Antenna for Use in a Distributed Antenna System
20220311139 · 2022-09-29
Assignee
Inventors
Cpc classification
International classification
Abstract
An antenna for use in a distributed antenna system is provided. The antenna includes: (a) a feeding circuit on a first side of a first dielectric defining an edge perpendicular to the first side, a coplanar waveguide comprising a signal feed and a signal return coplanar with and interfittedly apart from the signal feed; (b) a radiator circuit on a second side of a second dielectric, a monopole radiator and a radiator return being copolanar and spaced apart from each other, the first dielectric capacitively coupling the signal feed to the monopole radiator; and (c) an edge connection along the edge for electrically connecting the signal return to the radiator return.
A cover encloses the feeding circuit, including its impedance matching, in a water-resistant enclosure. The antenna ceiling-mounts indoors, is coated with a fire-resistant coating, and is operable at VHF (132-174 MHz), UHF (350-520 MHz), and 698-960 MHz.
Claims
1. An antenna for use in a distributed antenna system, the antenna comprising: (a) a feeding circuit disposed on a first side of a first dielectric defining an edge perpendicular to the first side, the feeding circuit comprising a coplanar waveguide comprising a signal feed and a signal return coplanar with and interfittedly apart from the signal feed; (b) a radiator circuit disposed on a second side of a second dielectric, the radiator circuit comprising a monopole radiator and a radiator return copolanar with and spaced apart from the monopole radiator, the first dielectric capacitively coupling the signal feed to the monopole radiator; and (c) an edge connection disposed along the edge for electrically connecting the signal return to the radiator return.
2. The antenna of claim 1 wherein the feeding circuit comprises an impedance-matching circuit member.
3. The antenna of claim 2 wherein the impedance-matching circuit member comprises a resistance connected in series with a meandering trace defining at least one switchback.
4. The antenna of claim 3 wherein the meandering trace defines a first end and a second end opposite the first end, the feeding circuit defining a trace-free gap between the signal feed and the first end, the trace-free gap being dimensioned for receiving a surface-mount resistor for providing the resistance.
5. The antenna of claim 4 comprising a second edge connection on the edge for electrically connecting the meandering trace at its second end to the radiator return.
6. The antenna of claim 1 comprising a first single-layer PCB (Printed Circuit Board) and a second single-layer PCB, the first single-layer PCB comprising the feeding circuit and the first dielectric, the second single-layer PCB comprising the radiator circuit and the second dielectric.
7. The antenna of claim 1 comprising a two-layer PCB (Printed Circuit Board) and a single-layer PCB, the two-layer PCB comprising the feeding circuit and the first dielectric, the single-layer PCB comprising the radiator circuit and the second dielectric.
8. The antenna of claim 1 further comprising a cover operable to enclose the feeding circuit in a water-resistant enclosure.
9. The antenna of claim 8 wherein the cover is dimensioned for receiving a cable holder operable to receive a feed cable comprising a signal conductor and a ground conductor, the cable holder being dimensioned to receive the feed cable such that the signal conductor is electrically connectable to the signal feed and the ground connector is electrically connectable to the radiator return.
10. The antenna of claim 8 wherein the cover comprises a flange for receiving an adhesive operable to create water-resistant adhesion between the cover and one or both of the radiator circuit and the second dielectric.
11. The antenna of claim 1 wherein the antenna is coated with a fire-resistant coating.
12. The antenna of claim 1 wherein the antenna is dimensioned for receiving a plurality of fasteners for mounting the antenna to a building structure while the plurality of fasteners is electrically isolated from the radiator circuit, the feeding circuit, and the edge connection.
13. The antenna of claim 12 wherein the plurality of fasteners comprises a plurality of spacers for maintaining a separation between the antenna and the building structure.
14. The antenna of claim 1 wherein the antenna is operable to transmit electromagnetic radiation in a plurality of frequency bands within the frequency range of 100 MHz (Mega Hertz) to 1000 MHz.
15. The antenna of claim 1 wherein one or more of the feeding circuit, the radiator circuit, and the edge connection are made of copper.
16. The antenna of claim 1 wherein the first dielectric is circuit-free on a first backside opposite the first side and the second dielectric is circuit-free on a second backside opposite the second side, the second dielectric being disposed other than between the feeding circuit and the radiator circuit.
17. An antenna for use in a distributed antenna system, the antenna comprising: (a) radiator means for wirelessly transmitting a signal; (b) feeding means for coupling the signal to the radiator means; and (c) means for electrically connecting the feeding means to the radiator means.
18. The antenna of claim 17 comprising means for conditioning the signal.
19. The antenna of claim 18 comprising means for enclosing the feeding means.
20. The antenna of claim 19 comprising means for mounting the radiator means.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] In drawings which illustrate by way of example only embodiments of the invention:
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION
[0020] An antenna for use in a distributed antenna system includes: (a) radiator means for wirelessly transmitting a signal; (b) feeding means for coupling the signal to the radiator means; and (c) means for electrically connecting the feeding means to the radiator means. The antenna may include one or more of means for conditioning the signal, means for enclosing the feeding means, and means for mounting the radiator means.
