US9891253B2 - Bluetooth-enabled intelligent electronic device - Google Patents
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- US9891253B2 US9891253B2 US13/968,584 US201313968584A US9891253B2 US 9891253 B2 US9891253 B2 US 9891253B2 US 201313968584 A US201313968584 A US 201313968584A US 9891253 B2 US9891253 B2 US 9891253B2
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R22/00—Arrangements for measuring time integral of electric power or current, e.g. electricity meters
- G01R22/06—Arrangements for measuring time integral of electric power or current, e.g. electricity meters by electronic methods
- G01R22/061—Details of electronic electricity meters
- G01R22/063—Details of electronic electricity meters related to remote communication
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- H04W76/023—
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R22/00—Arrangements for measuring time integral of electric power or current, e.g. electricity meters
- G01R22/06—Arrangements for measuring time integral of electric power or current, e.g. electricity meters by electronic methods
- G01R22/10—Arrangements for measuring time integral of electric power or current, e.g. electricity meters by electronic methods using digital techniques
Definitions
- the present disclosure relates generally to intelligent electronic devices for electrical power systems, and more particularly, to an intelligent electronic device having Bluetooth wireless communication capabilities for transmitting and receiving data without a hardwire connection.
- Electric utility companies track electric usage by customers by using power meters. These meters track the amount of power consumed at a particular location. These locations range from power substations, to commercial businesses, to residential homes. The electric utility companies use information obtained from the power meter to charge its customers for their power consumption, i.e. revenue metering.
- socket-type revenue power meter i.e., S-base or Type S meter.
- S-base the socket-type revenue power meter
- Type S meter the meter itself plugs into a socket for easy installation, removal and replacement.
- socket-type revenue meters have been employed in residential applications for monitoring energy consumption in homes.
- meter installations include panel mounted, switchboard mounted, and circuit breaker mounted.
- the power meter connects between utility power lines supplying electricity and a usage point, namely a residence or commercial place of business.
- a power meter may also be placed at a point within the utility's power grid, e.g., in a substation, to monitor power flowing through that point for distribution, power loss, or capacity monitoring.
- An intelligent electronic device e.g., an electrical power meter, having Bluetooth wireless communication capabilities for transmitting and receiving data without a hardwire connection.
- the Bluetooth speaking meter of the present disclosure auto-negotiates when someone having a Bluetooth-enabled device simply walks or drives near the meter. This allows a Bluetooth-enabled PDA or PC computer to automatically collect data quickly from the IED or meter and eliminate the need for a technician to execute code or physically read the meter.
- diversion metering e.g., reading a hidden installed meter on a poll to try to catch someone stealing electric
- socket-type revenue meters e.g., socket-type revenue meters and installed switchboard panel meters.
- utilities can significantly save cost and maintenance infrastructure by using off the shelf components and hand held PDAs to read meters. Thus, since costs are cut significantly, automating meter reading becomes a much more attractive alternative.
- an intelligent electronic device including at least one sensor coupled to an electric circuit configured for measuring at least one power parameter of the electrical circuit and generating at least one analog signal indicative of the at least one power parameter; at least one analog to digital converter coupled to the at least one sensor configured for receiving the at least one analog signal and converting the at least one analog signal to at least one digital signal; a processor configured for receiving the at least one digital signal and calculating energy consumption data in the electrical circuit; and a transceiver configured for receiving the calculated energy consumption data from the processor and transmitting the calculated energy consumption data via a spread-spectrum frequency hopping technique.
- the intelligent electronic device further includes a memory for storing at least one protocol stack for enabling the spread-spectrum frequency hopping technique.
- the at least one protocol stack is a Bluetooth protocol stack.
- a method for collecting data from an intelligent electronic device includes transmitting a first request for a communication session with the intelligent electronic device; receiving a second request from the intelligent electronic device for a passkey previously stored in the intelligent electronic device; transmitting the passkey to the intelligent electronic device; and in response to passkey, receiving data from the intelligent electronic device.
