ACTUATOR WITH COATED STATOR AND ROTOR MODULES
20170324284 · 2017-11-09
Assignee
Inventors
Cpc classification
H02K21/24
ELECTRICITY
H02K11/21
ELECTRICITY
H02K29/08
ELECTRICITY
H02K1/146
ELECTRICITY
H02K5/1732
ELECTRICITY
H02K2203/12
ELECTRICITY
H02K2203/09
ELECTRICITY
H02K11/215
ELECTRICITY
H02K3/325
ELECTRICITY
International classification
H02K11/21
ELECTRICITY
Abstract
An electronic actuator is made up of a polyphase brushless motor comprising a rotor provided with permanent magnets and secured to an output shaft, and a stator supporting coils and providing the magnetic drive of the rotor, a first electrical connection assembly powering the coils, said stator being built into a stator module made up of a material which coats the wound stator as well as the first electrical connection assembly. The rotor is built into a rotor module made up of a flange coating a bearing that guides the shaft of the rotor. The stator module and the rotor module have elements for indexing and for attachment relative to one another.
Claims
1. An electronic actuator comprising a polyphase brushless motor comprising a rotor provided with permanent magnets and secured to an output shaft, and a stator supporting coils and providing a magnetic drive of the rotor, a first electrical connection assembly powering the coils, the stator built into a stator module made up of a material which coats the wound stator as well as the first electrical connection assembly, the rotor being built into a rotor module comprising a flange coating a bearing that guides the shaft of the rotor, and in that the stator module and the rotor module including elements indexing and attaching relative to one another.
2. The electronic actuator, according to claim 1, further comprising a second electrical connection assembly managing the supply and the signals of sensing elements necessary for switching of various phases of the motor and the stator module coating the first and the second electrical connection assembly.
3. The electronic actuator, according to claim 1, wherein the stator assembly has a cavity adapted to receive the rotor module.
4. The electronic actuator, according to claim 2, wherein the first and the second electrical connection assemblies form a radial coated extension of the stator module.
5. The electronic actuator, according to claim 2, wherein the first and the second electrical connection assemblies form an axial coated extension of the stator module.
6. The electronic actuator according to claim 1, wherein the flange has an external shape complementary to the indexing zone of the stator module.
7. The electronic actuator, according to claim 6, wherein the flange of the rotor module has centering pins adapted to engage in complementary housings formed on the stator module.
8. The electronic actuator, according to claim 1, wherein the stator module comprises a set of superimposed laminations with a plurality of teeth, at least part of which supports an electric coil, each of the electrical coils having axially extending connecting lugs, the stator module further including a plurality of teeth for connecting a complementary connector, all of the components comprising the wound sheet assembly, the coil connecting lugs, and the connector lugs for joining-up a connector are coated with a material insulating plastic to form a monolithic block encompassing outer surfaces of the superimposed laminations.
9. The electronic actuator, according to claim 8, wherein the inner surface of the teeth of the stator plates are flush with inner surface of the monolithic block.
10. The electronic actuator, according to claim 3, wherein the cavity is cylindrical and closed at its rear part by a moulded bottom.
11. The electronic actuator, according to claim 10, wherein, the moulded bottom may comprise a ring for guiding the rotation axis of a rotor.
12. The electronic actuator, according to claim 8, wherein, an inside surface of the teeth of the stator plates is included in the monolithic block, a thickness of the encapsulating plastic material being less than an air gap between the outer cylindrical surface of the rotor and the cylindrical envelope defined by a surface of the stator teeth.
13. The electronic actuator, according to claim 3, wherein the cavity is opening.
14. The electronic actuator, according to claim 13, further comprising a third module comprising an electronic circuit and the third module closing the actuator on a rear part.
15. A method of manufacturing a magnetized rotor module comprising a flange enclosing a guide element guiding an axis of a rotor for an actuator, the method comprising: overmoulding of a front guide element to form the flange with its positioning and indexing pins; assembling a stack of laminations on the rotor axis; bonding of magnet(s) of a motor on the stack of laminations; and assembling a rear guide element on the axis comprising the stack of laminations.
16. The electronic actuator, according to claim 1, wherein the actuator is smart, the coated stator module accommodating an electronic circuit for controlling the actuator and has switching transistors and a logic control circuit for these switching transistors.
17. The electronic actuator, as claimed in the preceding claim, is characterized in that claim 16, further comprising a cover enclosing the electronic circuit, the transistors and the logic control circuit, placed on the stator module.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0031] The invention will be better understood on reading the following description, with reference to the attached drawings corresponding to non-exhaustive samples of embodiments, where:
[0032]
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[0039]
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DETAILED DESCRIPTION
[0043] The invention described relates to a rotary motor formed by assembling a rotor module and a stator module. The components of these modules are mechanically linked so as to be permanently fixed.
