This application claims benefit of priority under 35 U.S.C. §119 to Japanese Application No. P2012-058698 filed on Mar. 15, 2012, which is expressly incorporated herein by reference in its entirety.
The present invention relates to an RFID reader/writer and an RFID tag system, particularly to an RFID reader/writer and an RFID tag system, which can prevent generation of a null point.
Conventionally, an RFID tag system including an RFID tag and an RFID reader/writer is provided. In such a system, a radio wave transmitted from the RFID reader/writer is reflected by a floor or a wall, the reflected radio wave (a reflected wave) and a direct wave are combined to reach the RFID tag, and the RFID reader/writer receives a response signal of the RFID tag.
The conventional RFID tag system is configured as described above. Sometimes a phase difference between the direct wave and the reflected wave becomes 180 degrees when the radio wave from the RFID tag is reflected by the floor or the wall. At this point, when the direct wave and the reflected wave are incident to the RFID tag, unfortunately the direct wave and the reflected wave are combined and weakened to generate a point (the null point) where a reading error is generated.
The present invention has been devised to solve the problems described above, and an object thereof is to provide an RFID reader/writer and an RFID tag system, in which the null point is not generated.
In accordance with one aspect of the present invention, an RFID reader/writer that conducts communication with an RFID tag includes an antenna that transmits and receives a linearly-polarized radio wave having a polarization plane leaned (i.e., slanted) at a predetermined angle with respect to a reflecting surface.
Preferably the predetermined angle is an angle at which a reflected wave from the reflecting surface and a direct wave from the antenna do not interfere with each other to be weakened.
Preferably the predetermined angle is about 45 degrees.
Preferably the antenna is one of a patch antenna, a dipole antenna, or a slot antenna.
In accordance with another aspect of the present invention, an RFID system includes an RFID tag and an RFID reader/writer, in which the RFID tag and the RFID reader/writer conduct communication with each other, wherein the RFID reader/writer includes an antenna that transmits and receives a linearly-polarized radio wave having a polarization plane leaned at a predetermined angle with respect to a reflecting surface, an antenna of the RFID tag is disposed so as to have a polarization plane identical to the polarization plane of the radio wave, and the antenna of the RFID tag receives and responds to the radio wave emitted from the antenna of the RFID reader/writer.
The RFID reader/writer of the present invention includes the antenna that transmits and receives the linearly-polarized radio wave having the polarization plane leaned at the predetermined angle with respect to the reflecting surface. Therefore, the RFID reader/writer is hardly influenced by a vertical wall surface or a horizontal floor surface, which are frequently provided in an environment where the RFID tag system is generally installed.
As a result, the null point can be reduced to establish the stable communication. An additional component is unnecessary for the RFID reader/writer of the present invention, and the RFID reader/writer can easily be constructed.
Hereinafter, embodiments of the present invention will be described with reference to the drawings.
The controller 20 includes a CPU 23 that controls the controller 20, a transmission data generator 21 that is controlled by the CPU 23 to generate such predetermined transmission data as a command, and a reception data processor 22 that processes received data received from the RFID tag 50. The data generated by the transmission data generator 21 is transmitted to the RFID tag 50 through the transmitter 11 and the antenna 13. A signal from the RFID tag 50 is processed by the reception data processor 22 through the antenna 13 and the receiver 12.
A first embodiment of the present invention will be described below. In the first embodiment, the RFID reader/writer 10 and the RFID tag 50 communicate with each other using slant polarization. As used herein, the slant polarization means that an orientation of a composite wave of a horizontal electric field and a vertical electric field intersects a ground surface or a wall. For example, when being reflected by a floor or the wall, the slant polarization of obliquely right 45 degrees changes to the slant polarization of obliquely left 45 degrees.
At this point, horizontal polarization differs from vertical polarization in a phase when being reflected by the floor. In a metallic surface, because a phase difference between the horizontal polarization and the vertical polarization is about 180° at a reflection point, a reflected wave of the polarization of obliquely right 45 degrees becomes obliquely left 45 degrees.
In a radio wave, which is output from the RFID reader/writer 10 and incident to the floor or the wall in the slant polarization, a polarization direction changes by 90 degrees. Therefore, a direct wave and the reflected wave exist as a cross polarization component at a position of the RFID tag 50. When the cross polarization component exists while the RFID tag is linear polarization, an influence of the reflected wave can be reduced by combining a polarization plane of the RFID tag and a polarization plane of the direct wave.
When both the antennas of the RFID reader/writer and RFID tag are slanted, the reflected wave is not matched with a polarization direction of the antenna of the RFID tag while the direct wave is matched with the polarization direction of the RFID tag, so that the influence of the reflected wave can be largely reduced.
As described in the related art, the generation of the null point can be prevented when the influence of the reflected wave is reduced.
A specific example in which the RFID tag 50 is obliquely placed on an article will be described below.
The antenna 52 of the RFID tag 51 is obliquely placed with respect to the floor surface or the wall surface by way of example. At this point, preferably an antenna of the RFID reader/writer is formed into a rod shape and the rod-shaped antenna is obliquely placed with respect to a horizontal surface and a vertical surface. The largest effect is obtained, when the slants of both the antenna 52 of the RFID tag 51 and the antenna of the RFID reader/writer are combined to obliquely place the antenna 52 of the RFID tag 51 and the antenna of the RFID reader/writer with respect to the floor surface or the wall surface.
The antenna of the RFID reader/writer may be a patch antenna or a slot antenna. For the patch antenna, a feeding point may be disposed such that the slant polarization is generated with respect to the floor surface or the wall surface.
