Antenna assembly, unshielded circuit assembly and radiating unit assembly
10637155 ยท 2020-04-28
Assignee
Inventors
Cpc classification
H01Q21/08
ELECTRICITY
H01Q9/16
ELECTRICITY
H01Q1/002
ELECTRICITY
International classification
H01Q21/08
ELECTRICITY
H01Q9/24
ELECTRICITY
H01Q13/20
ELECTRICITY
H01Q9/28
ELECTRICITY
Abstract
An antenna assembly comprises a plurality of radiating elements; an unshielded circuit; and an input terminal; wherein the radiating elements are connected to the unshielded circuit through a plurality of cables, and the unshielded circuit is connected to the input terminal through an input cable; and wherein at least one of the plurality of cables and the input cable is connected to an open connect line.
Claims
1. An antenna assembly comprising: a plurality of radiating elements; an unshielded circuit; and an input terminal, wherein the plurality of radiating elements are connected to the unshielded circuit through respective ones of a plurality of additional cables, and the unshielded circuit is connected to the input terminal through an input cable, wherein at least one of the plurality of additional cables or the input cable comprises an outer conductor that is configured to carry current to the unshielded circuit and is connected to a first open connect line, and wherein the first open connect line is welded or integral to the at least one of the plurality of additional cables or the input cable.
2. The antenna assembly according to claim 1, further comprising a second open connect line that is connected adjacent a connection point between a first of the radiating elements and a first of the additional cables that is connected to the first of the radiating elements.
3. The antenna assembly according to claim 2, wherein the second open connect line is connected adjacent the connection point between the first of the radiating elements and the first of the additional cables via welding.
4. The antenna assembly according to claim 1, wherein at least one of a length of the first open connect line or a length of the second open connect line is a wavelength corresponding to a center frequency of an operating frequency band of the antenna assembly.
5. The antenna assembly according to claim 1, wherein at least one of the first open connect line and/or or the second open connect line is L-shaped.
6. The antenna assembly according to claim 1, wherein the input cable is connected to the first open connect line.
7. The antenna assembly according to claim 1, wherein the at least one of the plurality of additional cables and the input cable is connected to the first open connect line adjacent the unshielded circuit.
8. The antenna assembly according to claim 1, wherein the unshielded circuit comprises a power divider or a phase shifter.
9. The antenna assembly according to claim 1, wherein a radiating element of the plurality of radiating elements comprises a dipole.
10. The antenna assembly according to claim 1, wherein the plurality of radiating elements define a phased array of a base station antenna, and wherein the first open connect line is electrically equivalent to a grounded element at radio and/or microwave operating frequencies of the plurality of radiating elements.
11. The antenna assembly of claim 1, wherein the first open connect line is integral to the at least one of the plurality of additional cables or the input cable and comprises a metal rod.
12. The antenna assembly of claim 1, wherein the first open connect line comprises a radio frequency (RF) coaxial cable.
13. An unshielded circuit assembly for use in an antenna, comprising: an unshielded circuit; an input cable; and a plurality of additional cables, wherein the input cable and the plurality of additional cables are connected to the unshielded circuit, wherein at least one of the input cable or the plurality of additional cables comprises an outer conductor that is configured to carry current to the unshielded circuit and is connected to an open connect line, and wherein the open connect line is welded or integral to the at least one of the input cable or the plurality of additional cables.
14. The unshielded circuit assembly according to claim 13, wherein a length of the open connect line is of a wavelength corresponding to a center frequency of an operating frequency band of the antenna.
15. The unshielded circuit assembly according to claim 13, wherein the open connect line is L-shaped.
16. The unshielded circuit assembly according to claim 13, wherein the input cable is connected to the open connect line.
17. The unshielded circuit assembly according to claim 13, wherein the at least one of the input cable and the plurality of additional cables is connected to the open connect line adjacent the unshielded circuit.
18. The unshielded circuit assembly according to claim 13, wherein the unshielded circuit comprises a power divider or a phase shifter.
19. A radiating unit assembly used with an antenna comprising: a radiating element; and an unshielded circuit, wherein the radiating element is connected to the unshielded circuit through a cable comprising an outer conductor that is configured to carry current to the unshielded circuit, wherein an open connect line is connected adjacent a connection point between the radiating element and the cable, and wherein the open connect line is welded or integral to the cable.
20. The radiating unit assembly according to claim 19, wherein a length of the open connect line is of a wavelength corresponding to a center frequency of an operating frequency band of the antenna.
21. The radiating unit assembly according to claim 19, wherein the open connect line is L-shaped.
22. The radiating unit assembly according to claim 19, wherein the open connect line is connected adjacent the connection point between the radiating element and the cable.
23. The radiating unit assembly according to claim 19, wherein the radiating element comprises a dipole.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present disclosure will be understood better from the description of specific embodiments of the disclosure given in conjunction with the following figures, wherein:
(2)
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(8) In the figures, identical or similar reference numerals indicate identical or similar elements.
