This application claims the benefit of Japanese Patent Application No. 2021-057567, filed on Mar. 30, 2021, the entire disclosure of which is incorporated by reference herein.
The present disclosure relates to an antenna module.
International Publication WO 2019/146183 discloses an antenna component having a dummy antenna element which is disposed adjacent to an outermost antenna element of a plurality of antenna elements and thereby achieving improved radiation characteristics.
However, adding the dummy antenna element to improve radiation characteristics disadvantageously increases the number of components and production cost.
It is therefore an object of the present disclosure to improve radiation characteristics of an antenna component without adding a dummy antenna element.
An antenna module according to one embodiment of the present disclosure includes: an antenna component including a plurality of antenna elements and a ground conductor surrounding each of the plurality of antenna elements; and a metal member disposed adjacent to the ground conductors surrounding the outermost ones of the plurality of antenna elements.
The above features and advantages of the present disclosure will be more apparent from the following description of certain preferred embodiments taken in conjunction with the accompanying drawings, in which:
Preferred embodiments of the present disclosure will be explained below in detail with reference to the accompanying drawings.
As illustrated in
As illustrated in
As illustrated in
As illustrated in
The antenna layer 81 has the dielectric layer 11 and the plurality of antenna elements 14 embedded in the dielectric layer 11. The antenna layer 81 further has the plurality of ground pillars 15 and the ring pattern 13 surrounding the antenna elements 14 in a plan view as viewed in the stacking direction (z-direction). The ground pillars 15 are each a pillar-shaped conductor extending in the z-direction so as to penetrate the dielectric layer 11. The filter layer 82 includes the dielectric layer 12 and a conductor pattern or a chip component embedded in the dielectric layer 12. A dielectric material constituting the dielectric layer 12 has a dielectric constant higher than a dielectric material constituting the dielectric layer 11. The material constituting the dielectric layers 11 and 12 may be LTCC. The filter layer 82 serves as a mounting surface with respect to the circuit board 2. Signal terminals 31V and 31H and a plurality of ground terminals 32 are provided on the mounting surface. The signal terminal 31V is a terminal for inputting/outputting vertically polarized antenna signals, and the signal terminal 31H is a terminal for inputting/outputting horizontally polarized antenna signals.
A ground pattern G1 is provided between the filter layer 82 and the wiring layer 83, and a ground pattern G2 is provided between the wiring layer 83 and the antenna layer 81. The ground pattern G2 is embedded in the dielectric layer 11. The ground pattern G1 is provided at the interface between the dielectric layers 11 and 12. The ground patterns G1 and G2 are connected to the ground pillars 15 penetrating the dielectric layer 11.
The filter layer 82 has filter circuits 19V and 19H. The filter circuits 19V and 19H are band-pass filters and connected respectively to the signal terminals 31V and 31H. The filter circuits 19V and 19H are surrounded by the plurality of ground pillars 18 in a plan view as viewed in the stacking direction. The ground pillars 18 are each a pillar-shaped conductor extending in the z-direction so as to penetrate the dielectric layer 12 and are connected to the ground pattern G1.
The wiring layer 83 has feeding patterns 16V and 16H. One ends of the feeding patterns 16V and 16H are connected respectively to the filter circuits 19V and 19H, and the other ends thereof are connected to different planar positions of the antenna element 14 respectively through the feeding pillars 17V and 17H. The feeding patterns 16V and 16H are surrounded by the plurality of ground pillars 15 in a plan view as viewed in the stacking direction.
With the above configuration, the antenna element 14 functions as a patch conductor of a dielectric antenna. Since each antenna element 14 is surrounded by the plurality of ground pillars 15, mutual interference between the antenna elements 14 is suppressed.
As illustrated in
The height positions of the upper surface of the antenna unit 10 and an upper surface 21 of the metal member 20 almost coincide with each other. The upper surface of the antenna unit 10, which is defined by the position of the leading end of the ground pillar 15 in the z-direction, is a second surface of the ground pillar 15 that is positioned on the side opposite to the mounting surface with respect to the circuit board 2 on which the antenna component 3 is mounted and is located at a height position H1. The upper surface 21 of the metal member 20 is a first surface positioned on the side opposite to the mounting surface with respect to the circuit board 2 on which the metal member 20 is mounted. When the ring pattern 13 connecting the leading ends of the plurality of ground pillars 15 is present, the surface of the ring pattern 13 constitutes the upper surface of the antenna unit 10. The upper surface of the antenna element 14 may be located at the height position H1 or at a position slightly lower than the height position H1 as illustrated in
In the present embodiment, the metal member 20 is provided so as to surround the antenna component 3 including the plurality of antenna units 10, and the height position H2 of the upper surface 21 of the metal member 20 almost coincides with the height position H1 of the antenna unit 10, thereby improving radiation characteristics of the outermost antenna elements 14. That is, when the thus configured metal member 20 is absent, the outermost antenna elements 14 each have a part not adjacent to the other antenna element 14 while the antenna elements 14 positioned around the center portion are each completely surrounded by the other antenna elements 14, so that radiation characteristics differ between the outermost antenna elements 14 and the antenna elements 14 around the center portion. However, in the present embodiment, the antenna component 3 including the plurality of antenna units 10 is surrounded by the metal member 20, so that the metal member 20 functions in the same manner as a dummy antenna element, with the result that a difference in characteristics between the plurality of antenna elements 14 is reduced.
