EP1522134A2

Dynamoelectric machine having an encapsulated coil structure

Abstract

This record has no abstract on file.

Term

Term ended

Projected expiry passed 10 July 2023, 3.2 years ago.

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  5. Today

231 claims: 55 independent, 176 dependent

  1. 1
    Claims of equivalent WO 2004008603 A2 CLAIMS What is claimed is:1. A method of making an armature, comprising: placing a commutator and a lamination stack on a armature shaft, the commutator having a commutator ring with a plurality of segments with slots between adjacent segments, the commutator ring having notches at axial inner ends of the slots, the notches filled with an electrically non-conductive material, each segment having a tang at an axial inner end;attaching ends of coil windings wound in slots in the lamination stack to the tangs of the commutator segments;placing the armature shaft, commutator and lamination stack in a mold having projections that extend between the tangs;and molding plastic around at least portions of the armature shaft, commutator and coil windings, the projections and filled notches preventing plastic from flowing into the slots between the commutator segments.
  2. 5
    A method of making an armature, comprising:placing a stuffer type commutator and a lamination stack on a armature shaft, the commutator having a commutator ring with a plurality of segments with slots between adjacent segments, each segment having a wire receiving slot at an axial inner end of the commutator ring, the commutator ring having inserts of insulative material extending axially part way into the slots between the adjacent segments from the axial inner end of the commutator ring;placing ends of coil windings wound in slots in the lamination stack to wire receiving slots of the commutator segments;placing the armature shaft, commutator and lamination stack assembly in a mold that has a portion that fits around the commutator ring over the inserts;and molding plastic around at least portions of the armature shaft, commutator and lamination stack, the portion of the mold that fits around the commutator ring over the inserts preventing the plastic from flowing into the slots between the commutator segments.
  3. 6
    A coil structure for a dynamoelectric machine, comprising:a lamination stack having a plurality of slots in which magnet wires are wound forming coils and thermally conductive plastic molded around the magnet wires with at least a feature formed in the thermally conductive plastic to enhance heat transfer.
  4. 14
    An armature for an electric motor, comprising:a shaft having a lamination stack thereon, the lamination stack having a plurality of slots in which magnet wires are wound forming coils, thermally conductive plastic molded at least partially around the magnet wires with at least a feature formed in the thermally conductive plastic to enhance heat transfer.
  5. 21
    An armature for an electric motor, comprising:a shaft having a lamination stack thereon, the lamination stack having a plurality of slots in which magnet wires are wound forming coils, thermally conductive plastic molded at least partially around the magnet wires to cover the magnet wires in the slots and so that an outer surface of the plastic is recessed from an outer surface of the lamination stack.
  6. 27
    An armature for an electric motor, comprising:a shaft having a lamination stack thereon, the lamination stack having a plurality of slots in which o magnet wires are wound forming coils, thermally conductive plastic molded around the magnet wires and the shaft to encapsulate the magnet wires, the thermally conductive plastic molded to form a fan on one end of the shaft extending from an end of the lamination stack, the plastic molded around the magnet wires in the slots so that an outer surface of the plastic is recessed from an outer surface of the lamination stack forming recesses between teeth of the lamination stack.
  7. 32
    A stator for an electric motor, comprising:a lamination stack having a plurality of slots in which magnet wires are wound forming coils, thermally conductive plastic molded at least partially around the magnet wires with at least one feature formed in the thermally conductive plastic to enhance heat transfer.
  8. 36
    A coil structure for a dynamoelectric machine, comprising:a lamination stack having a plurality of slots therein lined with slot liners made of thermally conductive plastic and magnet wires wound in the slots forming coils.
  9. 42
    An armature for an electric motor, comprising:a shaft having a lamination stack thereon, the lamination stack having a plurality of slots therein lined with slot liners made of thermally conductive plastic, magnet wires wound in the slots in the lamination stack forming coils, and a commutator affixed to one end of the shaft with ends of the magnet wires affixed to the commutator.
