Communication control method for communication device, article management instrument, and article management system
The communication control method enhances the responsiveness of energy harvesting communication devices by using multiple antennas to maintain voltage and quickly resume communication after radio wave blocking.
Patent Information
- Application Number
- JP2022060052
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-31
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2042-03-31
AI Technical Summary
Communication devices equipped with energy harvesting technology experience delayed event detection when radio waves are blocked by metal-containing members, leading to unresponsive communication.
A communication control method using multiple antennas, including a communication antenna and an energy harvesting antenna, where a capacitor is charged by the energy harvesting antenna to maintain a predetermined voltage, allowing immediate resumption of communication after the blocking is removed.
Improves the responsiveness of communication by maintaining capacitor voltage and enabling immediate resumption of communication after radio waves are unblocked.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a communication control method for a communication device, an article management appliance, and an article management system. [Background technology]
[0002] Energy harvesting has been known as a technology for converting environmental energy, such as sunlight, vibration, heat, and electromagnetic fields, into electric power. For example, Figure 3 of Patent Document 1 describes an energy harvesting technique for converting a surrounding electromagnetic field into electric power, in which an electromagnetic field of a predetermined frequency input from an antenna is converted into a usable AC voltage, the AC voltage is rectified to generate a DC output, and the generated DC output is supplied to a charge storage unit formed of a capacitor. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Special Publication No. 2020-525928 Summary of the Invention [Problem to be solved by the invention]
[0004] Generally, when a metal-containing member containing a metal substance is placed close to a communication device such as a wireless tag or when the communication device is covered with a metal-containing member, the radio waves emitted by the communication device are blocked by the metal-containing member, making communication impossible. Therefore, the inventors of the present application came up with the idea of detecting a specific event by blocking or not blocking the radio waves emitted by a communication device that implements energy harvesting technology that converts the surrounding electromagnetic field into electricity. The specific event could be, for example, an event indicating that a lid has been placed on an item to which the communication device is attached or an event indicating that an item connected to the communication device has been picked up.
[0005] However, as a result of the inventor's extensive research into event detection, it was found that there is a problem with responsiveness when detecting events using a communication device equipped with energy harvesting technology. That is, when radio waves emitted by a communication device are blocked by a metal-containing member and then the metal-containing member is removed, it takes time for radio waves to be emitted from the communication device after the blocking is removed, which results in the problem that the occurrence of an event cannot be detected in a timely manner.
[0006] Therefore, an object of the present invention is to improve the responsiveness of communication in response to whether or not radio waves emitted by a communication device incorporating energy harvesting technology are blocked. [Means for solving the problem]
[0007] One aspect of the present invention is a communication control method for a communication device that has multiple antennas including a communication antenna for communicating with a wireless device and an energy harvesting antenna for obtaining energy from surrounding radio waves, and a capacitor that is charged based on the energy obtained by the energy harvesting antenna, and that communicates with the wireless device when the voltage of the capacitor is equal to or greater than a predetermined value. This method is a metal-containing member is placed close to the communication antenna among the plurality of antennas, or at least a part of the communication antenna is covered with the metal-containing member, thereby blocking communication between the communication device and the wireless device; the communication device charges the capacitor based on the energy obtained by the energy harvesting antenna, regardless of whether the communication device is able to communicate with the wireless device, and maintains the voltage of the capacitor at or above the predetermined value; bringing the metal-containing member close to the communication antenna, or, when the metal-containing member is no longer covering at least a portion of the communication antenna, resuming communication between the communication device and the wireless device. [Effects of the Invention]
[0008] According to an aspect of the present invention, it is possible to improve the responsiveness of communication to whether or not radio waves emitted by a communication device incorporating energy harvesting technology are blocked. [Brief explanation of the drawings]
[0009] [Figure 1] FIG. 1 is a diagram illustrating an application example of a product management system according to an embodiment, showing a state in which products are placed on a product shelf. [Figure 2] FIG. 2 is a side view of products placed on a product shelf in the system application example shown in FIG. 1. [Figure 3] 1 is a diagram illustrating the structure of a cord winding tool in a product management system according to an embodiment. [Figure 4] 4A and 4B are cross-sectional views of the cord winding device shown in FIG. 3 in a state where the cord is not pulled out and a state where the cord is pulled out. [Figure 5] 4A and 4B are diagrams illustrating the shape of a housing member. [Figure 6] 10A and 10B are diagrams illustrating the positional relationship between an IoT tag and a storage member when the code is not pulled out and when the code is pulled out in a product management system according to an embodiment. [Figure 7] FIG. 7 is an enlarged cross-sectional view of the cross section BB of FIG. 6. [Figure 8] 7A and 7B are diagrams illustrating the positional relationship between an IoT tag and a housing member containing a metal-containing member of a different shape from that shown in FIG. 6, in a state where the cord is not pulled out and a state where the cord is pulled out. [Figure 9] FIG. 2 is a block diagram showing the internal configuration of each device of the product management system according to the embodiment. [Figure 10] 7A and 7B are diagrams illustrating the positional relationship between an IoT tag and a housing member containing a metal-containing member of a different shape from that shown in FIG. 6, in a state where the cord is not pulled out and a state where the cord is pulled out. [Figure 11]This figure explains the positional relationship between the IoT tag and the housing member when the cord is not pulled out and when the cord is pulled out, when an IoT tag arranged in a different orientation from Figure 8 is placed on a plate. DETAILED DESCRIPTION OF THE INVENTION
[0010] In this disclosure, the term "item" refers to a tangible object such as a commodity, a finished product, a semi-finished product (a product in an intermediate stage during manufacturing), a mockup, etc. In the following embodiments, an example of an item is a sales promotion item (also referred to as POSM (Point of Sale Material)). In the present disclosure, the term "metal-containing member" is not limited to a member containing a single metal element, but also includes a member containing a compound containing a metal element.