[0021] Referring to
[0022] The antenna 10 is operable to receive a feed cable 12 into an enclosure 14 (
[0023] Referring particularly to
[0024] Referring to
[0025] A radiator circuit of the first embodiment includes a monopole radiator, such as the radiator track 36 shown in
[0026] In the exemplary embodiment of
[0027] Referring to
[0028] Referring to
[0029] A feeding circuit is defined by electrically conductive material 60 that in the first embodiment is made of copper printed on the feed-signal PCB 50 so as to include a coplanar waveguide implemented by a signal feed, such as the signal-feed track 62 shown in
[0030] The signal-feed track 62 includes a plurality of signal-feed projections 68 that interfit with, while remaining spaced apart from, a corresponding plurality of signal-return projections 70 of the plurality of signal-return tracks 66. Such interfitting projections 68 and 70 advantageously provide impedance matching in the UHF band, including its UHF sub-bands.
[0031] The conductive material 60 also defines an impedance-matching circuit 70 in shunt mode that is particularly effective for the VHF band. The impedance-matching circuit 72 includes a meandering trace 74 and a pair of SMT (surface mount) resistor pads 76 for receiving a SMT resistor 78 that provides a resistance connected in series with the meandering trace 74. At a proximal end 80 of the meandering trace 74 is one pad 76 for receiving one end of the SMT resistor 78. The other pad 76 is at the signal-feed track 62 on the other side of a trace-free gap 82 defined between the pads 76. The distal end 84 of the meandering trace 74, opposite the proximal end 80, is at the edge 56 of the feed-signal PCB 50. Between the proximal and distal ends 80 and 84 of the meandering trace 74 is at least one switchback 86 that completes at least one turn of 180 degree.
[0032] As best seen in
[0033] Also shown in
[0034] In the first embodiment, the edge connection 88 and the ground-return edge connections 90 are made of copper by edge plating (or sideplating) and are electrically connected to the radiator-return track 40 by soldering, welding, or similar.
[0035] Still referring to
[0036] With reference to
[0037] Referring to
[0038] Referring to
[0039] In the exemplary mounting configuration of
[0040] While not directly visible in
[0041] As can be readily seen in
[0042] Referring to
[0043] In the first embodiment, no more than four bolts 100 are needed to mount the antenna 10 to the ceiling 96, thereby minimizing the generation of passive intermodulation (PIM) that could degrade antenna 10 performance. Also, the radiator PCB 18, feed-signal PCB 50, feed cable 12, and connector 106 have low-PIM performance ratings in the first embodiment. Accordingly, the antenna 10 according to the first embodiment is a low-PIM antenna 10.
Method of Assembly
[0044] Referring to
[0045] Before or after the SMT resistor 78 is attached, the feed-signal PCB 50 is attached to the radiator PCB 18. Attaching the feed-signal PCB 50 to the radiator PCB 18 typically involves aligning the feed-signal PCB 50 according to silkscreened indicators on the radiator PCB 18; alignedly positioning the feed-signal PCB 50 against the radiator PCB 18; attaching, such as by soldering or welding, the conductive islands 94 to each other via a connecting trace at the edge 56; and connecting, such as by soldering or welding, the feed-signal PCB 50 at its edge connection 88 and ground-return edge connections 90 to the radiator-return track 40 of the radiator PCB 18.
[0046] Before or after the feed-signal PCB 50 is attached to the radiator PCB 18, the cover 16 at its grommet 26 is placed over the unconnectorized terminal end 42 of the feed cable 12; the terminal end 42 of the feed cable 12 is positioned proximate to the feed-signal PCB 50; the braided shield 46 is electrically connected, such as by soldering or welding, to the radiator-return track 40; the inner conductor 44 is electrically connected, such as by soldering or welding, to the signal-feed track 62; an adhesive, such as a double-sided adhesive tape (not shown), is applied to the flange 24 of the cover 16; and the cover 16 at its grommet 26 is slid along the feed cable 12 until the cover 16 is positioned over the feed-signal PCB 50 and against the radiator PCB 18. Upon curing of the adhesive, the antenna 10 can be used, including being mounted for use.
[0047] Thus, there is provided an antenna for use in a distributed antenna system, the antenna comprising: (a) a feeding circuit disposed on a first side of a first dielectric defining an edge perpendicular to the first side, the feeding circuit comprising a coplanar waveguide comprising a signal feed and a signal return coplanar with and interfittedly apart from the signal feed; (b) a radiator circuit disposed on a second side of a second dielectric, the radiator circuit comprising a monopole radiator and a radiator return copolanar with and spaced apart from the monopole radiator, the first dielectric capacitively coupling the signal feed to the monopole radiator; and (c) an edge connection disposed along the edge for electrically connecting the signal return to the radiator return.
[0048] While embodiments of the invention have been described and illustrated, such embodiments should be considered illustrative of the invention only. Thus, the embodiments described and illustrated herein should not be considered to limit the invention as construed in accordance with the accompanying claims.