1. Field of the Invention
The present invention relates to an RF-ID; namely, a radio communication medium processing device that establishes communication with a radio communication medium, like an IC card and an IC tag, or an antenna and an antenna unit used in the radio communication medium itself, as well as to a communication device using the antenna and the antenna unit.
2. Background Art
Portable terminals, such as portable phones, equipped with built-in RF-ID radio tags or a function of reading a non-contact IC card or an IC tag have recently become proliferated. Antenna units that each include a magnetic sheet affixed to an aperture area of a loop antenna (a coil axis of the loop antenna is perpendicular to the magnetic sheet) are frequently used.
Patent Document 1: JP-A-2009-182902
In order to attach a related art antenna, it is necessary to secure a location, in a portable terminal, that is substantially equal in area to the antenna. This has become a factor for hindering a reduction in the size and thickness of the portable terminal.
Accordingly, the present invention aims at providing an antenna and an antenna unit that enable realization of space saving and that exhibit superior communication performance.
The present invention provides an antenna comprising: a base substrate; a coil formed from a conductor wound around the base substrate; and a plurality of terminals connected to the conductor, wherein uncovered base substrate portions where the conductor is absent are formed on the base substrate except a start and end of turns of the coil; and the terminals are provided on respective faces of the coil parallel to a coil axis and on the uncovered base substrate portions.
The present invention makes it possible to provide an antenna and an antenna unit that enable realization of space saving and that exhibit superior antenna performance, as well as to provide a communication device using them.
According to the present invention, it is possible to provide an antenna including a base substrate; a coil formed from a conductor wound around the base substrate; and a plurality of terminals connected to the conductor. Uncovered base substrate portions where the conductor is absent are formed on the base substrate except the start and end of turns of the coil. The terminals are provided on the respective sides of the coil parallel to a coil axis and on the uncovered base substrate portions. It is thereby possible to provide an antenna and an antenna unit, which enable space saving and which exhibit superior communication performance, and a communication device using them.
Further, it is preferable that the number of turns of the coil of the antenna is larger than an integral multiple by substantially one-half of the turn, because the antenna can efficiently utilize the electric current flowing over the metallic element on which the antenna is to be mounted.
Moreover, the uncovered base substrate portion is formed on each end of the base substrate, whereby a magnetic field passing through an interior of the coil is made substantially parallel to the coil axis, so that an electric current can efficiently be guided.
The plurality of terminals connected to the coil are on the same uncovered base substrate portion. As a result, it is thereby possible to provide an antenna and an antenna unit, which enable space saving and which exhibit superior communication performance, and a communication device using them.
The terminals each are placed at substantial four corners of the coil. The conductor is connected to the terminals, among the four terminals, placed on both sides of the base substrate with its coil axis interposed therebetween. It is thereby possible to provide an antenna and an antenna unit, which enable space saving and which exhibit superior communication performance, and a communication device using them.
An imaginary straight line passing through the two terminals connected to the conductor is substantially parallel to the winding direction of the coil. The magnetic field passing through the interior of the coil can thereby be made substantially parallel to the coil axis, so that an electric current can efficiently be guided.
Moreover, the imaginary straight line passing through the two terminals connected to the conductor is substantially parallel to a diagonal line of the base substrate. As a result, it is thereby possible to acquire an antenna unit that enables efficient utilization of the electric current flowing over the metallic element and that exhibits superior communication performance.
The plurality of terminals connected to the conductor are placed on both sides of the base substrate with its coil axis interposed therebetween. The imaginary straight line passing through the two terminals connected to the conductor is substantially parallel to the winding direction of the coil. As a result, it is thereby possible to acquire an antenna unit that enables efficient utilization of the electric current flowing over the metallic element and that exhibits superior communication performance.
The plurality of terminals to which the conductor is to be connected are provided on both sides of the base substrate with the coil axis interposed therebetween. An imaginary straight line passing through the two terminals to which the conductor is to be connected is substantially parallel to a diagonal line of the base substrate. As a result, it is thereby possible to acquire an antenna unit that enables efficient utilization of the electric current flowing over the metallic element and that exhibits superior communication performance.
