WO2017029728A1 - 無線親局、無線子局、無線通信システムおよび無線通信方法 - Google Patents

無線親局、無線子局、無線通信システムおよび無線通信方法 Download PDF

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Publication number
WO2017029728A1
WO2017029728A1 PCT/JP2015/073245 JP2015073245W WO2017029728A1 WO 2017029728 A1 WO2017029728 A1 WO 2017029728A1 JP 2015073245 W JP2015073245 W JP 2015073245W WO 2017029728 A1 WO2017029728 A1 WO 2017029728A1
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WIPO (PCT)
Prior art keywords
wireless
token
slave
industrial
frame
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PCT/JP2015/073245
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English (en)
French (fr)
Japanese (ja)
Inventor
平井 博昭
敏典 堀
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三菱電機株式会社
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Application filed by 三菱電機株式会社 filed Critical 三菱電機株式会社
Priority to PCT/JP2015/073245 priority Critical patent/WO2017029728A1/ja
Priority to JP2017510413A priority patent/JP6289742B2/ja
Priority to KR1020177021908A priority patent/KR101789977B1/ko
Priority to CN201580077719.8A priority patent/CN107409078B/zh
Priority to TW104133643A priority patent/TWI608752B/zh
Publication of WO2017029728A1 publication Critical patent/WO2017029728A1/ja

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/28Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
    • H04L12/40Bus networks
    • H04L12/407Bus networks with decentralised control
    • H04L12/417Bus networks with decentralised control with deterministic access, e.g. token passing
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/28Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W74/00Wireless channel access
    • H04W74/04Scheduled access
    • H04W74/06Scheduled access using polling

Definitions

  • the present invention relates to a wireless master station, a wireless slave station, a wireless communication system, and a wireless communication method used in an industrial network.
  • a controller in an industrial network, in a field network, a controller is a master device, and various IO (Input Output) devices and measuring instruments are slave devices, which are connected one-to-many. Cyclic communication is performed at a preset time interval between the master device and the plurality of slave devices.
  • IO Input Output
  • Cyclic communication is performed at a preset time interval between the master device and the plurality of slave devices.
  • Non-Patent Document 1 it is disclosed that a transmission opportunity is sequentially circulated in a plurality of slave devices by exchanging frames called tokens for a CC-Link (Control & Communication Link) IE field network.
  • CC-Link Control & Communication Link
  • Industrial networks are required to be wireless in order to reduce the cost of installation. It is inconvenient in terms of usability to use a special device and to use a frequency that requires a license when wireless. Therefore, it is possible to reduce hardware procurement costs and development costs by realizing wireless transmission in a form similar to the existing wireless LAN (Local Area Network) standard.
  • LAN Local Area Network
  • the wireless LAN standard includes an HCCA (Hybrid Coordination Function Controlled Channel) that centrally manages communication at access points according to the IEEE (Institute of Electrical and Electronics Engineers) 802.11e standard, which defines communication that takes QoS (Quality of Service) into account. Access) method (Non-Patent Document 2 below).
  • HCCA Hybrid Coordination Function Controlled Channel
  • the HCCA method is adopted and wireless polling is sequentially performed on devices existing in the network.
  • Polling refers to inquiring whether one device has data that can be sent periodically to other devices in order in the network, and when another device has data, This is a control method for transmitting and notifying that there is no data when no data is held.
  • the master device when performing wireless communication in the CC-Link IE field network, the master device is connected to the wireless master device, and each slave device is connected to the wireless slave device.
  • the master device communicates with the slave device via the wireless master device and the wireless slave device.
  • Between the master device and the wireless master device is a wired communication section, between the wireless master device and the wireless slave device is a wireless communication section, and between the wireless slave device and the slave device is a wired communication section. Since each wired communication section is independent, a plurality of communications can be performed at the same time. However, in the wireless communication section, only one communication can be performed at the same time.
  • a token passing method is employed in the wired communication section, and a polling control method is employed in the wireless communication section.
  • the master device transmits data frames and token frames from the wireless master device to all wireless slave devices by wireless communication.
  • the wireless slave device transmits each received frame to the slave device.
  • the slave device that has received the token frame returns a data frame and a token frame to the wireless slave device.
  • the wireless master device performs polling to the wireless slave device when there is no data held.
  • the wireless slave device transmits a data frame including the above-described data to the wireless master device when possessing transmittable data, and indicates that there is no data when not possessing transmittable data. To notify.
  • the wireless master device transfers the received data frame to the master device and redistributes it to each wireless slave device in the wireless communication section.
  • the wireless master device performs polling to a wireless slave device that does not have data that can be transmitted by connecting to a slave device that has not received a token frame. Therefore, there has been a problem that communication efficiency is lowered due to invalid processing. In addition, there is a problem that the interval of the communication cycle for periodically performing communication between the master device and the slave device becomes long.
  • the present invention has been made in view of the above, and when the token passing system is an upper network and polling is executed in the wireless communication section of the lower network, the communication is performed while realizing the periodic communication in the upper network.
  • An object is to obtain a radio master station capable of improving efficiency.
  • the present invention connects a slave device to a master device that transmits and receives data by a token passing method, and performs wireless communication with a wireless slave station connected to the slave device.
  • a parent station is provided with a token circuit information holding unit that holds information of a token circuit indicating the order of a slave device and a master device that receive a token frame.
  • a wireless transmission unit that performs wireless communication polling to a wireless slave station connected to the corresponding slave device in accordance with the order of the slave devices that receive the token frame based on the information of the token circuit.
  • the wireless master station according to the present invention can improve communication efficiency while realizing periodic communication in the upper network when the token passing system is the upper network and polling is performed in the wireless communication section of the lower network. There is an effect.
  • FIG. 1 is a block diagram showing a configuration example of a wireless master device and a wireless slave device that constitute a wireless communication system according to a first embodiment;
  • FIG. 3 is a flowchart illustrating polling determination operation of the wireless reception unit according to the first embodiment
  • FIG. 3 is a flowchart showing operations for polling of the wireless transmission unit according to the first embodiment
  • the flowchart which shows the process which the radio
  • a sequence diagram showing frames transmitted and received between each device or each device when polling is executed based on the order of the token circuit
  • FIG. 1 a flowchart illustrating polling determination operation of the wireless reception unit according to the first embodiment
  • FIG. 3 is a flowchart showing operations for polling of the wireless transmission unit according to the first embodiment
  • the flowchart which shows the process which the radio
  • FIG. 3 is a block diagram illustrating a configuration example of a wireless master device and a wireless slave device configuring a wireless communication system according to a second embodiment.
  • the flowchart which shows the process which the token omission part concerning Embodiment 2 produces
  • 10 is a flowchart showing processing when the wireless transmission unit according to the second embodiment receives a token frame; 10 is a flowchart showing processing for generating a token frame by a token generation unit according to the second embodiment; 10 is a flowchart illustrating processing for receiving a data frame in which master omission information is stored and transmitting a token frame in the wireless reception unit according to the second embodiment; 10 is a flowchart illustrating processing in which the wireless master device according to the second embodiment omits transmission of a token frame and the wireless slave device generates a token frame.
  • FIG. 1 a sequence diagram showing frames transmitted / received between devices or devices when the wireless master device omits a token frame
  • FIG. 3 is a block diagram illustrating a configuration example of a wireless master device and a wireless slave device that configure a wireless communication system according to a third embodiment
  • FIG. 9 is a flowchart showing processing for generating a token frame by the token generation unit according to the third embodiment
  • 9 is a flowchart illustrating processing for receiving a data frame in which slave omission information is stored and transmitting a token frame in the wireless reception unit according to the third embodiment.
  • the flowchart which shows the process which the token omission part concerning Embodiment 3 produces
  • 10 is a flowchart showing processing when the wireless transmission unit according to the third embodiment receives a token frame
  • FIG. 9 is a sequence diagram showing frames transmitted and received between devices or devices when the wireless master device and the wireless slave device omit the token frame in the industrial network according to the third embodiment.
  • Embodiment 1 FIG. In the present embodiment, a method for performing polling in the wireless master device in accordance with the order in which token frames are received will be described.
  • FIG. 1 is a diagram illustrating a configuration example of an industrial network including a wireless communication system according to a first embodiment of the present invention.
