Electric meter primary side energy hold-up management
The primary-side energy management system in electric meters addresses the inefficiency of backup power by using a rectifier and hold-up circuit to extend communication duration during outages, enhancing the reliability of wireless transmissions.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-12-10
- Publication Date
- 2026-04-08
AI Technical Summary
Existing electric meters struggle to efficiently provide backup power for wireless communication during power outages due to the large and expensive capacitors required to store sufficient energy for extended periods, leading to inefficiencies in last gasp communications.
A system and method for primary-side energy management in electric meters, utilizing a rectifier, primary-side hold-up circuit, and control circuit to efficiently store and release energy from capacitors to maintain communication during outages.
Enhances the efficiency of offline switchers with a light secondary load, allowing AMI and AMR equipment to remain active for extended periods during outages, improving the reliability of last gasp communications.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a system and method for primary energy management of an electric meter.
[0002] Unless otherwise stated herein, the content described in this section is not prior art to the claims of this application and is not admitted to be prior art by including this section.
Background Art
[0003] An electric meter measures the electric power consumed by a customer of an electric utility provider. The electric meter is plugged into a meter socket attached to an enclosure in a building or other structure and draws its operating power from the power distribution grid. The electric meter records the amount of electrical energy consumed and notifies the utility provider of this information, along with the meter's own status information, for monitoring and billing purposes. In the event of a power outage, the electric meter can no longer communicate with the utility provider.
Summary of the Invention
Problems to be Solved by the Invention
[0004] In order to operate a wireless device so that an electric meter can provide a "last gasp" communication to a utility provider in the event of a power outage, the electric meter may include a backup power source. The backup power source can provide power to the electric meter for only a short period of time sufficient for the meter to transmit a last gasp communication. In some cases, the backup power source may be one or more low voltage capacitors that provide backup power for wireless operation. The capacitors required to store sufficient energy to operate the wireless device for a sufficiently long period of time can be large and expensive.
Means for Solving the Problems
[0005] A system and method for primary-side energy management of an electric meter may be provided.
[0006] According to various aspects of this disclosure, a power supply meter is provided. In some aspects, the power supply meter may include a rectifier configured to rectify an alternating current (AC) voltage from a power grid to produce a primary-side direct current (DC) voltage source, and a primary-side hold-up circuit. The primary-side hold-up circuit may include one or more first capacitors connected to a primary-side DC voltage rail and configured to store energy from the primary-side voltage source, a switch connected to one or more of the first capacitors, and a control circuit configured to control the primary-side hold-up circuit. The control circuit may be configured to determine that the secondary DC voltage of a secondary-side voltage source drawn from a primary-side DC power source is approximately equal to a first designated threshold voltage, and to generate a control signal that turns on the switch and releases a portion of the energy stored in one or more of the first capacitors from one or more of the first capacitors to the primary-side DC voltage rail.
[0007] Various embodiments of this disclosure provide primary-side hold-up circuits. In some embodiments, the primary-side hold-up circuit may include one or more first capacitors connected to a primary-side DC voltage rail and configured to store energy from a primary-side voltage source, a switch connected to one or more first capacitors, and a control circuit configured to control the primary-side hold-up circuit. The control circuit may be configured to determine that the secondary-side DC voltage drawn from the primary-side DC voltage source is approximately equal to a first designated threshold voltage, and to generate a control signal that turns on the switch and releases a portion of the energy stored in one or more first capacitors from one or more first capacitors to the primary-side DC voltage rail.
[0008] Various aspects of this disclosure provide a method for operating a power supply meter during a power outage. In some aspects, the method may include: a control circuit determining that a power outage has occurred in the AC power grid based on the detection that a secondary DC voltage drawn from the AC power grid is approximately equal to a first designated threshold DC voltage; and the control circuit generating a control signal to a primary hold-up circuit comprising one or more first capacitors connected to a primary DC voltage rail and configured to store energy from a primary voltage source, and a switch connected to one or more of the first capacitors. The control signal may turn on the switch, causing a portion of the energy stored in one or more of the first capacitors to be released from one or more of the first capacitors to the primary DC voltage rail. [Brief explanation of the drawing]
[0009] [Figure 1] This is a schematic diagram illustrating a utility management system relating to several aspects of this disclosure. [Figure 2] This is a simplified block diagram showing an electric meter according to several aspects of this disclosure. [Figure 3] This is a simplified block diagram of an electric meter including a primary side hold-up circuit according to some aspects of the present disclosure. [Figure 4] This is a simplified diagram showing a primary side hold-up circuit according to some aspects of the present disclosure. [Figure 5] This block diagram shows communication between an electric meter and a headend system according to some aspects of the present disclosure. [Figure 6] This flowchart shows a method for operating an electric meter during an AC power outage, according to some aspects of this disclosure. [Modes for carrying out the invention]
[0010] The aspects and features of various embodiments will become clearer by describing the examples with reference to the attached drawings.
