Nova Patents
EP2139106B1

Controller for motor

Abstract

This record has no abstract on file.

EP2139106B1, drawing sheet 1
Sheet 1 of 9

Term

1.4 yearsleft in the term

Expires 26 February 2028.

  1. Priority
  2. Filed
  3. Granted
  4. Today
  5. Expires

7 claims: 2 independent, 5 dependent

  1. 1
    A controller for an axial gap-type motor (3), comprising:a rotor (11) having a permanent magnet (15);and a first stator (12a) and a second stator (12b) oppositely disposed in an axial direction of revolution of the rotor (11) with the rotor (11) interposed therebetween, further includes an electrification control portion (8) configured to supply a torque current (Iq) for generating a magnetic field to revolve the rotor (11) to an armature winding (13a) of the first stator (12a), and a field current (+Id) for reinforcing a magnetic flux or a field current (-Id) for weakening the magnetic flux generated by the permanent magnet of the rotor (11) to an armature winding of the second stator, characterized in that the controller further comprises a switcher (50) configured to switch over a connected state and a disconnected state between the armature winding (13b) of the second stator (12b) and a power drive circuit of the armature winding (13b) of the second stator (12b) wherein the switcher (50) switches the connection between the armature winding (13b) of the second stator (12b) and the power drive circuit of the armature winding (13b) of the second stator (12b) to the disconnected state on a condition when no field current is supplied by the electrification control portion (8) to the armature winding (13b) of the second stator (12b) to generate a magnetic flux for weakening or reinforcing the magnetic flux generated by the permanent magnet (15) of the rotor (11).
  2. 4
    A controller for an axial gap-type motor (3), comprising:a rotor (11) having a permanent magnet (15);and a first stator (12a) and a second stator (12b) oppositely disposed in an axial direction of revolution of the rotor (11) with the rotor (11) interposed therebetween, further includes an electrification control portion (8) configured to supply a torque current (Iq) for generating a magnetic field to revolve the rotor (11) to an armature winding (13a) of the first stator (12a), and a field current (+Id) for reinforcing a magnetic flux or a field current (-Id) for weakening the magnetic flux generated by the permanent magnet of the rotor (11) to an armature winding of the second stator, characterized in that the controller further comprises a terminal voltage detection portion (32a) configured to detect a terminal voltage (Vt) of the armature winding (13a) of the first stator (12a), wherein the electrification control portion (8) supplies the field current to the armature winding (13b) of the second stator (12b) to generate a magnetic flux to weaken the magnetic flux generated by the permanent magnet (15) of the rotor (11) on a condition when the terminal voltage of the armature winding (13a) of the first stator (12a) is equal to or greater than a defined value as the rotor (11) is revolving, a revolution number (ω) detection portion configured to detect a revolution number (ω) of the motor (3), wherein the electrification control portion (8), on a condition when the terminal voltage (Vt) of the armature winding (13a) of the first stator (12a) is equal to or greater than the defined value as the rotor (11) is revolving and the revolution number (ω) of the motor (3) is equal to or greater than a defined revolution number (ω), forms the power drive circuit of the second stator (12b), and switches off both a first switching element (62b) disposed at each phase of the second stator (12b) for connecting or disconnecting an input portion of the armature winding (13b) of each phase to a high potential side and a second switching element (63b) disposed at each phase of the second stator (12b) for connecting or disconnecting the input portion of the armature winding (13b) of each phase to a low potential side, or switches on each of the first switching elements (62b) and switches off each of the second switching elements (63b), or switches off each of the first switching elements (62b) and switches on each of the second switching elements (63b).
  3. 5
    The controller for the motor according to one of claims 1 to 4, further includes a first power source (38a) configured to supply the torque current to the armature winding (13a) of the first stator (12a) and a second power source (38b) configured to supply the field current to the armature winding (13b) of the second stator (12b) separately, wherein an output voltage of the second power source (38b) is configured lower than that of the first power source (38a).
  4. 6
    The controller for the motor according to one of claims 1 to 5, wherein a wired number of the armature winding (13a) of the first stator (12a) is configured to be less than that of the armature winding (13b) of the second stator (12b).
  5. 7
    The controller for the motor according to one of claims 1 to 6, wherein a cross-sectional area of a magnetic circuit of the first stator (12a) is configured identical to that of the second stator (12b).