  • the industrial network is an industrial master device N1 that is a controller of the industrial network, industrial slave devices N101, N102, N103,..., N100 + m that are various IO devices, measuring instruments, etc. in the industrial network.
  • a wireless master device N201 which is a wireless communication device serving as a wireless master station which performs wireless communication with the industrial slave devices N101, N102, N103,..., N100 + m by wired connection with the master device N1, and industrial slave devices N101, N102. , N103,..., N100 + m wired to one-to-one and wireless slave devices N301, N302, N303,. Is provided.
  • the wireless communication system includes a wireless master device N201 and wireless slave devices N301, N302, N303,..., N300 + m.
  • a wireless master device N201 connected to one industrial master device N1
  • wireless slave devices N301, N302 connected to m industrial slave devices N101, N102, N103,..., N100 + m.
  • Control communication performed in a conventional fixed cycle is performed by wireless communication with N303,..., N300 + m.
  • FIG. 2 is a diagram illustrating a configuration example of an industrial network by wired communication in the first embodiment, excluding a wireless communication system from the configuration example of the industrial network of FIG.
  • the industrial master device N1 and the industrial slave devices N101, N102, N103,..., N100 + m operate in cooperation with each other during control communication performed at regular intervals.
  • the connection topology is a daisy chain, but this is only an example, and a star, bus, or ring configuration may be used.
  • the topology in the wireless communication system after wireless application applied in the embodiment of the present invention is a tree type, but is not limited to this.
  • FIG. 3 is a diagram illustrating a protocol stack of the industrial network according to the first embodiment.
  • Ethernet is adopted in the physical layer and the data link layer, and a token passing system is adopted in the network layer.
  • a standard such as IEEE802.11a / b / g / n / ac is adopted in the physical layer, and in addition to the standard shown in IEEE802.11 in the data link layer, the present invention described later The procedure is adopted.
  • the token passing system is adopted in the network layer as in the wired side.
  • industrial slave devices N101, N102, N103,..., N100 + m which are slave devices
  • an industrial master device N1 which is a master device
  • FIG. 4 is a block diagram of a configuration example of the wireless master device N201 and the wireless slave device N301 configuring the wireless communication system 30 according to the first embodiment. Since the wireless slave devices N301, N302, N303,..., N300 + m have the same configuration, the wireless slave device N301 will be described here.
  • a section where the wired connection between the industrial master device N1 and the wireless master device N201 is a wired section S1.
  • a wirelessly connected section between the wireless master apparatus N201 and the wireless slave apparatuses N301, N302, N303,..., N300 + m is defined as a wireless section S2.
  • the wired sections S1 and S3 are assumed to be sufficiently faster than the wireless section S2.
  • the data transfer rate of the wired sections S1 and S3 is 1 Gbps
  • the data transfer rate of the wireless section S2 is 1 Mbps to 100 Mbps.
  • the wireless master device N201 communicates with the industrial master device N1 between the wired communication unit 11 that transmits and receives the periodic communication signal in the conventional industrial network in the wired section S1, and the wireless slave devices N301 to N300 + m. And a wireless communication unit 12 that transmits and receives wireless signals in the wireless section S2. Specifically, the wired communication unit 11 transmits and receives a data frame, a token frame, and the like to and from the industrial master device N1.
  • the wireless communication unit 12 includes a wireless transmission unit 13, a traveling route information holding unit 14, and a wireless reception unit 15.
  • the wireless transmission unit 13 converts the signal from the industrial master device N1 input from the wired communication unit 11 into a wireless signal and transmits the signal to the wireless slave devices N301 to N300 + m via the wireless section S2. Specifically, the wireless transmission unit 13 transmits a data frame, a token frame, and the like to the wireless slave devices N301 to N300 + m via the wireless section S2.
  • the circuit information holding unit 14 stores information on the token circuit indicating the order of the industrial slave devices N101, N102, N103,..., N100 + m and the industrial master device N1 that receive the token frame in the industrial network. .
  • the wireless reception unit 15 receives wireless signals from the wireless slave devices N301 to N300 + m via the wireless section S2, and outputs the received wireless signals to the wired communication unit 11.
  • the traveling route information holding unit 14 may be included in the wireless transmission unit 13.
  • the wireless transmission unit 13 is a wireless slave device that is connected to the corresponding industrial slave device according to the order of the industrial slave devices that receive the token frame based on the token circuit information held in the circuit information holding unit 14 Performs wireless communication polling. Specifically, the wireless transmission unit 13 transmits a polling frame to the destination wireless slave device.
  • FIG. 5 is a flowchart illustrating an operation in which the wireless transmission unit 13 according to the first embodiment performs polling.
  • the wireless transmission unit 13 reads the token circuit information held in the circuit information holding unit 14 (step ST1), and the industrial slave device that receives the token frame based on the read token circuit information. According to the order, the wireless slave device connected to the corresponding industrial slave device is polled for wireless communication (step ST2).
  • the wireless transmission unit 13 transmits a token frame by using the token frame received from the industrial master device N1 connected to the wireless master device N201 as a trigger when performing polling based on the token circuit information. It is possible to synchronize the timing of performing polling with the timing of executing polling. For example, it is assumed that the order of the token circuit is in the order of the industrial master device N1, the industrial slave device N102, the industrial slave device N101, and the industrial slave device N103, and then returns to the industrial master device N1. When receiving the token frame addressed to the industrial slave device N102 from the industrial master device N1, the wireless transmission unit 13 transmits the token frame addressed to the industrial slave device N102.
  • the wireless transmission unit 13 After transmitting the token frame addressed to the industrial slave device N102, the wireless transmission unit 13 performs polling to the wireless slave device N302 connected to the industrial slave device N102 based on the information of the token circuit. That is, the wireless transmission unit 13 starts polling from the wireless slave device N302 connected to the industrial slave device N102. Thereby, in the wireless transmission part 13, the timing which transmits a token frame, and the timing which performs polling can be synchronized. In addition, the wireless transmission unit 13 performs the above processing every time a token frame is received from the industrial master device N1 connected to the wireless master device N201, so that the timing for transmitting the token frame and the timing for executing the polling are set. Synchronization can be achieved, and when a deviation occurs between the timing of transmitting a token frame and the timing of executing polling, it is possible to avoid a situation in which the deviation is accumulated and becomes large. The same applies to the following description.
  • the method for acquiring the token circuit information in the circuit information holding unit 14 is, for example, even when the administrator or the like manually sets the token circuit information in the circuit information holding unit 14 at the initial setting of the industrial network.
  • the tour route information holding unit 14 may automatically learn the order of the destinations of the token frames flowing through the industrial network, and acquire the token tour information.
  • each device receives the token frames in order. Therefore, the tour route information holding unit 14 automatically learns the order of the devices that receive the token frame, that is, the information of the token tour circuit manually, by checking the device specified by the destination of the token frame. It is possible to get it.
  • the circuit information holding unit 14 acquires token circuit information by setting by the above-described administrator or by automatically learning the destination order of token frames flowing through the industrial network (step ST11).
  • the token circuit information is stored and held in a built-in storage unit (step ST12).
  • the wireless slave device N301 wirelessly communicates with the industrial slave device N101 between the wireless master device N201 and the wired communication unit 21 that transmits / receives a signal of periodic communication in the conventional industrial network in the wired section S3. And a wireless communication unit 22 that transmits and receives wireless signals in the section S2.
  • the wired communication unit 21 transmits and receives a data frame, a token frame, and the like to and from the industrial slave device N101.
  • the wireless communication unit 22 includes a wireless transmission unit 23 and a wireless reception unit 24.
  • the wireless transmission unit 23 converts the signal from the industrial slave device N101 input from the wired communication unit 21 to a wireless signal and transmits the signal to the wireless master device N201 via the wireless section S2.
  • the wireless transmission unit 23 transmits a data frame, a token frame, and the like to the wireless master device N201 via the wireless section S2.
  • the wireless reception unit 24 receives a wireless signal from the wireless master device N201 via the wireless section S2, and outputs the received wireless signal to the wired communication unit 21.
