Communication control device

JP2026126981AActive Publication Date: 2026-08-05IND SECURITY PROVIDE LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
IND SECURITY PROVIDE LTD
Filing Date
2025-01-24
Publication Date
2026-08-05

AI Technical Summary

Benefits of technology

【0007】 以上のように開示の形態によれば、機器の挙動から必要に応じて物理的操作に応じて物理的に信号線を断線することができるので、作業者の想定内に機器の挙動を維持することができる。

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Abstract

To provide a communication control device that can maintain the behavior of equipment within the operator's expectations. [Solution] The communication control device 13 includes signal lines 38 and 42 that connect to the target manufacturing equipment 19a, 19b, and 19c via a network to remote devices 14a, 14b, and 14c used for managing the manufacturing equipment 19a, 19b, and 19c, and a first circuit breaker 39 and a second circuit breaker 43 that are inserted into the signal lines 38 and 42 and physically disconnect the signal lines 38 and 42 in response to physical operation.
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Description

Technical Field

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[0001] The present invention relates to a communication control device that connects a remote device to a target device via a network.

Background Art

[0002] Generally, a network is composed of a switching device that distributes communication and nodes such as computers connected to the switching device. As disclosed in Patent Document 1, in the event of a communication interruption, for example, in a switching device, communication ports are stopped. A command to stop the communication port is generated. In addition, if a command to stop the connection port is generated at a node, the communication is interrupted. The interruption of communication is controlled by software.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] In the field of remote control, various devices are connected to a remote device via a network, and the operation of the device is managed using the remote device from a location away from the device installed at the work site. Even if an operator is working around the device, the behavior of the device may be changed from the remote device. The device may exhibit behavior that is unpredictable to the operator. In particular, even if the communication port or connection port is stopped, if a signal leaks from the communication port or connection port to the device due to a software defect or unauthorized access, the device may exhibit behavior that the operator cannot anticipate, and there is also a possibility of causing unpredictable serious consequences.

[0005] An object of the present invention is to provide a communication control device that can maintain the behavior of a device within the assumptions of an operator. [Means for solving the problem]

[0006] The communication control device according to the present invention comprises a signal line connecting a remote device used for managing a target device via a network, and a circuit breaker inserted into the signal line and physically disconnecting the signal line in response to a physical operation. [Effects of the Invention]

[0007] As described above, according to the form of disclosure, the signal lines can be physically disconnected in accordance with physical operation as needed based on the behavior of the equipment, thereby maintaining the behavior of the equipment within the operator's expectations. [Brief explanation of the drawing]

[0008] [Figure 1] This is a block diagram schematically showing the configuration of the equipment system according to the first embodiment of the present invention. [Figure 2] This is a conceptual diagram illustrating the structure of a first circuit breaker in a specific example. [Figure 3] This is a conceptual diagram illustrating the structure of a second circuit breaker in a specific example. [Figure 4] This is a block diagram schematically showing the configuration of the equipment system according to the second embodiment of the present invention. [Figure 5] This is a block diagram schematically showing the configuration of the equipment system according to the third embodiment of the present invention. [Figure 6] This is a block diagram schematically showing the configuration of the equipment system according to the fourth embodiment of the present invention. [Figure 7] This is a block diagram schematically showing the configuration of the equipment system according to the fifth embodiment of the present invention. [Modes for carrying out the invention]

[0009] One embodiment of the present invention will be described below with reference to the attached drawings.

[0010] <First Embodiment> Figure 1 schematically shows the configuration of a device system 11 according to the first embodiment of the present invention. The device system 11 includes an OT network (operational technology network) 12 constructed in a production facility such as a factory or plant. A communication control device 13 is connected to the OT network 12, for example, to form a LAN (local area network) within the factory. The communication control device 13 is connected to a LAN 16 that forms a Wi-Fi (wireless fidelity) access point 15 accessed from remote devices 14a within the factory, a LAN 17 formed by a wired network connected to an IPC (industrial PC) that functions as a remote device 14b, a data LAN 21 that supplies data to individual manufacturing devices 19a, 19b, and 19c for control purposes, and an engineering LAN 22 used for program rewriting and other purposes for each individual manufacturing device 19a, 19b, and 19c for management purposes.

