The invention relates to a cooling module for an electric motor vehicle, comprising a tangential-flow turbomachine. The invention also relates to an electric motor vehicle provided with such a cooling module.
A cooling module (or heat exchange module) of a motor vehicle conventionally comprises at least one heat exchanger and a ventilation device suitable for generating an air stream passing through the at least one heat exchanger. The ventilation device thus makes it possible, for example, to generate an air stream passing through the heat exchanger when the vehicle is stationary. This ventilation device takes the form, for example, of a tangential-flow turbomachine driven by a motor positioned outside the cooling module. Depending on its workload, the electric motor must also be cooled.
However, due to its mounting position, the cooling thereof is sub-optimal and there can be a risk of overheating.
One aim of the invention is to propose a cooling module for an electric motor vehicle without at least some of the above-mentioned drawbacks.
To this end, the invention relates to a cooling module for a motor vehicle with an electric motor, the cooling module comprising at least one heat exchanger, at least one tangential-flow turbomachine capable of creating a first air stream passing through the at least one heat exchanger, a housing configured to accommodate the at least one heat exchanger and said at least one tangential-flow turbomachine, the housing comprising a first intake opening and a discharge opening between which the first air stream flows, at least one electric motor for controlling the rotation of said at least one tangential-flow turbomachine, the electric motor being positioned on the outer wall of the housing, said electric motor comprising at least one air inlet and one air outlet, the cooling module being characterized in that the housing comprises a second intake opening, the air outlet of the at least one motor being fluidly connected to said second intake opening so as to allow the flow of a second air stream passing in succession through the air inlet of the motor, the air outlet of the motor and the second intake opening of the housing to join the first air stream inside the housing.
Such a cooling module makes it possible to increase the cooling performance of the motor of the tangential-flow turbomachine while preventing excessive consumption by said electric motor. The fluid connection between the second intake opening of the housing and the air inlet of the cover makes it possible to guide a second air stream through the electric motor of the turbomachine with a sufficient fresh air flow rate.
In addition, this arrangement can result in greater freedom in terms of architecture of the heat exchange module, and for example makes it possible to reduce the footprint of the heat exchange module while making it lighter.
Advantageously, the tangential-flow turbomachine makes it possible to create an air stream through all of the heat exchangers with significantly better efficiency than if an axial-flow turbomachine was used.
The invention can further comprise one or more of the following aspects taken alone or in combination:
Further advantages and features of the invention will become more clearly apparent from reading the following description, given by way of illustrative and non-limiting example, and the appended drawings, in which:
In the figures, identical elements have the same reference numbers.
The longitudinal, transverse and vertical directions indicated in some of the figures are designated by the dihedron (X, Y, Z).
The following embodiments are examples. Although the description refers to one or more embodiments, this does not necessarily mean that each reference relates to the same embodiment, or that the features apply only to a single embodiment. Individual features of various embodiments can also be combined or interchanged to provide other embodiments.
In the description, ordinal numbering can be applied to certain elements, such as first element or second element. In this case, the ordinal number is simply to differentiate and denote elements that are similar but not identical. This ordinal numbering does not imply that one element takes priority over another and such numbering can easily be interchanged without departing from the scope of the present description. Likewise, this ordinal numbering does not imply any chronological order.
The cooling module 22 is more clearly visible in
The housing 24 makes it possible to accommodate at least one heat exchanger 30a-30c and the at least one tangential-flow turbomachine 28, which is capable of creating a first air stream F1 passing through the at least one heat exchanger 30a-30c.
According to the embodiment of the cooling module 22 illustrated in
The tangential-flow turbomachine 28 comprises a turbine 32 that can also be described as a tangential blower-wheel. The turbine 32 has a substantially cylindrical shape and has an axis of rotation A32. Advantageously, this axis of rotation A32 is oriented substantially parallel to the lateral direction Y of the at least one heat exchanger 30a-30c, as illustrated more particularly in
The cooling module 22 also comprises at least one electric motor 36 for controlling the rotation of said at least one tangential-flow turbomachine 28. The motor 36 is for example suitable for rotating the turbine 32 at a speed of between 200 rpm and 14,000 rpm. This makes it possible in particular to limit the noise generated by the turbomachine 28. The motor 36 (or geared motor) is capable of rotating the turbine 32 about its rotational axis A32. The electric motor 36 is positioned on the outer wall of the housing 24.
As illustrated in
According to one embodiment of the cover 40, it has a circular cup shape comprising a bottom wall 40a and a peripheral rim 40b. The air outlet 39 of said electric motor 36 is for example formed by at least one orifice 44 arranged in the bottom wall 40a of said cover 40. The cup shape makes it possible to facilitate the installation of the cover 40 on the electric motor 36, and also makes it possible to cover the maximum surface area of the electric motor 36, in particular the stator and windings thereof.
