EP1153379A1 - Modular power quality monitoring device - Google Patents
Modular power quality monitoring deviceInfo
- Publication number
- EP1153379A1 EP1153379A1 EP99906960A EP99906960A EP1153379A1 EP 1153379 A1 EP1153379 A1 EP 1153379A1 EP 99906960 A EP99906960 A EP 99906960A EP 99906960 A EP99906960 A EP 99906960A EP 1153379 A1 EP1153379 A1 EP 1153379A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- power quality
- quality monitoring
- circuit
- power
- modular
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
Links
Classifications
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J3/00—Circuit arrangements for AC mains or AC distribution networks
- H02J3/18—Arrangements for adjusting, eliminating or compensating reactive power in networks
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R19/00—Arrangements for measuring currents or voltages or for indicating presence or sign thereof
- G01R19/25—Arrangements for measuring currents or voltages or for indicating presence or sign thereof using digital measurement techniques
- G01R19/2513—Arrangements for monitoring electric power systems, e.g. power lines or loads; Logging
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02H—EMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
- H02H1/00—Details of emergency protective circuit arrangements
- H02H1/0061—Details of emergency protective circuit arrangements concerning transmission of signals
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02H—EMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
- H02H1/00—Details of emergency protective circuit arrangements
- H02H1/0061—Details of emergency protective circuit arrangements concerning transmission of signals
- H02H1/0076—Details of emergency protective circuit arrangements concerning transmission of signals by superposition on the watched current
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02H—EMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
- H02H3/00—Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal electric working condition with or without subsequent reconnection ; integrated protection
- H02H3/02—Details
- H02H3/04—Details with warning or supervision in addition to disconnection, e.g. for indicating that protective apparatus has functioned
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02H—EMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
- H02H3/00—Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal electric working condition with or without subsequent reconnection ; integrated protection
- H02H3/24—Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal electric working condition with or without subsequent reconnection ; integrated protection responsive to undervoltage or no-voltage
- H02H3/253—Emergency protective circuit arrangements for automatic disconnection directly responsive to an undesired change from normal electric working condition with or without subsequent reconnection ; integrated protection responsive to undervoltage or no-voltage for multiphase applications, e.g. phase interruption
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E40/00—Technologies for an efficient electrical power generation, transmission or distribution
- Y02E40/30—Reactive power compensation
Definitions
- This invention relates to a power quality monitoring, detecting and analyzation device. More particularly, it relates to a modular device adaptable to an electrical circuit, utilizing power quality equipment, which permits event counts of various changing electrical phenomenon to be stored in memory and broadcast over a control network.
- microprocessors are so sensitive is that most integrated circuits of today are far more dense and operate at higher speeds than those of even a few years ago and therefore more susceptible to the slightest of electrical anomalies. Where slower speed processors simply ignored the transients, high-speed processors interpret the transient as a command sequence directed at the processor.
- the anomalies that contribute to power quality degradation can be initiated by either external or internal causes.
- PQE power quality equipment
- UPS uninterruptible power supplies
- TVSS transient voltage surge suppressors
- SPD devices are the most widely used and accepted devices for dealing with voltage transients.
- Transients are over-voltages or over-currents, typically lasting microseconds, that are caused by external and internal events . Transient voltage surges comprise the most severe and immediate danger to sensitive microprocessor controlled electrical and electronic equipment. For this reason, SPD devices are needed in sensitive electronic facility environments. Without SPD devices, manufacturing facilities utilizing sensitive electrical equipment, for instance robotic assembly, could be damaged if merely one robotic assembler was removed from the assembly line. The costs associated with a shutdown for repairs, replacement and reprogramming of a robotic machine could mean the difference between a profitable and non-profitable year for a company.
- SPD devices comprise a stand alone unit which are coupled between the power source of a facility and a piece of electronic equipment.
- Many SPD devices use a combination of MOVs (metal oxide varistors) for high-energy surges and capacitors for low to medium surges and are activated by rise in the line voltage.
- MOVs metal oxide varistors
- a control network comprises a group of nodes (each having one or more sensors or actuators, plus localized computational capability) which communicate over a type of media using a standard protocol to implement a sense, monitoring or sense and control application.