[0011] Each individual manufacturing device 19a, 19b, and 19c is equipped with a PLC (programmable logic controller) 23a, 23b, and 23c connected to LANs 21 and 22. The PLCs 23a, 23b, and 23c numerically control the manufacturing devices 19a, 19b, and 19c based on their built-in control programs. The manufacturing devices 19a, 19b, and 19c include, for example, NC machine tools, welding robots, painting robots, and others. The communication control device 13 manages the connection and disconnection of remote devices 14a and 14b to each individual PLC 23a, 23b, and 23c. In managing these devices, the communication control device 13 refers to the MAC addresses set on each individual PLC 23a, 23b, and 23c, as well as on the remote devices 14a and 14b.

[0012] The OT network 12 is connected to, for example, the internet 25. Remote devices 14c access the OT network 12 via the internet 25. The communication control device 13 connects the remote devices 14c to individual PLCs 23a, 23b, and 23c via the internet 25. Preferably, a firewall is established between the OT network 12 and the internet 25.

[0013] The communication control device 13 includes a switching circuit 31 that switches the connection of remote devices 14a, 14b, and 14c to the manufacturing devices 19a, 19b, and 19c via the network. The switching circuit 31 is connected to a LAN jack 32 that accepts a LAN cable plug used to form LAN 16, a LAN jack 33 that accepts a LAN cable plug used to form LAN 17, a LAN jack 34 that accepts a LAN cable plug used to form LAN 21, a LAN jack 35 that accepts a LAN cable plug used to form LAN 22, and a LAN jack 36 that accepts a LAN cable plug used to connect to the OT network 12. The switching circuit 31 establishes signal lines between the individual remote devices 14a, 14b, and 14c and the individual manufacturing devices 19a, 19b, and 19c in accordance with the connection switching.

[0014] In the communication control device 13, a first circuit breaker 39 is inserted between the switching circuit 31 and the LAN jack 34 in the signal line 38. The first circuit breaker 39 is composed of, for example, a cutoff relay. A lamp 41 that lights up in accordance with the supply of current is connected to the first circuit breaker 39. Here, a normally closed relay is used as the cutoff relay, which establishes a break in the signal line 38 when it receives a control voltage while conducting. As long as the control voltage is not supplied, the conduction of the signal line 38 is maintained. When the signal line 38 is conducting, the lamp 41 lights up. When the signal line 38 is broken, the lamp 41 turns off. Note that it is sufficient for the operator to know the conduction / breakage status of the signal line 38 by whether the lamp 41 is lit or not, so the reverse is also acceptable, such as lighting up the lamp 41 when the signal line 38 is broken.

[0015] In the communication control device 13, a second circuit breaker 43 is inserted between the switching circuit 31 and the LAN jack 35 in the signal line 42. The second circuit breaker 43 is composed of, for example, a cutoff relay. A lamp 44 that lights up in accordance with the supply of current is connected to the second circuit breaker 43. Here, a normally open relay is used as the cutoff relay, which establishes continuity of the signal line 42 when it receives a control voltage in the event of a break. As long as no control voltage is supplied, the signal line 42 remains broken. When the signal line 42 is in continuity, the lamp 44 lights up. When the signal line 42 is broken, the lamp 44 turns off. Note that it is sufficient for the operator to know the continuity / breakage status of the signal line 42 by whether the lamp 44 is lit or not, so the reverse is also acceptable, such as lighting up the lamp 44 when the signal line 42 is broken.

[0016] Logic circuits 45 are connected to the first circuit breaker 39 and the second circuit breaker 43. Based on the operation of the first circuit breaker 39, the logic circuit 45 controls the disconnection and continuity of the signal line 38 between the switching circuit 31 and the LAN jack 34. Similarly, based on the operation of the second circuit breaker 43, the logic circuit 45 controls the disconnection and continuity of the signal line 42 between the switching circuit 31 and the LAN jack 35.

[0017] A physical key switch 46 is connected to the logic circuit 45. The physical key switch 46 includes a key cylinder 47 that rotates in response to a physical operation (rotational drive) of the inserted physical key, and an on-off circuit 48 that generates a specific control signal according to the angular position (reference position) of the key cylinder 47. A keyhole 49 for receiving the physical key and reflecting the rotational movement of the key cylinder 47 is arranged in the key cylinder 47. The key cylinder 47 is positioned at angular position "0", angular position "1", and angular position "2" in response to the operation of the physical key inserted into the keyhole 49. A click feeling may be generated for each of the individual angular positions "0", "1", and "2" during positioning. At angular position "0", an off signal is generated for the first cutoff 39 and an off signal is generated for the second cutoff 43. At angular position "1", an off signal is generated for the first cutoff 39 and an on signal is generated for the second cutoff 43. At angular position "2", an on signal is generated for the first cutoff 39 and an off signal is generated for the second cutoff 43.

