This application is based on Japanese Patent Application No. 2012-060328 filed on Mar. 16, 2012, the disclosure of which is incorporated herein by reference.
The present disclosure relates to an antenna apparatus that includes a conductive ground pattern formed on a planar substrate and a linear antenna element electrically connected with the ground pattern.
For example, patent literature 1 discloses a structure in which a planar antenna having an inversed L-shape is connected with one end of a planar ground pattern and a linear antenna having an inversed F-shape is connected with the other end of the ground pattern.
However, a high frequency current flows through not only the antenna element but also the ground pattern in the structure in which the antenna element is connected with the planar ground pattern as disclosed in patent literature 1. As a result, the ground pattern radiates electromagnetic waves as a part of the antenna element and changes a radiation pattern of the antenna element. In some cases, null point that has a low sensitivity in a horizontal direction is generated and there is a difficulty in acquiring a required directivity. Hereinafter, the null point is also referred to as a sensitivity deterioration point.
JP 2004-040596 A
In view of the foregoing difficulties, it is an object of the present disclosure to provide an antenna apparatus that properly provides a required directivity.
According to an aspect of the present disclosure, an antenna apparatus includes a ground pattern having a conductivity and formed on a planar substrate, and an antenna element having a linear shape and electrically connected with the ground pattern. The antenna element has a base end portion, a front end portion, and a feeding point provided at the base end portion. The ground pattern includes an end portion. The base end portion of the antenna element is connected with the end portion of the ground pattern so that the antenna element is parallel to the substrate. The antenna element is disposed so that the antenna element extends in a direction from the base end portion toward the front end portion away from the ground pattern. The antenna element is fed with power by the feeding point provided at the base end portion. An auxiliary ground pattern is disposed on the substrate between the ground pattern and the antenna element. The auxiliary ground pattern is disposed along a side of the ground pattern and has a same potential with the ground pattern, and the side of the ground pattern includes the end portion of the ground pattern.
In the above antenna apparatus, the auxiliary ground pattern is disposed between the antenna element and the ground pattern. With this configuration, the high frequency current also flows through the ground pattern. However, the high frequency current flowing through the ground pattern can be restricted by disposing the auxiliary ground pattern. As a result, a generation of null points in a required direction is avoided. Further, even though the null points are generated, the null points can be removed from the required direction, and a required directivity can be properly obtained. That is, by disposing the auxiliary ground pattern, an amount of the high frequency current flowing through the ground pattern is adjusted and adverse effect caused by the null points are avoided, and accordingly, the required directivity can be properly obtained.
The above and other objects, features and advantages of the present disclosure will become more apparent from the following detailed description made with reference to the accompanying drawings. In the drawings:
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a) is a diagram showing a directivity of the antenna according to the first embodiment in a horizontal plane, and
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a) is a diagram showing a directivity of the antenna according to the comparison example in the horizontal plane, and
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a) is a diagram showing a directivity of the antenna according to the second embodiment in the horizontal plane, and
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a) is a diagram showing a directivity of the antenna according to the third embodiment in the horizontal plane, and
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a) is a diagram showing a directivity of the antenna according to the fourth embodiment in the horizontal plane, and
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The following will describe embodiments of the present disclosure with reference to the drawings.
The following will describe a first embodiment of the present disclosure with reference to
A monopole antenna element 5 has a linear shape, and a base end portion 5a of the antenna element 5 is electrically connected (conductive) with a front end portion 4a of the connection portion 4. The antenna element 5 extends in the vertical direction and is electrically connected with the ground pattern 3. That is, the antenna element 5 is parallel to the substrate 2, and is connected with the connection portion 4 so that the antenna element 5 extends in a direction from the base end portion 5a toward a front end portion 5b away from the ground pattern 3. The antenna element 3 operates with the ground pattern 3 as a ground. The antenna element 5 has a length of, for example, quarter-wavelength of the 5.9 GHz radio wave. Hereinafter, the length of the antenna element 5 is also referred to as an element length. A feeding point 6 that supplies power to the antenna element 5 is provided at the base end portion 5a of the antenna element 5. The antenna element 5 may be shaped to have a predetermined width.