  • the wireless receiving unit 24 determines whether polling from the wireless master device N201 is polling addressed to the own device. In the case of polling addressed to the own device, the wireless transmission unit 23 transmits a data frame including data that can be transmitted to the wireless master device N201 when possessing transmittable data, and possesses transmittable data. If not, the wireless master device N201 is notified that there is no data. If the wireless slave device N301 receives a polling frame addressed to another wireless slave device from the wireless master device N201, the wireless slave device N301 ends the process without doing anything.
  • FIG. 7 is a flowchart of the polling determination operation of the wireless reception unit 24 according to the first embodiment.
  • FIG. 8 is a flowchart of the polling operation of the wireless transmission unit 23 according to the first embodiment.
  • the wireless transmission unit 23 receives a notification from the wireless reception unit 24 that it is polling addressed to itself (step ST31), the wireless transmission unit 23 checks whether or not it has transmittable data (step ST32).
  • step ST32: Yes When the wireless transmission unit 23 has data that can be transmitted (step ST32: Yes), the wireless transmission unit 23 transmits a data frame including data that can be transmitted to the wireless master device N201 (step ST33), and possesses data that can be transmitted. If not (step ST32: No), the wireless master device N201 is notified that there is no data (step ST34).
  • FIG. 9 is a flowchart of a process in which the wireless master device N201 executes polling and the wireless slave device N301 responds according to the first embodiment.
  • the processing of steps S11 to S12 is the processing of the wireless master device N201
  • the processing of steps S13 to S16 is the processing of the wireless slave device N301.
  • the traveling route information holding unit 14 acquires information on the token traveling route (step S11).
  • the method of acquiring the token tour information in the tour information holding unit 14 is as described above.
  • the wireless transmission unit 13 is connected to the corresponding industrial slave device according to the order of the industrial slave devices that receive the token frame.
  • the wireless slave device is polled for wireless communication (step S12).
  • the wireless reception unit 24 determines whether the polling from the wireless master device N201 is polling addressed to itself (step S13). If the polling is not addressed to the own device (step S13: No), the wireless slave device N301 ends the process. In the case of polling addressed to the own device (step S13: Yes), that is, when a polling frame addressed to the own device is received, it is confirmed whether or not the wireless transmission unit 23 has data that can be transmitted to the wireless master device N201. (Step S14). When data that can be transmitted is held (step S14: Yes), the wireless transmission unit 23 transmits a data frame including the aforementioned transmittable data to the wireless master device N201 (step S15). When the data which can be transmitted is not held (step S14: No), the wireless transmission unit 23 notifies the wireless master device N201 that there is no data (step S16).
  • the wireless master device N201 performs polling to the wireless slave device connected to the industrial slave device that receives the token frames according to the order of receiving the token frames based on the token circuit.
  • the difference in the length of the communication cycle in which data is transmitted by all devices in the industrial network will be described in the case of performing polling without considering the token circuit.
  • FIG. 10 is a sequence diagram showing frames transmitted and received between each device or each device when polling is executed without considering the order of the token circuit in the industrial network as a comparative example.
  • the number of wireless slave devices and industrial slave devices is three.
  • the industrial master device N1, the wireless master device N201, the wireless slave devices N301, N302, and N303, and the industrial slave devices N101, N102, and N103 that are assigned the same reference numerals as those in the first embodiment are used. explain. However, it is assumed that the function of the traveling route information holding unit 14 is not used in the wireless master device N201.
  • the industrial master device N1 transmits a data frame to the wireless master device N201 (step S101), and transmits a token frame destined for the industrial slave device N102 to the wireless master device N201 (step S102).
  • the wireless master device N201 transmits the data frame received from the industrial master device N1 to the wireless slave devices N301 to N303 (step S103).
  • the wireless slave devices N301 to N303 transmit the data frame received from the wireless master device N201 to the industrial slave devices N101 to N103 to be connected (step S104).
  • the wireless master device N201 transmits a token frame destined for the industrial slave device N102 received from the industrial master device N1 to the wireless slave devices N301 to N303 (step S105).
  • the wireless slave devices N301 to N303 transmit token frames destined for the industrial slave device N102 received from the wireless master device N201 to the industrial slave devices N101 to N103 to be connected (step S106).
  • the industrial slave device N102 Upon receiving the token frame addressed to itself, the industrial slave device N102 transmits a data frame to the wireless slave device N302 (step S107), and transmits a token frame destined for the industrial slave device N101 to the wireless slave device N302. (Step S108).
  • the wireless master device N201 performs polling to the wireless slave device N301 (step S109). Since the wireless slave device N301 does not have transmittable data, the wireless slave device N301 notifies the wireless master device N201 that there is no data (step S110). Note that the wireless slave devices N302 and N303 may actually receive a polling frame from the wireless master device N201. However, the wireless slave devices N302 and N303 do not perform any processing when the polling is not addressed to the own device as described above. Therefore, in the sequence diagram, in order to simplify the description, in the case where the wireless master device N201 executes polling, an arrow indicating execution of polling is described only for the destination wireless slave device. The same applies to the following.
  • the wireless master device N201 performs polling to the wireless slave device N302 (step S111). Since the wireless slave device N302 has received the data frame from the industrial slave device N102 (step S107) and has data that can be transmitted, the wireless slave device N302 transmits the data frame to the wireless master device N201 (step S112).
  • the wireless master device N201 transmits the data frame received from the wireless slave device N302 to the industrial master device N1 and the wireless slave devices N301 to N303 (steps S113 and S114).
  • the wireless master device N201 receives the received data frame.
  • the data is transmitted to the wireless slave devices N301 to N303.
  • the wireless slave devices N301 to N303 transmit the data frame received from the wireless master device N201 to the industrial slave devices N101 to N103 to be connected (step S115).
  • the wireless slave device N302 transmits the data frame only once to the wireless master device N201, but this is an example, and the data size of the data frame received from the industrial slave device N102 is large.
  • the data frame is transmitted to the wireless master device N201 a plurality of times. The same applies to the following.
  • the wireless master device N201 performs polling to the wireless slave device N302 (step S116). Since the wireless slave device N302 has received the token frame from the industrial slave device N102 after transmitting the data frame (step S108), the wireless slave device N302 transmits the token frame whose destination is the industrial slave device N101 to the wireless master device N201. (Step S117).
  • the wireless master device N201 transmits a token frame destined for the industrial slave device N101 received from the wireless slave device N302 to the industrial master device N1 and the wireless slave devices N301 to N303 (steps S118 and S119).
  • the wireless slave devices N301 to N303 transmit the token frame destined for the industrial slave device N101 received from the wireless master device N201 to the industrial slave devices N101 to N103 to be connected (step S120).
  • the industrial slave device N101 Upon receiving the token frame addressed to itself, the industrial slave device N101 transmits a data frame to the wireless slave device N301 (step S121), and transmits a token frame addressed to the industrial slave device N103 to the wireless slave device N301. (Step S122).
  • the wireless master device N201 performs polling to the wireless slave device N303 (step S123). Since the wireless slave device N303 does not have transmittable data, the wireless slave device N303 notifies the wireless master device N201 that there is no data (step S124).
  • the wireless master device N201 performs polling to the wireless slave device N301 (step S125). Since the wireless slave device N301 has received the data frame from the industrial slave device N101 (step S121) and has data that can be transmitted, the wireless slave device N301 transmits the data frame to the wireless master device N201 (step S126).
  • the wireless master device N201 transmits the data frame received from the wireless slave device N301 to the industrial master device N1 and the wireless slave devices N301 to N303 (steps S127 and S128).
  • the wireless slave devices N301 to N303 transmit the data frame received from the wireless master device N201 to the industrial slave devices N101 to N103 to be connected (step S129).
  • the wireless master device N201 performs polling to the wireless slave device N301 (step S130). Since the wireless slave device N301 has received the token frame from the industrial slave device N101 (step S122), the wireless slave device N301 transmits a token frame whose destination is the industrial slave device N103 to the wireless master device N201 (step S131).
  • the wireless master device N201 transmits a token frame destined for the industrial slave device N103 received from the wireless slave device N301 to the industrial master device N1 and the wireless slave devices N301 to N303 (steps S132 and S133).