  10. 45
    A method of making an armature for an electric motor, comprising:placing a lamination stack having a plurality of slots therein on a shaft;lining the slots with slot liners made of thermally conductive plastic;affixing a commutator to an end of the shaft;winding magnet wires in the slots to form coils;and affixing ends of the magnet wires to the commutator.
  11. 48
    A stator for an electric motor, comprising:a lamination stack having a plurality of slots therein lined with slot liners made of thermally conductive plastic and magnet wires wound in the slots forming coils.
  12. 50
    A method of making a stator for an electric motor comprising lining slots in a lamination stack with slot liners made of thermally conductive plastic and winding wire in the slots to form coils.
  13. 52
    An electric motor, comprising an armature and a stator, the armature having a lamination stack having a plurality of slots therein lined with slot liners made of thermally conductive plastic and wires wound in the slots forming coils.
  14. 56
    An electric motor, comprising an armature and a stator, the stator having a lamination stack having a plurality of slots therein lined with slot liners made of thermally conductive plastic and wires wound in the slots of the lamination stack forming coils.
  15. 58
    An armature for an electric motor, comprising:a shaft having a lamination stack thereon, the lamination stack having a plurality of slots in which magnet wires are wound forming coils, the magnet wires having a layer of heat activated adhesive thereon, and plastic molded around the magnet wires, the heat of the plastic as it is molded activating the heat activated adhesive on the magnet wires.
  16. 62
    An armature for an electric motor, comprising:a shaft having a lamination stack thereon, the lamination stack having a plurality of slots in which magnet wires are wound forming coils, the magnet wires having a layer of heat activated adhesive thereon, and thermally conductive plastic molded around the magnet wires, the heat of the plastic as it is molded activating the heat activated adhesive on the magnet wires to bond the coils of magnet wires into mechanically solid coils within the plastic to reduce movement of the coils and improve thermal transfer of heat out of the magnet wires.
  17. 63
    An electric motor, comprising:a stator;an armature received in the stator, the armature having a shaft and a lamination stack on the shaft, the lamination stack having a plurality of slots;magnet wires wound in coils in slots of the lamination stack, the magnet wires having a coating of heat activated adhesive;and plastic molded around the magnet wires with heat of the plastic activating the heat activated adhesive on the magnet wires during molding of the plastic to bond the magnet wires together.
  18. 67
    A method of forming an armature for an electric motor, comprising:winding magnet wires having a coating of heat activated adhesive thereon in a plurality of slots in a lamination stack on a shaft to form coils;and molding hot plastic around the magnet wires, the heat of the plastic as it is being molded activating the heat activated adhesive on the magnet wires to bond the magnet wires of each coil together.
  19. 71
    A stator for an electric motor, comprising a lamination stack having a plurality of slots in which magnet wires are wound forming coils, the magnet wires having a layer of heat activated adhesive thereon, and plastic molded around the magnet wires, the heat of the plastic as it is molded activating the heat activated adhesive on the magnet wires.
  20. 75
    A stator for an electric motor, comprising:a lamination stack having a plurality of slots in which magnet wires are wound forming coils, the magnet wires having a layer of heat activated adhesive thereon, and thermally conductive plastic molded around the magnet wires, the heat of the plastic as it is molded activating the heat activated adhesive on the magnet wires to bond the coils of magnet wires into mechanically solid coils within the plastic to reduce movement of the coils and improve thermal transfer of heat out of the magnet wires. 5
  21. 76
    An electric motor, comprising:an armature;a stator, the stator including a lamination stack having a plurality of slots;magnet wires wound in coils in slots of the lamination stack of the stator, the magnet wires having a coating of heat activated adhesive;and o plastic molded around the magnet wires with heat of the plastic activating the heat activated adhesive on the magnet wires during molding of the plastic to bond the magnet wires together.
  22. 80
    A method of forming a stator for an electric motor comprising:winding magnet wires having a coating of heat activated adhesive thereon in a plurality of slots in a lamination stack to form coils;and molding hot plastic around the magnet wires, the heat of the plastic as it is being molded activating the heat activated adhesive on the magnet wires to bond the o magnet wires of each coil together.