[0018] The logic circuit 45 includes a timer 51 that measures a determined time from the reception of the on signal. The timer 51 sets a duration constraint for disconnection with respect to the first cutoff 39. In the first cutoff 39, disconnection does not continue beyond the determined duration. Similarly, the timer 51 sets a duration constraint for conduction with respect to the second cutoff 43. In the second cutoff 43, conduction does not continue beyond the determined duration.

[0019] As shown in FIG. 2, a specific example of the first circuit breaker 39 includes a first connector 53 having conductive pins 52a to 52h arranged according to the RJ45 standard, and conductive pins 52a to 52h of the first connector 53 are individually connected by signal lines 54a to 54h, and a second connector 56 having conductive pins 55a to 55h arranged according to the RJ45 standard. The first connector 53 and the second connector 56 may be plugs or jacks. A pair of signal lines 54a and 54b are configured as twisted pairs. Here, the disconnection mechanism 57 is inserted into the signal lines 54a, 54c, 54e, 54g on the plus (+) side of the twisted pair. In FIG. 2, the configuration of the disconnection mechanism 57 provided in the signal line 54a is shown in detail, and the detailed configurations of the disconnection mechanisms 57 provided in the other signal lines 54c, 54e, 54g are omitted. Hereinafter, the disconnection mechanism 57 provided in the signal line 54a will be described with attention.

[0020] The disconnection mechanism 57 has a first terminal 58 coupled to the signal line 54a on the first connector 53 side, a second terminal 59 coupled to the signal line 54a on the second connector 56 side, and a third terminal 61 separated from any of the signal lines 54a. A movable piece 63 that is displaced around a rotation axis (an axis extending in the front and back directions of the paper surface in FIG. 2) 62 is disposed between the second terminal 59 and the third terminal 61. The movable piece 63 is connected to the first terminal 58 by a conductive wire 64. The movable piece 63 is fixed to a driving body 65 that is supported rotatably around the rotation axis 62 (rotatable clockwise and counterclockwise in FIG. 2). Although the driving body 65 is configured to be displaceable rotatably with respect to a fulcrum according to an external force, the present invention is not limited to this, and the driving body 65 may be configured to be displaceable tiltably with respect to a fulcrum according to an external force, or the driving body 65 may be configured to be displaced elastically and bent without breaking with respect to a fulcrum according to an external force.

[0021] The drive unit 65 presses the movable piece 63 against the second terminal 59 through the action of the elastic member 66. The elastic member 66 is, for example, a helical spring, and exerts a driving force that drives the movable piece 63 toward the second terminal 59 around the rotation axis 62 by elastic force. A solenoid 67 is connected to the drive unit 65. The solenoid 67 generates an electromagnetic force in response to the supply of current. The electromagnetic force exerts a driving force that drives the movable piece 63 toward the third terminal 61 around the rotation axis 62. Since the electromagnetic force exceeds the elastic force of the elastic member 66, the drive unit 65 presses the movable piece 63 against the third terminal 61 in response to the action of the solenoid 67. Current is supplied to the solenoid 67 from the logic circuit 45. Unless a control voltage is supplied from the logic circuit 45, the disconnection mechanism 57 maintains continuity in the signal lines 54a, 54c, 54e, and 54g. When a control voltage is supplied from the logic circuit 45, the disconnection mechanism 57 disconnects the signal lines 54a, 54c, 54e, and 54g.

[0022] As shown in Figure 3, the second circuit breaker 43 is configured similarly to the first circuit breaker 39. However, in the disconnection mechanism 57 of the second circuit breaker 43, the third terminal 61 is coupled to the signal lines 54a, 54c, 54e, and 54g on the second connector 56 side, while the second terminal 59 is disconnected from all of the signal lines 54a, 54c, 54e, and 54g. Therefore, unless a control voltage is supplied from the logic circuit 45, the disconnection mechanism 57 of the second circuit breaker 43 maintains a disconnection of the signal lines 54a, 54c, 54e, and 54g. When a control voltage is supplied from the logic circuit 45, the disconnection mechanism 57 conducts through the signal lines 54a, 54c, 54e, and 54g.

