IP Library Granted Patent US 12,028,011
Granted Patent B2
US 12,028,011 · App. 17/607,243 · Granted Jul 2, 2024

Method and device for detection of condition of brushless motors and generators

Inventor: Justine Elaine Haupt (Mattituck, NY)
Assignee: Brookhaven Science Associates, LLC
H02P6/183H02P2203/11H02P2207/05
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Quick Facts
Patent No.
US 12,028,011
App. No.
17/607,243
Granted
Jul 2, 2024
Kind
B2
Abstract

A method and device for determining the position of a rotor in a brushless motor is provided. The method generally includes: injecting electrical signals into a stator of the brushless motor; measuring scattering parameters reflected back from the stator, wherein the scattering parameters are influenced by the near-field dynamics impaired by the motor; and comparing the measured scattering parameters to a predetermined data set of scattering parameters for known rotor positions to determine the position of the rotor. The method and device is also suitable for determining a condition of a motor or a generator.

Claims (37)

1. A method for determining the position of a rotor in a brushless motor, the method comprising:

injecting electrical signals into a stator of the brushless motor;

measuring scattering parameters reflected back from the stator, wherein the scattering parameters are influenced by the near-field dynamics imparted by the motor; and

comparing the measured scattering parameters to a predetermined data set of scattering parameters for known rotor positions to determine the position of the rotor.

2. The method as defined in claim 1 , wherein the predetermined data set of scattering parameters comprises a library of plots of scattering parameters over a predetermined frequency range, and wherein the step of comparing the measured scattering parameters comprises:

generating a plot of the measured scattering parameters over a predetermined frequency range; and

matching the generated plot with one of the plots in the library to determine the position of the rotor.

3. The method as defined in claim 1 , wherein the electrical signals are injected using a scanning procedure, wherein discrete frequencies are introduced consecutively.

4. The method as defined in claim 1 , wherein a predetermined range of frequencies of the electrical signals are injected simultaneously as noise.

5. The method as defined in claim 1 , wherein the determined position of the rotor is an absolute position valve.

6. The method as defined in claim 1 , wherein the determined position of the rotor is an incremental position value.

7. The method as defined in claim 1 , wherein the predetermined data set of scattering parameters for known rotor positions is generated by a method comprising:

setting the rotor of the motor to a first selected rotational position;

injecting electrical signals into the stator of the motor with the rotor in the first selected position;

measuring first scattering parameters reflected back from the stator with the rotor in the first selected position;

generating a first plot of the measured first scattering parameters over a predetermined frequency range;

storing the first plot of the measured first scattering parameters for the first selected rotational position in the predetermined data set;

setting the rotor of the motor to a second selected rotational position;

injecting electrical signals into the stator of the motor with the rotor in the second selected position;

measuring second scattering parameters reflected from the stator with the rotor in the second selected position;

generating a second plot of the measured second scattering parameters over a predetermined frequency range for the second selected position; and

storing the second plot of the measured second scattering parameters for the second selected rotational position in the predetermined data set.

8. A device for determining the position of a rotor in a brushless motor, the device comprising:

a source electrically connected to a stator of the brushless motor for injecting electrical signals into the stator; and

a meter electrically connected to the stator for measuring scattering parameters reflected back from the stator and for comparing the measured scattering parameters to a predetermined data set of scattering parameters for known rotor positions to determine the position of the rotor.

9. The device as defined in claim 8 , wherein the meter comprises a directional coupler electrically connected between the source and the stator of the motor.

10. The device as defined in claim 8 , wherein the meter comprises:

a digitizer for measuring the scattering parameters; and

a processor for computing a Fast Fourier Transform (FFT) based on data recorded from the digitizer.

11. The device as defined in claim 10 , wherein the processor comprises a neural network for generation that predetermined data set and for interpreting that measured scattering parameters.

12. A device for determining the condition of a generator or a motor, the device comprising:

a source electrically connected to the generator or the motor for injecting electrical signals into the generator or the motor;

a meter electrically connected to the generator or the motor for measuring scattering parameters or performance parameters reflected back from the generator or the motor and for comparing the measured scattering parameters or the measured performance parameters to a predetermined data set of scattering parameters or a predetermined data set of performance parameters to determine the condition of the generator or the motor;

a digitizer for measuring the scattering parameters or the performance parameters; and

a processor for computing analysis based on data recorded from the digitizer, wherein the processor comprises at least one neural network for generation of the predetermined data sets, for interpreting the measured scattering parameters or the measured performance parameters and for inferring information about the condition of the motor or the generator.

13. The device of claim 12 wherein the performance parameters are thickness of internal winding insulation, moisture content of internal winding insulation, magnetic permeability of structural and magnetic components, presence of corrosion on structural and magnetic components, or variations in magnet or stator pole spacing.

14. The device of claim 12 wherein the computing analysis further comprises a neural network analysis directed to warn or obtain warning of a motor or generator failure without specifically identified performance parameters.

Assignments (2)
CONFIRMATORY LICENSE Recorded Jul 21, 2023
From: BROOKHAVEN SCIENCE ASSOC-BROOKHAVEN LAB
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 064341/0694 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 6, 2023
From: HAUPT, JUSTINE E.
To: BROOKHAVEN SCIENCE ASSOCIATES, LLC
Reel/Frame 062892/0418 →
Continuity (3)
Provisional Application 62896183 · Sep 5, 2019
Provisional Application 62840471 · Apr 30, 2019
Related Publication 20220224261A1 · Jul 14, 2022