EP4371055A1 - Configuration of asset monitoring systems - Google Patents
Configuration of asset monitoring systemsInfo
- Publication number
- EP4371055A1 EP4371055A1 EP22842706.8A EP22842706A EP4371055A1 EP 4371055 A1 EP4371055 A1 EP 4371055A1 EP 22842706 A EP22842706 A EP 22842706A EP 4371055 A1 EP4371055 A1 EP 4371055A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- configuration
- correction
- window
- property
- gui
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
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- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/048—Interaction techniques based on graphical user interfaces [GUI]
- G06F3/0481—Interaction techniques based on graphical user interfaces [GUI] based on specific properties of the displayed interaction object or a metaphor-based environment, e.g. interaction with desktop elements like windows or icons, or assisted by a cursor's changing behaviour or appearance
- G06F3/0482—Interaction with lists of selectable items, e.g. menus
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F11/00—Error detection; Error correction; Monitoring
- G06F11/07—Responding to the occurrence of a fault, e.g. fault tolerance
- G06F11/0703—Error or fault processing not based on redundancy, i.e. by taking additional measures to deal with the error or fault not making use of redundancy in operation, in hardware, or in data representation
- G06F11/0766—Error or fault reporting or storing
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F11/00—Error detection; Error correction; Monitoring
- G06F11/07—Responding to the occurrence of a fault, e.g. fault tolerance
- G06F11/0703—Error or fault processing not based on redundancy, i.e. by taking additional measures to deal with the error or fault not making use of redundancy in operation, in hardware, or in data representation
- G06F11/0793—Remedial or corrective actions
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F11/00—Error detection; Error correction; Monitoring
- G06F11/30—Monitoring
- G06F11/3089—Monitoring arrangements determined by the means or processing involved in sensing the monitored data, e.g. interfaces, connectors, sensors, probes, agents
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/048—Interaction techniques based on graphical user interfaces [GUI]
- G06F3/0484—Interaction techniques based on graphical user interfaces [GUI] for the control of specific functions or operations, e.g. selecting or manipulating an object, an image or a displayed text element, setting a parameter value or selecting a range
- G06F3/04847—Interaction techniques to control parameter settings, e.g. interaction with sliders or dials
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F3/00—Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
- G06F3/01—Input arrangements or combined input and output arrangements for interaction between user and computer
- G06F3/048—Interaction techniques based on graphical user interfaces [GUI]
- G06F3/0487—Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser
- G06F3/0489—Interaction techniques based on graphical user interfaces [GUI] using specific features provided by the input device, e.g. functions controlled by the rotation of a mouse with dual sensing arrangements, or of the nature of the input device, e.g. tap gestures based on pressure sensed by a digitiser using dedicated keyboard keys or combinations thereof
- G06F3/04895—Guidance during keyboard input operation, e.g. prompting
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06Q—INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES; SYSTEMS OR METHODS SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES, NOT OTHERWISE PROVIDED FOR
- G06Q10/00—Administration; Management
- G06Q10/06—Resources, workflows, human or project management; Enterprise or organisation planning; Enterprise or organisation modelling
- G06Q10/063—Operations research, analysis or management
-
- G—PHYSICS
- G06—COMPUTING OR CALCULATING; COUNTING
- G06Q—INFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES; SYSTEMS OR METHODS SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES, NOT OTHERWISE PROVIDED FOR
- G06Q10/00—Administration; Management
- G06Q10/20—Administration of product repair or maintenance
Definitions
- asset monitoring can provide a variety of long term benefits, such as lower production costs, reduced equipment down time, improved reliability, and enhanced safety.
- Asset monitoring systems e.g., protection monitoring systems and/or condition monitoring systems
- set points can be used to define a normal operation range and measurement of operating parameters outside of this range can be logged (e.g., as alarms, warnings, etc.)
- the protection monitoring system can control the monitored asset to bring the measured operating parameter within the normal operating range and/or halt operation of the monitored asset to avoid damage to the monitored asset.
- measured operating parameters can be employed to make predictions regarding performance of the monitored asset and proactively identify potential asset damage or failure before it occurs.
- Sensors can be used to acquire sensor signals characterizing operating parameters of the asset.
- Other computing devices can execute algorithms to analyze the sensor signals and determine operating parameters. With measurements of the operating parameters of the asset, protection and condition monitoring functions can be performed. However, these sensors and algorithms can require configuration in order to provide accurate operating parameter measurements.
- a configuration system can be employed in conjunction with an asset monitoring system to identify errors in configuration properties and generate graphical user interfaces (GUIs) facilitating resolution of such errors.
- GUIs graphical user interfaces
- the configuration system can determine one or more possible solutions to correct a selected error.
- the GUIs can display these correction options for consideration by an operator.
- the configuration system can further update a configuration of the asset monitoring system to implement the selected correction.
- the correction options can be based upon domain knowledge and best practices (e.g., as determined by a manufacturer of the asset monitoring system, operator of the asset monitoring system, and/or another authority).
- the configuration system can be configured to automatically resolve configuration errors.
- one of the corrections for a validation error can be default.
- a default correction can be further associated with a configuration profile. Therefore, by selecting a configuration profile, the default correction can automatically implemented for one or more configuration errors.
- this automation can significantly reduce the amount of time required for configuring an asset monitoring system, as it can help operators address errors that they would otherwise spend more time resolving manually.
- configuration best practices can be codified, reducing the level of domain knowledge required by operators to resolve configuration errors.
- a method for configuring an asset monitoring system can include receiving, by a configuration system including one or more processors, a configuration.
- the configuration can include at least one configuration property corresponding to a measurement determined by an asset monitoring system configured to monitor an asset.
- the method can also include generating, by the configuration system, a graphical user interface (GUI).
- GUI graphical user interface
- the GUI can include a first window containing an identifier of the measurement and one or more configuration properties corresponding to the measurement.
- the method can further include outputting, by the configuration system, the GUI to a display device for display of the GUI.
- the method can also include validating, by the configuration system, the received configuration.
- the validation can include receiving a selection of a measurement within the first window of the GUI.
- the validation can also include comparing a configuration property of the one or more configuration properties to a corresponding reference configuration property.
- the validation can additionally include determining at least one validation error for the selected measurement when a configuration property of the one or more configuration properties does not satisfy its corresponding reference configuration property.
- the method can further include updating the GUI to include the at least one validation error corresponding to the selected measurement within a second window.
- the method can also include correcting, by the configuration system, a validation error of the at least one validation error corresponding to the selected measurement.
- the correcting can include receiving a selection of a validation error from the at least one validation error within the second window.
- the correcting can also include updating the GUI to include a third window listing at least one correction corresponding to the selected validation error.
- the at least one correction can include an updated configuration property for the measurement or component.
- the method can further include, by the configuration system, receiving, a selection of a correction from the at least one correction within the third window, updating the configuration to replace the configuration property with an updated configuration property corresponding to the selected correction, updating the GUI to include the updated configuration property within the first window and to remove display of the selected validation error within the second window, and transmitting the updated configuration property to the asset monitoring system.
- the GUI can be configured to, upon receipt of a second selection of a validation error, navigate the GUI to a portion of the first window containing the configuration property corresponding to the selected error.
- the method can further include, by the configuration system, receiving the second selection, receiving input of an updated configuration property corresponding to the selected error within the portion of the first window, updating the configuration to replace the configuration property with the updated configuration property, updating the GUI to include the updated configuration property within the first window and to remove the selected validation error from the second window, and transmitting the updated configuration property to the asset monitoring system.
