1. Field of the Invention
The present invention relates to a chip antenna.
2. Description of the Related Art
Conventionally, an antenna for wireless communication provided in an electronic device is known. This electronic device is a portable device such as a cellular phone, and it has been desired to reduce the antenna in size.
As an antenna for realizing miniaturization, a dielectric antenna is known. The dielectric antenna includes an antenna electrode (antenna element) and a dielectric provided around the antenna electrode. A length of the antenna may be shortened by a wavelength shortening effect of radio wave generated by a relative dielectric constant of the dielectric, and the dielectric antenna can be reduced in size.
As a configuration of the dielectric antenna for realizing the miniaturization, there is a known antenna in which a pattern of an antenna electrode is formed sterically or multilayered (multilayered meander, helical and the like) (see Japanese Patent Application Laid-open Publication No. 11-297532, for example).
As another configuration of the dielectric antenna for realizing the miniaturization, there is a known antenna having a spiral antenna electrode (see PCT Publication No. 01/006596, for example).
However, in the case of the conventional dielectric antenna in which an antenna electrode is formed sterically or as multilayered, a high dimensional precision and a high producing technique of the antenna electrode are required.
In the case of the conventional spiral dielectric antenna, since the antenna electrode is provided on the same plane surface, productivity of the antenna is preferable. However, a tip end of the spiral antenna electrode is used as a power feeding point. Therefore, impedance match and the antenna efficiency (radiation efficiency) are largely deteriorated.
It is an object of the present invention to reduce an antenna in size, and to enhance the impedance match and the antenna efficiency.
According to an aspect of the present invention, there is provided a chip antenna comprising:
a base portion including a dielectric, a magnetic substance or a magnetic dielectric;
a spiral antenna electrode which is opposed to a ground portion and which is provided inside the base portion; and
a power feeding connecting terminal to feed power to the antenna electrode, wherein
a first side portion including an outermost peripheral end of the antenna electrode, or a second side portion connected to the first side portion including the outermost peripheral end, is disposed at a position closest to the ground portion at a predetermined distance away from the ground portion, and
the power feeding connecting terminal is connected to a side portion extending in a direction substantially perpendicular to the ground portion.
The above and other objects, advantages and features of the present invention will become more fully understood from the detailed description given hereinbelow and the appended drawings and tables which are given byway of illustration only, and thus are not intended as a definition of the limits of the present invention, and wherein:
Table 1 shows the antenna efficiency of the chip antenna when the power feeding connecting position is changed from the position P1 to the position P7;
Table 2 shows the antenna efficiencies of the chip antennas 10A, 10B, 10C and 10D, and that of the chip antenna 10;
Table 3 shows the antenna efficiencies of the chip antenna 10 when the height is changed from the height H1 to the height H7; and
Table 4 shows the antenna efficiencies of the chip antennas 10 and 10F when the distances d are changed.
An embodiment as well as first, second and third modifications of the present invention will be described in detail in this order with reference to the accompanying drawings. The scope of the invention is not limited to the illustrated examples.
The embodiment of the invention will be described with reference to
The chip antenna 10 of the embodiment will be described as a wireless antenna which is for GPS (Global Positioning System) communication and which has resonance frequency of 1.575 [GHz], however, the invention is not limited to this, and the chip antenna 10 may be a wireless antenna having a different communication standard or different resonance frequency.
As shown in
The substrate 20 includes a substrate portion 21, a power feeding path portion 22, matching circuits 23a and 23b and a ground portion 24. The substrate portion 21 is an insulative circuit substrate body. The power feeding path portion 22 is provided on the substrate portion 21, and is a power feeding path extending from the chip antenna 10 to a module (not shown) which feeds power to the chip antenna 10. The power feeding path portion 22 is a conductor made of a copper foil, for example.
The matching circuit 23a is provided in the power feeding path portion 22 in series, and is a circuit portion for matching impedance of the chip antenna 10. The matching circuit 23b is provided in the power feeding path portion 22 in parallel, and is a circuit portion for matching impedance of the chip antenna 10. The matching circuits 23a and 23b are formed from inductors for example.
Resonance frequency of the chip antenna 10 is adjusted to a value higher than frequency (1.575 [GHz]) used for communication. The matching circuits 23a and 23b shift the resonance frequency of the chip antenna 10 to frequency used for the communication. The ground portion 24 is provided on the substrate portion 21, and is a grounded conductor such as copper foil.
