ANTENNA APPARATUS
20170373373 · 2017-12-28
Inventors
- Sunao TSUCHIDA (Mishima Shizuoka, JP)
- Sadatoshi OHISHI (Fuji Shizuoka, JP)
- Jun Yaginuma (Izunokuni Shizuoka, JP)
Cpc classification
H01Q7/00
ELECTRICITY
H01Q9/0421
ELECTRICITY
G06K7/10316
PHYSICS
G06K7/10356
PHYSICS
G06K7/1097
PHYSICS
G06K7/10009
PHYSICS
International classification
H01Q1/22
ELECTRICITY
G06K7/00
PHYSICS
H01Q7/00
ELECTRICITY
Abstract
According to one embodiment, an antenna apparatus includes a ground plate having an opening, a ground layer on a first side of the ground plate, an antenna on the first side of the ground plate and connected to the ground layer, the antenna being disposed around the opening, and a conductive member on the first side of the ground plate to contact an outer perimeter of the opening. The conductive member is electrically connected to the ground layer.
Claims
1. An antenna apparatus, comprising: a ground plate having an opening therein; a ground layer on a first side of the ground plate; an antenna on the first side of the ground plate and connected to the ground layer, the antenna being disposed around the opening; and a conductive member on the first side of the ground plate to contact an outer perimeter of the opening, wherein the conductive member is electrically connected to the ground layer.
2. The antenna apparatus according to claim 1, wherein the conductive member is a stack of transparent conductive films and has a frame shape corresponding to the opening.
3. The antenna apparatus according to claim 1, wherein the conductive member is a conductive lattice.
4. The antenna apparatus according to claim 1, further comprising: an optical reader disposed on a second side of the ground plate that is opposite the first side, wherein the conductive member covers the entire outer perimeter of the opening and does not substantially block light from the optical reader from passing through the opening.
5. The antenna apparatus according to claim 1, wherein the antenna comprises a plurality of radiation elements.
6. The antenna apparatus according to claim 5, wherein each radiation element comprises: a plate shape conductor bent into a first portion parallel to the ground plate and a bent portion connecting the ground layer to the first portion, and a power supply line spaced from the bent portion along a direction parallel to ground plate, the power supply line passing through the ground plate without electrically contacting the ground layer.
7. The antenna apparatus according to claim 1, wherein the antenna is a ring-shaped element.
8. The antenna apparatus according to claim 7, wherein the opening is circular and has a first diameter, and the antenna has inner ring diameter that is greater than the first diameter.
9. A dual-type reader apparatus, comprising: an optical reader for reading code symbols; and an antenna apparatus for communicating with wireless tags and comprising: a ground plate having an opening therein; an antenna on a first side of the ground plate; and a conductive member on the first side of the ground plate to contact an outer perimeter of the opening, wherein the optical reader is disposed on a second side of the ground plate opposite the first side, such that light from the optical reader can pass through the opening in the ground plate; and the conductive member is electrically connected to the ground layer.
10. The dual-type reader apparatus according to claim 9, further comprising: a support structure to which the optical reader is attached; and a plurality of spacers connecting the ground plate and the support structure, wherein the optical reader is positioned on the support structure such that light emitted from the optical reader passes through the opening.
11. The dual-type reader apparatus according to claim 9, wherein the conductive member is a stack of transparent conductive films and has a frame shape corresponding to the opening.
12. The dual-type reader apparatus according to claim 9, wherein the conductive member is a conductive lattice.
13. The dual-type reader apparatus according to claim 9, wherein the conductive member covers the entire outer perimeter of the opening and does not substantially block light emitted by the optical reader from passing through the opening.
14. The dual-type reader apparatus according to claim 9, wherein the antenna comprises a plurality of radiation elements.
15. The dual-type reader apparatus according to claim 14, wherein each radiation element comprises: a plate shape conductor bent into a first portion parallel to the ground plate and a bent portion connecting the ground layer to the first portion, and a power supply line spaced from the bent portion along a direction parallel to ground plate, the power supply line passing through the ground plate without electrically contacting the ground layer.
16. The dual-type reader apparatus according to claim 9, wherein the antenna is a ring-shaped element.
17. The dual-type reader apparatus according to claim 16, wherein the opening is circular and has a first diameter, and the antenna has inner ring diameter that is greater than the first diameter.
18. A reader apparatus, comprising: a wireless tag reader for reading information from a wireless tag attached to an item; an optical reader for reading code symbols attached to an item; and a controller receiving information from the wireless tag reader and the optical reader and configured to start and stop operations of wireless tag reader and the optical reader, wherein the wireless tag reader includes: a ground plate having an opening therein; a ground layer on a first side of the ground plate; an antenna on the first side of the ground plate and connected to the ground layer, the antenna being disposed around the opening; and a conductive member on the first side of the ground plate to contact an outer perimeter of the opening, wherein the conductive member is electrically connected to the ground layer, and the optical reader is disposed on a second side of the ground plate so as to emit light, for reading code symbols, through the opening.
19. The reader apparatus according to claim 18, wherein the wireless tag is a RFID tag.
20. The reader apparatus according to claim 18, wherein the code symbols are QR-type codes.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008]
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
DETAILED DESCRIPTION
[0016] In an antenna apparatus with a rectangular opening, as described above, the opening is grounded, and thus a front-to-back ratio (FB ratio) is deteriorated. That is, radiation of radio waves by the antenna in a backward direction is stronger and it is thus susceptible to influence from unwanted sources in the back of the antenna.
