In the following, preferred embodiments of the present invention are described with reference to the accompanying drawings.
An antenna apparatus 100 according to the present embodiment is a UWB antenna that includes an element member 111, a ground member 112, and a connection part 113.
The element member 111 may be created by punching out a pentagon shape with side dimensions of several centimeters from a metal coil strip made of phosphor bronze, for example. In the present embodiment, an element terminal 121 of the connection part 113 is integrally formed with the element member 11 by punching out an extended portion extending from the tip of the element member 111. The ground member 112 may be created by punching out a rectangular shape with side dimensions of several centimeters from a metal coil strip made of phosphor bronze, for example. In the present embodiment, two sides of the pentagon-shaped element member 111 that meet at a feed point of the element member 111 are each arranged to form a predetermined angle θ with the side of the rectangular ground member 112 opposing the feed point.
The connection part 113 may be a socket connector that includes the element terminal 121, a ground terminal 131, and a resin part 141.
The element terminal 121 that is punched out with the element member 111 extends in the direction of arrow X1 from the feed point of the element member 111. In a subsequent process step, the punched element terminal 121 is slightly bent in the direction of arrow Z1 after which it is bent again to extend in the direction of arrow X1. The ground terminal 131 is integrally formed with the ground member 112 by punching out arm portions that extend in the direction of arrow X2 from the side of the ground member 112 opposing the feed point of the element member 111 in a manner such that the feed point is positioned between the arm portions of the terminal 131 with respect to directions Y1-Y2. In a subsequent process step, the arm portions of the ground terminal 131 are bent in the direction of arrow Z1 and then bent again in the direction of arrow X2.
The connection part 113 is configured to be connected to a plug connector 101. The plug connector 101 is connected to one end of a cable 102. By connecting the connection part 113 to the plug connector 101 that is connected to the cable 102, the antenna apparatus 100 may be connected to an external circuit via the connection part 113, the plug connector 101, and the cable 102. It is noted that the cable 102 may be a coaxial cable, for example.
The resin part 141 of the connection part 113 fixes the element member 111 and the ground member 112 at predetermined positions. In this way, a case and a sealer for fixing the element member 111 and the ground member 112 at predetermined positions may be unnecessary, for example.
It is noted that the gaps formed between the element terminal 121 and the ground terminal 131 may be adjusted such that an impedance of 50Ω may be achieved, for example.
In the following, a method for fabricating the antenna apparatus 100 is described.
In step S1-1 of
At this stage, the element member 111 and the ground member 112 are connected to a frame 152 by bridges 151. In this way, the element member 111 and the ground member 112 may be held in place to maintain a predetermined positional relationship with each other.
Then, in step S1-3, plating is applied to the overall structure. It is noted that the plating may be applied in order to prevent rusting, for example.
Then, in step S1-4, insert molding is performed by inserting resin material around the element terminal 121 and the ground terminal 131 to create the connection part 113. It is noted that the connection part 113 is molded into the shape of a socket connector that can engage the plug connector 101.
Then, in step S1-5, the element member 111 and the ground member 112 are broken away from the frame 152 by cutting the bridges 151.
The plug connector 101 includes a signal terminal member 161, a ground terminal member 162, and a resin part 163. It is noted that a signal wire 171 is soldered to the signal terminal member 161. Also, a shield 172 of the cable 102 is soldered to the ground terminal member 162.
The signal terminal member 161 and the ground terminal member 162 are fixed at predetermined positioned by the resin part 163 so that they may come into contact with the element terminal 121 and the ground terminal 131 of the connection part 113 of the antenna apparatus 100. Also, the resin part 163 is shaped so that it can engage the resin part 141 of the connection part 113.
According to the present embodiment, the element terminal 121 that is integrally formed with the element member 111 and the ground terminal 131 that is integrally formed with the ground member 112 are bent into desired shapes after which resin material is inserted and molded into the shape of a connector through insert molding to create the connection part 113. In this way, a connector may be integrally formed with the element member 111 and the ground member 112 so that a connector as a separate component does not have to be individually mounted. Also, the resin material shaping the connection part 113 fixes the element member 111 and the ground member 112 so that they may maintain a predetermined positional relationship with each other.
An antenna apparatus 200 according to the present embodiment has a connection part 211 that is different from that of the first embodiment. Specifically, the connection part 211 of the present embodiment includes an element terminal 221, a ground terminal 222, and a resin part 223. The element terminal 221 is integrally punched out with the element member 111 to extend in the direction of arrow X1 from the feed point of the element member 111. In a subsequent process step, the element terminal 221 is bent to extend in the direction of arrow Z1.
The ground terminal 222 is integrally punched out with the ground member 112 as arm portions extending in the direction of arrow X2 from the side of the ground member 112 opposing the element member 111, the feed point being positioned between the arm portions of the ground terminal 222 with respect to directions Y1-Y2. The punched arm portions of the ground terminal 222 are arranged to have L-shaped structures that extend in the X2 direction for a predetermined distance to then extend in the direction of arrow Y1 or Y2. In a subsequent process step, the sections of the ground terminal 222 extending in the direction Y1 or Y2 are bent to extend in the direction or arrow Z1.
The resin part 223 is arranged around the element terminal 221 and the ground terminal 222 and may be shaped through insert molding, for example.
In one preferred embodiment, the gaps formed between the element terminal 221 and the ground terminal 222 may be adjusted such that an impedance of 50Ω may be obtained, for example.
According to the present embodiment, the element member 111, the ground member 112, the element terminal 221, and the ground terminal 222 are punched using a die to create a structure as is shown in
Then, the element terminal 221 and the ground terminal 222 are fixed by the resin part 223 to form the connection part 211.
