WO2012177917A1 - Systems and methods for communications devices having multiple interfaces - Google Patents
Systems and methods for communications devices having multiple interfaces Download PDFInfo
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- WO2012177917A1 WO2012177917A1 PCT/US2012/043599 US2012043599W WO2012177917A1 WO 2012177917 A1 WO2012177917 A1 WO 2012177917A1 US 2012043599 W US2012043599 W US 2012043599W WO 2012177917 A1 WO2012177917 A1 WO 2012177917A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L49/00—Packet switching elements
- H04L49/60—Software-defined switches
- H04L49/602—Multilayer or multiprotocol switching, e.g. IP switching
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L49/00—Packet switching elements
- H04L49/35—Switches specially adapted for specific applications
- H04L49/351—Switches specially adapted for specific applications for local area network [LAN], e.g. Ethernet switches
Definitions
- FIG. 1 illustrates an embodiment of a plurality of intelligent electronic devices (lEDs) connected to a communication switch via respective serial ports or Ethernet ports.
- LEDs intelligent electronic devices
- FIG. 2A illustrates an embodiment of a plurality of lEDs connected to a communication switch via disparate network interfaces.
- FIG. 2B illustrates a representative embodiment of a plurality of lEDs configured as a multidrop network.
- FIG. 2C illustrates a representative embodiment of a plurality of lEDs configured in a server-client star configuration.
- FIG. 3 illustrates an embodiment of a communication switch and a plurality of lEDs configured in two distinct groups.
- FIG. 4 illustrates an embodiment of a communication switch and a plurality of lEDs configured in two distinct groups, each group including a master device and slave devices.
- FIG. 5 illustrates an embodiment of a communication switch and a plurality of lEDs configured as two groups of lEDs, in which some lEDs are included in both groups.
- FIG. 6 illustrates an embodiment of a functional block diagram of a computer system configured to connect and manage groups of lEDs connected via disparate network interfaces.
- FIG. 7 illustrates an embodiment of a method for providing configurable network relationships between a plurality of lEDs connected via disparate network interfaces.
- FIG. 8A illustrates an embodiment of a method for configuring a plurality of lEDs connected via disparate network interfaces to function in a publisher/subscriber network paradigm.
- FIG. 8B illustrates an embodiment of a method for providing communication protocol conversion and network interface translation for a group of lEDs configured in a publisher/subscriber network paradigm.
- FIG. 9 illustrates one embodiment of a method for providing a configurable master/slave network relationship between a plurality of lEDs connected via disparate network interfaces.
- the present disclosure provides systems and methods for creating and managing a variety of configurable network relationships between intelligent electronic devices (lEDs) having disparate network interfaces. According to various
- a communication switch supports a variety of physical network ports and associated communication protocols.
- any of a variety of serial or parallel network ports may be used, including Ethernet ports, coaxial connections, various types of D-subminiature ports, optical ports, USB ports, IEEE 1394 ports, wireless network interfaces, modem ports, contact I/O ports, and the like.
- a communication switch may be used to create and/or manage relationships between lEDs connected to the communication switch.
- a communication switch may create and manage a configurable network relationship between lEDs connected to the communication switch.
- a communication switch may be used to create a networked group of lEDs, in which some lEDs in the group are connected via Ethernet and other lEDs in the group are connected via a serial port, such as DB9 or DB25.
- a communication switch may be configured in some embodiments to manage a group of lEDs in a publisher/subscriber configuration. lEDs within the group may be configured to subscribe to the communications of other lEDs within the group.
- the communication switch may maintain a database including each IED and a list of other lEDs within the group that subscribe to that lED's transmission. Accordingly, when a given IED communicates data, the communication switch may determine which lEDs subscribe to the given IED and forward the transmitted data to each of the subscriber lEDs.
- each subscriber IED may be connected via any of a variety of network interfaces, and the communication switch may perform the
- an IED connected via Ethernet may transmit or publish data using Internet Protocol (IP).
