The present invention relates to the field of electric motors, particularly those used for the air blowing devices of a motor vehicle heating, ventilation and/or air conditioning system (also known by the acronym “HVAC”).
A motor vehicle is commonly provided with a ventilation, heating and/or air conditioning device in order to regulate the temperature of an air flow delivered towards the inside of the passenger compartment of the vehicle. The device generally comprises a cover delimited by separations in which openings, including at least one air inlet and at least one air outlet, are organized.
In a known manner, the cover houses an air blowing device or blower, in order to circulate the air flow from the air inlet towards the air outlet. The cover also houses heat treatment means for heating and/or cooling the air flow prior to the delivery thereof inside the passenger compartment.
The blowers generally include electronically commutated electric motors, or brushless direct current motors. These motors include an assembly of a rotor and a stator, each of these components carrying electromagnetic elements, the interaction of which generates the movement of the rotor relative to the stator. The rotor and the stator are mounted independently of each other in said motor, and it should be checked that the relative positioning of these two components is correct for optimum operation of the motor.
Moreover, a problem that exists with this type of motor is that, during use, electromagnetic radiation is generated, but it can disrupt the operation of other electronic units placed in proximity to said motor.
The aim of the present invention is to overcome at least some of the aforementioned disadvantages and to propose an electric motor and an associated air blowing device making it possible, in particular, to limit the propagation of electromagnetic radiation outside said motor.
For this purpose, the invention proposes an electric motor for an air blowing device, comprising a rotor, a stator, a support for said rotor and for said stator which is suitable for dissipating heat and a shielding cap characterized in that the shielding cap is linked to said support for said rotor and for said stator by a mean for fixing.
In this manner, it is possible to easily position a shielding cap which limits the propagation of the electromagnetic radiation generated by the coils of the stator. More particularly, the shielding cap is, thus, arranged in immediate proximity to the stator thus allowing for better confinement of the electromagnetic radiation.
Specific embodiments according to the invention propose that:
The invention also relates to an air blowing device comprising such an electric motor and a method for fixing the shielding cap to the motor support defined above comprising,
Other features and advantages of the invention will emerge upon reading the following description, with reference to the appended figures, wherein:
The rotor 2, arranged around the stator 4, carries at least one permanent magnet 8, the interaction of which, with said coils supplied with current, generates a rotating movement of the rotor 2 around the stator 4. The rotor 2 is rigidly connected to the transmission shaft 6 such that, when the rotor 2 revolves, the transmission shaft is also rotated. The transmission shaft 6 is linked to a blade or to a plurality of blades arranged in a wheel, all not illustrated, thus making it possible to generate an air flow when the transmission shaft 6, and therefore the blades, are rotated. The transmission shaft 6 penetrates within the internal bore outlined by the annular shape of the stator 4.
For the transmission shaft 6, as well as the rotor 2 and the stator 4, to remain in a stable position, in other words that these two elements only move in a radial and not an axial manner, these three elements rest on a support 12 for said rotor and for said stator. Said support 12 has the shape of a plate 16 secured to a cylinder 18 placed such as to project from the plate and having an internal canal 17 opening substantially at the center of the plate 16.
The plate 16 extends in a plane substantially perpendicular to the axis of the internal canal 17 of the cylinder 18. The cylinder 18 is suitable to be housed in the internal bore of the stator 4 and to receive the transmission shaft 6 which is rigidly connected to the rotor 2 such that the support 12 for said rotor and for said stator correctly positions the rotor 2 with respect to the stator 4.
It is possible to observe in
The plate 16 of the support 12 for said rotor and for said stator forms a heat sink carrying a control electronic board 20, in particular for the supply of power to the coils of the stator 4. The control electronic board 20 is placed on the side of the plate that is orientated away from the cylinder 18. An electrically insulating, but thermally conductive, layer 22 can be arranged between the control electronic board 20 and the support 12 for said rotor and for said stator.