The antenna is mounted such that at least one of the uncovered base substrate portions provided on the antenna is situated outside of the outer periphery of the metallic element on which the antenna is mounted. As a result, it is thereby possible to acquire an antenna unit that enables efficient utilization of the electric current flowing over the metallic element and that exhibits superior communication performance.
It is preferable that the coil is arranged in such a way that the winding direction of the coil and the ends of the base substrate that is a metallic element become parallel to each other, because the electric current flowing over the metallic element on which the antenna is mounted can efficiently be utilized.
Furthermore, it is preferable that the coil is arranged such that the winding direction of the coil and the flow of the electric current flowing through the metallic element become parallel to each other, because the electric current flowing over the metallic element on which the antenna is mounted can efficiently be utilized.
The plurality of terminals each are placed at substantially four corners of the coil. Of the four terminals, two pairs of terminals, each of which consists of two terminals placed in the vicinity of the two corners situated along one side of the base substrate, each are joined together by means of the joints provided along the respective sides of the base substrate. It is thereby possible to acquire an antenna unit that does not require an excessive length for the coil and that is not limited in terms of directivity when mounted on the communication device.
The terminals act as fixing portions when the antenna unit is mounted, whereby the antenna unit can stably be placed in a communication device, or the like.
The joints extend substantially parallel to the coil axis of the base substrate. It is thereby possible to easily acquire an antenna unit that does not require an excessive length for the coil and that is not limited in terms of directivity when mounted on a communication device.
An embodiment of the present invention is hereunder described by reference to the drawings.
An antenna 1 is configured in the following manner. Namely, a conductor 4 is wound around a base substrate 3, thereby making up a coil 30. The coil 30 is covered with a protective material 2 and is also provided with terminals 5 connected to the conductor 4 and fixing terminals 6 that are not connected to the conductor 4 and that are intended for enhancing vibration resistance and packing strength.
The terminals 5 are provided on respective surface sides of the coil 30 parallel to a coil axis A and within an uncovered base substrate portion 31 not provided with the coil 30.
Detailed descriptions are provided for a layout of the terminals 5. In the present embodiment, the terminals 5 are provided on the respective surface sides of the coil 30 parallel to the coil axis A. When viewed in a direction B perpendicular to the surfaces provided with the terminals 5, at least one of the input/output terminals 5 is situated within a plane of the uncovered base substrate portion 31. Namely, when viewed in the direction B, at least one of the terminals 5 overlaps a surface of the uncovered base substrate portion 31.
All you have to do is to place the terminals 5 on the surface sides parallel to the coil axis A and in the vicinity of the uncovered base substrate portion 31; namely, an area around the coil 30 or an area around the uncovered base substrate portion 31 exclusive of a surface perpendicular to the coil axis A. It is not necessary to place the terminals 5 in such a way that at least one of the terminals 5 overlaps the surface of the uncovered base substrate portion 31 when viewed in the direction B, as in the case with the present embodiment.
It is preferable to use a magnetic substance, such as ferrite, for the base substrate 3, whereby a magnetic flux passing through the coil 30 increases, to thus enable enhancement of communication performance. However, the base substrate 3 is not limited to a magnetic substance and can also be formed from; for instance, ceramic, a resin, and the like.
It is preferable to use a wire such as a sheathed copper wire or tape-shaped or ribbon-shaped metal such as narrow copper foil for the conductor 4. However, there may also be adopted a method for affixing metal to a surface of a magnetic core 3 by means of plating or evaporation so as to leave necessary areas intact, to thus form the coil 30.
It is also preferable to form the terminals 5 by punching or bending an alloy formed from copper and iron, or the like. Further, it is also preferable to plate surfaces of the terminals 5 with metal, such as zinc, so that the surfaces can readily be soldered.
