Remote management system and method for conveyor belt
The remote management system for conveyor belts uses IC tags, detectors, and relay routers with LTE or satellite communication to stabilize data transmission, addressing the challenge of unreliable communication in poor environments and enabling accurate real-time status monitoring.
Patent Information
- Application Number
- PCT/JP2025/014618
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-06-28
- Filing Date
- 2025-04-14
- Publication Date
- 2026-01-02
AI Technical Summary
Existing conveyor belt management systems struggle to reliably transmit and monitor the status of conveyor belts in environments with poor communication conditions, such as factories with congested networks and mining sites with inadequate facilities.
A remote management system utilizing passive IC tags on conveyor belts, detectors, processing units, and relay routers, specifically employing LTE or satellite communication routers to stabilize data transmission through selecting compatible frequency bands or communication satellites, ensuring stable communication even in challenging environments.
Ensures reliable and stable transmission of conveyor belt management information, allowing the management device to accurately grasp the status of the conveyor belt in real-time, even in areas with poor communication environments.
Smart Images

Figure JP2025014618_02012026_PF_FP_ABST
Abstract
Description
System and method for remote management of conveyor belts
[0001] The present invention relates to a system and method for remotely managing a conveyor belt, and more particularly to a system and method for remotely managing a conveyor belt, which can transmit conveyor belt management information as stably as possible and more reliably grasp the status of the conveyor belt even when the communication environment at the site where the conveyor belt is used is not good.
[0002] A method for remotely managing conveyor belts using RFID tags (IC tags) embedded in the conveyor belt at the site of use has been proposed (see, for example, Patent Document 1). In the method proposed in Patent Document 1, identification information on the IC tags embedded in the conveyor belt is read by a reader located adjacent to the conveyor belt. The identification information read by the reader is then transmitted to a server or the like located in a remote location.
[0003] Conveyor belts are used in a variety of locations, including large factories and mining sites for transporting soil and minerals. In these factories, data for various operations and management is transmitted and received via an in-house communication network, which can be congested. Wireless communication signals can also be blocked by factors such as factory equipment. In areas such as the mountains where materials are mined, communication facilities are often inadequate. Thus, conveyor belts are often used in locations where communication environments are poor. Therefore, there is room for improvement in terms of reliably transmitting conveyor belt management information and remotely monitoring the status of conveyor belts, even when the communication environment at the conveyor belt site is poor.
[0004] Japanese Patent Application Publication No. 2022-23840
[0005] An object of the present invention is to provide a remote management system and method that can transmit conveyor belt management information as stably as possible and more reliably grasp the status of the conveyor belt even when the communication environment at the site where the conveyor belt is used is not good.
[0006] In order to achieve the above object, the remote management system for conveyor belts of the present invention comprises a passive IC tag installed on the conveyor belt, a detector arranged in close proximity to the conveyor belt to emit radio waves toward the IC tag and detect the reception results of the reply radio waves returned from the IC tag in response to the emitted radio waves, a processing unit connected to the detector, a relay router connected to the processing unit, and a management device arranged in a location remote from the place where the conveyor belt is used, wherein management information indicating the status of the conveyor belt based on the reception results is transmitted from the processing unit to the management device via the relay router, and the relay router is an LTE communication router, and when the management information is transmitted via the LTE communication router, a frequency band and base station that can communicate with the LTE communication router are selected, and the selected frequency band is used and the management information is transmitted to the management device via the selected base station.
[0007] Another remote conveyor belt management system of the present invention comprises a passive IC tag installed on the conveyor belt, a detector placed close to the conveyor belt and emitting radio waves toward the IC tag and detecting the reception results of the reply radio waves returned from the IC tag in response to the emitted radio waves, a processing unit connected to the detector, a relay router connected to the processing unit, and a management device placed in a location remote from where the conveyor belt is used, wherein management information indicating the status of the conveyor belt based on the reception results is transmitted from the processing unit to the management device via the relay router, and the relay router is a satellite communication router, and when the management information is transmitted via the satellite communication router, a communication satellite that can communicate with the satellite communication router is selected, and the management information is transmitted to the management device via the selected communication satellite.
