1. Field of the Invention
The present invention relates generally to antennas, and more particularly to an antenna omnidirectional in a horizontal plane usable for mobile communications equipment, small-size information terminals, and other radio equipment.
2. Description of the Related Art
Monopole antennas and discone antennas are known as antennas that are omnidirectional in a horizontal plane (hereinafter also referred to as “horizontal-plane omnidirectional antennas”) formed of a conductive base plate and a radiating element.
An ideal discone antenna is infinite in size, and is not frequency-dependent. However, in a discone antenna having finite size, the upper limit of its operating wavelength is restricted to approximately four times the length h of the radiating element.
A case where the bandwidth is increased and a case where lower frequencies are covered in the horizontal-plane omnidirectional antenna formed of a conductive base plate and a radiating element as described above are shown below.
In this antenna 300, the bandwidth is increased because the meandering conductive element 322 formed on the flat base body 321 has a relatively broad belt-like form and because multiple meandering lines make it possible to achieve multiple resonance. Further, the spiral conductive element 312 formed on the skirt part 310 make it possible to achieve electrical length longer than it appears. Accordingly, the antenna 300 can be reduced in size compared with the conventional discone antenna 200 (see Japanese Laid-Open Patent Application No. 9-083238).
However, according to the first conventional antenna 300 (
On the other hand, according to the second conventional antenna 400 using the flat base plate 420 (
Accordingly, it is a general object of the present invention to provide an antenna in which the above-described disadvantages are eliminated.
A more specific object of the present invention is to provide a small-size, light-weight antenna capable of broadband transmission and reception and usable in a lower frequency band.
The above objects of the present invention are achieved by an antenna supplied with power by a coaxial line including an inner conductor, an outer conductor, and a dielectric provided between the inner conductor and the outer conductor, the antenna including: an antenna part including a first conductor and a second conductor, the second conductor including a conical shape having an apex thereof opposing the first conductor; and a transition area having an effective dielectric constant different from a dielectric constant of the dielectric in the coaxial line, the transition area being provided in an end part of the coaxial line connected to the antenna.
According to one embodiment of the present invention, by providing a transition area having an effective dielectric constant different from that of the dielectric of a coaxial line in the end part of the coaxial line connected to an antenna, it is possible to control reflection due to the mismatch of the input impedance of an antenna part and the characteristic impedance of the coaxial line. Accordingly, it is possible to make a discone antenna usable in a lower frequency band and to increase its bandwidth without complicating the structure of the discone antenna.
Other objects, features and advantages of the present invention will become more apparent from the following detailed description when read in conjunction with the accompanying drawings, in which:
A description is given, with reference to the accompanying drawings, of embodiments of the present invention.
The first antenna 10 includes a disk conductor (conductive base plate) 11 serving as a base conductor and a first conical conductor 13. A coaxial line 12 is attached to the disk conductor 11 from its lower side. The inside of the coaxial line 12 is filled with polyethylene 12a of a dielectric constant of 2.3 serving as a dielectric. A center conductor 12b of the coaxial line 12 extends upward, being isolated from the disk conductor 11, so as to be connected to the first conical conductor 13. The coaxial line 12 further includes an outer conductor 12c. The disk conductor 11 may be shaped like a flat disk.
In a connection end part A where the coaxial line 12 and the first antenna 10 are connected, the polyethylene 12a inside the coaxial line 12 is removed by a length of 3 mm in the axial directions of the coaxial line 12. The bottom surface (facing upward in
A description is given of an operation of the first antenna 10 having the above-described configuration.
In the case of the conventional discone antenna 200, the return loss is less than or equal to −10 dB in a frequency band of 15.40-24.22 GHz with a frequency bandwidth of 8.82 GHz. On the other hand, according to the first antenna 10 of this embodiment, the return loss is less than or equal to −10 dB in a frequency band of 9.66-18.80 GHz with a frequency bandwidth of 9.14 GHz. Thus, compared with the conventional discone antenna 200, the first antenna 10 of this embodiment covers low frequencies, and its bandwidth is increased.
Thus, according to the first embodiment of the present invention, it is possible to make a discone antenna usable in a lower frequency band and to increase its bandwidth without complicating the structure of the discone antenna.
The second antenna 20 includes the disk conductor 11 and the first conical conductor 13. The coaxial line 12 is attached to the disk conductor 11 from its lower side. The inside of the coaxial line 12 is filled with the polyethylene 12a of a dielectric constant of 2.3. The center conductor 12b of the coaxial line 12 extends upward, being isolated from the disk conductor 11, so as to be connected to the first conical conductor 13. The coaxial line 12 further includes the outer conductor 12c.