- the control network could have two to 20,000 (or more) nodes and can implement simple systems such as a few light switches or highly complex systems such as large robotic assembly lines. Communication among the nodes may be peer-to-peer (distributed control) or master-slave (centralized control) .
- One existing protocol for a control network is the LONWORKS protocol developed by Echelon.
- a peer-to-peer or master-slave architecture can be used. If a peer-to-peer architecture is employed, no central control is needed.
- a control network utilizing the LONWORKS protocol can perform a complex control application, such as running a robotic assembly line or automating an entire office building. Yet, each node in the LONWORKS network is capable of performing simple tasks, such as running sensors or motion detectors or actuating switches, relays or motor drives.
- the present invention comprises a modular device connectable to a SPD, other PQE device or power panel.
- the modular device is in turn is coupled to a power source for establishing a power quality control network.
- the control network utilizes the LONWORKS protocol.
- the modular device couples to a circuit for transient voltage surge suppression.
- the modular device comprises, a microprocessor neuron chip, surge detection circuitry, isolation circuitry for the transient voltage surge suppression circuitry, a pair of user interface push buttons, a transceiver communication circuit, a power supply, isolation circuitry for the power supply, an LED phase loss indicator, an audible alarm, dry relay contacts, an LCD display, electrical anomaly counting means and drivers for the audible alarm, dry relay contacts, LCD display and LED phase loss indicator.
- the device further comprises EPROM and programmable array logic coupled to the neuron chip .
- the modular device is capable of determining various electrical phenomenon occurring in the electrical line to which the device is coupled, counting the number occurrences of such phenomenon, and transmitting that information to a central location for analysis by a system engineer or administrator of the facility.
- the central location could be a location within the facility and/or an off-site monitoring station.
- the detectable electrical phenomenon includes SPD/PQE status, voltage levels, current draw, power surges, phase outages, phase shifting, power factor, harmonic distortion and panel load. Voltage and current detection values may be set to specific levels of monitoring based on user specifications or standards tolerances, for example, voltage and current tolerances defined in Mil Spec 1399.
- the device can utilize the AC power line as a means for communication by connecting a power line transceiver board.
- Alternate means of communication include a free topology - twisted pair connection or RS485, fiber optic, RF carrier and modem communication.
- THE LCD display operates in two primary display modes showing surge and phase outage data. The two modes can be toggled therebetween through the use of one of the user interface buttons or by means of transmitted computer command.
- Various sub-menus are accessible through the actuation of the user interface buttons and include System Control, a Test Mode, a Network Test Mode and Network Setup. The functions carried out in the sub-menus permit a user of the power quality modular device to set-up each device to particular parameters. Such parameters will be discussed in the Detailed Description of the Preferred Embodiment . Brief Description of Drawings
- Fig. 1 is a block diagram of the circuitry used in the monitoring device of the present invention
- Fig. 2 is a flow diagram of the Normal Display Mode of the monitoring device
- Fig. 3 is a flow diagram of the Mute Mode within the System Control Menu of the monitoring device
- Fig. 4 is a flow diagram of the Counter Reset Mode within the System Control Menu of the monitoring device
- Fig. 5 is a flow diagram of the Alarm Reset Mode within the System Control Menu of the monitoring device
- Fig. 6 is a flow diagram of the Buzzer Test Mode within the Test Menu of the monitoring device
- Fig. 7 is a flow diagram of the Relay Test Mode within the Test Menu of the monitoring device
- Fig. 8 is a flow diagram of the Network Test Menu of the monitoring device
- Fig. 9 is a flow diagram of the Surge Transmit Mode within the Network Test Menu of the monitoring device
- Fig. 10 is a flow diagram of the TVSS Transmit Mode within the Network Test Menu of the monitoring device
- Fig. 11 is a flow diagram of the I.D. Transmit Mode of the Network Test Menu of the monitoring device;
- Fig. 12 is a flow diagram of the Network Setup Menu of the monitoring device
- Fig. 13 is a flow diagram of the Transmit Rate Mode within the Network Setup Menu of the monitoring device
- Fig. 14 is a flow diagram of the Transmit Mode Mode within the Network Setup Menu of the monitoring device
- Fig. 15 is a flow diagram of the Polled Mode within the Network Setup Menu of the monitoring device
- Fig. 16 is a flow diagram of the On-Activity Mode within the Network Setup Menu of the monitoring device
- Fig. 17 is a flow diagram of the Periodic Mode within the Network Setup Menu of the monitoring device.