[0011] The product management system of one embodiment will be described in more detail below with reference to the drawings, taking an example in which the product is an electric shaver. In one embodiment, the product management system is configured to efficiently obtain useful marketing information by placing promotional products (POSM) in stores so that they can be sampled and automatically measuring the time and frequency at which customers pick up the promotional products. There are no restrictions on promotional products (hereinafter simply referred to as "products"), but they are preferably products that customers will want to pick up and try, such as, but not limited to, electric shavers, digital cameras, video cameras, smartphones, etc. Products can be widely applied to stationery such as pencil cases and fountain pens, cosmetics such as perfumes, lipsticks, and foundations, portable game consoles, home appliances such as handheld cleaners, laundry softeners, and even fragrance samples.
[0012] FIG. 1 shows six electric shavers, POSM products 7-1 to 7-6, displayed on a shelf 3 for trial use. FIG. 2 is a side view of the products placed on the shelf 3. In the following description, when referring to products 7-1 to 7-6, they will be referred to as "product 7." As shown in Fig. 1, six products 7-1 to 7-6 are stored in recesses H-1 to H-6 provided in holders 30 of product shelf 3, and labels PL1 to PL6 for explaining the products to customers are placed near each holder. In the following description, when referring to recesses H-1 to H-6 in general, they will be referred to as "recess H."
[0013] FIG. 2 shows a single product 7 in a state where the product 7 is not held by the holder 30 (solid lines) and a state where the product 7 has been removed from the holder 30 (phantom lines). As shown in FIG. 2, the product shelf 3 has legs 34, a base 33 supported by the legs 34, and a holder 30 fixed onto the base 33. The holder 30 has a support part 31 in which a recess H is formed for supporting the bottom part of the product 7, and a backrest part 32. The backrest part 32 is a plate-like member extending upward from the support part 31 and is capable of supporting the back part of the product 7.
[0014] As shown in Fig. 2, one end of a cord 15 (an example of a linear member) is attached to the bottom of the product 7. The other end of the cord 15 is attached to a cord winding tool 10 (an example of an article attachment tool). In one embodiment, the cord winding tool 10 is fixed to the base 33 of the product shelf 3, but the fixing method is not limited thereto, and any known fixing method can be used, such as double-sided tape, adhesive, or fastening with screws. A cord 15 and a cord winding device 10 are provided for each product 7. Therefore, when six products 7 are displayed as shown in FIG. 1, six sets of cords 15 and cord winding devices 10 are provided.
[0015] The cord winding device 10 is capable of retractably pulling out and winding up the cord 15. The length of the cord 15 is set so that a customer can adequately sample the product 7 when picking it up. When a customer picks up the product 7 in the holder 30, the cord 15 is pulled out from the cord winding device 10, and the product 7 can be removed from the holder 30 with the cord 15 still attached. When the product 7 is returned to the holder 30, the cord 15 is wound up by the cord winding device 10.
[0016] As shown in FIG. 2, a plate 5 is fixed to the cord 15, to which an IoT (Internet of Things) tag T (an example of a communication device) is attached. The IoT tag T is an example of an energy-harvesting communication device that collects radio waves from the surrounding environment, converts them into electricity, and has a capacitor to store the electricity, but does not have a battery. In the following description, the IoT tag T will be simply referred to as the tag T. The tag T stores a tag ID that is different for each product 7 connected to the cord 15 to which the tag T is attached. The tag ID is identification information for the tag T.