  23. 84
    A coil structure for a dynamoelectric machine, comprising:a lamination stack having a plurality of slots in which magnet wires are wound forming coils, the magnet wires having a layer of heat activated adhesive thereon, and plastic molded around the magnet wires, the heat of the plastic as it is molded activating the heat activated adhesive on the magnet wires. 5
  24. 91
    A method of forming a coil structure for a dynamoelectric machine, comprising:winding magnet wires having a coating of heat activated adhesive thereon in a plurality of slots in a lamination stack on a shaft to form coils;and molding hot plastic around the magnet wires, the heat of the hot plastic activating the heat activated adhesive on the magnet wires to bond the magnet wires of each coil together.
  25. 98
    A coil structure for a dynamoelectric machine, comprising:a lamination stack having a plurality of slots in which magnet wires are wound forming coils and thermally conductive plastic molded around the magnet wires at a pressure sufficient to at least partially deform individual magnet wires into at least partial polygonal shapes.
  26. 105
    A method of making a coil structure for a dynamoelectric machine, comprising:winding magnet wires in a plurality of slots in a lamination stack to form coils;molding plastic around the magnet wires at a pressure sufficient to at least partially deform individual magnet wires into at least partial polygonal shapes.
  27. 112
    An armature for an electric motor, comprising:a lamination stack having slots therein;an armature shaft extending coaxially through the lamination stack;a plurality of magnet wires wound in the slots of the lamination stack;a commutator disposed on the armature shaft to which ends of the magnet wires are electrically coupled;an insulative sleeve disposed on the armature shaft between the lamination stack and the armature shaft and between the commutator and the armature shaft;and thermally conductive plastic at least partially encasing the magnet wires.
  28. 116
    An armature for an electric motor, comprising:a lamination stack having slots therein with slot liners formed of thermally conductive and electrically insulative plastic, the lamination stack having end spiders formed of the thermally conductive and electrically insulative plastic;an armature shaft extending coaxially through the lamination stack;a plurality of magnet wires wound in the slots of the lamination stack;a commutator disposed on the armature shaft to which ends of the magnet wires are electrically coupled;an insulative sleeve disposed on the armature shaft between the lamination 5 stack and the armature shaft and between the commutator and the armature shaft;and thermally conductive plastic at least partially encasing the magnet wires.
  29. 117
    A method for forming an armature for an electric motor, comprising:o placing an electrically insulative sleeve on an armature shaft;next securing a lamination stack having slots therein on the armature shaft with the insulative sleeve disposed therebetween;next molding electrically insulative plastic in the slots of the lamination stack to form slot liners and around the ends of the lamination stack to form end spiders;s next securing a commutator on one end of the armature shaft with the insulative sleeve disposed therebetween;next winding magnet wires in the slots in the lamination stack and securing ends of the magnet wires to the commutator;and next molding thermally conductive plastic to at least partially encase the o magnet wires in plastic.
  30. 120
    An armature for an electric motor, comprising:a lamination stack having slots therein;0 an armature shaft extending coaxially through the lamination stack;a plurality of magnet wires wound in the slots of the lamination stack;a commutator disposed on the armature shaft to which ends of the magnet wires are electrically coupled;an insulative sleeve disposed on the armature shaft between the lamination stack and the armature shaft and extending to the commutator;an electrically insulative seal disposed around the insulative sleeve and abutting the commutator to seal any gap between an end of the insulative sleeve and the commutator;and thermally conductive plastic at least partially encasing the magnet wires.
  31. 124
    An armature for an electric motor, comprising:a lamination stack having slots therein with slot liners formed of thermally conductive and electrically insulative plastic, the lamination stack having end spiders formed of the thermally conductive and electrically insulative plastic;an armature shaft extending coaxially through the lamination stack;a plurality of magnet wires wound in the slots of the lamination stack;a commutator disposed on the armature shaft to which ends of the magnet wires are electrically coupled;an insulative sleeve disposed on the armature shaft between the lamination stack and the armature shaft and extending to the commutator;an electrically insulative seal disposed around the insulative sleeve and abutting the commutator to seal any gap between an end of the insulative sleeve and the commutator;and thermally conductive plastic at least partially encasing the magnet wires.
