COUPLED ARRAY ANTENNA AND DEVICE THEREOF
20230006353 · 2023-01-05
Inventors
- Kun-Yen TU (Kaohsiung City, TW)
- Meng-Hua TSAI (Kaohsiung City, TW)
- Wei-Ting LEE (Kaohsiung City, TW)
- Sin-Siang WANG (Kaohsiung City, TW)
Cpc classification
H01Q9/0421
ELECTRICITY
International classification
Abstract
A coupled array antenna includes a feeding network layer and a plurality of patch antennas disposed on the feeding network layer. A first patch antenna is disposed on the feeding network layer, and a second patch antenna is disposed above and coupled to the first patch antenna without contacting. A plurality of coupled array antennas are connected in series through microstrips to form a coupled array antenna device to maximize the antenna gain and bandwidth.
Claims
1. A coupled array antenna, comprising: a feeding network layer; and a plurality of patch antennas, disposed on the feeding network layer, wherein a first patch antenna is disposed on the feeding network layer; a second patch antenna is disposed above and coupled to the first patch antenna; and other patch antennas are sequentially disposed above and each coupled to its previous patch antenna.
2. The coupled array antenna of claim 1, wherein the coupled array antenna further includes a multi-layer circuit substrate; the feeding network layer is disposed on a surface of a first layer, the first patch antenna is disposed on a surface of a second layer, the second patch antenna is disposed on a surface of a third layer, and the other patch antennas are sequentially disposed on each corresponding layer of the circuit substrate respectively, a distance between two adjacent layers of the circuit substrate falling in a range of 150 μm to 250 μm.
3. The coupled array antenna of claim 1, wherein a length of any side of the second patch antenna is 85% to 95% of a length of a corresponding side of the first patch antenna.
4. The coupled array antenna of claim 1, wherein an area of the first patch antenna is slightly larger than an area of the second patch antenna.
5. The coupled array antenna of claim 1, wherein the first patch antenna and the second patch antenna are patch antennas in a same geometric shape.
6. The coupled array antenna of claim 1, wherein each of the patch antennas may be a patch antenna in a geometric shape being one of a square, a rectangle, a circle, an ellipse, a triangle, a sector, a ring, or a ring sector.
7. The coupled array antenna of claim 1, wherein the first patch antenna is a patch antenna with a half-wavelength resonance condition.
8. The coupled array antenna of claim 1, wherein the first patch antenna has a first blind hole, a diameter of the first blind hole being less than 0.18 mm.
9. The coupled array antenna of claim 1, wherein a wavelength of the second patch antenna is 0.90 to 0.99 times a wavelength of the first patch antenna.
10. A coupled array antenna device, comprising the coupled array antenna of claim 1, and connecting two coupled array antennas in series through a microstrip.
11. The coupled array antenna device of claim 10, wherein the coupled array antenna further includes a multi-layer circuit substrate; the feeding network layer is disposed on a surface of a first layer, the first patch antenna is disposed on a surface of a second layer, the second patch antenna is disposed on a surface of a third layer, and the other patch antennas are sequentially disposed on each corresponding layer of the circuit substrate respectively, a distance between two adjacent layers of the circuit substrate falling in a range of 150 μm to 250 μm.
12. The coupled array antenna device of claim 10, wherein a length of any side of the second patch antenna is 85% to 95% of a length of a corresponding side of the first patch antenna.
13. The coupled array antenna device of claim 10, wherein an area of the first patch antenna is slightly larger than an area of the second patch antenna.
14. The coupled array antenna device of claim 10, wherein the first patch antenna and the second patch antenna are patch antennas in a same geometric shape.
15. The coupled array antenna device of claim 10, wherein each of the patch antennas may be a patch antenna in a geometric shape being one of a square, a rectangle, a circle, an ellipse, a triangle, a sector, a ring, or a ring sector.
16. The coupled array antenna device of claim 10, wherein the first patch antenna is a patch antenna with a half-wavelength resonance condition.
17. The coupled array antenna device of claim 10, wherein the first patch antenna has a first blind hole, a diameter of the first blind hole being less than 0.18 mm.
18. The coupled array antenna device of claim 10, wherein a wavelength of the second patch antenna is 0.90 to 0.99 times a wavelength of the first patch antenna.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0029] To make the foregoing features and advantages of the present invention clearer and more comprehensible, specific embodiments are described in detail below with reference to the accompanying drawings.
[0030]
[0031] In an existing single-layer patch antenna structure, a feeding point is electrically connected to the patch antenna from the feeding network layer 110 through a blind hole with a diameter of 0.1 mm, and an antenna gain is 7.16 dBi. However, the antenna has a disadvantage of a narrow bandwidth where the bandwidth ratio is 5.3%.