[0017] The maximum communication distance of the tag T is not limited, but is, for example, in the range of 3 to 10 meters. The tag T is configured to perform wireless communication with low power consumption, and examples of communication protocols include Bluetooth (registered trademark) Low Energy (hereinafter referred to as BLE), Bluetooth (registered trademark), and ZigBee (registered trademark). The following description will be given using an example of communication using BLE. When the tag T complies with the BLE standard, it broadcasts advertising packets (hereinafter simply referred to as "packets") at predetermined intervals (for example, every short time of about 1 to 10 seconds). The packets transmitted by the tag T include at least the tag ID.
[0018] As shown in FIG. 1, a wireless device 2 for performing BLE communication with a tag T corresponding to each product 7 is placed near a product shelf 3. As will be described later, the wireless device 2 is a gateway device that can communicate with a tag management server (described later) via a network. As shown in FIG. 2, the wireless device 2 is placed in a position where it can receive packets transmitted from each tag when no product is placed in each holder. In other words, the wireless device 2 is placed taking into consideration the radio wave output of each tag. As shown in FIG. 1, the wireless device 2 is indicated by a virtual line, and the location of the wireless device 2 can be set arbitrarily.
[0019] 1, a reference tag Tref is preferably placed on the product shelf 3. The reference tag Tref is a tag for reference, and is a device having the same configuration as the tag T corresponding to each product 7. The reference tag Tref may be placed anywhere as long as it can communicate with the wireless device 2 regardless of whether the products 7-1 to 7-6 are held in their corresponding holders. The reference tag Tref is provided to determine whether the wireless device 2 is operating normally. In particular, as will be described later, when all of the products 7-1 to 7-6 are held in their holders, the wireless device 2 may not be able to receive the radio waves transmitted from the tags T corresponding to each product 7. Therefore, if the reference tag Tref were not provided, it would be difficult to determine whether the system is operating normally. Therefore, by providing a reference tag Tref that can communicate with the wireless device 2 regardless of whether the products 7-1 to 7-6 are held in their corresponding holders, it becomes possible to determine whether the system is operating normally.
[0020] Next, the configuration of the cord winding tool 10 will be described with reference to FIGS. Fig. 3 shows a plan view and an AA cross-sectional view of the cord winding device 10. As shown in Fig. 3, the cord winding device 10 is substantially disk-shaped, and is provided on its periphery with a protruding portion 10d having a through-hole 10da formed therein for pulling out and winding the cord 15. As shown in the AA cross section, the cord winding device 10 has a cord winding part 13 and a spiral spring 14 (an example of a biasing member) provided in a storage space formed by a lower case 11 and an upper case 12. The cord winding part 13 is configured to be rotatable around a spring support part 11c that protrudes from the center of the bottom of the lower case 11. One end of a cord 15 is attached to the cord winding part 13, and the cord winding part 13 has an outer circumferential groove 13d formed therein for winding the cord 15.
[0021] One end of the power spring 14 is supported by the spring support portion 11c, and when the cord winding portion 13 rotates around the spring support portion 11c and the cord 15 is pulled out, the power spring 14 is wound up. Therefore, when the cord 15 is pulled out, a biasing force is generated in the direction of winding the cord 15. As shown in FIG. 2, the biasing force acts in a direction from the bottom of the product 7 toward the protruding portion 10d of the cord winding device 10 (an example of a first direction). Fig. 4 is a plan view of the cord winding device 10 in a state where the cord 15 is not unwound and a state where the cord 15 is unwound. Note that Fig. 4 shows the cord winding device 10 in cross section. As shown in Fig. 4, when the cord 15 is not unwound, the spiral spring 14 is not wound up, and the restoring force of the spiral spring 14 does not act on the cord 15, or if it does, it is very slight. On the other hand, when the cord 15 is unwound, the cord 15 is unwound and the spiral spring 14 is wound up, and the restoring force F of the spiral spring 14 acts in a direction to wind the cord 15.
[0022] Next, the configuration of the housing member 9 (an example of a device housing section) will be described with reference to Fig. 5. Fig. 5 includes a plan view, an arrow view, and a partially cutaway cross-sectional view of the housing member 9. The housing member 9 is a member for housing the plate 5 to which the tag T is attached, and as shown in FIG. 2, the cord 15 is inserted through it. As shown in the plan view and the arrow view of Fig. 5, the storage member 9 is in the form of a flat plate, and has a cavity 9H formed therein that can store the plate 5. The storage member 9 has an opening 91a through which the plate 5, to which the tag T is attached, enters or exits the cavity 9H, and an opening 91b through which the cord 15 is inserted. The main body 91 of the storage member 9 has a bottom 911 and an upper part 912 joined together, thereby forming the cavity 9H. The bottom 911 and the upper part 912 are made of, for example, resin, and are joined together by welding, for example.
