Patch antenna
11450965 · 2022-09-20
Assignee
Inventors
Cpc classification
H01Q19/005
ELECTRICITY
International classification
H01Q19/00
ELECTRICITY
Abstract
Disclosed herein is a patch antenna that includes a first dielectric layer in which a patch conductor is provided, a second dielectric layer in which a signal line extending in a direction parallel to the patch conductor is provided, a feed conductor provided perpendicularly to the patch conductor so as to connect one end of the signal line and a feed point for the patch conductor, a first ground pattern provided between the patch conductor and the signal line, and a second ground pattern provided on an opposite side to the first ground pattern with respect to the signal line. The first dielectric layer has a dielectric constant lower than that of the second dielectric layer.
Claims
1. A patch antenna comprising: a first dielectric layer in which a patch conductor is provided; a second dielectric layer in which a first signal line extending in a direction parallel to the patch conductor is provided; a first feed conductor provided perpendicularly to the patch conductor so as to connect one end of the first signal line and a first feed point for the patch conductor; a first ground pattern provided between the patch conductor and the first signal line; and a second ground pattern provided inside the second dielectric layer such that the first signal line is sandwiched between the first and second dielectric layers, the second ground pattern having a first opening; and a second feed conductor penetrating through the first opening, the second feed conductor being connected to other end of the first signal line, wherein the first and second feed conductors are different in planar position from each other, wherein the first dielectric layer has a dielectric constant lower than that of the second dielectric layer, and wherein the dielectric constant of the second dielectric layer is 6 or more.
2. The patch antenna as claimed in claim 1, wherein the first ground pattern is disposed on a boundary surface between the first and second dielectric layers.
3. The patch antenna as claimed in claim 1, wherein the patch conductor is disposed on an outermost surface of the first dielectric layer.
4. The patch antenna as claimed in claim 1, wherein the second ground pattern is disposed on an outermost surface of the second dielectric layer.
5. The patch antenna as claimed in claim 1, further comprising a parasitic patch conductor provided in the first dielectric layer so as to overlap the patch conductor.
6. The patch antenna as claimed in claim 1, further comprising: a second signal line provided in the second dielectric layer; and a third feed conductor provided perpendicularly to the patch conductor and connecting one end of the second signal line and a second feed point for the patch conductor; a fourth feed conductor penetrating through a second opening of the second ground pattern, the fourth feed conductor being connected to other end of the second signal line, wherein the third and fourth feed conductors are different in planar position from each other.
7. The patch antenna as claimed in claim 1, wherein a plurality of sets of the patch conductor, first signal line, and first and second feed conductors are provided in an array.
8. The patch antenna as claimed in claim 1, wherein the second dielectric layer has a first region and a second region having a thickness smaller than that of the first region, wherein the first dielectric layer is provided on the first region of the second dielectric layer, and wherein the first signal line is formed over the first and second regions of the second dielectric layer.
9. The patch antenna as claimed in claim 8, wherein a side surface of the second dielectric layer positioned between the first and second regions is exposed.
10. The patch antenna as claimed in claim 8, wherein the one end of the first signal line is located at the first region, and wherein the other end of the first signal line is located at the second region.
11. The patch antenna as claimed in claim 1, wherein the first signal line is a microstripline, a stripline, or a coplanar waveguide line.
12. The patch antenna as claimed in claim 1, wherein the dielectric constant of the first dielectric layer is 2 or less.
13. The patch antenna as claimed in claim 1, wherein the first dielectric layer has a lower surface facing to the second dielectric layer and an upper surface positioned opposite to the lower surface, and wherein the upper surface of the first dielectric layer is exposed without covered with any dielectric layer.
14. A patch antenna comprising: a first dielectric layer having a first dielectric constant; a second dielectric layer having a second dielectric constant higher than the first dielectric constant, the second dielectric constant being 6 or more; a patch conductor provided on the first dielectric layer; a first ground pattern provided between the first and second dielectric layers, the first ground pattern having a first opening; a second ground pattern formed embedded in the second dielectric layer, the second ground pattern having a second opening; a signal line embedded in the second dielectric layer such that the signal line is sandwiched between the first and second ground patterns; a first feed conductor penetrating through the first opening, the first feed conductor having a first end connected to the patch conductor and a second end connected to one end of the signal line; and a second feed conductor penetrating through the second opening, the second feed conductor having a first end connected to other end of the signal line, wherein the first and second feed conductors are different in planar position from each other.
15. The patch antenna as claimed in claim 14, wherein the first dielectric constant is 2 or less.
16. The patch antenna as claimed in claim 14, wherein the signal line has a first section extending in a first direction and a second section extending in a second direction different from the first direction.
17. The patch antenna as claimed in claim 14, wherein the second dielectric layer has a first region and a second region having a thickness smaller than that of the first region, wherein the first dielectric layer is selectively formed on the first region of the second dielectric layer without covering the second region of the second dielectric layer, wherein the first ground pattern is selectively formed on the first region of the second dielectric layer without covering the second region of the second dielectric layer, and wherein the second ground pattern is formed over the first and second regions of the second dielectric layer.
