Monitoring system for electrical equipment failure and method
10013865 ยท 2018-07-03
Assignee
Inventors
Cpc classification
G08B21/182
PHYSICS
H02H1/0023
ELECTRICITY
International classification
Abstract
A computerized monitoring system and method for detecting electrical equipment failure. The system includes a sensor that detects a sound level representative of ultrasonic emissions radiating from electrical equipment to be monitored. A computer system in communication with the sensor is programmed to determine whether the electrical equipment is experiencing one or more of arcing, tracking, or corona based on the sound level detected by the sensor. In some embodiments, the computer system continuously monitors for these conditions based on the sound level detected by the sensor.
Claims
1. A computerized monitoring system for detecting electrical equipment failure, the system comprising: means for detecting a sound level representative of ultrasonic emissions radiating from electrical equipment to be monitored, wherein the means for detecting the sound level is mounted on an internal side of a door or wall of an electrical cabinet having the electrical equipment to be monitored; a computer system in communication with the means for detecting the sound level, wherein the computer system is programmed to determine whether the electrical equipment is experiencing one or more of arcing, tracking, or corona based on the sound level detected; and wherein the computer system is configured to monitor whether the electrical equipment is experiencing one or more of arcing, tracking, or corona based on the sound level detected by the sensor.
2. The system of claim 1, wherein the computer system is configured to send an alert message via a communications network responsive to detecting that the electrical equipment has experienced one or more of arcing, tracking, or corona based on the sound level.
3. The system of claim 2, wherein the alert message is one or more of an email or a text message.
4. The system of claim 3, wherein the computer is configured to send the alert message to a pre-determined group of recipients.
5. The system of claim 1, wherein the computer system determines that the electrical equipment is experiencing one or more of arcing, tracking, or corona by comparing the sound level detected with a threshold sound level.
6. The system of claim 1, wherein the computer system determines that the electrical equipment is experiencing one or more of arcing, tracking, or corona responsive to the sound level detected exceeding a threshold sound level.
7. The system of claim 1, wherein the means for detecting the sound level is configured to detect ultrasonic emissions between approximately 20 kHz to 100 kHz.
8. The system of claim 1, wherein the computer system is configured to monitor in a substantially uninterrupted manner whether the electrical equipment is experiencing one or more of arcing, tracking, or corona based on the sound level detected by the sensor.
9. The system of claim 1, wherein the computer system is configured to monitor in a periodic manner whether the electrical equipment is experiencing one or more of arcing, tracking, or corona based on the sound level detected by the sensor.
10. A computerized monitoring system for detecting electrical equipment failure, the system comprising: means for detecting a sound level representative of ultrasonic emissions radiating from electrical equipment to be monitored, wherein the means for detecting the sound level is mounted on an internal side of a door or wall of an electrical cabinet having electrical equipment to be monitored; means for converting the sound level into computer-readable data; a non-transitory computer-readable medium having a computer program code stored thereon; a processor in communication with the computer-readable medium and the means for converting the sound level into computer-readable data, wherein the processor is configured to carry out instructions in accordance with the computer program code, wherein the computer program code, when executed by the processor, causes the processor to perform operations comprising: establishing a threshold sound level using the means for detecting the sound level; querying the means for detecting the sound level to determine a current sound level; determining whether the current sound level exceeds the threshold sound level; and sending an alert message responsive to a determination that the current sound level exceeds the threshold sound level.
11. The system of claim 10, wherein the alert message is one or more of an email or a text message.
12. The system of claim 11, wherein the processor is configured to send the alert message to a pre-determined set of recipients.
13. The system of claim 10, wherein the means for detecting the sound level is configured to detect ultrasonic emissions between approximately 20 kHz to 100 kHz.