Although the height positions H1 and H2 need not completely coincide with each other, the difference therebetween is preferably λ/20 or less, where λ is the wavelength of an electromagnetic wave radiated from the antenna element 14. This is because when the difference between the height positions H1 and H2 exceeds λ/20, a difference in conditions between the outermost antenna elements 14 and the antenna elements 14 around the center portion becomes large to cause a significant difference in radiation characteristics therebetween. Further, although the magnitude relation between the height positions H1 and H2 is not particularly limited, it is preferable that the height position H1 is equal to or higher than the height position H2. In other words, the height position H2 of the upper surface 21 of the metal member 20 is preferably lower than the height position H1. That is, when H1<H2 is satisfied, a radiation pattern from the xz plane (E plane) tends to tilt, so that the H1 is desirably made equal to or slightly larger than H2 in consideration of manufacturing tolerances.
A width W (see
The gap S2 between the metal member 20 and the antenna units 10 is preferably equal to or wider than the gap S1 between the adjacent antenna units 10 and equal to or narrower than λ/2. This is because when the gap S2 is excessively narrow or excessively wide, radiation characteristics of the outermost antenna elements 14 differ from those of the other antenna elements 14.
When the hollow 22 is provided inside the metal member 20, an electronic component 40 such as a semiconductor chip may be accommodated in the hollow 22, as illustrated in the schematic cross-sectional view of
As described above, the antenna module 1 according to the present embodiment has the metal member 20 surrounding the plurality of antenna elements 14, thus making it possible to improve radiation characteristics of the outermost antenna elements 14 without adding any dummy antenna element. In particular, in the present embodiment, the filter layer 82 and the like are incorporated in the antenna unit 10, so that the thickness of the antenna unit 10 is large, and thus the height position of the antenna elements 14 with respect to the circuit board 2 is high. In such a case, radiation characteristics of the outermost antenna elements 14 significantly change unless the metal member 20 is added; however, according to the present embodiment, providing the metal member 20 can prevent a change in radiation characteristics. In addition, the metal member 20 is constituted of a single part, thus allowing a reduction in the number of components.
The antenna module 1a illustrated in
As illustrated in
As exemplified by the antenna module 1a illustrated in
The antenna module 1b illustrated in
As illustrated in
Further, the number of antenna elements 14 arranged in the x-direction and the number of antenna elements 14 arranged in the y-direction need not necessarily be the same, and the antenna elements 14 may be arranged in a 2×8 array.
While the preferred embodiment of the present disclosure has been described, the present disclosure is not limited to the above embodiment, and various modifications may be made within the scope of the present disclosure, and all such modifications are included in the present disclosure.
The technology according to the present disclosure includes the following configuration examples, but not limited thereto.
An antenna module according to one embodiment of the present disclosure includes: an antenna component including a plurality of antenna elements and a ground conductor surrounding each of the plurality of antenna elements; and a metal member disposed adjacent to the ground conductors surrounding the outermost ones of the plurality of antenna elements.
According to the present disclosure, it is possible to improve radiation characteristics of an antenna component without adding a dummy antenna element.
The antenna component may have a configuration in which the plurality of antenna elements are arranged in an array, and the metal member may be disposed along at least one side of the antenna component. This improves radiation characteristics of the plurality of antenna elements disposed along the metal member.
The metal member may be disposed along each of the sides of the antenna component. This improves radiation characteristics of all the outermost antenna elements. In this case, the metal member may be constituted of a plurality of parts that are disposed respectively along each of the sides of the antenna component, or may be constituted of a single part that surrounds the antenna component. The former increases the degree of design freedom, and the latter reduces the number of components.
The width of the metal member may be ½ or more of the wavelength of an electromagnetic wave radiated from the antenna elements. This sufficiently improves radiation characteristics of the antenna element adjacent to the metal member.
The difference in height position between a first surface of the metal member on the side opposite to a mounting surface thereof and a second surface of the ground conductor on the side opposite to a mounting surface of the antenna component may be 1/20 or less of the wavelength of an electromagnetic wave radiated from the antenna elements. This sufficiently improves radiation characteristics of the antenna element adjacent to the metal member. In this case, the height position of the first surface of the metal member may be equal to or lower than the height position of the second surface of the ground conductor. This prevents a radiation pattern of the E plane from tilting.
The antenna component may be constituted of a plurality of antenna units each including a plurality of antenna elements. This makes it possible to prevent a connection failure and the like attributable to a difference in thermal expansion coefficient and to reduce the number of components. In this case, a gap between the metal member and the antenna component may be equal to or wider than a gap between the plurality of antenna units and equal to or narrower than ½ of the wavelength of an electromagnetic wave radiated from the antenna elements. This sufficiently improves radiation characteristics of the antenna element adjacent to the metal member.
The metal member may have a hollow inside thereof. An electronic component such as a semiconductor chip can be accommodated in the hollow.
The antenna component may be a dielectric antenna. This allows a reduction in the entire size.
A circuit board 2 having a planar size of 120 mm×120 mm was prepared, and four antenna units 10 were arranged in an array around the center portion of the circuit board 2. The configuration of each of the antenna units 10 is as illustrated in
Then, only the antenna element 14 at the position denoted by A in
As illustrated in
Using the configuration of Example 1, a change in radiation pattern when the thickness of the metal member 20, that is, the height position H2 of the upper surface was changed was measured. Measurement results are illustrated in
As illustrated in
Using the configuration of Example 1, a change in a radiation pattern when the width W of the metal member 20 was changed was measured. Measurement results are illustrated in
As illustrated in
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2021-057567 | Mar 2021 | JP | national |
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Number | Date | Country | |
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20220320752 A1 | Oct 2022 | US |