna 10 comprises two identical and specular dipole circuits 21, 21′, which are connected to the transmission line 4, here composed of a coaxial cable 41 and two double-wire lines 42, which allow the signal to be split or formed equally between the two dipoles 21, 21′. The set of dipoles 21, 21′ fed in this way forms an “antenna array”, allowing an increase in the overall gain and improving the directional feature of the antenna.
(13) Moreover, it is advantageous for at least one electrically isolated conductive element 214 to comprise a bent extension 214a parallel to the body of the major dipole 21M, in such a way as to favor impedance adjustment at the lower frequencies, and having a length such that it reaches the electrically isolated second conductive element 213 in such a way as to form a capacitive coupling.
(14) The lower element 1, shown in
(15) The reflector circuit 11 comprises at least one non-conductive island 11b, with a substantially polygonal shape, in such a way as to improve the behavior of the reflector circuit 11 at the higher frequency bands. In the example shown in the figures, the reflector circuits 11, 11′ each comprise two islands 11b which are positioned symmetrically relative to the transversal cut 11a, having a quadrangular shape and preferably trapezoidal, wherein the two parallel sides 111b are sized in order to allow the functionality of the reflector circuit 11 for two different frequency bands, whose quarter wavelength substantially corresponds to the lengths of the parallel sides 111b.
(16) The upper element 3, shown in
(17) The upper element 3 also comprises a horizontal “H”-shaped third director circuit 31″, in order to improve impedance adjustment at the lower frequency bands, for example between 698 and 960 MHz.
(18) A plurality of spacers 5, suitable for separating the middle element 2 from the lower element 1 and from the upper element 3 allows the efficiency of the antenna 10 to be optimized, sizing it depending on the frequency bands to be used.