This application is a 371 application of PCT/JP2013/000133 having an international filing date of Jan. 15, 2013, which claims priority to JP2012-052764 filed Mar. 9, 2012, the entire contents of which are incorporated herein by reference.
The present invention relates to an antenna device configured to transmit and receive radio waves and a method for manufacturing the antenna device.
Radio communication technologies have been used in various devices in recent years. Some of the devices receive radio waves by using a plurality of antenna elements (c.f. Patent Documents 1 to 3).
An actuator provided with the antenna element may execute operations corresponding to the received radio waves. Consequently, the antenna element may be suitably used in remote control of the actuator.
An antenna device, which processes signals in response to radio wave received by the antenna element and outputs control signals for controlling an operation of the actuator, is attached to or detached from the actuator if necessary. Therefore, the antenna device may be used in various technical fields.
As described above, if the antenna device is externally attached to the actuator, the antenna device may be placed in a limited place, depending on an installation position of the actuator. As the result of the placement of the antenna device in the limited place, an improvement in communication quality on the basis of diversity technologies, particularly polarization diversity, may be severely limited.
Patent Document 1: JP 2005-184713 A
Patent Document 2: JP 2007-318678 A
Patent Document 3: JP 2005-39539 A
An object of the present invention is to provide an antenna device configured to achieve good quality communication and a method for manufacturing the antenna device.
An antenna device according to one aspect of the present invention includes a first antenna element and a second antenna element which transmit and receive a radio wave, a housing which stores a processor for processing a signal in response to the radio wave, a first element cover configured to store the first antenna element, and a second element cover configured to store the second antenna element. The first element cover includes a first rotary cylinder, which is held by the housing and rotatable around a first rotational axis, and a first protruding cylinder, which protrudes from the first rotary cylinder, the first rotary cylinder protruding from the housing along the first rotational axis. The second element cover includes a second rotary cylinder, which is held by the housing and rotatable around a second rotational axis, and a second protruding cylinder, which protrudes from the second rotary cylinder, the second rotary cylinder protruding from the housing along the second rotational axis. A first included angle defined between the first protruding cylinder, which stores the first antenna element, and the second protruding cylinder, which stores the second antenna element, is changed by rotation of at least one of the first and second rotary cylinders.
A method for manufacturing the antenna device according to another aspect of the present invention includes steps of inserting the first and second rotary cylinders into through holes to incorporate a first case, a first element cover and a second element cover, fitting a first holder in a first annular groove and a second holder in a second annular groove, rotating the first and second rotary cylinders to place the first holder between the first rotary cylinder and the first case and the second holder between the second rotary cylinder and the first case and expose the first and second annular grooves, fitting a main holder in the exposed first and second annular grooves, and overlapping the second case with the first case.
The aforementioned antenna device may achieve good quality communication. The antenna device is easily assembled on the basis of the aforementioned manufacturing method.
Objects, features, and advantages of the present invention will become more apparent from the following detailed description and the accompanying drawings.
An antenna device and a method for manufacturing the antenna device are described with reference to the drawings. In the following embodiment, similar components are designated by similar reference numerals. In order to clarify the description, redundant description is omitted as appropriate. Configurations, arrangements and shapes shown in the drawings and descriptions about the drawings are only for making principles of the present embodiment easily understood. The principles of the antenna device and the manufacturing method for the antenna device are not limited to them.
<Antenna Device>
The antenna device 100 includes a first antenna element 110 and a second antenna element 120, which transmit and receive radio waves, and a radio circuit 130 including a reception circuit and a transmission circuit. The radio circuit 130 processes signals in response to the radio waves received by the first and second antenna elements 110, 120. In
The antenna device 100 further includes a housing 200, which stores the radio circuit 130, a first element cover 300, which stores the first antenna element 110 formed from a metal wire, and a second element cover 400, which stores the second antenna element 120 formed from a metal wire. The first and second element covers 300, 400 protrude from the housing 200. The housing 200, the first and second element covers 300, 400 are formed from resin.
The housing 200 includes a substantially disk-like first portion 210, which supports the first and second element covers 300, 400, and a substantially rectangular parallelepiped second portion 220, which protrudes in a direction opposite to the first and second element covers 300, 400.
As shown in
A LAN terminal 221 is formed at the distal end of the second portion 220. The radio circuit 130 processes signals in response to radio waves received by the first and second antenna elements 110, 120, and outputs processing signals. An external device connected via the LAN terminal 221 may execute a predetermined operation in response to the processing signals.