It is noted that the connection part 211 is configured to be attached to a plug connector 231.
The plug connector 231 used in the present embodiment includes an element terminal member 241, a ground terminal member 242, and a resin part 243.
The element terminal member 241 may be a sheet metal that is arranged into a U-shape and soldered to the signal wire 171 of the cable 102, for example. The ground terminal member 242 may be a sheet metal that is arranged into a U-shape and soldered to a shield 172 of the cable 102.
It is noted that the resin part 243 fixes the element terminal member 241 and the ground terminal member 242 in place. Specifically, the resin part 243 fixes the positions of the element terminal member 241 and the ground terminal member 242 such that the element terminal 221 may engage the inner perimeter portion of the U-shaped element terminal member 241 and the ground terminal 222 may engage the inner perimeter portion of the U-shaped ground terminal member 242.
An antenna apparatus 300 according to the present embodiment has a connection part 311 that differs from that of the first embodiment.
The connection part 311 of the present embodiment includes an element terminal 321, a ground terminal 322, and a resin part 323.
As is shown in
As is shown in
The plug connector 330 includes an element terminal member 331, a ground terminal member 332, and a resin part 333. The element terminal member 331 is arranged inside the resin part 333 to be connected to the signal wire 171 of the cable 102. The ground terminal member 332 is arranged inside the resin part 333 to be connected to the shield 172 of the cable 102.
The element terminal member 331 and the ground terminal member 332 are insulated by the resin part 333.
As is shown in
An antenna apparatus 400 according to the present embodiment has a connection part 411 that is different from that of the first embodiment and a resin part 412 that seals the element member 111 and the ground member 112.
The connection part 411 includes an element terminal 421 and a ground terminal 422.
As is shown in
The ground terminal 422 is integrally punched out with the ground member 112 as arm portions extending in the direction of arrow X2 from the side of the ground member 112 opposing the element member 111, the feed point being positioned between the arm portions with respect to directions Y1-Y2. The ground terminal 422 is integrally punched out with the ground member 112 as L-shaped portions that extend in the direction of arrow X2 for a predetermined distance to then extend in the direction of arrow Y1 or Y2. In a subsequent process step, the sections of the ground terminal 422 extending in the direction Y1 or Y2 are bent to extend in the direction of arrow Z1.
As is shown in
An antenna apparatus 500 according to the present embodiment includes an element member 511, an element terminal 512, and a resin part 513. It is noted that the antenna apparatus 500 is configured to be surface mounted on a printed circuit board 521.
The element member 511 is created by punching out a pentagon shape with sides having dimensions of several centimeters from a metal coil strip made of phosphor bronze, for example. As is shown in
The resin part 513 seals the element member 511 and the element terminal 512 in a manner such that the X1 side face and the Z2 side face of the element terminal 512 may be exposed through the resin part 513.
The printed circuit board 521 has a ground pattern 531 and a strip line 532 formed thereon. The element member 511 is positioned so that its sides form a predetermined angle θ with the side of the ground pattern 531. In this way, the element member 511 and the ground pattern of the printed circuit board 521 may form a UWB antenna.
According to the present embodiment, a miniaturized antenna apparatus may be fabricated.
An antenna apparatus 600 according to the present embodiment includes an element member 611, a ground member 612, an element terminal 613, a ground terminal 614, and a resin part 615. The antenna apparatus 600 is configured to be surface mounted on a printed circuit board 621.
The element member 611 and the ground member 612 have shapes identical to those of the element member 111 and the ground member 112 according to the first embodiment. Specifically, the element member 611 is created by punching out a pentagon shape with sides having dimensions of several centimeters from a metal coil strip made of phosphor bronze, for example, and the element terminal 613 is integrally formed with the element member 611 to extend from the feed point of the element member 611. As is shown in
The resin part 615 seals the element member 611, the ground member 612, the element terminal 613, and the ground terminal 614 in a manner such that the Z2 side faces of the element terminal 613 and the ground terminal 614 may be exposed through the resin part 615.
The printed circuit board 621 has an antenna connection land 631 formed thereon. The antenna apparatus 600 may be surface mounted on the printed circuit board 621 by soldering the Z2 side faces of the element terminal 613 and the ground terminal 614 to the antenna connection land 631, for example.
In the present embodiment, the element member 611 and the ground member 612 are fixed by the element terminal 613 and the ground terminal 614. However, in a modified embodiment, resin may be used to seal and fix the element member 611 and the ground member 612. It is noted that by sealing the element member 611 and the ground member 612 with resin, the antenna apparatus may be miniaturized owing to the wavelength reduction effect.
It is noted that in the antenna apparatuses according to preferred embodiments of the present invention as described above, the element member (antenna element) is distinguished from the ground member, and the ground member is connected to ground. However, in other embodiments where balanced feeding is performed on the antenna element and the ground member, the ground member may not be connected to ground, and the antenna element and the ground member may function as a dipole antenna apparatus, for example.
Further, although the above-embodiments of the present invention are described as UWB antenna apparatuses, the present invention may generally be applicable to any type of antenna apparatus that uses an element member made of sheet metal, for example.
It is noted that the present invention is not limited to the above-described embodiments, and variations and modifications may be made without departing from the scope of the present invention.
The present application is based on and claims the benefit of the earlier filing date of Japanese Patent Application No. 2006-257782 filed on Sep. 22, 2006, the entire contents of which are hereby incorporated by reference.
Number | Date | Country | Kind |
---|---|---|---|
2006-257782 | Sep 2006 | JP | national |