[0008] The method for remotely managing a conveyor belt of the present invention comprises installing a passive IC tag on the conveyor belt, transmitting radio waves from a detector located close to the conveyor belt toward the IC tag, detecting the reception results of the reply radio waves returned from the IC tag in response to the transmitted radio waves using the detector, and transmitting management information indicating the status of the conveyor belt based on the reception results from a processing unit connected to the detector via a relay router connected to the processing unit to a management device located in a location remote from where the conveyor belt is used, wherein the method is characterized in that an LTE communication router is used as the relay router, and when transmitting the management information via the LTE communication router, a frequency band and base station that can communicate with the LTE communication router are selected, and the management information is transmitted to the management device via the selected base station using the selected frequency band.
[0009] Another method of remotely managing a conveyor belt of the present invention includes installing a passive IC tag on the conveyor belt, transmitting radio waves from a detector located close to the conveyor belt toward the IC tag, detecting the reception results of the return radio waves returned from the IC tag in response to the transmitted radio waves using the detector, and transmitting management information indicating the status of the conveyor belt based on the reception results from a processing unit connected to the detector through a relay router connected to the processing unit to a management device located in a location remote from where the conveyor belt is used, wherein the method is characterized in that a satellite communication router is used as the relay router, and when transmitting the management information through the satellite communication router, a communication satellite that can communicate with the satellite communication router is selected, and the management information is transmitted to the management device via the selected communication satellite.
[0010] According to the former conveyor belt remote management system and method, an LTE communication router is used as the relay router, and when transmitting the management information through the LTE communication router, radio waves and base stations in a frequency band that can communicate with the LTE communication router are selected and used. This is advantageous for ensuring stable communication even when the communication environment at the site where the conveyor belt is used is poor. As a result, the management device, to which the management information is stably transmitted, can more reliably grasp the status of the conveyor belt.
[0011] According to the latter conveyor belt remote management system and method, a satellite communication router is used as the relay router, and when transmitting the management information through the satellite communication router, a communication satellite that can communicate with the satellite communication router is selected and used. This is advantageous for ensuring stable communication even when the communication environment at the site where the conveyor belt is used is not good. As a result, the management device, to which the management information is stably transmitted, can more reliably grasp the status of the conveyor belt.
[0012] FIG. 1 is an explanatory diagram schematically illustrating an embodiment of a remote management system. FIG. 2 is an explanatory diagram illustrating a side view of a conveyor device. FIG. 3 is a cross-sectional view taken along the line A-A in FIG. 2. FIG. 4 is a view taken along the line B-B in FIG. 3. FIG. 5 is an explanatory diagram illustrating a plan view of a site where a conveyor belt to which the remote management system of FIG. 1 is applied is used. FIG. 6 is an explanatory diagram schematically illustrating another embodiment of the remote management system. FIG. 7 is an explanatory diagram illustrating a longitudinal cross-sectional view of a site where a conveyor belt to which the remote management system of FIG. 6 is applied is used.
[0013] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS A remote management system and method for a conveyor belt according to the present invention will be described below based on the embodiments shown in the drawings.
[0014] In an embodiment of a remote conveyor belt management system 1 (hereinafter referred to as system 1) illustrated in Fig. 1, the state of a conveyor belt 13 attached to a conveyor device 10 illustrated in Fig. 2 is monitored by a management device 9 located at a location (remote location) away from the site where the conveyor belt 13 is used. A typical example of the state of the conveyor belt 13 monitored by this system 1 is the operating state of the conveyor belt 13.
[0015] As shown in Figure 1, this system 1 includes a passive IC tag 2 installed on a conveyor belt 13, detectors 3 (3A, 3B, 3C), a processing device 4 connected to the detector 3 wirelessly or via a wired connection, an LTE communication router 5A connected to the processing device 4, and a management device 9. Management information M indicating the status of the conveyor belt 13 is transmitted from the processing device 4 to the management device 9 via the LTE communication router 5A, which is a relay router. The IC tag 2, detector 3, processing device 4, and LTE communication router 5A are located at the site where the conveyor belt 13 is used, and the management device 9 is located away from this site of use. Details of these components of the system 1 will be described later.