The antenna device 100 is suitably used together with an external device ED having a LAN port PT corresponding to the LAN terminal 221. The second portion 220 is inserted into the LAN port PT of the external device ED. The external device ED may execute a predetermined operation in response to the processing signals output through the LAN terminal 221. The second portion 220 is pulled out from the LAN port PT if necessary. Consequently, the antenna device 100 is removed from the external device ED if necessary. In the present embodiment, the external device ED is exemplified as the actuator. The second portion 220 is exemplified as the connector.
A user may connect a connection cable CC to the USB slot 214 of the antenna device 100 if necessary. With the connection cable CC connected to the USB slot 214, the antenna device 100 is connected to an AC adaptor (not shown).
As shown in
The male semi-cylinder 310 includes an outer wall 312 configured to form a hollow portion 311, into which the first antenna element 110 is inserted, and protrusions 313 to 319, which protrude toward the female semi-cylinder 320. The protrusions 313 to 319 are formed along the surface joined to the female semi-cylinder 320.
The female semi-cylinder 320 includes an outer wall 322 which collaborates with the male semi-cylinder 310 to form the hollow portion 311. The outer wall 322 is formed with fitting holes 323 to 329 in correspondence to the protrusions 313 to 319. The protrusions 313 to 319 are fitted in the fitting holes 323 to 329 to complete the first element cover 300.
As shown in
The male semi-cylinder 410 includes an outer wall 412 configured to form a hollow portion 411, into which the second antenna element 120 is inserted, and protrusions 413 to 419 which protrude toward the female semi-cylinder 420. The protrusions 413 to 419 are formed along the surface joined to the female semi-cylinder 420.
The female semi-cylinder 420 includes an outer wall 422 which collaborates with the male semi-cylinder 410 to form the hollow portion 411. The outer wall 422 is formed with fitting holes 423 to 429 in correspondence to the protrusions 413 to 419. The protrusions 413 to 419 are fitted in the fitting holes 423 to 429 to form the second element cover 400.
The housing 200 is formed of a first case 230, to which the first and second element covers 300, 400 are attached, and a second case 250, which is overlapped with the first case 230. The second case 250 is overlapped with the first case 230 to form a storage space in which the first and second antenna elements 110, 120 and the radio circuit 130 are stored.
The first case 230 includes an outer wall 232 formed with a pair of through holes 231 into which the first and second element covers 300, 400 are inserted. The second case 250 includes an outer wall 252 which defines the storage space with the outer wall 232 of the first case 230 so that the first and second antenna elements 110, 120 and the radio circuit 130 are stored in the storage space. The outer wall 252 of the second case 250 is formed with the LAN terminal 221.
The first element cover 300 includes a substantially cylindrical first rotary cylinder 330, which is inserted into the through hole 231 formed in the outer wall 232, and a first protruding cylinder 350, which protrudes from the first rotary cylinder 330. In
The second element cover 400 includes a substantially cylindrical second rotary cylinder 430, which is inserted into the through hole 231 that is formed in the outer wall 232, and a second protruding cylinder 450, which protrudes from the second rotary cylinder 430. In
In the present embodiment, the included angle θ between the rotational axes RX1, RX2 is “90°”. In short, the rotational axis RX2 is perpendicular to the rotational axis RX1. In the present embodiment, the included angle θ is exemplified as the second included angle. The included angle θ may be set to an angle in a range from 60° to 120°. It may be preferable that the included angle θ is set to an angle in a range from 80° to 100°. If the included angle θ is set to an angle in the aforementioned range, it becomes easier to create an appropriate communication environment.
A geometrical plane defined so as to include the rotational axes RX1, RX2 is referred to as “reference surface RS” in the following description. In
The center lines EL1, EL2 of the first and second element covers 300, 400 shown in
If the center line EL1 is present on the reference surface RS, the included angle between the center line EL1 and the rotational axis RX1 is equivalent to the corresponding angle of the included angle between the rotational axis RX1 and the center line CL. Consequently, the included angle (½ θ) between the center line EL1 and the rotational axis RX1 is “45°” in the present embodiment. The included angle between the center line EL1 and the rotational axis RX1 means the inclination angle of the first protruding cylinder 350 with respect to the first rotary cylinder 330. Consequently, the first protruding cylinder 350 protrudes at an angle of “45°” with respect to the first rotary cylinder 330 in the present embodiment.