- the at least one correction can be disabling the selected configuration property
- the method can further include, by the configuration system, receiving a selection of one of the at least one correction within the third window, updating the GUI to remove the selected at least one validation error from the second window, and transmitting information operative to disable the selected configuration property to the asset monitoring system.
- each of the at least one correction can be associated with a profile.
- the at least one correction can be an updated configuration property corresponding to the selected measurement.
- the method can further include, by the configuration system, receiving a selection of a configuration profile from a list of configuration profiles, automatically selecting the correction from the at least one correction associated with the selected configuration profile, updating the configuration to replace the configuration property with the updated configuration property corresponding to the selected correction, updating the GUI to include the updated configuration property within the first window and remove the selected validation error from the second window, and transmitting the updated configuration property to the asset monitoring system.
- the method can further include, by the configuration system prior to updating the configuration, updating the GUI to include a fourth window displaying each correction corresponding to the selected validation error and the automatically selected correction.
- the fourth window can be further configured to receive a user input of an updated correction different from the automatically selected correction.
- the selected correction can be automatically selected correction absent receipt of the updated correction and the selected correction can be the updated correction when the updated correction is received.
- the method can further include receiving user input confirming the displayed correction associated with the selected configuration profile prior to updating the configuration of the hardware component.
- the configuration property can include at least one of a scale factor, a linear range, a frequency response, or a health limit for a sensor in communication with the asset monitoring system.
- the configuration property can include at least one of a type of measurement or observation information defining at least a portion of the measurement to be observed.
- the configuration parameter can include at least one set point corresponding to a respective operating parameter measurement determined by the asset configuration system.
- each configuration profile can be associated with a state of the asset. The method can further include, by the configuration system, receiving a ruleset, determining a state of the monitored asset based upon the ruleset, and selecting the configuration profile that corresponds to the determined asset state.
- FIG. 1 is a schematic block diagram illustrating one exemplary embodiment of an operating environment including a configuration system configured to configure an asset monitoring system;
- FIG. 2A is a schematic block diagram illustrating one exemplary embodiment of the asset monitoring system of FIG. 1;
- FIG. 2B is a table illustrating exemplary embodiments of circuits of the asset monitoring system of FIG. 2 A;
- FIG. 3 is a flow diagram illustrating one exemplary embodiment of a method for configuring the asset monitoring system of FIG 1;
- FIG. 4 is a schematic diagram illustrating one exemplary embodiment of a graphical user interface (GUI) generated by the configuration system of FIG. 1 including a navigation window, a configuration window, and an error window;
- GUI graphical user interface
- FIG. 5 illustrates the GUI of FIG. 4 displaying measurements and corresponding configuration properties within the configuration window
- FIG. 6 illustrates the GUI of FIG. 5 displaying a configuration error within the error window corresponding to a selected configuration property
- FIG. 7A illustrates the GUI of FIG. 5 displaying a correction window including configuration property corrections in response to selection of an error within the error window;
- FIG. 7B illustrates selection of a correction listed in the correction window of the GUI of FIG. 7 A;
- FIG. 7C illustrates removal of the selected error from the error window of the GUI of FIG. 7A in response to selection of a correction listed in the correction window;
- FIG. 8 illustrates navigation within the GUI of FIG. 5 to a portion of the configuration window corresponding to an error selected within the error window;
- FIG. 9A illustrates the GUI of FIG. 5 displaying a profile menu within the error window listing respective configuration profiles
- FIG. 9B illustrates selection of a configuration profile from the profile menu and a selection (e.g., a Quick fix button) to implement automatic error correction within the GUI of FIG. 9A; and
- FIG. 10 illustrates a confirmation window generated by the configuration system in response the selection to implement automatic error correction within the GUI of FIG. 9B.
- Asset monitoring systems can be designed to measure and analyze various operating parameters of an asset in order to detect improper asset operation and to predict when damage to assets can occur. In this manner, corrective action can be taken for control of the asset and/or maintenance of the asset, avoiding expensive asset downtime and repair.
- Existing asset monitoring systems can manually configure the asset monitoring system to provide configuration properties necessary to perform these functions.
- manual configuration is subject to errors, such as entry of incorrect configuration properties or omission of configuration properties.
- these configuration errors can require significant time and/or expertise to identify and correct. Accordingly, embodiments of the present disclosure provide systems and methods for improved configuration of asset monitoring systems.
- a configuration system can be used to identify configuration errors and to generate graphical user interfaces (GUIs) that facilitating correction of such errors.
- GUIs graphical user interfaces
- the configuration system can determine possible corrections for a selected error.
- the configuration system can recommend one of the possible corrections and automatically resolve errors using the recommended correction. Beneficially, this can significantly reduce the amount of time and knowledge required to configuring the asset monitoring system.
- Embodiments of systems and corresponding methods for configuration of asset monitoring systems are discussed herein. However, embodiments of the disclosure can be employed for configuration of other systems without limit.
- FIG. 1 is a schematic block diagram illustrating one exemplary embodiment of an operating environment 100 including an asset 102, an asset monitoring system 104, a configuration system 106, a user computing device 110, and a data storage device 112.
- the configuration system 106 can be in communication with the asset monitoring system 104, the user computing device 110, and the data storage device 112 via a network.
- Embodiments of the asset 102 can include one or more machines or machine components for that are monitored by the asset monitoring system 104.
- the asset 102 can be a machine including one or more components (e.g., rotating components, reciprocating components, and/or fixed asset components).
- Such components can include, but are not limited to, gears, bearings, and shafts, amongst others.
- machines containing such components can include, but are not limited to, turbomachines, turbines (e.g., hydro, wind), generators, and reciprocating compressors, amongst others.
- the asset monitoring system 104 can be in communication with one or more sensors 108 that are configured to generate one or more sensor signals 108s representative of respective operating parameters of the asset 102.
- the sensors 108 can be further configured to transmit the sensor signals 108s to the asset monitoring system 104 (e.g., via field wiring).
- the asset monitoring system 104 can be configured to analyze the received sensor signals 108s and output one or more monitoring signals 104s representative of respective measurements.
- the measurements can be measurements of operating parameters of the asset.
- the asset monitoring system 104 can also be configured to analyze operating parameter measurements to determine a status (e.g., OK, not OK, alert, danger, etc.) of one or more monitored machines and/or machine components.
- operating parameter measurements can be compared to predefined set points or other criteria to determine respective alarms. Measured operating parameters, alarms and/or results from other analyses of measured operating parameters can be output from the asset monitoring system 104 as monitoring signals 104s.
- the asset monitoring system 104 can require configuration properties in order to determine the operating parameter measurements from the received sensor signals 108s, and/or to analyze the operating parameter measurements.
- the configuration properties can be managed by the configuration system 106.
- the configuration system 106 can include one or more processors that receive a configuration from the asset monitoring system 102.
- the configuration can include at least one configuration property corresponding to a measurement determined by the asset monitoring system 102.
- the configuration system 106 can generate a graphical user interfaces (GUI) 116 that includes a first window containing an identifier of the measurement and one or more configuration properties corresponding to the measurement.
- the GUI 116 can be output to a display device for display of the GUI 116.
- the user computing device 110 can include the display device and thus the GUI 116 can be transmitted to the user computing device 110 for display.
