NEW DUAL POLARIZED ARRAY WAVEGUIDE ANTENNA
20220209425 · 2022-06-30
Assignee
Inventors
- TING-RUI ZHANG (Yilan County, TW)
- YU-CHENG CHEN (Taipei City, TW)
- LI-CHING LIN (Taoyuan City, TW)
- SHENG-FENG YEH (New Taipei City, TW)
- YOU-HUA WU (Hsinchu City, TW)
- TUNG-YI WU (Keelung City, TW)
Cpc classification
H01Q1/02
ELECTRICITY
H01Q21/24
ELECTRICITY
International classification
H01Q21/06
ELECTRICITY
H01Q1/02
ELECTRICITY
Abstract
The present invention discloses a new dual polarized array waveguide antenna configured above a signal processing substrate and sequentially including an antenna array substrate, a coupling substrate and a waveguide body. The antenna array substrate includes a plurality of patches, each of which having a first coupling portion and a second coupling portion coupled to the signal processing substrate. The top surface of the coupling substrate includes a plurality of coupling pads corresponding to the patches, and each coupling pad is configured above an intersection area of the first coupling portion and the second coupling portion. The waveguide body includes a plurality of waveguide channels passing through the waveguide body and corresponding to the coupling pads. Each waveguide channel has a first ridge pair and a second ridge pair projecting from wall surfaces. Each of the first ridge pair and the second ridge pair has a tapered opening portion withdrawn toward the wall surface of the waveguide channel on an upper section of the waveguide channel. Accordingly, signal transmission quality is improved by the structural arrangement above.
Claims
1. A new dual polarized array waveguide antenna, configured above a signal processing substrate, comprising: an antenna array substrate, comprising a plurality of patches, each of the patches having a first coupling portion and a second coupling portion coupled to the signal processing substrate, the first coupling portion being for transmitting a first electromagnetic signal, the second coupling portion being for transmitting a second electromagnetic signal, polarization directions of the first electromagnetic signal and the second electromagnetic signals being orthogonal; a coupling substrate, configured above the antenna array substrate, a top surface of the coupling substrate comprising a plurality of coupling pads corresponding to the patches, each of the coupling pads being configured above an intersection area of the first coupling portion and the second coupling portion; and a waveguide body, configured above the coupling substrate, comprising a plurality of waveguide channels passing through the waveguide body and corresponding to the coupling pads, each of the waveguide channels having a first ridge pair and a second ridge pair projecting from wall surfaces, each of the first ridge pair and the second ridge pair having two ridges arranged opposite to each other, the first ridge pair being for transmitting the first electromagnetic signal, the second ridge being for transmitting the second electromagnetic signal, each of the first ridge pair and the second ridge pair having, on an upper section of the waveguide channel, an opening portion withdrawn toward the wall surface of the waveguide channel.
2. The new dual polarized array waveguide antenna according to claim 1, wherein each of the first ridge pair and the second ridge pair has a tapered front edge portion on a portion other than the opening portion.
3. The new dual polarized array waveguide antenna according to claim 1, wherein an axis of the waveguide channel passes through the coupling pad.
4. The new dual polarized array waveguide antenna according to claim 1, wherein a vertical depth of the opening is less than ⅓ of a vertical depth of the waveguide channel.
5. The new dual polarized array waveguide antenna according to claim 4, wherein the opening portion has a step portion near an exit of the waveguide channel, and a vertical depth of the step portion is less than 1/20 of the vertical depth of the opening portion.
6. The new dual polarized array waveguide antenna according to claim 1, wherein the coupling pad is a rectangle in shape and comprises a metal material.
7. The new dual polarized array waveguide antenna according to claim 1, wherein the coupling pad is a square in shape and comprises a metal material.
8. The new dual polarized array waveguide antenna according to claim 1, wherein the patch is an asymmetric cross and comprises a metal material.
9. The new dual polarized array waveguide antenna according to claim 1, wherein an area of the coupling pad is less than an area of the intersection area of the first coupling portion and the second coupling portion.
10. The new dual polarized array waveguide antenna according to claim 1, wherein the coupling substrate comprises thereon a heat dissipation lattice layer, the heat dissipation lattice layer is coupled to a plurality of heat conducting units passing through the coupling substrate and the antenna array substrate, and each of the heat conducting units is coupled to a grounding layer of the signal processing substrate.
11. The new dual polarized array waveguide antenna according to claim 10, wherein each of the coupling pads is surrounded by the heat dissipation lattice layer.
12. The new dual polarized array waveguide antenna according to claim 10, wherein each of the waveguide body, the heat dissipation lattice layer and the heat conducting units comprises a metal material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0028] The technical characteristics, contents, advantages and effects of the present invention will become apparent from the following detailed description taken with the accompanying drawing.
[0029] For energy of electromagnetic waves emitted from an array antenna, the beamforming effect of the electromagnetic waves can be further achieved using a waveguide structure. However, the waveguide structure needs to be correspondingly reduced when the wavelength of the transmitted electromagnetic waves gets shorter, such that a feed structure between the waveguide structure and the array antenna becomes extremely critical.
[0030] A waveguide antenna described in the embodiments below achieves waveguide matching with an antenna array substrate using a structural arrangement of ridge pairs of a waveguide body and a configuration of a coupling substrate, further allowing waveguide energy to be smoothly emitted. Moreover, a distance used between waveguide channels may also be further shortened (e.g., shorter than 5 mm), while achieving better beamforming effects and increased bandwidths.
