IP Library Granted Patent US 9,397,591
Granted Patent B2
US 9,397,591 · App. 14/337,385 · Granted Jul 19, 2016

Motor with rotor-mounted control circuitry

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Quick Facts
Patent No.
US 9,397,591
App. No.
14/337,385
Granted
Jul 19, 2016
Kind
B2
Abstract

A rotating electromechanical machine has a rotor having at least one current-carrying winding and at least one rotor-mounted sensor configured to sense a machine property or parameter during machine operation. Rotor-mounted circuitry dynamically modifies at least one property of the current-carrying winding during machine operation in response to the sensed machine property or parameter.

Claims (50)

1. An electrical rotating machine, comprising:

a rotor having at least one current-carrying circuit;

at least one rotor-mounted sensor configured to sense an electrical machine property during machine operation; and

rotor-mounted electrical circuitry responsive to the rotor-mounted sensor, wherein the electrical circuitry is configured to dynamically modify a property of the current-carrying circuit during machine operation in response to the sensed electrical machine property,

wherein the rotor-mounted circuitry configured to modify a property of the current-carrying circuit comprises a voltage source, and/or a current source, a source of electrical reactance, and/or energy storage/supply device.

2. The electrical machine of claim 1 , wherein the at least one rotor-mounted sensor is configured to sense at least one of a circuit voltage, a circuit current, a magnetic field, a magnetic permeability, a temperature, a speed, a rotation rate, a rotation angle and/or an angular acceleration.

3. The electrical machine of claim 1 , wherein the rotor-mounted circuitry configured to modify a property of the current-carrying circuit comprises one or more electronic switching devices.

4. The electrical machine of claim 1 , wherein the rotor-mounted circuitry configured to modify a property of the current-carrying circuit comprises a linear electronic device and/or circuit.

5. The electrical machine of claim 4 , wherein the linear electronic device and/or circuit comprises at least one of a MOSFET, an IGBT, and/or a bipolar transistor.

6. The electrical machine of claim 5 , wherein the rotor-mounted circuitry configured to modify a property of the current-carrying circuit comprises one or more active or passive electronic devices placed in series and/or parallel with all or part of the current-carrying circuit.

7. The electrical machine of claim 5 , wherein the energy storage/supply device comprises one or more of an inductor, a capacitor, a primary and/or secondary battery.

8. The electrical machine of claim 5 , wherein the energy storage/supply device comprises a device that is rechargeable during machine operation.

9. The electrical machine of claim 5 , wherein the rotor-mounted circuitry is configured to modify one or more of real and/or reactive impedance, capacitance, reluctance, magnetic saturation, inductance and/or mutual inductance of the current-carrying circuit.

10. The electrical machine of claim 5 , wherein the rotor-mounted circuitry is configured to vary the property of the current-carrying circuit as a function of rotor angle or position, rotation rate, and/or angular acceleration.

11. The electrical machine of claim 5 , wherein the rotor-mounted circuitry is configured to vary the property of the current-carrying circuit as a continuous function.

12. The electrical machine of claim 5 , wherein the rotor-mounted circuitry is configured to vary the property of the current-carrying circuit in response to a time history of sensor values.

13. The electrical machine of claim 5 , wherein the rotor-mounted circuitry configured to vary the property of the current-carrying circuit comprises a switch-mode regulator.

14. The electrical machine of claim 5 , further comprising, a controller configured to supervise operation of the at least one rotor-mounted sensor and the rotor-mounted circuitry.

15. A rotor assembly for an electrical rotating machine, the assembly comprising:

a rotatable body;

an on-rotor sensor having a sensing portion coupled to an optical readout portion that is disposed on a cylindrical surface of the rotatable body,

 wherein the sensing portion is configured to sense a machine parameter during machine operation, and wherein the optical readout portion is arranged to be optically read by an external reading device,

wherein the on-rotor sensor is one of a battery-powered sensor, a capacitively-powered sensor, an inductively-powered sensor and/or an optically powered sensor.

16. The rotor assembly of claim 15 , wherein the optical readout portion comprises one or more of a liquid crystal display, a micro mirror, an actuated-mirror/cornercube, an LED, and/or a MEMS-actuated flag.