- the configuration system 106 can be further configured to validate the received configuration.
- the configuration system 106 can receive an operator input 120 (e.g., via the user computing device 110) including selection of a measurement within the first window.
- the configuration system 106 can further compare at least one configuration property of the one or more configuration properties of the selected measurement to a corresponding reference configuration property.
- reference configuration properties can be retrieved from the data storage device 112 (e.g., reference configuration signals 112s). Under circumstances where the at least one configuration property does not match its corresponding reference configuration property, at least one validation error can be determined for the measurement.
- the configuration system 106 can update the GUI 116 to include the validation error for the selected measurement in a second window.
- the configuration system 106 can be further configured to correct the determined validation errors.
- the configuration system 106 can receive operator input 120 that selects a validation error within the second window of the GUI 116. In response to receipt of this selection, the configuration system 106 can further update the GUI 116 to include a third window displaying at least one correction corresponding to the selected validation error.
- the configuration system can be configured to automatically update the configuration to replace the configuration property with an updated configuration property according to one of the corrections.
- this correction can be a correction that is recommended by an authority (e.g., a manufacturer of the asset monitoring system 104, an operator of the asset monitoring system 104, etc.)
- the GUI 116 can be further updated by the configuration system 106 to replace the erroneous configuration property with the updated configuration property within the first window.
- the configuration system 106 can also transmit the updated configuration to the asset monitoring system 104 (e.g., via updated configuration signals 106s) for subsequent use.
- the configuration system 106 can provide a variety of benefits.
- the recommended correction can reflect current best practices.
- the level of domain expertise required to correct validation errors using embodiments of the configuration system 106 can be reduced.
- use of the configuration system 106 can automatically detect and resolve validation errors, providing a significant time savings as compared to manual detection and resolution of validation errors, as well as improved configuration consistency.
- overall usability of the asset monitoring system 104 and the operator experience can be significantly enhanced, as compared to asset monitoring systems that do not employ the configuration system 106.
- the asset monitoring system 202 includes a base 204 containing a backplane 206, and one or more circuits 210.
- the backplane 206 can be configured to communicatively couple with two or more circuits 210 and receive data from at least one circuit 210 coupled thereto.
- data transmitted to the backplane 206 can be referred to as monitoring data.
- monitoring data can include information contained within the sensor signals 108s.
- the sensors 108 can include a probe, a transducer, and a signal conditioning circuit (not shown).
- the probe can interact with the asset 102 to acquire measurements of physical phenomena that characterize an operating parameter of the asset 102.
- the transducer can convert measurements of the physical phenomena into an electrical signal (e.g., a voltage), and the signal conditioning circuit can condition and/or amplify the electrical signal to generate the sensor signals 108s (e.g., a voltage ranging between a minimum and maximum).
- the sensor signals 108s can contain the direct or raw measurement made by the sensor transducer.
- the sensor signals 108s can be analog signals or digital signals.
- the sensor signals 108s can also include an enhanced data set, in addition to the direct measurements of the operating parameter.
- the enhanced data set can contain a variety of measured variables that depend upon the type of operating parameter being measured.
- the asset 102 can be a rotating component, such as a shaft, and radial vibration can be a variable measured by a sensor 108 in the form of a proximity sensor.
- the enhanced data set can include one or more of a gap voltage, a lx filtered amplitude, a 2x filtered amplitude, a lx filtered phase, a 2x filtered phase, Not lx amplitude, and maximum shaft displacement (Smax).
- Gap voltage is the voltage output by the probe and represents the physical distance between the asset 102 and a tip of the probe lx amplitude is the amplitude of vibrations having the same frequency as the shaft rotation, while 2x amplitude is the amplitude of vibrations having a frequency twice that of the shaft rotation. For instance, a rotation speed of 1480 revolutions per minute corresponds to a frequency of 24.66 cycles per second (Hz).
- Phase is the time delay between a vibration measured at a predetermined measurement location with respect to a reference location.
- lx phase refers to phase of vibrations having the same frequency as the shaft rotation
- 2x phase refers to phase of vibrations having a frequency twice that of the shaft rotation.
- the enhanced data set can include metadata regarding one or more components of the sensor 108, such as the transducer.
- metadata can include one or more of a serial number, revision number, operating temperature, and state of health.
- monitoring data can include raw measurements characterizing respective operating parameters of the asset 102. Monitoring data can also include any values, statuses, and/or annunciated alarms that are determined based upon the measured operating parameters of the asset 102 and/or measured variables of the enhanced data set.
- the sensor signals 108s can include information in addition to the direct measurements of an operating parameter.
- the sensor signals 108s can include metadata regarding one or more components of the corresponding sensors 108, such as the transducer.
- metadata can include, but is not limited to, one or more of a serial number, revision number, operating temperature, and state of health.
- the number and type of sensors 108 can be dictated by the operating parameter(s) that are intended to be measured.
- the sensors 108 can take the form of one or more proximity probes for measurement of vibration, position, speed, direction of motion, and eccentricity.
- the sensors 108 can take the form of one or more accelerometers for measurement of seismic vibration and acceleration.
- the sensors 108 can take the form of one or more temperature probes or pressure probes for measurement of temperature and pressure, respectively. It can be understood that the types of sensors 108 and corresponding measured operating parameters discussed above are not exhaustive and embodiments of the sensors 108 can include any sensor or combination of sensors suitable for measurement of operating parameters of interest.
- the circuits 210 coupled to the backplane 206 can retrieve monitoring data from the backplane 206.
- the backplane 206 can be passive.
- a passive backplane can contain substantially no or no logical circuitry that performs computing functions. Desired arbitration logic can be placed on daughter cards (e.g., one or more of the circuits 210) plugged into or otherwise communicatively coupled to the passive backplane.
- the circuits 210 can be designed with a common architecture that is programmable to perform different predetermined functions of the asset monitoring system 202. Sensor signals 108s received by one or more of the circuits 210 can be transmitted to the backplane 206 and monitoring data represented by the sensor signals 108s can be accessed by any circuit 210.
- the asset monitoring system 202 can communicatively couple multiple bases in a manner that forms a common backplane 206' from the individual backplanes 206 of each base 204 (e.g., a logical backplane).
- circuits 210 can retrieve monitoring data from any backplane 206 forming the common backplane 206', rather than just from the backplane 206 to which they are physically coupled.
- circuits 210 are illustrated in FIG. 2B and are discussed in detail below.
- circuits 210 can include input circuits 210i, processing circuits 21 Op, output circuits 210o, and infrastructure circuits 21 On. It can be understood, that the circuits 210 can also be programmed to perform other functions, as necessary. Further discussion of the circuits 210 can also be found in U.S. Patent Application Nos. 15/947,716 entitled “Gated Asynchronous Multipoint Network Interface Monitoring System,” the entirety of which is incorporated by reference.
- the asset monitoring system 202 can be configured to receive sensor signals 108s and output the monitoring signals 104s in the form of monitoring signals 206s, 208s to the internal and external networks 220a, 220b, respectively.
- the internal network 220a can be a plant network that is in communication with an asset control system 212.
- the asset control system 212 can be configured to provide commands to an asset 102 that are operative to control one or more operating parameters of the asset 102.
- the internal network 220a can also be in communication with other systems, such as computing devices executing configuration software (e.g., the configuration system 106), human-machine interfaces (HMIs) 216 and/or a customer historian 216.