[0023] 5, a metal-containing member 92 is provided at each of a bottom 911 and an upper part 912 of a main body 91 in a cavity 9H. As can be seen in the view from an arrow X, an example is shown in which the metal-containing member 92 is disposed near the center of the bottom 911 and the upper part 912. The metal-containing member 92 is, for example, a name paper made by laminating a transparent PET film, an aluminum vapor deposition layer (film), a base material, and an adhesive in this order. The metal-containing member 92 may be a sheet with foil paper attached, or may be aluminum foil. The metal-containing member 92 is provided to selectively block communication with the communication antenna 42 of the tag T on the plate 5 when the plate 5 is housed in the housing member 9, thereby providing an electromagnetic shielding function.
[0024] 5, the height of the cavity 9H is generally uniform, but this is not limited to this. To smoothly accommodate the plate 5 in the cavity 9H, the height of the cavity 9H at and near the opening 91a may be made higher than other parts to widen the opening 91a.
[0025] Next, the relationship between the plate 5 to which the tag T is attached and the container member 9 in the product management system 1 will be described with reference to FIGS. Fig. 6 shows the positional relationship between the tag T and the containing member 9 when the cord 15 is not pulled out from the cord winding device 10 and when the cord 15 is pulled out. The containing member 9 shown in Fig. 6 has the upper part 912 of the main body 91 removed so that the inside can be seen clearly. Fig. 7 is an enlarged cross-sectional view showing the cross section BB of Fig. 6.
[0026] 6, a plate 5 is attached to the cord 15. There is no particular method for attaching the plate 5 to the cord 15, but the cord 15 may be fixed to a pair of holes formed in the plate 5 as shown in the figure, or the cord 15 may be fixed to one surface of the plate 5 with adhesive tape or the like. A tag T is attached to one surface of the plate 5. The plate 5 is preferably made of hard cardboard or a plastic material with relatively high rigidity so that the tag T can smoothly enter and exit the storage member 9.
[0027] The tag T includes a communication antenna 42 and a pair of harvesting antennas 43 formed of conductive metal foil with a predetermined pattern, and an IC chip electrically connected to each antenna. Each antenna and IC chip of the tag T are mounted on a film-like substrate. An adhesive is applied to the substrate, and the substrate is attached to one surface of the plate 5 by the adhesive. Note that only the communication antenna 42 of the tag T is shown in FIG. 7. The communication antenna 42 is an antenna for transmitting and receiving signals to and from the wireless device 2 in accordance with the BLE standard. The harvesting antenna 43 is an antenna for receiving ambient radio waves for energy harvesting, and is an example of an energy harvesting antenna. The cord winding device 10, the tag T, and the storage member 9 constitute an article management device of one embodiment.
[0028] When the product 7 is held in the holder 30, the cord 15 is wound around the cord winding device 10 and is not pulled out. In this state, as shown in Figure 6, the plate 5 attached to the cord 15 is accommodated in the storage member 9 due to the restoring force of the cord winding device 10. The restoring force acting on the plate 5 draws the storage member 9 toward the protruding portion 10d of the cord winding device 10. As shown in Fig. 6, when the plate 5 is housed in the housing member 9, the communication antenna 42 of the tag T overlaps with the metal-containing member 92, but the harvesting antenna 43 of the tag T does not overlap with the metal-containing member 92. As shown in the cross-sectional view of Fig. 7, the communication antenna 42 of the tag T is covered by and in close proximity to the metal-containing member 92 across the plate 5. As a result, the electromagnetic shielding function of the metal-containing member 92 selectively acts only on the communication antenna 42 out of the communication antenna 42 and the pair of harvesting antennas 43.
[0029] On the other hand, when the product 7 is removed from the holder 30, the cord 15 is pulled out from the cord winder 10. In this state, the plate 5 attached to the cord 15 retracts from the housing member 9, exposing the tag T on the plate 5. As a result, the electromagnetic shielding function of the metal-containing member 92 does not act on the communication antenna 42 of the tag T, and the tag T becomes able to communicate with the wireless device 2.
[0030] Like FIG. 6, FIG. 8 shows the positional relationship between the tag T and the storage member 9 when the cord 15 is not pulled out from the cord winding device 10 and when the cord 15 is pulled out. FIG. 8 differs from FIG. 6 in that the metal-containing member 92A of the storage member 9A shown in FIG. 8 is wider than the metal-containing member 92 of the storage member 9 in FIG. 6. In FIG. 8, when the cord 15 is not pulled out, that is, when the plate 5 is stored in the storage member 9A, part of the pair of harvesting antennas 43 of the tag T overlaps with the metal-containing member 92A. However, even when part of the pair of harvesting antennas 43 of the tag T overlaps with the metal-containing member 92A, the reception performance of the harvesting antennas 43 does not deteriorate significantly.