The effect of this case will be described below.
In
In an experimental environment, the null point is generated at a point of 2 m in the case that the antenna is vertically placed, while the influence can largely be reduced in the case that the antenna is obliquely placed. Accordingly, it is found that a large effect to prevent the falling out of the reading exists in the environment in which the slant polarization is dominantly reflected by the floor.
A second embodiment of the present invention will be described below. In the conventional embodiment, as illustrated in
On the other hand, in the second embodiment, the antenna of the RFID tag 54 is obliquely disposed by around 45 degrees with respect to a reflecting surface (the floor or the wall). Such a structure as the floor and the wall is horizontal or vertical to the ground surface, and the structure is rarely obliquely disposed. That is, usually the reflection point is horizontal or vertical to the ground surface. Because the RFID tag is placed on the pallet, frequently the RFID tag is used in the horizontal or vertical state.
Accordingly, in the case that the antenna of the RFID tag is obliquely placed with respect to the ground surface or the wall, the slant polarization is obtained when viewed from most reflection points.
Usually, the RFID tag is attached to a tag attachment part provided in the article, and the tag attachment part is provided parallel or vertical to the side of the rectangular surface constituting the article. Accordingly, the polarization plane can be slanted only by attaching the RFID tag to the rectangular tag attachment part.
In the second embodiment, because the antenna 52b itself of the RFID tag 54 is obliquely provided, the antenna 52b is automatically obliquely placed when a user attaches the RFID tag 54 to the predetermined tag attachment part as usual. Therefore, the user can unintentionally use the slant polarization.
In the second embodiment, the tag case is formed into the rectangular shape by way of example. Alternatively, the tag case may have a polygonal shape including a side that becomes a base when the RFID tag is attached to the article, or an arc shape except the side that becomes the base.
In this case, the same effect as the second embodiment is also obtained.
A third embodiment of the present invention will be described below. In the case that the pallet is used while the RFID tag is attached to the pallet, the pallet is placed in not only the horizontal direction but also the vertical direction. When the RFID tag is obliquely attached to the pallet by correct 45 degrees, the RFID tag can deal with both the horizontally-placed pallet and the vertically-placed pallet. However, actually the RFID tag is not always obliquely attached to the pallet by correct 45 degrees. In this case, in the first and second embodiments, a communication failure is generated, and the RFID tag cannot deal with both the horizontally-placed pallet and the vertically-placed pallet only when the slant polarization is used. For example, in the case that the RFID tag is placed at obliquely right 45 degrees while the pallet is horizontally placed, the RFID tag becomes obliquely left 45 degrees when the pallet is placed upright. In the case that the polarization plane of the RFID reader/writer is set to obliquely right 45 degrees according to the horizontally-placed pallet, the RFID reader/writer cannot read the RFID tag because the polarization plane of the RFID reader/writer is not matched with the polarization plane of the RFID tag.
The system of the third embodiment can deal with such a case.
In the communication field, sometimes transmitting and receiving antennas facing each other are operated in the circular polarization in order to reduce an influence of ground surface reflection. However, usually the antenna of the RFID tag is formed into a dipole shape, and operated as the linear polarization antenna. Accordingly, when attention is focused on the communication between the RFID reader/writer and the RFID tag, an effect of polarization diversity is small, and the maximum polarization plane is determined by the orientation of the RFID tag irrespective of the existence or non-existence of the reflection from the floor. For this reason, the RFID reader/writer transmits and receives the fixed polarization.
In the configuration of the RFID tag system of the third embodiment, the RFID tag conducts communication with the RFID reader/writer while the antenna of the RFID tag is obliquely placed, and the RFID reader/writer combines a maximum ratio using the polarization diversity while separating the vertical polarization and the horizontal polarization.
The patch antenna can be applied to the antenna of the RFID tag in order to transmit the circularly-polarized radio wave.
The reception circuits 34a and 34b receive the horizontal and vertical polarization components, respectively, and the combination circuit 36 logically combines the horizontal and vertical polarization components. The controller 37 reconfigures the data using the combination circuit 36 such that the data always becomes maximum S/N.
A verification of the effect of the third embodiment will be described below. In order to verify the effect of the third embodiment, the horizontal and vertical antennas are manually switched instead of the circuit in
In each of the horizontal polarization H and the vertical polarization V, the reception level varies significantly according to the communication range. However, when the horizontal polarization H and the vertical polarization V are combined to connect the pieces of data having the highest reception levels (a solid line), the high reception level is obtained irrespective of the communication range. That is, it is checked that the null point can be reduced when the maximum ratio is combined with the combination circuit. In this case, the reception level higher than that of the circular polarization CIR for reference is obtained.
In the third embodiment, from the viewpoint of a placement area, the one antenna is used as the transmission and reception antennas. Alternatively, the transmission and reception antennas may be separated.
In the third embodiment, the two reception circuits are provided as illustrated in
The method for processing the horizontal polarization and the vertical polarization in the time-sharing manner is well known as an adaptic array antenna control method by, for example, Japanese Patent No. 4581534. Therefore, the specific description is omitted.
The embodiments of the present invention are described above with reference to the drawings. However, the present invention is not limited to the above embodiments. Various modification and changes can be made without departing from the identical or equivalent scope of the present invention with respect to the illustrated embodiments.
The null point is not generated in the RFID reader/writer of the present invention, so that the RFID reader/writer can advantageously be used.
Number | Date | Country | Kind |
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2012-058698 | Mar 2012 | JP | national |