If the center line EL2 is present on the reference surface RS, the included angle between the center line EL2 and the rotational axis RX2 is equivalent to the corresponding angle of the included angle between the rotational axis RX2 and the center line CL. Consequently, the included angle (½ θ) between the center line EL2 and the rotational axis RX2 is “45°” in the present embodiment. The included angle between the center line EL2 and the rotational axis RX2 means the inclination angle of the second protruding cylinder 450 with respect to the second rotary cylinder 430. Consequently, the second protruding cylinder 450 protrudes at an angle of “45°” with respect to the second rotary cylinder 430 in the present embodiment.
The included angle between the first and second protruding cylinders 350, 450 shown in
The radio circuit 130 includes a first power supply terminal 131 and a second power supply terminal 132. The proximal end of the first antenna element 110 is connected to the first power supply terminal 131. The distal end of the first antenna element 110 is a free end. The proximal end of the second antenna element 120 is connected to the second power supply terminal 132. The distal end of the second antenna element 120 is a free end.
The radio circuit 130 further includes a signal source 133 for supplying electric power to the first or second antenna element 110, 120. The signal source 133 functions as a transmission circuit and/or a reception circuit. Consequently, the antenna device 100 may transmit and receive radio waves.
The radio circuit 130 uses one of the first and second antenna elements 110, 120 as a ground line. The radio circuit 130 applies high-frequency voltage signals to the other of the first and second antenna elements 110, 120. Consequently, the antenna device 100 may be used as a general monopole antenna.
The radio circuit 130 further includes an antenna switch 135 configured to switch a power supply path from the signal source 133. The antenna switch 135 shown in
The antenna device 100 may be used as a general monopole antenna. However, unlike a common monopole antenna, the antenna device 100 includes both of a switching configuration as a diversity antenna and a configuration as a monopole antenna. A general monopole antenna requires a ground plane not smaller than an antenna element in the housing. However, since the antenna device 100 of the present embodiment includes both of the configurations of the diversity antenna and the monopole antenna, the ground plane is not necessary. Consequently, the antenna device 100 may be formed in a small size. If there is a small ground in the housing, the antenna device 100 of the present embodiment may perform operations similar to those of a dipole antenna.
As shown in
Since the first antenna element 110 shown in
Since the second antenna element 120 shown in
In general, it is known that the antenna radiation efficiency is maximized when the included angle between an antenna element, to which electric power is supplied, and an antenna element used as a ground line is substantially 90°.
In the present embodiment, the included angle between the first and second antenna elements 110, 120 is set to substantially 90° by rotation manipulation of the first and/or second element covers 300, 400.
If the included angle between the first and second antenna elements 110, 120 is set to 90°, a polarization plane of an electromagnetic wave emitted from the first antenna element 110 becomes orthogonal to a polarization plane of an electromagnetic wave emitted from the second antenna element 120. The orthogonal relationship of the polarization plane maximizes polarization diversity. Consequently, if a user rotates the first and/or second element covers 300, 400 to set the included angle between the first and second antenna elements 110, 120 to 90°, the antenna device 100 may operate with the maximized polarization diversity.
The first and second element covers 300, 400 of the antenna device 100 shown in
As described with reference to
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The first and second rotary cylinders 330, 430 are inserted into the through holes 231 formed in the first case 230. The half ring 510 is then fitted in the first annular groove 333 in the first case 230. The half ring 520 is fitted in the second annular groove 433 in the first case 230. Eventually, the holding block 530 is overlapped with the half rings 510, 520. Accordingly, the holding block 530 is fitted in the first and second annular grooves 333, 433. The first block 531 collaborates with the half ring 510 to hold the first rotary cylinder 330. The second block 532 collaborates with the half ring 520 to hold the second rotary cylinder 430. Consequently, the holding block 530 may hold the first and second rotary cylinders 330, 430 simultaneously. In the present embodiment, the holding block 530 is exemplified as the main holder.
The first element cover 300 is held in the first case 230 not only by the half ring 510 and the first block 531 but also by the outer wall 232 of the first case 230. Consequently, the holding structure for the first element cover 300 has high mechanical strength.
The second element cover 400 is held in the first case 230 not only by the half ring 520 and the second block 532 but also by the outer wall 232 of the first case 230. Consequently, the holding structure for the second element cover 400 has high mechanical strength.