- IP Internet Protocol
- the communication switch may determine that a subscriber IED is connected via a 9-pin D-subminiature port utilizing the RS-232 standard.
- the communication switch performs the necessary protocol conversion between IP and RS-232 and the media translation between Ethernet and a 9-pin D- subminiature connection in order for the subscriber IED to receive the published data.
- a group of lEDs may be created in which one of the lEDs is a master IED and other lEDs are slave lEDs.
- a master IED may provide proxy and authentication services to other lEDs within the group designated as slave devices.
- the communication switch may allow the group of lEDs to communicate with one another as if they were connected in a multidrop communication bus or in a star configuration. In other words, while each IED in a group of lEDs may actually be directly connected to the
- the communication switch may enable the lEDs in the group to communicate as if they were connected in series, a star configuration, a tree structure, or another arrangement.
- a single communication switch may be utilized to create multiple distinct groups of lEDs.
- lEDs may be shared between two or more groups.
- lEDs may also be connected to the communication switch through a hub, a switch, a router, and/or another IED.
- a user may access a communication switch or a connected IED directly, through a user interface, through a connected user access device, and/or through one of the connected lEDs.
- the communication switch may include various authentication mechanisms to prevent unauthorized access to connected lEDs.
- manufacture such as a computer-readable storage medium
- a method and/or a product of a process.
- phrases “connected to” and “in communication with” refer to any form of interaction between two or more components, including mechanical, electrical, magnetic, and electromagnetic interaction. Two components may be connected to each other even though they are not in direct contact with each other and even though there may be intermediary devices between the two components.
- I ED may refer to any microprocessor-based device that monitors, controls, automates, and/or protects monitored equipment within a system.
- Such devices may include, for example, remote terminal units, differential relays, distance relays, directional relays, feeder relays, overcurrent relays, voltage regulator controls, voltage relays, breaker failure relays, generator relays, motor relays, automation controllers, bay controllers, meters, recloser controls, communications processors, computing platforms, programmable logic controllers (PLCs),
- PLCs programmable logic controllers
- lEDs may be connected to a network, and communication on the network may be facilitated by networking devices including but not limited to multiplexers, routers, hubs, gateways, firewalls, and switches. Furthermore, networking and communication devices may be incorporated in an IED or be in communication with an IED.
- the term IED may be used interchangeably to describe an individual IED or a system comprising multiple lEDs.
- a computer may include a processor such as a microprocessor,
- the processor may include a special purpose processing device such as an ASIC, PAL, PLA, PLD, field programmable gate array (FPGA), or other customized or programmable device.
- the computer may also include a computer-readable storage device such as non-volatile memory, static RAM, dynamic RAM, ROM, CD-ROM, disk, tape, magnetic memory, optical memory, flash memory, or other computer-readable storage media.
- Suitable networks for configuration and/or use as described herein include one or more local area networks, wide area networks, metropolitan area networks, and/or Internet or Internet protocol (IP) networks, such as the World Wide Web, a private Internet, a secure Internet, a value-added network, a virtual private network, an extranet, an intranet, or even standalone machines that communicate with other machines by physical transport of media.
- IP Internet protocol
- a suitable network may be formed from parts or entireties of two or more other networks, including networks using disparate hardware and network communication technologies.
- a network may incorporate landlines, wireless communication, and combinations thereof.
- the network may include communications or networking software, such as software available from Novell, Microsoft, Artisoft, and other vendors, and may operate using TCP/IP, SPX, IPX, RS-232, and other protocols over twisted pair, coaxial, optical fiber cables, telephone lines, satellites, microwave relays, modulated AC power lines, physical media transfer, and/or other data transmission "wires" known to those of skill in the art.
- the network may encompass smaller networks and/or be connectable to other networks through a gateway or similar mechanism.
- a software module or component may include any type of computer instruction or computer executable code located within or on a computer-readable storage medium.
