1. Technical Field
The present disclosure relates to an antenna device including a plurality of antenna elements and an EBG (electromagnetic band gap) structure. The present disclosure also relates to a wireless communication apparatus including such an antenna device and a radar apparatus including such an antenna device.
2. Description of the Related Art
Conventionally, it has been known that in an antenna device including a plurality of antenna elements and communicating in a millimeter-wave band, an EBG structure is used to ensure isolation between the antenna elements (see Japanese Patents Nos. 4650302, 5112204, and 5212949) Since the EBG structure becomes higher in impedance at a predetermined frequency (antiresonant frequency), the antenna device including the EBG structure can enhance the isolation between the antenna elements at the frequency.
A known example of the EBG structure is one that includes mushroom conductors including a plurality of patch conductors formed on a dielectric substrate, a plurality of via conductors, and a grounded conductor. The performance of the mushroom EBG structure depends on the diameter of each of the via conductors, the minimum size of each of the patch conductors, and the like. When the size of the conventional EBG structure is optimized so that the isolation between the antenna elements in the EBG structure is enhanced, high isolation is achieved only in a limited frequency bandwidth. Therefore, the conventional EBG structure has difficulty in ensuring sufficiently high isolation across a wide frequency bandwidth.
Meanwhile, providing an additional component or the like to change the antiresonant frequency of the EBG structure causes an increase in size of the antenna device and also causes an increase in cost.
One non-limiting and exemplary embodiment provides an antenna device including an EBG structure and being capable of ensuring high isolation across a wide frequency bandwidth.
One non-limiting and exemplary embodiment further provides a wireless communication apparatus including such an antenna device and a radar device including such an antenna device.
In one general aspect, the techniques disclosed here feature: an antenna device including: a dielectric layer having a first surface on which a first conductor layer is provided and a second surface on which a second conductor layer is provided; a first antenna element provided in the first conductor layer; a second antenna element provided in the first conductor layer; a first grounded conductor provided in the second conductor layer; and an EBG (electromagnetic band gap) structure provided between the first antenna element and the second antenna element, wherein the EBG structure includes a first EBG portion provided in the first conductor layer, the first EBG portion including a plurality of first patch conductors electromagnetically coupled to the first grounded conductor, and a second EBG portion provided in the second conductor layer, the second EBG portion including a plurality of second patch conductors electromagnetically coupled to the first grounded conductor.
An antenna device including an EBG structure according to one general aspect of the present disclosure can ensure high isolation across a wide frequency bandwidth.
Additional benefits and advantages of the disclosed embodiments will become apparent from the specification and drawings. The benefits and/or advantages may be individually obtained by the various embodiments and features of the specification and drawings, which need not all be provided in order to obtain one or more of such benefits and/or advantages.
In the following, an antenna device according to an embodiment is described with reference to the drawings. The same components, when denoted by reference signs, shall, throughout the following description, be denoted by the same signs.
The antenna device 100 includes a substrate. The substrate includes dielectric layers 1 and 2, a first conductor layer provided on an upper surface of the dielectric layer 1, a second conductor layer provided between the dielectric layers 1 and 2, and a third conductor layer provided on a lower surface of the dielectric layer 2. In other words, the first and second conductor layers are provided on both surfaces, respectively, of the first dielectric layer 1, and the third conductor layer is provided on one surface of the dielectric layer 2 in parallel with the second conductor layer at a predetermined distance from the second conductor layer on a side opposite to the first conductor layer. The antenna device 100 further includes a first antenna element 3 (receiving antenna) provided in the first conductor layer, a second antenna element 4 (transmitting antenna) provided in the first conductor layer, an EBG structure 7, a first grounded conductor 5 provided in the second conductor layer, and a second grounded conductor 6 provided in the third conductor layer. The EBG structure 7 is provided between the antenna elements 3 and 4. For example, the antenna element 3 may operate as a receiving antenna, and the antenna element 4 may operate as a transmitting antenna.
The dielectric layers 1 and 2 may be composed, for example, of polyphenylene ether or polytetrafluoroethylene.