The user manipulates the first and/or second element covers 300, 400 outside the first case 230. Consequently, the outer wall 232 is likely to cause high stress to the first and second rotary cylinders 330, 430.
The outer wall 232 supports the first rotary cylinder 330 in a region from the joint portion 331 between the first protruding cylinder 350 and the first rotary cylinder 330 to the first annular groove 333. An outer diameter of the region of the first rotary cylinder 330 supported by the outer wall 232 is larger than an outer diameter of the first rotary cylinder 330 defined by the first annular groove 333. Consequently, even when the outer wall 232 causes high stress to the first rotary cylinder 330, the first element cover 300 may bear the stress adequately.
The outer wall 232 supports the second rotary cylinder 430 in a region from the joint portion 431 between the second protruding cylinder 450 and the second rotary cylinder 430 to the second annular groove 433. An outer diameter of the region of the second rotary cylinder 430 supported by the outer wall 232 is larger than an outer diameter of the second rotary cylinder 430 defined by the second annular groove 433. Consequently, even when the outer wall 232 causes high stress to the second rotary cylinder 430, the second element cover 400 may bear the stress adequately.
The second case 250 includes a cover portion 251 configured to cover an internal space 234 of the first case 230, in which the first and second rotary cylinders 330, 430 are partially stored, and a cable holding plate 253, which protrudes toward the first case 230 from substantially the center of the cover portion 251. The cable holding plate 253 protrudes into the internal space 234.
The second case 250 includes a substantially rectangular box-like storage portion 254 which protrudes from the cover portion 251. The LAN terminal 221 is formed along the distal edge of the storage portion 254. The radio circuit 130 is attached to a part between the cable holding plate 253 and the LAN terminal 221. In the following description, the inner surface of the storage portion 254 to which the radio circuit 130 is attached is referred to as the attachment surface 255. The surface opposite to the attachment surface 255 is referred to as the outer surface 256.
Paired slits 257 are formed in the cable holding plate 253. The first and second antenna elements 110, 120 are inserted into the paired slits 257.
<Method for Assembling Antenna Device>
(Step S110)
In Step S110, the first and second rotary cylinders 330, 430 are inserted into the through holes 231 formed in the outer wall 232 of the first case 230 (c.f.
(Step S120)
In Step S120, the half ring 510 is fitted in the first annular groove 333 whereas the half ring 520 is fitted in the second annular groove 433 (c.f.
(Step S130)
In Step S130, the first and second element covers 300, 400 are rotated by 180° (c.f.
(Step S140)
In Step S140, the second case 250 is overlapped with the first case 230 (c.f.
(Step S141)
In Step S141, as shown in
(Step S142)
In Step S142, as shown in
As shown in
(Step S143)
In Step S143, as shown in
Various technologies described in the context of the aforementioned embodiment mainly include the following features.
An antenna device according to one aspect of the aforementioned embodiment includes a first antenna element and a second antenna element which transmit and receive a radio wave, a housing which stores a processor configured to process a signal in response to the radio wave, a first element cover configured to store the first antenna element, and a second element cover configured to store the second antenna element. The first element cover includes a first rotary cylinder, which is held by the housing and rotatable around a first rotational axis, and a first protruding cylinder, which protrudes from the first rotary cylinder, the first rotary cylinder protruding from the housing along the first rotational axis. The second element cover includes a second rotary cylinder, which is held by the housing and rotatable around a second rotational axis, and a second protruding cylinder which protrudes from the second rotary cylinder, the second rotary cylinder protruding from the housing along the second rotational axis. A first included angle defined between the first protruding cylinder, which stores the first antenna element, and the second protruding cylinder, which stores the second antenna element, is changed by rotation of at least one of the first and second rotary cylinders.
According to the aforementioned configuration, the first and second antenna elements which transmit and receive a radio wave are stored in the first and second element covers, respectively. The first rotary cylinder of the first element cover held by the housing, which stores the processor for processing a signal in response to the radio wave, rotates around the first rotational axis. The first rotary cylinder protrudes from the housing along the first rotational axis. The second rotary cylinder of the second element cover held by the housing rotates around the second rotational axis. The second rotary cylinder protrudes from the housing along the second rotational axis. The first and second protruding cylinders protrude from the first and second rotary cylinders, respectively. Since the first included angle defined between the first protruding cylinder, which stores the first antenna element, and the second protruding cylinder, which stores the second antenna element, is changed by rotation of at least one of the first and second rotary cylinders, an appropriate communication environment is created. Consequently, the antenna device may achieve good quality communication.
