ELECTRIC MOTOR WITH INJECTION MOULDED STATOR
20220224209 · 2022-07-14
Inventors
Cpc classification
H05K3/325
ELECTRICITY
H05K3/32
ELECTRICITY
International classification
H02K5/22
ELECTRICITY
Abstract
An electric motor includes a printed circuit board, a rotor which is mounted rotatably about an axis of rotation, and a stator circumferentially surrounded by the rotor. The stator includes stator teeth and coils wound around the stator teeth, the coils being made from a winding wire with winding wire ends. The stator is overmolded by an injection molding, and a plug assembly is made on an upper side of the stator by the injection molding. The plug assembly includes contacts overmolded by the injection molding and defining a plug connection of an external power supply connection on one side and making direct electrical contact with the printed circuit board on another side.
Claims
1. An electric motor, comprising: a printed circuit board; a rotor which is mounted rotatably about an axis of rotation; and a stator circumferentially surrounded by the rotor; wherein the stator includes stator teeth and coils wound around the stator teeth, the coils are made of from a winding wire with winding wire ends; the stator is overmolded by an injection molding, a plug assembly being defined on an upper side of the stator; the plug assembly includes contacts overmolded by the injection molding to define a plug connection of an external power supply connection on one side and to make direct electrical contact with the printed circuit board on another side.
2. The electric motor according to claim 1, wherein the circuit board includes recesses in which free ends of the contacts engage.
3. The electric motor according to claim 1, wherein the contacts are rectangular or approximately rectangular and extend radially toward a longitudinal axis of the stator and parallel thereto.
4. The electric motor according to claim 1, wherein the contacts project radially beyond the stator and project radially from an overmolded region to define the plug connection.
5. The electric motor according to claim 1, wherein the connector assembly supplies current to a controller on the printed circuit board.
6. The electric motor according to claim 2, wherein the free ends of the contacts protrude upwards from an overmolded region and contact the printed circuit board, the free ends including a shoulder to axially limit an insertion depth into the printed circuit board.
7. The electric motor according to claim 1, wherein receptacles are defined on the upper side of the stator, at least one of the winding wire ends is inserted into each of the receptacles; and an insulation displacement contact is inserted into the receptacles to make electrical contact with the at least one of the winding wire ends, the insulation displacement contact including a plug-in pin which makes direct electrical contact with the printed circuit board.
8. The electric motor according to claim 7, wherein the circuit board includes recesses into which the plug-in pin is engaged.
9. The electric motor according to claim 7, wherein the winding wire ends are bent outwards in a radial direction and each inserted into a respective one of the receptacles.
10. The electric motor according to claim 1, wherein the receptacles extend with longitudinal axes thereof parallel or substantially parallel to a longitudinal axis of the stator, and are pocket-shaped and rectangular or substantially rectangular in cross-section with two longitudinal sides and two transverse sides; each of the pocket-shaped receptacles includes an opening which is located on an upper surface remote from the stator, and the two longitudinal sides extend tangentially from a circumferential direction of the longitudinal axis; and on the upper surface remote from the stator, the receptacles each include, on one of the two longitudinal side on the inside in a radial direction, an incision which extends parallel or substantially parallel to the longitudinal axis of the stator and into which the at least one winding wire end is inserted.
11. The electric motor according to claim 7, wherein the receptacles are evenly spaced from each other in a circumferential direction and extend collectively over an angular range of less than about 120°.
12. The electric motor according to claim 1, wherein the electric motor includes three phase groups, each of which including two winding wire ends which are inserted into a common one of a total of three of the receptacles and which are electrically contacted by a common one of the insulation displacement contacts.
13. The electric motor according to claim 1, wherein the electric motor includes 10 poles and 12 stator teeth.
14. The electric motor according to claim 1, wherein the winding wire ends are held on the upper side of the stator by a wire holder which is overmolded by the injection molding.