- Fig. 18 is a flow diagram of the Transmit Service Pin Mode within the Network Setup Menu of the monitoring device. Best Mode for Carrying Out the Invention
- FIG. 1 a block diagram is shown representing the primary components of a power quality detection modular device of the present invention.
- Each block represents either a single or set of electrical components coupled to the overall circuitry of a single modular device for detecting various electrical phenomenon inherent in three phase AC power lines. It is understood that a plurality of these modular devices can be employed throughout a given facility for establishing a power quality control network, wherein each modular device represents a single node on the network.
- Neuron chip 10 is a single IC package comprising three 8 -bit in-line processors (two used for executing the protocol of the chip, the third used for the node's application) .
- a Motorola MC143150B1FU1 20mHz IC is employed.
- EPROM and PAL ICs are coupled to neuron chip 10 .
- surge detection circuitry 12 comprising a low voltage indicator and voltage comparator.
- Surge detection circuitry 12 is coupled at a first side to one, two or three phases of the one, two or three phase AC power line, respectively, and at a second side to ground.
- the preferred embodiment couples to a three phase AC power line.
- a pair of push buttons form the user interface 14 which act upon neuron chip 10 when actuated by a user of the device.
- a function and an enter key are employed for the pair of push buttons .
- the circuity of the modular device employs a suitable means of electrical connection for coupling to the circuitry of a surge protection device (SPD) , designated by the numeral 16 (in the preferred embodiment, a plug is employed as the suitable means of connection) .
- SPD surge protection device
- a plug is employed as the suitable means of connection
- PQE power quality equipment
- Optical isolation 18 is coupled between the TVSS circuitry 16 and the circuitry of the modular device for isolating TVSS circuitry 16 from the neuron chip circuitry.
- Optical isolation 18 is coupled to mix/encoder circuitry 20 and acts as an LED phase loss indicator driver.
- a set of three LEDs are employed for LED phase loss indication 22 for determining immediate independent visual indication of the three AC phases. If a true single phase system is employed, then one LED is used for the single phase. If a split phase system is employed, then two LEDs are used for the two phases. LED illumination confirms normal phase operation whereas loss of LED illumination indicates a loss of the associated phase.
- a set of dry relay contacts 24 are provided for employing alternate indication and alarm functions for the modular device. For example, if the modular device is employed within the housing of a SPD or other PQE device, the set of dry relay contacts 24 can be coupled to the circuitry of the SPD or other PQE device to drive various alarm and indication elements of such device.
- the modular device of the present invention can be coupled to a SPD or other PQE device by either employing the modular device within the housing of such SPD or PQE device or attaching it alongside in its own box.
- the modular device is enclosed within its own housing and electrically coupled alongside the SPD or PQE device.
- the circuitry of the modular device may be encapsulated in a compound for the purpose of environmental protection. Examples of compounds include epoxy resin and silicon.
- a first driver 26 couples between neuron chip 10 and the set of dry relay contacts 24 for actuating the set of dry relay contacts 24 upon the happening of an event.
- An audible alarm 28 is provided for signaling a power line event.
- a second driver 30 couples between neuron chip 10 and alarm 28 for actuating alarm 28.
- drivers 26 and 30 are NPN transistors.
- An LCD display 32 is provided as a visual operator interface. LCD display 32 can be used to display numeric event counts and various alphanumeric messages, such as "Phase Out . " Other alphanumeric messages can be seen by referencing Figs. 2-18.
- a third driver 34 is coupled between neuron chip 10 and LCD display 32 for displaying the numeric and alphanumeric data.
- third driver 34 is an octal latch IC.
- the circuitry of the modular device obtains its power from the AC power line.
- Isolation circuitry 36 is provided for isolating primary and secondary AC for use in a DC power supply 38.
- Isolation 36 comprises a power supply transformer.
- the transformer of isolation 36 can be configured to use one of multiple primary taps for varying voltage standards around the world. Accordingly, it can be configured for any and all voltages between 12Ov and 600v. Regulated 5 and 12 volt DC is outputted from DC power supply 38 through the use of a pair of independent voltage regulators.