In the connection end part A of the coaxial line 12 and the second antenna 20, the inside of the coaxial line 12 is filled with polyethylene foam 21 of a dielectric constant of 1.5 serving as an expandable dielectric material, so that a dielectric constant transition area is formed. The transition area is 3 mm in length in the axial directions of the coaxial line 12. The bottom surface (facing upward in
A description is given of an operation of the second antenna 20 having the above-described configuration.
In the case of the conventional discone antenna 200, the return loss is less than or equal to −10 dB in a frequency band of 15.40-24.22 GHz with a frequency bandwidth of 8.82 GHz. On the other hand, according to the second antenna 20 of this embodiment, the return loss is less than or equal to −10 dB in a frequency band of 9.26-20.28 GHz with a frequency bandwidth of 11.02 GHz. Thus, compared with the conventional discone antenna 200, the second antenna 20 of this embodiment covers low frequencies, and its bandwidth is increased.
Thus, according to the second embodiment of the present invention, it is possible to make a discone antenna usable in a lower frequency band and to increase its bandwidth without complicating the structure of the discone antenna.
The third antenna 30 includes the disk conductor 11 and the first conical conductor 13. The coaxial line 12 is attached to the disk conductor 11 from its lower side. The inside of the coaxial line 12 is filled with the polyethylene 12a of a dielectric constant of 2.3. The center conductor 12b of the coaxial line 12 extends upward, being isolated from the disk conductor 11, so as to be connected to the first conical conductor 13. The coaxial line 12 further includes the outer conductor 12c.
In the connection end part A of the coaxial line 12 and the second antenna 20, the inside of the coaxial line 12 is filled with the polyethylene foam 21 including a polyethylene foam layer 21a of a dielectric constant ε1, a polyethylene foam layer 21b of a dielectric constant ε2, and a polyethylene foam layer 21c of a dielectric constant ε3, serving as a member having an effective dielectric constant, so that a dielectric constant transition area is formed. The dielectric constants ε1, ε2, and ε3 of the polyethylene foam layers 21a, 21b, and 21c are 2.0, 1.7, and 1.4, respectively. Each of the polyethylene foam layers 21a, 21b, and 21c is 1 mm in length in the axial directions of the coaxial line 12. The bottom surface (facing upward in
Each of the disk conductor 11 and the first conical conductor 13 has a structure where a copper film is formed on the exterior surface of a dielectric, so that the weight of the third antenna 30 is reduced compared with the case of forming the whole antenna 30 of copper.
A description is given of an operation of the third antenna 30 having the above-described configuration.
In the case of the conventional discone antenna 200, the return loss is less than or equal to −10 dB in a frequency band of 15.40-24.22 GHz with a frequency bandwidth of 8.82 GHz. On the other hand, according to the third antenna 30 of this embodiment, the return loss is less than or equal to −10 dB in a frequency band of 9.31-18.98 GHz with a frequency bandwidth of 9.67 GHz. Thus, compared with the conventional discone antenna 200, the third antenna 30 of this embodiment covers low frequencies, and its bandwidth is increased.
Thus, according to the third embodiment of the present invention, it is possible to make a discone antenna usable in a lower frequency band and to increase its bandwidth without complicating the structure of the discone antenna. Further, it is also possible to reduce the weight of the discone antenna.
According to the third antenna 30 of this embodiment, when the dielectric constant of the polyethylene foam 21 (the polyethylene foam layers 21a through 21c) changes along the axis of the coaxial line 12, the characteristic impedance of the coaxial line 12 changes, thus resulting in increased reflection in the transition area. Therefore, as shown in
It is possible to change the effective dielectric constant by forming the transition area of air and a dielectric member so that the ratio of volume of air to the dielectric member changes in the axial directions of the coaxial line 12. For example, the transition area may have a structure where a tapered cavity is formed in a dielectric member such as polyethylene in the axial directions of the coaxial line 12.
The fourth antenna 40 includes a disk conductor (conductive base plate) 41 and the first conical conductor 13. The coaxial line 12 is attached to the disk conductor 41 from its lower side. The coaxial line 12 has the polyethylene 12a of a dielectric constant of 2.3 filling in the space between the cylindrical outer conductor 12c and the center conductor 12b. The center conductor 12b of the coaxial line 12 extends upward, being isolated from the disk conductor 41, so as to be connected to the first conical conductor 13.