[0016] First, a conveyor device 10 (conveyor belt 13) to which this system 1 is applied, as shown in Figures 2 to 4, will be described. This conveyor device 10 has a pair of pulleys 11a, 11b and a number of support rollers 12 arranged between the pulleys 11a, 11b. The conveyor belt 13 is stretched between the pulleys 11a, 11b and supported by the number of support rollers 12 between the pulleys 11a, 11b. The conveyor belt 13 runs by rotating the drive pulley 11a. In the figures, arrow L indicates the longitudinal direction of the conveyor belt 13, and arrow W indicates the width direction of the conveyor belt 13.
[0017] The conveyor belt 13 is constructed by integrating an upper cover rubber 16, a lower cover rubber 17, and a traction layer 14 disposed therebetween through vulcanization bonding. In this embodiment, the traction layer 14 is constructed of a large number of steel cords 15 arranged horizontally in the width direction W. The conveyor belt 13 may be equipped with other members as needed. The traction layer 14 is not limited to the steel cords 15, and may also be constructed of canvas. When the traction layer 14 is constructed of canvas, for example, four to eight layers of canvas are laminated depending on the performance required for the conveyor belt 13.
[0018] On the carrier side of the conveyor device 10, the lower cover rubber 17 of the conveyor belt 13 is supported by the support rollers 12, so that the conveyor belt 13 has a trough shape with the center portion in the width direction W protruding downward. The conveyed object C is placed on the upper surface of the upper cover rubber 16 and conveyed. On the return side of the conveyor device 10, the upper cover rubber 16 of the conveyor belt 13 is supported in a flat state by the support rollers 12.
[0019] The IC tag 2 has an IC chip and an antenna connected to the IC chip. In this embodiment, as shown in FIG. 3, the IC tag 2 is embedded in the lower cover rubber 17. The IC tag 2 may be installed at another position on the conveyor belt 13; for example, it may be embedded in the upper cover rubber 16 or, in the case of a traction layer 14 made of multiple layers of canvas, in the traction layer 14. To protect the IC tag 2 from the transported goods C, it is preferable to embed the IC tag 2 in the lower cover rubber 17 or the traction layer 14 rather than in the upper cover rubber 16. The IC tag 2 can be installed on the conveyor belt 13 during the conveyor belt 13 molding process, or it can be attached to the manufactured conveyor belt 13 after it has been manufactured.
[0020] The IC tag 2 may be of a generally available specification, for example, an RFID tag (general-purpose product). The size of the IC tag 2 is, for example, 200 mm 2 Over 6000mm 2 Less than 300 mm, more preferably 2 2700mm or more 2The thickness is, for example, 0.01 mm or more and 0.4 mm or less, more preferably 0.03 mm or more and 0.15 mm or less. The heat resistance temperature of the IC tag 2 is, for example, about 250°C.
[0021] The IC chip stores unique information that distinguishes the IC tag 2 from other IC tags 2. The IC chip can also store other necessary information.
[0022] At least one IC tag 2 needs to be installed on the conveyor belt 13, but it is preferable that multiple IC tags 2 are installed at intervals in the longitudinal direction L. The IC tags 2 are embedded in the conveyor belt 13 at intervals TL of, for example, 5 m or more and 20 m or less in the longitudinal direction L. That is, the installation pitch TL of the IC tags 2 is preferably in the range of 5 m or more and 20 m or less, and it is even better to set the pitch to be equal. An installation pitch TL of about 10 m is appropriate for the IC tags 2.
[0023] The detector 3 is disposed at a detection position P close to the conveyor belt 13, and has a transmitter 3s and a receiver 3r. The transmitter 3s transmits an outgoing radio wave R1 toward the IC tag 2, and the receiver 3r receives a reply radio wave R2 returned from the IC tag 2 (antenna unit) in response to the outgoing radio wave R1. That is, the detector 3 wirelessly communicates with the IC tag 2 attached to the conveyor belt 13 in a non-contact manner. The receiver 3r detects, as a reception result, the identification information of the IC tag 2 stored in the IC chip that is transmitted together with the reply radio wave R2.
[0024] The detector 3 employs a commonly available specification that allows wireless communication with passive RFID tags, etc. This allows the IC tag 2 and detector 3 to constitute an RFID (Radio Frequency Identification) system. The radio wave frequency used for wireless communication between the IC tag 2 and detector 3 is mainly in the UHF band (a range of 860 MHz to 930 MHz, which varies depending on the country; in Japan, it is 915 MHz to 930 MHz), although the HF band (13.56 MHz) is sometimes used.