17. The rotor assembly of claim 15 , wherein the optical readout portion is arranged to be optically read by the external reading device disposed on or about a stator or a mounting frame external to the rotor assembly.

18. The rotor assembly of claim 15 , wherein the optical readout portion is arranged to serially or in parallel provide individual readout values of the machine parameter corresponding to a plurality of individual rotor axial/radial parameters.

19. The rotor assembly of claim 15 , wherein the optical readout portion is arranged to provide a multiplexed readout of values of the machine parameter corresponding to a plurality of individual rotor axial/radial parameters.

20. A method comprising:

during operation of an electrical rotating machine having a rotor with at least one current-carrying circuit,

sensing a machine property using at least one rotor-mounted sensor; and

dynamically modifying a property of the current-carrying circuit in response to the sensed machine property,

wherein the rotor-mounted circuitry comprises a voltage source, a current source, a source of electrical reactance, and/or an energy storage/supply device.

21. The method of claim 20 , wherein sensing a machine property using at least one rotor-mounted sensor comprises sensing at least one of a circuit current, a circuit voltage, a magnetic field, a magnetic permeability, a temperature, a rotation rate, a rotation angle, and/or an angular acceleration.

22. The method of claim 20 , wherein dynamically modifying a property of the current-carrying circuit comprises deploying rotor-mounted circuitry to modify a property of the current-carrying circuit.

23. The method of claim 20 , wherein the rotor-mounted circuitry comprises one or more comprises one or more active electronic devices.

24. The method of claim 20 , wherein the rotor-mounted circuitry comprises one or more comprises one or more the electronic switching devices.

25. The method of claim 20 , wherein the rotor-mounted circuitry comprises one or more one or more of a triac, a silicon-controlled rectifier, solid state relay, and/or a thyristor.

26. The method of claim 20 , wherein the rotor-mounted circuitry comprises one or more one or more linear electronic devices and/or circuits.

27. The method of claim 20 , wherein the rotor-mounted circuitry rotor-mounted circuitry comprises one or more active or passive electronic devices placed in series and/or parallel with all or part of the current-carrying circuit.

28. The method of claim 20 , wherein the energy storage/supply device comprises one or more of an inductor, a capacitor, a primary battery, a secondary battery, an inductively sourced circuit and/or an electromechanically sourced circuit.

29. The method of claim 20 , wherein the energy storage/supply device comprises a device that is rechargeable during machine operation.

30. The method of claim 20 , wherein the rotor-mounted circuitry is configured to modify a real or reactive current, a capacitance, a real or reactive impedance, an inductance, and/or a mutual inductance of the current-carrying circuit.

31. The method of claim 20 , wherein the rotor-mounted circuitry configured to vary the property of the current-carrying circuit comprises a switch-mode regulator.

32. The method of claim 20 , wherein the switch-mode regulator switches the property of the current-carrying circuit at a rate higher than a nominal frequency.

33. The method of claim 20 , further comprising, a controller configured to supervise operation of the at least one rotor-mounted sensor and the rotor-mounted circuitry.

34. The method of claim 20 , wherein the controller is configured or programmed to regulate a machine operating parameter.

35. The method of claim 20 , wherein the machine operating parameter is one of a starting current, a running current, a rotor speed and/or acceleration, a temperature at a rotor location, a power consumption, and/or a torque.

36. The method of claim 20 , wherein the controller comprises one or more rotor-mounted controller components and/or off-rotor controller components.

37. The method of claim 20 , wherein off-rotor components are configured to communicate with the rotor-mounted circuitry, the at least one rotor-mounted sensor and/or the one or more rotor-mounted controller components via optical, RF, acoustic, ultrasound, inductive, capacitive, and/or conducting means.

38. The method of claim 20 , wherein the controller is configured to receive data inputs, settings, and commands from off-rotor sensors and/or external sources.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 18, 2023
From: DEEP SCIENCE LLC
To: ENTERPRISE SCIENCE FUND, LLC
Reel/Frame 064933/0223 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 15, 2016
From: SEARETE LLC
To: DEEP SCIENCE, LLC
Reel/Frame 037535/0584 →