[0031]
[0032] The antenna array substrate 200 of the new dual polarized array waveguide antenna is capable of feeding, via patches 210 and the coupling substrate 300, signals transmitted from the signal processing substrate 100 to waveguide channels 410 of the waveguide body 400, and further emitting the electromagnetic wave energy into the air via the waveguide channels 410.
[0033] Each of the patches 210 has a first coupling portion 211 and a second coupling portion 212. The first coupling portion 211 may be coupled to a first signal point 111 of the signal processing substrate 100, and the second coupling portion 212 may be coupled to a second signal point 112 of the signal processing substrate 100. For example, the antenna array substrate 200, the signal processing substrate 100 and the coupling substrate 300 may individually be printed circuit boards (PCB); in these substrates, coupling requirements of various circuit signals and grounding points may be achieved by means of a layered structure, thus forming various transmission paths in the layered structure. Below the signal processing substrate 100, an integrated circuit (IC) may be configured to perform tasks including packet processing and conversion, and to establish the transmission paths using the layered structure and arrangement of conduction paths so as to further transmit signals to corresponding signal points.
[0034] Thus, each coupling portion may complete a coupling path by means of the manufacturing process of the layered structure of the printed circuit boards; for example, a conductive column is formed in a via passing through the antenna array substrate 200 to achieve coupling between a coupling point and a signal point. The first signal point 111 transmits a first electromagnetic signal, and the second signal point 112 transmits a second electromagnetic signal. Polarization directions of the first electromagnetic signal and the second electromagnetic signal are orthogonal so as to achieve dual-signal transmission performance.
[0035] The coupling substrate 300 is configured above the antenna array substrate 200. The top surface of the coupling substrate 300 includes a plurality of coupling pads 310 corresponding to the patches 210. Each coupling pad 310 is configured above an intersection area of the first coupling portion 211 and the second coupling portion 212, with associated details to be described with reference to
[0036] The waveguide body 400 is configured above the coupling substrate 300, and includes a plurality of waveguide channels 410 passing through the waveguide body 400 and corresponding to the coupling pads 310. Each waveguide channel 410 has a first ridge pair 411 and a second ridge pair 412 projecting from wall surfaces. The first ridge pair 411 has two ridges arrange opposite to each other, including a first portion 411a and a second portion 411b. The second ridge pair 412 similarly has two ridges arranged opposite to each other, including a first portion 412a and a second portion 412b. The direction in which the first ridge pair 411 projects from the wall surface of the waveguide channel 410 may correspond to the polarization direction of the first electromagnetic signal. The direction in which the second ridge pair 412 projects from the wall surface of the waveguide channel 410 may corresponding to the polarization direction of the second electromagnetic signal. Accordingly, the first ridge pair 411 transmits the first electromagnetic signal, and the second ridge pair 412 transmits the second electromagnetic signal.
[0037] The antenna array substrate 200 is frequently used as a transmission interface for emitting electromagnetic wave energy into the air. However, in the embodiment of the present invention, by using the ridge structure in the waveguide body 400 and the arrangement of the coupling substrate 300, waveguide matching is enhanced while transmission loss is reduced, further increasing bandwidths and providing better beamforming effects. The waveguide body 300 may be formed of a metal material or include a metal material, and effectively achieves a heat dissipation effect for the entire antenna device through the heat conductivity of the metal material.
[0038] Referring to
[0039] Referring to
[0040] In addition, the opening portion close to the exit of the waveguide channel 410 may further have a step portion (as exemplified by a part having a vertical depth of h1 in
[0041] Referring to
[0042] The shape of the plate of the coupling pad 310 may be a rectangle, and preferably, a square with symmetry. The shape of the patch 210 may be an asymmetric cross, and the cross includes extension portions (referring to
[0043] Referring to
[0044] Compared to the embodiments in
[0045] The coupling substrate 300 and the antenna array substrate 200 may be provided with a plurality of heat conducting units 321 passing through the coupling substrate 300 and the antenna array substrate 200. The heat conducting units 321 may be coupled to a grounding layer of the signal processing substrate 100. Because grounding paths with electrical conductivity are established by a metal material and the metal material is also heat conductive, heat conduction effects are achieved to provide the antenna array in a dense arrangement with a better heat dissipation solution. The heat conducting units 321 and the heat dissipation lattice layer 320 may also be formed of metal materials or contain metal materials, such that manufacturing of the heat dissipation lattice layer 320 may be completed and the manufacturing of the heat conducting units 321 may be completed in pre-processed vias during the printed circuit board manufacturing process.
[0046] The grounding layer 120 of the signal processing substrate 100 is exemplified as being located on the top layer of the signal processing substrate 100 in
[0047] In conclusion, on the basis of the structural arrangement of the ridges of the waveguide body and the coordination of the antenna array substrate, the new dual polarized array waveguide antenna disclosed according to the embodiments of the present invention provides better waveguide matching, reduces transmission loss, facilitates increasing the bandwidth and providing better beamforming effects. Moreover, by using a heat dissipation lattice layer and a plurality of heat conducting units, the antenna array in a dense arrangement is provided with a better heat dissipation solution.
[0048] While the invention has been described by means of specific embodiments, numerous modifications and variations could be made thereto by those skilled in the art without departing from the scope and spirit of the invention set forth in the claims.