[0025] The detector 3 is arranged at at least one detection position P, and may be arranged at only one detection position P or at multiple detection positions P spaced apart in the longitudinal direction L. In this embodiment, the detectors 3 are arranged at multiple detection positions P spaced apart in the longitudinal direction L of the conveyor belt 13 stretched between the pulleys 11a and 11b. For example, the detectors 3 are arranged at detection positions P spaced apart from each other by 10 m or more and 30 m or less in the longitudinal direction L. The detection positions P may be arranged at substantially equal intervals along a predetermined section (for example, the entire length of the return side) or the entire circumference of the conveyor belt 13.
[0026] The detector 3 is not limited to being arranged on the carrier side of the conveyor device 10 as in this embodiment, but can also be arranged on the return side, or on both the carrier side and the return side. The distance between the detector 3 and the IC tag 2 when they are closest to each other is set to within 1 m, for example. In other words, the detector 3 is installed at a detection position P where the distance between the detector 3 and the IC tag 2 is 1 m or less when the IC tag 2 passes near the detector 3.
[0027] In this embodiment, each detector 3 is disposed at one end of the conveyor belt 13 in the width direction W, as shown in Fig. 3. The width direction position of the detector 3 is preferably aligned with the width direction position of the IC tag 2 on the conveyor belt 13.
[0028] The arithmetic processing device 4 is connected to the detector 3 by wire or wirelessly. A variety of known computers or computer servers can be used as the arithmetic processing device 4. The results of receiving the reply radio wave R2 from the detector 3 are input to the arithmetic processing device 4. The arithmetic processing device 4 performs various arithmetic processing based on the various input information. As will be described later, the traveling speed V of the conveyor belt 13 is calculated as management information M by the arithmetic processing device 4 based on the time t at which the detector 3 receives the reply radio wave R2.
[0029] This management information M is transmitted to the management device 9 via the LTE communication router 5A connected to the processing device 4 and via a base station 7 installed in the surrounding area of the LTE communication router 5A (processing device 4). In this embodiment, the LTE communication router 5A is employed as a relay router, and various known LTE communication routers 5A can be used. The LTE communication router 5A (processing device 4) is installed in a location that provides the best possible communication environment with the base stations 7 installed in the surrounding area.
[0030] The management device 9 is installed in a location remote from the location where the conveyor belt 13 is used. For example, the management device 9 is installed in a control room of a sales company, a manufacturing company, or an operating company (user) of the conveyor belt 13. As the management device 9, various known computers and computer servers can be used.
[0031] Between the LTE communication router 5A and the management device 9, the management information M is transmitted using LTE communication via radio waves W. In more detail, the management information M is transmitted wirelessly by LTE communication between the LTE communication router 5A and a base station 7 (starting point base station 7) installed in the surrounding area of the LTE communication router 5A, and between the management device 9 and a base station 7 (terminating point base station 7) installed in the surrounding area of the management device 9. The management information M is transmitted between the starting point base station 7 and the terminating point base station 7 using an optical fiber cable.
[0032] Examples of frequency bands of radio waves W used in LTE communication (4G) include Band 1 (2.0 GHz band), Band 3 (1.7 GHz band), Band 8 (900 MHz band), Band 11 (1.5 GHz band), Band 18 (800 MHz band), Band 19 (800 MHz band), Band 21 (1.5 GHz band), Band 26 (800 MHz band), Band 28 (700 MHz band), Band 41 (2.5 GHz band), and Band 42 (3.5 GHz band). Each band is assigned to one or more carriers (telecommunications carriers). Within each band, the frequency band used is subdivided into multiple bands.
[0033] Band 1 is allocated to three companies in Japan (Company A, Company B, and Company C). Band 1 is further divided into six frequency bands: 1920 MHz to 1940 MHz (Company A), 1940 MHz to 1960 MHz (Company B), 1960 MHz to 1980 MHz (Company C), 2110 MHz to 2130 MHz (Company A), 2130 MHz to 2150 MHz (Company B), and 2150 MHz to 2170 MHz (Company C). Each carrier (telecommunications operator) installs a large number of base stations 7 scattered over a wide area.