- a system for collecting data from at least one intelligent electronic device includes at least one intelligent electronic device including at least one sensor coupled to an electric circuit configured for measuring at least one power parameter of the electrical circuit and generating at least one analog signal indicative of the at least one power parameter; at least one analog to digital converter coupled to the at least one sensor configured for receiving the at least one analog signal and converting the at least one analog signal to at least one digital signal; a processor configured for receiving the at least one digital signal and calculating energy consumption data in the electrical circuit; and a transceiver configured for receiving the calculated energy consumption data from the processor and transmitting the calculated energy consumption data via a spread-spectrum frequency hopping technique; and a data collection device configured for receiving the calculated energy consumption data from the at least one intelligent electronic device in response to supplying a pairing passkey to the intelligent electronic device.
- FIG. 1 is a diagram of an intelligent electronic device in accordance with an embodiment of the present disclosure
- FIG. 2 is a system for wirelessly reading at least one meter according to an embodiment of the present disclosure
- FIG. 3 is a flow chart illustrating a method for collecting revenue metering data from a plurality of intelligent electronic devices in accordance with the present disclosure
- FIG. 4 is illustrates the overall flow of data in a system for retrieving revenue metering data from a plurality of IEDs in accordance with the present disclosure.
- FIG. 5 is a system for wirelessly reading at least one meter according to another embodiment of the present disclosure.
- intelligent electronic devices include Programmable Logic Controllers (“PLC's”), Remote Terminal Units (“RTU's”), electric power meters, protective relays, fault recorders and other devices which are coupled with power distribution networks to manage and control the distribution and consumption of electrical power.
- a meter is a device that records and measures power events, power quality, current, voltage waveforms, harmonics, transients and other power disturbances.
- Revenue accurate meters (“revenue meter”) relate to revenue accuracy electrical power metering devices with the ability to detect, monitor, report, quantify and communicate power quality information about the power which they are metering.
- Exemplary intelligent electronic devices are disclosed and described in the following commonly owned U.S. issued patents and published applications: U.S. Pat. No.
- FIG. 1 An intelligent electronic device (IED) 10 for monitoring and determining an amount of electrical power usage by a consumer and for providing audible and visual indications to a user is illustrated in FIG. 1 .
- the IED 10 includes sensors 12 , a plurality of analog-to-digital (A/D) converters 14 and a processing system including a central processing unit (CPU) 18 and/or a digital signal processor (DSP) 16 .
- the sensors 12 will sense electrical parameters, e.g., voltage and current, of the incoming lines from an electrical power distribution system.
- the sensors will include current transformers and potential transformers, wherein one current transformer and one voltage transformer will be coupled to each phase of the incoming power lines.
- a primary winding of each transformer will be coupled to the incoming power lines and a secondary winding of each transformer will output a voltage representative of the sensed voltage and current.
- the output of each transformer will be coupled to the A/D converters 14 configured to convert the analog output voltage from the transformer to a digital signal that can be processed by the CPU 18 or DSP 16 .
- the CPU 18 is configured for receiving the digital signals from the A/D converters 14 to perform the necessary calculations to determine the power usage and controlling the overall operations of the IED 10 .
- the DSP 16 will receive the digital signals from the A/D converters 14 and perform the necessary calculations to determine the power usage to free the resources of the CPU 18 . It is to be appreciated that in certain embodiments the CPU 18 may perform all the functions performed by the CPU 18 and DSP 16 , and therefore, in these embodiments the DSP 16 will not be utilized.
- a power supply 20 is also provided for providing power to each component of the IED 10 .
- the power supply 20 is a transformer with its primary windings coupled to the incoming power distribution lines and having an appropriate number of windings to provide a nominal voltage, e.g., 5 VDC, at its secondary windings.
- power is supplied from an independent source to the power supply 20 , e.g., from a different electrical circuit, an uninterruptible power supply (UPS), etc.
- UPS uninterruptible power supply
- the IED 10 of the present disclosure will include a multimedia user interface 24 for interacting with a user and for communicating events, alarms and instructions to the user.
- the user interface 24 will include a display for providing visual indications to the user.