As shown in
The base portion 12 is formed from a rectangular parallelepiped dielectric. The antenna electrode 11, the power feeding connecting terminal 13 and the installation terminal 14 are provided inside the base portion 12. A relative dielectric constant of the base portion 12 is in a range of 8 to 15 for example. The base portion 12 is made of resin such as LCP (Liquid Crystal Polymer) in which ceramic is mixed.
Since the antenna electrode 11 has the spiral shape, miniaturization effect by the permittivity of the base portion 12 is enhanced and therefore, the antenna can be reduced in size even if the permittivity of the base portion 12 is low and capacitance between the chip antenna 10 (antenna electrode 11) and the ground portion 24 is reduced. That is, the radiation efficiency (antenna efficiency) of the chip antenna 10 is less prone to be deteriorated even when space is saved.
The power feeding connecting terminal 13 is a conductor which is electrically connected to the antenna electrode 11 and the power feeding path portion 22, and supports the antenna electrode 11 on the substrate portion 21. The power feeding connecting terminal 13 is connected to a central position of a side portion S2 of the antenna electrode 11. The side portion S2 is connected to the straight side portion S1 including the outermost peripheral end of the antenna electrode 11. The side portion S2 is straight and extends in a direction perpendicular (substantially perpendicular) to the upper side of the ground portion 24. A connection point between the power feeding connecting terminal 13 and the antenna electrode 11 is referred to as a power feeding connecting position.
The installation terminal 14 is a conductor which is electrically connected to the antenna electrode 11, and supports the antenna electrode 11 on the substrate portion 21. The installation terminal 14 is connected to a side portion which is opposite from the side portion S2 of the antenna electrode 11. A distance between the upper side of the ground portion 24 and a surface of the base portion 12 on the side of the ground portion 24 is 0.3 [mm].
Next, a relation between the antenna characteristic and the power feeding connecting position of the chip antenna 10 will be described with reference to
As shown in
The antenna efficiency of the chip antenna when the power feeding connecting position is changed from the position P1 to the position P7 is as shown in the attached Table 1. This antenna efficiency is obtained when the frequency is 1.575 [GHz].
According to Table 1, the antenna efficiency improves as the power feeding connecting position is separated from the position P1 as the spiral end. However, the return loss with respect to frequency becomes narrow-band if the power feeding connecting position approaches the position P6 as shown in
Next, a relation between the antenna shape and the power feeding connecting position will be described with reference to
The length of the chip antenna 10 (base portion 12) in a direction parallel to the upper side of the ground portion 24 is defined as L1, and the length thereof in a direction perpendicular to the upper side of the ground portion 24 is defined as L2. The chip antenna 10 of the embodiment has a relation of L1>L2. A first side portion (lower side in the drawing) from the outermost peripheral end of the antenna electrode 11 is defined as a side portion S1, a second side portion (right side in the drawing) is defined as a side portion S2, and a third side portion (upper side in the drawing) is defined as a side portion S3.
Here, lengths L1 and L2 of a chip antenna were changed to L1=L2, and a simulation of the antenna efficiency and a return loss with respect to frequency was also performed for this chip antenna. As a result, when the power feeding connecting position was located at the side portion S2, the antenna efficiency and the impedance match became preferable. Similarly, when the power feeding connecting position was located on the side portions S1 and S3, the antenna efficiency and the impedance match were deteriorated.
Lengths L1 and L2 of a chip antenna were changed to L1<L2, and a simulation of the antenna efficiency and a return loss with respect to frequency was further performed for this chip antenna. As a result, when the power feeding connecting position was located on the side portion S2, the antenna efficiency and the impedance match became slightly preferable, and when the power feeding connecting position was located on a midpoint of the side portion S2, the same effect as that in the case of the chip antenna when L1≧L2 was obtained. In the chip antenna of L1<L2, when the power feeding connecting position was located on the side portion S1 or S3, the antenna efficiency and the impedance match were deteriorated.
Therefore, not only when the lengths L1 and L2 of the chip antenna were changed, but also when the power feeding connecting position was located on the side portion S2, the preferable antenna efficiency and impedance match were obtained as a result.
Next, a relation between the spiral shape of the chip antenna and the antenna characteristic will be described with reference to
Here, the chip antenna 10, and the chip antennas 10A, 10B, 10C and 10D of spiral antenna electrodes which are different from the antenna electrode 11 of the chip antenna 10 are compared with each other. Each of the chip antennas 10A, 10B, 10C and 10D includes the base portion 12 and the power feeding connecting terminal 13 (installation terminal 14) in the same manner as in the chip antenna 10. In
As shown in
As shown in
As shown in
A simulation of the antenna efficiency and a return loss with respect to frequency was performed for each of the chip antennas 10A, 10B, 10C and 10D, and the chip antenna 10. The antenna efficiencies of the chip antennas 10A, 10B, 10C and 10D, and that of the chip antenna 10 are as shown in the attached Table 2. This antenna efficiency is obtained when the frequency is 1.575 [GHz].