[0011] Electric meters measure the electricity consumed by customers of an electric utility provider. They are plugged into meter sockets mounted in enclosures within buildings or other structures, providing a connection between the electricity supplied by the electric utility and the customer. Electric meters measure and control the electricity supplied to the customer premises via the grid. Electric meters may be combined with communication modules to enable them to communicate with other meters and utilities. Electric meters may also be part of a utility management system.
[0012] Electric meters may draw power from the alternating current (AC) main line to which they are connected. The AC voltage may be rectified to produce a primary direct current (DC). Electric meters may also be equipped with a power supply, which may be a switching power supply configured to convert the primary DC voltage to a lower secondary DC voltage suitable for operating the components of the electric meter; this is also called an offline switcher. The offline switcher power supply may provide electrical isolation (e.g., galvanic isolation) between the circuit connected to the primary DC voltage and the circuit connected to the secondary DC voltage.
[0013] During an AC power outage, an electric meter can no longer draw power from the AC main line and requires sufficient stored energy, referred to hereby as primary-side hold-up energy, to operate an offline switcher for a short period of time short enough for the electric meter to transmit a "last gasp" communication, such as an AC power outage indicator. The last gasp communication may be transmitted to a receiver such as a headend system, other metering equipment, or mobile device equipped with an AMI (Advanced Metering Infrastructure) radio or AMR (Automatic Meter Reading) radio for the electric meter. In some cases, the last gasp communication may require several attempts before successful transmission. Simply providing a bank of capacitors across the primary-side DC voltage rail of the electric meter to supply the hold-up energy necessary for the offline switcher to power the AMI radio and / or AMR radio and other AMI or AMR devices for a long period (e.g., 60 seconds) has not been practical due to power losses in the offline switcher.
[0014] Aspects of this disclosure can result in improved efficiency of an offline switcher using primary-side hold-up energy with a light secondary load during an AC power outage, for extended periods, e.g., 60 seconds or more. A control circuit in an electric meter may turn the offline switcher on and off on demand to meet the DC requirements of AMI radio equipment and / or AMR radio equipment and other AMI or AMR equipment. This control can also improve the efficiency of the offline switcher with a low secondary load. Idle losses in a flyback converter can be reduced to allow AMI or AMR radio equipment and other AMI or AMR equipment to remain active for extended periods (e.g., longer than 60 seconds) during an AC power outage.
[0015] While certain embodiments are described, these embodiments are presented only as examples and are not intended to limit the scope of protection. The apparatus, methods, and systems described herein may be implemented in various other forms. Furthermore, various omissions, substitutions, and modifications may be made to the exemplary methods and systems described herein without excluding the scope of protection.
[0016] Figure 1 is a schematic diagram showing a utility management system 100 according to some aspects of the present disclosure. Referring to Figure 1, the utility management system 100 may include an electric meter 105, a headend system 110, and a storage device 120. For the sake of simplicity of explanation, Figure 1 shows one electric meter 105, but those skilled in the art will recognize that, without departing from the scope of the present disclosure, the disclosed utility management system 100 may include multiple electric meters 105.
[0017] The electric meter 105 may monitor and / or record energy usage at the customer premises 130 and notify the headend system 110 of information regarding energy usage. For example, the electric meter 105 may continuously monitor and record the total energy usage at the customer premises 130. According to various aspects of this disclosure, the electric meter 105 may monitor and / or record the day of the week and time of energy usage at the customer premises 130 and notify the headend system 110 of that information. Furthermore, the electric meter 105 may act as a sensor to detect and / or record abnormal measurements and / or events, including, but not limited to, AC power supply interruptions. Those skilled in the art will recognize that other information, including, but not limited to, average power consumption and peak power, may be monitored and communicated by the electric meter 105.
[0018] The electric meter 105 may communicate with the headend system 110 via a wired or wireless interface known to those skilled in the art, using a communication protocol suitable for a particular communication interface. Multiple different wired or wireless interfaces and associated communication protocols may be implemented in the electric meter 105 for communication with the headend system 110. For example, in some embodiments, a wired communication interface may be implemented, while in other embodiments, a wireless interface may be implemented for communication between the electric meter 105 and the headend system 110. In some embodiments, a wireless mesh network may connect multiple electric meters 105. Multiple electric meters 105 may transmit data to a collector (not shown), which communicates with other networks to transmit the data to the headend system 110. The electric meter 105 may communicate using radio frequency (RF), cellular, or power line communication. In some embodiments, the electric meter 105 may be an AMI (Advanced Metering Infrastructure) meter or an AMR (Automatic Meter Reading) meter, and may include an AMI radio device or an AMR radio device. Other communication methods may be used without departing from the scope of this disclosure.