[0034] In this system 1, when management information M is transmitted through the LTE communication router 5A, a frequency band and a base station 7 on the originating side that can communicate with the LTE communication router 5A are selected. Then, the management information M is transmitted from the LTE communication router 5A to the management device 9 via the selected base station 7 on the originating side using radio waves W of the selected frequency band. In other words, when transmitting the management information M, the LTE communication router 5A switches to radio waves W of a frequency band that can be communicated and transmits the management information M.
[0035] Next, an example of the procedure for remotely determining the state of the conveyor belt 13 using the system 1 illustrated in Fig. 1 will be described. In this embodiment, the operating state of the conveyor belt 13 is determined based on the change over time in the running speed V of the conveyor belt 13 calculated as the management information M.
[0036] This system 1 is applied to a site where a conveyor belt 13 is used, as shown in FIG. 5. This site is a factory facing a quay, where goods C unloaded from a transport ship 19 are stored in a stockyard within the factory. In this factory, a large number of conveyor devices 10 equipped with conveyor belts 13 are arranged in parallel. The goods C are transported from the stockyard to the necessary equipment 18 by these conveyor devices 10 (conveyor belts 13). Various pieces of factory equipment (buildings) 18 are located around the conveyor belt 13. Base stations 7 are scattered outside the factory premises. Base stations 7 may also be installed within the factory premises.
[0037] At this site, data for various factory operations and management is sent and received via a factory communication network, and the communication lines of this communication network can be congested. Furthermore, wireless communication radio waves W can be blocked by factors such as factory facilities (buildings) 18, making the communication environment often unfavorable. The communication environment can be favorable or unfavorable depending on the time of day.
[0038] To remotely grasp the state of the conveyor belt 13, as shown in Fig. 3, each detector 3 (transmitter 3s) transmits an outgoing radio wave R1 toward the IC tag 2. The antenna unit of each IC tag 2 receives the outgoing radio wave R1 when it comes close to the corresponding detector 3 as the conveyor belt 13 moves, and this outgoing radio wave R1 generates power in the IC tag 2, activating the IC tag 2.
[0039] The activated IC tag 2 sequentially returns a reply radio wave R2 to the detector 3 in response to the transmitted radio wave R1. This reply radio wave R2 is returned from the IC tag 2 to the detector 3 through the antenna unit of the IC tag 2. The detector 3 (receiving unit 3r) receives this reply radio wave R2 and sequentially detects the identification information of the IC tag 2 stored in the IC chip along with the reply radio wave R2 as a reception result. The detected identification information of the IC tag 2 is input to the arithmetic processing device 4 together with the reception time t at which the detector 3 received the reply radio wave R2 from the IC tag 2. The arithmetic processing device 4 calculates the running speed V of the conveyor belt 13 using the input reception time t.
[0040] In this embodiment, detectors 3 are disposed at a plurality of detection positions P spaced apart in the longitudinal direction L of the conveyor belt 13. As the conveyor belt 13 moves, each detector 3 wirelessly communicates with an IC tag 2 as it passes nearby. The identification information of the IC tag 2, along with the reception time t at which the detector 3 received the reply radio wave R2 from the IC tag 2, is input to the arithmetic processing device 4. The separation distance PL between the detection positions P of each detector 3 in the longitudinal direction L is known in advance, and this separation distance PL is input to the arithmetic processing device 4. The arithmetic processing device 4 then calculates the traveling speed V by dividing the separation distance PL between the detection positions P by the difference (time difference) between the reception times t of the reply radio wave R2 from the same IC tag 2 by the detectors 3 disposed at at least two detection positions P spaced apart in the longitudinal direction L. This method of calculating the traveling speed V requires only that the separation distance PL be known; positional information of the IC tag 2 on the conveyor belt 13 is not required.
[0041] At least one IC tag 2 is required to calculate the traveling speed V, but if only one IC tag 2 is used, the frequency of calculating the traveling speed V will decrease if the belt length BL of the conveyor belt 13 is excessively large. Also, since the IC tag 2 may malfunction, it is preferable to calculate the traveling speed V using multiple IC tags 2 (each IC tag 2) attached to the conveyor belt 13.