The disk conductor 41 has a structure formed by increasing the thickness of the disk conductor 11 and forming a conical recess 41a having its center at the apex of the first conical conductor 13 in the antenna 10 of the first embodiment (
The conical recess 41a is 4.5 mm in depth, and is 20.4 mm in diameter at its edge. Each of the disk conductor 41 and the first conical conductor 13 has a structure where a copper film is formed on the exterior surface of a hollow dielectric, so that the weight of the fourth antenna 40 is reduced compared with the case of forming the whole antenna 40 of copper.
A description is given of an operation of the fourth antenna 40 having the above-described configuration.
In the case of the conventional discone antenna 200, the return loss is less than or equal to −10 dB in a frequency band of 15.40-24.22 GHz with a frequency bandwidth of 8.82 GHz. On the other hand, according to the third antenna 30 of this embodiment, the return loss is less than or equal to −10 dB in a frequency band of 10.47-17.81 GHz with a frequency bandwidth of 7.34 GHz. Thus, compared with the conventional discone antenna 200, the fourth antenna 40 of this embodiment covers low frequencies.
Thus, according to the fourth embodiment of the present invention, it is possible to make low-profile the part of a radiating element projecting from a conductive base plate and to make a discone antenna usable in a lower frequency band without complicating the structure of the discone antenna. Further, it is also possible to reduce the weight of the discone antenna.
The fifth antenna 50 has the same configuration as the second antenna 20 of the second embodiment except that a second conical conductor 13a replaces the first conical conductor 13. The second conical conductor 13a has a shape where the base of a hemisphere of 6.6 mm in diameter is joined to the base of a cone. The whole radiating element is 9 mm in height.
The fifth antenna 50 of this embodiment has a reduced radiating element diameter compared with the conventional discone antenna 200 having the same height and vertex angle of the conical conductor as the fifth antenna 50. The disk conductor 11 and the second conical conductor 13a are formed using copper as a principal material.
A description is given of an operation of the fifth antenna 50 having the above-described configuration.
In the case of the conventional discone antenna 200, the return loss is less than or equal to −10 dB in a frequency band of 15.40-24.22 GHz with a frequency bandwidth of 8.82 GHz. On the other hand, according to the fifth antenna 50 of this embodiment, the return loss is less than or equal to −10 dB in a frequency band of 9.62-22.77 GHz with a frequency bandwidth of 13.15 GHz. Thus, compared with the conventional discone antenna 200, the fifth antenna 50 of this embodiment covers low frequencies, and its bandwidth is increased.
Thus, according to the fifth embodiment of the present invention, it is possible to reduce the diameter of a radiating element, and to make a discone antenna usable in a lower frequency band and increase its bandwidth without complicating the structure of the discone antenna.
The sixth antenna 60 has the same configuration as the second antenna 20 of the second embodiment except that a third conical conductor 13b replaces the first conical conductor 13. The third conical conductor 13b has a shape where the base of a cylinder of 6.6 mm in diameter and 4.5 mm in height is joined to the base of a cone. The whole radiating element is 9 mm in height.
The sixth antenna 60 of this embodiment has a reduced radiating element diameter compared with the conventional discone antenna 200 having the same height and vertex angle of the conical conductor as the sixth antenna 60. The disk conductor 11 and the third conical conductor 13b are formed using copper as a principal material.
A description is given of an operation of the sixth antenna 60 having the above-described configuration.
In the case of the conventional discone antenna 200, the return loss is less than or equal to −10 dB in a frequency band of 15.40-24.22 GHz with a frequency bandwidth of 8.82 GHz. On the other hand, according to the sixth antenna 60 of this embodiment, the return loss is less than or equal to −10 dB in a frequency band of 9.27-19.57 GHz with a frequency bandwidth of 10.30 GHz. Thus, compared with the conventional discone antenna 200, the sixth antenna 60 of this embodiment covers low frequencies, and its bandwidth is increased.
Thus, according to the sixth embodiment of the present invention, it is possible to reduce the diameter of a radiating element, and to make a discone antenna usable in a lower frequency band and increase its bandwidth without complicating the structure of the discone antenna.
The seventh antenna 70 includes the disk conductor 11 and the first conical conductor 13. The coaxial line 12 is attached to the disk conductor 11 from its lower side. The inside of the coaxial line 12 is filled with the polyethylene 12a of a dielectric constant of 2.3. The center conductor 12b of the coaxial line 12 extends upward, being isolated from the disk conductor 11, so as to be connected to the first conical conductor 13. The coaxial line 12 further includes the outer conductor 12c.
In the connection end part A of the coaxial line 12 and the seventh antenna 70, the polyethylene foam 21 of a dielectric constant of 1.2 serving as an expandable dielectric material is formed like a body of revolution in the axial directions of the coaxial line 12 inside the coaxial line 12. The joining surface of the polyethylene 12a and the polyethylene foam 21 has a shape like the side surface of a truncated cone tapered along the axis of the coaxial line 12.
