Antenna device
By arranging antenna elements to intersect the longitudinal direction of the antenna base, the size and interference issues in MIMO devices are addressed, achieving compact design with improved performance and reduced costs.
Patent Information
- Application Number
- JP2022011482
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-01-28
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2042-01-28
AI Technical Summary
Antenna devices using MIMO technology face an increase in size due to the arrangement of multiple antenna elements along the longitudinal direction of the antenna base.
The antenna elements are disposed along directions intersecting the longitudinal direction of the antenna base, with specific configurations to minimize interference and optimize space utilization.
This configuration reduces the overall size of the antenna device while maintaining or improving isolation and gain performance, and reduces the need for additional elements, thereby lowering costs and enhancing directivity.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to an antenna device. [Background technology]
[0002] Requirements for the fifth generation mobile communication system (5G) include higher communication speeds, higher capacity, and higher reliability. To meet these requirements, the use of MIMO (Multiple-Input and Multiple-Output) has been considered in recent years, as described in Patent Document 1, for example. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] US Patent Application Publication No. 2015 / 0071137 Summary of the Invention [Problem to be solved by the invention]
[0004] In an antenna device using MIMO, multiple antenna elements are mounted on an antenna base. For example, if the antenna elements of a cellular antenna, such as that described in Patent Document 1, are arranged along the longitudinal direction of the antenna base, this leads to an increase in the size of the antenna device in the longitudinal direction of the antenna base.
[0005] One object of the present invention is to reduce the size of an antenna device. Other objects of the present invention will become apparent from the description herein. [Means for solving the problem]
[0006] One aspect of the present invention is The antenna base and an antenna case that forms a housing space together with the antenna base; a first antenna element accommodated in the accommodation space; Equipped with The antenna device is configured such that the first antenna element is disposed along a direction intersecting the longitudinal direction of the antenna base. [Effects of the Invention]
[0007] According to the above aspect of the present invention, the size of the antenna device can be reduced. [Brief explanation of the drawings]
[0008] [Figure 1] 1 is a perspective view of an antenna device according to a first embodiment. [Figure 2] 10 is a graph showing the isolation value between the second antenna element and the third antenna element in the antenna device according to the example and the isolation value between the second antenna element and the third antenna element in the antenna device according to the comparative example 1. [Figure 3] 10 is a graph showing the directional gain versus azimuth angle of an antenna device according to an example, the directional gain versus azimuth angle of an antenna device according to comparative example 2, and the directivity versus azimuth angle of an antenna device according to comparative example 3. [Figure 4] FIG. 10 is a perspective view of an antenna device according to a second embodiment. [Figure 5] FIG. 11 is a perspective view of an antenna device according to a third embodiment. [Figure 6] FIG. 10 is a perspective view of an antenna device according to a fourth embodiment. [Figure 7] FIG. 10 is a perspective view of an antenna device according to a modified example. DETAILED DESCRIPTION OF THE INVENTION
[0009] Hereinafter, embodiments and modifications of the present invention will be described with reference to the drawings. In all the drawings, similar components are designated by similar reference numerals, and descriptions thereof will be omitted as appropriate.
[0010] In this specification, ordinal numbers such as "first," "second," and "third" are used merely to distinguish between similarly named configurations, unless otherwise specified, and do not imply any particular characteristics (e.g., order or importance) of the configurations.
[0011] Fig. 1 is a perspective view of an antenna device 10A according to embodiment 1. For the sake of explanation, the left half of an antenna case 200A (described later) has been removed in Fig. 1.
[0012] In FIG. 1, an arrow indicating the first direction X, the second direction Y, or the third direction Z indicates that the direction from the base end of the arrow to the tip end is the positive direction of the direction indicated by the arrow, and that the direction from the tip end of the arrow to the base end is the negative direction of the direction indicated by the arrow.
[0013] In FIG. 1, the first direction X is a direction parallel to the front-to-rear direction of the antenna device 10A. Specifically, the positive direction of the first direction X is a direction from the rear to the front of the antenna device 10A. The negative direction of the first direction X is a direction from the front to the rear of the antenna device 10A. The second direction Y is orthogonal to the first direction X. The second direction Y is a direction parallel to the left-to-right direction of the antenna device 10A. Specifically, the positive direction of the second direction Y is a direction from the right to the left of the antenna device 10A. The negative direction of the second direction Y is a direction from the left to the right of the antenna device 10A. The third direction Z is orthogonal to both the first direction X and the second direction Y. The third direction Z is a direction parallel to the up-down direction of the antenna device 10A. Specifically, the positive direction of the third direction Z is a direction from the bottom to the top of the antenna device 10A. The negative direction of the third direction Z is a direction from the top to the bottom of the antenna device 10A.
[0014] The antenna device 10A according to the first embodiment includes an antenna base 100A, an antenna case 200A, a substrate 300A, a first antenna element 410A, a second antenna element 420A, a third antenna element 430A, an antenna holder 432A, a pair of first capacitance loading elements 510A, a pair of second capacitance loading elements 520A, a coil element 540A, and a patch antenna 600A. The antenna device 10A is mounted on, for example, a vehicle. However, the object on which the antenna device 10A is mounted is not limited to a vehicle.
[0015] The antenna base 100A is made of, for example, at least one of metal and resin. The length of the antenna base 100A in the first direction X is longer than the width of the antenna base 100A in the second direction Y. As a result, the longitudinal direction of the antenna base 100A is approximately parallel to the first direction X. Furthermore, the lateral direction of the antenna base 100A is approximately parallel to the second direction Y.
[0016] The antenna case 200A covers the antenna base 100A from above. The antenna case 200A and the antenna base 100A form a storage space. This storage space accommodates the substrate 300A, the first antenna element 410A, the second antenna element 420A, the third antenna element 430A, the antenna holder 432A, the first capacitance loading element 510A, the second capacitance loading element 520A, the coil element 540A, and the patch antenna 600A.
[0017] The substrate 300A is, for example, a printed circuit board (PCB). The substrate 300A is disposed on the upper surface side of the antenna base 100A. Specifically, in the first embodiment, the substrate 300A is fixed to the upper surface of the antenna base 100A with screws.