- a software module may, for instance, comprise one or more physical or logical blocks of computer instructions, which may be organized as a routine, program, object, component, data structure, etc., that perform one or more tasks or implement particular abstract data types.
- a particular software module may comprise disparate instructions stored in different locations of a computer-readable storage medium, which together implement the described functionality of the module.
- a module may comprise a single instruction or many instructions, and may be distributed over several different code segments, among different programs, and across several computer-readable storage media.
- software modules may be located in local and/or remote computer- readable storage media.
- data being tied or rendered together in a database record may be resident in the same computer-readable storage medium, or across several computer-readable storage media, and may be linked together in fields of a record in a database across a network.
- the software modules described herein tangibly embody a program, functions, and/or instructions that are executable by computer(s) to perform tasks as described herein.
- Suitable software may be provided using the teachings presented herein and programming languages and tools, such as XML, Java, Pascal, C++, C, database languages, APIs, SDKs, assembly, firmware, microcode, and/or other languages and tools. Additionally, software, firmware, and hardware may be interchangeably used to implement a given function.
- FIG. 1 illustrates an embodiment of a system 100 including multiple intelligent electronic devices (lEDs) 161 , 162, 163, 164, 165, 166, and 167 connected to a communication switch 1 10.
- communication switch 1 10 includes numerous network interfaces, including Ethernet ports 170 and serial ports 180.
- communication switch 1 10 may include additional network interfaces, such as any of parallel, serial, or wireless ports.
- lEDs may be connected to the communication switch 1 10 via any of a variety of physical network ports and may utilize any of a variety of communication protocols.
- lEDs 161 and 162 are connected to communication switch 1 10 via Ethernet ports 170 and lEDs 163-165 are connected to communication switch 1 10 via D-subminiature ports 180.
- lEDs 166 and 167 are connected to communication switch 1 10 via IED 165.
- Access device 150 is connected to communication switch 1 10 through one of Ethernet ports 170.
- a user may communicate and/or control communication switch 1 10 and/or one of lEDs 161 -167 via access device 150.
- communication switch 1 10 and/or lEDs 161 - 167 may include various authentication mechanisms to prevent unauthorized access.
- the particular Ethernet port to which access device 150 is connected may be referred to as an access device port.
- Any of Ethernet ports 170 and/or serial ports 180 may be configured as an access device port.
- a firewall may be implemented between an access device port and other Ethernet ports 170 and/or serial ports 180. The firewall may be implemented using software and/or firmware in embodiments in which the access device port is configurable. In still other
- certain ports may be specifically designed as access device ports.
- firewall features may be implemented using hardware and/or software.
- each of lEDs 161 -167 may communicate with one another through communication switch 1 10.
- Communication switch 1 10 may include an internal table indicating the lEDs with which each IED is allowed to communicate. Accordingly, while an operator may be required to provide login credentials in order to communicate with an IED via access device 150, an IED may be effectively pre-authorized to communicate with at least one other IED connected to communication switch 1 10.
- communication switch 1 10 allows an IED connected via a first type of physical network port using a first communication protocol to communicate with lEDs connected via a second type of physical network port using a second communication protocol.
- IED 161 may communicate with communication switch 1 10 using IP via an Ethernet port 170.
- IED 164 may
- communication switch 1 10 may perform a protocol conversion between IP and RS-232 and the media translation between Ethernet and a 9-pin D-subminiature connection.
- communications between lEDs 161 -167 are not dependent on how each of lEDs 161 - 167 is connected to communication switch 1 10. Rather, communication switch 1 10 may be configured to translate between numerous types of physical network ports and provide the associated protocol conversions.
- communication switch 1 10 may be configured to create and/or manage the communication relationships between networked lEDs 161 -167.
- communication switch 1 10 may allow a group of lEDs to communicate with one another as if the lEDs were connected in a tree structure, in master/slave relationships, in publisher/subscriber relationships, and the like.