According to Table 2, the antenna efficiency is preferable in the chip antennas 10B, 10D and 10. On the other hand, as shown in
Next, a relation between antenna characteristic and a height of the antenna electrode 11 in the base portion 12 of the chip antenna 10 will be described with reference to
As shown in
Antenna efficiencies of the chip antenna 10 when the height is changed from the height H1 to the height H7 is as shown in the attached Table 3. This antenna efficiency is obtained when the frequency is 1.575 [GHz].
According to Table 3, the antenna efficiency is poor when the height of the antenna electrode 11 is low, however, the higher the antenna electrode 11 is, the more preferable the antenna efficiency becomes. That is, at the height H7, the antenna efficiency of the chip antenna 10 is most preferable. However, the return loss with respect to frequency is preferable at the heights H2, H3, H4 and H5 as shown in
Next, a relation between antenna characteristic and a height of the antenna electrode 11 in a chip antenna 10E which is higher than the chip antenna 10 will be described with reference to
As shown in
As shown in
Next, a relation between antenna characteristic and a distance between the antenna electrode and the ground portion will be described with reference to
As shown in
A simulation of the antenna efficiency and a return loss with respect to frequency when the distances d in the chip antennas 10 and 10F were changed to 1.0, 3.0 and 5.0 [mm] was performed.
Antenna efficiencies of the chip antennas 10 and 10F when the distances d are changed are shown in the attached Table 4. This antenna efficiency is obtained when the frequency is 1.575 [GHz].
According to Table 4, the antenna efficiency of the chip antenna 10 is more preferable than that of the chip antenna 10F. As shown in
According to the embodiment, the chip antenna 10 includes the base portion 12, the spiral antenna electrode 11 which is opposed to the ground portion 24 and provided in the base portion 12, and the power feeding connecting terminal 13 for feeding power to the antenna electrode 11. The side portion S1 including the outermost peripheral end of the antenna electrode 11 is disposed at the position closest to the ground portion 24 at the predetermined distance away from the ground portion 24. The power feeding connecting terminal 13 is connected to the second side portion S2 from the outermost peripheral end of the antenna electrode 11. Therefore, the base portion 12 and the spiral shape of the antenna electrode 11 can reduce the chip antenna 10 in size, and since the antenna electrode 11 has the spiral shape on the same plane, the productivity can be enhanced. Since the power feeding connecting terminal 13 is connected to the side portion S2, the impedance match and the antenna efficiency can be enhanced.
By providing the antenna electrode 11 in the base portion 12, effect of miniaturization of permittivity can be effectively obtained, and desired antenna characteristic can be obtained even if the permittivity is not excessively increased. As a result, it is possible to suppress the deterioration in radiation efficiency (antenna efficiency) caused by increase in capacitance.
The resonance frequency of the chip antenna 10 is adjusted to frequency higher than frequency used for communication, and the matching circuits 23a and 23b shift the resonance frequency of the chip antenna 10 to the frequency used for the communication. As a result, the chip antenna 10 can further be reduced in size.
The chip antenna 10C includes the antenna electrode 11C, the base portion 12 and the power feeding connecting terminal 13. The chip antenna 10D includes the antenna electrode 11D, the base portion 12 and the power feeding connecting terminal 13. The second side portion connected to the first side portion including the outermost peripheral end of the antenna electrode 11C or 11D is disposed at the position closest to the ground portion 24 at the predetermined distance away from the ground portion 24. The power feeding connecting terminal 13 is connected to the side portion extending in a direction perpendicular (substantially perpendicular) to the ground portion 24 of the outermost periphery of the antenna electrode 11C or 11D. Therefore, according to the chip antenna 10C or 10D, in the same manner as in the case of the chip antenna 10, the chip antenna 10 can be reduced in size by the base portion 12 and the spiral shape of the antenna electrode 11C or 11D. Since the antenna electrode 11C or 11D has the spiral shape on the same plane, the productivity can be enhanced. Since the power feeding connecting terminal 13 is connected to the side portion extending in the direction perpendicular (substantially perpendicular) to the ground portion 24, the impedance match and the antenna efficiency can be enhanced.