18. The patch antenna as claimed in claim 17, wherein the signal line is formed over the first and second regions of the second dielectric layer.
19. The patch antenna as claimed in claim 17, wherein a side surface of the second dielectric layer positioned between the first and second regions is exposed.
20. The patch antenna as claimed in claim 17, wherein the one end of the signal line is located at the first region, and wherein the other end of the signal line is located at the second region.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above and other objects, features and advantages of this invention will become more apparent by reference to the following detailed description of the invention taken in conjunction with the accompanying drawings, wherein:
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(20) Preferred embodiments of the present invention will be explained below in detail with reference to the accompanying drawings.
First Embodiment
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(22) The patch antenna 10A according to the present embodiment is an antenna device that performs wireless communication using a millimeter wave band. As illustrated in
(23) As the material of the first and second dielectric layers D1 and D2, a resin material, a ceramic material such as LTCC, a liquid crystal polymer, etc. can be used. Although the specific material thereof is not particularly limited, it is at least necessary that the dielectric constant of the first dielectric layer D1 be lower than the dielectric constant of the second dielectric layer D2. For example, it is possible to use a resin material with a low dielectric constant for the first dielectric layer D1 and to use a liquid crystal polymer with a higher dielectric constant and excellent in high frequency characteristics for the second dielectric layer D2.
(24) A signal line 30 extending along the xy plane is provided inside the second dielectric layer D2. The signal line 30 is provided for feeding an antenna signal to the patch conductor 20. As the signal line 30, a microstripline, a stripline, a coplanar waveguide line, etc., can be used. As illustrated in
(25) The feed conductor 41 penetrates through the opening G1a formed in the first ground pattern G1 and is connected to the feed point positioned within a predetermined surface of the patch conductor 20. The feed conductor 42 penetrates through the opening G2a formed in the second ground pattern G2 and is connected to the RF circuit 100. The RF circuit 100 is an external circuit that outputs an antenna signal. When the signal line 30 is a microstripline, the second ground pattern G2 serves as a reference plane with respect to the signal line 30. When the signal line 30 is a stripline, the first and second ground patterns G1 and G2 serve as reference planes with respect to the signal line 30.
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(27) The maximum gain of the antenna illustrated in FIG. 4A is a value obtained when the planar size of the patch conductor 20 is adjusted so as to set the center frequency to 30 GHz under the conditions that the thickness of the patch conductor 20 is 0.018 mm, the thickness of the first dielectric layer D1 is 0.5 mm, and the planar size of the first ground pattern G1 is 10 mm×10 mm. As illustrated in
(28) The line width illustrated in
(29) In the patch antenna 10A according to the present embodiment, the first and second dielectric layers D1 and D2 are made of mutually different materials, so that the dielectric constant of the first dielectric layer D1 and the dielectric constant of the second dielectric layer D2 can be set as desired independently of each other. Thus, when a low dielectric constant material is selected as the material of the first dielectric layer D1, and a high dielectric constant material is selected as the material of the second dielectric layer D2, it is possible to reduce the line width of the signal line 30 while ensuring high antenna characteristics.
(30) In the present invention, the positions of the first and second ground patterns G1, G2 and patch conductor 20 in the z-direction are not limited to those illustrated in
Second Embodiment
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(32) As illustrated in
(33) The parasitic patch conductor 21 is a rectangular conductor pattern provided above the patch conductor 20 so as to overlap the patch conductor 20. The parasitic patch conductor 21 is not connected to any conductor pattern and is in a DC floating state. When the parasitic patch conductor 21 is added to the first dielectric layer D1, antenna bandwidth can be further extended. In the example illustrated in
Third Embodiment
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(35) As illustrated in
(36) The feed conductors 41 and 43 are connected to mutually different plane positions of the patch conductor 20. In the example of
Fourth Embodiment
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(38) As illustrated in
Fifth Embodiment
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(40) As illustrated in
(41) In the present embodiment, the second dielectric layer D2 has a first region D21 having a large thickness and a second region D22 having a thickness smaller than that of the first region D21. The first dielectric layer D1 is selectively provided on the first region D21 of the second dielectric layer D2. That is, the first dielectric layer D1 is not provided on the second region D22 of the second dielectric layer D2. The signal lines 30 and 31 are formed over the first and second regions D21 and D22 and are exposed in the second region D22. The feed conductors 43 and 44 are disposed in the second region D22.
(42) Thus, in the present embodiment, the first dielectric layer D1 is not provided on the second region D22 of the second dielectric layer D2, and the thickness of the second region D22 is small, allowing the second dielectric layer D2 to have flexibility. Thus, when the patch antenna 10E is mounted in a target device, the second region D22 can be bent following the shape of the device. In the present embodiment, the feed conductors 43 and 44 as terminal electrodes are disposed in the second region D22, so that even when a surface (e.g., xy plane) on which the patch conductor 20 is disposed and the connection surface (e.g., xz plane) of the terminal electrode are not flush with each other, the patch antenna 10E can be easily mounted by bending the flexible second region D22.
(43) It is apparent that the present invention is not limited to the above embodiments, but may be modified and changed without departing from the scope and spirit of the invention.