- FIG. 2A illustrates an embodiment of a system 200 that includes several lEDs 261 -265 connected as a group 260, and a communication switch 210.
- lEDs 261 and 262 are connected via Ethernet and lEDs 263-265 are connected via D- subminiature serial connections.
- Communication switch 210 may be configured to manage group 260 in a publisher/subscriber configuration. That is, one or more lEDs within group 260 may be configured to subscribe to the transmission of other lEDs within group 260. Accordingly, communication switch 210 may maintain a database associating each IED in group 260 with a list of other lEDs within group 260 that subscribe to that lED's transmissions. When a given IED transmits data,
- communication switch 210 may determine which lEDs subscribe to the given IED and may forward the transmitted data to each of the subscriber lEDs. Communication switch 210 may perform the appropriate protocol conversion and media translation.
- IED 262 may be connected to communication switch 210 via Ethernet ports 270 and may utilize IP to transmit data.
- lEDs 261 and 264 may subscribe to data "published" by IED 262. Accordingly, when communication switch 210 receives data from IED 262, the data will be forwarded to IED 261 and IED 264. Assuming IED 261 utilizes IP over Ethernet, the data transmitted by IED 262 may be forwarded unmodified.
- communication switch 210 may convert the data to comply with the RS-232 standard and perform a medium translation to the D-subminiature connection 280. Ultimately, both subscriber lEDs 261 and 264 receive the data published by publisher IED 262.
- no individual IED may be aware that other lEDs within group 260 are connected via disparate interfaces since communication switch 210 performs the appropriate protocol conversion and media translation.
- IED 265 may subscribe to data published by each of lEDs 261 -264.
- IED 265 may be configured to subscribe and "listen" to data published by lEDs 261 -264 and report to an operator or IED outside of group 260.
- publisher/subscriber relationships may be managed via logic. For example, one or more lEDs may subscribe to a primary publisher so long as a contact input is not asserted. In the event that the primary publisher fails, the contact input may assert and cause the one or more lEDs to stop subscribing to the primary publisher and instead subscribe to the backup publisher. Publisher/subscriber relationships between various lEDs may be automatically controlled based on any number of logic inputs and logic circuits via software, firmware, and/or hardware.
- IED 263 may be configured to function as a master device, with each of lEDs 261 , 262, 264, and 265 functioning as slave devices.
- master IED 263 may provide proxy and/or authentication services to slave lEDs within group 260. Accordingly, access to slave lEDs within group 260 may be restricted and/or controlled by master IED 263.
- master IED 263 may function as a master device only as viewed from outside of group 260. That is, master IED 263 may restrict access and/or authenticate lEDs and/or operators outside of group 260.
- communication switch 210 may allow lEDs within group 260 to communicate with one another as if they were connected in a multidrop communication bus, in series, in parallel, as a tree structure with assigned nodes, in a star
- communication switch 210 may enable the lEDs in group 260 to communicate as if they were connected according to any of a wide variety of network arrangements.
- FIG. 2B illustrates a representative embodiment of a group of lEDs 261 -265 effectively configured in a multidrop network.
- IED 263 may serve as a master device and as the initial connection point to the multidrop network.
- the actual physical connections of lEDs 261 -265 to a communication switch may resemble that of FIG. 2A.
- FIG. 2B is intended to illustrate an example of one possible effective relationship between each of the lEDs in group 260 of FIG. 2A.
- FIG. 2C illustrates a representative embodiment of a group of lEDs 261 -265 effectively configured in a master/slave star configuration. As illustrated, any data transmitted from one IED to another passes through master IED 263. Again, given that each IED is actually directly connected to communication switch 210, data could be transmitted directly from one IED to another. However, FIGs. 2B and 2C illustrate examples of a communication switch providing configurable relationships between multiple lEDs, even when the network interfaces of each IED may differ significantly.
- FIG. 3 illustrates an embodiment 300 of a communication switch 310 and a plurality of lEDs 320-325 and 330-334 configured to function as two distinct groups of lEDs.