[0023] Next, the operation of the communication control device 13 will be explained. When the key cylinder 47 of the physical key switch 46 is set to corner position "0", the on / off circuit 48 supplies a control signal to the logic circuit 45. In response to the supply of the control signal, the logic circuit 45 generates an off signal for the first circuit breaker 39 and an off signal for the second circuit breaker 42.

[0024] No electromagnetic force is generated in the solenoid 67 of the first circuit breaker 39. The drive unit 65 presses the movable piece 63 against the second terminal 59 using the elastic force of the elastic member 66. The first circuit breaker 39 establishes continuity in the signal lines 54a, 54c, 54e, and 54g. Remote devices 14a, 14b, and 14c are connected to PLCs 23a, 23b, and 23c via networks 16, 17, and 21. PLCs 23a, 23b, and 23c control the operation of manufacturing equipment 19a, 19b, and 19c based on the operation of remote devices 14a, 14b, and 14c. When continuity is established, the lamp 41 in the communication control device 13 lights up.

[0025] No electromagnetic force is generated in the solenoid 67 of the second circuit breaker 43. The drive unit 65 presses the movable piece 63 against the second terminal 59 using the elastic force of the elastic member 66. The second circuit breaker 43 establishes a disconnection in the signal lines 54a, 54c, 54e, and 54g. Remote devices 14a, 14b, and 14c are disconnected from PLCs 23a, 23b, and 23c via networks 16, 17, and 22. PLCs 23a, 23b, and 23c are disconnected from engineering tools installed in, for example, the remote devices 14a, 14b, and 14c. When the lines are disconnected, the communication control device 13 maintains the off state of the lamp 44.

[0026] When the control programs introduced into PLCs 23a, 23b, and 23c are modified, remote devices 14a, 14b, and 14c incorporate, for example, engineering tools. The operators of remote devices 14a, 14b, and 14c communicate their intention to modify the manufacturing equipment 19a, 19b, and 19c to the operators. The operators insert a physical key into the physical key switch 46 to set the key cylinder 47 to corner position "1". When the key cylinder 47 is set to corner position "1", the on / off circuit 48 supplies a control signal to the logic circuit 45. In response to the supply of the control signal, the logic circuit 45 generates an off signal for the first circuit breaker 39 and an on signal for the second circuit breaker 42.

[0027] No electromagnetic force is generated in the solenoid 67 of the first circuit breaker 39. The drive unit 65 presses the movable piece 63 against the second terminal 59 using the elastic force of the elastic member 66. The first circuit breaker 39 establishes continuity in the signal lines 54a, 54c, 54e, and 54g. Remote devices 14a, 14b, and 14c are connected to PLCs 23a, 23b, and 23c via networks 16, 17, and 21. PLCs 23a, 23b, and 23c control the operation of manufacturing equipment 19a, 19b, and 19c based on the operation of remote devices 14a, 14b, and 14c. When continuity is established, the lamp 41 in the communication control device 13 lights up.

[0028] An electromagnetic force is generated in the solenoid 67 of the second circuit breaker 43. The drive unit 65 presses the movable piece 63 against the third terminal 61 against the elastic force of the elastic member 66. The second circuit breaker 43 establishes continuity in the signal lines 54a, 54c, 54e, and 54g. Remote devices 14a, 14b, and 14c are connected to PLCs 23a, 23b, and 23c via networks 16, 17, and 22. Engineering tools installed in remote devices 14a, 14b, and 14c are connected to PLCs 23a, 23b, and 23c. Based on the operation of the engineering tools, the control programs in PLCs 23a, 23b, and 23c are modified. When continuity is established, the lamp 44 in the communication control device 13 lights up.

[0029] Here, the timer 51 sets a time constraint for the second circuit breaker 43. The timer 51 measures the elapsed time since the second circuit breaker 43 became conductive. When the preset time has elapsed, the timer 51 terminates the conductivity of the signal lines 54a, 54c, 54e, and 54g. The logic circuit 45 stops supplying power to the solenoid 67. The signal lines 54a, 54c, 54e, and 54g return to an open state. In this way, it is prevented that the conductivity of the signal lines 54a, 54c, 54e, and 54g is unintentionally maintained.

