The present invention relates to an antenna apparatus and a communications terminal apparatus. The present application claims priority to Japanese Patent Application No. 2019-058999, filed Mar. 26, 2019, the contents of which are incorporated herein by reference in its entirety.
Recent years have seen an increase in demand of millimeter-wave antenna modules to be used for wireless communications systems such as a cellular phone. Required accordingly is dissipation of heat produced by integrated circuits (ICs) provided to the millimeter-wave antenna modules.
Japanese Unexamined Patent Application Publication No. 2016-109347 discloses, for example, an array module including: a first module provided to a lower portion of the array module; and a second module provided to another lower portion of the array module. The lower portion acts as a reservoir of an operation liquid for a first heat pipe, and the other lower portion acts as a reservoir of an operation liquid for a second flat heat pipe.
Moreover, Japanese Unexamined Patent Application Publication No. 2011-211424 discloses a millimeter-wave transmission and reception apparatus which dissipates heat of a millimeter-wave communications IC, using a heat sink, and utilizes a part of the heat sink as an antenna. Hence, the apparatus achieves both expansion of a communication area for millimeter waves and dissipation of heat from the millimeter-wave communications IC.
In addition, Japanese Unexamined Patent Application Publication No. 2017-046121 discloses a small antenna apparatus including an, antenna and a heat dissipator.
However, none of the antenna apparatuses disclosed in Japanese Unexamined Patent Application Publication Nos. 2016-109347, 2011-211424, and 2017-046121 are designed to curb deterioration of antenna performance such as a decrease in gain due to unnecessary radiation. An aspect of the present invention intends to provide an antenna apparatus to achieve both facilitation of heat dissipation and curb in deterioration of antenna performance.
In order to solve the above problem, an antenna apparatus according to an aspect of the present invention includes:
an antenna substrate including a heat source provided to at least one face of the antenna substrate; and
a heat dissipator configured to dissipate heat produced in the heat source, wherein
the heat dissipator includes a contact face contacting with at least a portion of the heat source,
an area of a cross section parallel to the antenna substrate of the heat dissipator at a distance less than a predetermined distance in a normal direction of the contact face from the contact face is equal to or less than an area of the contact face, and
an area of a cross section parallel to the antenna substrate of the heat dissipator at a distance equal to or more than the predetermined distance from the contact face is larger than the area of the contact face.
An aspect of the present invention can provide an antenna apparatus to achieve both facilitation of heat dissipation and curb in deterioration of antenna performance.
With reference to
As illustrated in
The antenna apparatus 1 includes an antenna substrate 2 and a heat dissipator 3. The antenna substrate 2 is provided on an upper face of the heat dissipator 3. An example of the antenna apparatus 1 can include, but not limited to, an antenna apparatus provided to such communications terminal apparatuses as a cellular phone terminal, a handheld terminal, a smartphone, a tablet terminal, and a mobile PC terminal.
The antenna substrate 2 includes an antenna unit 21 and a heat source 22. The antenna unit 21 includes a plurality of antennae (radiation elements). The radiation elements are not particularly limited in terms of, for example, types and shapes, and known radiation elements can be appropriately used. Moreover, the antenna unit 21 may also include a power supplier supplying power to the radiation elements. The heat source 22 is provided to at least one face of the antenna substrate 2. In
The heat dissipator 3 dissipates heat produced in the heat source 22. In
Moreover, an area of cross section parallel to the antenna substrate 2 of the heat dissipator 3 at a distance less than a predetermined distance in a normal direction of a contact face between the antenna substrate 2 (the heat source 22) and the heat dissipator 3 from the contact face is equal to or less than an area of the contact face.
In this Specification, the direction of the normal from the contact face is a downward direction in the Z-axis in the illustration (a) in
As illustrated in
An area of a cross section of the heat dissipator component 31 in
Moreover, an area of a cross section parallel to the antenna substrate 2 of the heat dissipator 3 at a distance equal to or more than the predetermined distance in the normal direction of the contact face from the contact face to the antenna substrate 2 (the heat source 22) is larger than the area of the contact face.
An area of a cross section of the heat dissipater component 32 in
The heat dissipator 3 can dissipate the heat produced in the heat source 22. Furthermore, the heat dissipator 3 is formed in stages (the heat dissipater component 31 in the upper stage and the heat dissipator component 32 in the lower stage), and the cross-sectional area of the heat dissipator component 31 is a predetermined area. Such features make it possible to curb deterioration of antenna performance such as a decrease in gain due to unnecessary radiation. In particular, when the heat dissipator 3 is larger than the antenna substrate 2, the above features make it possible to reduce a decrease in gain due to unnecessary radiation caused by generation of a current running from a face of a grand (GND) of the antenna substrate 2.
In addition, a wireless communications terminal provided with the antenna apparatus 1 facilitates heat dissipation and curbs deterioration of antenna performance such as a decrease in gain due to unnecessary radiation.