  • the wireless slave devices N301 to N303 transmit the token frame destined for the industrial slave device N103 received from the wireless master device N201 to the industrial slave devices N101 to N103 to be connected (step S134).
  • the industrial slave device N103 Upon receiving the token frame addressed to itself, the industrial slave device N103 transmits a data frame to the wireless slave device N303 (step S135), and transmits a token frame destined for the industrial master device N1 to the wireless slave device N303. (Step S136).
  • the wireless master device N201 performs polling to the wireless slave device N302 (step S137). Since the wireless slave device N302 does not have transmittable data, the wireless slave device N302 notifies the wireless master device N201 that there is no data (step S138).
  • the wireless master device N201 performs polling to the wireless slave device N303 (step S139). Since the wireless slave device N303 has received the data frame from the industrial slave device N103 (step S135) and has data that can be transmitted, the wireless slave device N303 transmits the data frame to the wireless master device N201 (step S140).
  • the wireless master device N201 transmits the data frame received from the wireless slave device N303 to the industrial master device N1 and the wireless slave devices N301 to N303 (steps S141 and S142).
  • the wireless slave devices N301 to N303 transmit the data frame received from the wireless master device N201 to the industrial slave devices N101 to N103 to be connected (step S143).
  • the wireless master device N201 performs polling to the wireless slave device N303 (step S144). Since the wireless slave device N303 has received the token frame from the industrial slave device N103 (step S136), the wireless slave device N303 transmits a token frame destined for the industrial master device N1 to the wireless master device N201 (step S145).
  • the wireless master device N201 transmits a token frame destined for the industrial master device N1 received from the wireless slave device N303 to the industrial master device N1 and the wireless slave devices N301 to N303 (steps S146 and S147).
  • the wireless slave devices N301 to N303 transmit a token frame whose destination is the industrial master device N1 to the industrial slave devices N101 to N103 to be connected (step S148).
  • the industrial master device N1 transmits a data frame to the wireless master device N201 (step S101), and transmits a token frame whose destination is the industrial slave device N102 (step S102).
  • the subsequent processing is as described above.
  • the order of receiving the token frames is the industrial master device N1, the industrial slave device N102, the industrial slave device N101, and the industrial slave device N103.
  • the order in which the wireless master device N201 performs polling is the wireless slave device N301, the wireless slave device N302, and the wireless slave device N303.
  • the wireless master device N201 even if polling is performed on a wireless slave device connected to an industrial slave device that has not received a token frame, it is notified that there is no data, which is a wasteful process. For this reason, the communication cycle until the wireless master device N201 executes polling and all the wireless slave devices, here, the wireless slave devices N301 to N303 finish data transmission, becomes long.
  • FIG. 11 is a sequence diagram illustrating frames transmitted and received between each device or each device when polling is executed based on the order of the token circuit in the industrial network according to the first embodiment.
  • the description will be made using the industrial master device N1, the wireless master device N201, the wireless slave devices N301, N302, and N303, and the industrial slave devices N101, N102, and N103.
  • the wireless master device N201 uses the function of the traveling route information holding unit 14. Further, it is assumed that the tour route information holding unit 14 already holds information about the token tour circuit.
  • the token circuit information that is the order of receiving the token frames in the present embodiment specifically indicates the order of the industrial master device N1, the industrial slave device N102, the industrial slave device N101, and the industrial slave device N103. Information indicating that the process returns to the industrial master device N1.
  • the order in which the token frames indicated by the token tour information are received is the same as in the sequence diagram shown in FIG.
  • the industrial master device N1 transmits a data frame to the wireless master device N201 (step S201), and transmits a token frame destined for the industrial slave device N102 (step S202).
  • the wireless master device N201 transmits the data frame received from the industrial master device N1 to the wireless slave devices N301 to N303 (step S203).
  • the wireless slave devices N301 to N303 transmit the data frame received from the wireless master device N201 to the industrial slave devices N101 to N103 to be connected (step S204).
  • the wireless master device N201 transmits a token frame destined for the industrial slave device N102 received from the industrial master device N1 to the wireless slave devices N301 to N303 (step S205).
  • the wireless slave devices N301 to N303 transmit token frames destined for the industrial slave device N102 received from the wireless master device N201 to the industrial slave devices N101 to N103 to be connected (step S206).
  • the industrial slave device N102 Upon receiving the token frame addressed to itself, the industrial slave device N102 transmits a data frame to the wireless slave device N302 (step S207), and transmits a token frame addressed to the industrial slave device N101 to the wireless slave device N302. (Step S208).
  • the wireless transmission unit 13 connects to the industrial slave device N102 that receives the token frame next to its own device based on the token circuit information held by the circuit information holding unit 14. Polling to the wireless slave device N302 is executed (step S209). Since the wireless slave device N302 has received the data frame from the industrial slave device N102 (step S207) and has data that can be transmitted, the wireless slave device N302 transmits the data frame to the wireless master device N201 (step S210).
  • the wireless master device N201 transmits the data frame received from the wireless slave device N302 to the industrial master device N1 and the wireless slave devices N301 to N303 (steps S211 and S212).
  • the wireless slave devices N301 to N303 transmit the data frame received from the wireless master device N201 to the industrial slave devices N101 to N103 to be connected (step S213).
  • the wireless master device N201 performs polling to the wireless slave device N302 (step S214). Since the wireless slave device N302 has received the token frame from the industrial slave device N102 (step S208), the wireless slave device N302 transmits a token frame whose destination is the industrial slave device N101 to the wireless master device N201 (step S215).
  • the wireless master device N201 transmits a token frame destined for the industrial slave device N101 received from the wireless slave device N302 to the industrial master device N1 and the wireless slave devices N301 to N303 (steps S216 and S217).
  • the wireless slave devices N301 to N303 transmit the token frame destined for the industrial slave device N101 received from the wireless master device N201 to the industrial slave devices N101 to N103 to be connected (step S218).
  • the industrial slave device N101 Upon receiving the token frame addressed to itself, the industrial slave device N101 transmits a data frame to the wireless slave device N301 (step S219), and transmits a token frame addressed to the industrial slave device N103 to the wireless slave device N301. (Step S220).
  • the wireless transmission unit 13 connects to the industrial slave device N101 that is next receiving the token frame based on the token circuit information held by the circuit information holding unit 14. Polling to the wireless slave device N301 is executed (step S221). Since the wireless slave device N301 has received the data frame from the industrial slave device N101 (step S219) and has data that can be transmitted, the wireless slave device N301 transmits the data frame to the wireless master device N201 (step S222).
  • the wireless master device N201 transmits the data frame received from the wireless slave device N301 to the industrial master device N1 and the wireless slave devices N301 to N303 (steps S223 and S224).
  • the wireless slave devices N301 to N303 transmit the data frame received from the wireless master device N201 to the industrial slave devices N101 to N103 to be connected (step S225).
  • the wireless master device N201 performs polling to the wireless slave device N301 (step S226). Since the wireless slave device N301 has received the token frame from the industrial slave device N101 (step S220), the wireless slave device N301 transmits a token frame destined for the industrial slave device N103 to the wireless master device N201 (step S227).
  • the wireless master device N201 transmits a token frame destined for the industrial slave device N103 received from the wireless slave device N301 to the industrial master device N1 and the wireless slave devices N301 to N303 (steps S228 and S229).
  • the wireless slave devices N301 to N303 transmit a token frame destined for the industrial slave device N103 received from the wireless master device N201 to the industrial slave devices N101 to N103 to be connected (step S230).
  • the industrial slave device N103 Upon receiving the token frame addressed to itself, the industrial slave device N103 transmits a data frame to the wireless slave device N303 (step S231), and transmits a token frame destined for the industrial master device N1 to the wireless slave device N303. (Step S232).
  • the wireless transmission unit 13 connects to the industrial slave device N103 that is next receiving the token frame based on the token circuit information held by the circuit information holding unit 14. Polling to the wireless slave device N303 is executed (step S233). Since the wireless slave device N303 has received the data frame from the industrial slave device N103 (step S231) and has data that can be transmitted, the wireless slave device N303 transmits the data frame to the wireless master device N201 (step S234).
  • the wireless master device N201 transmits the data frame received from the wireless slave device N303 to the industrial master device N1 and the wireless slave devices N301 to N303 (steps S235 and S236).