The EBG structure 7 includes a first EBG portion and a second EBG portion. The first EBG portion includes a plurality of first patch conductors 11 provided in the first conductor layer and electromagnetically coupled to the grounded conductor 5. The second EBG portion includes a plurality of second patch conductors 13 provided in the second conductor layer and electromagnetically coupled to the grounded conductor 5. The plurality of patch conductors 13 are electromagnetically coupled to the grounded conductor 6.
In the example shown in
As shown in
As shown in
When viewed from above, the EBG segments 7-1a, 7-1b, and 7-1c (in particular the positions where the via conductors 12 are connected to the grounded conductor 5) and the EBG segments 7-2a and 7-2b appear to be alternately arranged.
The EBG segments 7-1a, 7-1b, and 7-1c are for example provided parallel to each other and separated from each other by a distance equivalent to a wavelength corresponding to a center frequency of an isolation band that is a frequency band that enhances isolation between the antenna elements 3 and 4. The EBG segments 7-2a and 7-2b are also for example provided parallel to each other and separated by a distance equivalent to the wavelength corresponding to the center frequency of the isolation band. The distance between the EBG segments 7-1a, 7-1b, and 7-1c may be a distance that is 0.8 to 1.2 times longer than the wavelength corresponding to the center frequency of the isolation band. Similarly, the distance between the EBG segments 7-2a and 7-2b may be a distance that is 0.8 to 1.2 times longer than the wavelength corresponding to the center frequency of the isolation band.
In
The first EBG portion is exposed on a surface of the substrate (dielectric layer 1), and the second EBG portion is provided in an inner part of the substrate (i.e., between the dielectric layer 1 and the dielectric layer 2). Therefore, the first EBG portion and the second EBG portion are different in characteristics from each other. The numbers of patch conductors 11 and 13, the length w1 of one side of each of the patch conductors 11, the length w2 of one side of each of the patch conductors 13, and the distances dy1 and dy2 may be set and differ from each other according to the characteristics required for the first EBG portion and the second EBG portion.
The antenna device 100 shown in
The plurality of stub conductors 14 may be short-circuited with the grounded conductor 5 according to a desired isolation characteristic.
A change in the electromagnetic coupling between the second EBG portion and the grounded conductor 5 allows the second EBG portion to have its isolation band extended to a lower band side or a higher band side.
The antenna device 100 shown in
Next, operation of the antenna device 100 shown in
The antiresonant frequency of the EBG structure 7 is determined by the capacitance and inductance of each of the components that constitute the EBG structure 7. The inductance L of a patch conductor 11 depends on the size (e.g., the length w1 of one side) of the patch conductor 11. The capacitance C between patch conductors 11 that are adjacent to each other depends on the distances dx1 and dy1 between the centers of patch conductors 11 that are adjacent to each other. The capacitance Cs between a patch conductor 11 and the grounded conductor 5 depends on the area of the patch conductor 11 and the distance dz1 between the patch conductor 11 and the grounded conductor 5. The inductance Ls of a via conductor 12 depends on the diameter φ of the via conductor 12 and the length dz1 of the via conductor 12. The diameter φ of the via conductor 12 and the length dz1 of the via conductor 12 are substantially fixed values, as they are subject to the restriction of processes. Therefore, the length w1 of one side of a patch conductor 11 and the distances dx1 and dy1 between the centers of patch conductors 11 that are adjacent to each other are the only parameters that can be changed at the time of antenna design in consideration of the restriction of processes.
The isolation effect of an EBG structure is known to be enhanced by multistaging the EBG structure. A multistaged EBG structure for example includes a plurality of substrates and is provided with a plurality of via conductors penetrating these substrates. However, no other components or wires can be provided in a portion of any of the substrates in which the via conductors are provided. This causes an increase in size of the antenna device and also causes an increase in cost.
Next, simulation results of the antenna device 100 shown in
Simulations were performed with parameters set as follows: the thickness dz1 of the dielectric layer 1 was 0.254 mm, and the thickness dz2 of the dielectric layer 2 was 0.3 mm; the relative dielectric constant εr of each of the dielectric layers 1 and 2 was 3.0, and the dielectric loss tangent tan δ was 0.0058; the antenna elements 3 and 4 were 0.91 mm×0.91 mm square patch antennas; the antenna elements 3 and 4 were arranged at a distance (center-to-center distance) of 13.2 mm in the X direction; and the center frequency of the isolation band was 79 GHz.