The fixing terminals 6 are also formed in the same manner as are the input/output terminals 5. However, the fixing terminals 6 may be omitted according to the size and usage of the antenna 1. Further, the fixing terminals 6 can also be provided in any numbers.
Further, a mold like an epoxy resin, a tape, and paint, and others, are used for the protective material 2. The protective material 2 can be given objectives of preventing breaking of wire of the conductor 4, breakage of the base substrate 3, and forming a suction block for use in an automatic mounting machine, and others. Moreover, in order to prevent erroneous printing of a mark and a part number of an input/output pin on a top surface of the antenna 1, the protective material 2 is preferable. Although the antenna has a configuration involving use of the protective material 2 in the present embodiment, the protective material 2 may also be omitted.
In
In
The reason for this is that, when the antenna 1 is mounted on a metallic element, the conductor 4 on the lower surface of the antenna 1 becomes close to the metallic element and is susceptible to a magnetic field developing from an eddy current of the metallic element in a direction of canceling a signal. The conductor 4 on the upper surface of the same, however, is less susceptible to the magnetic field. Hence, a characteristic of the coil 30 is improved when the number of turns of the conductor 4 on the upper surface less susceptible to the eddy current becomes greater.
A characteristic of the present invention lies in that the terminals 5 connected to the conductor 4 are situated along the uncovered base substrate portion 31. In the antenna shown in
The uncovered base substrate portion shown in
In the present embodiment, the uncovered base substrate portions 31 are provided on the respective ends of the base substrate 3. However, the arrangement is preferable because, for instance, when a magnetic field comes from the outside, it becomes possible to make the magnetic field passing through an interior of the coil 30 more parallel to the coil axis by means of such a layout, thereby increasing an electric current induced by the coil 30. Further, the two terminals 5 are placed within a plane of the same uncovered base substrate portion 31. It thereby becomes possible to achieve a layout exhibiting the highest performance when the antenna 1 is mounted on a metallic element. An overall geometry of the antenna is substantially square; however, the geometry is not limited to square.
The antenna differs from the antenna shown in
In
When the antenna of the present invention is placed on the metallic element, the following advantages are yielded, as a result of the uncovered base substrate portions being provided, when the uncovered base substrate portions are placed in the interior of the metallic element and when the uncovered base substrate portions are placed at ends of the metallic element.
When the uncovered base substrate portions are placed in the interior of the metallic element in a case where a magnetic substance is used as the base substrate, a magnetic field developing in the interior of the coil becomes more parallel to a coil axis than a case where the uncovered base substrate portions are not provided. Therefore, transmission and receiving operations can efficiently be performed, so that an efficiency of the antenna can be enhanced.
Further, when the uncovered base substrate portions are placed on an exterior of the metallic element and when an antenna having terminals connected to both ends of the uncovered base substrate portions is used, the antenna can be made efficient by means of a minimum number of coil turns.
When the coil is wound up to both ends of the base substrate without use of the uncovered base substrate portions as in the case with the related art, the coil situated outside of the metallic element cannot capture the magnetic field on the metallic element induced by an electric current; hence, the coil does not contribute to the antenna characteristic or efficiency. When the base substrate does not protrude from the metallic element and when the coil is wound up to both ends of the base substrate, the magnetic field developing in the coil in the vicinity of the ends of the base substrate does not become parallel to the coil axis even when the base substrate is a magnetic substance, so that the antenna characteristic is deteriorated.
For these reasons, in the present embodiment, the uncovered base substrate portions are provided on both sides of the antenna in order to enhance the antenna characteristic.
A ground pullout portion 11 not having a conductor is provided along an outer periphery of a conductor pattern 8 forming a ground, and input/output terminal lands 9 are provided along the outer periphery such that the uncovered base substrate portions 31 of the antenna 1 and the terminals 5 are situated.
A length of the uncovered base substrate portions achieved in the direction of the coil axis is substantially identical with a length of the ground pullout portion 11.
The conductor pattern 8 is further provided with fixing terminal lands 10 for securing the fixing terminals 6, and the fixing terminal lands are electrically connected to the conductor pattern 8.