[0031] Next, the configuration of each device in the product management system 1 according to an embodiment will be described with reference to FIG. FIG. 9 is a block diagram showing the internal configuration of each device in the product management system 1 of this embodiment.
[0032] 9, the product management system 1 includes a wireless device 2 and a tag management server 6 (an example of a measurement device) that can communicate with the wireless device 2 via a network NW. The network NW is not limited to, but may be, for example, a LAN (Local Area Network), a WAN (Wide Area Network), a mobile communication network, the Internet, etc. The wireless device 2 functions as a BLE wireless terminal that receives packets from the tag T and the reference tag Tref via BLE communication. When the wireless device 2 receives a packet from each tag, it transmits the tag ID included in the received packet to the tag management server 6. When the tag T and the reference tag Tref can transmit packets normally, they transmit packets at predetermined intervals, and in response, the wireless device 2 also transmits its tag ID to the tag management server 6 at predetermined intervals.
[0033] 9, the tag T includes a control unit 41, a communication antenna 42, a harvesting antenna 43, a harvesting unit 44, a voltage control unit 45, and an RF communication unit 46. The control unit 41, the harvesting unit 44, the voltage control unit 45, and the RF communication unit 46 are implemented in an IC chip. Note that the configuration of the tag T will be described below, but the configuration of the reference tag Tref, not shown in FIG. 10, is the same as that of the tag T.
[0034] The control unit 41 has a microprocessor and a memory 411, and controls the entire tag T. The memory 411 is a RAM (Random Access Memory) and / or a ROM (Read Only Memory), and stores a tag ID, which is identification information unique to the tag T, in addition to programs executed by the microprocessor.
[0035] The harvesting unit 44 harvests energy from radio waves in the surrounding environment (e.g., radio waves from surrounding wireless communications) received by the harvesting antenna 43, and stores the generated power in an internal capacitor 442. In this embodiment, the harvesting unit 44 converts, for example, a radio signal received by the harvesting antenna 43 into a DC voltage using a voltage multiplier 441, and stores the DC voltage in the capacitor 442. The voltage multiplier 441 is, for example, a Dickson voltage multiplier circuit (charge pump), but is not limited thereto. The capacitor 442 may be configured on a semiconductor chip (i.e., an on-die type capacitor), or may be formed separately from the semiconductor chip.
[0036] The radio waves received by the harvesting antenna 43 for power generation are radio waves in a plurality of different frequency bands within a wide frequency range, such as radio waves generated by wireless communication in the frequency bands used in so-called mobile communication systems such as 3G to 5G, radio waves generated by wireless communication in the frequency bands used in communication standards such as Bluetooth (registered trademark) and Wi-Fi (registered trademark), radio waves generated by wireless communication in the 2.4 GHz band typified by communication protocols such as ZigBee (registered trademark) and Thread, and radio waves generated by wireless communication in the frequency bands used in RFID (for example, the 900 MHz band and the 13.56 MHz band).
[0037] The voltage control unit 45 supplies an operating voltage to the control unit 41 and the RF communication unit 46, and also monitors the voltage of the capacitor 442, and switches the power mode according to the monitoring result. For example, when the voltage of capacitor 442 is equal to or lower than a predetermined value, the power mode is set to a first mode in which only the minimum circuitry is operated, and at this time, the control unit 41 and RF communication unit 46 do not generate packets or transmit wireless signals. When the voltage of capacitor 442 is charged to a predetermined value or higher, the power mode is set to a second mode in which a normal processing routine is executed, and at this time, the control unit 41 and RF communication unit 46 perform various processes including generating packets and transmitting wireless signals.
[0038] The RF communication unit 46 performs a predetermined digital modulation (e.g., GFSK (Gaussian Frequency Shift Keying)) on the packet (baseband signal) to be transmitted, then performs quadrature modulation, and sends out a high-frequency signal (in the case of BLE, a signal in the 2.4 GHz frequency band) to the communication antenna 42. The communication antenna 42 transmits high-frequency radio signals (packets) sent by the RF communication unit 46. The tag T may have a sensor that detects the movement or the ambient temperature of the tag T. In this case, the packet transmitted from the tag T to the wireless device 2 includes the sensor detection data.