[0030] The operation of manufacturing equipment 19a, 19b, and 19c is controlled via LAN 21. Control is limited. Since the first circuit breaker 39 uses a normally closed relay, power supply to the solenoid 67 is not required when the signal line 38 is open. Power is supplied to the solenoid 67 only when control is required to be stopped. Power consumption is minimized. On the other hand, the management of manufacturing equipment 19a, 19b, and 19c is carried out via LAN 22. Management is limited. The signal line 42 only needs to be open when necessary. Since the second circuit breaker 43 uses a normally open relay, power supply to the solenoid 67 is not required when the signal line 42 is open. Power is supplied to the solenoid 67 only when management is required. Power consumption is minimized.

[0031] In the disconnection mechanism 57, the coil of the solenoid 67 heats up and deteriorates depending on the time the excitation of the solenoid 67 is maintained. Therefore, if the excitation of the solenoid 67 is turned off under normal circumstances, the deterioration of the coil is prevented. The lifespan of the first circuit breaker 39 and the second circuit breaker 43 is extended.

[0032] When the key cylinder 47 of the physical key switch 46 is set to corner position "2", the on / off circuit 48 supplies a control signal to the logic circuit 45. In response to the supply of the control signal, the logic circuit 45 generates an ON signal for the first circuit breaker 39 and an OFF signal for the second circuit breaker 42. Note that transistor circuits may be used instead of the disconnection mechanism 57 for the first circuit breaker 39 and the second circuit breaker 43. However, since the signal line itself is not structurally separated when disconnected in a transistor circuit, a method for reliably establishing insulation when disconnected must be considered.

[0033] An electromagnetic force is generated in the solenoid 67 of the first circuit breaker 39. The drive unit 65 presses the movable piece 63 against the third terminal 61 against the elastic force of the elastic member 66. The first circuit breaker 39 establishes a disconnection in the signal lines 54a, 54c, 54e, and 54g. The remote devices 14a, 14b, and 14c are disconnected from the PLCs 23a, 23b, and 23c via the networks 16, 17, and 21. The operation of the manufacturing devices 19a, 19b, and 19c is stopped. The lamp 41 in the communication control device 13 is turned off.

[0034] No electromagnetic force is generated in the solenoid 67 of the second circuit breaker 43. The drive unit 65 presses the movable piece 63 against the second terminal 59 through the action of the elastic member 66. The second circuit breaker 43 establishes a disconnection in the signal lines 54a, 54c, 54e, and 54g. Remote devices 14a, 14b, and 14c are disconnected from PLCs 23a, 23b, and 23c via networks 16, 17, and 22. PLCs 23a, 23b, and 23c are disconnected from engineering tools installed in, for example, the remote devices 14a, 14b, and 14c. The communication control device 13 maintains the off state of the lamp 44.

[0035] In the communication control device 13, signal lines 38 and 42 are disconnected in response to physical operation by the worker. Manufacturing equipment 19a, 19b, and 19c are disconnected from the control of remote devices 14a, 14b, and 14c. Operation of remote devices 14a, 14b, and 14c does not affect the behavior of manufacturing equipment 19a, 19b, and 19c. The behavior of manufacturing equipment 19a, 19b, and 19c is maintained within the range expected by the worker. Unexpected behavior is prevented, allowing workers to safely work around manufacturing equipment 19a, 19b, and 19c. Because signal lines 38 and 42 are physically disconnected, the behavior of manufacturing equipment 19a, 19b, and 19c is maintained without being affected by software malfunctions or unauthorized access.

[0036] The communication control device 13 according to this embodiment includes a physical key switch 46 that switches the control of the logic circuit 45 in response to the rotational movement of the key cylinder 47 caused by the physical operation of the inserted physical key. The rotational movement of the key cylinder 47 requires the operator to physically operate the physical key. In response to the physical operation of the physical key, the open and closed states of the signal lines 38 and 42 are switched. The physical operation guarantees the open state of the signal lines 38 and 42. A guaranteed open state provides the operator with a sense of security regarding safety. The operator's anxiety is reliably eliminated.

[0037] In this embodiment, the physical key switch 46 has a keyhole 49 that reflects the rotational movement of the key cylinder 47 and identifies open and open circuits depending on the angle. The keyhole 49 is positioned at corner position "0", corner position "1", or corner position "2". The keyhole 49 visually indicates whether the signal lines 38 and 42 are open or open. The operator can easily and reliably confirm whether the signal lines 38 and 42 are open or open based on the angle of the keyhole 49.