14. An article of manufacture comprising: a non-transitory computer-readable medium having a computer program code stored thereon, wherein the computer program code, when executed by a computer processor, causes the computer processor to perform operations comprising: establishing a threshold sound level based on a sensor mounted on an internal side of a door or wall of an electrical cabinet having electrical equipment to be monitored, wherein the threshold sound level is configured to detect one or more of arcing, tracking, or corona of the electrical equipment to be monitored; querying the sensor to determine a current sound level; determining whether the current sound level exceeds the threshold sound level; and sending an alert message responsive to a determination that the current sound level exceeds the threshold sound level.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present disclosure will be described hereafter with reference to the attached drawings which are given as non-limiting examples only, in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8) Corresponding reference characters indicate corresponding parts throughout the several views. The components in the figures are not necessarily to scale, emphasis instead being placed upon illustrating the principals of the invention. The exemplification set out herein illustrates embodiments of the invention, and such exemplification is not to be construed as limiting the scope of the invention in any manner.
DETAILED DESCRIPTION OF THE DRAWINGS
(9) While the concepts of the present disclosure are susceptible to various modifications and alternative forms, specific exemplary embodiments thereof have been shown by way of example in the drawings and will herein be described in detail. It should be understood, however, that there is no intent to limit the concepts of the present disclosure to the particular forms disclosed, but on the contrary, the intention is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the disclosure.
(10) In one aspect, this disclosure provides a system of monitoring for electrical equipment failure. Under certain conditions, such as arcing, tracking, and corona, electrical equipment has the potential for arc flash. According to some embodiments, the present system is able to detect these conditions before flashover or arc-flash incidents by detecting the level of ultrasonic emissions radiating from the electronic equipment. The system can continuously monitor for these conditionsresulting in earlier detection than existing detection devices, such as infrared thermography. Depending on the circumstances, multiple locations of electrical equipment may be continuously monitored simultaneously. The term continuously monitoring as used herein does not require scanning the electrical equipment in an uninterrupted manner, but includes periodic scanning that occurs multiple times a day. Accordingly, an embodiment of the system that scans electrical equipment once every minute would still constitute continuously monitoring as that term is used herein even though the scanning does not occur in an uninterrupted manner.
(11)
(12) The ultrasonic sensor 100 is mounted in an electrical box, such as a cabinet, that houses electrical equipment. For example, the ultrasonic sensor 100 could be mounted on the internal side of a door or wall of the cabinet facing the electrical equipment. The ultrasonic sensor 100 can be used to set a threshold sound level representative of ultrasonic emissions radiating from the electrical equipment in good working order. During monitoring, the ultrasonic sensor 100 can detect when an event of arcing, tracking, or corona occurs because the sound level will be above the ambient threshold. The following is a non-exhaustive list of example sensors that could be used in the system:
(13) UE Systems, Inc.
(14) 14 Hayes Street
(15) Elmsford N.Y. 10523 USA
(16) Product Model Number: ECM 586
(17) SmartSenseCom, Inc.
(18) 126 C Street NW
(19) Washington, D.C. 20001
(20) Product Model Number: SmartSenseCom MICROPHONE
(21) (passive acoustic micro-sensor)
(22) PCB Piezotronics, Inc.
(23) 3425 Walden Ave.
(24) Depew, N.Y. 14043
(25) Product Model Number: 130E20
(26) In the example shown in
(27) Scadata, Inc.
(28) 1315E State Blvd
(29) Fort Wayne, Ind. 46805
(30) Product Model Number: RT4422D
(31) Product Model Number: RT4422E
(32) Allen Bradley
(33) 1201 South Second Street
(34) Milwaukee, Wis. 53204-2496
(35) Product Model Number: Compact LogixL33ERM
(36) Product Model Number: Micro Logix1500
(37) National Instruments Corporation
(38) 11500 N Mopac Expressway
(39) Austin, Tex. 78759-3504
(40) Product Model Number: Compact Rio9024
(41) The system includes a monitoring module 104, which processes the sensor data from the interface device 102 to determine whether the detected sound level is within the threshold level. If the sound level is outside the threshold level, the monitoring module 104 is configured to generate an alert message, which could take many forms. For example, the monitoring module 104 could send an alert in many possible forms, including but not limited to an email, text message, phone call with pre-recorded message, screen alert, etc. Depending on the circumstances, the monitoring module 104 could be configured to log the sensor data in a historical database.
(42) In some cases, such as the example shown in
(43)
(44) The data acquisition module 302 is configured to communicate with the interface 102. The sensor data received by the data acquisition module 302 is stored and made available to other modules to perform various operations described herein. In some cases, for example, the data acquisition module 302 could communicate with the logging module 304 to store sensor data in a historical database 312, which could be useful for auditing purposes.