[0039] As shown in FIG. 9, the wireless device 2 includes a control unit 21, an antenna 22, an RF communication unit 23, and a communication unit 24. The control unit 21 is mainly configured with a microprocessor, and controls the entire wireless device 2. For example, when the control unit 21 acquires a tag ID from a packet received from the tag T, the control unit 21 controls the communication unit 24 to transmit the acquired tag ID to the tag management server 6. If the packet contains sensor detection data from the tag T, the tag ID and the detection data are associated with each other and transmitted to the tag management server 6. The RF communication unit 23 detects the radio signal received from the tag T via the antenna 22, converts it into a baseband signal, and performs predetermined digital demodulation to receive a packet. In addition, in order to transmit a beacon signal from the antenna 22, the RF communication unit 23 performs quadrature modulation on a baseband signal of a predetermined pattern and sends it to the antenna 22. The communication unit 24 functions as a communication interface for communicating with the tag management server 6.
[0040] As shown in FIG. 9, the tag management server 6 includes, for example, a control unit 61, a storage 62, and a communication unit 63. The control unit 61 is mainly configured with a microprocessor, and controls the entire tag management server 6 . The storage 62 includes a large-scale storage device such as a hard disk drive (HDD) and stores a tag database (tag DB). The tag database associates the tag ID of a tag T with the product code of a product 7 held in a recess H corresponding to the tag T. The storage 62 also stores the tag ID of a reference tag Tref. The communication unit 63 functions as a communication interface for communicating with the wireless device 2.
[0041] By executing the server program, when the wireless device 2 receives a packet including a tag ID transmitted by the tag T and the reference tag Tref, the control unit 61 acquires the tag ID included in the packet from the wireless device 2. Every time the control unit 61 acquires a tag ID included in the tag database from the wireless device 2, it records the acquired tag ID and the time the tag ID was acquired as a tag detection log in the storage 62. That is, the control unit 61 acquires the result of whether the wireless device 2 can communicate with the tag T over time. Based on this tag detection log, the control unit 61 tallies the number of tag detections per predetermined time period and measures the frequency with which customers pick up products with a specific product code. At this time, the product code corresponding to the tag ID is identified by referring to the tag database. The timing of the tallying process can be set arbitrarily. In one example, during the store's business hours of one day, the results of whether or not the wireless device 2 can communicate with the tag T over time are recorded as a tag detection log, and the tallying process is performed based on the tag detection log after the business hours have passed. In other words, the control unit 61 functions as a measuring device that measures the frequency with which the wireless device 2 can communicate with the tag T (i.e., the frequency with which the corresponding product 7 is picked up by customers) based on the results of whether or not the wireless device 2 can communicate with the tag T.
[0042] Similarly, every time the control unit 61 acquires the tag ID of the reference tag Tref from the wireless device 2, it records the acquired tag ID and the time when the tag ID was acquired in the storage 62 as a tag detection log. 1, the reference tag Tref is never blocked, and therefore the tag ID of the reference tag Tref can be acquired at predetermined intervals when the reference tag Tref transmits a packet, unless the wireless device 2 is faulty. If the tag ID of the reference tag Tref cannot be acquired at predetermined intervals, the control unit 61 determines that the wireless device 2 is faulty, and notifies an administrator terminal (not shown).
[0043] Next, referring again to FIG. 6, the operation of the article management device of the embodiment will be described. As described above, when the product 7 is held in the holder 30, the cord 15 is wound around the cord winding device 10 and is not pulled out. In this state, the electromagnetic shielding function of the metal-containing member 92 selectively acts on only the communication antenna 42 out of the communication antenna 42 and the pair of harvesting antennas 43. Therefore, even if the tag T transmits packets from the communication antenna 42, they are either shielded by the metal-containing member 92 or the transmission frequency is significantly reduced. However, because the harvesting antenna 43 is not shielded, it can receive ambient radio waves and maintain a voltage of the capacitor 442 (see FIG. 9) above a predetermined value, enabling the second mode in which a normal processing routine is executed.
[0044] When the product 7 held in the holder 30 is removed from the holder 30, the cord 15 is pulled out from the cord winder 10, and the tag T on the plate 5 is exposed. In this case, the voltage of the capacitor 442 has been maintained at a predetermined value or higher since the tag T was housed in the housing member 9, so packets can be transmitted from the communication antenna 42 immediately after the tag T on the plate 5 is exposed. In other words, after the metal-containing member 92 is no longer covering the communication antenna 42, communication between the tag T and the wireless device 2 can be resumed in a short time that does not pose a practical problem.
[0045] As described above, the communication control method for the tag T in one embodiment includes the following steps. (i) Blocking communication between the tag T and the wireless device 2 by bringing a metal-containing member 92 close to the communication antenna 42 among the multiple antennas of the tag T or by covering at least a part of the communication antenna 42 with the metal-containing member 92. (ii) Regardless of whether the tag T can communicate with the wireless device 2, the tag T charges the capacitor 442 based on the energy obtained by the harvesting antenna 43, and maintains the voltage of the capacitor 442 at a predetermined value or higher. (iii) When the metal-containing member 92 is brought close to the communication antenna 42 or when the covering of at least a part of the communication antenna 42 with the metal-containing member 92 is removed, the tag T resumes communication with the wireless device 2.