[0019] The head - end system 110 may include a data storage device 120. The data storage device 120 may be, for example, one or more hard disk drives, solid - state memory devices, or other computer - readable storage media, but is not limited thereto. Those skilled in the art will recognize that other storage device configurations may be used without departing from the scope of the present disclosure. The database 125 may be stored on the data storage device 120. The database 125 may store information collected from the electricity meter 105. For example, the database 125 may include days of the week and times correlated with load operation information, including, but not limited to, average power consumed by the load, peak power consumed by the load, etc. Those skilled in the art will recognize that this information is illustrative and that other information may be included in the database 125 without departing from the scope of the present disclosure.
[0020] The head - end system 110 and the electricity meter 105 may be connected to a power distribution grid 140. The power distribution grid 140 may include a power generation plant (not shown) that generates power (not shown), a substation (not shown) for raising or lowering voltage for power transmission or distribution, high - voltage transmission lines (not shown), and distribution lines (not shown).
[0021] FIG. 2 is a simplified block diagram showing an electricity meter 200 according to some aspects of the present disclosure. The electricity meter 200 may be, for example, the electricity meter 105 of FIG. 1. The electricity meter 200 may include a control circuit 205, a communication module 230, various sensors 240, a power supply 260, and a primary - side hold - up circuit 270.
[0022] The control circuit 205 may include a processor 210, a memory 220, and a measurement circuit 250. The processor 210 may be a general-purpose processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field-programmable gate array (FPGA), or other programmable logic circuitry. The processor 210 may communicate electrically with the memory 220, the communication module 230, and the sensor 240. The processor 210 may control the overall operation of the electric meter 200. The processor 210 may receive data generated by various sensors 240 of the electric meter 200, including but not limited to energy usage, voltage, current, etc., and may perform operations or data processing on this data. By communicating with the communication module 230, the processor 210 may transmit various operation parameters (such as energy usage), diagnostic data (such as error states), or other electric meter information (such as GPS coordinates) to the head-end system and / or other electric meters via a wired or wireless network.
[0023] The memory 220 may be a storage device such as a solid-state storage device or other storage devices, and may also be a combination of volatile and non-volatile storage devices or memories. In some embodiments, a part of the memory may be included in the processor 210. The memory 220 may be configured to store instructions executable by the processor 210, data generated by various sensors 240 of the electric meter 200, and other applications executable by the processor 210.
[0024] The communication module 230 may be a wired or wireless transceiver capable of operating to communicate over various wired or wireless protocols known in the art, including but not limited to the AMI protocol. The communication module 230 may include a processor 235 configured to control the operation of the communication module 230. The communication module 230 may enable the electric meter 200 to communicate with other electric meters in a network (e.g., an AMI network) and with a utility provider (e.g., a headend system) that controls the network. The communication module 230 may transmit data and emergency signals to the utility provider and receive any of the following: updated program instructions, firmware updates, updates to other settings, or other communications. The communication module 230 may receive capacitor charge and discharge instruction signals 232 from the headend system (e.g., headend system 110) and transmit instruction signals to the processor 210. In some embodiments, the communication module 230 may include AMI equipment and / or AMR equipment, including an AMI radio and / or AMR radio 237. AMI radio equipment and / or AMR radio equipment may transmit data to and receive data from a headend system using radio frequency (RF) technology or power line communication (PLC).
[0025] The sensor 240 may include, but is not limited to, a voltage sensor, a current sensor, an accelerometer, a tilt switch, a temperature sensor, and other sensors configured to monitor the electrical and physical characteristics of the electric meter 200.
[0026] The measurement circuit 250 may have an interface with the sensor 240. The measurement circuit 250 may include an analog-to-digital (A / D) converter 256 configured to measure the capacitor voltage and convert the capacitor voltage value into a digital value. The analog-to-digital (A / D) converter 256 may be configured to receive a signal from the sensor 240 and convert the signal into a digital value that can be processed by the processor 210.
[0027] The power supply 260 may be a switching power supply, also referred to in this application as an offline switcher. The power supply 260 may be configured to convert the primary DC voltage to a lower secondary DC voltage. The power supply 260 may include a secondary power supply that converts the secondary DC voltage to a lower voltage suitable for operating the components of the electric meter.
[0028] The primary side hold-up circuit 270 may supply power to the electric meter 200 for a predetermined period of time immediately after the AC power supply is cut off. The capacitor included in the primary side hold-up circuit 270 may be controlled by the control circuit 205 to supply sufficient power to the electric meter 200 to transmit a “death” message to the headend system via the AMI radio or AMR radio 237. The death message may include notification of the AC power supply cut-off and other information at the time of power loss (e.g., energy usage, error conditions, or other electric meter information).
[0029] Figure 3 is a simplified block diagram of an electric meter 300 including a primary side hold-up circuit 360 according to some aspects of the present disclosure. Referring to Figure 3, the electric meter 300 may include a first power supply 310, a second power supply 320, a third power supply 325, a control circuit 350, and a primary side hold-up circuit 360. The first power supply 310, referred to herein as an offline power supply or offline switcher, may be operated by an input voltage from the primary side DC voltage of the electric meter 300. The primary side DC voltage may be generated from an AC line voltage rectified by a full-wave rectifier 305. The primary side DC voltage may be, for example, 350 volts DC (VDC) or other DC voltages.