- configuration software e.g., the configuration system 106
- HMIs human-machine interfaces
- the external network 220b can be a business network that is in communication with a diagnostic system 222.
- the diagnostic system 222 can analyze any of the data contained within the monitoring signals 208s to diagnose improper operation of the asset 102 and/or predict improper operation of the asset 102 before it occurs. Thus, providing monitoring signals 208s to the external network 220b can facilitate condition monitoring of the asset 102.
- the configuration system 106 can be used to provide configuration information to the asset monitoring system 104.
- the HMI 214 can be one or more computing devices in communication with user interface devices (e.g., displays) allowing an operator of the machine to review measured operating parameters and/or provide instructions to the asset control system 212.
- the asset monitoring system 202 can receive command signals 209s, 211s from the internal and external networks 220a, 220b, respectively, without compromising security of the asset control system 212.
- the circuits 210 can be combined in various ways on one or more backplanes 206 to form different implementations of the asset monitoring system 202.
- the number of bases 204, input circuits 210i, processing circuits 21 Op, output circuits 210o, and infrastructure circuits 21 On included in a given implementation of the asset monitoring system 202 can also be varied independently of one another.
- the asset monitoring system 202 can be in the form of a single base 204 including circuits 210 configured to provide signal input, signal output, protection monitoring, condition monitoring, and combinations thereof.
- the asset monitoring system 202 can be in the form of at least two bases 204 and circuits 210 configured to perform any combination of signal input, signal output, protection monitoring, and condition monitoring can be distributed between the at least two bases 204. In this manner, the input, processing, and output capabilities of the asset monitoring system 202, as well as the physical location of different circuits 210 of the asset monitoring system 202, can be tailored to specific monitoring applications.
- input circuits 210i can be configured to receive sensor signals 108s, perform signal conditioning on the sensor signals 108s, and output the conditioned sensor signals 108s to the backplane 206.
- the input circuits 210i can be decoupled from processing circuits 21 Op, allowing the number of input circuits 210i of the asset monitoring system 202 to be varied independently of the number of processing circuits 21 Op.
- the sensor signals 108s can be received from a variety of different types of sensors 108. Examples of sensor types can include, but are not limited to, vibration sensors, temperature sensors (e.g., resistance temperature detectors or RTD), position sensors, and pressure sensors.
- Embodiments of the asset monitoring system 202 can include one or more input circuits 210i. As shown in FIG. 2 A, the asset monitoring system 202 includes two input circuits 210i. Each of the input circuits 210i can be in communication with a respective sensor 108, 108' for receipt of a corresponding sensor signal 108s, 108s'.
- the sensor signal 108s can represent first monitoring data including measurements of a first operating parameter of a first machine component (e.g., acquired by sensor 108).
- the sensor signal 108s' can represent second monitoring data including measurements of a second operating parameter of a second machine component (e.g., acquired by the sensor 108').
- the first and second machine components can be the same (e.g., the asset 102).
- the first and second machine components can be different (e.g., the asset 102 and a different asset [not shown]).
- the first and second operating parameters can be the same operating parameter. In one aspect, this configuration can provide redundancy in case of failure of one of the sensors 108, 108'.
- this configuration can be utilized where a desired measurement (e.g., shaft rotation speed) is derived from two sensor measurements coordinated in time (phase).
- a desired measurement e.g., shaft rotation speed
- the first and second operating parameters can be different. While two input circuits 210i have been illustrated and discussed, other embodiments of the monitoring system can include greater or fewer input circuits.
- Different types of sensors 108 can generate sensor signals 108s in different formats, and the input circuits 210i can be programmed to perform signal conditioning appropriate to the different sensor signals 108s before transmitting conditioned sensor signals to the backplane 206.
- a sensor signal 108s generated from a position sensor can be received by a position input circuit 250.
- a sensor signal 108s generated by a vibration sensor can be received by a vibration input circuit 252.
- a sensor signal 108s generated by a temperature sensor can be received by a temperature input circuit 254.
- a sensor signal 108s generated by a pressure sensor can be received by a pressure input circuit 256.
- the input circuit 210i can be in the form of a discrete contact circuit 260.
- the discrete contact circuit 260 can include a pair of contacts that can be closed by an external switch or relay. The pair of contacts can be closed by the asset control system 212 or by an operator of the asset control system 212 closing a switch.
- the discrete contact circuit 260 can be used to change the behavior of the asset monitoring system 202. Examples of behavior changes can include, but are not limited to, a different mode of machine operation, causing the asset monitoring system 202 to inhibit alarm determination, and resetting alarm states.
- the asset monitoring system 104 can include a discrete contact, it can lack specificity. As an example, changes effected by closing a discrete contact in the asset monitoring system 104 can be effected upon all alarms generated by the asset monitoring system 104. In contrast, because the discrete contact circuit 260 of the asset monitoring system 202 can be separate from the protection processing circuit 264, the discrete contact circuit 260 can be configured to effect only selected alarm determinations and/or reset alarm states, or effect all alarms.
- the input circuit 210i can be in the form of a digital data stream input circuit 262.
- the digital data stream input circuit 262 can be configured to receive digital data streams from the sensor 108, the asset control system 212, and/or a trusted third-party system, as opposed to an analog data stream (e.g., from sensor 108).
- Processing circuits 21 Op can be configured to retrieve any data from the backplane 206, analyze the retrieved operating parameters, and output the results of such analysis.
- the processing circuits 21 Op can be configured to perform protection functions and can be referred to as protection processing circuits 264 herein.
- the processing circuits 21 Op can be configured to retrieve selected data from the backplane 206 and transmit the retrieved information to a diagnostic system 222 for performing diagnostic and/or predictive functions (e.g., condition monitoring) and can be referred to as condition processing circuits 266 herein.
- processing circuits 21 Op and input circuits 210i included in a given implementation of the asset monitoring system 202 can be varied independently of the one another.
- processing circuits 21 Op can be added to the backplane 206 or removed from the backplane to tailor the amount of computing resources available for protection monitoring and/or condition monitoring.
- a given processing circuit 21 Op can be replaced by another processing circuit 21 Op having greater or less computing power.
- the protection processing circuits 264 and the condition processing circuits 266 are discussed below with reference to different functionalities. However, protection processing circuits 264 can be programmed to perform any function of the condition processing circuits 266.
- Condition processing circuits 266 can be programmed to perform functions of the protection processing circuits 264, except for transmitting data to the backplane 206 and providing local storage. The ability to inhibit the condition processing circuit 266 from transmitting data to the backplane 206 can inhibit unauthorized intrusion and facilitate protection of the internal network 220a and asset control system 212.
- Protection processing circuits 264 can be configured to retrieve selected monitoring data from the backplane 206 in response to receipt of a protection command.
- one or more protection commands can be transmitted to protection processing circuits 264 in the form of protection command signal 209s received from the internal network 220a (e.g., from an operator of the asset control system 212).
- the selected monitoring data can include at least a portion of the monitoring data transmitted to the backplane 206.
- the monitoring data transmitted to the backplane can be received from an input circuit 210i or another protection processing circuit 264.
- the protection processing circuits 264 can also be configured to determine a value characterizing the selected monitoring data and transmit the determined value to the backplane 206 as additional monitoring data.
- the protection processing circuit 264 can be configured to determine a status for the selected monitoring data based upon a comparison of the determined value, another determined value retrieved from the backplane 206 (e.g., from another protection processing circuit 264), and combinations thereof, with one or more predetermined set points.