  • the wireless slave devices N301 to N303 transmit the data frame received from the wireless master device N201 to the industrial slave devices N101 to N103 to be connected (step S237).
  • the wireless master device N201 performs polling to the wireless slave device N303 (step S238). Since the wireless slave device N303 has received the token frame from the industrial slave device N103 (step S232), the wireless slave device N303 transmits a token frame whose destination is the industrial master device N1 to the wireless master device N201 (step S239).
  • the wireless master device N201 transmits a token frame destined for the industrial master device N1 received from the wireless slave device N303 to the industrial master device N1 and the wireless slave devices N301 to N303 (steps S240 and S241).
  • the wireless slave devices N301 to N303 transmit the token frame destined for the industrial master device N1 received from the wireless master device N201 to the industrial slave devices N101 to N103 to be connected (step S242).
  • the industrial master device N1 transmits a data frame to the wireless master device N201 (step S201), and transmits a token frame destined for the industrial slave device N102 (step S202).
  • the subsequent processing is as described above.
  • the wireless transmission unit 13 is connected to the corresponding industrial slave device according to the order of the industrial slave devices that receive the token frame based on the token circuit information held by the circuit information holding unit 14.
  • Wireless communication polling is executed to the wireless slave device.
  • the wireless master device N201 does not perform polling on the wireless slave device connected to the industrial slave device that has not received the token frame, thereby avoiding unnecessary processing and improving communication efficiency, as shown in FIG. Compared with processing, the communication cycle can be shortened, and the communication cycle shown in FIG. 11 can be set to a constant cycle.
  • the wireless master device is a wireless communication that is a subordinate network
  • the wireless slave device is polled in consideration of the token order of the token passing system, which is the upper network. This prevents the occurrence of invalid procedures by polling wireless slave devices that do not have data that can be transmitted, and achieves both high reliability and high communication efficiency at regular intervals.
  • the communication cycle of the control communication to be performed is shortened, and the frequency resource can be effectively used.
  • the communication cycle of the industrial network is not fixed, but it is easy to grasp the communication cycle by matching the polling order with the token order. The effect which becomes.
  • the wireless master device N201 is connected to one industrial master device N1, and the wireless slave devices N301, N302, N303,..., N300 + m are connected to the industrial slave devices N101, N102, N103,.
  • the wireless master device N201 may be connected to a plurality of industrial master devices N1 belonging to different industrial networks.
  • the wireless slave devices N301, N302, N303,..., N300 + m may be connected to a plurality of industrial slave devices in one wireless slave device. The same applies to the following embodiments.
  • Embodiment 2 a method for omitting token frame transmission in the wireless master device will be described.
  • FIG. 12 is a block diagram of a configuration example of the wireless master device N201a and the wireless slave device N301a configuring the wireless communication system 30a according to the second embodiment.
  • the configuration of the industrial network in FIG. 1 replaces the wireless master device N201 with the wireless master device N201a, and replaces the wireless slave devices N301, N302, N303,..., N300 + m with the wireless slave devices N301a, N302a, N303a, ..., N (300 + m) a.
  • the wireless communication system includes a wireless master device N201a and wireless slave devices N301a, N302a, N303a,..., N (300 + m) a. Since the wireless slave devices N301a, N302a, N303a,..., N (300 + m) a have the same configuration, the wireless slave device N301a will be described here.
  • the wireless master device N201a includes a wired communication unit 11 and a wireless communication unit 12a that transmits and receives wireless signals in the wireless section S2 between the wireless slave devices N301a to N (300 + m) a.
  • the wireless communication unit 12a includes a wireless transmission unit 13a, a tour information holding unit 14, a token omitting unit 16, and a wireless reception unit 15.
  • the token omission unit 16 receives a token frame from the industrial master device N1 via the wired communication unit 11 in the wireless transmission unit 13a, and has not yet transmitted to the wireless slave devices N301a, N302a, N303a,..., N (300 + m) a.
  • master omission information indicating that transmission of a token frame from the wireless master device N201a is omitted is generated.
  • FIG. 13 is a flowchart of a process in which the token omission unit 16 according to the second embodiment generates master omission information.
  • the token omission unit 16 When the token omission unit 16 receives notification from the wireless transmission unit 13a that has received the token frame that there is an untransmitted data frame (step ST41), the token omission unit 16 generates master omission information (step ST42). Information is output to the wireless transmission part 13a (step ST43).
  • the wireless transmission unit 13a further transmits the data frame to the wireless section S2 a plurality of times, and the master omission information generated by the token omission unit 16 in the data frame to be transmitted last. Store and send.
  • the wireless transmission unit 13a transmits the master omission information by storing it in the header or payload portion of the last data frame.
  • the master abbreviation information is, for example, information in a format such as “0” or “1” by being defined in advance by the wireless master device N201a and the wireless slave devices N301a to N (300 + m) a configuring the wireless communication system 30a. Can be expressed as FIG.
  • step ST51 When the wireless transmission unit 13a receives a token frame from the industrial master device N1 via the wired communication unit 11 (step ST51), if there is an untransmitted data frame (step ST52: Yes), the wireless transmission unit 13a has not transmitted to the token omission unit 16. (Step ST53), the master omission information is obtained from the token omission unit 16 (step ST54), and the master omission information is stored and transmitted in the data frame to be transmitted last (step ST55). . If there is no untransmitted data frame (step ST52: No), the wireless transmission unit 13a transmits a token frame separately from the data frame (step ST56).
  • the traveling route information holding unit 14 and the token omitting unit 16 may be inside the wireless transmission unit 13a.
  • the wireless slave device N301a includes a wired communication unit 21 and a wireless communication unit 22a that transmits and receives wireless signals in the wireless section S2 between the wireless master device N201a.
  • the wireless communication unit 22a includes a wireless transmission unit 23, a wireless reception unit 24a, and a token generation unit 25.
  • the token generation unit 25 holds information on the token circuit, and when the master omission information is stored in the data frame from the wireless master device N201a received by the wireless reception unit 24a, the token generation unit 25 is based on the token circuit information. Then, the wireless master device N201a generates a token frame whose transmission is omitted.
  • the information on the token tour is the same as the information held by the tour information holding unit 14 in the first embodiment.
  • the token generation unit 25 may automatically learn the order of the destinations of the token frames flowing through the industrial network and acquire the token circuit information.
  • the token generation unit 25 cannot generate a token frame until the learning is completed. Therefore, for example, after the start of the operation of the industrial network, the wireless master device N201a does not omit the token frame transmission as a learning period of the token generation unit 25 for a predetermined period.
  • the token generation unit 25 acquires information about the token circuit by setting by the administrator described above or by automatically learning the destination order of token frames flowing through the industrial network (step ST61), and acquires the acquired token circuit.
  • the road information is stored and held in the built-in storage unit (step ST62).
  • the token generation unit 25 receives a notification from the wireless reception unit 24a that has received the data frame that the master omission information has been stored (step ST63)
  • the token generation unit 25 generates a token frame based on the token circuit information (
  • step ST64 the generated token frame is output to the wireless reception unit 24a (step ST65).
  • the token generation unit 25 performs the processes of steps ST61 to ST62 only for the first time, and omits the processes of steps ST61 to ST62 when the information of the token circuit information is already held.
  • FIG. 16 is a flowchart of a process of receiving a data frame in which master omission information is stored and transmitting a token frame in the wireless reception unit 24a according to the second embodiment.
  • the radio reception unit 24a When receiving the data frame in which the master omission information is stored from the radio master device N201a (step ST71), the radio reception unit 24a notifies the token generation unit 25 that the master omission information has been stored (step ST72). Then, a token frame is acquired from the token generation unit 25 (step ST73), and the acquired token frame is transmitted (step ST74).
  • token generation unit 25 may be inside the wireless reception unit 24a.
  • FIG. 17 is a flowchart illustrating processing in which the wireless master device N201a according to the second embodiment omits transmission of a token frame and the wireless slave device N301a generates a token frame.
  • the processes of steps S21 to S24 and S29 are the processes of the wireless master device N201a, and the processes of steps S25 to S28 and S30 are the processes of the wireless slave device N301a.
