Claims
- 1. A motor/generator for regulating an output voltage or a mechanical power output, comprising:
a rotor including a Halbach array; the rotor being capable of rotating at a variable angular velocity; a stator including a plurality of electrically conductive windings; a variable gap separating the rotor and the stator; and means for adjusting the gap responsive to the angular velocity to automatically regulate the output voltage or the mechanical power output.
- 2. The motor/generator defined in claim 1 wherein:
the adjusting means is comprised of a centrifugal force acting against the rotor and the rotor having a diameter that varies in response to the centrifugal force, whereby
the gap varies in response to the centrifugal force.
- 3. The motor/generator defined in claim 2 wherein:
the angular velocity has an operating range; and the adjusting means maintains the output voltage at an approximately constant voltage value over the operating range.
- 4. The motor/generator defined in claim 2 wherein:
the angular velocity has an operating range; and the adjusting means maintains the mechanical power output at an approximately constant power value over the operating range.
- 5. The motor/generator defined in claim 2 wherein:
the rotor is rotatable about an axis of rotation; the stator is stationary relative to the axis of rotation; the stator and the rotor are concentric, with the stator lying closer to the axis than the rotor; and the gap varies radially relative to the axis of rotation.
- 6. The motor/generator defined in claim 5 wherein:
the Halbach array is comprised of a plurality of magnets configured in a cylindrical shape, and has an inner surface and an outer surface, with the inner surface being closer to the axis of rotation than the outer surface; and the rotor includes a cylinder attached to the outer surface.
- 7. The motor/generator defined in claim 6 wherein the cylinder is comprised of a fiber composite.
- 8. The motor/generator defined in claim 6 wherein:
each of the windings has an approximately rectangular shape including an inner section and an outer section, with the inner section being closer to the axis of rotation than the outer section; and the gap being in between the inner surface of the Halbach array and the outer sections of the windings.
- 9. The motor/generator defined in claim 8 further comprising:
a plane intersecting each of the windings, respectively, and the axis of rotation; and the windings being azimuthally spaced apart from each other, whereby
the windings are azimuthally disposed around the axis of rotation.
- 10. The motor/generator defined in claim 9 wherein:
each of the windings lies in between two other of the windings and is spaced apart from each of the two other windings by a spacing; and the spacing is equal for each of the windings.
- 11. The motor/generator defined in claim 7 wherein:
the Halbach array generates a magnetic field having a pole order; the cylinder has a Young's modulus; and the output voltage and the mechanical power output are also a function of the pole order and the Young's modulus.
- 12. The motor/generator defined in claim 9 wherein the Halbach array includes a plurality of magnets equal to four times the pole order.
- 13. A method for automatically regulating an output voltage of a generator comprising:
generating the output voltage by rotating a rotor at a variable angular velocity with respect to a stator; and varying a gap between the rotor and the stator responsive to the angular velocity.
- 14. The voltage regulation method as recited in claim 13 further comprising maintaining the output voltage at an approximately constant voltage value over an operating range of the angular velocity.
- 15. The voltage regulation method as recited in claim 14 wherein the gap is varied by radially translating the rotor relative to the stator by applying a centrifugal force to the rotor.
- 16. A method for automatically regulating a mechanical power output of a motor comprising:
rotating a rotor at a variable angular velocity with respect to a stator by applying a variable voltage input to the stator; and varying a gap between the rotor and the stator responsive to the angular velocity.
- 17. The mechanical power regulation method as recited in claim 16 further comprising maintaining the mechanical power output at an approximately constant power value over an operating range of the angular velocity.
- 18. The mechanical power regulation method as recited in claim 17 wherein the gap is varied by radially translating the rotor relative to the stator by applying a centrifugal force to the rotor.
- 19. A motor/generator for automatically regulating an output voltage or a mechanical power output, comprising:
a Halbach array being radially spaced apart from a stator by a variable gap and being rotatable relative to the stator at an angular velocity; and the gap being automatically varied as a function of the angular velocity.
- 20. The motor/generator defined in claim 19 further comprising:
a voltage being generated by the rotation of the Halbach array at the angular velocity; the angular velocity having a range; and the gap being responsive to a centrifugal force generated by the angular velocity and maintaining the output voltage at an approximately constant voltage value over the angular velocity range.
- 21. The motor/generator defined in claim 19 wherein:
the Halbach array is rotated at the angular velocity by an input voltage applied to the stator; the input voltage has a range; and the gap is responsive to a centrifugal force generated by the angular velocity and maintains the angular velocity at an approximately constant value over the input voltage range.
Government Interests
[0001] The United States Government has rights in this invention pursuant to Contract No. W-7405-ENG-48 between the United States Department of Energy and The University of California for the operation of Lawrence Livermore National Laboratory.