- the display may include a touch screen, a liquid crystal display (LCD), a plurality of LED number segments, individual light bulbs or any combination of these.
- the display may provide the information to the user in the form of alpha-numeric lines, computer-generated graphics, videos, animations, etc.
- the user interface 24 will also include a speaker or audible output means for audibly producing instructions, alarms, data, etc.
- the speaker will be coupled to the CPU 18 via a digital-to-analog converter (D/A) for converting digital audio files stored in a memory 22 to analog signals playable by the speaker.
- D/A digital-to-analog converter
- An exemplary interface is disclosed and described in commonly owned co-pending U.S. application Ser. No. 11/589,381, entitled “INTELLIGENT ELECTRONIC DEVICE HAVING AUDIBLE AND VISUAL INTERFACE”, which claims priority to U.S. Provisional Patent Appl. No. 60/731,006, filed Oct. 28, 2005, the contents of which are hereby incorporated by reference in their entireties.
- the IED 10 of the present disclosure will support various file types including but not limited to Microsoft Windows Media Video files (.wmv), Microsoft Photo Story files (.asf), Microsoft Windows Media Audio files (.wma), MP3 audio files (.mp3), JPEG image files (.jpg, .jpeg, .jpe, jfif), MPEG movie files (.mpeg, .mpg, .mpe, .m1v, .mp2v .mpeg2), Microsoft Recorded TV Show files (.dvr-ms), Microsoft Windows Video files (.avi) and Microsoft Windows Audio files (.wav).
- Microsoft Windows Media Video files .wmv
- Microsoft Photo Story files .asf
- Microsoft Windows Media Audio files .wma
- MP3 audio files .mp3 audio files
- JPEG image files .jpg, .jpeg, .jpe, jfif
- MPEG movie files .mpeg, .mpg, .mpe, .
- memory 22 will store the sensed and generated data for further processing and for retrieval when called upon to be displayed at the IED 10 or from a remote location.
- the memory 22 includes internal storage memory, e.g., random access memory (RAM), or removable memory such as magnetic storage memory; optical storage memory, e.g., the various known types of CD and DVD media; solid-state storage memory, e.g., a CompactFlash card, a Memory Stick, SmartMedia card, MultiMediaCard (MMC), SD (Secure Digital) memory; or any other memory storage that exists currently or will exist in the future.
- RAM random access memory
- removable memory such as magnetic storage memory
- optical storage memory e.g., the various known types of CD and DVD media
- solid-state storage memory e.g., a CompactFlash card, a Memory Stick, SmartMedia card, MultiMediaCard (MMC), SD (Secure Digital) memory
- MMC MultiMediaCard
- SD Secure Digital
- the IED 10 will include a transceiver 26 for enabling wireless communications between the IED 10 and other computing devices, e.g., a desktop computer, laptop computer, other IEDs, etc.
- the transceiver 26 will include an antenna for wirelessly transmitting and receiving data and a Bluetooth chipset for decoding data received by the antenna and for encoding data to be transmitted by the antenna.
- the antenna may be disposed internally to the IED or mounted externally on the IED.
- the transceiver 26 will operate in accordance with the Bluetooth standard developed by the Bluetooth Special Interest Group (SIG).
- SIG Bluetooth Special Interest Group
- the transceiver 26 will communicate on a frequency of about 2.45 gigahertz, and in a range of about 2.402 GHz to about 2.480 GHz, and employ a spread-spectrum frequency hopping technique to avoid interference with other Bluetooth-enabled devices.
- the transceiver will use 79 individual, randomly chosen frequencies within a designated range, changing frequencies 1600 times every second. This technique will minimize the risk the transceiver 26 will interfere with other Bluetooth-enabled devices, e.g., other IEDs or devices within a home when the IED is used in a residential application.
- a Bluetooth protocol stack 27 may include a link management protocol (LMP), a logical link control and application protocol (L2CAP), a service discovery protocol (SDP), RFCOMM (i.e., a serial line emulation protocol), link manager (LM), and/or the like.