- group 327 comprises lEDs 320, 321 , 322, 323, 324, and 325
- group 337 comprises lEDs 330, 331 , 332, 333, and 334.
- lEDs 320, 321 , and 332 may be connected to communication switch 310 via Ethernet ports 370 and may utilize IP.
- lEDs 322-325 and lEDs 330, 331 , 333, and 334 may be connected to communication switch 310 via serial D-subminiature ports 380.
- any of the lEDs in group 327 or group 337 may be connected using a coaxial connection, any variety of a D-subminiature port, an optical port, a wireless network interface, or other serial or parallel network connection.
- one or more lEDs may be connected to communication switch 310 through a router, hub, switch, or other IED.
- communication switch 310 may create and/or manage any number of groups of lEDs. Each group may include lEDs configured with specific relationships with respect to one another. Additionally, communication switch 310 may create and/or manage the relationships between various groups. For example, communication switch 310 may manage the
- lEDs 320-325 in group 327 may be configured in publisher/subscriber relationships, while lEDs 330-334 in group 337 may be configured in a star
- communication switch 310 may create and/or manage any type of relationship between any of the lEDs within group 327 and group 337.
- Communication switch 310 is not limited to supporting merely Ethernet and D-subminiature ports. Rather, communication switch 310 may provide protocol conversion and media translation to accommodate for any number of disparate network interfaces and associated protocols.
- FIG. 4 illustrates an embodiment 400 of a communication switch 410 and a plurality of lEDs 420-425 and 430-434 configured to function as two distinct groups of lEDs, each group including a master device and slave devices.
- IED 420 may be configured to function as a master device for group 427, while lEDs 421 , 422, 423, 424, and 425 are configured to function as slave devices relative to IED 420.
- IED 434 may be configured to function as a master device for group 437.
- Group 437 may include lEDs 430, 431 , 432, and 433 configured to function as slave devices relative to IED 434. It is of note that the type of connection and/or the protocol an IED uses to communicate with communication switch 410 is not determinative of its role within a group.
- master IED 420 is connected via an Ethernet port 470 and may use IP to transmit data.
- At least one slave device, IED 421 is connected via an Ethernet port 470 and may use IP to transmit data.
- At least one slave device, IED 421 is connected via an Ethernet port 470 and may use IP to transmit data.
- At least one slave device, IED 421 is connected via an Ethernet port 470 and may use IP to transmit data.
- At least one slave device, IED 421 is connected via an Ethernet port 470 and may use IP to transmit data.
- slave device, IED 421 is connected via an Ethernet port 470 and may use IP to transmit data.
- Ethernet port 470 The remaining slave devices, lEDs 422-425, are connected via D- subminiature serial ports 480. Contrarily, in group 437, master IED 434, is connected via a D-subminiature port 480. As previously discussed, master lEDs 420 and 434 may provide proxy and authentication services to other lEDs within their respective groups 427 and 437.
- FIG. 5 illustrates an embodiment of a system 500 including a communication switch 510 and a plurality of lEDs 520, 521 , 522, 523, 534, 535, 546, 547, and 548 that are configured to function as two groups 560 and 565. According to various embodiments,
- each communication port of an IED may be a part of a different group. Accordingly, an IED with two or more communication ports may be a part of two or more groups. According to some embodiments, a communication port of an IED may be shared between two distinct groups. For example, an Ethernet port may allow an IED to connect to two distinct groups with or without the two distinct groups necessarily being aware that the IED is part of another group.
- lEDs 534 and 535 are included in both group 560 and group 565.
- communication switch 510 may create and/or manage complex
- a communication switch such as communication switch 510, may provide protocol conversion and media translation as appropriate in order to enable each IED connected to the communication switch to communicate with other networked lEDs.
- group 560 comprising lEDs 520-523, 534, and 535, may be configured in a publisher/subscriber relationship.
- Each IED in group 560 may be configured to subscribe to the communications published by one or more other lEDs within group 560.