[0018] The first antenna element 410A is an antenna that transmits and / or receives radio waves. The first antenna element 410A is, for example, a telephone (TEL) antenna. However, the first antenna element 410A may also be at least one of a Wi-Fi (registered trademark) antenna, a Bluetooth (registered trademark) antenna, a V2X (Vehicle-to-everything) antenna, and a keyless entry antenna.
[0019] The first antenna element 410A is disposed on the upper surface side of the substrate 300A. In the first embodiment, the first antenna element 410A is made of sheet metal. The first antenna element 410A has a first base end 412A. The first base end 412A is provided at the lower end of the first antenna element 410A. The first base end 412A is connected to the substrate 300A. The first base end 412A includes a feed point of the first antenna element 410A. The first antenna element 410A may be formed of a conductor pattern provided on a substrate such as a PCB.
[0020] The first antenna element 410A is disposed along a direction intersecting the longitudinal direction of the antenna base 100A when viewed from the third direction Z. Specifically, the first antenna element 410A is disposed approximately parallel to the second direction Y when viewed from the third direction Z.
[0021] The first antenna element 410A has a portion that operates as a self-similar antenna or an antenna equivalent thereto when viewed from the first direction X. Therefore, the first antenna element 410A is operable over a wide band and is suitable for a TEL antenna. A "self-similar antenna" is an antenna whose shape remains similar even when the scale (size ratio) is changed, such as a bowtie antenna or a biconical antenna. Specifically, when viewed from the first direction X, the width of the first antenna element 410A in the second direction Y increases from the first base end 412A toward the upper end of the first antenna element 410A. Therefore, when viewed from the first direction X, the width of the first antenna element 410A in the second direction Y on the distal side of the first base end 412A is wider than the width of the first antenna element 410A in the second direction Y on the proximal side of the first base end 412A. In the first embodiment, the first antenna element 410A is disposed above a base plate such as a roof of a vehicle in which the antenna device 10A is mounted.
[0022] In the first embodiment, the length of the first antenna element 410A in the first direction X can be made shorter than when the first antenna element 410A is arranged along the longitudinal direction of the antenna base 100A as viewed from the third direction Z. Therefore, the size of the antenna device 10A in the longitudinal direction of the antenna base 100A can be reduced compared to the above-described case.
[0023] The second antenna element 420A is an antenna that transmits and / or receives radio waves. The second antenna element 420A is, for example, a TEL antenna. However, the second antenna element 420A may be at least one of a Wi-Fi (registered trademark) antenna, a Bluetooth (registered trademark) antenna, a V2X antenna, and a keyless entry antenna. In the first embodiment, when the first antenna element 410A, the second antenna element 420A, and the third antenna element 430A are TEL antennas, MIMO can be realized by using the second antenna element 420A together with at least one of the first antenna element 410A and the third antenna element 430A.
[0024] The second antenna element 420A is disposed on the positive side of the first antenna element 410A in the first direction X. The second antenna element 420A is disposed on the upper surface side of the substrate 300A. In the first embodiment, the second antenna element 420A is made of sheet metal. The second antenna element 420A has a second base end 422A. The second base end 422A is provided at the lower end of the second antenna element 420A. The second base end 422A is connected to the substrate 300A. The second base end 422A includes a feed point of the second antenna element 420A. The second antenna element 420A may be formed of a conductor pattern provided on a substrate such as a PCB.
[0025] The second antenna element 420A is arranged along the longitudinal direction of the antenna base 100A. Specifically, in the first embodiment, the second antenna element 420A is arranged substantially parallel to the first direction X when viewed from the third direction Z. Therefore, the first antenna element 410A and the second antenna element 420A are arranged along directions different from each other when viewed from the third direction Z.
[0026] The second antenna element 420A has a portion that operates as a self-similar antenna or an antenna equivalent thereto when viewed from the second direction Y. Therefore, the second antenna element 420A is capable of operating in a wide band.
[0027] In the first embodiment, the length in the first direction X of the space required between the first antenna element 410A and the second antenna element 420A can be shortened compared to when both the first antenna element 410A and the second antenna element 420A are arranged along the longitudinal direction of the antenna base 100A as viewed from the third direction Z. Therefore, compared to the above-described case, even when the length in the first direction X of the antenna device 10A is shortened, deterioration of isolation between the first antenna element 410A and the second antenna element 420A can be reduced. Therefore, compared to the above-described case, even when the length in the first direction X of the antenna device 10A is shortened, the first antenna element 410A and the second antenna element 420A can obtain desired gains.
[0028] In the first embodiment, the direction of the traveling wave of the first antenna element 410A and the direction of the traveling wave of the second antenna element 420A are shifted by 90 degrees compared to when both the first antenna element 410A and the second antenna element 420A are arranged along the longitudinal direction of the antenna base 100A when viewed from the third direction Z. Therefore, compared to the above-mentioned case, it is possible to reduce the deterioration of isolation in the high frequency band between the first antenna element 410A and the second antenna element 420A.
[0029] In the first embodiment, the height of the first antenna element 410A in the third direction Z is lower than the height of the second antenna element 420A in the third direction Z. Therefore, the second antenna element 420A can operate in a lower frequency band than the first antenna element 410A. Furthermore, compared to when the height of the first antenna element 410A in the third direction Z is equal to the height of the second antenna element 420A in the third direction Z, it is possible to reduce interference in the low frequency band between the first antenna element 410A and the second antenna element 420A, and it is possible to reduce degradation of isolation between the first antenna element 410A and the second antenna element 420A.
[0030] The third antenna element 430A is an antenna that transmits and / or receives radio waves. In the first embodiment, the third antenna element 430A is, for example, a V2X antenna. However, the third antenna element 430A may be at least one of a TEL antenna, a Wi-Fi (registered trademark) antenna, a Bluetooth (registered trademark) antenna, and a keyless entry antenna. In the first embodiment, when the first antenna element 410A, the second antenna element 420A, and the third antenna element 430A are TEL antennas, MIMO can be realized by using the third antenna element 430A together with at least one of the first antenna element 410A and the second antenna element 420A.