In the aforementioned configuration, a first inclination angle of the first rotational axis with respect to a center line, which halves a second included angle between the first and second rotational axes, and a second inclination angle of the second rotational axis with respect to the center line may be ranged from 30° to 60°.
According to the aforementioned configuration, since the first inclination angle of the first rotational axis with respect to the center line, which halves the second included angle between the first and second rotational axes, and the second inclination angle of the second rotational axis with respect to the center line is ranged from 30° to 60°, it becomes easier for a user to appropriately set the first included angle. Consequently, the antenna device may achieve good quality communication.
In the aforementioned configuration, the first and second inclination angles may be ranged from 40° to 50°.
According to the aforementioned configuration, since the first and second inclination angles are ranged from 40° to 50°, it becomes easier for the user to appropriately set the first included angle. Consequently, the antenna device may achieve good quality communication.
In the aforementioned configuration, the first protruding cylinder may protrude from the first rotary cylinder at the first inclination angle. The second protruding cylinder may protrude from the second rotary cylinder at the second inclination angle.
According to the aforementioned configuration, since the first protruding cylinder protrudes from the first rotary cylinder at the first inclination angle and the second protruding cylinder protrudes from the second rotary cylinder at the second inclination angle, it becomes easier for the user to appropriately set the first included angle. Accordingly, the antenna device may achieve good quality communication.
In the aforementioned configuration, the first and second protruding cylinders situated on a reference surface defined by the first and second rotational axes may extend along the center line.
According to the aforementioned configuration, since the first and second protruding cylinders situated on the reference surface defined by the first and second rotational axes extend along the center line, it becomes easier for the user to appropriately set the first included angle. Consequently, the antenna device may achieve good quality communication.
In the aforementioned configuration, the first rotary cylinder may include a first distal end which protrudes from a joint portion between the first rotary cylinder and the first protruding cylinder along the first rotational axis. The second rotary cylinder may include a second distal end which protrudes from a joint portion between the second rotary cylinder and the second protruding cylinder along the second rotational axis.
According to the aforementioned configuration, since the first rotary cylinder includes the first distal end which protrudes from the joint portion between the first rotary cylinder and the first protruding cylinder along the first rotational axis, the user may intuitively rotate the first rotary cylinder around the first rotational axis. Since the second rotary cylinder includes the second distal end which protrudes from the joint portion between the second rotary cylinder and the second protruding cylinder along the second rotational axis, the user may intuitively rotate the second rotary cylinder around the second rotational axis. Consequently, it becomes easier for the user to appropriately set the first included angle. Accordingly, the antenna device may achieve good quality communication.
In the aforementioned configuration, the antenna device may further include a first holder configured to hold the first rotary cylinder in the housing, and a second holder configured to hold the second rotary cylinder in the housing. The first rotary cylinder may be formed with a first annular groove depressed so that the first holder is fitted in the first annular groove. The second rotary cylinder may be formed with a second annular groove depressed so that the second holder is fitted in the second annular groove. The housing may include an outer wall formed with through holes through which the first and second rotary cylinders extend. An outer diameter of the first rotary cylinder held by the outer wall may be larger than an outer diameter of the first rotary cylinder defined by the first annular groove. An outer diameter of the second rotary cylinder held by the outer wall may be larger than an outer diameter of the second rotary cylinder defined by the second annular groove.
According to the aforementioned configuration, since the first rotary cylinder is held by the first holder fitted in the first annular groove in the housing and the outer wall of the housing, mechanical strength of the first element cover is increased. Since the second rotary cylinder is held by the second holder fitted in the second annular groove in the housing and the outer wall of the housing, mechanical strength of the second element cover is increased.
Since the outer diameter of the first rotary cylinder held by the outer wall is larger than the outer diameter of the first rotary cylinder defined by the first annular groove, there may be little damage to the first rotary cylinder resultant from stress concentration given to the first rotary cylinder by the outer wall. Since the outer diameter of the second rotary cylinder held by the outer wall is larger than the outer diameter of the second rotary cylinder defined by the second annular groove, there may be little damage to the second rotary cylinder resultant from stress concentration given to the second rotary cylinder by the outer wall.