[0046] In this way, by selectively shielding only the communication antenna 42 of the multiple antennas of the tag T with the metal-containing member 92, the voltage of the capacitor 442 can be maintained at a predetermined value or higher even while the communication antenna 42 is shielded, and the tag T can be maintained in a state where it can execute a normal processing routine. Therefore, after the shielding of the communication antenna 42 by the metal-containing member 92 is released, a packet can be transmitted to the wireless device 2 immediately. In other words, according to the communication control method for the tag T of one embodiment, it is possible to improve the responsiveness of communication in response to whether or not the radio waves emitted by the tag T are shielded.
[0047] If the tag T is equipped with a sensor, the sensor may operate even while the communication antenna 42 is shielded and store detection data in memory for each detection time. In this case, after the communication antenna 42 is unshielded, it is preferable to transmit to the wireless device 2 a packet including the detection data and the detection time acquired while the communication antenna 42 was shielded.
[0048] The metal-containing member provided on the housing member can have various forms. Figure 10 shows the positional relationship between the tag T and the housing member 9B when the cord is not pulled out and when the cord is pulled out, for a housing member 9B that includes a metal-containing member 92B that has a different shape from that shown in Figure 6. The metal-containing member 92B shown in Figure 10 has a shape that matches the shape of the communication antenna 42 of the tag T, and is configured to cover only the communication antenna 42 when the plate 5 is housed in the housing member 9B. As shown in FIG. 10, various configurations can be adopted depending on the configuration of the communication antenna of the tag T.
[0049] The position of the tag T on the plate 5 may be adjusted to effectively cover the communication antenna 42 of the tag T. For example, FIG. 11 shows the positional relationship between the IoT tag and the housing member when the IoT tag is placed on the plate 5 in an orientation different from that shown in FIG. 8 and when the cord is not pulled out. When the plate 5 shown in FIG. 11 is housed in the housing member 9A, the strip-shaped metal-containing member 92A can effectively cover the communication antenna 42 without covering the harvesting antenna 43. In other words, the attachment position of the tag T on the plate 5 may be adjusted appropriately from the viewpoint of effectively covering only the communication antenna 42.
[0050] Although the embodiments of the communication control method for a communication device, the item management appliance, and the item management system of the present invention have been described above, the present invention is not limited to the above-described embodiments. Furthermore, various improvements and modifications can be made to the above-described embodiments without departing from the spirit and scope of the present invention.
[0051] In the above-described embodiment, a POSM is used as an example of an article, and a system for measuring the frequency with which a POSM is picked up by a customer is described. However, the application of the communication control method for a communication device of the present invention is not limited to this. For example, by attaching a tag to the lid of a container and configuring the metal-containing member to selectively cover only the tag's communication antenna when the lid is closed, the method can be applied to a system that accurately measures the frequency and timing of use of the container. Furthermore, if the tag is equipped with a temperature sensor, temperature data can be collected when the container is used.
[0052] In the above-described embodiment, a case has been described in which communication between tag T and wireless device 2 is blocked by bringing a metal-containing member close to tag T's communication antenna 42 or by covering at least a portion of communication antenna 42 with a metal-containing member, but this is not limited to this. Instead of using a metal member, the same effect can be obtained by placing a radio wave shielding member close to the communication antenna 42 of the tag T, or by covering at least a portion of the communication antenna 42 with a radio wave shielding member to block communication between the tag T and the wireless device 2. The radio wave shielding member is not limited to a member that shields radio waves emitted from the communication antenna 42 of the tag T, but may also be a radio wave absorber that absorbs radio waves emitted from the communication antenna 42. There are no limitations on the radio wave absorber, but examples include a combination of carbon and expanded polystyrene (a radio wave absorber with expanded polystyrene as the base material and utilizing the ohmic loss of carbon), a combination of ferrite and an inorganic material (a radio wave absorber utilizing the magnetic loss of ferrite), a combination of carbon and expanded polyethylene, a combination of a magnetic material and synthetic rubber (for example, a mixture of synthetic rubber with ferrite powder, or a mixture of synthetic rubber with carbonyl iron powder), sintered ferrite, a combination of glass cloth reinforced aluminum foil and a conductive adhesive layer, and a layer of dielectric material. Furthermore, the electromagnetic shielding member may be a member that changes the frequency of the radio waves emitted from the communication antenna 42 to an unintended frequency that prevents communication with the wireless device 2, or a member that superimposes noise on the radio waves emitted from the communication antenna 42 that inhibits communication with the wireless device 2. [Explanation of symbols]