- IED 535 may subscribe to the communications of each other lED within group 560.
- IED 523 may subscribe to only the communications of IED 534.
- IED 534 may not subscribe to any IED within group 560 or group 565, and thus may function exclusively as a publisher.
- lEDs within group 565 may also be configured in publisher/subscriber relationships. Again, communication switch 510 may maintain a database indicating which other lEDs in group 565 subscribe to the communications of a particular IED. Accordingly, when IED 535 transmits (publishes) data to communication switch 510, communication switch 510 may determine which lEDs in group 560 and in group 565 subscribe to IED 535. Communication switch 510 may then perform the appropriate protocol conversion and media translation in order for each subscriber IED to receive the data published by IED 535.
- communication switch 510 may allow for any of a variety of effective network configurations. For example, lEDs within a given group may communicate as if they were connected in a multidrop configuration, in a tree structure, in parallel, or in another configuration.
- FIG. 6 illustrates an embodiment of a functional block diagram of a computer system 600 configured to create and/or manage groups of lEDs connected via disparate network interfaces.
- a computer may include a processor 630, memory (RAM) 640, various network interfaces 650, and a computer-readable storage medium 670, all connected via a bus 620.
- Processor 630 may be configured to process communications received via network interfaces 650. Processor 630 may operate using any number of processing rates and architectures. Processor 630 may be configured to perform various algorithms and calculations described herein. Processor 630 may be embodied as a general-purpose integrated circuit, an application-specific integrated circuit, a field- programmable gate array, and/or other programmable logic devices.
- Network interfaces 650 may allow for communication between computer system 600 and a plurality of connected lEDs and operator access devices.
- Network interfaces 650 may be embodied using a variety of interfaces for various types of physical media ⁇ e.g., optical fiber, twisted pair, coaxial cable). Further, network interfaces 650 may be configured to allow communication according to a variety of communications protocols and speeds. According to various embodiments, multiple network interfaces may be utilized in order to allow for communication with multiple lEDs or other network components.
- network interfaces 650 may comprise a variety of physical network ports that may be configured to communicate using a variety of communication protocols.
- any of a variety of serial or parallel network ports may be used, including Ethernet ports, coaxial connections, various types of D- subminiature ports, optical ports, USB ports, IEEE 1394 ports, wireless network interfaces, and the like.
- Computer-readable storage medium 670 may include a plurality of software modules that are executable on processor 630 and that are configured to perform specific tasks and/or methods described herein. According to various embodiments, one or more software modules may be combined to form a multifunctional module or separated into a plurality of modules. Moreover, a software module, or a portion thereof, may be alternatively implemented as firmware and/or hardware.
- computer-readable storage medium 670 may include a group management module 680, a publisher module 682, a subscriber module 684, a master device module 686, a slave device module 688, a connection configuration module 690, a media translation module 692, and/or a protocol conversion module 694. According to some embodiments, one or more modules may be excluded or implemented in hardware.
- group management module 680 may be configured to create a group of lEDs.
- the group of lEDs may comprise any number of lEDs, each of which may be connected via disparate network interfaces 650.
- the group of lEDs may utilize a variety of disparate communication protocols associated with the various network interfaces.
- Publisher module 682 may be configured to manage lEDs within a group of lEDs that are configured to publish communications to at least one other IED within the group of lEDs.
- Subscriber module 684 may be configured to manage lEDs within a group of lEDs that are configured to subscribe to other lEDs within the group of lEDs.
- Publisher module 682 and subscriber module 684 jointly configure lEDs to function in publisher/subscriber relationships.
- a communication switch may enable lEDs to subscribe to publisher lEDs that utilize disparate network interfaces and communication protocols.
- all lEDs in a group may be publishers by default.
- lEDs within the group may then be configured as subscribers to one or more other lEDs within the group. According to such an embodiment, no lEDs in a group are affirmatively prevented from publishing. Rather, if no other lEDs within a group are configured to subscribe to a particular lED, then the unsubscribed-to lED is effectively a sniffer device.