According to
The EBG structure 7 operates as a magnetic wall to suppress the propagation of a surface wave between the antenna elements 3 and 4. The second EBG portion (i.e., the patch conductors 13, the stub conductors 14, and the slots 15a and 15b) can spread the isolation band to a lower band side or a higher band side than the antenna device 201 according to the second comparative example, which includes only the first EBG portion. Including the second EBG portion makes it possible to more surely reduce crosstalk between the antenna elements 3 and 4 than the antenna device 201 according to the second comparative example.
The antenna device 100 shown in
Without being limited to the wavelength λ corresponding to the center frequency of 79 GHz of the isolation band, the distances dx1 and dx2 need only be lengths that are close to the wavelength λ. The effects of the distances dx1 and dx2 on the frequency characteristics are further described with reference to
An antenna device 100 according to each of the embodiments makes it possible to improve isolation and achieve a wide isolation band.
An antenna device, a wireless communication apparatus, and a radar apparatus according to aspects of the present disclosure are configured as follows:
An antenna device according to a first aspect of the present disclosure includes: a dielectric layer having a first surface on which a first conductor layer is provided and a second surface on which a second conductor layer is provided; a first antenna element provided in the first conductor layer; a second antenna element provided in the first conductor layer; a first grounded conductor provided in the second conductor layer; and an EBG (electromagnetic band gap) structure disposed between the first antenna element and the second antenna element, wherein the EBG structure includes a first EBG portion provided in the first conductor layer, the first EBG portion including a plurality of first patch conductors electromagnetically coupled to the first grounded conductor, and a second EBG portion provided in the second conductor layer, the second EBG portion including a plurality of second patch conductors electromagnetically coupled to the first grounded conductor.
An antenna device according to a second aspect is the antenna device according to the first aspect, wherein the plurality of first patch conductors are arranged along a plurality of first columns crossing a line segment connecting the first antenna element and the second antenna element, and the first EBG portion includes a plurality of via conductors penetrating the dielectric layer and connecting the plurality of first patch conductors to the first grounded conductor.
An antenna device according to a third aspect is the antenna device according to the first aspect, wherein the plurality of second patch conductors are arranged along a plurality of second columns crossing a line segment connecting a region in the second conductor layer that faces the first antenna element and a region in the second conductor layer that faces the second antenna element, and the second EBG portion includes a plurality of stub conductors connected to the plurality of second patch conductors.
An antenna device according to a fourth aspect is the antenna device according to the first aspect, wherein the plurality of first patch conductors are arranged along a plurality of first columns crossing a line segment connecting the first antenna element and the second antenna element, the first EBG portion includes a plurality of via conductors penetrating the dielectric layer and connecting the plurality of first patch conductors to the first grounded conductor, the plurality of second patch conductors are arranged along a plurality of second columns crossing a line segment connecting a region in the second conductor layer that faces the first antenna element and a region in the second conductor layer that faces the second antenna element, and the second EBG portion includes a plurality of stub conductors connected to the plurality of second patch conductors.
An antenna device according to a fifth aspect is the antenna device according to the fourth aspect, wherein the plurality of first columns are provided parallel to each other and separated from each other by a distance that is 0.8 to 1.2 times longer than a wavelength corresponding to a center frequency of an isolation band of the first antenna element and the second antenna element, and the plurality of second columns are provided parallel to each other and separated from each other by a distance that is 0.8 to 1.2 times longer than the wavelength corresponding to the center frequency of the isolation band.
An antenna device according to a sixth aspect is the antenna device according to any one of the first to fifth aspects, further comprising: a third conductor layer provided parallel to the second conductor layer at a predetermined distance from the second conductor layer on a side opposite to the first conductor layer; and a second grounded conductor provided in the third conductor layer.
A wireless communication apparatus of the present disclosure includes: an antenna device according to any one of the first to sixth aspects; and a wireless communication circuit.
A radar apparatus of the present disclosure includes: an antenna device according to any one of the first to sixth aspects; and a radar transmitting and receiving circuit.
Antenna devices according to aspects of the present disclosure are applicable as antenna devices, wireless communication apparatuses, and radar apparatuses that operate in millimeter-wave bands.
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