[0031] The third antenna element 430A is disposed on the upper surface side of the substrate 300A. Specifically, the third antenna element 430A is held by an antenna holder 432A in a direction substantially parallel to the third direction Z with respect to the substrate 300A. The third antenna element 430A is, for example, a collinear array antenna.
[0032] The third antenna element 430A is disposed on the negative side of the first antenna element 410A in the first direction X when viewed from the third direction Z. Also, the third antenna element 430A is disposed on the negative side of the second capacitive loading element 520A and the coil element 540A in the first direction X when viewed from the third direction Z.
[0033] In the first embodiment, as described above, the first antenna element 410A is disposed along a direction intersecting the longitudinal direction of the antenna base 100A when viewed from the third direction Z. Therefore, the first antenna element 410A can function as a reflector that reflects radio waves emitted from the third antenna element 430A. For example, when the third antenna element 430A is a V2X antenna, the third antenna element 430A may be required to have relatively strong directivity in all directions perpendicular to the third direction Z. In this case, in the first embodiment, the directivity behind the third antenna element 430A can be strengthened compared to when the first antenna element 410A is not provided or when the first antenna element 410A is disposed along the longitudinal direction of the antenna base 100A when viewed from the third direction Z.
[0034] Furthermore, in the first embodiment, there is no need to provide a parasitic element near the pair of second capacitive loading elements 520A to strengthen the rearward directivity of the third antenna element 430A. Therefore, compared to when the parasitic element is provided, the cost of the antenna device 10A can be reduced by the amount of the parasitic element. Furthermore, compared to when the parasitic element is provided, the size of the antenna device 10A in the first direction X can be reduced. Furthermore, compared to when the parasitic element is provided, the influence of the parasitic element on the characteristics of the pair of second capacitive loading elements 520A can be suppressed. Therefore, compared to when the parasitic element is provided, the gain of the antenna having the pair of second capacitive loading elements 520A can be improved.
[0035] In the first embodiment, the direction of the traveling wave of the first antenna element 410A and the direction of the traveling wave of the second antenna element 420A are shifted by 90 degrees compared to when both the first antenna element 410A and the second antenna element 420A are arranged along the longitudinal direction of the antenna base 100A when viewed from the third direction Z. Therefore, compared to the above-mentioned case, it is possible to reduce the deterioration of isolation in the high frequency band between the first antenna element 410A and the second antenna element 420A.
[0036] In the first embodiment, the height in the third direction Z of the first antenna element 410A is lower than the height in the third direction Z of the third antenna element 430A. Therefore, compared to when the height in the third direction Z of the first antenna element 410A is equal to the height in the third direction Z of the third antenna element 430A, it is possible to reduce interference between the first antenna element 410A and the third antenna element 430A, and it is possible to reduce deterioration of isolation between the first antenna element 410A and the third antenna element 430A. Therefore, it is possible to improve the gain of each of the first antenna element 410A and the third antenna element 430A, compared to the above-described case.
[0037] In the first embodiment, compared to when the first antenna element 410A is arranged along the longitudinal direction of the antenna base 100A as viewed from the third direction Z, a wall called the first antenna element 410A exists between the second antenna element 420A and the third antenna element 430A. Therefore, compared to the above-mentioned case, it is possible to reduce the deterioration of isolation between the second antenna element 420A and the third antenna element 430A.
[0038] The pair of first capacitance loading elements 510A are electrically connected to the substrate 300A via coil elements (not shown). The pair of first capacitance loading elements 510A and the coil elements form an antenna for receiving radio waves. The pair of first capacitance loading elements 510A and the coil elements are, for example, radio antennas. However, the pair of first capacitance loading elements 510A and the coil elements may also be at least one of a DAB (Digital Audio Broadcast) antenna and a DTTB (Digital Terrestrial Television Broadcasting) antenna.
[0039] The pair of first capacitance loading elements 510A are aligned in the second direction Y. Specifically, the pair of first capacitance loading elements 510A are arranged on both the positive and negative sides of the upper end of the second antenna element 420A in the second direction Y. The upper rear portion of each first capacitance loading element 510A is held by a holder and screwed above the substrate 300A via connecting fittings, and is electrically connected to the substrate 300A.
[0040] Each first capacitance loading element 510A has a meander-shaped element section when viewed from the second direction Y. Specifically, the meander-shaped element section of each first capacitance loading element 510A is folded back in the first direction X by a notch extending in the first direction X. The length in the first direction X of the meander-shaped element section of each first capacitance loading element 510A increases from the upper end to the lower end of the first capacitance loading element 510A along the upper inner surface of the antenna case 200A. This gives each first capacitance loading element 510A an approximately triangular overall shape when viewed from the second direction Y. The characteristics of each first capacitance loading element 510A can be adjusted depending on parameters such as the length in the first direction X of the folded back portion of the meander-shaped element section of each first capacitance loading element 510A, the width in the third direction Z of the folded back portion, and the pitch in the third direction Z of the folded back portion. However, the shape of each first capacitance loading element 510A is not limited to this example.
[0041] The pair of second capacitance loading elements 520A are electrically connected to the substrate 300A via the coil element 540A. The pair of second capacitance loading elements 520A and the coil element 540A form an antenna for receiving radio waves. The pair of second capacitance loading elements 520A and the coil element 540A is, for example, a DAB antenna. However, the pair of second capacitance loading elements 520A and the coil element 540A may also be at least one of a radio antenna and a DTTB antenna.
[0042] The pair of second capacitance loading elements 520A are aligned in the second direction Y. The pair of second capacitance loading elements 520A are disposed behind the pair of first capacitance loading elements 510A. The center of the upper end of each second capacitance loading element 520A in the first direction X is held by a holder and screwed above the substrate 300A via connecting fittings, and is electrically connected to the substrate 300A. The front end of each second capacitance loading element 520A is spaced apart from the rear end of each first capacitance loading element 510A. By spacing the pair of first capacitance loading elements 510A and the pair of second capacitance loading elements 520A apart from each other in the first direction X, the pair of first capacitance loading elements 510A and the pair of second capacitance loading elements 520A can be operated as elements having different characteristics from each other. Furthermore, by separating the pair of first capacitance loading elements 510A and the pair of second capacitance loading elements 520A from each other in the first direction X, a space can be provided between the pair of first capacitance loading elements 510A and the pair of second capacitance loading elements 520A when viewed from the third direction Z to arrange the first antenna element 410A.