- Master device module 686 and slave device module 688 may jointly configure devices within a group of lEDs as master devices or slave devices.
- a group of lEDs may include one or more lEDs configured to serve as master devices with respect to one or more slave devices.
- master device module 686 may manage an lED such that it effectively functions as a master device within a group of lEDs, even if the lED by itself does not support the necessary functions.
- slave device module 688 may manage an lED such that it effectively functions as a slave device relative to a master device within a group of lEDs.
- Connection configuration module 690 may be configured to enable each of the lEDs within a group to communicate with one another as if they were connected according to one of a variety of network configurations. For example, lEDs within a group may be configured to communicate as if they were configured in a multidrop network configuration. Alternatively, connection configuration module 690 may enable lEDs within a group to communicate with one another as if they were connected in a star configuration.
- Media translation module 692 and protocol conversion module 694 may ensure that data transmitted to a communication switch via a first type of network interface and associated communication protocol can be forwarded to other lEDs utilizing different network interfaces and/or alternative communication protocols.
- media translation module 692 may translate data transmitted via Ethernet to another medium such as a 9-pin or 25-pin D-subminiature connection or an optical Ethernet connection.
- Protocol conversion module 694 may convert data transmitted using IP to another communication protocol, such as RS-232 or RS-485.
- FIG. 7 illustrates one embodiment of a method 700 for providing configurable network relationships between each of a plurality lEDs connected to a communication switch via disparate network interfaces.
- Each of a first plurality of lEDs may be connected to a communication switch via a first type of network port ⁇ e.g., Ethernet) associated with a first communication protocol ⁇ e.g., IP), at 710.
- Each of a second plurality of lEDs may be connected to a communication switch via a second type of network port ⁇ e.g., a 9-pin D-subminiature connection) associated with a second communication protocol ⁇ e.g., RS-232), at 720.
- a communication switch may convert data received from an IED using the first communication protocol to data for
- the communication switch may convert data received from an IED using the second communication protocol to data for transmission using the first communication protocol, at 730.
- a communication switch may be configured to translate data received via the first type of network port for transmission via the second type of network port, at 740. The communication switch may also translate data received via the second type of network port for transmission via the first type of network port, at 740.
- FIG. 8A illustrates one embodiment of a method 800 for configuring a plurality of lEDs connected via disparate network interfaces to function in a
- Each of a first plurality of lEDs is connected to a communication switch via a first type of network port associated with a first
- Each of a second plurality of lEDs is connected to the communication switch via a second type of network port associated with a second communication protocol, at 810.
- the communication switch may provide for communication protocol conversion and network port media translation, at 815.
- the communication switch creates a group of lEDs, including lEDs
- At least one IED in the group of lEDs is configured to act as a publisher IED, at 825. Additionally, at least one IED in the group of lEDs is configured to act as a subscriber to a publisher IED, at 830. According to some embodiments, all lEDs in a group of lEDs are configured to act as publisher lEDs by default.
- each IED within the group may be user-configured with regard to which other lEDs it subscribes but not as to whether it is a publisher or not.
- a group of five lEDs may include multiple lEDs that publish information by transmitting data to the communication switch.
- the communication switch may determine which lEDs in the group of lEDs subscribe to the transmitting lED and forward the data to each of the subscriber lEDs.
- the communication switch may perform the appropriate protocol conversion and media translation.
- FIG. 8B illustrates an embodiment of a method 801 for providing such communication protocol conversion and network port media translation for a group of lEDs in a publisher/subscriber network.
- a publisher lED connected via the first type of network port publishes data, at 835.
- the communication switch identifies an lED within the group that subscribes to the publisher lED, at 840.
- the communication switch determines if the subscriber lED is connected via the same type of network port, at 845. If so, the communication switch may transmit the publisher data directly to the subscriber lED, at 860. If the subscriber lED is not connected via the same type of network port, at 845, then the published data may be converted to the communication protocol used by the subscriber lED, at 850.