- Predetermined set points can correspond to respective alarm conditions (e.g., an Alert condition, a Danger condition, etc.).
- the one or more set points can include an Alert set point, a Danger set point that is greater than the Alert set point, and combinations thereof.
- a single set point can be employed.
- the protection processing circuit 264 can transmit the determined status to the backplane 206.
- the condition processing circuit 266 can be configured to retrieve selected monitoring data from the backplane 206 and to provide the retrieved monitoring data to the external network 220b for use by diagnostic system 222.
- the selected monitoring data can be retrieved by the condition processing circuit 266 in response to receipt of a conditioning command.
- one or more conditioning commands can be transmitted to condition processing circuits 266 in the form of conditioning command signals 211s can be received from the external network 220b. (e.g., from an operator of the diagnostic system 222).
- the diagnostic system 222 can utilize the retrieved monitoring data to determine the cause of statuses and/or alarm conditions.
- the diagnostic system 222 can also employ the retrieved monitoring data to predict the development of statuses and/or alarm conditions before they arise.
- the diagnostic system 222 can store the retrieved monitoring data for subsequent analysis.
- the diagnostic system 222 can transmit the retrieved monitoring data to another computing device for analysis.
- the condition processing circuit 266 can retrieve selected monitoring data from the backplane 206 based upon detection of a pre-determined status.
- the condition processing circuit 266 can retrieve and review statuses generated by the protection processing circuit 264 to identify a status matching the pre-determined status.
- the identified status can also include a status time characterizing the time when the status was determined.
- the condition processing circuit 266 can retrieve selected monitoring data including operating parameter measurements corresponding to the pre determined status for time durations before and/or after the status time. In this manner, the diagnostic system 222 can be provided with operating parameter information relevant to determining the cause of the status.
- the pre-determined statuses and selected monitoring data can be contained within the one or more conditioning commands.
- Output circuits 210o can be configured to obtain any monitoring data contained on the backplane 206 in response to receipt of output commands (e.g., contained in the one or more protection command signal 209s received from the internal network 220a). The output circuits 210o can further output the retrieved monitoring data to the internal network 220a in the form of monitoring signals 206s. Examples of monitoring data retrieved by output circuits 210o can include, but are not limited to, operating parameter measurements, the determined values, variables of the enhanced data set, statuses, and alarms.
- output circuits 210o can be in the form of proportional output circuits 270.
- the proportional output circuits 270 can be configured to output monitoring signals 206s in the form of process control signals.
- the process control signals can be proportional to process variables, such as direct measurement values or variables of the enhanced data set, as compared to a predetermined scale. As an example, a current output can be a 4-20mA output.
- the process control signals can be provided to the asset control system 212, either directly or via the internal network 110a, to facilitate control of operating parameters of the asset 102.
- the process variables included in the process control signals can be specified by the protection command signal 209s.
- output circuits 210o can be in the form of one or more relay circuits 272 configured to retrieve selected status data from the backplane 206 and to actuate based upon received alarm statuses to annunciate an alarm.
- Annunciated alarms can be output in the form of alarm signals.
- relays can actuate based upon a single status.
- relays can actuate based upon predetermined Boolean expressions (e.g., AND or voting) that combine two or more statuses.
- the alarm signals can be provided to the asset control system 212 via the internal network 220a, or directly to the asset control system 212, to facilitate control of operating parameters of the asset 102.
- the asset control system 212 can shut down operation of the asset 102 in response to receipt of an alarm signal.
- the selected status data and the logic employed for actuation of a relay can be specified by the protection command signal 209s.
- output circuits 210o can be in the form of at least one communication interface circuits 274.
- the communication interface circuit 274 can be configured to retrieve selected monitoring data from the backplane 206 in response to receipt of the protection command signal 209s.
- the selected monitoring data can include one or more of the measured operating parameters, the measured variables of the enhanced data set, determined statuses, and determined alarms.
- the retrieved data can be transmitted to the internal network 220a in one or more return signals for use by the asset control system 212 (e.g., for process control), the HMI 214 (e.g., display to an operator) and/or stored by the historian 216.
- Infrastructure circuits 21 On can be configured to perform functionality required for the asset monitoring system 202 to operate.
- infrastructure circuits 21 On can take the form of a system interface circuit 276.
- the system interface circuit 276 can function as an access point for transmission of protection command signals 209s from the internal network 110a to the diagnostic system 222, facilitating configuration of the circuits involved in protection monitoring (e.g., protection processing circuit 264, output circuits 210i).
- the protection command signals 209s can include one or more signals including any of the following in any combination: identification of selected monitoring data for each of the protection processing circuit 264 and output circuits 210i to retrieve and/or output, alarm set points for the protection processing circuit 264, and logic for annunciation of relays by relay output circuits 272.
- infrastructure circuits 21 On can take the form of power input circuits 280.
- Power input circuits 280 can provide the ability to connect one or more power sources to the asset monitoring system 202.
- infrastructure circuits 21 On can take the form of bridge circuits 282.
- the bridge circuits 282 can provide the ability to connect the backplanes 206 of two or more bases 204 together and to form the common backplane 206' for communication therebetween.
- FIG. 3 An exemplary embodiment of a method 300 employing the configuration system 106 for configuration of the asset monitoring system 104 is illustrated in FIG. 3. As shown, the method 300 includes operations 302-312. However, it can be appreciated that alternative embodiments of the method can include greater or fewer operations and/or can be performed in a different order than illustrated in FIG. 3. Exemplary embodiments of GUIs 116 generated by the configuration system 106 are further illustrated in FIGS. 4-10.
- a configuration can be received by one or more processors (e.g., the configuration system 106). The configuration can include at least one configuration property corresponding to a measurement determined by the asset monitoring system 104. As discussed in greater detail below, the configuration system 106 can received from at least one of the data storage device 112 or the asset monitoring system 104 in response to a query.
- the configuration property can pertain to a hardware component of the asset monitoring system 104 employed to determine a measurement.
- hardware components of the asset monitoring system 104 can include, but are not limited to, the circuits 210 (e.g., input circuits 210i, processing circuits 21 Op, output circuits 210o, and/or infrastructure circuits 21 On).
- the configuration property can pertain to logical processes (e.g., calculations, analyses, etc.) performed by the asset monitoring system 104 to determine a measurement.
- the configuration property can be one or more sensor information.
- the sensor information can be information about the hardware (e.g., sensors 108, output of sensor signals 108s), and/or calculations (e.g., algorithms or other logical processes) performed to determine operational parameters of the asset 102 from the sensor signals 108s. That is, the sensor information can pertain to obtaining the operating parameter measurements. Examples can include, but are not limited to:
- Scale factor - a conversion between the measured operating parameter and the sensor signal 108 (e.g., a voltage).
- a proximity transducer can employ a scale factor that sets the output voltage per unit distance.
- Linear range - A range over which the sensor signal 108 (sensor output) is approximately linear with respect to the measured operating parameter (sensor input). It some cases it can be preferred to operate within the linear range. For example, in the context of a sensor having an output range between 0-20 V, the linear range could be 5-15 V.
- Measurement calculation Any information (e.g., mathematical formulae) used to determine operational parameter measurements from the sensor signals 108s.
- the configuration property can be one or more measurement information.