[0043] Each second capacitance loading element 520A has a meander-shaped element section when viewed from the second direction Y. Specifically, the meander-shaped element section of each second capacitance loading element 520A is folded back in the third direction Z by a notch extending in the third direction Z. The overall shape of each second capacitance loading element 520A is substantially rectangular when viewed from the second direction Y. The characteristics of each second capacitance loading element 520A can be adjusted depending on parameters such as the length in the third direction Z of the folded back portion of the meander-shaped element section of each second capacitance loading element 520A, the width in the first direction X of the folded back portion, and the pitch in the first direction X of the folded back portion. However, the shape of each second capacitance loading element 520A is not limited to this example.
[0044] In the first embodiment, as viewed from the third direction Z, the first antenna element 410A is disposed between an area of the antenna base 100A overlapping with the pair of first capacitance loading elements 510A in the third direction Z and an area of the antenna base 100A overlapping with the pair of second capacitance loading elements 520A in the third direction Z. Therefore, in the first embodiment, compared to when the first antenna element 410A is disposed below the pair of first capacitance loading elements 510A, interference between the first antenna element 410A and the pair of first capacitance loading elements 510A can be reduced, and degradation of isolation between the first antenna element 410A and the pair of first capacitance loading elements 510A can be reduced. Therefore, compared to the above-described case, the gain of the antenna having the pair of first capacitance loading elements 510A can be improved. Similarly, in the first embodiment, compared to when the first antenna element 410A is disposed below the pair of second capacitance loading elements 520A, it is possible to reduce interference between the first antenna element 410A and the pair of second capacitance loading elements 520A, and it is possible to reduce deterioration of isolation between the first antenna element 410A and the pair of second capacitance loading elements 520A. Therefore, compared to the above-mentioned case, it is possible to improve the gain of the antenna having the pair of second capacitance loading elements 520A.
[0045] In the first embodiment, the height in the third direction Z of the first antenna element 410A is lower than the height in the third direction Z of the pair of first capacitance loading elements 510A. In the first embodiment, the position in the third direction Z of the upper end of the first antenna element 410A is located on the negative side in the third direction Z of the position in the third direction Z of the lower end of each first capacitance loading element 510A. In the first embodiment, degradation of isolation between the first antenna element 410A and the pair of first capacitance loading elements 510A can be reduced compared to when the height in the third direction Z of the first antenna element 410A is equal to or greater than the height in the third direction Z of the pair of first capacitance loading elements 510A.
[0046] Similarly, the height in the third direction Z of the first antenna element 410A is lower than the height in the third direction Z of the pair of second capacitance loading elements 520A. In the first embodiment, the position in the third direction Z of the upper end of the first antenna element 410A is located on the negative side in the third direction Z of the positions in the third direction Z of the lower end of each second capacitance loading element 520A. In the first embodiment, degradation of isolation between the first antenna element 410A and the pair of second capacitance loading elements 520A can be reduced compared to when the height in the third direction Z of the first antenna element 410A is equal to or greater than the height in the third direction Z of the pair of second capacitance loading elements 520A.
[0047] Furthermore, in the first embodiment, the distance between the first antenna element 410A and the pair of first capacitance loading elements 510A and the distance between the first antenna element 410A and the pair of second capacitance loading elements 520A can be made longer than when the first antenna element 410A is arranged along the longitudinal direction of the antenna base 100A when viewed from the third direction Z. Therefore, in the first embodiment, the isolation between the first antenna element 410A and the pair of first capacitance loading elements 510A and the isolation between the first antenna element 410A and the pair of second capacitance loading elements 520A can be improved compared to the above-mentioned cases.
[0048] The patch antenna 600A is, for example, at least one of a Global Navigation Satellite System (GNSS) antenna and a Satellite Digital Audio Radio Service (SDARS) antenna. When viewed from the third direction Z, the patch antenna 600A has a substantially square shape. However, the shape of the patch antenna 600A is not limited to this. The patch antenna 600A is disposed on the upper surface side of the substrate 300A. When viewed from the third direction Z, the patch antenna 600A is disposed in front of the second antenna element 420A and the pair of second capacitive loading elements 520A.
[0049] Fig. 2 is a graph showing the isolation value between the second antenna element and the third antenna element in the antenna device according to the example and the isolation value between the second antenna element and the third antenna element in the antenna device according to Comparative Example 1. The horizontal axis of the graph shown in Fig. 2 represents frequency (unit: MHz), and the vertical axis of the graph in Fig. 2 represents the isolation value (unit: dB).
[0050] The configuration of the antenna device according to the example was the same as that of the antenna device 10A according to the first embodiment. Specifically, the first antenna element was arranged along a direction perpendicular to the longitudinal direction of the antenna base when viewed from above. The second antenna element was arranged in front of the first antenna element. The third antenna element was arranged behind the first antenna element.
[0051] The configuration of the antenna device according to Comparative Example 1 was the same as that of the antenna device according to the example, except that the first antenna element was arranged in a direction parallel to the longitudinal direction of the antenna base when viewed from above.
[0052] 2, the isolation value of the antenna device according to the example is higher over almost the entire band from 500 MHz to 5000 MHz than the isolation value of the antenna device according to comparative example 1. From this result, it can be said that the isolation value between the second antenna element and the third antenna element can be increased by arranging the first antenna element in a direction intersecting the longitudinal direction of the antenna base, rather than arranging the first antenna element along the longitudinal direction of the antenna base.
[0053] 3 is a graph showing the directional gain versus azimuth angle of the antenna device according to the example, the directional gain versus azimuth angle of the antenna device according to Comparative Example 2, and the directivity versus azimuth angle of the antenna device according to Comparative Example 3. The horizontal axis of the graph shown in FIG. 3 represents the azimuth angle (unit: deg). The vertical axis of the graph shown in FIG. 3 represents the directional gain (unit: dBi). The azimuth angle on the horizontal axis of the graph shown in FIG. 3 is the azimuth angle in the direction perpendicular to the third direction Z. When viewed from the positive direction of the third direction Z, the positive direction of the first direction X is the azimuth angle of 0 deg. Furthermore, when viewed from the positive direction of the third direction Z, the value indicating the azimuth angle increases as the antenna rotates clockwise from the positive direction of the first direction X.