[0030] The first power supply 310 may be a switching power supply capable of operating to convert a primary DC voltage to a lower secondary DC voltage Vsec, and may be, for example, a buck boost power supply or other power supply. The secondary DC voltage Vsec may be, for example, 12VDC or other DC voltages. The first power supply 310 may convert the primary DC voltage to the secondary DC voltage Vsec by periodically transmitting energy stored in the primary winding of the coupling inductor 315 to the secondary winding of the coupling inductor 315. The coupling inductor 315 may provide electrical isolation (e.g., galvanic isolation) between the circuit connected to the primary DC voltage and the circuit connected to the secondary DC voltage. In some embodiments, the coupling inductor 315 may be a transformer. Isolated feedback of the secondary DC voltage Vsec may be provided to the first power supply 310 via an isolation device 312, which includes, but is not limited to, an optical coupler or other isolation device.
[0031] The second power supply 320 may be a switching power supply or other power supply that is operable to convert the secondary DC voltage Vsec to a lower voltage, for example, 3.3VDC or another DC voltage. The second power supply 320 may also supply power to the control circuit 350 and to other circuits of the electric meter 300. The third power supply 325 may be a switching power supply or other power supply that is operable to convert the secondary DC voltage Vsec to a lower voltage, for example, 3.6VDC or another DC voltage. The second power supply 325 may also supply power to the AMI radio or AMR radio 330.
[0032] The primary side hold-up circuit 360 may include a primary side hold-up capacitor 370, a primary side hold-up control switch 375, and a peak detector circuit 380. The primary side hold-up capacitor 370 may be connected to the primary side DC voltage rail 307 and store energy while receiving power from the AC main line. The primary side hold-up capacitor 370 may include two or more capacitors connected in parallel to provide a specified capacitance. For example, two 220 microfarad (μF) capacitors connected in parallel may provide a capacitance of 440 μF to store energy from the primary side DC voltage rail 307. The primary side hold-up capacitor 370 may be, for example, a pair of electrolytic capacitors or other types of capacitors, but is not limited to these.
[0033] The primary side hold-up control switch 375 may be operable to control the discharge of the primary side hold-up capacitor 370 during AC power supply interruption. The primary side hold-up control switch 375 may be, for example, a metal-oxide-semiconductor field-effect transistor (MOSFET). The peak detector circuit 380 may start or stop the primary side hold-up control switch 375 based on a control pulse 356 received from the control circuit 350 via the isolation capacitor 390.
[0034] The control circuit 350 may determine that an AC power outage has occurred by monitoring the secondary voltage Vsec. If the secondary voltage Vsec is approximately equal to a specified threshold voltage, for example 3V or another voltage (for example, within the range of 100mV or another voltage value), the control circuit 350 may determine that an AC power outage has occurred. The control circuit 350, for example, the processor of the control circuit (for example, processor 210), may provide a first control signal 352 for enabling and disabling a third power supply 325 (for example, a 3.6V power supply) and a second control signal 354 for enabling and disabling a switch circuit 335. The switch circuit 335 may connect or disconnect power to an auxiliary circuit 340 of the electric meter 300. As used in this application, the auxiliary circuit represents any circuit that does not need to be operated during an AC power outage. During AC power supply interruption, the control circuit 350 may generate a second control signal 354 to the switch circuit 335 to disconnect power to the auxiliary circuit 340 of the electric meter 300, which does not need to be operated during AC power supply interruption.
[0035] Figure 4 is a simplified diagram showing a primary side hold-up circuit of an electric meter 400 according to some aspects of the present disclosure. The primary side hold-up circuit 360 may include a control circuit 350, a primary side hold-up capacitor 470, a primary side hold-up control switch 475, and a peak detector circuit 480. The primary side hold-up capacitor 470 can provide primary side hold-up energy to maintain the operation of the electric meter 400 and the AMR and / or AMI device (e.g., AMI radio device and / or AMR radio device 330) during AC power supply interruption. The primary side hold-up capacitor 470 may be, for example, a pair of electrolytic capacitors or other types of capacitors connected in parallel to provide sufficient capacity to store energy from the primary side DC voltage rail 407, but is not limited to these.
[0036] The primary side hold-up control switch 475 may be a field-effect transistor (FET) including an internal diode 477. The peak detector circuit 480 may include a capacitor and a resistor connected in parallel, and a resistor R1 connected in series with the reverse bias diode D1. Without departing from the scope of this disclosure, other configurations other than the primary side hold-up control switch and peak detector circuit may be used to control the charging and discharging of the primary side hold-up capacitor.