A connection portion 7 is integrally formed with the ground pattern 3. The connection portion 7 is arranged adjacent to another end portion 3b of the ground pattern 3 at the center portion in the horizontal direction, and protrudes in the vertical direction (a downward direction on the sheet of
The antenna elements 5 and 8 are disposed symmetrically in the vertical direction with a center portion of the ground pattern 3 as a center of symmetry. The antenna elements 5 and 8 receive radio waves of 5.9 GHz band by performing a diversity reception, and are selectively supplied with power. For example, each of the feeding points 6 and 9 may be provided by a coaxial cable. An inner conductor of each coaxial cable (not shown) is connected with each of the base end portions 5a and 8a of respective antenna elements 5 and 8, and an outer conductor of each coaxial cable is connected with the ground pattern 3.
A different ground pattern 10 having a linear shape is disposed adjacent to the base end portion 5a of the antenna element 5, and is integrally connected with the connection portion 4 of the ground pattern 3. That is, the different ground pattern 10 and the ground pattern 3 have the same potential. The different ground pattern 10 is provided by a conductive pattern formed on the substrate 2. The different ground pattern 10 is disposed along an upper side of the ground pattern 3 so that the different ground pattern 10 is approximately parallel to an upper side of the ground pattern 3. The different ground pattern 10 is disposed symmetrically in the horizontal direction with the base end portion 5a of the antenna element 5 as a center of symmetry. In the above description, approximately parallel to includes a case in which a distance between the different ground pattern 10 and the upper side of the ground pattern 3 has a constant value and also includes a case in which the distance varies within a predetermined range. That is, for example, a distance between the different ground pattern 10 and the upper side of the ground pattern 3 may have a minimum value adjacent to the center portion of the ground pattern 3, and may have maximum values adjacent to a right portion and a left portion of the ground pattern 3.
Similarly, a different ground pattern 11 having a linear shape is disposed adjacent to the base end portion 8a of the antenna element 8, and is integrally connected with the connection portion 7 of the ground pattern 3. That is, the different ground pattern 11 and the ground pattern 3 have the same potential. The different ground pattern 11 is provided by a conductive pattern formed on the substrate 2. The different ground pattern 11 is disposed along a lower side of the ground pattern 3 so that the different ground pattern 11 is approximately parallel to the lower side of the ground pattern 3. The different ground pattern 11 is disposed symmetrically in the horizontal direction with the base end portion 8a of the antenna element 8 as a center of symmetry. In this case, approximately parallel to includes a case in which a distance between the different ground pattern 11 and the lower side of the ground pattern 3 has a constant value and also includes a case in which the distance varies within a predetermined range. That is, for example, a distance between the different ground pattern 11 and the lower side of the ground pattern 3 may have a minimum value adjacent to the center portion of the ground pattern 3, and may have maximum values adjacent to the right portion and the left portion of the ground pattern 3.
Each of the different ground patterns 10 and 11 has a length L1 in the horizontal direction, and the length L1 is approximately equal to a length W of each of the upper side and the lower side of the ground pattern 3. For example, when each of the upper side and the lower side of the ground pattern has a length of 15 millimeters (mm), each of the different ground patterns 10 and 11 may have a length of 15 mm in the horizontal direction. The ground pattern 3, the antenna elements 5 and 8, the different ground patterns 10 and 11 are disposed on the same plane. The different ground patterns 10 and 11 are also referred to as auxiliary ground patterns.
The antenna apparatus 1 having above-described structure is disposed in a housing (not shown) so that axes of the antenna elements 5 and 8 are in the vertical direction. The antenna elements 5 and 8 are equipped to a vehicle so that the axes of the antenna elements are in the vertical direction by attaching the housing to a roof of a vehicle (not shown). Hereinafter, an axis parallel to the axes of the antenna elements 5 and 8 is defined as a Z axis, an axis parallel to the horizontal direction (the left-right direction on the sheet of
a) and
In a relation between the antenna element 5 and the ground pattern 3, a size of the ground pattern 3 is limited by a mounting performance, and a length of the monopole antenna element 5 cannot be sufficiently secured with respect to a wavelength of the radio wave received by the monopole antenna element 5. Thus, the ground pattern 3 provides a limited ground with respect to the monopole antenna element 5. Under this condition, when the different ground pattern 10 is not disposed between the ground pattern 3 and the antenna element 5, a high frequency current flows through not only the antenna element 5 but also the ground pattern 3. As a result, the ground pattern 3 also radiates electromagnetic waves as a part of the antenna element 5 and changes a radiation pattern of the antenna element 5. Accordingly, a required directivity cannot be obtained.