A first modification will be described with reference to
In the chip antenna 10 of the aforementioned embodiment, the upper surface and the lower surface of the antenna electrode 11 are covered with the base portion 12. In the first modification, the chip antenna 10 is replaced by the chip antenna 10a. The chip antenna 10a has a portion which is not covered with the upper surface and the lower surface of the antenna electrode 11.
As shown in
According to the first modification, the same effect as that of the chip antenna 10 can be obtained by the chip antenna 10a, the material of the base portion 12a can be reduced by the holes 121, 122, 123 and 124, and the chip antenna 10a can be reduced in weight.
A second modification of the aforementioned embodiment will be described with reference to
In the chip antenna 10 of the aforementioned embodiment, the base portion 12 is formed by a single member (one layer). In the second modification, the chip antenna 10 is replaced by the chip antenna 10b. In the chip antenna 10b, the base portion is divided into two layers from the antenna electrode 11. Incidentally, the base portion may also include three or more layers.
As shown in
According to the second modification, the same effect as that of the chip antenna 10 can be obtained by the chip antenna 10b. In addition, thicknesses (length in a direction perpendicular to the substrate portion 21) of the base portions 12b1 and 12b2 may be different from each other.
A third modification will be described with reference to
In the chip antenna 10 of the aforementioned embodiment, the upper surface and the lower surface of the antenna electrode 11 are covered with the base portion 12. In the third modification, the chip antenna 10 and the ground portion 24 are replaced by the chip antenna 10b and a ground portion 24c. In the chip antenna 10C, the antenna electrode 11 is mounted on the substrate portion 21.
As shown in
According to the third modification, the same effect as that of the chip antenna 10 can be obtained by the chip antenna 10C, the substrate portion 21 can effectively be utilized, and the chip antenna can easily be produced.
The description of the embodiment and the modifications is one example of the chip antenna of the present invention, and the invention is not limited to the embodiment and the modifications.
At least two of the embodiment and the modifications may appropriately be combined. Configurations of the modifications may be combined in the chip antenna 10C or 10D. Although the chip antenna includes the installation terminal 14 in the embodiment, the invention is not limited to this, and the chip antenna need not include the installation terminal 14.
Although the base portion is the dielectric in the embodiment and the modifications, the invention is not limited to this. The base portion may be a magnetic substance or a magnetic dielectric. Also when the base portion is the magnetic substance or the magnetic dielectric, the wavelength shortening effect is generated by the relative susceptibility of the magnetic substance, or the relative dielectric constant and the relative susceptibility of the magnetic dielectric, and the chip antenna can be reduced in size.
The detailed configurations and detailed operations of the chip antennas of the embodiment and the modifications can appropriately be changed within a range not departing from the subject matter of the invention.
According to an aspect of the preferred embodiments of the present invention, there is provided a chip antenna comprising:
a base portion including a dielectric, a magnetic substance or a magnetic dielectric;
a spiral antenna electrode which is opposed to a ground portion and which is provided inside the base portion; and
a power feeding connecting terminal to feed power to the antenna electrode, wherein
a first side portion including an outermost peripheral end of the antenna electrode, or a second side portion connected to the first side portion including the outermost peripheral end, is disposed at a position closest to the ground portion at a predetermined distance away from the ground portion, and
the power feeding connecting terminal is connected to a side portion extending in a direction substantially perpendicular to the ground portion.
Preferably, the first side portion is disposed at a position on a side where the ground portion is located.
Preferably, resonance frequency of the base portion, the antenna electrode and the power feeding connecting terminal is adjusted to a value higher than frequency used for communication, and
the resonance frequency is shifted by a matching circuit to the frequency used for the communication.
Preferably, the base portion includes a hole through which a portion of the antenna electrode is exposed.
Preferably, the base portion comprises a plurality of layers.
Preferably, the antenna electrode is provided on a substrate portion, and is covered with the base portion.
According to the embodiments of the present invention, it is possible to reduce the antenna in size, and to enhance the impedance match and the antenna efficiency.
The entire disclosure of Japanese Patent Application No. 2009-289960 filed on Dec. 22, 2009 including description, claims, drawings, and abstract are incorporated herein by reference in its entirety.
Although various exemplary embodiments have been shown and described, the invention is not limited to the embodiments shown. Therefore, the scope of the invention is intended to be limited solely by the scope of the claims that follow.
Number | Date | Country | Kind |
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2009-289960 | Dec 2009 | JP | national |