  32. 125
    A method for forming an armature for an electric motor, comprising:placing an electrically insulative sleeve on armature shaft;next securing a lamination stack having slots therein on the armature shaft with the insulative sleeve disposed therebetween;next molding electrically insulative plastic in the slots of the lamination stack to form slot liners and around the ends of the lamination stack to form end spiders;next securing a commutator on one end of the armature shaft adjacent an end of the insulative sleeve;next winding magnet wires in the slots in the lamination stack and securing ends of the magnet wires to the commutator;and next molding thermally conductive plastic to at least partially encase the magnet wires and preventing any of the thermally conductive plastic from flowing into any gap between the commutator and the insulative sleeve.
  33. 130
    A method of manufacturing an armature for an electric motor, comprising:placing a commutator and a lamination stack on an armature shaft;winding magnet wire in slots in the lamination stacks to form coils;attaching ends of the magnet wire to the commutator;molding plastic around the magnet wire and around the shaft of the armature at ends of the lamination stack;adjusting a spinning inertia of the armature by adjusting at least one of a mass of the plastic molded and a distribution of the plastic molded.
  34. 134
    A method of manufacturing an armature for an electric motor, comprising:placing a commutator and a lamination stack on an armature shaft;winding magnet wire in slots in the lamination stacks to form coils;attaching ends of the magnet wire to the commutator;molding plastic around the magnet wire and around the shaft of the armature at ends of the lamination stack;adjusting at least one of a resonant frequency and critical speed of the armature by adjusting at least one of a geometry of the plastic molded, the physical properties of the plastic and the mechanical properties of the plastic.
  35. 139
    A method of manufacturing an armature for an electric motor, comprising:placing a commutator and a lamination stack on an armature shaft;winding magnet wire in slots in the lamination stacks to form coils;attaching ends of the magnet wire to the commutator;and molding plastic around the magnet wire and around the shaft of the armature to stiffen the armature and thereby increase the critical speed of the armature.
  36. 141
    A method for forming a given size armature to increase the power of an electric motor using that armature, comprising:securing a lamination stack having slots therein on an armature shaft;securing a commutator on one end of the armature shaft;winding magnet wires in the slots in the lamination stack and securing ends of the magnet wires to the commutator;and molding plastic to at least partially encase the magnet wires in the plastic;the magnet wires being larger than smaller magnet wires used in an armature of the given size where the magnet wires are not at least partially encased in plastic, the electric motor using the given size armature having the larger magnet wires having increased power compared to the electric motor using the given size armature having the smaller magnet wires.
  37. 158
    A method for forming a given size armature to increase the power of an electric motor using that armature, comprising:securing a lamination stack having slots therein on an armature shaft;securing a commutator on one end of the armature shaft;winding magnet wires in the slots in the lamination stack and securing ends of the magnet wires to the commutator;molding plastic over the magnet wires to at least partially encase the magnet wires in the plastic;and retaining a larger volume of magnet wires in the slots with the plastic than in an armature of the given size where the magnet wires are not at least partially encased in plastic, the electric motor using the given size armature having the larger volume of magnet wires having increased power compared to the electric motor using the given size armature having the smaller volume of magnet wires.
  38. 166
    The method of 165 wherein winding magnet wires in the slots includes winding magnet wires having a layer of heat activated adhesive thereon and activating the heat activated adhesive with heat of the plastic during the molding of the plastic.
  39. 174
    The method of 173 wherein winding magnet wires in the slots includes winding magnet wires having a layer of heat activated adhesive thereon and activating the heat activated adhesive with heat of the plastic during the molding of the plastic.
  40. 175
    A method for forming an armature for an electric motor, comprising:securing a lamination stack having slots therein on an armature shaft;securing a commutator on one end of the armature shaft;winding magnet wires in the slots in the lamination stack and securing ends of the magnet wires to the commutator, the magnet wires having armature lead wires that extend from the slots to the commutator;and molding plastic over the magnet wires to encase at least the armature lead wires in plastic.