Described next is the antenna apparatus 1 according to a second embodiment of the present invention with reference to
The second embodiment is different from the first embodiment in that the heat dissipator component 32 has an upper face provided with a heat dissipator component 33 separately from the heat dissipator component 31 making contact with the antenna substrate 2. With the heat dissipator component 33 provided, the upper face of the heat dissipator 3 is provided with a slit 4 along an edge of the contact face between the antenna substrate 2 and the heat dissipator 3. That is, as shown in the illustration (a) in
The slit 4 has a width (Y3 the illustration (b) of
Described next is the antenna apparatus 1 according to a third embodiment of the present invention with reference to
The third embodiment is different from the second embodiment in that the slit 4 in the illustration (a) of
Described next is the antenna apparatus 1 according to a fourth embodiment of the present invention with reference to
The fourth embodiment is different from the third embodiment in that, as shown in the illustration (b) of
An antenna apparatus according to an aspect of the present invention includes: an antenna substrate including a heat source provided to at least one face of the antenna substrate; and a heat dissipator configured to dissipate heat produced in the heat source. The heat dissipator includes a contact face contacting with at least a portion of the heat source. An area of a cross section parallel to the antenna substrate of the heat dissipator at a distance less than a predetermined distance in a normal direction of the contact face from the contact face is equal to or less than an area of the contact face, and an area of a cross section parallel to the antenna substrate of the heat dissipator at a distance equal to or more than the predetermined distance from the contact face is larger than the area of the contact face.
The above features make it possible to facilitate heat dissipation and curb deterioration of antenna performance such as a decrease in gain due to unnecessary radiation.
In the antenna apparatus of a second aspect according to the first aspect, the heat dissipator may include an upper face provided with a slit along an edge of the contact face.
In the above feature, the slit increases the surface area of the dissipator, making it possible to facilitate heat dissipation and curb deterioration of antenna performance such as a decrease in gain due to unnecessary radiation.
In the antenna apparatus of a third aspect according to the first aspect, the contact face is rectangular, and the heat dissipator includes an upper face provided with a slit along at least two of four sides of the contact face.
Such a feature makes it possible to further reduce an amount of a current running through the heat dissipator and curb deterioration of antenna performance such as a decrease in gain due to unnecessary radiation.
A communications terminal apparatus of a fourth aspect of the present invention includes the antenna apparatus of any one of the first to third aspects.
The above feature makes it possible to facilitate heat dissipation of the communications terminal apparatus, contributing to curb in deterioration of antenna performance such as a decrease in gain due to unnecessary radiation.
The present invention shall not be limited to the embodiments described above, and can be modified in various manners within the scope of claims. The technical aspects disclosed in different embodiments are to be appropriately combined together to implement an embodiment. Such an embodiment shall be included within the technical scope of the present invention. Moreover, the technical aspects disclosed in each embodiment are combined to achieve a new technical feature.
A heat dissipation block (the heat dissipator 3) was prepared. The heat dissipation block had a shape shown in the illustration (a) in
A heat dissipation block (the heat dissipator 3) was prepared. The heat dissipation block had a shape shown in the illustration (a) in
A heat dissipation block (a heat dissipator 103) was prepared. The heat dissipation block had a shape shown in the illustration (a) in
Gains were measured of the antenna apparatuses in Production Examples 1 and 3, and of an antenna substrate without a heat dissipation block (a heat dissipator).
FRONT GAIN of the vertical axis in
As illustrated in
In a similar manner to Evaluation Example 1, measured were gains of the antenna apparatuses in Production Examples 1 to 3, and of an antenna substrate without a heat dissipation block (a heat dissipator).
As illustrated in
Current distributions mere measured when the antenna apparatuses in Production Examples 2 and 3 transmitted and received a radio wave of 28 GHz.
As illustrated in
Next, effects were studied on the curb in gain reduction observed in changing the depth (Z1 of the illustration (b) in
As shown in
Next, effects were studied on the curb in gain reduction observed in changing the width (Y3 of the illustration (b) in
As shown in
The antenna apparatus in Production Example 1 whose heat dissipation block (the heat dissipator) was formed in stages was able to curb gain reduction caused by unnecessary radiation. Furthermore, the antenna apparatus provided with the slit in Production Example 2 was able to curb gain reduction caused by unnecessary radiation, and facilitate heat dissipation. In Evaluation Examples, the front (the X-Y planer direction) gains were measured. It is also interpreted that deterioration in gain in other directions is also curbed.
Number | Date | Country | Kind |
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JP2019-058999 | Mar 2019 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
20180206324 | Hayakawa | Jul 2018 | A1 |
20180219277 | Hirata et al. | Aug 2018 | A1 |
20200395650 | Onaka | Dec 2020 | A1 |
Number | Date | Country |
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2011-211424 | Oct 2011 | JP |
2016-109347 | Jun 2016 | JP |
2017-046121 | Mar 2017 | JP |
Number | Date | Country | |
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20200313272 A1 | Oct 2020 | US |