- the measurement information can be used to determine how the operating parameter measurements are used. Examples can include, but are not limited to:
- the observation information can define what at least a portion of the measurement that is to be observed. For example, in the context of a bandpass, the observation information can define signal frequencies that are allowed to pass through and those which are not allowed to pass through and are rejected.
- the configuration property can be a set point.
- the asset monitoring system 104 can be configured to determine conditions (e.g., alarm conditions, warning conditions, etc.) based upon comparison of operational parameter measurements with one or more set points.
- an alarm condition can be determined when the operational parameter measurement is one or more of over a set point, under a set point, or outside a range of set points.
- the configuration property can be a state of the asset.
- asset state can include, but are not limited to, operating modes of the asset 102, such as startup, shutdown, and steady state.
- the configuration property can also include one or more asset state configuration properties that can be used to determine the asset state.
- asset state configuration property can be ranges of rotation speed of the asset 102 that define the respective asset states.
- the configuration property can be a system configuration related to the asset monitoring system 104 itself.
- the system configuration can adopt a variety of forms.
- the system configuration can relate to timekeeping by the asset monitoring system 104.
- the asset monitoring system 104 can be employ a network resource (e.g., a time server) for timekeeping, as compared to a local clock maintained by the asset monitoring system 104 (e.g., one or more processors of the asset monitoring system 104).
- a configuration property for timekeeping can be a network address of the time server.
- the system configuration can be a number of networks in communication with the asset monitoring system 104.
- the configuration system can generate the GUI 116.
- An example of the GUI 116 is illustrated in FIG. 4. As shown, the GUI 116 can include a navigation window 400, a configuration window 402, and an error window 404.
- the navigation window 400 can include a hierarchical list 406 of respective assets 102 monitored by the asset monitoring system 104.
- the hierarchical list 406 includes a plurality of levels, such as a system (asset monitoring system 104) level, a chassis level, and a channel level.
- the GUI 116 can be configured to receive an operator selection (e.g., operator input 120) of a level of the hierarchical list 406.
- the lowest level of the hierarchical list 406 can be a channel level.
- a channel can be respective ones of the sensors 108 of the asset monitoring system 104.
- selection of a channel of the channel level can include operational parameter measurement determined from the sensor signals 108s acquired by the selected channel.
- the next higher level of the hierarchical list 406 can be a module level.
- a module can be respective ones of the circuits 210 of the asset monitoring system 104 and, as discussed above, can be in communication with one or more channels. Thus, selection of a module of the module level can include the operational parameter measurements determined by the selected module and logical processes performed thereby based upon the corresponding channels.
- the next higher level of the hierarchical list 406 can be the chassis level.
- the chassis can be a physical frame housing at least a portion of the hardware modules (e.g., circuits 210) of the asset monitoring system 104. Thus, selection of a chassis of the chassis level can include the operational parameter measurements determined by modules of the selected chassis and logical processes performed thereby.
- the highest level of the hierarchical list 406 can be the system level.
- selection of the system level includes all measurement determined by the asset monitoring system 104.
- the configuration system 106 can determine the measurements associated with the selected hierarchical level. As an example, associations between respective ones of hierarchical list 406 and corresponding measurements can be maintained by the data storage device 112 (e.g., within a database). Thus, in response to receipt of an operator selection from the hierarchical list 406, the configuration system 106 can transmit a query to, and receive a response from, the data storage device 112 regarding the measurements corresponding to the selection from the hierarchical list 406.
- configuration system 106 determines the operational parameter measurement s) corresponding to the selection from the hierarchical list 406, it can further determine the at least one configuration property corresponding to respective measurements.
- associations between respective ones of the measurements and corresponding configuration properties can be maintained by the data storage device 112 (e.g., within a database).
- the configuration system 106 can further transmit a query to, and receive a response from the data storage device 112 regarding the configuration properties corresponding to respective measurements.
- the configuration system 106 can further update the GUI 116 to include a first window (e.g., configuration window 402) that contains an identifier of at least measurement and one or more configuration properties corresponding to the measurement.
- a first window e.g., configuration window 402
- the at least one measurement can be a measurement corresponding to the selection from the hierarchical list 406.
- Examples of the measurement identifier include a name of the measurement.
- Examples of the at least one configuration property can adopt a variety of forms, discussed in greater detail below.
- other information regarding the measurement can be included within the configuration window 402.
- Examples can include, but are not limited to, the measurement type (e.g., state measurement, relay channel, temperature, band pass, bias, vector, speed, etc.), a channel name, and a channel type (e.g., relay channel, temperature channel, radial vibration channel, speed channel, etc.)
- the measurement name and channel name can be the same as the measurement type and the channel type, respectively.
- a chassis can include a plurality of slots in which respective ones of the circuits 210 are positioned. The slot in which the circuit 210 that determines a respective operational parameter measurement can be listed in the entry for the corresponding measurement.
- the GUI 116 can be output by the configuration system 106 to a display device for display of the GUI 116.
- the configuration system 106 can output the GUI 116 to the user computing device 112 and the GUI 116 can be displayed on a display device in communication with the user computing device 112.
- the configuration system 106 can validate the received configuration.
- the configuration system 106 can receive a selection of a measurement within the configuration window 402. As illustrated in FIG. 6, measurement 1 is selected.
- the configuration system 106 can further compare a configuration property of the one or more configuration properties to a corresponding reference configuration property.
- the data storage device 112 can maintain a plurality of reference configuration properties associated with respective configuration properties, and the configuration system 106 can retrieve reference configuration properties from the data storage device in response to a query.
- At least one validation error can be determined by the configuration system 106 when a configuration property of the one or more configuration properties does not satisfy its corresponding reference configuration property. In certain embodiments, such satisfying can be achieved when a configuration property of the one or more configuration properties matches its corresponding reference configuration property
- the reference configuration property can include a range of values. A match can occur when a value of the configuration property lies within or outside of the range of values, as appropriate.
- a configuration property of a sensor 108 can include a scale factor.
- the reference configuration property can be a linear range.
- a match can be determined when the scale factor lies within the linear range, while a match is not determined when the scale factor lies outside of the linear range
- the reference configuration property can be a single value.
- a match can occur when a value of the configuration property is above, below, or equal to the reference configuration property, as appropriate.
- a configuration property of a sensor 108 can include a set point.
- the reference configuration property can be a full scale range of the sensor 108. A match can be determined when the set point lies within the full scale range, while a match is not determined when the set point lies outside of the full scale range.
- the reference configuration property can be a numerical value of a specific type (e.g., an integer).
- a match can be determined when a value of the configuration property adopts the same number type as the reference configuration property. In contrast, a match is not determined when the value of the configuration property is not the same number type as the reference configuration property.
- the reference configuration property and the configuration property can each be Boolean values (e.g., 0 or 1, TRUE or FALSE, etc.).
- a match can be determined when the Boolean values of the configuration property and the reference configuration property are equal.
- a match is not determined when the Boolean values of the configuration property and the reference configuration property are not equal
- configuration properties can be designated as required or optional.
- a match is not determined when a value for a required configuration property is absent from the received configuration.
- a match can be determined when a value for a required configuration property is absent from the received configuration.
- a configuration property can be designated as required or optional as appropriate for the measurement.
- the configuration system 106 can detect a variety of other validation errors. Examples can include, but are not limited to:
- a channel is listed without an associated module (e.g., processing circuit 210p).
- the listed channel is not recommended for the corresponding measurement (e.g., an accelerometer channel indicated for a.
