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US20160245686A1 - Fault detection in rotor driven equipment using rotational invariant transform of sub-sampled 3-axis vibrational data - Google Patents

Fault detection in rotor driven equipment using rotational invariant transform of sub-sampled 3-axis vibrational data
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Publication number
US20160245686A1
US20160245686A1US14/977,675US201514977675AUS2016245686A1US 20160245686 A1US20160245686 A1US 20160245686A1US 201514977675 AUS201514977675 AUS 201514977675AUS 2016245686 A1US2016245686 A1US 2016245686A1
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United States
Prior art keywords
data
rotor driven
driven equipment
machine learning
engine
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Abandoned
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US14/977,675
Inventor
Biplab Pal
Anshul Bansal
Sneha Dutta
Pratyay Karar
Soumya Boral
Abhisek Dey
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Machinesense LLC
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Prophecy Sensors LLC
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Publication date
Priority claimed from US14/628,322external-prioritypatent/US20160245279A1/en
Application filed by Prophecy Sensors LLCfiledCriticalProphecy Sensors LLC
Priority to US14/977,675priorityCriticalpatent/US20160245686A1/en
Priority to PCT/US2016/018831prioritypatent/WO2016137849A2/en
Assigned to PROPHECY SENSORLYTICS LLCreassignmentPROPHECY SENSORLYTICS LLCASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: BANSAL, ANSHUL, KARAR, PRATYAY
Assigned to PROPHECY SENSORS, LLCreassignmentPROPHECY SENSORS, LLCASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: PAL, BIPLAB, PHD
Assigned to PROPHECY SENSORLYTICS LLCreassignmentPROPHECY SENSORLYTICS LLCASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: BORAL, SOUMYA, DUTTA, ARNAB
Assigned to PROPHECY SENSORLYTICS LLCreassignmentPROPHECY SENSORLYTICS LLCASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: DEY, ABHISHEK
Assigned to PROPHECY SENSORS, LLCreassignmentPROPHECY SENSORS, LLCASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: PROPHECY SENSORLYTICS LLC
Publication of US20160245686A1publicationCriticalpatent/US20160245686A1/en
Assigned to PROPHECY SENSORLYTICS, LLCreassignmentPROPHECY SENSORLYTICS, LLCCHANGE OF NAME (SEE DOCUMENT FOR DETAILS).Assignors: PROPHECY SENSORS, LLC
Assigned to MACHINESENSE, LLCreassignmentMACHINESENSE, LLCCHANGE OF NAME (SEE DOCUMENT FOR DETAILS).Assignors: PROPHECY SENSORLYTICS, LLC
Priority to US16/286,058prioritypatent/US10638295B2/en
Priority to US16/439,875prioritypatent/US11162837B2/en
Abandonedlegal-statusCriticalCurrent

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Abstract

A method and system of detecting faults in rotor driven equipment includes generating data from one or more vibration sensors communicatively coupled to the rotor driven equipment. The data from the one or more machine wearable sensors is collected onto a mobile data collector. The data is sampled at random to estimate a maximum value. Further, a sampling error may be controlled under a predefined value. The data may be analyzed through a combination of Cartesian to Spherical transformation, statistics of the entity extraction (such as variance of azimuthal angle), big data analytics engine and a machine learning engine. A fault is displayed on a user interface associated with the rotor driven equipment.

Description

Claims (16)