[0054] The antenna device of Comparative Example 2 was the same as the antenna device of the Example, except that the first antenna element was not placed and a screw was placed as a reflector at the position where the first antenna element was placed in the Example.
[0055] The antenna device of Comparative Example 3 was the same as the antenna device of the Example, except that the first antenna element was not placed and a reflector was not placed at the position where the first antenna element was placed in the Example.
[0056] The range of azimuth angles from 120° to 240° in the graph shown in Fig. 3 is behind the antenna device. As shown in Fig. 3, the directional gain behind the antenna device according to the example is higher than the directional gain behind the antenna device according to comparative example 2 and the directional gain behind the antenna device according to comparative example 3. From this result, it can be said that the first antenna base can operate as a reflector that reflects radio waves radiated from the third antenna element.
[0057] 4 is a perspective view of the antenna device 10B according to the embodiment 2. The antenna device 10B according to the embodiment 2 is similar to the antenna device 10A according to the embodiment 1 except for the following points.
[0058] The antenna device 10B according to the second embodiment includes an antenna base 100B, an antenna case 200B, a substrate 300B, a first antenna element 410B, a second antenna element 420B, a third antenna element 430B, an antenna holder 432B, a capacitance loading element 510B, and a patch antenna 600B. The capacitance loading element 510B according to the second embodiment has a first element section 512B, a second element section 514B, and a first protrusion 516B.
[0059] The pair of first capacitance loading elements 510B are aligned in the second direction Y. Specifically, the pair of first capacitance loading elements 510B are arranged on both the positive and negative sides of the upper end of the second antenna element 420B in the second direction Y. The capacitance loading elements 510B are electrically connected to the substrate 300B via a coil element (not shown).
[0060] The first element section 512B is disposed on the positive side in the second direction Y of the upper end of the second antenna element 420B. The first element section 512B has a meandering shape when viewed in the second direction Y. Specifically, the first element section 512B is folded back in the first direction X by a notch extending in the first direction X. An upper rear portion of the first element section 512B is held by a holder and screwed above the board 300B via a connecting fitting, and is electrically connected to the board 300B.
[0061] The second element section 514B has a meandering shape when viewed from the second direction Y. Specifically, the second element section 514B is folded back in the third direction Z by a notch extending in the third direction Z. The front end of the lower end of the second element section 514B is connected to the rear end of the lower end of the first element section 512B. This makes the first element section 512B and the second element section 514B integral.
[0062] The first protrusion 516B protrudes rearward from the rear end of the upper end of the second element section 514B. The first protrusion 516B is integral with the second element section 514B. In the second embodiment, the area of the capacitance loading element 510B when viewed from the second direction Y can be increased compared to when the first protrusion 516B is not provided. Therefore, in the second embodiment, the gain of the antenna including the capacitance loading element 510B can be increased compared to the above-described case. Furthermore, in the second embodiment, the stray capacitance between the capacitance loading element 510B and the third antenna element 430B can be reduced compared to when the rear end of the second element section 514B protrudes rearward from the entire upper end to the lower end of the second element section 514B instead of the first protrusion 516B. Therefore, in the second embodiment, the gain of the antenna including the capacitance loading element 510B can be increased compared to the above-described case.
[0063] The first antenna element 410B, the second antenna element 420B, and the third antenna element 430B according to the second embodiment have the same structure and arrangement as the first antenna element 410A, the second antenna element 420A, and the third antenna element 430A according to the first embodiment, except that the distance in the first direction X between the first antenna element 410B and the third antenna element 430B according to the second embodiment is shorter than the distance in the first direction X between the first antenna element 410A and the third antenna element 430A according to the first embodiment.
[0064] In the second embodiment, the size of the antenna device 10B in the first direction X can be reduced compared to when the first antenna element 410B is arranged along the longitudinal direction of the antenna base 100B when viewed from the third direction Z.
[0065] In the second embodiment, the length in the first direction X of the space required between the first antenna element 410B and the second antenna element 420B can be shortened compared to when the first antenna element 410B and the second antenna element 420B are arranged along the longitudinal direction of the antenna base 100B when viewed from the third direction Z. Therefore, compared to the above-described case, even when the length in the first direction X of the antenna device 10B is shortened, deterioration of the isolation between the first antenna element 410B and the second antenna element 420B can be reduced.
[0066] In the second embodiment, the length in the first direction X of the space required between the first antenna element 410B and the third antenna element 430B can be shortened compared to when the first antenna element 410B is arranged along the longitudinal direction of the antenna base 100B as viewed from the third direction Z. Therefore, compared to the above-described case, even when the length in the first direction X of the antenna device 10B is shortened, deterioration of the isolation between the first antenna element 410B and the third antenna element 430B can be reduced.
[0067] In the second embodiment, it is possible to reduce degradation of isolation between the first antenna element 410B and the second antenna element 420B compared to when the height in the third direction Z of the first antenna element 410B is equal to the height in the third direction Z of the second antenna element 420B. Similarly, it is possible to ensure isolation between the first antenna element 410B and the third antenna element 430B compared to when the height in the third direction Z of the first antenna element 410B is equal to the height in the third direction Z of the third antenna element 430B.
[0068] In the second embodiment, the first antenna element 410B can function as a reflector of the radio waves emitted from the third antenna element 430B, compared to when the first antenna element 410B is not provided or when the first antenna element 410B is arranged along the longitudinal direction of the antenna base 100B when viewed from the third direction Z. Therefore, compared to the above-mentioned cases, the directivity behind the third antenna element 430B can be improved.
[0069] 5 is a perspective view of an antenna device 10C according to embodiment 3. The antenna device 10C according to embodiment 3 is similar to the antenna device 10A according to embodiment 1 except for the following points.