[0037] During normal operation when the electric meter 400 is powered from the AC main line, the primary capacitor C4 can operate the offline power supply 410 by providing a primary DC voltage on the primary DC voltage rail 407. The primary DC voltage may be, for example, 350 VDC or another voltage. The offline power supply 410 can charge the secondary hold-up capacitor C5 to its nominal operating voltage of approximately 12 VDC by generating a secondary voltage Vsec of approximately 12 VDC via the coupling inductor 415. Isolated feedback of the secondary DC voltage Vsec may be provided to the first power supply 410 via an isolation device 412, which includes, but is not limited to, an optical coupler or other isolation device. When the electric meter 400 is powered from the AC main line, the primary hold-up control switch 475 allows the primary hold-up capacitor 470 to be charged to the primary DC voltage via a path provided by the built-in diode 477.
[0038] The secondary hold-up capacitor C5 may provide only a small portion of the total hold-up energy for the operation of the electric meter 400, particularly the AMI radio and / or AMR radio, during AC power outages. The larger portion of the hold-up energy may be stored in the primary hold-up capacitor 470. The energy stored in the primary hold-up capacitor 470 may be released over a longer period of time, for example, 60 seconds or more, under the control of the control circuit 350.
[0039] During AC power outages, the primary hold-up capacitor 470 is no longer charged from the primary DC voltage. The primary hold-up control switch 475 may be in the off position, and the built-in diode 477 may be reverse-biased to prevent discharge of the primary hold-up capacitor 470. Thus, the hold-up energy stored in the primary hold-up capacitor 470 may be saved for later use. If power is not supplied by the AC main line, the offline power supply 410 may continue to operate from the primary DC voltage provided by the primary capacitor C4. The offline power supply 410 may continue to operate and charge the secondary capacitor C5 until the energy stored in the primary capacitor C4 is consumed, until the primary DC voltage is approximately equal to a specified threshold voltage, for example, about 60VDC or another voltage, which is less than the minimum operating voltage of the offline power supply 410. When the primary DC voltage is approximately equal to the specified threshold voltage, the offline power supply 410 may be turned off.
[0040] After the offline power supply 410 is turned off, the secondary capacitor C5 may provide the hold-up energy necessary for the operation of the electric meter 400, AMI or AMR equipment (e.g., AMI radio equipment and / or AMR radio equipment 330). As the energy stored in the secondary capacitor C5 is depleted, the secondary voltage Vsec may decrease over time. If the control circuit (e.g., control circuit 350) determines that the secondary voltage Vsec is approximately equal to a specified threshold voltage, e.g., about 3VDC or other threshold voltage (e.g., within the range of 100mV or other voltage values), the control circuit 350 may disable the AMI radio equipment and / or AMR radio equipment 330 via a first control signal 352 to the third power supply 325, or it may switch to a low-power mode, or it may generate a control pulse 456 that turns on the primary hold-up control switch 475. For example, the processor of the control circuit 350 (e.g., processor 210) may receive a sensor signal (e.g., from sensor 240) that detects the secondary voltage Vsec and generate a control pulse 456 when it is determined that the secondary voltage Vsec is approximately equal to a specified threshold. The control pulse 456 may be a pulse waveform having a specified frequency and duty cycle and may be connected to the peak detector circuit 480 via the line isolation capacitor 490. The primary hold-up control switch 475 may be turned on after a time period determined by the frequency and duty cycle of the control pulse 456.
[0041] The control pulse 456 received by the peak detector circuit 480 may charge the detector capacitor C3 in the peak detector circuit 480. When the voltage across the detector capacitor C3 reaches the turn-on threshold voltage, the primary side hold-up control switch 475 may be turned on, causing the primary side hold-up capacitor 470 to provide a portion of its stored energy to the primary side DC voltage rail 407. The energy provided by the primary side hold-up capacitor 470 may increase the voltage across the primary side DC voltage rail 407 until it exceeds the minimum turn-on voltage, thereby turning on the offline power supply 410. The offline power supply 410 may again charge the secondary side capacitor C5 by generating a secondary side voltage Vsec.
[0042] If the voltage Vsec across the secondary capacitor C5 exceeds a first specified threshold voltage, for example, about 3VDC or another voltage, the control circuit may activate and monitor the secondary voltage Vsec. The control circuit may remain idle until it determines that the voltage Vsec across the secondary capacitor C5 exceeds a second specified threshold voltage, for example, about 8VDC or another voltage. If the control circuit determines that the secondary voltage Vsec has exceeded the second threshold voltage, it may enable the AMI radio and / or AMR radio (for example, via the first control signal 352) and / or disable the control pulse. For example, the processor of the control circuit 350 (for example, processor 210) may receive a sensor signal (for example, from sensor 240) and disable the control pulse 456 when it determines that the secondary voltage Vsec has exceeded the second specified threshold voltage. The primary side hold-up control switch 475 may remain in the ON state, and the primary side hold-up capacitor 470 may continue to supply energy to the primary side DC voltage rail 407 until the charge stored in the detector capacitor C3 decreases to the point where the voltage across the detector capacitor C3 falls below the turn-on threshold voltage of the primary side hold-up control switch 475.
