Brushless direct-current electric motor for a motor vehicle wiper system
12202443 ยท 2025-01-21
Assignee
Inventors
Cpc classification
H02K11/215
ELECTRICITY
International classification
H02K11/21
ELECTRICITY
H02K11/215
ELECTRICITY
Abstract
The invention relates to a geared motor comprising a first brushless electric motor part having a stator, a rotor and a drive shaft, a second part having an output shaft and a reduction gear mechanism and an electronic part. The reduction gear mechanism comprises an output shaft, a worm and a toothed wheel designed to be engaged by the worm and to drive the output shaft in rotation. The geared motor comprises at least one rolling guide bearing disposed on the drive shaft and a multipolar magnet for measuring the position of the rotor. The rolling bearing is disposed between the measurement magnet and the worm such that the electric motor can be controlled depending on the measurement of the position of the rotor.
Claims
1. A brushless electric motor for a wiper device of a motor vehicle, comprising an electric part known as a first part having a stator and a rotor, where the stator includes a plurality of coils for electromagnetically exciting the rotor and the rotor configured to rotate a driveshaft about an axis of rotation (L); the motor also includes an electronic part known as a second part having an output shaft and a reduction gear mechanism (M); the reduction gear mechanism (M) including an endless screw on the driveshaft and a gear wheel designed to be engaged by the endless screw and to rotate the output shaft; a multipole magnet for measuring the position of the rotor through a magnetic sensor, where a rolling bearing is disposed on the driveshaft between said magnet for measuring a position of the rotor and the endless screw, such that the electric part has said magnet for measuring the position of the rotor; an intermediate component having an annulus configured to be mounted around the driveshaft, the intermediate component surmounted by an electric connector secured to the annulus; and where the intermediate component is disposed between the multipole magnet and the guiding rolling bearing.
2. The brushless electric motor of claim 1, including a circuit board provided with a main part and a transverse part, which protrudes from the main part toward the electric part, where the transverse part bears the magnetic sensor configured to cooperate with the multipole magnet.
3. The brushless electric motor of claim 2, wherein the transverse part is disposed directly adjacent the multipole magnet.
4. The brushless electric motor of claim 1, where the electric connector is configured to cooperate with a circuit board.
5. The brushless electric motor of claim 4, wherein the electric connector is configured to transmit power signals bound for the stator and to transmit signals relating to the position of the rotor.
6. The brushless electric motor of claim 4, comprising an auxiliary circuit board intended to determine the position of the rotor.
7. The brushless electric motor of claim 1, wherein an auxiliary circuit board is disposed in an orientation parallel to or perpendicular to said circuit board.
8. The brushless electric motor of claim 7, wherein the auxiliary circuit board is disposed next to the multipole magnet and is provided with a magnetic sensor configured to cooperate with the multipole magnet.
9. The brushless electric motor of claim 1, wherein the auxiliary circuit board is supported by at least the annulus or the electric connector of the intermediate component.
10. A wiper system for a motor vehicle, comprising: a brushless electric motor where an electric part known as a first part includes a stator and a rotor; where the stator includes a plurality of coils for electromagnetically exciting the rotor and the rotor configured to rotate a driveshaft about an axis of rotation (L); the motor also includes an electronic part known as a second part having an output shaft and a reduction gear mechanism (M); the reduction gear mechanism (M) including an endless screw on the driveshaft and a gear wheel designed to be engaged by the endless screw and to rotate the output shaft; a multipole magnet whose position of the rotor is measured by a magnetic sensor placed in contact with a transverse part that is a circuit board; where a rolling bearing is disposed on the driveshaft between said magnet for measuring a position of the rotor and the endless screw and such that the electric part has said magnet for measuring the position of the rotor; an intermediate component having an annulus configured to be mounted around the driveshaft, the intermediate component surmounted by an electric connector secured to the annulus; and where the intermediate component is disposed between the multipole magnet and the guiding rolling bearing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further features, details and advantages will become apparent on reading the following detailed description, and on studying the appended drawings, in which:
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DETAILED DESCRIPTION OF THE INVENTION
(10) The drawings and the description below contain, for the most part, elements of a certain character. Therefore, they may not only serve for understanding the present disclosure better, but also contribute to its definition, where appropriate.
(11) The subject of the invention is a brushless electric motor, preferably a brushless DC electric motor, for a wiper system of an automotive vehicle, referenced 1 in the figures.
(12) The invention will now be described with reference to the first embodiment in
(13) As can be seen in the figures, the motor 1 comprises an electric part 2 and an electronic part 3.
(14) The electric part 2 has a rotor 4 and a stator 5. The stator 5 comprises a plurality of coils 6 for electromagnetically exciting the rotor 4. The rotor 4 comprises a multipole magnet mounted so as to be rotated about an axis of rotation, referenced L.
(15) The electric motor 1 is configured such that the rotor 4 turns inside the stator 5, thereby rotating a shaft 8, known as a driveshaft, 8, that is secured to the rotor 4. The driveshaft 8 extends along the axis of rotation L.
(16) The electronic part 3 comprises an endless screw 9 of the driveshaft 8 and a gear wheel 10 mounted so as to be engaged by the endless screw 9. The electronic part 3 also comprises an output shaft 11 designed to be rotated by the gear wheel 10.
(17) Thus, the threaded part 9 and the gear wheel 10 form a reduction gear mechanism M, the speed of rotation of the output shaft 11 being lower than the speed of rotation of the driveshaft 8.
(18) Advantageously, the output shaft 11 is substantially perpendicular to the driveshaft 8.