[0070] The antenna device 10C includes an antenna base 100C, an antenna case 200C, a substrate 300C, a first antenna element 410C, a second antenna element 420C, a capacitance loading element 510C, a first patch antenna 610C, a second patch antenna 620C, and a front parasitic element 630C. The capacitance loading element 510C according to the third embodiment has a first element section 512C and a second element section 514C.
[0071] The pair of capacitance loading elements 510C are aligned in the second direction Y. Specifically, the pair of capacitance loading elements 510C are arranged on both the positive and negative sides of the upper end of the second antenna element 420C in the second direction Y. The capacitance loading elements 510C are electrically connected to the substrate 300C via a coil element (not shown).
[0072] The first element section 512C is disposed on the positive side in the second direction Y of the upper end of the second antenna element 420C. The first element section 512C is plate-shaped when viewed in the second direction Y. A second protrusion 512aC is provided at the rear end of the upper end of the first element section 512C. An attachment portion 512bC is provided on the negative side in the third direction Z and the negative side in the second direction Y of the second protrusion 512aC. The attachment portion 512bC has a through-hole formed therein for screwing the first element section 512C to an upper holder (not shown) provided above the lower holder 552C.
[0073] The second element section 514C is disposed behind the first element section 512C. The second element section 514C is plate-shaped when viewed from the second direction Y. The front end of the lower end of the second element section 514C is connected to the rear end of the lower end of the first element section 512C via the connecting portion 516C. This allows the first element section 512C and the second element section 514C to be integrated via the connecting portion 516C. The front end of the second element section 514C, excluding the connecting portion 516C, is separated from the rear end of the first element section 512C via a gap. In this way, the overall electrical length of the capacitive loading element 510C is adjusted.
[0074] The second patch antenna 620C is disposed in front of the first patch antenna 610C. The front parasitic element 630C covers the second patch antenna 620C while being spaced apart from the upper surface of the second patch antenna 620C. When the front parasitic element 630C covers the second patch antenna 620C, the gain of the second patch antenna 620C in the zenith direction on the positive side in the third direction Z can be increased compared to when the front parasitic element 630C is not provided.
[0075] The first antenna element 410C and the second antenna element 420C according to the third embodiment have the same structure and arrangement as the first antenna element 410A and the second antenna element 420A according to the first embodiment. However, in the third embodiment, an antenna element corresponding to the third antenna element 430A according to the first embodiment is not provided.
[0076] In the third embodiment, the size of the antenna device 10C in the first direction X can be reduced compared to when the first antenna element 410C is arranged along the longitudinal direction of the antenna base 100C when viewed from the third direction Z.
[0077] In the third embodiment, the length in the first direction X of the space required between the first antenna element 410C and the second antenna element 420C can be shortened compared to when the first antenna element 410C and the second antenna element 420C are arranged along the longitudinal direction of the antenna base 100C as viewed from the third direction Z. Therefore, compared to the above-described case, even when the length in the first direction X of the antenna device 10C is shortened, deterioration of the isolation between the first antenna element 410C and the second antenna element 420C can be reduced.
[0078] In embodiment 3, the deterioration of isolation between the first antenna element 410C and the second antenna element 420C can be reduced compared to when the height in the third direction Z of the first antenna element 410C is equal to the height in the third direction Z of the second antenna element 420C.
[0079] 6 is a perspective view of an antenna device 10D according to embodiment 4. The antenna device 10D according to embodiment 4 is similar to the antenna device 10A according to embodiment 1 except for the following points.
[0080] The antenna device 10D of embodiment 4 includes an antenna base 100D, an antenna case 200D, an inner case 210D, a substrate 300D, a first antenna element 410D, a second antenna element 420D, a first capacitance loading element 510D, a second capacitance loading element 520D, a coil element 540D, and a patch antenna 600D.
[0081] The inner case 210D covers the antenna base 100D from above. The inner case 210D and the antenna base 100D form a storage space. This storage space accommodates the substrate 300D, the first antenna element 410D, the second antenna element 420D, the first capacitance loading element 510D, the second capacitance loading element 520D, the coil element 540D, and the patch antenna 600D. The antenna case 200D covers the antenna base 100D and the inner case 210D from above. The antenna case 200D forms a storage space that accommodates the inner case 210D.
[0082] The first antenna element 410D, the second antenna element 420D, the first capacitance loading element 510D, the second capacitance loading element 520D, and the coil element 540D according to the fourth embodiment have the same structure and arrangement as the first antenna element 410A, the second antenna element 420A, the first capacitance loading element 510A, the second capacitance loading element 520A, and the coil element 540A according to the first embodiment. However, in the fourth embodiment, an antenna element corresponding to the third antenna element 430A according to the first embodiment is not provided.
[0083] In the fourth embodiment, the size of the antenna device 10D in the first direction X can be reduced compared to when the first antenna element 410D is arranged along the longitudinal direction of the antenna base 100D as viewed in the third direction Z.
[0084] In the fourth embodiment, the length in the first direction X of the space required between the first antenna element 410D and the second antenna element 420D can be shortened compared to when the first antenna element 410D and the second antenna element 420D are arranged along the longitudinal direction of the antenna base 100D as viewed from the third direction Z. Therefore, compared to the above-described case, even when the length in the first direction X of the antenna device 10D is shortened, deterioration of the isolation between the first antenna element 410D and the second antenna element 420D can be reduced.
[0085] In embodiment 4, the deterioration of isolation between the first antenna element 410D and the second antenna element 420D can be reduced compared to when the height in the third direction Z of the first antenna element 410D is equal to the height in the third direction Z of the second antenna element 420D.
[0086] In the fourth embodiment, it is possible to reduce the deterioration of isolation between the first antenna element 410D and the first capacitance loading element 510D compared to when the first antenna element 410D is arranged below the first capacitance loading element 510D. Similarly, in the fourth embodiment, it is possible to reduce the deterioration of isolation between the first antenna element 410D and the second capacitance loading element 520D compared to when the first antenna element 410D is arranged below the second capacitance loading element 520D.