[0053] 1...Product management system 2...Wireless device 21...Control unit 22...Antenna 23...RF communication section 24…Communications Department 3…Product shelf 30...Holder H-1~H-6...Concave 31...Support part 32...Backrest 32h…hole 33...Base 34...legs 5...Plate 6...Tag management server 61...Control unit 62…Storage 63…Communications Department T…IoT tag Tref...Reference tag 41...Control unit 411…Memory 42...Communication antenna 43...Harvesting antenna 44...Harvesting section 441...Voltage multiplier 442...Capacitor 45...Voltage control section 46...RF communication section 7-1~7-6…Products 9, 9A, 9B...housing member 91...Main body 91a, 91b...Aperture 92, 92A, 92B...Metal-containing members 10...Cord winding tool 10d...Protrusion 10da...Through hole 11...Lower case 11c...Spring support part 12...Upper case 13...Cord winding section 13d...Peripheral groove 14...Power spring 15...Code PL1~PL6...Label NW...Network
Claims
1. A communication control method for a communication device comprising a plurality of antennas including a communication antenna for communicating with a wireless device and an energy harvesting antenna for obtaining energy from surrounding radio waves, and a capacitor that is charged based on the energy obtained by the energy harvesting antenna, the communication device communicating with the wireless device when a voltage of the capacitor is equal to or higher than a predetermined value, comprising: a metal-containing member is placed close to the communication antenna among the plurality of antennas, or at least a part of the communication antenna is covered with the metal-containing member, thereby blocking communication between the communication device and the wireless device; the communication device charges the capacitor based on the energy obtained by the energy harvesting antenna, regardless of whether the communication device is able to communicate with the wireless device, and maintains the voltage of the capacitor at or above the predetermined value; bringing the metal-containing member close to the communication antenna or, when covering at least a portion of the communication antenna with the metal-containing member is removed, resuming communication between the communication device and the wireless device. A communication control method for a communication device.
2. the communication device has a sensor that detects movement of the communication device or an ambient temperature; the method includes the wireless device acquiring the sensor data by communicating with the communication device; A communication control method for a communication device according to claim 1.
3. communication between the communication device and the wireless device is performed in accordance with Bluetooth® Low Energy; A communication control method for a communication device according to claim 1 or 2.
4. A communication control method for a communication device comprising a plurality of antennas including a communication antenna for communicating with a wireless device and an energy harvesting antenna for obtaining energy from surrounding radio waves, and a capacitor that is charged based on the energy obtained by the energy harvesting antenna, the communication device communicating with the wireless device when a voltage of the capacitor is equal to or higher than a predetermined value, comprising: a radio wave shielding member is placed close to the communication antenna among the plurality of antennas, or at least a part of the communication antenna is covered with the radio wave shielding member, thereby blocking communication between the communication device and the wireless device; the communication device charges the capacitor based on the energy obtained by the energy harvesting antenna, regardless of whether the communication device is able to communicate with the wireless device, and maintains the voltage of the capacitor at or above the predetermined value; bringing the radio wave shielding member close to the communication antenna, or resuming communication between the communication device and the wireless device when the radio wave shielding member is removed from covering at least a portion of the communication antenna. A communication control method for a communication device.
5. The radio wave shielding member is a radio wave absorber. A communication control method for a communication device according to claim 4.
6. an article attachment tool including a linear member having one end attached to an article and a biasing member that biases the linear member in a first direction from the one end; a communication device attached to the linear member; a device accommodating section capable of accommodating the communication device and having a metal-containing member fixed therein; The communication device A device having a plurality of antennas including a communication antenna for communicating with a wireless device and an energy harvesting antenna for obtaining energy from surrounding radio waves, and a capacitor that is charged based on the energy obtained by the energy harvesting antenna, and that communicates with the wireless device when the voltage of the capacitor is equal to or higher than a predetermined value; the communication device is accommodated in the device accommodating section when no external force that resists the biasing force of the biasing member in the first direction is applied to the article, and is able to retract from the device accommodating section when an external force that resists the biasing force of the biasing member in the first direction is applied to the article; When the communication device is accommodated in the device accommodating section, the communication antenna among the plurality of antennas is configured to be in proximity to the metal-containing member, or at least a portion of the communication antenna is covered by the metal-containing member. Materials management equipment.
7. An article management device according to claim 6; a wireless device that wirelessly communicates with the communication device; a measurement device that acquires a result of whether the wireless device can communicate with the communication device over time, and measures the frequency at which the wireless device can communicate with the communication device based on the result of whether the wireless device can communicate with the communication device; Inventory management system.
Citation Information
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