15. The electric motor according to claim 1, wherein the injection molding is made of plastic or resin.
16. An electric pump comprising the electric motor according to claim 1.
17. A method of electrically contacting a stator of an electric motor with a printed circuit board, the stator includes stator teeth and coils wound on the stator teeth, and the coils are made from a winding wire including winding wire ends which extend parallel or substantially parallel to a longitudinal axis of the stator, the method comprises: a) overmolding the stator by injection molding, to form a connector assembly on an upper side of the stator, the connector assembly including overmolded contacts each including a first free end and a second free end; b) positioning the stator with respect to the printed circuit board, the printed circuit board and the stator being aligned with their upper and lower sides parallel or substantially parallel to one another and the longitudinal axes of the stator; c) simultaneously pressing the first free ends of the contacts into recesses of the printed circuit board in the longitudinal direction; and d) contacting an external power supply terminal with the second free ends of the contacts to energize a controller on the printed circuit board.
18. The method according to claim 17, wherein in step a), during overmolding of the stator, receptacles are additionally formed on the upper side of the stator; the method further comprising: e) bending the winding wire ends outwards in the radial direction to the longitudinal axis of the stator and inserting them into the receptacles; and f) inserting one insulation displacement contact into one of the receptacles to electrically contact the winding wire ends with the insulation displacement contacts, each of the insulation displacement contacts including a plug-in pin; and in step c) the plug-in pins of the insulation displacement contacts are pressed into the recesses of the printed circuit board in the longitudinal direction to electrically contact the printed circuit board with the winding wires.
19. The method according to claim 18, wherein the receptacles extend with their longitudinal axes parallel or substantially parallel to the longitudinal axis of the stator, are pocket-shaped and rectangular or substantially rectangular in cross-section with two longitudinal sides and two transverse sides; openings of the receptacles are located on an upper surface remote from the stator, and the two longitudinal sides extend tangentially from a circumferential direction of the longitudinal axis; on the upper surface remote from the stator, the receptacles each include, on one of the two longitudinal side on the inside in a radial direction, an incision defined by a slot which extends parallel or substantially parallel to the longitudinal axis of the stator; and at least one winding wire end is inserted into the slot.
20. The method according to claim 18, wherein the receptacles are evenly spaced from each other in a circumferential direction and extend together over an angular range of less than about 120°.
21. The method according to claim 17, wherein the electric motor includes three phase groups, each of the phase groups including two of the winding wire ends which are inserted into a common one of the receptacles and which are electrically contacted by a common one of the insulation displacement contacts.
22. The method according to claim 17, wherein the electric motor includes 10 poles and 12 stator teeth.
23. The method according to claim 17, wherein the winding wire ends are held on the upper side of the stator by a wire holder which is overmolded in the injection molding process of step a).
24. The method according to claim 17, wherein the injection molding process in step a) is carried out with plastic or resin.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0031] Example embodiments of the present disclosure are explained in more detail below with reference to the drawings. Similar or similarly acting components are designated in the figures with the same reference signs.
[0032]
[0033]
[0034]
[0035]
[0036]
DETAILED DESCRIPTION
[0037]
[0038] The stator 1 with the wire holder is overmolded with plastic or resin in an injection molding process. The resulting stator unit 4 is shown in
[0039] In addition to the receptacles 5, a plug assembly 14 is formed by injection molding on the upper side, in the peripheral region of the stator 1. The plug assembly 14 is thus part of the stator unit 4 and has overmolded contacts 15, which are approximately rectangular and extend in a radial direction to the longitudinal axis 100 and parallel thereto. The contacts 15 project radially beyond the main body of the stator unit 4 and protrude from the overmolded region, so that a plug connection 16 is formed for an external power supply connection. The other free ends of the contacts 15 project upwardly from the overmolded portion, and are provided for connection to a printed circuit board and power supply to a controller disposed on the printed circuit board. These free ends of the contacts 15 have a shoulder 17, which is provided to limit the insertion of the contacts 15 into the printed circuit board.
[0040]
[0041]
[0042] The described stator unit 4 is preferably part of a brushless DC motor which in turn is preferably part of a pump, in particular a low wattage auxiliary pump.
[0043] While example embodiments of the present disclosure have been described above, it is to be understood that variations and modifications will be apparent to those skilled in the art without departing from the scope and spirit of the present disclosure. The scope of the present disclosure, therefore, is to be determined solely by the following claims.