What is claimed is:
1. A method of detecting faults in a rotor driven equipment comprising:
generating multiple axis vibration data from one or more vibration sensors communicatively coupled to the rotor driven equipment;
collecting the data from the one or more machine wearable sensors onto a mobile data collector;
sampling, through a processor, the data at random to estimate a maximum value;
controlling a sampling error under a predefined value, wherein the sampling error is associated with the data;
analyzing the data through a combination of Cartesian to Spherical transformation, statistics of extracted entity of one or more spherical variables, big data analytics engine and a machine learning engine,
wherein the Cartesian to spherical transformation is to make vibrational vectors invariant; and
displaying on a user interface a fault associated with the rotor driven equipment.
2. The method ofclaim 1, further comprising determining the at least one rotor driven equipment issue based on one or more computations.
3. The method ofclaim 2, wherein a computation engine enables the one or more computations including at least one of a series of entity extraction of vibrational data, RMS, variance and kurtosis of azimuthal angle, peak to RMS ratio, percentiles ratio, ratio of variance of each individual vibration axis.
4. The method ofclaim 1, wherein the alarm is set through at least one of a rule based engine and a multi-classification machine learning engine.
5. The method ofclaim 1, wherein the user interface dynamic is a predictive maintenance circular gauge.
6. The method ofclaim 1,
wherein the rotor driven equipment issues include at least one of a belt tension, filter condition, abusive operation, oil level, and viscosity of oil;
wherein the issues are discovered through a machine learning multi-classification; and
wherein the machine learning multi-classification includes at least one of a neural network, random forest, logistical regression, and support vector machine (SVM).
7. The method ofclaim 1 wherein the communication network is one of Wi-Fi, 2G, 3G, 4G, GPRS, EDGE, Bluetooth, ZigBee, Piconet of BLE, Zwave or a combination thereof.
8. The method ofclaim 1, wherein the alarm is raised over the communication network through one of a notification on the mobile application, Short Message Service (SMS), email or a combination thereof.
9. A method of predicting rotor driven equipment issues, the method comprising:
collecting, through a processor, data associated with at least one machine wearable sensor associated with a rotor driven equipment;
transmitting the data collected at the at least one machine wearable sensor over a communication network to a mobile data collector,
wherein the data collected is over a finite time period and transmitted to a machine learning engine, and
wherein the machine learning engine is associated with a computer database hosting real time and historical data;
visualizing, through a processor, at least one rotor driven equipment issue based on an analysis through a combination of a big data engine and a machine learning engine;
indicating the at least one rotor driven equipment issue through a user interface dynamic; and
setting an alarm, through a processor, for the at least one rotor driven equipment issue.
10. The method ofclaim 9, further comprising of determining the at least one rotor driven equipment issue based on one or more computations.
11. The method ofclaim 10, wherein a computation engine enables the one or more computations.
12. The method ofclaim 9, wherein the alarm is set through at least one of a rule based engine and a multi-classification machine learning engine.
13. The method ofclaim 9, wherein the user interface dynamic is a predictive maintenance circular gauge.
14. The method ofclaim 9, wherein the rotor driven equipment issues include at least one of a belt tension, abusive operation, oil level, and oil state.
15. The method ofclaim 9, wherein the communication network is one of Wi-Fi, 2G, 3G, 4G, GPRS, EDGE, Bluetooth, ZigBee, Piconet of BLE, Zwave or a combination thereof.
16. The method ofclaim 9, wherein the alarm is raised over the communication network through one of a notification on the mobile application, Short Message Service (SMS), email or a combination thereof.
US14/977,6752015-01-172015-12-22Fault detection in rotor driven equipment using rotational invariant transform of sub-sampled 3-axis vibrational dataAbandonedUS20160245686A1 (en)

Priority Applications (4)

Application NumberPriority DateFiling DateTitle
US14/977,675US20160245686A1 (en)2015-02-232015-12-22Fault detection in rotor driven equipment using rotational invariant transform of sub-sampled 3-axis vibrational data
PCT/US2016/018831WO2016137849A2 (en)2015-02-232016-02-21Fault detection in rotor driven equipment using rotational invariant transform of sub-sampled 3-axis vibrational data
US16/286,058US10638295B2 (en)2015-01-172019-02-26System and method for turbomachinery preventive maintenance and root cause failure determination
US16/439,875US11162837B2 (en)2015-02-232019-06-13Detecting faults in rotor driven equipment

Applications Claiming Priority (2)

Application NumberPriority DateFiling DateTitle
US14/628,322US20160245279A1 (en)2015-02-232015-02-23Real time machine learning based predictive and preventive maintenance of vacuum pump
US14/977,675US20160245686A1 (en)2015-02-232015-12-22Fault detection in rotor driven equipment using rotational invariant transform of sub-sampled 3-axis vibrational data

Related Parent Applications (3)

Application NumberTitlePriority DateFiling Date
US14/628,322Continuation-In-PartUS20160245279A1 (en)2015-01-172015-02-23Real time machine learning based predictive and preventive maintenance of vacuum pump
US14/956,403Continuation-In-PartUS10481195B2 (en)2015-01-172015-12-02Distributed IoT based sensor analytics for power line diagnosis
US15/385,295Continuation-In-PartUS20170178030A1 (en)2015-01-172016-12-20Method, system and apparatus using field learning to upgrade trending sensor curves into fuel gauge based visualization of predictive maintenance by user driven feedback mechanism

Related Child Applications (3)

Application NumberTitlePriority DateFiling Date
US14/956,403Continuation-In-PartUS10481195B2 (en)2015-01-172015-12-02Distributed IoT based sensor analytics for power line diagnosis
US15/049,098Continuation-In-PartUS10613046B2 (en)2015-01-172016-02-21Method for accurately measuring real-time dew-point value and total moisture content of a material
US16/439,875DivisionUS11162837B2 (en)2015-02-232019-06-13Detecting faults in rotor driven equipment

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US14/977,675AbandonedUS20160245686A1 (en)2015-01-172015-12-22Fault detection in rotor driven equipment using rotational invariant transform of sub-sampled 3-axis vibrational data
US16/439,875Active2035-04-03US11162837B2 (en)2015-02-232019-06-13Detecting faults in rotor driven equipment

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