  41. 179
    A method for forming an armature for an electric motor, comprising:securing a lamination stack having slots therein on an armature shaft;securing a commutator on one end of the armature shaft;winding magnet wires in the slots in the lamination stack and securing ends of the magnet wires to the commutator, the magnet wires having armature lead wires that extend from the slots to the commutator;and molding plastic over the magnet wires to retain them in the slots and to support the armature lead wires and prevent them from vibrating when the armature rotates during operation.
  42. 188
    A three plate mold for use in molding plastic around an armature for an electric motor, the armature having a shaft with a lamination stack and an armature affixed to the shaft, the mold comprising:a core plate;a cavity plate that closes against the core plate, the cavity plate having a o plurality of passages therein with a gate at each end of each passage that opens to a cavity of the mold;a runner plate that closes against the cavity plate, the runner plate having a shaft opening through which the armature shaft extends when the runner plate is closed against the cavity plate and an armature is in the mold cavity, the runner plate s having a ring runner around the shaft opening, the ring runner having openings that open to the passages in the cavity plate when the runner plate is closed against the cavity plate.
  43. 195
    In a two-plate mold for use in molding plastic around an armature for an electric motor, the improvement comprising the mold having at least one overflow tab cavity.
  44. 200
    A three plate mold for use in molding plastic around an armature for an electric motor, the armature having a shaft with a lamination stack and an armature affixed to the shaft, the mold comprising:a core plate;a cavity plate that closes against the core plate, the cavity plate having a gate for every two slots in the lamination stack, each gate opening to the mold cavity in spaced relation to an end of the lamination stack and between ends of adjacent slots in the lamination stack so that each gate feeds plastic to two adjacent slots in the lamination stack, the cavity plate further including a drop passage for each gate;a runner plate that closes against the cavity plate, the runner plate having a shaft opening through which the armature shaft extends when the runner plate is closed against the cavity plate and an armature is in the mold cavity, the runner plate having a runner that extends to a ring runner around the shaft opening, the ring runner having openings that open to the passages in the cavity plate when the runner plate is closed against the cavity plate, the ring runner including two semi-circular runners on opposite sides of the shaft opening, the semi-circular runners having the openings therein;a key for each slot in the lamination stack, the keys projecting into respective slots in the lamination stack and extending the length of the slots, the keys sized to provide thin wall flow regions before an outside diameter of the lamination stack to cause the plastic to start freezing off before it reaches the outside diameter of the lamination stack.
  45. 202
    A two-plate mold for use in molding plastic around an armature for an electric motor, the armature having a shaft with a lamination stack and an armature affixed to the shaft, the improvement comprising the mold having a plurality of overflow tab cavities, each overflow tab cavity coupled to a mold cavity by a gate that opens proximate to the commutator of the armature when the armature is received in the mold cavity, each gate sized so that as molding pressure builds up in the mold cavity, the plastic flows into the overflow tab cavities before flashing over the commutator of the armature.
  46. 204
    A method of forming an armature for an electric motor, comprising:placing a commutator and a lamination stack on an armature shaft;winding magnet wires in slots in the lamination stack to form coils;attaching ends of the magnet wires to the commutator;placing the armature in a cavity of a core plate of a three plate mold in an injection molding machine commutator first;locating the armature in the mold cavity by keys of the mold that project into the slots, the keys extending the length of the slots;closing a cavity plate against the core plate and closing a runner plate against the cavity plate, the shaft of the armature extending through the cavity plate and a shaft opening in the runner plate;injecting thermally conductive plastic into the mold cavity through a ring runner in the runner plate, through drop passages in the cavity plate and through gates at the end of the drop passages that open to the mold cavity, the gates located in spaced relation to and between adjacent slots in the lamination stack so that each gate directs plastic into two adjacent slots in the lamination stack;freezing off the plastic before it reaches an outside diameter of the lamination stack by a thin wall flow region before the outside diameter of the lamination stack provided by the keys being sized to provide the thin wall flow region.