Here, the truncated cone refers to a solid employing the bottom of a right circular cone as a first bottom and a section of the right circular cone parallel to the bottom as a second bottom, where a cross-sectional shape of the solid passing through the center of the bottom and perpendicular to the bottom is a trapezoid (a quadrilateral having a pair of parallel sides). The right circular cone is a cone where the straight line connecting the apex of the cone and the center of the bottom is perpendicular to the bottom. The side surface of the truncated cone refers to the curved surface of the truncated cone which surface employs the circumferences of the first bottom and the second bottom as its sides.
In this area, the ratio of volume of the polyethylene 12a to the polyethylene foam 21 changes along the axis of the coaxial line 12, thereby changing the effective dielectric constant. The bottom surface (facing upward in
A description is given of an operation of the seventh antenna 70 having the above-described configuration.
In the case of the conventional discone antenna, the lower limit of the frequencies at which the return loss is less than or equal to −10 dB is 9.66 GHz. On the other hand, according to the seventh antenna 70 of this embodiment, the lower limit of the frequencies at which the return loss is less than or equal to −10 dB is 8.62 GHz. Thus, compared with the conventional discone antenna, the seventh antenna 70 of this embodiment covers low frequencies.
Thus, according to the seventh embodiment of the present invention, it is possible to make a discone antenna usable in a lower frequency band without complicating the structure of the discone antenna. Further, it is also possible to produce the same effect by replacing the polyethylene foam 21 with air.
According to one aspect of the present invention, a discone antenna is provided that includes an antenna part including a conductive surface serving as a base plate (the disk conductor 11 of
This configuration may correspond to the first through seventh embodiments of the present invention, for example, the first antenna 10 of the first embodiment shown in
The return loss-frequency characteristic of the first antenna 10 of the first embodiment is as shown in
According to this configuration, by providing a transition area having an effective dielectric constant different from that of the dielectric of a coaxial line in the end part of the coaxial line connected to a discone antenna, it is possible to control reflection due to the mismatch of the input impedance of an antenna part and the characteristic impedance of the coaxial line. Accordingly, it is possible to make the discone antenna usable in a lower frequency band and to increase its bandwidth without complicating the structure of the discone antenna.
In addition, in the discone antenna, the dielectric in the coaxial line may be removed in the transition area.
This configuration may correspond to the first embodiment (the first antenna 10) shown in
According to this configuration, by removing the dielectric in the coaxial line in the transition area so that the transition area has the dielectric constant of air, it is possible to control reflection due to the mismatch of the input impedance of the antenna part and the characteristic impedance of the coaxial line. Accordingly, it is possible to make the discone antenna usable in a lower frequency band and to increase its bandwidth without complicating the structure of the discone antenna.
In addition, in the discone antenna, the transition area may include a member (the polyethylene 21 of
This configuration may correspond to the second through seventh embodiments, for example, the second antenna 20 of the second embodiment shown in
According to this configuration, by employing a member having the effective dielectric constant between the dielectric constant of air and the dielectric constant of the dielectric in the coaxial line, it is possible to control reflection due to the mismatch of the input impedance of the antenna part and the characteristic impedance of the coaxial line. Accordingly, it is possible to make the discone antenna usable in a lower frequency band and to increase its bandwidth without complicating the structure of the discone antenna.
In addition, in the discone antenna, the effective dielectric constant of the member having the effective dielectric constant between the dielectric constant of air and the dielectric constant of the dielectric in the coaxial line may change in the axial direction of the coaxial line.
This configuration may correspond to the third, fourth, and seventh embodiments, for example, the third antenna 30 of the third embodiment shown in
The return loss-frequency characteristic of the third antenna 20 is as shown in
According to this configuration, by causing the effective dielectric constant of the member having the effective dielectric constant between the dielectric constant of air and the dielectric constant of the dielectric in the coaxial line to change in the axial direction of the coaxial line (for example, the dielectric constant changes from ε1=2.0 to ε2=1.7 and to ε3=1.4 as shown in
In addition, in the discone antenna, the conductive surface (the disk conductor 41 of
This configuration may correspond to the fourth embodiment.
The return loss-frequency characteristic of the fourth antenna 40 of the fourth embodiment is as shown in
According to this configuration, it is possible to make low-profile the part of a radiating element projecting from the conductive surface. Accordingly, it is possible to make the discone antenna usable in a lower frequency band without complicating the structure of the discone antenna.
In addition, in the discone antenna, the conical conductor may have a shape where the base of a hemisphere is joined to the base of a cone (the second conical conductor 13a of
This configuration may correspond to the fifth embodiment.