[0042] When multiple IC tags 2 are attached to the conveyor belt 13, the traveling speed V can also be calculated by another method. In this calculation method, a single detector 3 is used that is placed at the same detection position P, and the installation pitch TL of each IC tag 2 to be used in the longitudinal direction of the conveyor belt 13 is input to the arithmetic processing device 8. Then, this single detector 3 placed at the detection position P receives reply radio waves R2 from each IC tag 2 that is placed at the installation pitch TL. The traveling speed V is calculated by dividing the installation pitch TL by the difference (time difference) between the times t at which this detector 3 receives the reply radio waves R2 from each IC tag 2. In this calculation method, the installation pitch TL of the two IC tags 2 to be used must be known.
[0043] Furthermore, the traveling speed V can also be calculated by another method. In this calculation method, a single detector 3 arranged at the same detection position P sequentially receives reply radio waves R2 from the same IC tag for each revolution of the conveyor belt 13. The traveling speed V is calculated by dividing the belt length BL of the conveyor belt 13 by the difference (time difference) between the reception times t of the reply radio waves R2 sequentially received by the detector 3 for each revolution of the conveyor belt 13.
[0044] The traveling speed V calculated by the arithmetic processing device 4 is transmitted as management information M to the management device 9 via the LTE communication router 5A. In this system 1, when transmitting the management information M to the management device 9 via the LTE communication router 5A, the LTE communication router 5A selects radio waves W in a frequency band that can communicate with the LTE communication router 5A and the base station 7 on the starting point side.
[0045] Then, the management information M is transmitted to the management device 9 via the LTE communication router 5A, using radio waves W in the selected frequency band, via the selected base station 7 on the starting point side. That is, the management information M is wirelessly transmitted directly from the LTE communication router 5A to the base station 7 located in the surrounding area of the LTE communication router 5A, without passing through a wireless communication network or server within the factory where the conveyor belt 13 is used. Therefore, even if the communication environment at the site where the conveyor belt 13 is used is not good, this is advantageous for ensuring stable communication.
[0046] The running speed V calculated by the arithmetic processing device 4 reflects the actual operating state of the conveyor belt 13. That is, when the running speed V is zero, it can be determined that the conveyor belt 13 is not operating (not running). When the running speed V is roughly constant, it can be determined that the conveyor belt 13 is operating steadily. When the running speed V is steadily increasing, it can be determined that the conveyor belt 13 is in a started state, and when the running speed V is steadily decreasing, it can be determined that the conveyor belt 13 is in a stopped state. Therefore, the management device 9, which stably transmits the management information M, can more reliably grasp the state of the conveyor belt 13 based on the management information M. It also becomes possible to remotely grasp the operating state of the conveyor belt 13 substantially in real time.
[0047] The calculation processing device 4 can also calculate the cumulative operating time of the conveyor belt 13 as the management information M based on the data DV of the change over time in the traveling speed V. The actual lifespan X of the conveyor belt 13 is more significantly influenced by the cumulative operating time than by the time elapsed since installation in the conveyor device 10. Therefore, knowing the actual operating time (cumulative operating time) of the conveyor belt 13 is advantageous for accurately determining the actual lifespan X of the conveyor belt 13. Accordingly, it becomes possible to more accurately predict the remaining lifespan of the conveyor belt 13, which is advantageous for replacing the conveyor belt 13 at a timing that is just right for each site of use.
[0048] The cumulative running distance of the conveyor belt 13 also greatly affects the actual lifespan X of the conveyor belt 13. Therefore, the actual lifespan X of the conveyor belt 13 can be grasped by calculating the cumulative running distance as management information M by time-integrating the data of the change in the running speed V over time.
[0049] The management information M transmitted from the arithmetic processing device 4 is not limited to the traveling speed V, cumulative operating time, and cumulative traveling distance, and for example, the reception time t of the reply radio wave R2 by the detector 3 can simply be used as the management information M. In this case, the traveling speed V, cumulative operating time, and cumulative traveling distance of the conveyor belt 13 are calculated by the management device 9 to which the reception time t is transmitted.