(45) The detection module 306 is configured to compare the current sound level received from the data acquisition module 302 with the sound threshold to determine whether the current sound level is outside the sound threshold. If the current sound level is below the sound threshold, the detection module 306 has determined that no alert needs to be sent. However, if the current sound level exceeds the sound threshold, the detection module 306 would initiate an alert using the alert module 308. The alert module 308 is configured to generate an alert as discussed herein. In some cases, the alert module 308 could be configured with the desired form(s) of alert to be generated. For example, the user could select through the user interface 300 to have a text message and an email generated by the alert module 308. In some cases, the monitoring module 104 could include a management module 310 that can be used add/delete electrical equipment to be monitored to the system, configure communications between the various devices, and other management functions.
(46)
(47) The example machine 400 illustrated in
(48) The disk drive unit 412 includes a computer-readable medium 416 on which is stored one or more sets of computer instructions and data structures embodying or utilized by the monitoring module 104 described herein. The computer instructions and data structures may also reside, completely or at least partially, within the memory 404 and/or within the processor 402 during execution thereof by the machine 400; accordingly, the memory 404 and the processor 402 also constitute computer-readable media. As discussed above, the monitoring module 104 may communicate with the interface 102 over a network 420 via the network interface device 114 utilizing any one of a number of transfer protocols including but not limited to the hypertext transfer protocol (HTTP) and file transfer protocol (FTP).
(49) The network 420 may be any type of communication scheme including but not limited to fiber optic, cellular, wired, and/or wireless communication capability in any of a plurality of protocols, such as TCP/IP, Ethernet, WAP, IEEE 802.11, or any other protocol. In some embodiments, for example, the monitoring module 104 could be accessed from a web server via the network 420 using a browser program, such as Internet Explorer by Microsoft Corporation of Redmond, Wash., or Safari by Apple Corp. of Cupertino, Calif.
(50) While the computer-readable medium 416 shown in the example embodiment of
(51)
(52)
(53) In some embodiments, the monitoring module 104 includes a user interface 300 from which the user can view various devices, such as ultrasonic sensor(s) and interface(s) on the network. For example, the interface shown in
(54) The device added to the network can be considered by the monitoring module 104. For example, the device could be configured with a name and values of tags. Tags are analog input and output channels and digital input and output channels that are available for the device. Each channel can have a custom name and no two names can be the same.
(55)
(56) The Query Rate input is used to configure the rate at which the device is queried. It specifies the amount of time between subsequent queries' for the individual device. As discussed above, queries of a device multiple times a day is considered continuous monitoring herein. The Use Global Query Rate checkbox is used to specify that the Device Query rate specified in the System Configuration is used for this device.
(57) The example interface includes tabs for displaying and editing the digital input 704, analog input 706, and outputs 708, which is the selected tab shown in
(58) With the ultrasonic sensor(s) and interface device(s) added to the interface, a threshold sound level can be established for each electrical device to be monitored (Block 500). As discussed above, the sound level of the electrical device increases under certain conditions, such as arcing, tracking, and corona. Accordingly, the monitoring module 104 can use the sound level to determine whether electrical equipment has the potential for arc flash. The monitoring module 104 periodically queries the ultrasonic sensor 100 through the interface 102, such as once a minute, which allows continuous scanning of the electrical box using the ultrasonic sensor 100 (Block 502). Upon receiving the current sound level data detected by the ultrasonic sensor 100, the monitoring module 104 compares the current sound level with the sound level threshold to determine whether it is outside the threshold level (Block 504). In some cases, the monitoring module 104 may be able to distinguish between types of conditions occurring at the electrical box, such as arcing, tracking, and corona, compared with arc flash. For example, the approximate sound levels (or amount by which the sound level exceeds the threshold) could be established for different conditions to determine the error occurring at the electrical box.
(59) Although the present disclosure has been described with reference to particular means, materials, and embodiments, from the foregoing description, one skilled in the art can easily ascertain the essential characteristics of the invention and various changes and modifications may be made to adapt the various uses and characteristics without departing from the spirit and scope of the invention.