  • the token generator 25 has already set information on the token circuit by an administrator or the like.
  • the wireless communication unit 12a receives a token frame from the industrial master device N1 via the wired communication unit 11 (step S21).
  • the token omitting unit 16 confirms whether there is an untransmitted data frame to the wireless slave device N301a in the wireless transmission unit 13a (step S22).
  • step S22 If there is an unsent data frame (step S22: Yes), the token omission unit 16 generates master omission information (step S23).
  • the wireless transmission unit 13a stores the master omission information in the last data frame among the data frames to be transmitted to the wireless slave device N301a and transmits it to the wireless slave device N301a (step S24).
  • the wireless reception unit 24a receives the data frame storing the master omission information from the wireless master device N201a (step S25). Since the master omission information is stored in the data frame received by the wireless reception unit 24a, the token generation unit 25 generates a token frame to the industrial slave device N101 based on the information of the token circuit ( Step S26).
  • the wireless reception unit 24a transmits the data frame obtained by extracting the master omission information to the industrial slave device N101 via the wired communication unit 21 (step S27), and the token frame generated by the token generation unit 25 is transmitted via the wired communication unit 21. To the industrial slave device N101 (step S28).
  • the wireless transmission unit 13a receives the token frame from the industrial master device N1. Transmit to the wireless slave device N301a (step S29).
  • the wireless reception unit 24a receives the token frame (step S30)
  • the token frame is transmitted to the industrial slave device N101 via the wired communication unit 21 (step S28).
  • FIG. 18 is a sequence diagram illustrating frames transmitted and received between devices or devices when the wireless master device N201a omits a token frame in the industrial network according to the second embodiment.
  • Description will be made using the industrial master device N1, the wireless master device N201a, the wireless slave devices N301a, N302a, and N303a, and the industrial slave devices N101, N102, and N103. It is assumed that the token generation unit 25 of the wireless slave devices N301a to N303a already holds the token circuit information.
  • the token circuit information that is the order of receiving token frames in the present embodiment is the industrial master device N1, the industrial slave device N102, the industrial slave device N101, and the industrial slave device N103. This is information indicating that the process returns to the industrial master device N1.
  • the industrial master device N1 transmits a data frame to the wireless master device N201a (step S301), and transmits a token frame whose destination is the industrial slave device N102 (step S302).
  • the wireless transmission unit 13a transmits a data frame to the wireless slave devices N301a to N303a (step S303).
  • the token omitting unit 16 generates master omitting information
  • the wireless transmitting unit 13a stores the master omitting information in the last data frame among the data frames transmitted to the wireless slave devices N301a to N303a. Store and transmit to the wireless slave devices N301a to N303a.
  • the wireless slave devices N301a to N303a transmit the data frame received from the wireless master device N201a to the industrial slave devices N101 to N103 to be connected (step S304).
  • the master omission information may be extracted from the data frame and transmitted, or transmitted while being stored. May be. The same applies to the following.
  • the token generation unit 25 since the wireless slave devices N301a to N303a have received the data frame in which the master omission information is stored in the wireless reception unit 24a, the token generation unit 25 generates the token frame based on the information of the token circuit. To do. In the wireless slave devices N301a to N303a, the token generation unit 25 stores the master omission information in the data frame received from the wireless master device N201a, so that the industrial master device N1 connected to the wireless master device N201a Can be determined to have been received. As described above, the order of the token circuit is the industrial slave device N102 next to the industrial master device N1. Therefore, the token generation unit 25 generates a token frame whose destination is the industrial slave device N102 based on the information of the token circuit.
  • the wireless reception unit 24a transmits to the industrial slave devices N101 to N103 that connect the token frame destined for the industrial slave device N102 generated by the token generation unit 25 (step S305). .
  • steps S306 to S341 are the same as the processes in steps S207 to S242 shown in the sequence diagram of FIG. 11 of the first embodiment, description thereof will be omitted.
  • the wireless master device N201a when the wireless transmission unit 13a transmits a data frame a plurality of times, the master abbreviated information generated by the token omitting unit 16 is stored and transmitted in the data frame to be transmitted last.
  • the token generation unit 25 In the wireless slave devices N301a to N303a, the token generation unit 25 generates a token frame whose transmission is omitted in the wireless master device N201a and transmits the token frame to the industrial slave devices N101 to N103.
  • the wireless master device transmits a token frame wirelessly.
  • master omission information indicating that the transmission of the token frame is omitted is transmitted when the last data frame is transmitted.
  • the wireless slave device generates a token frame whose transmission is omitted and transmits it to the industrial slave device.
  • Embodiment 3 FIG.
  • the method of omitting the transmission of the token frame in the wireless master device has been described.
  • a method for omitting token frame transmission in the wireless slave device as well as the wireless master device will be described.
  • FIG. 19 is a block diagram of a configuration example of the wireless master device N201b and the wireless slave device N301b configuring the wireless communication system 30b according to the third embodiment.
  • the configuration of the industrial network in FIG. 1 replaces the wireless master device N201 with the wireless master device N201b, and replaces the wireless slave devices N301, N302, N303,..., N300 + m with the wireless slave devices N301b, N302b, N303b, ..., N (300 + m) b.
  • the wireless communication system includes a wireless master device N201b and wireless slave devices N301b, N302b, N303b,..., N (300 + m) b. Since the wireless slave devices N301b, N302b, N303b,..., N (300 + m) b have the same configuration, the wireless slave device N301b will be described here.
  • the wireless master device N201b includes a wired communication unit 11 and a wireless communication unit 12b that transmits and receives wireless signals in the wireless section S2 between the wireless slave devices N301b to N (300 + m) b.
  • the wireless communication unit 12b includes a wireless transmission unit 13a, a circuit information holding unit 14, a token omitting unit 16, a wireless reception unit 15a, and a token generation unit 17.
  • the token generation unit 17 stores slave omission information indicating that transmission of the token frame from the radio slave devices N301b to N303b is omitted in the data frame from the radio slave devices N301b to N303b received by the radio reception unit 15a. If so, a token frame whose transmission is omitted by the wireless slave devices N301b to N303b is generated based on the token circuit information.
  • the information on the token tour is the same as the information held by the tour information holding unit 14 in the first embodiment.
  • the token generation unit 17 may hold information on the token circuit, or may not store information on the token circuit, but may store information on the token circuit held by the circuit information holding unit 14. May be used.
  • the token generation unit 17 may automatically learn the order of the destinations of the token frames flowing through the industrial network and acquire the token circuit information.
  • the token generation unit 17 cannot generate a token frame until the learning is completed. Therefore, for example, the wireless slave devices N301b to N303b do not omit the token frame transmission as a learning period of the token generation unit 17 for a predetermined period after the start of operation of the industrial network.
  • the token generation unit 17 acquires the token circulation information by the setting by the administrator described above or by automatically learning the destination order of the token frames flowing through the industrial network (step ST81), and the acquired token circulation The road information is stored and held in a built-in storage unit (step ST82).
  • the token generation unit 17 receives notification from the wireless reception unit 15a that has received the data frame that the slave omission information has been stored (step ST83)
  • the token generation unit 17 generates a token frame based on the token circuit information (
  • step ST84 the generated token frame is output to the wireless reception unit 15a (step ST85).
  • the token generation unit 17 performs the processing of steps ST81 to ST82 only for the first time, and omits the processing of steps ST81 to ST82 when the information of the token circuit information is already held. Further, when the token generator 17 uses the information of the token circuit held by the circuit information holding unit 14, the processes of steps ST81 to ST82 may be omitted from the first time.
  • FIG. 21 is a flowchart of a process of receiving a data frame in which slave omission information is stored and transmitting a token frame in the wireless reception unit 15a according to the third embodiment.
  • the radio reception unit 15a When receiving the data frame in which the slave omission information is stored from the radio slave devices N301b to N303b (step ST91), the radio reception unit 15a notifies the token generation unit 17 that the slave omission information has been stored (step ST91). (ST92), a token frame is acquired from the token generator 17 (step ST93), and the acquired token frame is transmitted (step ST94).
  • token generation unit 17 may be inside the wireless reception unit 15a.
  • the wireless slave device N301b includes a wired communication unit 21 and a wireless communication unit 22b that transmits and receives wireless signals in the wireless section S2 between the wireless master device N201b.