In the aforementioned configuration, the antenna device may further include a main holder, which is overlapped with the first and second holders and fitted in the first and second annular grooves. The main holder may hold the first and second rotary cylinders simultaneously.
According to the aforementioned configuration, the main holder which is overlapped with the first and second holders is fitted in the first and second annular grooves. Since the main holder holds the first and second rotary cylinders simultaneously, a positional relationship between the first and second element covers is appropriately maintained. Consequently, appropriate communication environment is maintained.
In the aforementioned configuration, the housing may include a first case, which has the outer wall, and a second case, which is overlapped with the first case. The second case may include an attachment surface to which the processor is attached.
According to the aforementioned configuration, the first and second element covers are attached to the first case. The processor is attached to the second case. Consequently, it becomes easy to assemble the antenna device.
In the aforementioned configuration, the housing, the first element cover and the second element cover may be made of resin.
According to the aforementioned configuration, since the housing, the first element cover and the second element cover are made of resin, the antenna device becomes inexpensive.
In the aforementioned configuration, the housing may include a connector connected to an actuator which executes a predetermined operation in response to a processing signal output from the processor. The connector may be detachable from the actuator.
According to the aforementioned configuration, the antenna device is connected to the actuator via the connector. The actuator executes a predetermined operation in response to a processing signal processed by the processor. The connector is detachable from the actuator. As described above, since the first included angle defined between the first protruding cylinder, which stores the first antenna element, and the second protruding cylinder, which stores the second antenna element, is changed by rotation of at least one of the first and second rotary cylinders, an appropriate communication environment is created even when the antenna device attached to the actuator is placed in a limited space. Accordingly, the antenna device may achieve good quality communication.
A manufacturing method for the antenna device according to another aspect of the aforementioned embodiment includes steps of: inserting the first and second rotary cylinders into the through holes to incorporate the first case, the first element cover and the second element cover; fitting the first holder in the first annular groove and the second holder in the second annular groove; rotating the first and second rotary cylinders to place the first holder between the first rotary cylinder and the first case and the second holder between the second rotary cylinder and the first case and expose the first and second annular grooves, fitting the main holder in the exposed first and second annular grooves; and overlapping the second case with the first case.
According to the aforementioned configuration, the first and second rotary cylinders are inserted into the through holes formed in the outer wall of the housing. After incorporation of the first case, the first element cover and the second element cover, the first holder is fitted in the first annular groove. The second holder is fitted in the second annular groove. By rotation of the first and second rotary cylinders, the first holder is situated between the first rotary cylinder and the first case. The second holder is situated between the second rotary cylinder and the first case. Meanwhile, the first and second annular grooves are exposed. The main holder is fitted in the exposed first and second annular grooves. Consequently, the first and second element covers are easily fixed to the first case. The second case is then overlapped with the first case, so that the antenna device is completed. Consequently, the antenna device is easily assembled.
In the aforementioned configuration, the step of overlapping the second case with the first case may include: placing the second case so that an outer surface opposite to the attachment surface faces the first case; making the first antenna element, which extends from the processor, intersect with the second antenna element and inserting the first antenna element into the first protruding cylinder via the first rotary cylinder and the second antenna element extending from the processor into the second protruding cylinder via the second rotary cylinder; reversing the second case so that an intersection between the first and second antenna elements disappears; and overlapping the second case with the first case.
According to the aforementioned configuration, in the step of overlapping the second case with the first case, the second case is placed so that the outer surface opposite to the attachment surface faces the first case. The first antenna element extending from the processor intersects with the second antenna element, and is inserted into the first protruding cylinder via the first rotary cylinder. The second antenna element extending from the processor is inserted into the second protruding cylinder via the second rotary cylinder. The second case is then reversed so that the intersection between the first and second antenna elements disappears. Thereafter, the second case is overlapped with the first case. The first and second antenna elements are easily inserted into the first and second element covers. Therefore, the antenna device is easily assembled.
The principles of the aforementioned embodiment are suitably applied to devices configured to operate under communication of radio waves.
Number | Date | Country | Kind |
---|---|---|---|
2012-052764 | Mar 2012 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2013/000133 | 1/15/2013 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2013/132732 | 9/12/2013 | WO | A |
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Entry |
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International Search Report in corresponding International Application No. PCT/JP2013/000133, dated Apr. 23, 2013, 2 pages. |
Number | Date | Country | |
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20150303578 A1 | Oct 2015 | US |