- the configuration system 106 can be further configured to update the GUI 116 to include the at least one validation error corresponding to the selected measurement in a second window (e.g., the error window 404).
- a second window e.g., the error window 404.
- each of the at least one validation error can be displayed within the GUI 116 as a separate entry of a list.
- Each entry can include a name of the validation error and a description of the validation error.
- the entry can include other information regarding the listed validation error.
- the additional information can include the path of the selection from the hierarchical list 406 corresponding to the selected measurement (e.g., Chassis > Module > Channel > Measurement).
- the additional information can include a configuration profile corresponding to the validation error, as discussed in greater detail below.
- the configuration system 106 can be configured to correct one or more validation errors corresponding to the selected measurement. As illustrated in FIG. 6, the configuration system 106 can receive a selection of a validation error of the at least one validation error within the error window 404 (e.g., operator input 120) via the user computing device 110.
- the error window 404 e.g., operator input 120
- the configuration system 106 can be configured to determine at least one corresponding correction.
- the data storage device 112 can include data associating respective validation errors and corrections.
- the configuration system 106 can query the data storage device 112 to receive one or more corrections corresponding to the selected validation error.
- Embodiments of the at least one correction can adopt a variety of forms, depending upon the nature of the corresponding validation error.
- the validation error can be the lack of a match between a value or value range of a configuration property as compared to its corresponding reference configuration property.
- the at least one correction can be an updated configuration property including a value or value range that matches the reference configuration property.
- the configuration system 106 can update the GUI 116 to include a third window (e.g., a correction window 410) in response to receipt of a first selection of a validation error within the error window 404.
- the first selection can be a predetermined interaction between the operator and a listed validation error within the error window 404. Examples can include, but are not limited to, a single right mouse click, a single left mouse click, a double mouse click (e.g., a double right mouse click), etc. It can be appreciated that, in the context of touch sensitive display devices, mouse clicks can be used interchangeably with tapping on a screen of the display.
- the correction window 410 can include the at least one correction corresponding to the selected validation error. As shown, the at least one correction can be displayed as a separate entry of a list. Each entry can include a description of the listed correction. In further embodiments, the entry can include other information regarding the listed validation error without limit.
- the at least one correction upon receipt of the first selection of a correction from the at least one correction, can be implemented by the configuration system 106.
- the at least one correction can be an updated value/range of property 1 for measurement 1 with an updated value/range.
- the configuration system 106 can update the GUI 116 to display the updated configuration property (value/range) in the appropriate field of the configuration window 402.
- the configuration system 106 can further update the GUI 116 to remove display of the selected validation error (e.g., error 1) from the error window, as illustrated in FIG. 7C.
- the configuration system 106 can additionally transmit the updated configuration property to the asset monitoring system 104.
- the configuration system 106 can be configured for manual entry of the at least one correction (e.g., via the user computing device 110).
- the GUI 116 can be configured to receive a second selection of the validation error, different from the first selection.
- the second selection can be a predetermined interaction between the operator and a listed validation error within the error window 404. Examples of the second selection can include, but are not limited to, a single right mouse click, a single left mouse click, a double mouse click (e.g., a double right mouse click), etc. It can be appreciated that, in the context of touch sensitive display devices, mouse clicks can be used interchangeably with tapping on a screen of the display.
- the second selection can result in navigation within the GUI 116 to a portion of the GUI 116 containing the configuration property corresponding to the selected error.
- the navigation can highlight a field within the configuration window 402 (e.g., designating the highlighted field as an active field for receipt of input) containing the configuration property corresponding to the selected error. For example, as illustrated in FIG. 8, the navigation highlights the field corresponding to configuration property 1 of measurement 1.
- the configuration system 106 can be further configured to receive input of an updated configuration property corresponding to the selected error within the highlighted field.
- the ability to navigate in this manner can provide significant time savings and improved user experience.
- the operator is saved the trouble of manually finding and navigating to the field, which can be particularly troublesome when the operator is required to correct multiple validation errors.
- correction can be implemented by the configuration system 106.
- correction can be an updated value/range of property 1 for measurement 1 with an updated value/range.
- the configuration system 106 can update the GUI 116 to display the updated configuration property (value/range) in the highlighted field of the configuration window 402, as illustrated in FIG. 7B.
- the configuration system 106 can further update the GUI 116 to remove display of the selected validation error (e.g., error 1) from the error window, as illustrated in FIG. 7C.
- the configuration system 106 can additionally transmit the updated configuration property to the asset monitoring system 104.
- the at least one correction can include disabling the selected configuration property.
- Disabling can mean maintaining the original configuration property but removing the configuration property from runtime processing (e.g., analysis or other calculations to determine a measurement).
- the option to disable the selected configuration property can be available for measurements that can employ but do not require the disabled configuration property.
- the operator can disable the selected configuration property via one of the corrections within the correction window, as illustrated in FIG. 7A.
- the configuration system 106 can further update the GUI 116 to remove display of the selected validation error from the error window, as illustrated in FIG. 7C.
- the configuration system 106 can additionally transmit information operative to disable the updated configuration property to the asset monitoring system 104.
- the configuration system 106 can include a user interface object 412 that automatically implements validation error corrections (e.g., a “Quick Fix” button 412) upon selection.
- selection of the Quick fix button 412 can cause the configuration implement a correction only for a validation error selected within the error window.
- the Quick fix button can be disabled, preventing the configuration system from implementing a correction via selection of the Quick fix button.
- the Quick fix button can be enabled and, when selected, it can cause the configuration system to implement a correction for each of the validation errors listed in the error window.
- the configuration system 106 can readily implement this single correction when the Quick fix button is selected. However, under circumstances where multiple corrections are determined for a given validation error, the configuration system 106 can require a mechanism to identify which correction to implement from a list of multiple correction options. Accordingly, embodiments of the determined corrections can further be associated with a profile.
- the GUI 116 generated by the configuration system 106 can further include a user interface object 414 that allows for selection of a configuration profile from a menu listing multiple configuration profiles (e.g., a profile menu).
- a profile menu can be positioned within the error window 404.
- the profile menu can be positioned in another location within the GUI.
- the configuration system 106 can receive a configuration profile selection within the GUI (e.g., via a selection from the profile menu 414).
- the configuration system 106 can automatically select the correction from the determined corrections for the selected validation error that corresponds to the selected configuration profile. That is, the automatically selected correction is a default correction for the selected configuration profile. As discussed above, determined corrections can include an updated configuration property. Thus, in certain embodiments, the configuration can be updated to replace the configuration property with the updated configuration property corresponding to the automatically selected correction.
- the configuration system 106 can further update the GUI 116 to display the updated configuration property (value/range) in the configuration window 402, as discussed above and illustrated in FIG. 7B.
- the configuration system 106 can further update the GUI 116 to remove display of the selected validation error from the error window 406, as discussed above and illustrated in FIG. 7C.
- the configuration system 106 can additionally transmit the updated configuration property to the asset monitoring system 104.
- each configuration profile can be further associated with an asset state.
- the configuration system 106 can further select the configuration profile based upon the asset state.
- the configuration system can receive a ruleset and determine the asset state based upon the ruleset.
- the ruleset can specify rotation speeds associated with each of the asset states.
- the asset state can be determined from measurements of the asset rotation speed.
- the configuration system 106 can be configured to update the GUI 116 to include an acknowledgement window 1000.