[0044] The rotor module is permanently assembled. Similarly, the stator module is embedded in an insulating plastic material which only allows the electrical connector elements to protrude. These two modules are assembled by inserting the rotor module into a housing provided for this purpose in the stator module and joined together by screwing, welding or gluing. A third module may optionally close the actuator when the stator module has a cavity opening.
[0045] In a first form of embodiment, an actuator according to the invention commonly comprises a motor with a stator 1 that has radially extending teeth, equipped with electric coils 2 carried by coil bodies 3 as shown in
[0046] A first connector assembly 6 is positioned on an end face of the stator 1 to ensure electrical connection of the coils 2. The second connector assembly 7 is then positioned to manage (supply and output) the sensing elements (typically Hall effect probes) necessary for the operation of the brushless motor according to the teachings of the state of the on an outer surface of the first connector assembly 6 as shown in
[0047] In this example, there are three electric phases which are powered by three separate tracks 6a, 6b, 6c. The tracks 6a, 6b, 6c extend radially and then laterally with respect to the stator, and are in the form of tracks with rectangular section. The tracks end in forked connection tabs (not shown) for connecting an electrical phase by IDC contact. This assembly is produced by cutting and folding a metal foil, for example bronze or a CuZn30-type copper alloy, and then overmoulded with an insulating resin 8 as shown in
[0048] The second connector assembly 7 shown in
[0049] The stator 1 as well as the first 6 and second 7 assemblies are coated together in an injection mould to form a closed monolithic part shown in
[0050] The shape of this stator module 9 may vary depending on the final applications. In the example of
[0051] The overmould coating here covers all the components of the stator except for the ends of the various tracks 7a to 7e and 6a to 6c which protrude inside two openings 10 and 11, to allow an electrical connection to an external socket or to an attached external electronic circuit. Inside this stator module 9, the teeth of the stator 1 are either flush with the overmoulding or covered with a thin skin during overmoulding. This monolithic part forming the stator module 9 has an annular cavity 12 whose bottom is closed in this first embodiment of
[0052] The bottom of the cavity 12 allows the tabs 16a to 16e of the second connector assembly 7 to be protruded, i.e., the inner ends of the tracks 7a to 7e. These tabs 16a to 16e connect to a disc-shaped electronic circuit 17, which can be housed at the bottom of the cavity 12 as shown in
[0053] The stator module 9 enables, because of its shape, to receive a rotor module 18 shown in
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[0057]
[0058] This assembly is overmoulded to form a monolithic part, with a main body 51 and a secondary body 52 whose longitudinal axis is perpendicular to that of the main body 51. In the embodiments shown above, the rotor module 18 is indexed, based on the complementarity of the shapes of the modules, inside the stator module 9.
[0059]
[0060] The invention is not limited to a motor that has a stator with radial teeth. It also applies to an engine whose stator has teeth extending parallel to the axis, with a disc rotor, or a linear motor. The variant embodiment of
[0061] It is possible to envisage an alternative embodiment in order to obtain a more compact set. This alternative is particularly described in
[0062] The rotor module 18 is typically made with the following steps:
[0063] the front guide element 28 to form the flange with its positioning and indexing pins 20,
[0064] assembling the stack of laminations 50 on the rotor axis 26,
[0065] bonding of the magnet(s) 29 of the motor on the stack of laminations 50,
[0066] assembling the rear guide element 28′ on the shaft 26 comprising the stack of laminations 50.
[0067] In the example described, a sensor magnet 53 is then assembled with its support on the free end of the spindle (for example by forcing through or screwing). After the magnetization of the magnets of the motor and of the sensor in place, this assembly of the axle+stack of laminations+magnets of the motor+rear bearing+magnet sensor on its support is finally assembled to the overmoulded module formed from the rear guide element 28 and the flange 19. The stator module 9 specifically has an internal opening cavity 12 which makes it possible to assemble the more easily formed rotor module 18 and to bring back a third module 56, thereby closing the actuator on the rear part.
[0068] After assembling both the stator 9 and rotor 18 modules, it is thus necessary to add a complementary electronic module comprising, in this example, the printed circuit 17 receiving the detection probe(s) 55 of the magnetic field sensor and a closure cap 54. This embodiment has the advantage of enabling the integration of a printed circuit of larger size (than that shown in the embodiment of
[0069]