[0087] In the fourth embodiment, the distance between the first antenna element 410D and the first capacitance loading element 510D and the distance between the first antenna element 410D and the second capacitance loading element 520D can be made longer than when the first antenna element 410D is arranged along the longitudinal direction of the antenna base 100D as viewed from the third direction Z. Therefore, in the fourth embodiment, the isolation between the first antenna element 410D and the first capacitance loading element 510D and the isolation between the first antenna element 410D and the second capacitance loading element 520D can be improved compared to the above-mentioned cases.
[0088] In the fourth embodiment, it is possible to reduce degradation of isolation between the first antenna element 410D and the first capacitance loading element 510D compared to when the height in the third direction Z of the first antenna element 410D is equal to or greater than the height in the third direction Z of the first capacitance loading element 510D. Similarly, in the fourth embodiment, it is possible to reduce degradation of isolation between the first antenna element 410D and the second capacitance loading element 520D compared to when the height in the third direction Z of the first antenna element 410D is equal to or greater than the height in the third direction Z of the second capacitance loading element 520D.
[0089] 7 is a perspective view of an antenna device 10E according to a modified example. The antenna device 10E according to the modified example is similar to the antenna device 10A according to the first embodiment, except that a first parasitic element 410E is provided instead of the first antenna element 410A.
[0090] Except for the fact that a first parasitic element 410E according to the modification does not have a feed point, it has the same structure as the first antenna element 410A according to embodiment 1. Furthermore, the first parasitic element 410E, second antenna element 420A, and third antenna element 430A according to the modification are arranged in the same manner as the first parasitic element 410E, second antenna element 420A, and third antenna element 430A according to embodiment 1.
[0091] In this modification, the size of the antenna device 10E in the first direction X can be reduced compared to when the first parasitic element 410E is arranged along the longitudinal direction of the antenna base 100A when viewed from the third direction Z.
[0092] In this modification, the length in the first direction X of the space required between first parasitic element 410E and second antenna element 420A can be shortened compared to when first parasitic element 410E and second antenna element 420A are arranged along the longitudinal direction of antenna base 100A as viewed from third direction Z. Therefore, compared to the above-described case, even when the length in the first direction X of antenna device 10D is shortened, deterioration of isolation between first parasitic element 410E and second antenna element 420A can be reduced.
[0093] In the modified example, compared to when the first parasitic element 410E is arranged along the longitudinal direction of the antenna base 100A as viewed from the third direction Z, the length of the space required in the first direction X between the first parasitic element 410E and the third antenna element 430A to ensure isolation between the first parasitic element 410E and the third antenna element 430A can be shortened.
[0094] In this modification, it is possible to reduce degradation of isolation between first parasitic element 410E and second antenna element 420A compared to when the height in the third direction Z of first parasitic element 410E is equal to the height in the third direction Z of second antenna element 420A. Similarly, it is possible to reduce degradation of isolation between first parasitic element 410E and third antenna element 430A compared to when the height in the third direction Z of first antenna element 410A is equal to the height in the third direction Z of third antenna element 430A.
[0095] In the modified example, the first parasitic element 410E can function as a reflector of the radio waves radiated from the third antenna element 430A, compared to when the first parasitic element 410E is not provided or when the first parasitic element 410E is arranged along the longitudinal direction of the antenna base 100A when viewed from the third direction Z. Therefore, the directivity behind the third antenna element 430A can be improved, compared to when the first parasitic element 410E is not provided or when the first parasitic element 410E is arranged along the longitudinal direction of the antenna base 100A when viewed from the third direction Z.
[0096] In the modified example, it is possible to reduce degradation of isolation between first parasitic element 410E and the pair of first capacitance loading elements 510A compared to when first parasitic element 410E is arranged below the pair of first capacitance loading elements 510A. Similarly, in the modified example, it is possible to reduce degradation of isolation between first parasitic element 410E and the pair of second capacitance loading elements 520A compared to when first parasitic element 410E is arranged below the pair of second capacitance loading elements 520A.
[0097] In the modified example, the distance between the first parasitic element 410E and the pair of first capacitance loading elements 510A and the distance between the first parasitic element 410E and the pair of second capacitance loading elements 520A can be made longer than when the first parasitic element 410E is arranged along the longitudinal direction of the antenna base 100A as viewed from the third direction Z. Therefore, in the modified example, it is possible to reduce degradation of isolation between the first parasitic element 410E and the pair of first capacitance loading elements 510A and between the first parasitic element 410E and the pair of second capacitance loading elements 520A compared to the above-described case.
[0098] In the modified example, it is possible to reduce degradation of isolation between first parasitic element 410E and the pair of first capacitance loading elements 510A compared to when the height in the third direction Z of first parasitic element 410E is equal to or greater than the height in the third direction Z of the pair of first capacitance loading elements 510A. Similarly, in the modified example, it is possible to reduce degradation of isolation between first parasitic element 410E and the pair of second capacitance loading elements 520A compared to when the height in the third direction Z of first parasitic element 410E is equal to or greater than the height in the third direction Z of the pair of second capacitance loading elements 520A.
[0099] Although the embodiments and modifications of the present invention have been described above with reference to the drawings, these are merely examples of the present invention, and various configurations other than those described above can also be adopted.