- LMP link management protocol
- L2CAP logical link control and application protocol
- SDP service discovery protocol
- RFCOMM i.e., a serial line emulation protocol
- LMP link management protocol
- SDP service discovery protocol
- RFCOMM i.e., a serial line emulation protocol
- LMP link management protocol
- SDP service discovery protocol
- RFCOMM i.e., a serial line emulation protocol
- LM link manager
- L2CAP provides multiplexing, packet segmentation and reassembly of data as it is communicated between the client and other Bluetooth enabled devices.
- RFCOMM is a serial line emulation protocol that enables Bluetooth devices to intercommunicate by emulating a serial line.
- LMP and L2CAP run directly on top of base band.
- RFCOMM and SDP run on top of L2CAP.
- Bluetooth protocol stacks are known in the art and the above described protocol stack is in accordance with at least the IEEE 802.15.1 standard which is directed to a Wireless Personal Area Network standard based on the Bluetooth v1.1 specifications.
- the IEEE 802.15.1 standard also includes a medium access control and physical layer specification.
- the IEEE 802.15.1 standard is incorporated by reference.
- an exemplary Bluetooth protocol stack is disclosed and described in U.S. Pat. No. 7,123,878, which is hereby incorporated by reference in its entirety.
- the memory 22 will further include a cryptographic module 28 including stored instruction signals that is executed by the CPU 18 , a cryptographic processor, and/or the like.
- cryptographic processor interfaces will allow for expedition of encryption and/or decryption requests by the cryptographic module 28 ; however, the cryptographic module 28 , alternatively, may run on a conventional CPU.
- the cryptographic module 28 allows for the encryption and/or decryption of provided data.
- the cryptographic module 28 allows for both symmetric and asymmetric (e.g., Pretty Good Protection (PGP)) encryption and/or decryption.
- PGP Pretty Good Protection
- the cryptographic module 28 allows conventional cryptographic techniques such as, but not limited to: digital certificates (e.g., X.509 authentication framework), digital signatures, dual signatures, enveloping, password access protection, public key management, and/or the like.
- digital certificates e.g., X.509 authentication framework
- digital signatures e.g., digital signatures
- dual signatures enveloping
- password access protection e.g., password access protection
- public key management e.g., password management, and/or the like.
- the cryptographic module 28 will facilitate numerous (encryption and/or decryption) security protocols such as, but not limited to: checksum, Data Encryption Standard (DES), Elliptical Curve Encryption (ECC), International Data Encryption Algorithm (IDEA), Message Digest 5 (MD5, which is a one way hash function), passwords, RC5 (Rivest Cipher), Rijndael, RSA (which is an Internet encryption and authentication system that uses an algorithm developed in 1977 by Ron Rivest, Adi Shamir, and Leonard Adleman), Secure Hash Algorithm (SHA), Secure Socket Layer (SSL), Secure Hypertext Transfer Protocol (HTTPS), and/or the like.
- DES Data Encryption Standard
- ECC Elliptical Curve Encryption
- IDEA International Data Encryption Algorithm
- MD5 Message Digest 5
- RC5 Raster Cipher
- Rijndael Rijndael
- the cryptographic module 28 facilitates the process of “security authorization” whereby access to a resource is inhibited by a security protocol wherein the cryptographic module 28 effects authorized access to the secured resource.
- the cryptographic module 28 may communicate to and/or with other modules in a module collection, including itself, and/or facilities of the like.
- the cryptographic module 28 supports encryption schemes allowing for the secure transmission of information across a communications network to enable a client to engage in secure transactions if so desired by users.
- the cryptographic module 28 facilitates the secure accessing of resources on a client and facilitates the access of secured resources on remote systems; i.e., it may act as a client and/or server of secured resources.
- the cryptographic module 28 communicates with information servers, operating systems, other program modules, and/or the like.
- the cryptographic module 28 may contain, communicate, generate, obtain, and/or provide program module, system, user, and/or data communications, requests, and/or responses.
- a cryptographic tool may be provided as a library within the operating system accessible to all other modules in a module collection through an application program interface (API).