The cup-shaped cover 40 comprises in particular a plurality of orifices 44 distributed about the axis of revolution A40 of the cover 40 of the electric motor 36, as illustrated in particular in
More specifically, the orifices 44 of the cover 40 are distributed with even angular spacing about the axis of revolution A40 of the cover 40 of the electric motor 36. This embodiment makes it possible to facilitate the forming of the cover 40 during manufacturing. According to one variant, the spacing between two neighboring orifices 44 is not the same for all of the orifices 44 of the cover 40, as illustrated for example in
In addition, the motor 36 comprises in particular a power supply unit 50 for said electric motor 36, as illustrated in
The path taken by the second air stream F2 passes in particular through the air inlet 38 at the gap el, the second air stream F2 thus flowing in the plane formed by the Y and Z axes initially, and then the second air stream F2 passes through the motor 36 and through the orifices 44 of the cover 40, parallel to the Y axis.
The second air stream F2 more particularly denotes an air mass set in motion by the negative pressure generated by the turbomachine 28. More particularly, starting the turbomachine 28 generates a pressure difference between the first intake opening 24a and the inlet of the turbomachine 28. In other words, the pressure at the inlet of the turbomachine 28 is lower than outside the cooling module 22, which makes it possible to move an air mass forming the second air stream F2 through the housing 24.
Again as illustrated by
The air outlet 39 of the electric motor 36 is fluidly connected to the second intake opening 24c so as to allow the flow of the second air stream F2 intended to cool the motor 36 by flowing through the second intake opening 24c, then through the inlet 38 and through the motor 36 before being expelled by the air outlet 39 of the electric motor 36 to join the first air stream F1 inside the housing 24.
As illustrated in
The level of negative pressure and the temperature of the air taken in through the second intake opening 24c affect the coolness of the second air stream F2; a high level of negative pressure increases the coolness of the second air stream F2. The temperature of the second air stream F2 depends largely on the location in which the air is taken in to form this second air stream F2. More particularly, three intake zones 81, 82 and 83 can be distinguished near the cooling module 22 to supply the air intended to pass through the inlet 38 of the cover 40 to cool the motor 36. These intake zones 81, 82, 83 are for example all at atmospheric pressure, but they differ from each other in that they have different air temperatures and are positioned separately on the cooling module 22.
As illustrated in
As illustrated in
The cooling module 22 then comprises an air delivery duct 52 positioned on an outer face of the housing 24. The delivery duct 52 comprises in particular a recess 54 covering the at least one electric motor 36 and a channel connecting the upstream end of the housing 24 of the cooling module 22 level with its first intake opening 24a to the second intake opening 24c of said housing 24. The delivery duct 52 more particularly makes it possible to draw fresh air from the zone 81 to the inlet of the cooling module 22 in order to allow improved cooling of the motor 36.
As illustrated in
The cooling module 22 then comprises an air delivery duct 52′ positioned on an outer face of the housing 24, and this air delivery duct 52′ more particularly makes it possible to draw fresh air from the zone 82. The air delivery duct 52′ comprises a channel connecting the downstream end of the housing 24 of the cooling module 22 to the second intake opening 24c of said housing 24.
As illustrated in
The temperature gradient observed between the three zones 81, 82, and 83 is due to the heating of the first air stream F1 passing through the at least one heat exchanger 30a-30c.
Numerous positions of the second intake opening 24c of the housing 24 can also be envisaged within the cooling module 22 to ensure the fluid connection between the air outlet 39 of the motor 36 and the second intake opening 24c. The air outlet 39 of the motor 36 is for example positioned facing the second intake opening 24c of the housing 24 as illustrated in
In addition, according to a variant of this configuration (not shown), it is entirely possible to envisage dispensing with the presence of a casing 60 and a chamber X in order to achieve the fluid connection between the air outlet 39 of the electric motor 36 and the second intake opening 24c. In this case, the fluid connection would be directly between them.
According to an embodiment shown diagrammatically in
According to another embodiment shown diagrammatically in
According to another embodiment, the second intake opening 24c of the housing 24 is for example positioned between two heat exchangers of the plurality of heat exchangers 30a-30c. This configuration is shown diagrammatically in
According to another embodiment illustrated in
The most advantageous configuration combines the positioning of the air outlet 39 of the cover 40 facing the second intake opening 24c with an air intake from the zone 81. This particular configuration is shown in
Theoretically, the simplest configuration to set up combines the positioning of the air outlet 39 of the cover 40 facing the second intake opening 24c with an air intake from the zone 83, as in this particular embodiment, the housing 24 does not require the presence of an air delivery duct 52, 52′. This particular configuration is shown in
According to another embodiment of the cooling module 22 (not shown), it comprises at least two tangential-flow turbomachines 28 positioned parallel to each other. In this particular embodiment, each tangential-flow turbomachine 28 in particular comprises a dedicated electric motor 36, and the housing 24 comprises an individual second intake opening associated with each electric motor. Each second intake opening thus allows the flow of an individual air stream, these air streams being intended to each cool an electric motor 36 associated therewith.
The invention is not limited to the exemplary embodiments described with reference to the figures, and further embodiments will be clearly apparent to a person skilled in the art. In particular, the various examples can be combined, provided they are not contradictory.
Number | Date | Country | Kind |
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2008837 | Aug 2020 | FR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2021/074034 | 8/31/2021 | WO |