The present invention relates to an antenna device, and particularly relates to an antenna device having a wide communicable angular range.
In recent years, frequency bands used in wireless communication of mobile electronic devices, such as smartphones, have been increasingly shifted to higher frequency bands. This shift causes a problem of loss attributed to the wiring length connecting a radiation conductor of an antenna device and an IC chip that supplies power to the radiation conductor. Japanese Patent Application Laid-open No. 2011-097526 discloses an antenna device that reduces the loss by mounting a radiation conductor and an IC chip on the same substrate in an overlapping manner to reduce the length of wiring connecting the radiation conductor and the IC chip.
However, the antenna device disclosed in Japanese Patent Application Laid-open No. 2011-097526 has a problem that beam radiation directions are limited to a range centered around a direction perpendicular to the substrate, because one or more patch antennas are formed on the substrate in a simple manner. Therefore, in a case of utilizing a frequency band in which directionality is required, for example, millimeter waves, there is a problem that communication is possible only within a narrow angle.
It is therefore an object of the present invention to provide an antenna device with which communication is possible over a wider angle, even in a case of using a frequency band in which directionality is required.
An antenna device according to the present invention comprises a substrate, an IC chip mounted on the substrate, a first antenna element including a plurality of patch antenna conductors that is supplied with power from the IC chip and that radiates a beam in a direction substantially perpendicular to the substrate, and a second antenna element that is supplied with power from the IC chip and that radiates a beam in a first horizontal direction substantially parallel to the substrate.
According to the present invention, it is possible to perform communication over a wider angle, even in a case of utilizing a frequency band in which directionality is required, such as millimeter waves, because not only the first antenna element that radiates a beam in a direction substantially perpendicular to the substrate but also the second antenna element that radiates a beam in a direction substantially parallel to the substrate is included.
In the present invention, it is preferable that the patch antenna conductors be arrayed in one direction. Accordingly, the beam radiation direction can be controlled through phase control.
In the present invention, it is preferable that the substrate comprises a plurality of wiring layers including first and second wiring layers, the IC chip be mounted on the first wiring layer, and the first antenna element be formed in the second wiring layer so as to at least partially overlap the IC chip. Accordingly, the area of the substrate can be reduced.
In the present invention, it is preferable that the wiring layers further include a third wiring layer including a ground pattern, and the second antenna element be configured of a plurality of slot antennas respectively provided within a plurality of ground clearance regions that are cutouts of the ground pattern. Accordingly, it is possible to radiate beams in a direction parallel to the substrate, without increasing the thickness of the substrate.
In the present invention, it is preferable that the ground pattern includes first ground patterns respectively surrounding the ground clearance regions, and a second ground pattern surrounding the first ground patterns with slits therebetween. Accordingly, the gain of the second antenna element can be improved.
In the present invention, it is preferable that the slot antennas be arrayed in the one direction. Accordingly, the beam radiation direction can be controlled through phase control, also for the second antenna element.
The antenna device according to the present invention can further comprise an additional substrate connected to the substrate via a flexible substrate, and the second antenna element can include a plurality of additional patch antenna conductors that is supplied with power from the IC chip via the flexible substrate and that radiates a beam in a direction substantially perpendicular to the additional substrate. Connecting the two substrates via the flexible substrate in this manner enables the angle between the two substrates to be freely set.
In the present invention, it is preferable that the additional patch antenna conductors be arrayed in the one direction. Accordingly, the beam radiation direction can be controlled through phase control, also for the second antenna element.
In the present invention, it is preferable that the one direction be a second horizontal direction substantially parallel to the substrate and substantially orthogonal to the first horizontal direction. Accordingly, beams can be radiated in two directions by using a substrate of which the longitudinal direction is the one direction.
The antenna device according to the present invention can further comprise a third antenna element that is supplied with power from the IC chip and that radiates a beam in the second horizontal direction. Accordingly, because electromagnetic waves are radiated in three directions, it is possible to perform communication over an even wider angle.
As described above, according to the present invention, it is possible to perform communication over a wider angle even in a case of using a frequency band in which directionality is required, such as millimeter waves.
The above and other objects, features and advantages of this invention will become more apparent by reference to the following detailed description of the invention taken in conjunction with the accompanying drawings, wherein:
Preferred embodiments of the present invention will now be explained in detail with reference to the drawings.
As illustrated in
The wiring layer 111 located at the top surface of the substrate 110 is formed with four patch antenna conductors 141 to 144 arrayed in the x-direction. The patch antenna conductors 141 to 144 are supplied with power by the IC chip 120 and function as a first antenna element that radiates a beam in the z-direction. Through phase control of a power supply signal by the IC chip 120, it is possible to incline the beam radiation direction to the x-direction, with the z-axis as the center. The number of patch antenna conductors is not limited to four. However, in order to incline the beam radiation direction to the x-direction, it is necessary to use at least two patch antenna conductors.