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[0033] In this embodiment, the coupled array antenna further includes a three-layer substrate having a first layer, a second layer, and a third layer. The feeding network layer 110 is disposed on a surface of the first layer. The first patch antenna 130 is disposed on a surface of the second layer on top of the first layer. The second patch antenna 140 is disposed on a surface of the third layer on top of the second layer. A total thickness of the three-layer circuit substrate is 400 μm.
[0034] The three-layer circuit substrate may be an epoxy resin, polyphenylene-oxide resin, fluorine-based resin, or LCP substrate.
[0035] In this embodiment, the operation frequency of the coupled array antenna is ranged from 57.06 GHz to 73 GHz.
[0036] In this embodiment, the structure of the patch antenna changes from an existing single-layer structure to a double-layer structure to improve the antenna bandwidth, and the bandwidth ratio of the antenna is increased to 21.7%.
[0037] The feeding network layer 110 is disposed on the first layer of the three-layer substrate, to be electrically connected to a signal source.
[0038] The feeding network layer 110 further includes a plurality of metal circuits, an impedance transformer, a power splitter, and a signal source line.
[0039] One end of each of the plurality of metal lines is electrically connected to a first blind hole, one end of the impedance transformer is electrically connected to the other end of each of the plurality of metal lines, one end of the power splitter is electrically connected to the other end of the impedance transformer, and the signal source line is electrically connected to the other end of the power splitter and the signal source.
[0040] In this embodiment, the first patch antenna 130 is slightly larger than the second patch antenna 140. The first patch antenna 130 and the second patch antenna 140 are patch antennas in a same shape.
[0041] In other embodiments, the first patch antenna 130 and the second patch antenna 140 each may have a geometric shape of square, rectangle, circle, ellipse, triangle, sector, ring, or ring sector.
[0042] In this embodiment, the first patch antenna 130 has a half-wavelength resonance condition.
[0043] The first patch antenna 130 has a first blind hole 111 of 0.1 mm in diameter, and the second patch antenna 140 has no blind hole.
[0044] The first blind hole 111 runs through the second layer of the three-layer substrate, and is electrically connected to the feeding network 110 layer and the first patch antenna 130.
[0045] Feeding may be performed from a side surface or a bottom surface of the first patch antenna 130, or a combination thereof.
[0046] The second patch antenna 140 has no blind hole, and a signal of the second patch antenna 140 is transmitted from the first patch antenna 130 through a conductive material in the blind hole, and is transmitted to the second patch antenna 140 in a non-contact electrical coupling manner.
[0047] In the present invention, a wavelength of the second patch antenna is 0.9 to 0.99 times a wavelength of the first patch antenna. In this embodiment, the wavelength of the second patch antenna is 0.93 times the wavelength of the first patch antenna.
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[0049] In this embodiment, the coupled array antenna 200a is connected to the coupled array antenna 200b in series to increase an antenna gain of the coupled array antenna. The first patch antennas 230a and 230b are connected by the microstrip 210. In addition, the second patch antenna 240a is disposed above the first patch antenna 230a, a second patch antenna 240b is disposed above the first patch antenna 230b, and the two second patch antennas are not connected to each other.
[0050] In other embodiments of the present invention, the quantity of coupled array antennas connected in series is not limited to two, but may alternatively be three or more. The quantity of stacked layers of each coupled array antenna is not limited to two, but may alternatively be three or more.
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[0052] Referring to
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[0056] In summary, a coupled array antenna and a device thereof are provided in the present invention. Two patch antennas are coupled by using a three-layer circuit substrate, an antenna gain is increased to 6.9 dBi and a bandwidth ratio is increased to 21.7% at 60 GHz. Further, a coupled patch antenna is added above a single-layer patch antenna to increase the antenna gain. The antenna gain may be further increased to 9.3 dBi and the bandwidth ratio is increased to 11.7% at 60 GHz. When coupled array antennas arranged to a 1×8 feeding network, the antenna bandwidth is greatly increased where a pass band covers a range of 57.06 GHz to 73 GHz, and the antenna gain approaches to 16 dBi. The patch antennas in some embodiments utilize LCP flexible substrates for their relatively low loss and low water absorption features that prevent the patch antennas from being easily deformed by moisture.
[0057] Although the present invention is disclosed above with the foregoing embodiments, the embodiments are not intended to limit the present invention. The equivalent replacements of changes and refinements made by any person skilled in the art without departing from the spirit and scope of the present invention shall still fall within the protection scope of the present invention.