In view of performance, it is preferable that a ground electrode which is an interior layer of the substrate should not be present in the ground pullout portion 11. However, when the substrate 7 is thick, or the like, there can also be adopted a configuration in which the ground pullout portion 11 is provided in only a layer in proximity to the antenna 1.
A glass epoxy base material, or the like, is usually used for the substrate 7, and copper is often used for the conductor pattern 8. However, the substrate and the conductor pattern are not limited to these materials, and other materials can also be used. A surface of the substrate is usually provided with a solder resist, a silk screen print, and others. Further, the conductor pattern 8 is assumed to be a ground in the present embodiment, but a pattern raised from the ground may also be used. At this time, it is better for the conductor pattern to have a larger area. For example, when a magnetic field is exerted on the antenna from the outside, an eddy current developing in the conductor pattern becomes large, with the result that communication performance is improved.
Although
Although a signal line to the input/output terminal lands 9 is not illustrated in
When the antenna 1 is mounted on a metallic element that is not a substrate, difficulty is considered to be encountered in performing reflow mounting operation. In this case, the antenna 1 is fixed to a predetermined position by means of a double-sided table, or the like. Power can be fed to the terminals 5 by means of physical contact of a pin, soldering of a wire, or the like. Hence, an antenna unit exhibiting superior communication performance can be provided in the same manner as in the case where the antenna is mounted on the substrate.
Explanations are now given to a concept that the antenna 1 of the present invention provided on a metallic element through surface mounting acts as an antenna in a direction perpendicular to the plane of the metallic element.
First, explanations are provided to a case where a signal is input to the antenna 1. When a signal is input to the antenna 1, an electric current flows into a coil of the antenna 1, and the electric current induces a magnetic field in a direction of a coil axis of the coil. Specifically, if the antenna is continually held in this state, the antenna stays orthogonal to the magnetic field perpendicular to the substrate 7, and hence the antenna cannot act as an antenna. The magnetic field induces, in the substrate 7, an electric current 14 that generates a magnetic field 13 in a direction of cancelling the magnetic field of the antenna 1. The electric current 14 flows along the conductor pattern outer periphery 12 and exhibits the highest current density at the outer periphery and a smaller current density with an increasing distance toward the interior of the substrate. Since the electric current 14 flowing along the conductor pattern outer periphery 12 forms a large loop path, a magnetic field thereby develops in a direction perpendicular to a principal plane of the substrate 7. Therefore, it is seen that the antenna 1 becomes an antenna exhibiting superior performance in a direction perpendicular to the principal surface of the substrate 7.
By reference to
From above, the antenna 1 can be said to become an antenna that exhibits superior communication performance when mounted on a metallic element.
Arrows provided in
In
To this end, the land layout has been contemplated under the following conditions in the present embodiment.
In the antenna used for the test, rectangular parallelepiped ferrite measuring 5 mm×5 mm×0.4 mm was used for the base substrate 3; a sheathed copper line having a diameter of 0.26 mm was used as the conductor 4; and an antenna having 7.5 turns was used. At this time, the length of the coil 30 was set to 3 mm, and the uncovered base substrate portion 31 having a width of 1 mm was provided on either side of the coil.
An antenna, such as that illustrated by a plan view of an antenna implemented by an ordinary chip component structure shown in
For this reason, even when the substrate 7 receives a magnetic field from the outside and when the electric current has developed in the substrate 7, flow of the electric current 14 flowing over the substrate 7 is blocked by the ground pullout portions 115, to thus become meandered. A characteristic of the antenna is therefore assumed to be undesirable.