  47. 205
    A method of forming an armature for an electric motor, comprising:placing a commutator and a lamination stack on an armature shaft;winding magnet wires in slots in the lamination stack to form coils;attaching ends of the magnet wires to the commutator;placing the armature in a cavity of a two-plate mold;and injecting thermally conductive plastic into the mold cavity and having the plastic flow into overflow cavities in the cavity plate of the mold before flashing over the commutator as molding pressure builds up in the mold cavity.
  48. 207
    An armature for an electric motor, comprising:a lamination stack having slots therein;an armature shaft extending coaxially through the lamination stack;a plurality of magnet wires wound in the slots of the lamination stack;a commutator disposed on the armature shaft to which ends of the magnet wires are electrically coupled;plastic at least partially encasing the magnet wires with at least one balancing feature formed from the plastic.
  49. 218
    An armature for an electric motor, comprising:lamination stack having slots therein;an armature shaft extending coaxially through the lamination stack;a plurality of magnet wires wound in the slots of the lamination stack;a commutator disposed on the armature shaft to which ends of the magnet wires are electrically coupled;plastic at least partially encasing the magnet wires and forming a plurality of balancing rings adjacent axial sides of the lamination stack.
  50. 221
    A method of forming and balancing an armature, comprising:securing a lamination stack having slots therein on an armature shaft;securing a commutator on one end of the armature shaft;winding magnet wires in the slots in the lamination stack and securing ends of the magnet wires to the commutator;molding plastic to at least partially encase the magnet wires in the plastic and forming a balancing feature;and removing plastic from at least one of the balancing rings to balance the armature during dynamic balancing of the armature.
  51. 222
    A method of forming and balancing an armature, comprising:securing a lamination stack having slots therein on an armature shaft;securing a commutator on one end of the armature shaft;winding magnet wires in the slots in the lamination stack and securing ends of o the magnet wires to the commutator;molding plastic to at least partially encase the magnet wires in the plastic and forming balancing rings adjacent axial sides of the lamination stack;and removing plastic from at least one of the balancing rings to balance the armature during dynamic balancing of the armature. 5
  52. 223
    A method of forming and balancing an armature, comprising:securing a lamination stack having slots therein on an armature shaft;securing a commutator on one end of the armature shaft;winding magnet wires in the slots in the lamination stack and securing ends of o the magnet wires to the commutator;molding plastic to at least partially encase the magnet wires in the plastic and forming a balancing feature having at least one pocket therein;and placing a weight in the pocket to balance the armature during dynamic balancing of the armature. 5
  53. 224
    A method of forming and balancing an armature, comprising:securing a lamination stack having slots therein on an armature shaft;securing a commutator on one end of the armature shaft;winding magnet wires in the slots in the lamination stack and securing ends of o the magnet wires to the commutator;molding plastic to at least partially encase the magnet wires in the plastic and forming balancing rings adjacent axial sides of the lamination stack, the balancing rings having pockets therein;and placing at least one weight in at least one pocket of at least one of the balancing rings to balance the armature during dynamic balancing of the armature.
  54. 225
    A method for forming an armature for an electric motor, comprising:5 placing an electrically insulative sleeve on an armature shaft;securing a lamination stack having slots therein on the armature shaft;securing a commutator on one end of the armature shaft;winding magnet wires in the slots in the lamination stack and securing ends of the magnet wires to the commutator;and 0 molding thermally conductive plastic to at least partially encase the magnet wires in plastic, the thermally conductive plastic having a base polymer that is a blend of at least two polymers.
  55. 229
    An armature for an electric motor, comprising:a lamination stack having slots therein;5 an armature shaft extending coaxially through the lamination stack;a plurality of magnet wires wound in the slots of the lamination stack;a commutator disposed on the armature shaft to which ends of the magnet wires are electrically coupled;and thermally conductive plastic at least partially encasing the magnet wires, the 0 thermally conductive plastic having a base polymer that is a blend of at least two polymers.
Independent claims55