- Neuron chip 10 can communicate its node data to a central location through the use of various communication protocols, including, for example, AC power-line transmission, free topology - twisted pair, RS485 communication, fiber optics, RF carrier or a computer modem connection . If communication is to be carried through AC power-line transmission, isolated coupling circuitry 40 is employed, coupled to two of the three AC phases, for isolating the AC power-line from the data transmission/receiver circuitry. As shown in Fig. 1, separate circuitry for each type of means of communication can be coupled to a communication port of neuron chip 10 through the circuitry of the modular device.
- various communication protocols including, for example, AC power-line transmission, free topology - twisted pair, RS485 communication, fiber optics, RF carrier or a computer modem connection .
- isolated coupling circuitry 40 is employed, coupled to two of the three AC phases, for isolating the AC power-line from the data transmission/receiver circuitry. As shown in Fig. 1, separate
- AC power-line transmission is used as the means for communication.
- Such preferred means employs a separate connectable circuit board 42 for coupling to the communication port of neuron chip 10.
- the power-line transmission board 42 comprises a power-line transceiver, first and second LEDs, a power-line coupling circuit and a 2 x 10 header for connection to a plug on the modular device circuit board.
- the power-line transceiver is an Echelon PLT-21 which can send a 5 kbps burst along the 60 Hz power-line.
- the first and second LEDs are used to indicate "band-in-use" and "packet-detect" respectively.
- the power-line coupling circuit comprises a transformer, such as an Exel 1:1 isolation transformer, a plurality of resistors, a plurality of capacitors and a diode acting as a fast recovery rectifier. At least one of the capacitors of the power-line coupling circuitry is interchangeable depending on the primary tap of the transformer used in the isolation circuitry 36.
- Alternate means of communication include free topology - twisted pair communication 44, RS485 communication 46, fiber optics 48, RF carrier (not shown) and a computer modem connection 50.
- Each of five alternate means of communication also comprise a separate printed circuit board which can be coupled to the communication port of neuron chip 10 through the circuitry of the modular device. It is understood that the modular device could be constructed such that all six types of communication means (one preferred and five alternates) are coupled to the circuitry of the modular device; the user of the device would then chose the appropriate means for communication. But, in the preferred embodiment, only one type of communication means is coupled to the modular device at any given time, each communication means removably connected to the modular device circuit board. In either configuration, the EPROM chip can be pre-programmed to include all modes of communication wherein a user merely selects the desired mode through a computer interface.
- the circuitry of the first alternate means of communication employs free topology, twisted pair communication.
- This circuitry employs an Echelon FTT-10A transceiver, a plurality of data line and power supply protection diodes, a plurality of DC filter, RF and power supply bypass capacitors, a buffer resistor, a terminal block for connection to the twisted pair cabling with spark gap pads and a 2 x 10 header for connection to the plug of the modular device circuit board.
- the circuitry of the second alternate means of communication employs RS485 communication.
- This circuitry employs a Maxim 481 differential line driver/receiver transceiver, a plurality of data line protection diodes, a plurality of power supply zener diodes for regulating 12v DC, a buffer resistor, a 1 x 3 terminal block with spark gap pads and a 2 x 10 header for connection to the plug of the modular device circuit board.
- the modular power quality monitoring device detects surges and phase outages of the circuit to which it is coupled, although other electrical phenomenon can be detected and are listed hereinabove.
- the modular power quality monitoring device When surge detection circuitry 12 of the present invention detects a surge on either the phase or ground line, the modular power quality monitoring device displays this as a count on LCD 32. If there is a phase outage detected by SPD/PQE circuitry 16, LCD 32 displays the alphanumeric message "Phase Out.”
- the power quality modular device of the present invention considers a phase outage as an event. Whenever an event occurs, the set of dry relay contacts 24 change state, LEDs 22 blink and alarm 28 sounds. If the power quality modular device is utilizing the LONWORKS interface, these events are broadcast over the interface. Such event happenings can then be reviewed via the user interface 14 so that the system can be tuned to the liking of the user. In an alternate embodiment, if a phase outage occurs and is detected and/or counted by the modular power quality monitoring device, the circuit to which it is coupled may be opened thereby disconnecting the power source from the piece of electronic equipment being monitored.