[0043] If the voltage across the detector capacitor C3 discharges (through resistor R3) to a level below the turn-on threshold voltage of the primary side hold-up control switch 475, the primary side hold-up control switch 475 may be turned off, and the primary side hold-up capacitor 470 no longer needs to supply energy to the primary side DC voltage rail 407. Turning off the primary side hold-up control switch 475 can conserve the energy stored in the primary side hold-up capacitor 470. The offline power supply 410 may continue to operate to charge the secondary side capacitor C5 until the energy stored in the primary side capacitor C4 is depleted and the primary side DC voltage is again approximately equal to a specified threshold voltage below the minimum operating voltage of the offline power supply 410. The charge / discharge cycle may continue until the hold-up energy previously stored in the primary side hold-up capacitor 470 is depleted.
[0044] Aspects of this disclosure can provide increased hold-up energy to give an electric meter sufficient time to store state information and transmit it to a headend system, other power meters, or mobile devices. During normal operation, an electric meter may collect state information, including but not limited to voltage and current information, error conditions, etc. During an AC power outage, the collected state information may be stored and transmitted to the headend system during a “death” communication. In some cases, transmitting a death communication may involve several attempts. The disclosed embodiments can provide sufficient energy to power an electric meter to store information and transmit it via an AMI radio and / or AMR radio.
[0045] Figure 5 is a block diagram illustrating communication between an electric meter and a headend system according to some aspects of the present disclosure. Referring to Figure 5, electric meters 510, 520, and 530 may communicate with the headend system 540 via a communication link 550, or they may communicate with each other via a communication link 560. The headend system 540 may include a server 545 configured to communicate with the electric meters 510, 520, and 530 via a network, such as an Advanced Metering Infrastructure (AMI) network. Each electric meter 510, 520, and 530 may communicate meter information and data to other electric meters and to the server 545 in the headend system 540. In some cases, an electric meter, such as electric meter 520, may be too far away to communicate directly with the headend system 540. In such cases, electric meter 520 may communicate with the headend system 540 via another electric meter, such as electric meter 510. In some cases, the electric meters 510, 520, and 530 may communicate meter information and data to a mobile device 570, such as a mobile phone, laptop computer, or other mobile device.
[0046] In some cases, communication between the electric meter and the headend system may be conducted via an additional network (not shown). Additionally or alternatively, the electric meter may communicate with one or more edge processing units that are topologically closer to the electric meter than the headend system. The edge processing units may have more processing capabilities than the electric meter and may provide some of the capabilities typically provided by the headend system.
[0047] Electric meters 510, 520, and 530 may exchange meter information and data by communicating with each other via a communication link 560. For example, if electric meter 510 experiences a loss of line voltage, electric meter 510 may communicate with electric meters 520 and 530 to determine whether the fault occurred locally with respect to electric meter 510 or whether the fault is a broader disruption caused by a general condition. A general condition might be, for example, a power line that has gone down due to a storm. The general condition may then be reported to the headend system by one or more of the electric meters. Additionally or alternatively, an edge processing unit may receive data from the electric meters and determine whether the data indicates a general condition affecting the electric meters.
[0048] Figure 6 is a flowchart of a method 600 for operating an electric meter during an AC power outage, according to some aspects of the present disclosure. Referring to Figures 3, 4, and 6, it may be determined in block 610 whether or not an AC power outage has occurred. If an AC power outage has occurred, the first power source (e.g., offline power source 310) may cease to function to supply a secondary voltage Vsec. The control circuit (e.g., control circuit 350) may determine that the secondary voltage Vsec is approximately equal to a threshold voltage, e.g., 3VDC or another voltage (e.g., within the range of 100mV or another voltage value). In response to the determination that no AC power outage has occurred (610-N), the control circuit may continue to monitor the secondary voltage Vsec.
[0049] In response to the determination that an AC power outage has occurred (610-Y), in block 615, non-essential circuits in the electric meter may be disabled. The control circuit may disconnect any additional circuits (e.g., auxiliary circuits 340) that are not essential to the operation of the electric meter during an AC power outage by activating a switch circuit (e.g., switch circuit 335 via control signal 354).
[0050] In block 620, the control circuit may disable the AMI radio and / or AMR radio. In some embodiments, the control circuit may transition the AMI radio and / or AMR radio to “death” mode via a control signal 352 to three power supplies 325 that supply power to the AMI radio and / or AMR radio. In death message mode, the radio may transmit a death message that includes a notification of the AC power supply being cut off and other information about when power is lost (e.g., energy usage, error conditions, or other electric meter information). In some embodiments, the control circuit may disable the AMI radio and / or AMR radio via the control signal 352. The control circuit (e.g., the processor 210 of the control circuit) may transition to a low-power state.
[0051] In block 625, the control circuit may initiate a control pulse (e.g., control pulse 456) to a peak detector circuit (e.g., peak detector circuit 480). The processor of the control circuit 350 (e.g., processor 210) may receive a sensor signal (e.g., from sensor 240) and generate a control pulse 456 when it determines that the secondary voltage Vsec is approximately equal to a specified threshold voltage (e.g., within the range of 100mV or other voltage values). The control pulse 456 may have a specified frequency and duty cycle and may be connected to the peak detector circuit 480 via a line isolation capacitor 490.
