IP Library Granted Patent US 12,276,541
Granted Patent B2
US 12,276,541 · App. 17/996,081 · Granted Apr 15, 2025

Method and system for non-invasive vibration-based condition monitoring of a machine

Inventors: Ricardo Alexandre De Matos Antunes Ferreira (Braga, PT); Tim Böhnert (Braga, PT); Elvira Paz Pérez De Colosía (Braga, PT)
Assignee: INTERNATIONAL IBERIAN NANOTECHNOLOGY LABORATORY (INL)
G01H11/04G01M99/005
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Quick Facts
Patent No.
US 12,276,541
App. No.
17/996,081
Granted
Apr 15, 2025
Kind
B2
Abstract

A method and a device for non-invasive vibration-based condition monitoring of a machine placed on a physical frame of reference, using a time-domain broadband magnetoresistive sensor having a sensor transfer function of electric resistance versus magnetic field intensity, said machine comprising an attached magnet or a magnetic part; comprising the steps of: placing the magnetic sensor on said physical frame of reference at a distance from the machine and at a predetermined distance from the magnet or magnetic part, such that the magnetoresistive sensor is operating in a dynamic part of the sensor transfer function in respect of the magnetic field produced by the magnet or a magnetic part; capturing a time-domain magnetic field signal transduced by the sensor; and using an electronic data processor to process the captured signal to obtain a vibration-based indicator of the machine's condition.

Claims (25)

1. A method for non-invasive vibration-based condition monitoring of a machine and moving parts of the machine, comprising:

attaching a magnet to an exterior surface of a frame of a machine that comprises the frame and at least one moving part that is located in an interior of the frame and is mechanically coupled to the frame;

placing a magnetoresistive sensor at a location that is external to the machine, at a distance from the machine, and at a predetermined distance from the magnet, in a manner such that the magnetoresistive sensor is mechanically uncoupled from said machine, and is operating in a dynamic part of a sensor transfer function in respect of a magnetic field produced by the magnet;

detecting a time-domain magnetic field signal transduced by the magnetoresistive sensor, including a broadband response of the magnetoresistive sensor that includes 0 Hz or a DC component, wherein the time-domain magnetic field signal includes first information representing a first movement of the frame of the machine and second information representing a second movement of the at least one moving part;

extracting from the time-domain magnetic field signal the second information representing the second movement of the at least one moving part; and

determining a condition of the at least one moving part located in the interior of the frame of the machine based on the second information representing the second movement of the at least one moving part.

2. The method for non-invasive condition monitoring of a machine and moving parts of the machine according to claim 1 , wherein the magnetoresistive sensor comprises a time-domain broadband magnetoresistive sensor having a sensor transfer function of electric resistance versus magnetic field intensity,

the method further comprising:

operating the magnetoresistive sensor in a linear part of the sensor transfer function in respect of a magnetic field produced by the magnet, wherein the magnetoresistive sensor is selected from the group consisting of: a magnetic tunnel junction, MTJ, sensor; a tunnel magnetoresistance, TMR, sensor; a giant magnetoresistance, GMR, sensor; and an anisotropic magnetoresistive, AMR, sensor.

3. The method for non-invasive condition monitoring of a machine and moving parts of the machine according to claim 1 , wherein the magnetoresistive sensor is a magnetic tunnel junction, MTJ, sensor;

the method further comprising arranging the predetermined distance and the MTJ sensor such that the MTJ sensor is being operated within a linear response portion of the MTJ sensor input-output function.

4. The method for non-invasive condition monitoring of a machine and moving parts of the machine according to claim 1 , further comprising placing the magnetic sensor on a vibration-dampening or mechanically-decoupled stand.

5. A system for non-invasive vibration-based condition monitoring of a machine and moving parts of the machine, the system comprising:

a time-domain wideband magnetoresistive sensor having a sensor transfer function of electric resistance versus magnetic field intensity, wherein the broadband magnetoresistive sensor has a broadband response that includes 0 Hz or a DC component,

a machine comprising a frame and at least one moving part that is located in an interior of the frame and is mechanically coupled to the frame the machine further comprising a magnet attached on an exterior surface of a frame of the machine,

a time-domain wideband magnetoresistive sensor having a sensor transfer function of electric resistance versus magnetic field intensity, wherein the broadband magnetoresistive sensor has a broadband response that includes 0 Hz or a DC component, the time-domain wideband magnetoresistive sensor being disposed at a location that is external to and mechanically uncoupled from said machine, at a distance from the machine, wherein the magnetoresistive sensor operates in a dynamic part of the sensor transfer function in respect of a magnetic field produced by the magnet; and

an electronic data processor configured for:

detecting a time-domain magnetic field signal transduced by the magnetoresistive sensor including a broadband response of the magnetoresistive sensor that includes 0 Hz or a DC component, wherein the time-domain magnetic field signal includes first information representing a first movement of the frame of the machine and second information representing a second movement of the at least one moving part; and

processing the captured signal to obtain a vibration-based indicator of the machine's condition;

extracting from the time-domain magnetic field signal the second information representing the second movement of the at least one moving part; and

determining a condition of the at least one moving part located in the interior of the frame of the machine based on the second information representing the second movement of the at least one moving part.

6. The system for non-invasive condition monitoring of a machine and moving parts of the machine according to claim 5 , wherein the broadband magnetoresistive sensor has a broadband response that includes a lower limit of 0 Hz and an upper limit of 1 KHz to 1 GHz.

7. The system for non-invasive condition monitoring of a machine and moving parts of the machine according to claim 5 , wherein the magnetoresistive sensor is selected from the group consisting of: a magnetic tunnel junction, MTJ, sensor; a tunnel magnetoresistance, TMR, sensor; a giant magnetoresistance, GMR, sensor; and an anisotropic magnetoresistive, AMR, sensor.

8. The system for non-invasive condition monitoring of a machine and moving parts of the machine according to claim 5 , wherein the magnetoresistive sensor comprises a magnetic tunnel junction, MTJ, sensor, and wherein the electronic data processor is configured for processing the captured signal which is obtained when the MTJ sensor operates within a linear response portion of the MTJ sensor input-output function.

9. The system for non-invasive condition monitoring of a machine and moving parts of the machine according to claim 5 , wherein the magnet is a compound magnet comprising an assembly of a plurality of magnets arranged for increasing the gradient of the produced magnetic field.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 13, 2022
From: DE MATOS ANTUNES FERREIRA, RICARDO ALEXANDRE; BÖHNERT, TIM; PAZ PÉREZ DE COLOSÍA, ELVIRA
To: INTERNATIONAL IBERIAN NANOTECHNOLOGY LABORATORY (INL)
Reel/Frame 061405/0839 →
Priority Claims (2)
PT 116300 · Apr 27, 2020 · national
EP 20190156 · Aug 7, 2020 · regional
Continuity (1)
Related Publication 20230142616A1 · May 11, 2023
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