- FIG. 2 - 18 a plurality of flow diagrams are shown representing the various menus and modes accessible through actuation of the two user interface buttons, the
- LCD 32 Function and Enter Keys respectively, and the resulting numeric or alphanumeric display of LCD 32.
- LCD 32 and the Function and Enter Keys are all accessible from a front panel (not shown) of the power quality modular device.
- LCD 32 is represented by a rounded edge rectangular-shaped box while the Function and Enter Keys are represented by diamond-shaped boxes.
- the Normal Display Mode is depicted.
- LCD 32 is represented twice on Fig. 2 to give an example of the numeric counting scheme of electrical events such as surges or phase outages.
- LCD 32 displays two rows of numbers, representing normal surge count (power-line anomalies: line to line and line to neutral) and common surge counts (ground anomalies: line to ground and neutral to ground) . From the Normal Display Mode, a user can actuate the Function Key and move to the System Control Menu.
- the Enter Key is instead actuated whereby LCD 32 will display "Phases OK" or "Multiple Phase Loss.” From this point, the user can actuate the Function Key, taking the user into the System Control Menu, actuate the Enter Key a second time, taking the user back to the event count display of the Normal Display Mode, or do nothing, leaving the "Phase" data displayed on LCD 32.
- the modular device can be programmed to display customer proprietary or encrypted display data.
- the System Control Menu is depicted which permits the user to enter three sub-menus (or modes) for changing the state of the audible alarm mute, resetting the event counters and resetting the surge and SPD/PQE alarms.
- the first default mode entered from the beginning of the System Control Menu is the audible alarm Mute Mode.
- actuation of the Enter Key permits the alarm mute to be set "on” or "off,” with the new setting being displayed on LCD 32. If the user desires to leave the state of the alarm mute unchanged, or after the user has set the alarm mute to the desired setting, actuation of the Function Key takes the user to the Counter Reset Mode .
- the Counter Reset Mode is depicted which permits the user to reset the normal and common surge counts.
- a query is displayed on LCD 32 asking whether the user wishes to "Reset Counters?"
- the Enter Key By actuating the Enter Key, the user is again asked whether this is the desired result by querying on LCD 32 "Are You Sure?" If yes, the user actuates the Enter Key which results in the clearing of both the normal and surge counts; LCD 32 will display "Counters Reset! If the user wishes not to reset the counters, the Function Key can be actuated at either query point which results in the program moving to the Alarm Reset Mode.
- the Alarm Reset Mode is also reached after the counters are reset .
- the Alarm Reset Mode is depicted which permits the user to reset the surge and SPD alarms.
- the set of dry relay contacts 24 are used and are electrically coupled to the alarm (s) of the SPD/PQE device used with the modular power quality monitoring device.
- the Enter Key is actuated causing both the surge and SPD alarm to be reset or set to off. Thereafter, a alphanumeric message of "Alarms Reset! will be displayed on LCD 32. If the user did not wish to reset the alarms, actuating the Function Key would move the user out of the Alarm Reset Mode and into the Test
- the Test Menu is depicted which permits the user to enter two sub-menus (or modes) for testing the buzzer and for testing the relays.
- a query is asked on LCD 32 whether the users wishes to enter the "Test Mode?" If no, the Function Key is actuated which takes the user to the Network Setup Menu.
- the Enter Key is actuated taking the user into the Buzzer Test Mode whereby the status of the buzzer is shown on LCD 32, such as "Buzzer Now On” or Buzzer Now Off.”
- the Enter Key is actuated to flip- flop the state of the buzzer from "off to on” or "on to off.”
- the Function Key is actuated taking the user into the Relay Test Mode. If the user has changed the state of the buzzer, the new state will be displayed on LCD 32. Thereafter, the user can actuate the Function Key to move to the Relay Test Mode . Referring to Fig. 7, the Relay Test Mode is depicted which permits the user to change the state of the relay.
- the Enter Key is actuated to flip-flop the state of the relay buzzer from "off to on” or "on to off.” If the user wishes to leave the state of the relay unchanged, the Function Key is actuated taking the user into the Network Test Menu. If the user has changed the state of the relay, the new state will be displayed on LCD 32. Thereafter, the user can actuate the Function Key to move to the Network Test Menu. Referring to Fig. 8, the Network Test Menu is depicted permitting the user to enter three sub-menus (or modes) to transmit surge counts, transmit phase status and transmit the unique I.D. of device.