[0017] Therefore, an exemplary embodiment provides an antenna apparatus for reading information of a wireless tag which suppresses radiation of radio waves by the antenna in a backward direction without hindering light passing through in a reading range of an optical reader or the like.
[0018] In general, according to one embodiment, an antenna apparatus includes a ground plate having an opening, a ground layer on a first side of the ground plate, an antenna on the first side of the ground plate and connected to the ground layer, the antenna being disposed around the opening, and a conductive member on the first side of the ground plate to contact an outer perimeter of the opening. The conductive member is electrically connected to the ground plate.
[0019] Hereinafter, a first embodiment will be described with reference to
[0020] As described in
[0021] According to the embodiment, the antenna apparatus 100 is to be used in a wireless tag communication device 200 that is combined with an optical reader 400 to provide a dual-type (optical code/wireless tag) reader system.
[0022] Next, the antenna apparatus 100 will be described in detail with reference to
[0023] The four radiation elements 101 are disposed around the opening 104 on the first plate surface 102a of the substrate 102. As shown in
[0024] Next, a configuration of the radiation elements 101 will be described with reference to
[0025] One radiation element 101 includes a plate shape conductor bent into a parallel portion 101a in parallel with the substrate 102 and a bent portion 101b connected to the ground layer of the first plate surface 102a. Furthermore, on the parallel portion 101a, a power supply line 103 extends downward in
[0026] The radiation element 101 includes a portion 102c, which is proximate to the power supply line 103, on the first plate surface 102a of the substrate 102. In the portion 102c, a part of the ground layer, for example, copper foil, is peeled and an insulation layer, such as resin and ceramic, is exposed. A through hole 102d is provided in the portion 102c, and the power supply line 103 passes through the through hole 102d. The power supply line 103 passes through the substrate 102 without being connected to the ground layer of the first plate surface 102a. Accordingly, the power supply line 103 is connected to the power supply unit, including a power supply pattern such as a micro-strip line, on the second plate surface 102b. The power supply unit may have a connector for connecting to the wireless tag communication device 200 via a coaxial cable and the connector may distribute electricity to each power supply line 103. In addition, each power supply line 103 may have a connector for connecting to a coaxial cable. Consequently, electricity is supplied from the power supply unit to the radiation elements 101 through the power supply line 103, and radio waves are radiated by the radiation elements 101, excited by the supplied electricity.
[0027]
[0028] In addition, a fixing screw 407 on the lower end of each spacer 406 extends through a hole on the substrate 102 and protrudes from a lower surface of the fixed plate 403 in
[0029] Here, the light axis 401 of the optical reader 400 is located at approximately the center of the opening 104 of the substrate 102. In
[0030] Next, the conductive member 105 will be described. In the embodiment, the conductive member 105 is a stack of transparent conductive films (for example, indium tin oxide (ITO) film or silver nanowire film), through which light passes, in a rectangular frame shape. As described in
[0031] Next, operations and effects of the antenna apparatus 100 will be described. In the antenna apparatus 100, the conductive member 105 is disposed so as to cover the entire circumferential edge portion of the opening 104 of the substrate 102. Thus, it is possible to suppress radiation of radio waves to the backside of the antenna apparatus 100.
[0032]
[0033] In addition,
[0034] In the antenna apparatus 100, by disposing the conductive member 105 so as to cover the entire circumferential edge portion of the opening 104 of the substrate 102, it is possible to suppress radiation of radio waves to backside direction (180° direction) of the antenna apparatus 100 according to increase of the FB ratio as described in
[0035] In the embodiment, as described in
[0036] Furthermore, in the embodiment, approximately the entire region of the first plate surface 102a of the substrate 102 is the ground layer. However, the conductive member 105 may be attached to approximately the entire region of the first plate surface 102a of the substrate 102 as a ground layer, without providing a conductive layer on the first plate surface 102a.
[0037]
[0038] In the second embodiment, an approximately rectangular opening 104b that has an opening area smaller than that of the opening 104 of the first embodiment is provided approximately at the center of the substrate 102. The opening area of the opening 104b is greater than at least the reading range 402 of the optical reader 400.
[0039] The lattice-shaped conductor 421 is disposed so as to cover the entire circumferential edge portion of the opening 104b on the substrate 102. Thus, the lattice-shaped conductor 421 has a shape which does not block the reading range 402. The lattice-shaped conductor 421 is electrically connected to the ground layer of the first plate surface 102a by solder. Accordingly, the antenna apparatus 1001 of the second embodiment does not hinder the reading of code symbol 500 by the optical reader 400.
[0040]
[0041] According to these various embodiments, it is possible to provide an antenna apparatus for a wireless tag communication device for which the radiation of radio waves in a backward direction is suppressed without hindering light needed for reading by an optical reader or the like.
[0042] While certain embodiments have been described, these embodiments have been presented by way of example only, and are not intended to limit the scope of the inventions. Indeed, the novel embodiments described herein may be embodied in a variety of other forms; furthermore, various omissions, substitutions and changes in the form of the embodiments described herein may be made without departing from the spirit of the inventions. The accompanying claims and their equivalents are intended to cover such forms or modifications as would fall within the scope and spirit of the inventions.