- API application program interface
- the IED 10 also includes an operating system and micro instruction code.
- the various processes and functions described herein may either be part of the micro instruction code or part of an application program (or a combination thereof) which is executed via the operating system.
- a system for wirelessly accessing at least one IED 10 , 110 , 210 is illustrated.
- reading personnel 32 e.g., a technician from a utility
- a Bluetooth-enabled device 30 for accessing data in the IED.
- the device 30 may be a laptop computer, a PDA, a mobile phone, etc.
- the device 30 and at least one IED 10 auto-negotiates and forms a network, e.g., a piconet 36 .
- the at least one IED 10 includes an address established by the utility so the device 30 knows the IED 10 is a meter to be read.
- the device 30 will ignore signals from other piconets, e.g., a piconet 38 established between a Bluetooth-enabled computer and Bluetooth-enabled printer within the home 34 .
- the device 30 will auto-negotiate with each of these IEDs 110 , 210 and add them to the established piconet 36 .
- the device 30 will receive data, e.g., energy consumption, from each IED without physically connecting to each device 10 , 110 , 210 or getting close enough to the device to read face-to-face.
- reading personnel 32 may read a plurality of the IEDs by simply walking within an established range of each IED. Furthermore, in a residential application where a series of homes are located along a street, the reading personnel may simply drive along the street with a Bluetooth-enabled device in the vehicle and read a large number of IEDs rapidly.
- the IED may include a separate power supply (not shown) for supplying power to the transceiver 26 at a level other than the power level supplied by power supply 20 . It is to be appreciated that increasing the power output level of the transceiver 26 will increase its communication range.
- the transceiver power supply may be a variable power supply enabling each IED to have a settable transmission range.
- the transceiver 26 will employ authentication and encryption for securely transmitting data and preventing tampering. It is also to be appreciated that the IEDs will employ SCO (synchronous connection oriented) type data transmission so in addition to transmitting data from the IED, the IED will be able to receive data from a Bluetooth-enabled device, e.g., to receive a software upgrade. In other embodiments, the transceiver 26 will also employ ACL (asynchronous connectionless) type data transfer.
- SCO synchronous connection oriented
- ACL asynchronous connectionless
- reading device 30 is configured as a data collection device or mobile billing device (MBD).
- MBD mobile billing device
- the mobile billing device will retrieve revenue metering data from a plurality of Bluetooth-enabled IEDs configured in accordance with the present disclosure.
- the mobile billing device will contain a computer processing module, e.g., a microprocessor that will use computer software instructions that have been programmed into the module and conventional computer processing power to interact and organize the traffic flow between various other modules, e.g., a memory module, communications module, etc.
- the mobile billing device also includes an operating system and micro instruction code preferably residing in read only memory (ROM) (not shown).
- exemplary operating systems include but are not limited to SymbianOS, Windows Mobile/Windows CE, Palm OS, Linux, Blackberry OS, BREW, etc. which have been developed for mobile computing applications and can handle both data computing and communication applications, e.g., voice communications.
- an IED 10 and mobile billing device 30 may establish a trusted relationship by learning (e.g., by user input) a shared secret known as a “passkey”.
- a device that wants to communicate only with a trusted device can cryptographically authenticate the identity of the other device.
- Trusted devices may also encrypt the data that they exchange over the air so that no one can listen in. The encryption can however be turned off and passkeys are stored on the device's file system and not the Bluetooth transceiver itself. Since a Bluetooth address is permanent, a pairing will be preserved even if the Bluetooth name is changed. Devices will generally require pairing or will prompt the user before it allows a remote device to use any or most of its services.
- the mobile billing device (MBD) 30 will load a billing module 122 corresponding to a particular geographic location.
- the billing module 122 will include a database having a plurality of records relating to IEDs 10 in a known location.
- the database of the billing module will include but is not limited to data such as an IED identifier 124 , e.g., an address or name of the IED, a location 126 of the IED, a passkey 128 associated with the IED and a record field 130 for storing revenue metering data relating to an IED.
