The present invention relates to a pump and to an electric drive.
Water pumps often feature DC motors. The DC motors comprise a rotor connected to a motor shaft and rotatably mounted in a housing. The rotor is provided with permanent magnets. A stator is arranged in the rotor, which carries a number of windings on an iron core. When suitably controlled, the windings generate a magnetic field that drives the rotor to rotate. The windings are usually wound in three phases and are accordingly provided with three electrical connections through which the windings can be connected to a controller (ECU). At low power levels, busbars in the form of conductor foils can be used. For higher power levels, the winding connection wires are contacted via busbars made of a copper sheet.
For the purpose of the geometrical description of the electric motor, the axis of rotation of the motor is assumed to be the center axis and axis of symmetry. The rotor is arranged concentrically to the axis of rotation around the stator.
For the electric motors discussed here, in addition to the performance data and weight, the dimensions are also essential. Therefore, it is a constant requirement for the design of electric motors, for example, not to exceed a certain axial length in the direction of the central axis. In this context, the performance data required of the electric motor essentially determine the axial length of the stator pack as well as of the rotor with the electromagnets arranged on it. The busbar unit, which is required for contacting the winding connection wires of the stator, contributes to the axial length.
From the patent specification U.S. Pat. No. 7,588,444 B2, a pump with an electric motor is known, which has a busbar unit with a plurality of busbars, wherein the busbar holder is made of an injection-molded, non-conductive thermoplastic resin material.
Example embodiments of the present disclosure improve pumps each including an electric motor in such a way that each pump takes up little installation space and includes as few components as possible.
Accordingly, a pump according to an example embodiment of the present invention includes an electric motor including a rotor which is rotatably mounted about an axis of rotation and which circumferentially surrounds a stator. The stator includes a stator core and coils wound on the stator core, the coils are made from a winding wire including winding wire end sections electrically contacted with a printed circuit board at an end surface. The printed circuit board is surrounded by a plug assembly circumferentially to the axis of rotation, the plug assembly includes contacts which are injection molded into the plug assembly and which are electrically contacted with a first end with the printed circuit board and are directed at least partially radially outwardly with a second end to define a plug to contact the printed circuit board with an electrical controller. The plug assembly enables simple electrical connection of the circuit board to the electrical controller, which is accompanied by a significant reduction in cost. In addition, sealing is simplified and contact points can be reduced or minimized, since no intermediate connectors are required, which can significantly reduce the probability of failure. The electrical contact between the winding wire end sections and the printed circuit board is preferably made directly, i.e., preferably no intermediate connectors or other connecting elements are provided. The connection is made in particular via insulation displacement connectors, preferably IDC.
Preferably, the rotor and the stator are surrounded by a motor housing in which a pump housing is at least partially accommodated, the plug assembly extending the direction of the axis of rotation between the motor housing and the pump housing. A major advantage of the plug assembly is the resulting small pump installation space.
The pump housing preferably includes a housing structure which includes a base plate and a dome projecting centrally from the base plate, the base plate and the dome including a central opening extending therethrough, and the stator being seated firmly on an outside of the dome, and a motor shaft of the electric motor, which is connected to the rotor in a rotationally fixed manner, extending through the central opening of the housing structure.
In an example embodiment, the plug assembly includes a cylindrical base body with a shell and a circular base surface, which is preferably arranged concentrically to the axis of rotation, with a connection area projecting radially outwards from the outside of the shell, into which the contacts are inserted and which defines the plug. The contacts of the plug assembly can be press-fit contacts or solder contacts.
The connection and seal between the motor housing, plug assembly and water pump housing thus preferably has a simple circular contour.
The plug assembly can include webs projecting inward on an inside of the shell and extending parallel or substantially parallel to the axis of rotation to center the motor housing on the plug assembly. The webs can also support the printed circuit board.
Preferably, the housing portion of the pump housing includes a centering ring on which the printed circuit board is seated.
Preferably, a first side of the plug assembly is in annular contact with the motor housing and a second side is in annular contact with the pump housing portion. Preferably, the plug assembly is inserted between the housings in such a way that only the plug protrudes on the outside and the cylindrical geometry of the pump is otherwise maintained.
It is also possible for the motor housing and the plug assembly to be manufactured in a single piece in an injection molding process. The motor housing with the plug assembly is then in direct contact with the pump housing. The motor housing can be pot-shaped or cylindrical with a through-opening.
The pump is preferably a dry-running pump and is in particular a water pump, preferably a coolant pump for motor vehicles.
There is further provided, in a very general manner, an electric drive including the plug assembly previously described.
The above and other elements, features, steps, characteristics and advantages of the present disclosure will become more apparent from the following detailed description of the example embodiments with reference to the attached drawings.
The motor housing 3 has a connection for a pump housing 8. The pump housing 8 comprises a housing portion 9, which has a base plate 10 and a dome 11 projecting centrally from the base plate 10. The base plate 10 and the dome 11 have a central opening 12 passing through them. The stator 5 sits firmly on the outside of the dome 11. The motor shaft 6 passes through the central opening of the housing portion 12 and is rotatably mounted inside the dome 11. Seals, in particular mechanical seals inside the dome 11 guarantee that the fluid to be pumped does not penetrate the electric motor 2. The motor housing 3 sits indirectly or directly on the pump housing 8. The dome 11 forms a heat conduction path.
The plug assembly 13 is arranged in the direction of the axis of rotation 100 between motor housing 3 and pump housing 8,9. Thus, a first side 19 of the plug assembly is in annular contact with the motor housing 3 and a second side 20 is in annular contact with the pump housing portion 9. The plug assembly 13 surrounds the circuit board 18 on the circumferential side. The contacts 17 penetrate the connection area 16 and protrude from the inner side of the shell 15. The connection area 16 forms a plug.
The contacts 17 are preferably connected to the printed circuit board 18 by forming a press-fit connection. However, conventional solder pin connections or flat solder contacts can also be provided for making the connection.
On the inside of the shell 15, the plug assembly 13 has webs 21 which project inwards and run parallel to the axis of rotation 100 and serve as centering elements. The centering elements 21 project axially slightly and map the inner diameter of the plug assembly. They engage in a defined manner in the motor housing 3 to ensure centering about the axis of rotation. In addition, the centering elements 21 serve to support the printed circuit board 18. The centering elements rest on the printed circuit board 18 and form an axial support. A centering ring 22 is formed by the base plate 10 of the housing portion 9 on the outside and surrounds the dome 11 on the circumference. It serves to center the position between the pump housing and the plug assembly.
The plug assembly 13 is injection molded and preferably formed of plastic.
The motor housing 3 is injection molded and preferably formed from plastic. The plug assembly 13 and the motor housing 3 are thus manufactured as a single common injection-molded part.
As can be seen from
It may be provided that the printed circuit board is circumferentially enclosed by the cylindrical base body 14 of the plug assembly and is potted with a potting compound to protect the components.
In the subsequent assembly step shown in
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.
Number | Date | Country | Kind |
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10 2019 102 318.1 | Jan 2019 | DE | national |
This is a U.S. national stage of PCT Application No. PCT/EP2020/051081, filed on Jan. 17, 2020, and with priority under 35 U.S.C. § 119(a) and 35 U.S.C. § 365(b) being claimed from German Application No. 102019102318.1, filed Jan. 30, 2019; the entire disclosures of which are hereby incorporated herein by reference.
Filing Document | Filing Date | Country | Kind |
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PCT/EP2020/051081 | 1/17/2020 | WO | 00 |