Specifically, when the conductor pattern is made as illustrated in
This state was taken as Test 1, and the ground pullout portions 115 were made so as to measure 4 mm high×2 mm wide. In the state shown in
As can be seen in
Moreover, it is understood that Test 5 (
A presumable reason for this is that the electric current 14 is bent along the ground pullout portion 11 as a result of the ground pullout portion 11 being provided along the conductor pattern outer periphery 12, so that the current density is increased at a position below the antenna 1; especially, a position below the coil 30. Therefore, provision of the ground pullout portion 11 and placing the uncovered base substrate portion of the antenna 1 in the ground pullout portion 11 can be said to be very effective. It is understood that the present invention is effective for providing an antenna and an antenna unit which exhibit superior communication performance.
For more comparison, similar tests were carried out by use of a sheet-like, loop antenna having a related art structure. A ferrite sheet measuring 25 mm×15 mm and having a thickness of 0.4 mm was affixed to the location of the antenna 1 shown in
A test conducted in relation to a winding number is now described.
Explanations are now given to a case where the antenna is built in a portable terminal.
Detailed descriptions are now provided to a terminal structure.
The structure includes a magnetic substance made of a substantially rectangular parallelepiped; a coil around which the magnetic substance is wound and which has two ends; a first terminal that has first connection portions respectively provided in the vicinity of two corners located along one side of the magnetic substance and that has a joint for connecting the first connection portions provided along one side of the magnetic substance; and a second terminal that has second connection portions respectively provided in the vicinity of two corners located along a side of the magnetic substance opposing its one side and that has a joint for connecting the second connection portions and that is provided along the opposite side of the magnetic substance. One end of the coil is connected to any of the first connection portions, and the other end of the coil is connected to any of the second connection portions. It is thereby possible to produce an antenna unit whose coil does not require any excessive length and that is not limited in terms of directivity when mounted in a communication device.
The first connection portions and the second connection portions are arranged so as to act as fixing portions at the time of mounting of the antenna unit. The antenna unit can thereby be stably set in a communication device, or the like.
The structure also includes a magnetic substance made of a substantially rectangular parallelepiped; a coil around which the magnetic substance is wound and which has two ends; a first terminal that has first connection portions respectively provided in the vicinity of two corners located along one side of the magnetic substance and that has a joint for connecting the first connection portions provided along one side of the magnetic substance; and a second terminal that has second connection portions respectively provided in the vicinity of two corners located along a side of the magnetic substance opposing its one side and that has a joint for connecting the second connection portions and that is provided along the opposite side of the magnetic substance. One end of the coil is connected to one of the first connection portions, and the other end of the coil is connected to the other of the first connection portions. The first connection portions of the first terminal are disconnected. It is thereby possible to connect a line of the communication device, or the like, and a coil by use of any of the plurality of connection portions. In particular, it becomes possible to connect connection portions belonging to one terminal to a line of a communication device, or the like, whereby an antenna unit can be produced while directivity achieved when the antenna is mounted is further enhanced.
When actually mounted in a communication device, the antenna unit is used while the ferrite 101 and the terminal portions 102a and 102b are coated with a resin, or the like. On this occasion, only extremities of the respective terminals 103a, 103b, 103c, and 103d are exposed through the resin, and the thus-exposed extremities are connected to a line of the communication device.
As mentioned above, the antenna unit includes the base substrate 3; the coil 30 formed from the conductor 4 wound around the base substrate 3; and the plurality of terminals 5 connected to the conductor 4. The uncovered base substrate portions 31 where the conductor 4 is absent are formed on the base substrate 3 except the start and end of turns of the coil 30. The terminals 5 are provided on the end face side of the coil 30 parallel to the coil axis and in the uncovered base substrate portions 31. It is thereby possible to provide an antenna and an antenna unit, which enable space saving and which exhibit superior communication performance, and a communication device using them.
Further, it is preferable that the number of turns of the coil 30 of the antenna 1 is larger than an integral multiple by substantially one-half of turn, because the antenna can thereby efficiently utilize the electric current flowing over the metallic element on which the antenna is to be mounted.
Moreover, the uncovered base substrate portion 31 is formed on each end of the base substrate 3, whereby a magnetic field passing through an interior of the coil is made substantially parallel to the coil axis, so that an electric current can efficiently be guided.