- a query is first asked of "Network Test?" If the answer is no, the Function Key is actuated taking the user to the Network Setup Menu. If yes, the Enter Key is actuated, taking the user into the Surge Transmit Mode . Referring now to Fig. 9, the Surge Transmit Mode is depicted. Upon first entering therein, a query is asked whether the user wishes to "Transmit Surge Counts.” If no, the Function Key is actuated whereby the program moves to the TVSS Transmit Mode.
- the program moves to the TVSS Transmit Mode. If the Enter Key is actuated after the surge counts have been transmitted, the program moves back to a point wherein the query is asked whether the user wishes to "Transmit Surge Counts?" At this point, the user can actuate the Function Key to move out of the Surge Transmit Mode and into the TVSS Transmit Mode.
- the TVSS Transmit Mode is depicted.
- a query is asked whether the user wishes to "Transmit Phase Status?" If no, the Function Key is actuated whereby the program moves to the I.D. Transmit Mode. If yes, the user actuates the Enter Key, whereby the TVSS phase status is transmitted over the means for communication and LCD 32 displays "TVSS xxx Transmitted," wherein "xxx" represents the status of each phase. Thereafter, if the Function Key is actuated, the program moves to the I.D. Transmit Mode. If the Enter Key is actuated after the TVSS phase status has been transmitted, the program moves back to a point wherein the query is asked whether the user wishes to
- the I.D. Transmit Mode is depicted.
- a query is asked whether the user wishes to "Transmit I.D.?" If no, the Function Key is actuated whereby the program moves to the Network Setup Menu. If yes, the user actuates the Enter Key, whereby the I.D. is transmitted over the means for communication and LCD 32 displays a message such as "NOD#:001 SUB#001,” wherein “NOD#” represents the node number of a particular modular power quality monitoring device with a sub net and "SUB#" represents the subnet number (in the preferred embodiment, there can be one thousand different subnets each having one thousand nodes associated therewith) .
- the Network Setup Menu is depicted which permits the user to access six sub-menus (or modes) for setting a transmit rate, setting a transmit mode, toggling a polled transmit mode between on and off, toggling an on-activity transmit mode between on and off, toggling a periodic transmit mode between on and off and for transmitting a service pin number.
- a query is asked on LCD 32 whether the user wishes to implement a "Network Setup?" If no, the Function Key is actuated taking the use back into the Normal Display Mode of Fig. 2. If yes, the Enter Key s actuated taking the user into the Transmit Rate Mode.
- the Transmit Rate Mode is depicted. Upon first entering this mode, a query is made via LCD 32 asking whether the user wishes to "Set Transmit Rate.” If no, the Function Key is actuated taking the user into the
- Transmit Mode Mode If yes, the Enter Key is actuated whereby the current transmit rate is shown on LCD 32, such as "Minutes 1-99: xxx" whereby xxx represents the value currently set. If the user does not wish to change the setting, the Function Key is actuated taking the user into the Transmit Mode Mode. If the user wishes to change the rate, the Enter Key is actuated repetitively until the desired rate in minutes is reached. Thereafter, the Function Key is actuated taking the user into the Transmit Mode Mode .
- the Transmit Mode Mode is depicted. Upon first entering therein, a query is made on LCD 32 asking whether the user wishes to "Set Transmit Mode?" If no, the Function Key is actuated taking the user into the Service Pin Mode. If yes, the Enter Key is actuated taking the user into the Polled Mode.
- the Polled Mode is depicted. Depending on the current status of the Polled Mode, LCD 32 will display either "Polled Now Off” or “Polled Now On.” If the user wishes to leave the Polled Mode unchanged, the Function Key is actuated taking the user into the On-Activity Mode. If the user wishes to change the state, the Enter Key is actuated causing the state to change from either "on to off” or "off to on.” In either case, LCD 32 will display the new state as described directly above. Thereafter, actuation of the Function Key takes the user into the On-Activity Mode.”
- the On-Activity Mode is depicted. Depending on the current status of the On-Activity Mode, LCD 32 will display either "Activity Now Off” or "Activity Now On.”