[0052] In block 630, a primary side hold-up control switch (e.g., primary side hold-up control switch 475) may be turned on. A control pulse received by the peak detector circuit may cause the peak detector circuit to turn on the primary side hold-up control switch. When the primary side hold-up control switch is turned on, primary side hold-up capacitors (e.g., primary side hold-up capacitor 470) may supply a portion of their stored energy to the primary side DC voltage rail (e.g., primary side DC voltage rail 407).
[0053] In block 635, it may be determined whether the voltage on the primary DC rail has increased to a voltage sufficient to operate the first power supply (e.g., the offline power supply 410). In response to the determination that the voltage on the primary DC rail has not increased to a voltage sufficient to operate the first power supply (635-N), the energy of the primary hold-up capacitor may be depleted and the process may end (block 640).
[0054] In response to determining that the voltage on the primary DC rail has increased to a voltage sufficient to operate the first power supply (635-Y), in block 645, the first power supply may start operating again to supply the secondary voltage Vsec.
[0055] In block 650, it may be determined whether the secondary voltage Vsec exceeds a first specified threshold. While in a low-power state, the control circuit may monitor the secondary voltage Vsec to determine whether it exceeds a first specified threshold, for example, about 3VDC or another voltage. In response to determining that the secondary voltage Vsec does not exceed the first specified threshold (650-N), the control circuit may continue to monitor the secondary voltage.
[0056] In response to the determination that the secondary voltage Vsec exceeds a first specified threshold (650-Y), in block 655, the control circuit may be activated to continue monitoring the secondary voltage Vsec.
[0057] In block 660, it may be determined whether the secondary voltage exceeds a second specified threshold voltage, for example, 8VDC or another voltage. In response to the determination that the secondary voltage Vsec does not exceed the second specified threshold voltage (660-N), the control circuit may continue to monitor the secondary voltage.
[0058] In response to the determination that the secondary voltage Vsec exceeds a second specified threshold voltage (660-Y), in block 665, the control circuit may cause the AMI radio and / or AMR radio (e.g., the AMI radio and / or AMR radio 330) to attempt a final communication to the headend system.
[0059] In block 670, the control pulse may be turned off. The control circuit (e.g., the processor 210 of the control circuit) may disable the control pulse to the peak detector circuit. If the control pulse to the peak detector circuit is disabled, the primary side hold-up control switch may remain on, and the primary side hold-up capacitor may continue to supply energy to the primary side DC voltage rail until the charge stored by the peak detector capacitor decreases and the voltage applied to the primary side hold-up control switch falls below the turn-on threshold voltage of the primary side hold-up control switch. Turning off the primary side hold-up control switch prevents the primary side hold-up capacitor from supplying energy to the primary side DC voltage rail, thereby saving energy stored in the primary side hold-up capacitor.
[0060] In block 675, the control circuit may continue to monitor the secondary voltage Vsec, and processing may continue in block 610.
[0061] The specific steps shown in Figure 6 provide a specific method for operating an electric meter during an AC power outage, according to an embodiment of this disclosure. According to alternative embodiments, other sequences of steps may be performed. For example, alternative embodiments may perform the steps outlined above in a different order. Furthermore, each step shown in Figure 6 may include multiple substeps that can be appropriately performed in various sequences. Additionally, depending on the specific application, additional steps may be added or removed.
[0062] While embodiments of this disclosure have been illustrated and described with respect to an electric meter as an example, embodiments of this disclosure may also be applied to other supply and demand meters, including but not limited to water meters and gas meters, without departing from the scope of this disclosure.
[0063] The examples and embodiments described herein are for illustrative purposes only. In this regard, various modifications and variations will become apparent to those skilled in the art. These should be included within the spirit and scope of this application and the attached claims.
Claims
1. A supply and demand meter equipped with a rectifier and a primary side hold-up circuit, The above rectifier is configured to rectify the alternating current (AC) voltage from the power grid to generate a primary direct current (DC) voltage source. The above primary side hold-up circuit is, One or more first capacitors connected to the primary DC voltage rail and configured to store energy from the primary DC voltage source, A switch connected to one or more of the above-mentioned first capacitors, Includes a control circuit configured to control the above-mentioned primary side hold-up circuit, The above control circuit is, The secondary DC voltage of the secondary voltage source drawn from the primary DC voltage source is determined to be approximately equal to the first specified threshold voltage. The above switch is turned on to generate a control signal that causes a portion of the energy stored in the one or more first capacitors to be released from the one or more first capacitors to the primary DC voltage rail. The above supply and demand meter further comprises a first power supply connected to the primary DC voltage rail and configured to convert the primary DC voltage of the primary DC voltage source to the secondary DC voltage, The first power supply described above is further configured to stop operating when the primary DC voltage is approximately equal to a specified threshold voltage. The first power supply described above is further configured to resume operation in response to the one or more first capacitors releasing a portion of the energy to the primary DC voltage rail, When the first power supply restarts operation and the secondary DC voltage exceeds the second specified threshold voltage, the control circuit stops the control signal. Supply and demand meter.