[0038] <Second Embodiment> Figure 4 schematically shows the configuration of a device system 11a according to a second embodiment of the present invention. The communication control device 13a includes a microcontroller unit (MCU) 71 connected to a switching circuit 31. The switching circuit 31 connects remote devices 14a, 14b, and 14c to the MCU 71. The MCU 71 is connected, for example, to a logic circuit 45 and receives signals from the logic circuit 45 that specify the state of the disconnection mechanisms 57 of the first circuit breaker 39 and the second circuit breaker 43, and signals that specify the state of the timer 51. The MCU 71 notifies the remote devices 14a, 14b, and 14c of the state of the disconnection mechanisms 57 and the state of the timer 51. Similarly, the MCU 71 is connected to a physical key switch 46 and receives signals from the physical key switch 46 that specify the angle of the keyhole 49. The MCU 71 notifies the remote devices 14a, 14b, and 14c of the angle of the keyhole 49 and whether the signal lines 38 and 42 are continuing or disconnected. In addition, the MCU 71 may be connected to the on / off circuit 48 of the physical key switch 46 to constitute a virtual key switch. The MCU 71 controls the continuity or disconnection of the signal lines 38 and 42 in response to the operation of the remote devices 14a, 14b, and 14c. The other configurations are the same as those of the first embodiment described above.

[0039] <Third Embodiment> Figure 5 schematically shows the configuration of the equipment system 11b according to the third embodiment of the present invention. The communication control device 13b includes an on / off interface circuit 72 connected to the on / off circuit 48 of the physical key switch 46. PLCs 23a, 23b, and 23c are connected to the on / off interface circuit 72 via other networks such as a LAN or WAN (Wide Area Network). PLCs 23a, 23b, and 23c supply on / off signals to the on / off circuit 48 via the network. The on / off circuit 48 controls the operation of the first circuit breaker 39 and the second circuit breaker 43 (conduction and interruption of signal lines 38 and 42) based on the supplied on / off signals. In addition, the on / off circuit 48 may notify PLCs 23a, 23b, and 23c of the conduction or interruption of signal lines 38 and 42 via the network. As a result, PLCs 23a, 23b, and 23c can know through the on / off interface circuit 72 that remote interruption has been performed by the physical key switch 46 or MCU 71. Thus, PLC23a, 23b, and 23c are also effective in that they allow for understanding the situation when communication is interrupted. The other configurations are the same as those of the second embodiment described above.

[0040] In the equipment system 11b shown in Figure 5, the on / off interface circuit 72 is connected to the manufacturing equipment 19a, 19b, and 19c equipped with PLCs 23a, 23b, and 23c, but the present invention is not limited to this configuration. For example, the on / off interface circuit 72 may be connected to other equipment such as a computer operated by an operator handling the manufacturing equipment 19a, 19b, and 19c. This allows other equipment to supply on / off signals to the on / off circuit 48 via the network and control the operation of the first circuit breaker 39 and the second circuit breaker 43 based on these on / off signals. In this case as well, the on / off circuit 48 may notify other equipment of the continuity or disconnection of the signal lines 38 and 42 via the network.

[0041] <Fourth Embodiment> Figure 6 schematically shows the configuration of the equipment system 11c according to the fourth embodiment of the present invention. The communication control device 13c includes a microcontroller unit (MCU) 74 connected to a signal line branched from the signal line 38 by an L2 switch 73. The L2 switch 73 is installed on the signal line 38 between the first circuit breaker 39 and the LAN jack 34. The L2 switch 73 connects the MCU 74 to PLCs 23a, 23b, and 23c. The MCU 74 controls the continuity and disconnection of the signal lines 38 and 42 by the first circuit breaker 39 and the second circuit breaker 43 in accordance with the control signals supplied from PLCs 23a, 23b, and 23c. In addition, the continuity or disconnection of the signal lines 38 and 42 may be notified from the MCU 74 to PLCs 23a, 23b, and 23c via LAN 21. The other configurations are the same as those of the third embodiment described above.