- the acknowledgement window 1000 can include a list of the validation errors to be corrected in response to selection of the Quick fix button 412, the corrections determined for each of the validation errors, and a selection region 1002 allowing selection of respective corrections.
- the acknowledgment window 1100 can include, within the selection region 1002, the correction for each validation error associated with the selected configuration profile (e.g., an automatically selected default correction).
- the operator can approve the selected corrections without change (e.g., selection of an “OK” button without making changes within the selection region.)
- the operator can approve a change to the correction for one or more of the validation errors (e.g., selection of the “OK” button after making changes within the selection region.) That is, the selected correction implemented by the configuration system 106 can be the automatically selected default correction under circumstances where the operator makes no changes within the acknowledgement window 1000.
- the selected correction implemented by the configuration system 106 for a validation error can be an updated correction under circumstances where the operator updates the correction associated with the validation error within the acknowledgement window 1000.
- the configuration system 106 can record the operator’s authorization for this change. Recording the operator authorization can include, but is not limited to, recording a unique identifier of the operator (e.g., an operator name, operator number, etc.), the changed correction, the date/time at which the change is authorized, etc. Such recorded information can be transmitted from the configuration system 106 to the asset monitoring system and/or the data storage device 112 for storage and subsequent retrieval.
- a unique identifier of the operator e.g., an operator name, operator number, etc.
- Such recorded information can be transmitted from the configuration system 106 to the asset monitoring system and/or the data storage device 112 for storage and subsequent retrieval.
- the default selections can represent recommended corrections determined by the manufacturer and/or operator of the asset monitoring system 104.
- an operator should only authorize changes from the default selections for good cause.
- Exemplary technical effects of the methods, systems, and devices described herein include, by way of non-limiting example improved configuration of asset monitoring systems. Configuration errors can be quickly identified, along with possible corrections. Recommended corrections reflecting domain knowledge and best practices can be implemented automatically to resolve configuration errors. This automation can significantly reduce the amount of time required for configuring an asset monitoring system, as it can help operators address errors that they would otherwise spend more time resolving manually. Furthermore, configuration best practices can be codified, reducing the level of domain knowledge required by operators to resolve configuration errors.
- the subject matter described herein can be implemented in analog electronic circuitry, digital electronic circuitry, and/or in computer software, firmware, or hardware, including the structural means disclosed in this specification and structural equivalents thereof, or in combinations of them.
- the subject matter described herein can be implemented as one or more computer program products, such as one or more computer programs tangibly embodied in an information carrier (e.g., in a machine-readable storage device), or embodied in a propagated signal, for execution by, or to control the operation of, data processing apparatus (e.g., a programmable processor, a computer, or multiple computers).
- a computer program (also known as a program, software, software application, or code) can be written in any form of programming language, including compiled or interpreted languages, and it can be deployed in any form, including as a stand-alone program or as a module, component, subroutine, or other unit suitable for use in a computing environment.
- a computer program does not necessarily correspond to a file.
- a program can be stored in a portion of a file that holds other programs or data, in a single file dedicated to the program in question, or in multiple coordinated files (e.g., files that store one or more modules, sub-programs, or portions of code).
- a computer program can be deployed to be executed on one computer or on multiple computers at one site or distributed across multiple sites and interconnected by a communication network.
- processors suitable for the execution of a computer program include, by way of example, both general and special purpose microprocessors, and any one or more processor of any kind of digital computer.
- a processor will receive instructions and data from a read-only memory or a random access memory or both.
- the essential elements of a computer are a processor for executing instructions and one or more memory devices for storing instructions and data.
- a computer will also include, or be operatively coupled to receive data from or transfer data to, or both, one or more mass storage devices for storing data, e.g., magnetic, magneto-optical disks, or optical disks.
- Information carriers suitable for embodying computer program instructions and data include all forms of non-volatile memory, including by way of example semiconductor memory devices, (e.g., EPROM, EEPROM, and flash memory devices); magnetic disks, (e.g., internal hard disks or removable disks); magneto-optical disks; and optical disks (e.g., CD and DVD disks).
- semiconductor memory devices e.g., EPROM, EEPROM, and flash memory devices
- magnetic disks e.g., internal hard disks or removable disks
- magneto-optical disks e.g., CD and DVD disks
- optical disks e.g., CD and DVD disks.
- the processor and the memory can be supplemented by, or incorporated in, special purpose logic circuitry.
- the subject matter described herein can be implemented on a computer having a display device, e.g., a CRT (cathode ray tube) or LCD (liquid crystal display) monitor, for displaying information to the user and a keyboard and a pointing device, (e.g., a mouse or a trackball), by which the user can provide input to the computer.
- a display device e.g., a CRT (cathode ray tube) or LCD (liquid crystal display) monitor
- a keyboard and a pointing device e.g., a mouse or a trackball
- Other kinds of devices can be used to provide for interaction with a user as well.
- feedback provided to the user can be any form of sensory feedback, (e.g., visual feedback, auditory feedback, or tactile feedback), and input from the user can be received in any form, including acoustic, speech, or tactile input.
- modules refers to computing software, firmware, hardware, and/or various combinations thereof. At a minimum, however, modules are not to be interpreted as software that is not implemented on hardware, firmware, or recorded on a non-transitory processor readable recordable storage medium (i.e., modules are not software per se). Indeed “module” is to be interpreted to always include at least some physical, non-transitory hardware such as a part of a processor or computer. Two different modules can share the same physical hardware (e.g., two different modules can use the same processor and network interface). The modules described herein can be combined, integrated, separated, and/or duplicated to support various applications.
- a function described herein as being performed at a particular module can be performed at one or more other modules and/or by one or more other devices instead of or in addition to the function performed at the particular module.
- the modules can be implemented across multiple devices and/or other components local or remote to one another. Additionally, the modules can be moved from one device and added to another device, and/or can be included in both devices.
- the subject matter described herein can be implemented in a computing system that includes a back-end component (e.g., a data server), a middleware component (e.g., an application server), or a front-end component (e.g., a client computer having a graphical user interface or a web browser through which a user can interact with an implementation of the subject matter described herein), or any combination of such back-end, middleware, and front-end components.
- the components of the system can be interconnected by any form or medium of digital data communication, e.g., a communication network. Examples of communication networks include a local area network (“LAN”) and a wide area network (“WAN”), e.g., the Internet.
- LAN local area network
- WAN wide area network
- Approximating language may be applied to modify any quantitative representation that could permissibly vary without resulting in a change in the basic function to which it is related. Accordingly, a value modified by a term or terms, such as “about,” “approximately,” and “substantially,” are not to be limited to the precise value specified. In at least some instances, the approximating language may correspond to the precision of an instrument for measuring the value.
- range limitations may be combined and/or interchanged, such ranges are identified and include all the sub-ranges contained therein unless context or language indicates otherwise.
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| Application Number | Priority Date | Filing Date | Title |
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| US202163221927P | 2021-07-14 | 2021-07-14 | |
| PCT/US2022/036664 WO2023287698A1 (en) | 2021-07-14 | 2022-07-11 | Configuration of asset monitoring systems |
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| US10796235B2 (en) * | 2016-03-25 | 2020-10-06 | Uptake Technologies, Inc. | Computer systems and methods for providing a visualization of asset event and signal data |
| US10740206B2 (en) * | 2018-07-18 | 2020-08-11 | Sap Se | Record-based planning in operational maintenance and service |
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