The present invention relates generally to electric meters and more particularly to load-side voltage detection via electric metering processing.
Electric meters are typically implemented with disconnect switches that allow the meters to remain installed upon activation, but remove electrical service from customers that are attached to the meters. Typically, a disconnect switch is implemented under the cover of the electric meter. Putting the disconnect switch under the cover of the electric meter with a two-way communication device enables remote activation of the switch, so that the electric service can be reconnected and disconnected. This obviates the need to send a meter technician out to the location of the customer to disconnect the electric service. When restoring the electric service to the customer via the disconnect switch, a technician needs to ascertain whether there is a voltage that is currently being supplied. Closing the disconnect switch into a load-side voltage can be potentially dangerous. For instance, closing the disconnect switch in the presence of a load-side voltage could seriously damage electrical equipment (e.g., a generator) that may be in use at the site of the customer. Typically, load-side voltage detection is performed by using extra circuitry that is implemented within the electric meter. This extra circuitry that is implemented within the electric meter is expensive, difficult to implement with other components associated with the electric meter, and oftentimes unreliable in detecting the presence or absence of a load-side voltage.
In one aspect of the present invention, a utility metering device is provided. The utility metering device comprises a load-side voltage detection circuit that detects load-side voltage. A metering processing unit receives the load-side voltage from the load-side voltage detection circuit and measures the voltage level of the detected load-side voltage. An application processing unit receives the measured voltage level from the metering processing unit and determines the presence of the load-side voltage from the measured voltage level.
In another aspect of the present invention, an energy meter is provided. In this aspect of the present invention, the energy meter comprises a service disconnect relay. A load-side voltage detection circuit is configured to detect load-side voltage. A metering processing unit is configured to receive the load-side voltage as an input from the load-side voltage detection circuit and measure magnitude of the detected load-side voltage. An application processing unit is configured to receive the measured magnitude of the detected load-side voltage from the metering processing unit and control operation of the service disconnect relay as a function of the measured magnitude.
In a third aspect of the present invention, a method for restoring an electric service is disclosed. In this aspect of the present invention, the method comprises: detecting a load-side voltage; inputting the load-side voltage to a metering processing unit; measuring magnitude of the load-side voltage; determining the presence of the load-side voltage as a function of the measured magnitude; and restoring the electric service in response to determining that the measured magnitude is indicative of the absence of load-side voltage.
Various embodiments of the present invention are directed to inputting load-side voltage into a metering processing unit to facilitate the process of determining whether or not to activate a service disconnect switch (e.g., a service disconnect relay) that is implemented with an electric meter. In one embodiment, a load-side voltage detection circuit provides load-side voltage to the metering processing unit. The meter processing unit determines the voltage level by measuring the magnitude of the voltage. An application processing unit receives the voltage level of the load-side voltage and determines whether the service disconnect relay should be activated. In particular, if the application processing unit determines that the voltage level is indicative of a presence of a load-side voltage, then the application processing unit keeps the service disconnect relay opened to prevent reconnection of the electric service. On the other hand, if the application processing unit determines that the voltage level is indicative of an absence or lack of a load-side voltage, then the application processing unit directs the closing of the disconnect switch to permit connection of the electric service. In another embodiment, a phase voltage circuit provides line-side voltage to the metering processing unit. In this embodiment, the metering processing unit uses the load-side voltage and the line-side voltage to facilitate a determination of the phase relationship between these voltages. The application processing unit uses the phase relationship between line-side voltage and the load-side voltage to determine if the electric service to a customer (e.g., a residence or business) has been altered. Technical effects of the various embodiments of the present invention include eliminating the need for additional circuitry which is expensive and unreliable in detecting for the presence of a load-side voltage. Other technical effects associated with the various embodiments of the present invention include the ability to detect whether electrical service to a customer has been tampered or altered.
Although various embodiments of the present invention are described with respect to use with an electric meter and electric utility service, the embodiments are not limited to use solely with these items. Those skilled in the art will recognize that the various embodiments of the present invention are suitable for use with other metering devices and utility services. A non-exhaustive list of other metering devices where the various embodiments of the present invention are suitable for use include gas, water and heat meters. Similarly, a non-exhaustive list of other utility services where the various embodiments of the present invention are suitable for use include gas, water and heat services.
Referring to the drawings,
As described herein, one function performed by electric meter 110 is to facilitate closing of a service disconnect relay in order to reconnect the electric service from utility provider 120 to a consumer via consumer utility line 130.