[0050] At the site where the conveyor belt 13 is used, the quality of the communication environment may change over time. Therefore, it is a good idea to measure the communication status of LTE communication at the site and determine in advance the time periods during which good communication is possible. A good communication time period is a time period during which radio waves W can be transmitted smoothly without being blocked between the LTE communication router 5A and a base station 7 installed in the surrounding area. For example, the time periods during which good communication is possible within a day (24 hours) are determined. Then, a setting is made to transmit the management information M via the LTE communication router 5A during the determined time periods during which good communication is possible. With this setting, the management information M cannot be transmitted to the remote management device 9 in real time, but the management information M can be transmitted more reliably and efficiently to the remote management device 9.
[0051] It is also possible to use the embodiment of the system 1 illustrated in Fig. 6. This embodiment differs from the previous embodiment in the method of communicating the management information M from the arithmetic processing device 4 to the management device 9, but the other configurations are substantially the same, so only the different configurations will be described.
[0052] In this embodiment, a satellite communication router 5B is employed as the relay router. Various known satellite communication routers 5B can be used. Instead of the LTE communication used in the previous embodiment, the management information M is transmitted using satellite communication. A Wi-Fi router 6a is connected to the arithmetic processing device 4, and the management information M is transmitted from the arithmetic processing device 4 to the satellite communication router 5B via radio waves Wi from the Wi-Fi router 6a. The connection between the arithmetic processing device 4 and the satellite communication router 5B is not limited to the Wi-Fi router 6a, and may be wireless or wired. The IC tag 2, the detector 3, the arithmetic processing device 4, the Wi-Fi router 6a, and the satellite communication router 5B are located at the site where the conveyor belt 13 is used, and the management device 9 is located away from the site.
[0053] The satellite communication router 5B communicates wirelessly with a large number of communication satellites 8 (low-earth orbit satellites) orbiting above the Earth (at an altitude of approximately 550 km). In Japan, the frequency bands of radio waves W used for wireless communication between the satellite communication router 5B and the communication satellites 8 are 10.7 GHz to 12.7 GHz for the downlink and 14.0 GHz to 14.5 GHz for the uplink in the service link (Ku band) used for user antenna communication. Note that the frequency bands of radio waves W used for the feeder link (Ka band) used for base station antenna communication are 17.8 GHz to 18.6 GHz / 18.8 GHz to 19.3 GHz for the downlink and 27.5 GHz to 29.1 GHz / 29.5 GHz to 30.0 GHz for the uplink.
[0054] This system 1 is applied to a use site of a conveyor belt 13 as shown in Figure 7. This use site is a mining site in the mountains where an object C is to be transported. At this use site, a conveyor device 10 equipped with a conveyor belt 13 extends a long distance from the mountain side toward the plains, and part of the transport route forms a tunnel 20. That is, a portion of the conveyor belt 13 extends within the tunnel 20. The object C is transported from the mining site to a necessary location such as a processing plant or stockyard by the conveyor device 10 (conveyor belt 13). Although this use site does not have sufficient communication facilities, a large number of communication satellites 8 are orbiting above the site.
[0055] In this system 1, when sending management information M through the satellite communication router 5B, a communication satellite 8 that can communicate with the satellite communication router 5B is selected, and the management information M is sent to the management device 9 via the selected communication satellite 8. More specifically, when sending management information M from the processing device 4 through the satellite communication router 5B, a communication satellite 8 that can communicate with the satellite communication router 5B (a communication satellite 8 orbiting above the satellite communication router 5B) is selected by the satellite communication router 5B. That is, when sending management information M, the satellite communication router 5B switches to a communication satellite 8 that can communicate with it and wirelessly transmits the management information M using radio waves W in a predetermined frequency band. The management information M is then sent via the selected communication satellite 8 to a base station 7 installed in the surrounding area of the management device 9, and then transmitted from this base station 7 to the management device 9.
[0056] In this system 1, the management information M is wirelessly transmitted directly from the satellite communication router 5B to the communication satellite 8 orbiting above the satellite communication router 5B. This is advantageous for ensuring stable communication even when the communication environment at the site where the conveyor belt 13 is used is not good. The management device 9, to which the management information M is stably transmitted, can more reliably grasp the status of the conveyor belt 13 based on the management information M. The management device 9 can grasp the status of the conveyor belt 13 substantially in real time based on the management information M.