[0042] <Fifth Embodiment> Figure 7 schematically shows the configuration of the equipment system 11d according to the fifth embodiment of the present invention. The communication control device 13d includes, in addition to that of the fourth embodiment, a first on / off interface circuit 76 connected to the MCU 71 and a second on / off interface circuit 78 connected to the MCU 74. The first on / off interface circuit 76 connects the MCU 71 to, for example, the OT network 12 or LANs 16 and 17 (connection lines are omitted in Figure 7). The first on / off interface circuit 76 enables the connection between the remote devices 14a, 14b, and 14c and the MCU 71. The MCU 71 notifies the remote devices 14a, 14b, and 14c of the status of the disconnection mechanism 57, the status of the timer 51, the angle of the keyhole 49, and the continuity or disconnection of the signal lines 38 and 42. The MCU 71 controls the continuity or disconnection of the signal lines 38 and 42 according to the operation of the remote devices 14a, 14b, and 14c. The second on / off interface circuit 78 connects the MCU 74 to, for example, LANs 21 and 22 (connection lines are omitted in Figure 7). The MCU 74 controls the continuity and disconnection of signal lines 38 and 42 by the first circuit breaker 39 and the second circuit breaker 43 in response to control signals supplied from PLCs 23a, 23b, and 23c. The continuity or disconnection of signal lines 38 and 42 is notified from the MCU 74 to PLCs 23a, 23b, and 23c via LAN 21.

[0043] In the communication control device 13d, the remote devices 14a, 14b, and 14c are connected to the manufacturing equipment 19a, 19b, and 19c via the first on / off interface circuit 76, MCU 71, logic circuit 45, MCU 74, and second on / off interface circuit 78. As a result, even when the signal lines 38 and 42 are interrupted by the first circuit breaker 39 and the second circuit breaker 43, information can be exchanged between the remote devices 14a, 14b, and 14c and the PLCs 23a, 23b, and 23c.

[0044] <Other Embodiments> In the embodiments described above, the cases in which manufacturing equipment 19a, 19b, and 19c, including NC machine tools, welding robots, and painting robots, are used as equipment were explained, but the present invention is not limited to these. For example, other equipment that may be used includes power generation equipment installed in power generation facilities such as thermal power plants and hydroelectric power plants, conveying equipment for transporting materials, disaster prevention equipment including building fire alarms, building fire extinguishers, and sprinklers, video equipment, audio equipment, and various other types of equipment.

[0045] Furthermore, other communication control devices according to the same embodiment may include, for example, a configuration in which the communication control device 13 of the first embodiment described above is equipped with the on / off interface circuit 72 of the third embodiment, or a configuration in which the communication control device 13 of the first embodiment described above is equipped with the MCU 74 of the fourth embodiment, and other communication control devices that appropriately combine the configurations of the first to fifth embodiments described above. [Explanation of Symbols]

[0046] 13 Communication control device 16,17 Network (LAN) 19a,19b,19c Manufacturing equipment (equipment) 21,22 Network (LAN) 38,42 signal lines 39. First barrier gate (barrier) 43. Second barrier gate (barrier) 45 Logic Circuits 46 Physical Key Switches 47 Key Cylinder 49 Keyhole 51 Timer 71 Microcontroller Unit (MCU) 72 On / Off Interface Circuit

Claims

1. The target device has a signal line that connects to a remote device used for managing the device via a network, A circuit breaker inserted into the signal line and physically disconnecting the signal line in response to a physical operation. A communication control device equipped with the following features.

2. A logic circuit connected to the circuit breaker controls the disconnection and continuity of the signal line, A physical key switch that switches the control of the logic circuit in response to the rotational movement of the key cylinder caused by the physical operation of the inserted physical key, Equipped with The communication control device according to claim 1.

3. The circuit breaker has a normally closed relay connected to the logic circuit, which, when it receives a control voltage during conduction, establishes the disconnection of the signal line. The communication control device according to claim 2.

4. The physical key switch is further equipped with a timer that is connected to the aforementioned physical key switch and sets a time constraint on the duration of the disconnection. The communication control device according to claim 3.

5. The circuit breaker has a normally open relay connected to the logic circuit, which, when it receives a control voltage in the event of a disconnection, establishes continuity in the signal line. The communication control device according to claim 2.

6. The physical key switch is further equipped with a timer that is connected to the physical key switch and sets a time constraint on the duration of the conductivity. The communication control device according to claim 5.

7. The physical key switch has a keyhole that reflects the rotational movement and identifies the disconnection and continuity of the wire according to the angle. The communication control device according to claim 2.

8. The system includes a microcontroller unit connected to the logic circuit that generates a signal to the remote device to notify it of the disconnection or continuity. The communication control device according to claim 2.

9. The microcontroller unit controls the disconnection or continuity of the wire in response to the operation of the remote device. The communication control device according to claim 8.

10. The device is connected to an on / off interface circuit that supplies on / off signals to the logic circuit to control the operation of the circuit breaker. The communication control device according to claim 2.