- the Function Key is actuated taking the user into the Periodic Mode. If the user wishes to change the state, the Enter Key is actuated causing the state to change from either "on to off” or "off to on.” In either case, LCD 32 will display the new state as described directly above. Thereafter, actuation of the Function Key takes the user into the Periodic Mode.”
- the Periodic Mode is depicted. Depending on the current status of the Periodic Mode, LCD 32 will display either "Periodic Now Off” or "Periodic Now On.” If the user wishes to leave the Periodic Mode unchanged, the Function Key is actuated taking the user into the Transmit Service Pin Mode. If the user wishes to change the state, the Enter Key is actuated causing the state to change from either "on to off” or "off to on.” In either case, LCD 32 will display the new state as described directly above. Thereafter, actuation of the Function Key takes the user into the Transmit Service Pin Mode. Referring to Fig. 18, the Transmit Service Pin Mode is depicted.
- a query is asked whether the user wishes to "Transmit the Service Pin.” If no, the Function Key is actuated returning the user back to the Normal Display Mode of Fig. 2. If yes, the Enter Key is actuated, causing a service pin message to be transmitted over the means for communication.
- Each service pin is unique is represented by a series of numbers. The number sequence would temporarily be displayed on LCD 32 for two seconds. The number would look like "11-22-33-44-55-66.” and be displayed in a two row format (see Fig. 18) . After the two seconds, a message is displayed on LCD 32 stating "Service Message Sent! If the Function Key is actuated directly thereafter, the user would be taken back to the Normal Display Mode of Fig. 2.
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- Engineering & Computer Science (AREA)
- Power Engineering (AREA)
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Electromagnetism (AREA)
- Remote Monitoring And Control Of Power-Distribution Networks (AREA)
Abstract
Description
Claims
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| PCT/US1999/003042 WO2000048149A1 (en) | 1999-02-11 | 1999-02-11 | Modular power quality monitoring device |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP1153379A1 true EP1153379A1 (en) | 2001-11-14 |
| EP1153379A4 EP1153379A4 (en) | 2003-08-20 |
Family
ID=22272179
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP99906960A Ceased EP1153379A4 (en) | 1999-02-11 | 1999-02-11 | Modular power quality monitoring device |
Country Status (3)
| Country | Link |
|---|---|
| EP (1) | EP1153379A4 (en) |
| AU (1) | AU2674999A (en) |
| WO (1) | WO2000048149A1 (en) |
Families Citing this family (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2007025570A1 (en) * | 2005-09-02 | 2007-03-08 | Schaffner Emv Ag | Intelligent power monitoring unit |
| EP1819021B1 (en) * | 2006-02-14 | 2018-06-20 | Finder S.P.A. | Method and device for monitoring polyphase lines and for detecting phase losses based on the phase angle between phase-to-phase voltages |
| CN113690748A (en) * | 2020-05-19 | 2021-11-23 | 施耐德电气工业公司 | Switch board parts |
Family Cites Families (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4689752A (en) * | 1983-04-13 | 1987-08-25 | Niagara Mohawk Power Corporation | System and apparatus for monitoring and control of a bulk electric power delivery system |
| US5600527A (en) * | 1994-12-22 | 1997-02-04 | Eaton Corporation | Circuit interrupter providing protection and waveform capture for harmonic analysis |
| US5838226A (en) * | 1996-02-07 | 1998-11-17 | Lutron Electronics Co.Inc. | Communication protocol for transmission system for controlling and determining the status of electrical devices from remote locations |
| US5796631A (en) * | 1997-02-10 | 1998-08-18 | Tempo Instrument, Inc. | Method and apparatus for monitoring and characterizing power quality, faults and other phenomena in network power systems |
-
1999
- 1999-02-11 AU AU26749/99A patent/AU2674999A/en not_active Abandoned
- 1999-02-11 WO PCT/US1999/003042 patent/WO2000048149A1/en not_active Ceased
- 1999-02-11 EP EP99906960A patent/EP1153379A4/en not_active Ceased
Also Published As
| Publication number | Publication date |
|---|---|
| WO2000048149A1 (en) | 2000-08-17 |
| EP1153379A4 (en) | 2003-08-20 |
| AU2674999A (en) | 2000-08-29 |
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