  • the wireless communication unit 22b includes a wireless transmission unit 23a, a token omitting unit 26, a wireless reception unit 24a, and a token generation unit 25.
  • the token omission unit 26 receives a token frame from the industrial slave device N101 via the wired communication unit 21, and when there is an untransmitted data frame to the radio section S2 in the radio transmission unit 23a, the token omission unit 26 receives a token frame from the radio slave device N301b. Slave abbreviation information indicating that the token frame transmission is to be omitted is generated.
  • FIG. 22 is a flowchart of a process of generating slave omission information by the token omission unit 26 according to the third embodiment.
  • the token omission unit 26 Upon receiving notification from the wireless transmission unit 23a that has received the token frame that there is an untransmitted data frame (step ST101), the token omission unit 26 generates slave omission information (step ST102), and the generated slave omission is performed. Information is output to the wireless transmission part 23a (step ST103).
  • the wireless transmission unit 23a further transmits the data frame to the wireless section S2 a plurality of times, and the slave abbreviation information generated by the token omitting unit 26 in the data frame to be transmitted last. Store and send.
  • the wireless transmission unit 23a transmits the slave omission information in the header or payload portion of the last data frame.
  • the slave omission information is, for example, information in a format such as “0” or “1” by being defined in advance by the wireless master device N201b and the wireless slave devices N301b to N (300 + m) b configuring the wireless communication system 30b. Can be expressed as FIG.
  • step ST111 When the wireless transmission unit 23a receives a token frame from the industrial slave device N101 via the wired communication unit 21 (step ST111), if there is an untransmitted data frame (step ST112: Yes), the wireless transmission unit 23a has not transmitted to the token omission unit 26 (Step ST113), the slave omission information is obtained from the token omission unit 26 (step ST114), and the slave omission information is stored and transmitted in the data frame to be transmitted last (step ST115). . When there is no untransmitted data frame (step ST112: No), the wireless transmission unit 23a transmits a token frame separately from the data frame (step ST116).
  • the token generation unit 25 stores master omission information indicating that the transmission of the token frame from the radio master device N201b is omitted in the data frame from the radio master device N201b received by the radio reception unit 24a, Based on the information of the token circuit, a token frame whose transmission is omitted by the wireless master device N201b is generated. Further, the token generation unit 25 includes slave omission information indicating that the transmission of the token frame from the radio slave devices N301b to N303b is omitted in the data frame from the radio slave devices N301b to N303b transferred from the radio master device N201b. If stored, a token frame whose transmission is omitted by the wireless slave devices N301b to N303b is generated based on the information of the token circuit.
  • the information on the token tour is the same as the information held by the tour information holding unit 14 in the first embodiment.
  • the token omission unit 26 may be inside the wireless transmission unit 23a.
  • the wireless slave device N301b omits the token frame transmission and the wireless master device N201b generates the token frame.
  • the wireless slave device N301b omits the token frame transmission and the wireless master device N201b generates the token frame.
  • it is the same as each process of the flowchart shown in FIG. Therefore, detailed description is omitted.
  • FIG. 24 is a sequence diagram illustrating frames transmitted / received between devices or devices when the wireless master device N201b and the wireless slave devices N301b to N303b omit the token frame in the industrial network according to the third embodiment. is there. Description will be made using the industrial master device N1, the wireless master device N201b, the wireless slave devices N301b, N302b, and N303b, and the industrial slave devices N101, N102, and N103. It is assumed that the token generation unit 17 of the wireless master device N201b already holds or can use the token circuit information.
  • the token circuit information that is the order of receiving token frames in the present embodiment is the industrial master device N1, the industrial slave device N102, the industrial slave device N101, and the industrial slave device N103. This is information indicating that the process returns to the industrial master device N1.
  • the industrial master device N1 transmits a data frame to the wireless master device N201b (step S401), and transmits a token frame destined for the industrial slave device N102 (step S402).
  • the wireless transmission unit 13a transmits a data frame to the wireless slave devices N301b to N303b (step S403).
  • the token omitting unit 16 generates master omitting information
  • the wireless transmitting unit 13a stores the master omitting information in the last data frame among the data frames transmitted to the wireless slave devices N301b to N303b. Store and transmit to the wireless slave devices N301b to N303b.
  • the wireless slave devices N301b to N303b transmit the data frame received from the wireless master device N201b to the industrial slave devices N101 to N103 to be connected (step S404).
  • the master omission information may be extracted from the data frame and transmitted, or transmitted while being stored. May be. The same applies to the following.
  • the token generation unit 25 since the wireless reception unit 24a has received the data frame storing the master omission information, the token generation unit 25 generates the token frame based on the information of the token circuit. To do. In the wireless slave devices N301b to N303b, the token generation unit 25 stores the master omission information in the data frame received from the wireless master device N201b, so that the industrial master device N1 connected to the wireless master device N201b Can be determined to have been received. As described above, the order of the token circuit is the industrial slave device N102 next to the industrial master device N1. Therefore, the token generation unit 25 generates a token frame whose destination is the industrial slave device N102 based on the information of the token circuit.
  • the wireless reception unit 24a transmits to the industrial slave devices N101 to N103 to which the token frame destined for the industrial slave device N102 generated by the token generation unit 25 is connected (step S405).
  • the industrial slave device N102 Upon receiving the token frame addressed to itself, the industrial slave device N102 transmits a data frame to the wireless slave device N302b (step S406), and transmits a token frame destined for the industrial slave device N101 to the wireless slave device N302b. (Step S407).
  • the wireless transmission unit 13a connects to the industrial slave device N102 that receives the token frame next to its own device, based on the token circuit information held by the circuit information holding unit 14. Polling to the wireless slave device N302b is executed (step S408). Since the wireless slave device N302b has received the data frame from the industrial slave device N102 (step S406) and has data that can be transmitted, the wireless slave device N302b transmits the data frame to the wireless master device N201b (step S409).
  • the token omission unit 26 generates slave omission information, and the radio transmission unit 23a stores the slave omission information in the last data frame among the data frames transmitted to the radio master device N201b. To the wireless master device N201b.
  • the wireless master device N201b transmits the data frame received from the wireless slave device N302b to the industrial master device N1 and the wireless slave devices N301b to N303b (steps S410 and S412).
  • the wireless reception unit 15a of the wireless master device N201b when transmitting a data frame to the industrial master device N1, the slave omission information may be extracted from the data frame and transmitted, or may be transmitted while being stored. .
  • the wireless reception unit 15a of the wireless master device N201b when the data frame is transmitted to the wireless slave devices N301b to N303b, the data is transmitted while the slave omission information is stored. The same applies to the following.
  • the token generation unit 17 since the wireless master device N201b has received the data frame in which the slave omission information is stored in the wireless reception unit 15a, the token generation unit 17 generates a token frame based on the information of the token circuit.
  • the token generator 17 stores the slave omission information in the data frame received from the wireless slave device N302b, so that the industrial slave device N102 connected to the wireless slave device N302b receives the token frame. It can be judged that he was doing.
  • the industrial slave device N101 follows the industrial slave device N102. Therefore, the token generation unit 17 generates a token frame whose destination is the industrial slave device N101 based on the information of the token circuit.
  • the wireless receiving unit 15a transmits the token frame destined for the industrial slave device N101 generated by the token generating unit 17 to the industrial master device N1 that connects (step S411).
  • the wireless slave devices N301b to N303b transmit the data frame received from the wireless master device N201b to the industrial slave devices N101 to N103 to be connected (step S413).
  • the token generation unit 25 since the wireless reception unit 24a has received the data frame in which the slave omission information is stored, the token generation unit 25 generates a token frame based on the token circuit information. To do.
  • a method for generating a token frame whose destination is the industrial slave device N101 in the token generation unit 25 is the same as that of the token generation unit 17 described above.
  • the wireless reception unit 24a transmits to the industrial slave devices N101 to N103 to which the token frame destined for the industrial slave device N101 generated by the token generation unit 25 is connected (step S414). .
  • the industrial slave device N101 Upon receiving the token frame addressed to itself, the industrial slave device N101 transmits a data frame to the wireless slave device N301b (step S415), and transmits a token frame destined for the industrial slave device N103 to the wireless slave device N301b. (Step S416).