2. The system further comprises a detection circuit connected to the above switch and configured to control the switch based on a control signal from the above control circuit. The supply and demand meter according to claim 1.
3. The above control signal is a pulse waveform, The above detection circuit is configured to receive the above control signal and turn on the above switch after a time period determined by the frequency and duty cycle of the pulse waveform. The supply and demand meter according to claim 2.
4. The above-mentioned supply and demand meter further comprises a wireless device configured to transmit communications, including AC power supply interruption notifications, to a receiver. The control circuit is further configured to generate a signal to the radio device to switch the radio device to low-power mode during a transmission attempt, when it is determined that the secondary DC voltage is approximately equal to the first specified threshold voltage. The supply and demand meter according to claim 1.
5. The above receiver includes a headend system, other supply and demand meters, or a mobile device. The supply and demand meter according to claim 4.
6. The above supply and demand meter further comprises a switching circuit configured to disconnect the auxiliary circuit of the supply and demand meter based on a signal received from the above control circuit. The control circuit is further configured to generate a signal to the switching circuit when it is determined that the secondary DC voltage is approximately equal to the first specified threshold voltage. The supply and demand meter according to claim 1.
7. The above switch is equipped with a metal-oxide-semiconductor field-effect transistor (MOSFET). The supply and demand meter according to claim 1.
8. A primary side hold-up circuit for a supply and demand meter, wherein the primary side hold-up circuit comprises: One or more first capacitors connected to a primary DC voltage rail and configured to store energy from a primary DC voltage source, A switch connected to one or more of the above-mentioned first capacitors, The system includes a control circuit configured to control the primary side hold-up circuit described above, The above control circuit is, It is determined that the secondary DC voltage converted from the primary DC voltage of the above primary DC voltage source is approximately equal to a first specified threshold voltage. The above switch is turned on to generate a control signal that causes a portion of the energy stored in the one or more first capacitors to be released from the one or more first capacitors to the primary DC voltage rail. The above control circuit is, When the primary DC voltage is equal to the first specified threshold voltage, the wireless device of the supply and demand meter is disabled. The wireless device of the supply and demand meter is further configured to enable the wireless device of the supply and demand meter when the secondary DC voltage exceeds a second specified threshold voltage by releasing a portion of the energy stored in one or more of the first capacitors to the primary DC voltage rail. Primary side hold-up circuit.
9. The above control circuit is configured to generate the above control signal when it is decided to stop the supply of alternating current (AC) voltage from the power grid. The control circuit determines to shut off the power supply when the secondary DC voltage is approximately equal to the first specified threshold voltage. The primary side hold-up circuit according to claim 8.
10. The system further comprises a detection circuit connected to the above switch and configured to control the switch based on a control signal from the above control circuit. The primary side hold-up circuit according to claim 8.
11. The above control signal is a pulse waveform, The above detection circuit is configured to receive the above control signal and turn on the above switch after a time period determined by the frequency and duty cycle of the pulse waveform. The primary side hold-up circuit according to claim 10.
12. The above supply and demand meter further comprises a switching circuit configured to disconnect the auxiliary circuit from the secondary DC voltage source based on the signal received from the above control circuit. The control circuit is further configured to generate a signal to the switching circuit when it is determined that the secondary DC voltage is approximately equal to the first specified threshold voltage. The primary side hold-up circuit according to claim 8.
13. The above switch is equipped with a metal-oxide-semiconductor field-effect transistor (MOSFET). The primary side hold-up circuit according to claim 8.
14. A method for operating a power supply meter during a power outage, wherein the above method is Based on the detection by the control circuit that the secondary DC voltage drawn from the AC power grid is approximately equal to a first specified threshold DC voltage, it is determined that a power outage has occurred in the AC power grid. The control circuit includes generating a control signal to a primary side hold-up circuit comprising one or more first capacitors connected to a primary side DC voltage rail and configured to store energy from a primary side voltage source, and a switch connected to the one or more first capacitors. The above control signal causes the one or more first capacitors connected to the primary DC voltage rail to release energy via the switch. The energy released into the primary DC voltage rail generates a secondary voltage. The above method further includes stopping the control signal if the secondary voltage exceeds a second specified threshold voltage. method.
15. The method further includes generating a second control signal when the secondary voltage exceeds the second specified threshold voltage, The second control signal described above can be operated to activate the wireless device. The method according to claim 14.
16. The switching power supply is further activated if the voltage in the primary DC voltage rail exceeds a specified threshold voltage due to energy released from one or more first capacitors. The method according to claim 14.
17. The above control circuit switches to low-power mode before generating a control signal to the primary side hold-up circuit. The method according to claim 14.
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