Cloaked low band elements for multiband radiating arrays
11552398 · 2023-01-10
Assignee
Inventors
- Ozgur Isik (Gladesville, AU)
- Philip Raymond Gripo (Toongabbie, AU)
- Dushmantha Nuwan Prasanna Thalakotuna (Rosehill, AU)
- Peter J. Liversidge (Glenbrook, AU)
Cpc classification
H01Q21/30
ELECTRICITY
H01Q25/00
ELECTRICITY
H01Q9/16
ELECTRICITY
H01Q21/06
ELECTRICITY
H01Q19/24
ELECTRICITY
H01Q1/52
ELECTRICITY
H01Q19/108
ELECTRICITY
H01Q5/49
ELECTRICITY
International classification
H01Q21/12
ELECTRICITY
H01Q1/52
ELECTRICITY
H01Q5/49
ELECTRICITY
H01Q9/16
ELECTRICITY
H01Q21/26
ELECTRICITY
H01Q21/06
ELECTRICITY
Abstract
A multiband antenna, having a reflector, and a first array of first radiating elements having a first operational frequency band, the first radiating elements being a plurality of dipole arms, each dipole arm including a plurality of conductive segments coupled in series by a plurality of inductive elements; and a second array of second radiating elements having a second operational frequency band, wherein the plurality of conductive segments each have a length less than one-half wavelength at the second operational frequency band.
Claims
1. A parasitic element for a base station antenna, comprising: a plurality of spaced-apart conductive segments; and a plurality of metallization tracks that are narrower than the conductive segments, each metallization track electrically connecting a respective pair of the conductive segments.
2. The parasitic element of claim 1, wherein the parasitic element is a passive element that is mounted adjacent a driven radiating element.
3. The parasitic element of claim 1, wherein a number of metallization tracks included in the parasitic element is one less than a number of conductive segments included in the parasitic element.
4. The parasitic element of claim 1, wherein the conductive segments are arranged in a line.
5. The parasitic element of claim 1, wherein the conductive segments are electrically connected to each other in series by the metallization tracks.
6. The parasitic element of claim 1, wherein each metallization track comprises a respective inductor.
7. The parasitic element of claim 1, wherein the parasitic element includes at least four conductive segments.
8. The parasitic element of claim 1, wherein the parasitic element includes six conductive segments.
9. The parasitic element of claim 1, wherein at least some of the metallization tracks are U-shaped metallization tracks.
10. The parasitic element of claim 1, wherein the conductive segments and the metallization tracks comprise metallization on a non-conductive substrate.
11. An antenna, comprising: a reflector that extends in a longitudinal direction; and a parasitic element mounted to extend forwardly from the reflector, wherein the parasitic element comprises a plurality of spaced-apart conductive segments that are electrically connected in series.
12. The antenna of claim 11, wherein the parasitic element is aligned to be approximately parallel to the longitudinal direction of the reflector.
13. The antenna of claim 11, wherein the parasitic element is aligned to be approximately perpendicular to the longitudinal direction of the reflector.
14. The antenna of claim 11, wherein the parasitic element further comprises a plurality of metallization tracks that are narrower than the conductive segments, each metallization track electrically connecting a respective pair of the conductive segments.
15. The antenna of claim 14, wherein a number of metallization tracks included in the parasitic element is one less than a number of conductive segments included in the parasitic element.
16. The antenna of claim 14, wherein at least some of the metallization tracks are U-shaped metallization tracks.
17. The antenna of claim 14, wherein the conductive segments and the metallization tracks comprise metallization on a non-conductive substrate.
18. The antenna of claim 11, wherein the conductive segments are arranged in a line.
19. The antenna of claim 11, wherein the parasitic element includes at least four conductive segments.
20. The antenna of claim 11, wherein the parasitic element includes six conductive segments.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
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DESCRIPTION OF THE INVENTION
(7)
(8)
(9) The low band radiating element 16 may be advantageously used in multi-band dual-polarization cellular base-station antenna. At least two bands comprise low and high bands suitable for cellular communications. As used herein, “low band” refers to a lower frequency band, such as 694-960 MHz, and “high band” refers to a higher frequency band, such as 1695 MHz-2690 MHz. The present invention is not limited to these particular bands, and may be used in other multi-band configurations. A “low band radiator” refers to a radiator for such a lower frequency band, and a “high band radiator” refers to a radiator for such a higher frequency band. A “dual band” antenna is a multi-band antenna that comprises the low and high bands referred to throughout this disclosure.
(10) Referring to
(11) In the examples of
(12) At low band frequencies, the impedance of the inductors 24 connecting the conductive segments 22 is sufficiently low to enable the low band currents continue to flow between conductive segments 22. At high band frequencies, however, the impedance is much higher due to the series inductors 24, which reduces high band frequency current flow between the conductive segments 22. Also, keeping each of the conductive segments 22 to less than one half wavelength at high band frequencies reduces undesired interaction between the conductive segments 22 and the high band radio frequency (RF) signals. Therefore, the low band radiating elements 16 of the present invention reduce and/or attenuate any induced current from high band RF radiation from high band radiating elements 14, and any undesirable scattering of the high band signals by the low band dipole arms 20 is minimized. The low band dipole is effectively electrically invisible, or “cloaked,” at high band frequencies.
(13) As illustrated in
(14) A first example of a cloaked low band parasitic element 30a is illustrated in
(15) At high band frequencies, the inductors 24a, 24b appear to be high impedance elements which reduce current flow between the conductive segments 22a, 22b, respectively. Therefore the effect of the low band parasitic elements 30 scattering of the high band signals is minimized. However, at low band, the distributed inductive loading along the parasitic element 30 tunes the phase of the low band current, thereby giving some control over the low band azimuth beam width.
(16) In a multiband antenna according to one aspect of the present invention described above, the dipole radiating element 16 and parasitic elements 30 are configured for low band operation. However, the invention is not limited to low band operation, the invention is contemplated to be employed in additional embodiments where driven and/or passive elements are intended to operate at one frequency band, and be unaffected by RF radiation from active radiating elements in other frequency bands. The exemplary low band radiating element 16 also comprises a cross-dipole radiating element. Other aspects of the invention may utilize a single dipole radiating element if only one polarization is required.