  • the wireless slave device N302b determines that there is no frame held by the wireless slave device N302b.
  • the wireless transmission unit 13a is notified that no frame is held.
  • the wireless transmission unit 13a is connected to the industrial slave device N101 that is next receiving the token frame based on the token circuit information held by the circuit information holding unit 14. Polling to N301b is executed (step S417). Since the wireless slave device N301b has received the data frame from the industrial slave device N101 (step S415) and has data that can be transmitted, the wireless slave device N301b transmits the data frame to the wireless master device N201b (step S418).
  • the token omission unit 26 generates slave omission information, and the radio transmission unit 23a stores the slave omission information in the last data frame among the data frames transmitted to the radio master device N201b. To the wireless master device N201b.
  • the wireless master device N201b transmits the data frame received from the wireless slave device N301b to the industrial master device N1 and the wireless slave devices N301b to N303b (steps S419 and S421). At this time, in the wireless master device N201b, since the wireless reception unit 15a has received the data frame in which the slave omission information is stored, the token generation unit 17 generates a token frame based on the token circuit information.
  • the token generation unit 17 receives the token frame from the industrial slave device N101 connected to the wireless slave device N301b because the slave omission information is stored in the data frame received from the wireless slave device N301b. It can be judged that he was doing. As described above, in the order of the token circuit, the industrial slave device N103 is next to the industrial slave device N101. Therefore, the token generation unit 17 generates a token frame whose destination is the industrial slave device N103 based on the information of the token circuit.
  • the wireless reception unit 15a transmits the token frame destined for the industrial slave device N103 generated by the token generation unit 17 to the industrial master device N1 (step S420).
  • the wireless slave devices N301b to N303b transmit the data frame received from the wireless master device N201b to the industrial slave devices N101 to N103 to be connected (step S422).
  • the token generation unit 25 since the wireless reception unit 24a has received the data frame in which the slave omission information is stored, the token generation unit 25 generates a token frame based on the token circuit information. To do.
  • a method for generating a token frame whose destination is the industrial slave device N103 in the token generation unit 25 is the same as that of the token generation unit 17 described above.
  • the wireless reception unit 24a transmits to the industrial slave devices N101 to N103 that connect the token frame destined for the industrial slave device N103 generated by the token generation unit 25 (step S423).
  • the industrial slave device N103 Upon receiving the token frame addressed to itself, the industrial slave device N103 transmits a data frame to the wireless slave device N303b (step S424), and transmits a token frame destined for the industrial master device N1 to the wireless slave device N303b. (Step S425).
  • the wireless reception unit 15a receives the data frame in which the slave omission information is stored from the wireless slave device N301b. Therefore, the wireless slave device N301b determines that there is no frame, and the wireless slave device N301b The wireless transmission unit 13a is notified that no frame is held.
  • the wireless transmission unit 13a is connected to the industrial slave device N103 that is next receiving the token frame based on the token circuit information held by the circuit information holding unit 14. Polling to N303b is executed (step S426). Since the wireless slave device N303b has received the data frame from the industrial slave device N103 (step S424) and has transmittable data, the wireless slave device N303b transmits the data frame to the wireless master device N201b (step S427).
  • the token omission unit 26 generates slave omission information, and the radio transmission unit 23a stores the slave omission information in the last data frame among the data frames transmitted to the radio master device N201b. To the wireless master device N201b.
  • the wireless master device N201b transmits the data frame received from the wireless slave device N303b to the industrial master device N1 and the wireless slave devices N301b to N303b (steps S428 and S430). At this time, in the wireless master device N201b, since the wireless reception unit 15a has received the data frame in which the slave omission information is stored, the token generation unit 17 generates a token frame based on the token circuit information.
  • the token generation unit 17 receives the token frame from the industrial slave device N103 connected to the wireless slave device N303b because the slave omission information is stored in the data frame received from the wireless slave device N303b. It can be judged that he was doing. As described above, in the order of the token circuit, the industrial master device N1 is next to the industrial slave device N103. Therefore, the token generation unit 17 generates a token frame whose destination is the industrial master device N1 based on the information of the token circuit.
  • the wireless reception unit 15a transmits the token frame destined for the industrial master device N1 generated by the token generation unit 17 to the industrial master device N1 that connects (step S429).
  • the wireless slave devices N301b to N303b transmit the data frame received from the wireless master device N201b to the industrial slave devices N101 to N103 to be connected (step S431).
  • the token generation unit 25 since the wireless reception unit 24a has received the data frame in which the slave omission information is stored, the token generation unit 25 generates a token frame based on the token circuit information. To do.
  • a method of generating a token frame whose destination is the industrial master device N1 in the token generation unit 25 is the same as that of the token generation unit 17 described above.
  • the wireless reception unit 24a transmits to the industrial slave devices N101 to N103 to which the token frame destined for the industrial master device N1 generated by the token generation unit 25 is connected (step S432). .
  • the industrial master device N1 transmits a data frame to the wireless master device N201b (step S401), and transmits a token frame whose destination is the industrial slave device N102 (step S402).
  • the subsequent processing is as described above.
  • the wireless slave devices N301b to N303b omit the token frame transmission, thereby shortening the communication cycle compared to the second embodiment. Can do.
  • a token is provided between the wireless master device and the wireless slave device. Frame exchange is omitted, and invalid polling is also omitted when polling is executed sequentially. As a result, the time for exchanging token frames in a wireless section with a narrower communication band than the wired section is shortened, and both high reliability and high communication efficiency are achieved.
  • the frequency resource can be effectively used.
  • FIG. 25 is a diagram illustrating an example of a hardware configuration of a wireless communication unit of the wireless master device or the wireless slave device according to the first to third embodiments.
  • the wireless transmission units 13 and 13 a are realized by the processor 91 executing programs for each component stored in the memory 92 together with the transmitter 93.
  • the tour information holding unit 14 is realized by the processor 91 executing a program for the tour information holding unit 14 stored in the memory 92 together with the memory 92.
  • the wireless receiving units 15 and 15 a are realized by the processor 91 executing the program for each component stored in the memory 92 together with the receiver 94.
  • the token omitting unit 16 is realized by the processor 91 executing a program for the token omitting unit 16 stored in the memory 92.
  • the token generation unit 17 is realized by the processor 91 executing a program for the token generation unit 17 stored in the memory 92.
  • the token generation unit 17 is realized by the processor 91 executing a program for the token generation unit 17 stored in the memory 92 together with the memory 92.
  • the wireless transmission units 23 and 23 a are realized by the processor 91 executing the program for each component stored in the memory 92 together with the transmitter 93.
  • the wireless reception units 24 and 24 a are realized by the processor 91 executing programs for each component stored in the memory 92 together with the receiver 94.
  • the token generation unit 25 is realized by the processor 91 executing a program for the token generation unit 25 stored in the memory 92 together with the memory 92.
  • the token omitting unit 26 is realized by the processor 91 executing a program for the token omitting unit 26 stored in the memory 92.
  • the processor 91, the memory 92, the transmitter 93, and the receiver 94 are connected by a system bus 95.
  • a plurality of processors 91 and a plurality of memories 92 may cooperate to execute the function of each component.
  • the configuration described in the above embodiment shows an example of the contents of the present invention, and can be combined with another known technique, and can be combined with other configurations without departing from the gist of the present invention. It is also possible to omit or change the part.

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Mobile Radio Communication Systems (AREA)
  • Small-Scale Networks (AREA)
PCT/JP2015/073245 2015-08-19 2015-08-19 無線親局、無線子局、無線通信システムおよび無線通信方法 WO2017029728A1 (ja)

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JP2017510413A JP6289742B2 (ja) 2015-08-19 2015-08-19 無線親局、無線子局、無線通信システムおよび無線通信方法
KR1020177021908A KR101789977B1 (ko) 2015-08-19 2015-08-19 무선 마스터 스테이션, 무선 슬레이브 스테이션, 무선 통신 시스템 및 무선 통신 방법
CN201580077719.8A CN107409078B (zh) 2015-08-19 2015-08-19 无线母站、无线子站、无线通信系统及无线通信方法
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