The plurality of terminals 5 connected to the coil 30 are on the single uncovered base substrate portion 31. As a result, it is thereby possible to provide an antenna and an antenna unit, which enable space saving and which exhibit superior communication performance, and a communication device using them.
The terminals 5 each are placed at substantial four corners of the coil 30. The conductor 4 is connected to the terminals 5, among the four terminals 5, placed on both sides of the base substrate 3 with its coil axis interposed therebetween. It is thereby possible to provide an antenna and an antenna unit, which enable space saving and which exhibit superior communication performance, and a communication device using them.
An imaginary straight line passing through the two terminals 5 connected to the conductor 4 is substantially parallel to the winding direction of the coil 30. The magnetic field passing through the interior of the coil can thereby be made parallel to the coil axis, so that an electric current can efficiently be guided.
Moreover, the imaginary straight line passing through the two terminals 5 connected to the conductor 4 is substantially parallel to a diagonal line of the base substrate 3. As a result, it is thereby possible to acquire an antenna unit that enables efficient utilization of the electric current flowing over the metallic element and that exhibits superior communication performance.
The plurality of terminals 5 connected to the conductor 4 are placed on both sides of the base substrate 3 with its coil axis interposed therebetween. The imaginary straight line passing through the two terminals 5 connected to the conductor 4 is substantially parallel to the winding direction of the coil 30. As a result, it is thereby possible to acquire an antenna unit that enables efficient utilization of the electric current flowing over the metallic element and that exhibits superior communication performance.
Furthermore, the plurality of terminals 5 connected to the conductor 4 are arranged on both sides of the base substrate 3 with the coil axis interposed therebetween. The imaginary straight line passing through the two terminals 5 connected to the conductor 4 is substantially parallel to the diagonal line of the base substrate 3. As a result, it is thereby possible to acquire an antenna unit that enables efficient utilization of the electric current flowing over the metallic element and that exhibits superior communication performance.
The antenna is mounted such that at least one of the uncovered base substrate portions provided on the antenna is situated outside of the outer periphery of the metallic element on which the antenna is mounted. As a result, it is thereby possible to acquire an antenna unit that enables efficient utilization of the electric current flowing over the metallic element and that exhibits superior communication performance.
It is also preferable that the coil 30 is arranged in such a way that the winding direction of the coil and the ends of the base substrate 7 that is a metallic element become parallel to each other, become the electric current flowing over the metallic element on which the antenna is mounted can thereby be efficiently utilized.
It is also preferable that the coil 30 is arranged in such a way that the winding direction of the coil and the flow of the electric current flowing through the metallic element become parallel to each other, because the electric current flowing over the metallic element on which the antenna is mounted can thereby be efficiently utilized.
The plurality of terminals 5 each are placed at substantially four corners of the coil 30. Of the four terminals 5, two pairs of terminals 5, each of which consists of two terminals 5 placed in the vicinity of the two corners situated along one side of the base substrate 3, each are joined together by means of the joints 104 provided along the respective sides of the base substrate 3. It is thereby possible to acquire an antenna unit that does not require an excessive length for the coil and that is not limited in terms of directivity when mounted on the communication device.
The terminals 5 act as fixing portions when the antenna unit is mounted, whereby the antenna unit can stably be placed in a communication device, or the like.
The joints 104 extend substantially parallel to the coil axis of the base substrate 3. It is thereby possible to easily acquire an antenna unit that does not require an excessive length for the coil and that is not limited in terms of directivity when mounted on a communication device.
According to the antenna and the antenna unit of the present invention, the antenna unit can be made by utilization of clearance between components in the enclosures. Therefore, space saving of the antenna unit becomes possible, which is useful for miniaturization of the enclosures. For instance, the antenna and the antenna unit can be utilized as; an RF-ID antenna (tag) of a portable phone.
The disclosure of Japanese Patent Application No. 2009-197844 filed Aug. 28, 2010, including specification, drawings and claims is incorporated herein by reference in its entirety.
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