DETAILED DESCRIPTION
(9) Example embodiments of the present disclosure will now be described in more detail in conjunction with accompanying figures. Although example embodiments are shown in the accompanying figures, it should be understood that the present disclosure can be embodied in various ways and is not limited to the embodiments depicted herein. Instead, the embodiments are provided herein to make the disclosure more thorough and complete and to convey the scope of the present disclosure to those skilled in this art.
(10)
(11) The input cable 120 may carry RF signals from the radio to the phase shifter 100. The phase shifter 100 may split the input RF signal into a plurality of sub-components (three sub-components in the example of
(12) Pursuant to embodiments of the present invention, open connect lines may be used to reduce or eliminate an unexpected current that may be carried, for example, on the outer conductor of one of the cables 120, 130, 140, 150. Referring again to
(13) In another example embodiment, all of the cables can be connected to a respective open connect line 125, so as to reduce or eliminate any unexpected currents that are carried on the outer conductors of cables 120, 130, 140, 150.
(14) In some embodiments, the open connect line 125 may be welded to its associated cable. It will be appreciated, however, that other connection methods may be used or that the open connect line 125 may be formed integrally with the remainder of the cable. In some embodiments, the cable may be connected to the open connect line 125 adjacent the unshielded circuit 100.
(15) According to an embodiment of the present disclosure, a length of the open connect line 125 may be about wavelength of a center frequency of a frequency band of the antenna. With respect to signals that are at RF and microwave frequencies, connecting an open connect line 125 with a length of wavelength to the cable is equivalent to connecting the cable to a grounded element such as, for example, a reflector of the antenna system.
(16) In one embodiment of the disclosure, the open connect line is L-shaped. However, the present disclosure is not limited thereto and the open connect line 125 can have any appropriate shape such as a straight line shape, etc.
(17)
(18) In a typical phased array antenna, each radiating element 310 is connected to a reflector 320. The reflector may serve as a ground plane for the antenna and may be electrically grounded. However, when service and/or maintenance work are performed on the antenna, for example, technical personnel may separate the radiating element 310 from the reflector 320, and thus the radiating element 310 may no longer be connected to ground. Because of this, an unexpected current may leak through the outer conductor of the phase cable 330.
(19) In order to reduce or eliminate this unexpected current, an open connect line 315 may be connected adjacent to a connection point between the radiating element 310 and the phase cable 330, as is illustrated in
(20) According to an embodiment of the present disclosure, a length of the open connect line 315 may be about of a wavelength corresponding to a center frequency of a frequency band in which the radiating element 310 is configured to transmit and receive signals. At microwave and radio frequencies, using an open connect line 315 with a length of of a wavelength may be equivalent to connecting the phase cable 330 to an electrically grounded element such as, for example, the reflector 320 of the antenna.
(21) As shown in
(22) Therefore, in this embodiment, although the radiating element 310 does not actually touch the reflector 320 nor is it otherwise electrically connected to the reflector 320 to provide grounding, the current from the outer conductor of the phase cable 330 may still be reduced or eliminated, and thus a common mode resonance may also be reduced or eliminated. Additionally, the PIM level and the isolation stability of the antenna may be improved.
(23)
(24) As shown in
(25) One terminal of each of a plurality of phase cables 330, 130 and 150 (shown as three phase cables in
(26) In order to eliminate the unexpected current in the unshielded circuit 10, an open connect line 125 can be connected to a cable that is connected to the unshielded circuit 100. In some embodiments, testing may be performed to identify the cables on which unexpected currents are detected and open connect lines 125 may then be attached to the identified cables. Thus, for example, if an unexpected current is detected on the input cable 120, then an open connect line 125 may be connected to the input cable 120 to eliminate this unexpected current, as shown in
(27) Further, in order to eliminate an unexpected current in the radiating unit assembly 30, an open connect line 315 is connected adjacent a connection point between the radiating element 310 and the phase cable 330 to eliminate the unexpected current. Open connect lines 315 (not shown) may similarly be connected to the phase cables 130, 150 at the connections between the phase cables 130, 150 and their corresponding radiating elements 310.
(28) According to an embodiment of the present disclosure, the length of the open connect line 125 and/or the length of the open connect line 315 may be about a wavelength of a center frequency of a frequency band of the antenna assembly/antenna. In one embodiment, the open connect lines 125/315 may be formed as L-shaped lines, as shown in
(29) According to embodiments of the present disclosure, the open connect line 125/315 may be a rod made of metal or a rod with metal coating, such as a RF coaxial cable or a copper rod, etc. Under the common operating frequency of 600-2700 MHz, a general RF coaxial cable may be used as the open connect line.
(30) The above depiction is provided to enable those skilled in the art to implement or use the present disclosure. For those skilled in the art, various modifications of the present disclosure are apparent, and the general principle defined herein may also be applied to other transformations without departing from the spirit and scope of the present disclosure. Thus, the present disclosure is not limited to the examples and designs as described herein, but should be consistent with the broadest scope of the principle and novel characteristics thereof.