The return loss-frequency characteristic of the fifth antenna 50 of the fifth embodiment is as shown in
According to this configuration, since the conical conductor has a shape where the base of a hemisphere is joined to the base of a cone, it is possible to reduce a radiating element diameter, and to make the discone antenna usable in a lower frequency band and increase its bandwidth without complicating the structure of the discone antenna.
In addition, in the discone antenna, the conical conductor may have a shape where the base of a cylinder is joined to the base of a cone (the third conical conductor 13b of
This configuration may correspond to the sixth embodiment.
The return loss-frequency characteristic of the sixth antenna 60 of the sixth embodiment is as shown in
According to this configuration, since the conical conductor has a shape where the base of a cylinder is joined to the base of a cone, it is possible to reduce a radiating element diameter, and to make the discone antenna usable in a lower frequency band and increase its bandwidth without complicating the structure of the discone antenna.
In addition, in the discone antenna, the member having the effective dielectric constant between the dielectric constant of air and the dielectric constant of the dielectric in the coaxial line may include an expandable dielectric material (the polyethylene foam 21 of, for example,
This configuration may correspond to the second through seventh embodiments, for example, the second antenna 20 of the second embodiment shown in
According to this configuration, by employing an expandable dielectric material for the member forming the transition area, it is possible to obtain a dielectric material of a desired dielectric constant.
In addition, in the discone antenna, at least one of the conductive surface (the disk conductor 11 of
This configuration may correspond to the third embodiment (the third antenna 30 shown in
According to this configuration, since the conductive surface or the conical conductor has a structure where a film of conductive metal is formed on the exterior surface of a dielectric, it is possible to reduce the weight of the discone antenna.
In addition, in the discone antenna, the film of conductive metal (for example, a copper film) may be formed on the exterior surface of a hollow dielectric.
This configuration may correspond to the fourth embodiment (the fourth antenna 40 shown in
According to this configuration, since the film of conductive metal is formed on the exterior surface of a hollow dielectric, it is possible to further reduce the weight of the discone antenna.
In addition, in the discone antenna, the transition area may include multiple dielectrics having different dielectric constants, and the ratio of volume of the multiple dielectrics may change in the axial direction of the axial line so that the effective dielectric constant changes.
This configuration may correspond to the seventh embodiment (the seventh antenna 70 shown in
According to this configuration, the transition area includes multiple dielectrics having different dielectric constants, and the ratio of volume of the multiple dielectrics changes in the axial direction of the axial line so that the effective dielectric constant changes. Accordingly, it is possible to control reflection due to the mismatch of the input impedance of the antenna part and the characteristic impedance of the coaxial line. Accordingly, it is possible to make the discone antenna usable in a lower frequency band and to increase its bandwidth without complicating the structure of the discone antenna.
In addition, in the discone antenna, one of the multiple dielectrics forming the transition area may be air.
This configuration may correspond to the seventh embodiment where the polyethylene foam 21 is replaced by air in the seventh antenna 70 shown in
According to this configuration, since the ratio of volume of multiple dielectrics changes in the axial directions of the coaxial line, it is possible to change the effective dielectric constant with ease.
In addition, in the discone antenna, each of the multiple dielectrics may be formed like a body of revolution in the axial direction of the coaxial line so that the joining surface of the multiple dielectrics has a conically tapered shape.
This configuration may correspond to the seventh embodiment.
According to this configuration, the transition area includes multiple dielectrics having different dielectric constants, and the ratio of volume of the multiple dielectrics changes in the axial direction of the axial line so that the effective dielectric constant changes. Accordingly, it is possible to control reflection due to the mismatch of the input impedance of the antenna part and the characteristic impedance of the coaxial line. Accordingly, it is possible to make the discone antenna usable in a lower frequency band and to increase its bandwidth without complicating the structure of the discone antenna.
In addition, in the discone antenna, the diameter of one of the inner conductor and the outer conductor of the coaxial line may change with a change in the effective dielectric constant in the transition area so that the characteristic impedance of the axial line is substantially constant.
This configuration may correspond to the seventh embodiment.
According to this configuration, the characteristic impedance of the coaxial line is kept substantially constant. Accordingly, it is possible to control reflection in the transition area.
The present invention is not limited to the specifically disclosed embodiments, and variations and modifications may be made without departing from the scope of the present invention.
The present application is based on Japanese Priority Patent Application No. 2005-042743, filed on Feb. 18, 2005, the entire contents of which are hereby incorporated by reference.
Number | Date | Country | Kind |
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2005-042743 | Feb 2005 | JP | national |