- the published data may also be
- the converted and translated published data may then be transmitted to the subscriber lED, at 860.
- the communication switch may then determine if there is an additional lED that subscribes to the publisher lED, at 865. If so, the process continues at 840. Once each subscriber lED has received the published data, at 865, the process ends.
- subscriber lEDs may receive published data through parallel processing of data to various subscriber lEDs. Additionally, even if a subscriber lED is connected via the same type of network port, at 845, the communication switch may provide an appropriate protocol conversion when it is beneficial or necessary.
- FIG. 9 illustrates one embodiment of a method 900 for providing a
- Each of a first plurality of lEDs may be connected to a communication switch via a first type of network port associated with a first
- Each of a second plurality of lEDs may be connected to the communication switch via a second type of network port associated with a second communication protocol, at 910.
- the communication switch may provide protocol conversion and network port media translation in order for the various lEDs to communicate with one another, at 915.
- a group of lEDs is created, including lEDs connected via the first type of network port and lEDs connected via the second type of network port, at 920.
- One of the lEDs in the group of lEDs is configured to function as a master IED, at 925.
- At least one other IED in the group of lEDs is configured to function as a slave IED, at 930.
- the master IED may provide proxy and/or authentication services to slave lEDs within the group. Accordingly, access to the slave lEDs may be restricted and/or controlled by the master IED. Moreover, communication between the various lEDs in the group may be configured according to any one of a variety of network structures, including a tree, a star configuration with the master IED at the center, a multidrop network, or another arrangement.
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Abstract
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Priority Applications (5)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| AU2012272830A AU2012272830B2 (en) | 2011-06-22 | 2012-06-21 | Systems and methods for communications devices having multiple interfaces |
| CA2836607A CA2836607A1 (en) | 2011-06-22 | 2012-06-21 | Systems and methods for communications devices having multiple interfaces |
| MX2013013846A MX2013013846A (en) | 2011-06-22 | 2012-06-21 | Systems and methods for communications devices having multiple interfaces. |
| ES201390100A ES2464245B2 (en) | 2011-06-22 | 2012-06-21 | Systems and procedures for communications devices that have multiple interfaces |
| ZA2013/08575A ZA201308575B (en) | 2011-06-22 | 2013-11-14 | Systems and methods for communications devices having multiple interfaces |
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| US13/166,637 US8929391B2 (en) | 2011-06-22 | 2011-06-22 | Systems and methods for communications devices having multiple interfaces |
| US13/166,637 | 2011-06-22 |
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| WO2012177917A1 true WO2012177917A1 (en) | 2012-12-27 |
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| AU (1) | AU2012272830B2 (en) |
| CA (1) | CA2836607A1 (en) |
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| MX (1) | MX2013013846A (en) |
| WO (1) | WO2012177917A1 (en) |
| ZA (1) | ZA201308575B (en) |
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| CN107678990A (en) * | 2017-09-27 | 2018-02-09 | 德力西电气有限公司 | A kind of communications switching unit and breaker for breaker |
| JP2020149227A (en) * | 2019-03-12 | 2020-09-17 | 富士ゼロックス株式会社 | Information processing apparatus, information processing system and program |
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Also Published As
| Publication number | Publication date |
|---|---|
| ES2464245R1 (en) | 2015-02-04 |
| AU2012272830A1 (en) | 2013-11-28 |
| ZA201308575B (en) | 2015-02-25 |
| CA2836607A1 (en) | 2012-12-27 |
| ES2464245B2 (en) | 2015-11-26 |
| ES2464245A2 (en) | 2014-05-30 |
| MX2013013846A (en) | 2014-02-27 |
| US20120331082A1 (en) | 2012-12-27 |
| US8929391B2 (en) | 2015-01-06 |
| AU2012272830B2 (en) | 2015-11-26 |
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