The wiring layer 112 located at the bottom surface of the substrate 110 is mounted with the IC chip 120. In the present embodiment, the IC chip 120 also has a shape of which the longitudinal direction is the x-direction to be adapted to the shape of the substrate 110. The IC chip 120 is mounted in a position partly overlapping the patch antenna conductors 141 to 144. Accordingly, it is possible to reduce the planar size of the substrate 110, compared to a case of arranging the IC chip 120 and the patch antenna conductors 141 to 144 in different planes, respectively, in a non-overlapping manner.
Further, a wiring layer 113 illustrated in
As illustrated in
The conductor patterns 161 and 162 have a predetermined inductance component, and a predetermined capacitance component is generated between the conductor patterns 161 and 162. Therefore, by adjusting the length, width, position, or the like of the conductor patterns 161 and 162, a slot antenna that resonates at a predetermined frequency is formed.
A plurality of slot antennas thus formed function as a second antenna element that radiates a beam in the y-direction. Through phase control of a power supply signal by the IC chip 120, it is possible to incline the beam radiation direction to the x-direction, with the y-axis as the center . The number of slot antennas is not limited to three. However, in order to incline the beam radiation direction to the x-direction, it is necessary to use at least two slot antennas.
In this manner, the antenna device 100 according to the present embodiment includes the first antenna element (patch antennas) that radiates beams centered around the z-axis and the second antenna element (slot antennas) that radiates beams centered around the y-axis . Thus, when the same signals are output by the first antenna element and the second antenna element, beams propagating the same signals are radiated in both the z-direction and the y-direction. Therefore, it is possible to perform communication over a wider angle, even in the case of using a frequency band in which directionality is required, for example, millimeter waves.
In the present embodiment, providing the second antenna element does not increase the planar size of the substrate 110, because the second antenna element is formed in the wiring layer 113 located at an inner layer of the substrate 110.
An example illustrated in
By separating the first ground patterns G1 and the second ground pattern G2 with the slits SL, radiation in a Y1 direction illustrated in
An example illustrated in
A slot antenna formed in each of the ground clearance regions 154 and 155 functions as a third antenna element that is supplied with power by the IC chip 120 to radiate a beam in the x-direction. Accordingly, beams are radiated not only in the y-direction and the z-direction but also in the x-direction. That is, it is possible to radiate beams in three directions (the x-direction, the y-direction, and the z-direction).
As illustrated in
The substrate 210 is connected to the substrate 110 via the flexible substrate 220. Because the flexible substrate 220 connects the substrate 110 and the substrate 210 along a long side extending in the x-direction, it is possible to set the substrate 210 at any angle with respect to the substrate 110, with the x-axis as the center.
A wiring layer 211 located at the top surface of the substrate 210 is formed with four patch antenna conductors 221 to 224 arrayed in the x-direction. The patch antenna conductors 221 to 224 are supplied with power by the IC chip 120 and function as the second antenna element that radiates a beam in the y-direction. Through phase control of a power supply signal by the IC chip 120, it is possible to incline the beam radiation direction to the x-direction, with the y-axis as the center. The number of patch antenna conductors is not limited to four. However, in order to incline the beam radiation direction to the x-direction, it is necessary to use at least two patch antenna conductors.
Differently from the first embodiment, the flexible substrates 131 and 132 are not used in the present embodiment. Instead, in the wiring layer 112 located on the bottom surface side of the substrate 110, a plurality of external terminals 170 are placed in an array so as to surround the IC chip 120. The external terminals 170 are formed of a solder ball, for example, and are designed to be greater in a height in the z-direction than the IC chip 120.
In this manner, the antenna device 200 according to the present embodiment includes the first antenna element (patch antennas) that radiates beams centered around the z-axis, and the second antenna element (patch antennas) that radiates beams centered around the y-axis. Thus, because beams are radiated in both the z-direction and the y-direction in a similar manner to the first embodiment, it is possible to perform communication over a wider angle, even in the case of using a frequency band in which directionality is required, such as millimeter waves.
As illustrated in
The substrate 310 is connected to the substrate 110 via the flexible substrate 320. Because the flexible substrate 320 is provided to a short side extending in the y-direction, it is possible to set the substrate 310 at any angle with respect to the substrate 110, with the y-axis as the center.
A wiring layer 311 located at the top surface of the substrate 310 is formed with a patch antenna conductor 331. The patch antenna conductor 331 is supplied with power by the IC chip 120 and functions as the third antenna element that radiates a beam in the x-direction. In an example illustrated in
With the above configuration, beams are radiated not only in the y-direction and the z-direction but also in the x-direction. That is, it is possible to radiate beams in three directions (the x-direction, the y-direction, and the z-direction).
It is apparent that the present invention is not limited to the above embodiments, but may be modified and changed without departing from the scope and spirit of the invention.
Number | Date | Country | Kind |
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2017-038909 | Mar 2017 | JP | national |