Preferably, the support 12 for said rotor and for said stator is made of metal, more particularly aluminum for the lightness and good thermal conduction properties thereof. Thus, the plate 16 used as a heat sink can effectively cool the control electronic board 20 by thermal conduction. Moreover, the fact that the support 12 for said rotor and for said stator is produced from metal makes it possible to block electromagnetic radiation emitted by the electronic member, wherein this radiation can disrupt the operation of other electric components. The support 12 for said rotor and for said stator is electrically connected to an electrical ground, or for example to a substantially zero potential. More specifically, the support 12 for said rotor and for said stator is fixed to a structural element of the vehicle, such as the frame, such that said support 12 is considered to be electrically linked to the earth. Furthermore, the fact that the support 12 for said rotor and for said stator is made from metal makes it possible to electrically link the stator 4 to the ground by means of said support 12.
Two bearings 24 are put into the internal canal 17 of the cylinder 18 in order to serve as a rotation guide for the transmission shaft 6 which is rotated by the rotor 2. These bearings can be ball bearings, as is schematically illustrated, but the invention also covers other forms of bearing such as roller or needle bearings. The two bearings 24 bear on two collars located in the internal canal 17 of the cylinder 18 such as to axially hold the transmission shaft in a fixed position.
The operation of the electric motor, in particular the stator 4, generates electromagnetic waves which can disrupt the operation of other electronic units which are placed in proximity. It is for this reason that a shielding cap 26 is arranged proximate the stator 4 such as to limit the propagation of these waves. The shielding cap 26 corresponds to a stamped sheet of metal.
According to the invention, the shielding cap 26 is advantageously secured as close as possible to the rotor 4 such as to reduce these propagation phenomena. For this purpose, the shielding cap 26, as illustrated in
As can be observed in
The shielding cap 26 has cut-outs 34, or cuttings, such as to outline tabs 36 isolated from one another by these cut-outs 34. The cut-outs 34 make it possible to evacuate the heat generated by the stator 4. The tabs 36 are folded at the end thereof in order to bear on the metal plates 10 or on the electrically insulating plastic layer 11 such as to limit the vibration phenomena of the shielding cap 26. The tabs 36 are folded at an angle α, in this case obtuse, such that the shielding cap 26 also matches the bell shape of the rotor 2 as illustrated in
According to another embodiment that is not illustrated, it is possible to provide other positions for the means for fixing, for example on the metal plates 10. The invention is, therefore, not limited to the positioning of the means for fixing. Indeed, it is also possible to provide an embodiment, which is not illustrated, where the studs are arranged on the shielding cap and the openings are placed on the support for said rotor and for said stator. It is possible to provide, in this case, a shoulder projecting from said support and comprising openings such as to accommodate the studs followed by a heading step for example.
For better containment of the electromagnetic waves, it is possible to add a second shielding cap 26 on the other side of the stator 4, as illustrated in
After having passed through the openings arranged in the second shielding cap, the studs 40 are then deformed by heading, crimping, pressing or any other method of deformation such that the second shielding cap is fixed in a stable manner on the support 12 for said rotor and for said stator. Since the studs 40 are deformed, they can no longer pass through the openings such that the second shielding cap is axially and radially fixed on the support 12 for said rotor and for said stator.
Thus, the shielding caps 26 are arranged firstly between the stator 4 and the rotor 2 and, secondly, between the stator 4 and the support 12 for said rotor and for said stator. This makes it possible to more effectively limit the propagation of the electromagnetic radiation out from the electric motor.
The invention also relates to the method of fixing the shielding cap to the support for said rotor and for said stator. According to the invention, this method comprises, as seen above, a first step of inserting the means for fixing, and particularly the studs, through the openings arranged on the shielding cap, and a second step for deformation, and particularly for heading of the studs above the shielding cap. Of course, this step is repeated twice in the embodiment where the electric motor comprises two shielding caps.
It should, nevertheless, be understood that these examples are given to illustrate the object of the invention. The invention is not limited to these embodiments described above and provided solely by way of example. It includes various modifications, alternative shapes and other variants that a person skilled in the art will be able to envisage within the scope of the present invention and particularly any combination of the various embodiments described above.
Number | Date | Country | Kind |
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1556013 | Jun 2015 | FR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2016/063352 | 6/10/2016 | WO | 00 |