[0057] This system 1 is suitable for use in mountainous areas, remote islands, and other locations where communication facilities are not available for the conveyor belt 13. The various arrangements described in the system 1 of the previous embodiment can also be applied to this system 1.
[0058] DESCRIPTION OF SYMBOLS 1 Remote management system 2 IC tag 3 (3A, 3B, 3C) Detector 3s Transmitter 3r Receiver 4 Processing device 5A LTE communication router 5B Satellite communication router 6a Wi-Fi router 7 Base station 8 Communication satellite 9 Management device 10 Conveyor device 11a, 11b Pulley 12 Support roller 13 Conveyor belt 14 Traction layer 15 Steel cord 16 Upper cover rubber 17 Lower cover rubber 18 Facility (building) 19 Transport ship 20 Tunnel C Transported item
Claims
1. A remote management system for a conveyor belt comprising: a passive IC tag installed on a conveyor belt; a detector placed in close proximity to the conveyor belt to transmit radio waves toward the IC tag and detect the reception results of the return radio waves returned from the IC tag in response to the transmitted radio waves; a processing unit connected to the detector; a relay router connected to the processing unit; and a management device placed in a location remote from where the conveyor belt is used, wherein management information indicating the status of the conveyor belt based on the reception results is transmitted from the processing unit to the management device via the relay router, wherein the relay router is an LTE communication router, and when the management information is transmitted through the LTE communication router, a frequency band and base station that can communicate with the LTE communication router are selected, and the selected frequency band is used and the management information is transmitted to the management device via the selected base station.
2. A remote management system for a conveyor belt comprising: a passive IC tag installed on a conveyor belt; a detector placed close to the conveyor belt and emitting radio waves toward the IC tag and detecting the reception results of the reply radio waves returned from the IC tag in response to the emitted radio waves; a processing unit connected to the detector; a relay router connected to the processing unit; and a management device placed in a location remote from the place where the conveyor belt is used, wherein management information indicating the status of the conveyor belt based on the reception results is transmitted from the processing unit to the management device via the relay router, wherein the relay router is a satellite communication router, and when the management information is transmitted via the satellite communication router, a communication satellite that can communicate with the satellite communication router is selected, and the management information is transmitted to the management device via the selected communication satellite.
3. A remote management system for a conveyor belt as described in claim 1, which measures the communication status of LTE communication at the site where the conveyor belt is used, determines in advance the time periods when communication is good, and sets the management information to be transmitted through the LTE communication router during the determined time periods when communication is good.
4. A remote management system for a conveyor belt as described in any one of claims 1 to 3, wherein the change in the running speed of the conveyor belt over time is calculated as the management information by the processing unit based on the reception results detected by the detector.
5. A method for remotely managing a conveyor belt, comprising: installing a passive IC tag on a conveyor belt; transmitting radio waves from a detector located close to the conveyor belt toward the IC tag; detecting the reception results of the return radio waves returned from the IC tag in response to the transmitted radio waves using the detector; and transmitting management information indicating the status of the conveyor belt based on the reception results from a processing unit connected to the detector to a management device located in a location remote from where the conveyor belt is used, via a relay router connected to the processing unit; wherein an LTE communication router is used as the relay router; and when transmitting the management information through the LTE communication router, a frequency band and base station that can communicate with the LTE communication router are selected, and the management information is transmitted to the management device via the selected base station using the selected frequency band.
6. A method for remotely managing a conveyor belt, comprising: attaching a passive IC tag to a conveyor belt; transmitting radio waves from a detector located close to the conveyor belt toward the IC tag; detecting the reception results of the return radio waves returned from the IC tag in response to the transmitted radio waves using the detector; and transmitting management information indicating the status of the conveyor belt based on the reception results from a processing unit connected to the detector to a management device located in a location remote from where the conveyor belt is used via a relay router connected to the processing unit, wherein a satellite communication router is used as the relay router; when transmitting the management information via the satellite communication router, a communication satellite that can communicate with the satellite communication router is selected; and transmitting the management information to the management device via the selected communication satellite.
Citation Information
Patent Citations
Method, system and apparatus for information delivery and communication terminal
JP2001337882A
Data distribution device, data distribution method, and data distribution program
JP2019192967A
Conveyor belt operation management system and method
JP2023179079A