In a configuration where the different ground pattern 10 is disposed between the antenna element 5 and the ground pattern 3 as disclosed in the present disclosure, the high frequency current still flows through the ground pattern 3. However, the high frequency current flowing through the ground pattern 3 is restricted by disposing the different ground pattern 10. As a result, a generation of the null points in the required direction is avoided. Further, even though the null points are generated, the null points can be removed from the required direction, and the required directivity can be obtained. A relation among the antenna element 8, the ground pattern 3, and the different ground pattern 11 is similar to the above-described relation.
As described above, according to the first embodiment, in a configuration where the planar ground pattern 3 is connected with the monopole antenna elements 5 and 8, the different ground patterns 10 and 11 are disposed between the antenna elements 5 and 8 and the ground pattern 3. With this configuration, the high frequency current flows through not only the antenna elements 5 and 8 but also the ground pattern 3. However, the high frequency current flowing through the ground pattern 3 can be restricted by disposing the different ground patterns 10 and 11. As a result, a generation of the null points in the required direction is avoided. Further, even though the null points are generated, the null points can be removed from the required direction, and the required directivity can be obtained. That is, by disposing the different ground patterns 10 and 11, an amount of the high frequency current flowing through the ground pattern 3 is adjusted and adverse effect caused by the null points are avoided, and accordingly, the required directivity can be properly obtained.
The following will describe a second embodiment of the present disclosure with reference to
According to the second embodiment, as shown in
In the configuration shown in
The following will describe a third embodiment of the present disclosure with reference to
According to the third embodiment, as shown in
In the configuration shown in
The following will describe a fourth embodiment of the present disclosure with reference to
According to the fourth embodiment, as shown in
In the configuration shown in
The following will describe an antenna apparatus according to a fifth embodiment of the present application with reference to
According to the fifth embodiment, as shown in
A base end portion 58a of a monopole antenna element 58 is electrically connected with a front end portion 55a of the connection portion 55. The antenna element 58 extends in the vertical direction and is electrically connected with the ground pattern 53. That is, the antenna element 58 is connected with the connection portion 55 so that the antenna element 58 extends in a direction from the base end portion 58a toward a front end portion 58b away from the ground pattern 53. A feeding point 59 that supplies power to the antenna element 58 is provided at the base end portion 58a of the antenna element 58. The antenna elements 56 and 58 are disposed symmetrically in the vertical direction, and perform a diversity reception.
At the base end portion 56a of the antenna element 56, a different ground pattern 60 is disposed along an upper side of the ground pattern 53 so that the different ground pattern 60 is approximately parallel to the upper side of the ground pattern 53, and a different ground pattern 61 is disposed along a left side of the ground pattern 53 so that the different ground pattern 61 is approximately parallel to the left side of the ground pattern 53. A front end portion 60a of the different ground pattern 60 is bent toward a side opposite to the ground pattern 53, and a front end portion 61a of the different ground pattern 61 is bent toward a side opposite to the ground pattern 53.
At the base end portion 58a of the antenna element 58, a different ground pattern 62 is disposed along a lower side of the ground pattern 53 so that the different ground pattern 62 is approximately parallel to the lower side of the ground pattern 53, and a different ground pattern 63 is disposed along the left side of the ground pattern 53 so that the different ground pattern 63 is approximately parallel to the left side of the ground pattern 53. A front end portion 62a of the different ground pattern 62 is bent toward a side opposite to the ground pattern 53, and a front end portion 63a of the different ground pattern 63 is bent toward a side opposite to the ground pattern 53.
With above-described configuration, the high frequency current flows through not only the antenna elements 56 and 58 but also the ground pattern 53. However, the high frequency current flowing through the ground pattern 53 can be restricted by disposing the different ground patterns 60 to 63. As a result, a generation of the null points in the required direction is avoided. Further, even though the null points are generated, the null points can be removed from the required direction, and the required directivity can be obtained. The fifth embodiment provides advantages similar to the advantages acquired by the first embodiment.