[0100] According to the present specification, the following aspects are provided. (Aspect 1) Aspect 1 is The antenna base and an antenna case that forms a housing space together with the antenna base; a first antenna element accommodated in the accommodation space; Equipped with The antenna device is configured such that the first antenna element is disposed along a direction intersecting the longitudinal direction of the antenna base. According to the first aspect, the length of the first antenna element in the longitudinal direction can be made shorter than when the first antenna element is arranged along the longitudinal direction, which allows the size of the antenna device to be reduced compared to when the first antenna element is arranged along the longitudinal direction. (Aspect 2) Aspect 2 is a second antenna element disposed on one side of the first antenna element in the longitudinal direction; The antenna device according to aspect 1, wherein the second antenna element is arranged along the longitudinal direction. According to aspect 2, the length of the space required in the longitudinal direction between the first antenna element and the second antenna element can be shortened compared to when both the first antenna element and the second antenna element are arranged along the longitudinal direction, so that, compared to the above-described case, deterioration of isolation between the first antenna element and the second antenna element can be reduced even when the length of the antenna device in the longitudinal direction is shortened. (Aspect 3) Aspect 3 is further comprising a third antenna element disposed on the other side of the first antenna element in the longitudinal direction; In the antenna device according to aspect 2, the height of the first antenna element is smaller than at least one of the height of the second antenna element and the height of the third antenna element. According to aspect 3, compared to when the height of the first antenna element is equal to the height of the second antenna element, interference between the first antenna element and the second antenna element can be reduced, and deterioration of isolation between the first antenna element and the second antenna element can be reduced. Similarly, compared to when the height of the first antenna element is equal to the height of the third antenna element, interference between the first antenna element and the third antenna element can be reduced, and deterioration of isolation between the first antenna element and the third antenna element can be reduced. (Aspect 4) Aspect 4 is further comprising two capacitive loading elements overlapping the antenna base; In the antenna device according to any one of aspects 1 to 3, the first antenna element is disposed between areas of the antenna base that overlap with the two capacitive loading elements. According to aspect 4, compared to when the first antenna element overlaps with two capacitance loading elements, interference between the first antenna element and the two capacitance loading elements can be reduced, and degradation of isolation between the first antenna element and the two first capacitance loading elements can be reduced. (Aspect 5) Aspect 5 is In the antenna device according to aspect 4, the height of the first antenna element is smaller than the height of at least one of the two capacitive loading elements. According to aspect 5, the deterioration of isolation between the first antenna element and at least one of the two capacitance loading elements can be reduced compared to when the height of the first antenna element is equal to or greater than the height of at least one of the two capacitance loading elements. (Aspect 6) Aspect 6 is In the antenna device according to any one of aspects 1 to 5, the first antenna element has a portion that operates as a self-similar antenna or an antenna equivalent thereto. According to a sixth aspect, the first antenna element is operable over a wide band and can be suitable for a TEL antenna. (Aspect 7) Aspect 7 is The antenna device according to any one of aspects 1 to 6, wherein the first antenna element operates as a reflector for another antenna housed in the housing space. According to the seventh aspect, the directivity of the other antenna in a desired direction can be improved compared to when the first antenna element does not function as a reflector. (Aspect 8) Aspect 8 is The antenna device of aspect 1 further includes at least one of a second antenna element arranged on one side of the first antenna element in the longitudinal direction and a third antenna element arranged on the other side of the first antenna element in the longitudinal direction. According to the eighth aspect, by using at least one of the second antenna element and the third antenna element together with the first antenna element, it is possible to realize MIMO. (Aspect 9) Aspect 9 is 4. The antenna apparatus according to claim 3, wherein the third antenna element is a V2X antenna. According to the ninth aspect, the first antenna element can function as a reflector that reflects radio waves radiated from the third antenna element. Furthermore, in the ninth aspect, the third antenna element may be required to have relatively strong directivity in all directions. In this case, according to the ninth aspect, the directivity on the side opposite to the side where the first antenna element is located relative to the third antenna element can be strengthened compared to when the first antenna element is not provided or when the first antenna element is arranged along the longitudinal direction of the antenna base. (Aspect 10) Aspect 10 is The antenna device according to any one of aspects 1 to 9, wherein the first antenna element is at least one of a TEL antenna, a Wi-Fi (registered trademark) antenna, a Bluetooth (registered trademark) antenna, a V2X antenna, and a keyless entry antenna. According to the tenth aspect, similarly to the first aspect, the size of the antenna device in the longitudinal direction of the antenna base can be reduced compared to when the first antenna element is arranged along the longitudinal direction of the antenna base. [Explanation of symbols]
[0101] 10A Antenna Unit 10B Antenna device 10C Antenna Equipment 10D Antenna Unit 10E Antenna Equipment 100A Antenna Base 100B Antenna Base 100C Antenna Base 100D Antenna Base 200A Antenna Case 200B Antenna Case 200C Antenna Case 200D Antenna Case 210D inner case 300A board 300B board 300C board 300D board 410A First Antenna Element 410B First antenna element 410C First antenna element 410D First antenna element 410E First parasitic element 412A First proximal end 420A Second Antenna Element 420B Second Antenna Element 420C Second antenna element 420D Second Antenna Element 422A 2nd proximal end 430A 3rd Antenna Element 430B Third Antenna Element 432A Antenna Holder 432B Antenna Holder 510A First Capacitive Loading Element 510B Capacitive Loading Element 510C Capacitive Loading Element 510D First capacitive loading element 512B 1st Element Section 512C 1st Element Section 512aC 2nd protrusion 512bC Mounting part 514B Second Element Section 514C Second Element Section 516B 1st protrusion 516C Connection 520A Second Capacitive Loading Element 520D Second capacitive loading element 540A Coil Element 540D Coil Element 552C Lower Holder 600A patch antenna 600B Patch Antenna 600D patch antenna 610C 1st patch antenna 620C Second patch antenna 630C Front parasitic element X 1st direction Y Second direction Z 3rd direction
Claims
1. An antenna base; an antenna case that forms a housing space together with the antenna base; a first antenna element accommodated in the accommodation space; Equipped with the first antenna element is disposed along a direction intersecting the longitudinal direction of the antenna base, The antenna device, wherein the first antenna element acts as a reflector for another antenna housed in the housing space.
2. a second antenna element disposed on one side of the first antenna element in the longitudinal direction; The antenna device according to claim 1 , wherein the second antenna element is arranged along the longitudinal direction.
3. a third antenna element disposed on the other side of the first antenna element in the longitudinal direction; 3. The antenna device according to claim 2, wherein the height of the first antenna element is lower than at least one of the height of the second antenna element and the height of the third antenna element.
4. further comprising two capacitive loading elements overlapping the antenna base; 4. The antenna device according to claim 1, wherein the first antenna element is disposed between areas of the antenna base that overlap with the two capacitive loading elements.
5. 5. The antenna device according to claim 4, wherein the height of said first antenna element is lower than the height of at least one of said two capacitive loading elements.
6. 6. The antenna device according to claim 1, wherein the first antenna element has a portion that operates as a self-similar antenna or an antenna equivalent thereto.
Citation Information
Patent Citations
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