- an operator of the MBD 30 e.g., a meter reader, will come into close proximity with at least one IED 10 to auto-negioate with the IED 10 (step 104 ).
- the IED 10 will request a passkey to determine if a valid pairing was established (step 106 ).
- the MBD 30 will retrieve a passkey 128 associated with the IED identifier 124 and transmit the passkey to the IED (step 108 ).
- the IED 10 will then authenticate the MBD 30 and transfer the revenue billing data stored in memory, e.g., memory 22 , to the MBD 30 (step 112 ).
- the MBD 30 will then store the revenue metering data in the billing module 122 in the record field 130 .
- step 116 the MBD 30 will end the session with the IED and will determine if any other IEDs are available (step 118 ). If other IEDs are available, the MBD 30 will process the other IEDs by repeating the above described process from step 104 ; otherwise, the process will end in step 120 .
- a utility operator can retrieve revenue meter information from a large number of end users, e.g., residential consumer, by simply coming into close proximity of each IED without making direct physical contact or being close enough to the IED to read information from its display or interface. In this manner, a large number of IEDs can be read in a relatively short period of time.
- the data collected in the billing module 122 can then be uploaded to a computer and manipulated to create invoices for individual end users.
- the MBD 30 will upload the collected data by hardwired synchronization with the computer and/or upload the collected data to a remote server 204 over a communications network 202 , e.g., the Internet, by any known means, for example, a hardwired or wireless connection, such as dial-up, hardwired, cable, DSL, satellite, cellular, PCS, wireless transmission (e.g., 802.11a/b/g), etc., as shown in FIG. 5 .
- a hardwired or wireless connection such as dial-up, hardwired, cable, DSL, satellite, cellular, PCS, wireless transmission (e.g., 802.11a/b/g), etc., as shown in FIG. 5 .
- the network 202 may be a local area network (LAN), wide area network (WAN), the Internet or any known network that couples a plurality of computers to enable various modes of communication via network messages.
- the server and MBD 30 will communicate using the various known protocols 208 such as Transmission Control Protocol/Internet Protocol (TCP/IP), File Transfer Protocol (FTP), Hypertext Transfer Protocol (HTTP), etc. and secure protocols such as Internet Protocol Security Protocol (IPSec), Point-to-Point Tunneling Protocol (PPTP), Secure Sockets Layer (SSL) Protocol, etc.
- TCP/IP Transmission Control Protocol/Internet Protocol
- FTP File Transfer Protocol
- HTTP Hypertext Transfer Protocol
- SSL Secure Sockets Layer
- the MBD 20 will operate on the wireless GPRS (General Packet Radio Service) data protocol or a 3G protocol such as W-CDMA, CDMA2000 and TD-SCDMA, both of which have the ability to carry both voice and data over the same service.
- GPRS General Packet Radio Service
- 3G protocol such as W-CDMA, CDMA2000 and TD-SCDMA, both of which have the ability to carry both voice and data over the same service.
- a meter reading device 30 is configured as a mobile communications terminal, e.g., a cellular phone or cellular phone enabled PDA, to automatically e-mail to a secure e-mail server 204 (e.g., POP3 server) or other e-mail infrastructure all revenue data, memory and other diagnostic or power quality data of the utility meter upon wirelessly reading the meter or IED.
- a secure e-mail server 204 e.g., POP3 server
- the utility will have the data transmitted contemporaneously from the meter being read.
- the technology will significantly reduce man hours in transferring data and will allow the data to be sent automatically even when there is no dedicated infrastructure such as WIFI or WAN available.
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Abstract
Description
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US11009922B2 (en) | 2015-02-27 | 2021-05-18 | Electro Industries/Gaugetech | Wireless intelligent electronic device |
US11644341B2 (en) | 2015-02-27 | 2023-05-09 | El Electronics Llc | Intelligent electronic device with hot swappable battery |
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US9080894B2 (en) | 2004-10-20 | 2015-07-14 | Electro Industries/Gauge Tech | Intelligent electronic device for receiving and sending data at high speeds over a network |
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US20070096765A1 (en) | 2007-05-03 |
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