The following will describe an antenna apparatus according to a sixth embodiment of the present application with reference to
According to the sixth embodiment, as shown in
A base end portion 75a of a monopole antenna element 75 is electrically connected with a front end portion 74a of the connection portion 74. The antenna element 75 extends in the vertical direction and is electrically connected with the ground pattern 73. That is, the antenna element 75 is connected with the connection portion 74 so that the antenna element 75 extends in a direction from the base end portion 75a toward a front end portion 75b away from the ground pattern 73. A feeding point 76 that supplies power to the antenna element 75 is provided at the base end portion 75a of the antenna element 75. The antenna elements 56 and 75 are disposed symmetrically in the vertical direction, and perform a diversity reception.
At the base end portion 75a of the antenna element 75, a different ground pattern 77 is disposed along a lower side of the ground pattern 73 so that the different ground pattern 77 is approximately parallel to the lower side of the ground pattern 73, and a different ground pattern 78 is disposed along the right side of the ground pattern 73 so that the different ground pattern 78 is approximately parallel to the right side of the ground pattern 73. A front end portion 77a of the different ground pattern 77 is bent toward a side opposite to the ground pattern 73, and a front end portion 78a of the different ground pattern 78 is bent toward a side opposite to the ground pattern 73. The sixth embodiment provides advantages similar to the advantages acquired by the first embodiment.
The following will describe an antenna apparatus according to a seventh embodiment of the present application with reference to
According to the seventh embodiment, as shown in
The following will describe an antenna apparatus according to an eighth embodiment of the present application with reference to
According to the eighth embodiment, as shown in
The following will describe an antenna apparatus according to a ninth embodiment of the present application with reference to
According to the ninth embodiment, as shown in
The present disclosure is not limited to the above-described embodiments. The present disclosure can be further modified or broadened as the following.
Only one monopole antenna element may be connected with the ground pattern. That is, the diversity reception may be not performed. That is, a quantity of the antenna elements connected with single ground pattern may be set without limitation.
The monopole antenna element may be connected with the ground pattern so that the antenna element is disposed in an oblique direction (a diagonal direction of the ground pattern).
The different ground pattern may have a length asymmetry to the base end portion of the antenna element. The different ground pattern may be disposed on only one side of the base end portion of the antenna element.
A size and a shape of the monopole antenna element, a size and a shape of the ground pattern, a size and a shape of the different ground pattern may be set corresponding to the housing to be equipped to the roof of the vehicle.
The antenna element, the ground pattern, and the different ground pattern may be disposed on different surfaces of the same substrate. For example, the antenna element may be disposed on one surface of the substrate, and the ground pattern and the different ground pattern may be disposed on the other surface of the substrate. The antenna element may be electrically connected with the ground pattern and the different ground pattern by a via hole. Further, when the substrate is provided by a multi-layer substrate, the antenna element, the ground pattern, and the different ground pattern may be disposed on different layers of the same substrate. For example, the antenna element may be disposed on an outside layer, and the ground pattern and the different ground pattern may be disposed on an inside layer, and the antenna element may be electrically connected with the ground pattern and the different ground pattern by a via hole. The substrate may be provided by a bendable substrate having flexibility, or a substrate on which electronic components can be mounted on a surface thereof. That is, under a condition that the antenna element, the ground pattern, and the different ground pattern can be formed, there is no limitation to the substrate.
The vehicle antenna apparatus may also be applied to a communication system, for example, a road-to-vehicle communication system other than the vehicle-to-vehicle communication system. Further, other than the vehicle antenna apparatus, the antenna apparatus may be applied to an antenna apparatus equipped to a device other than the vehicle.
While the disclosure has been described with reference to preferred embodiments thereof, it is to be understood that the disclosure is not limited to the preferred embodiments and constructions. The disclosure is intended to cover various modification and equivalent arrangements. In addition, while the various combinations and configurations, which are preferred, other combinations and configurations, including more, less or only a single element, are also within the spirit and scope of the disclosure.
Number | Date | Country | Kind |
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2012-060328 | Mar 2012 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2013/001488 | 3/8/2013 | WO | 00 |