As described below, application processing unit 250 determines the presence or absence of a load-side voltage between the load side terminals (L1 wire and neutral N). If application processing unit 250 determines that there is a presence of a load-side voltage, then the application processing unit keeps a service disconnect relay 260 open, so that electricity is not reconnected from the utility provider 120 (
Referring back to
As mentioned above, additional inputs supplied into metering processing unit 200 includes current signals generated from current measurement device 220 and a line-side voltage from phase voltage measurement device 240. In one embodiment, current measurement device 220 may be a current transformer, however, those skilled in the art will recognize that other current measurement devices may be used such as for example, a shunt and a Rogowski coil. In one embodiment, phase voltage measurement device 240 may be a voltage divider that detects that detects line-side voltage. As used herein, line-side voltage is any voltage present between the line side terminals of electric meter 110 (
One of the processing functions performed by metering processing unit 200 includes ascertaining the voltage level of the load-side voltage inputted from load-side voltage detection circuit 210. In one embodiment, metering processing unit 200 determines the voltage level of the load-side voltage by determining the magnitude of this signal sent from load-side voltage detection circuit 210. The magnitude of the load-side voltage is sent from the metering processing unit 200 to the application processing unit 250, which determines the presence of the load-side voltage from the measured voltage level. If application processing unit 250 determines that the magnitude of the measured voltage level is indicative of a presence of a load-side voltage, then application processing unit keeps service disconnect relay 260 open in an open state. On the other hand, if application processing unit 250 determines that the magnitude of the voltage level is indicative of an absence or lack of a load-side voltage, then the application processing unit directs the closing of service disconnect relay 260 to a closing state so that electric service is reconnected. In one embodiment, a voltage level magnitude greater than a threshold (e.g., 10V) would be an indication of the presence of a load-side voltage, while a value below the threshold (e.g., 10V) would be an indication that there is an absence or lack of load-side voltage.
Another processing function performed by metering processing unit 200 includes facilitating a determination of a phase relationship between the load-side voltage provided by load-side voltage detection circuit 210 and the line-side voltage provided by phase voltage circuit 240. In one embodiment, metering processing 200 calculates a voltage quantity from which application processing unit 250 can determine the phase relationship by performing the following calculation:
V
line-load
2
h=Σ
k=1
N(Vline−Vload)2, where
Vline and Vload are line and load-side voltage samples respectively, N is the number of samples in a momentary interval, h is hours and k is the index for the summation.
The phase relationship is determined by application processing unit 250 in the following manner. If there is a load-side voltage present and V2line-loadh is above a first predefined threshold, then the line and load side voltages are out of phase. If a load-side voltage is present and V2line-loadh is below a second predefined threshold (the first and second predefined thresholds can have the same threshold and can also have a different threshold values), then the line and load side voltages are in phase. With this method, one can determine if the line and load side voltages are approximately 180 degrees out of phase, which can also indicate tampering. In one embodiment, application processing unit 250 can determine that the cause of the load-side voltage is an alternate source, such as for example, a customer's generator, or is the result of possible tampering by bypassing the switch based on this phase relationship. Based on this determination, a notification may be sent to a meter technician for follow-up with the customer via an output 270. In one embodiment, output 270 can generate a notification such as an email communication to the meter technician. In another embodiment, output 270 may generate a display having a message obtained from memory that indicates the possibility of tampering. In another embodiment, output 270 may generate an alert to other systems (e.g., an AMI card) coupled to electric meter 110 that indicate the possibility of tampering.
Those skilled in the art will recognize that electric meter 110 can perform more functions than those previously described herein. For instance, electric meter 110 can determine the total usage of the electric service by a consumer, the rate of usage of the service, the amount of electricity provided in watts. These are only a small listing of usage statistics that may be computed by electric meter 110. Other well-known statistics are within the scope of the various embodiments of the present invention.
For the sake of simplicity in illustrating various embodiments of the present invention, those skilled in the art will recognize that not all features and functionalities associated with electric meter 110 are illustrated in
Note that the processing functions described above (i.e., load-side voltage detection and electric service tampering) may be invoked upon a determination that there is a desire to continue supplying the electric service to a customer after some form of suspension in service. Before a technician can initiate the supply of the electric service to the customer, a determination has to be made that there is no load-side voltage present. In response to this desire to continue supplying the electric service to the customer, application processing unit 250 requests that metering processing unit 200 forward the voltage level of the signal provided by load-side voltage detection circuit 210.
The magnitude of the load-side voltage is sent from the metering processing unit 200 (
In another embodiment, electric meter 110 (
The foregoing flow chart of
In various embodiments of the present invention, electric meter 110 can be implemented in the form of an entirely hardware embodiment, an entirely software embodiment or an embodiment containing both hardware and software elements. In one embodiment, the processing functions performed by electric meter 110 may be implemented in software, which includes but is not limited to firmware, resident software, microcode, etc.
Furthermore, the processing functions performed by electric meter 110 can take the form of a computer program product accessible from a computer-usable or computer-readable medium providing program code for use by or in connection with a computer or any instruction execution system (e.g., processing units). For the purposes of this description, a computer-usable or computer readable medium can be any computer readable storage medium that can contain or store the program for use by or in connection with the computer, instruction execution system, apparatus, or device or a computer readable transmission medium that can communicate, propagate or transport the program for use by or in connection with the computer, instruction execution system, apparatus, or device.
The computer readable medium can be an electronic, magnetic, optical, electromagnetic, infrared, or semiconductor system (or apparatus or device) or a propagation medium. Examples of a computer-readable medium include a semiconductor or solid state memory, a random access memory (RAM), a read-only memory (ROM), a rigid magnetic disk and an optical disk. Current examples of optical disks include a compact disk—read only memory (CD-ROM), a compact disk—read/write (CD-R/W) and a digital video disc (DVD).
While the disclosure has been particularly shown and described in conjunction with a preferred embodiment thereof, it will be appreciated that variations and modifications will occur to those skilled in the art. Therefore, it is to be understood that the appended claims are intended to cover all such modifications and changes as fall within the true spirit of the disclosure.