(19) As can be seen in
(20) As can also be seen in
(21) Thus, since the magnet 15 is an integral part of the electric part 2, the electric motor 1 is compartmentalized between the electric part 2, for the one part, and the electronic part 3, for the other part. On account of this clean separation of the functions between the electric part 2 and electronic part 3, the electric motor 1 is made more reliable and more compact. The position of the rolling bearing 12 as close as possible to the wheel 10 allows better bending strength, meaning that the driveshaft 8 deforms or breaks under a higher bending load.
(22) As can be seen in
(23) The electric motor 1 also comprises a circuit board 16, illustrated in
(24) The main part is disposed facing the endless screw 9 of the driveshaft 8.
(25) The transverse part 18 is disposed facing the multipole magnet 15 and bears a magnetic sensor 19, for example a Hall effect sensor, for detecting the changes in poles of the multipole magnet 15, such that the assembly formed by the multipole magnet 15 and the magnetic sensor 19 constitutes a sensor for measuring the position of the rotor 4.
(26) As can be seen more particularly in
(27) The circuit board 16 also comprises pins 20 for supplying power to the coils 6.
(28) As can be seen in
(29) The cover 23 is designed to cover in particular the gear wheel 10 and the circuit board 16 and comprises a narrowing 25 allowed by the thin protrusion formed by the transverse part 18 relative to the part 17, thereby ensuring, as already indicated, better compactness of the motor 1.
(30) The invention will now be described with reference to the second embodiment in
(31) As can be seen in the
(32) The electric part 2 has a rotor 4 and a stator 5. The stator 5 comprises a plurality of electromagnetic excitation coils 6. The rotor 4 comprises a multipole magnet mounted so as to be rotated about an axis of rotation, referenced L.
(33) The electric motor 1 is configured such that the rotor 4 turns inside the stator 5, thereby rotating a shaft 8, known as a driveshaft, 8, that is secured to the rotor 4. The driveshaft 8 extends along the axis of rotation L.
(34) The electronic part 3 comprises an endless screw 9 of the driveshaft 8 and a gear wheel 10 mounted so as to be engaged by the endless screw 9. The electronic part 3 also comprises an output shaft 11 designed to be rotated by the gear wheel 10.
(35) Thus, the threaded part 9 and the gear wheel 10 form a reduction gear mechanism M, the speed of rotation of the output shaft 11 being lower than the speed of rotation of the driveshaft 8.
(36) Advantageously, the output shaft 11 is substantially perpendicular to the driveshaft 8.
(37) As can be seen in
(38) As can also be seen in
(39) Thus, since the magnet 15 is an integral part of the electric part 2, the electric motor 2 is compartmentalized between the electric part 2, for the one part, and the electronic part 3, for the other part. On account of this clean separation of the functions between the electric part 2 and electronic part 3, the electric motor 1 is made more reliable and more compact. The position of the rolling bearing 12 as close as possible to the wheel 10 allows better bending strength, meaning that the driveshaft 8 deforms or breaks under a higher bending load.
(40) As can be seen in
(41) The electric motor 1 also comprises a circuit board 16 bearing pins 20 for supplying power to the coils 6. The circuit board 16 has the overall shape of a parallelepiped.
(42) The electric motor 1 also comprises an intermediate component 26 disposed between the multipole magnet 15 and the guiding rolling bearing 12.
(43) As can be seen more particularly in
(44) The annulus 27 ensures the mechanical alignment of the arrangement. The electric connector 28 ensures the transmission of power signals (that is to say the currents for supplying electric power to the coils) and the transmission of signals relating to the position of the rotor, as will now be explained.
(45) Thus, the intermediate component 26 allows the combination of three functions, namely the mechanical alignment, power transmission (electric power supply of the coils of the stator) and the transmission of the command (position of the rotor).
(46) The connector 28 comprises a housing part 29 extending from the annulus 27 toward the magnet 15 and a housing part 30 extending from the annulus 27 toward the circuit board 16, the slots 20 for the power supply of the coils passing through the housings 29 and 30.
(47) As can be seen in
(48) In this embodiment, the auxiliary circuit board is disposed in an orientation parallel to the circuit board 16. However, other orientations could be possible in other configurations: for example, the auxiliary circuit board 31 could be disposed in an orientation perpendicular to the circuit board 16. The auxiliary circuit board 31 is preferably carried by the annulus 27 or the connector 28, but could also be mounted freely in the casing in another orientation and connected electrically to the circuit board by, for example, flexible conductors.
(49) As can be seen in
(50) As can be seen in
(51) It will be noted that the intermediate component 26 makes it possible to keep a casing that is unchanged with respect to the prior art, thereby avoiding the need to modify known electric motor production lines.
REFERENCE SIGNS
(52) 10 Wiper motor 12 Electric motor 14 Housing 16 Gearbox housing 18 Housing element 20 Housing element 22 Gearbox cover 24 Gearwheel 25 Axis of rotation 26 Output shaft 27 Toothing 28 Output shaft 30 Element 32 Track 34 Contact portion 35 Spring element 36 End portion 37 Line 38 Cover bottom 39 Stamped/bent part 40 Receptacle 42 Protective wall 43 Protective wall 44 Protective wall 46 Inner face 47 Inner face 48 End side 51 Slot 52 Slot 54 Blocking element 56 Introduction direction 58 Protrusion 59 Portion 60 Portion 62 Gap A Distance A.sub.1 Distance A.sub.2 Distance A.sub.3 Distance X Position Y Position Z Position F Contact force