FLUID PUMP
20240200615 ยท 2024-06-20
Assignee
Inventors
- Christian SPERBER (Ebern, DE)
- Harry STEINMETZ (Ebern, DE)
- Andy MIKUSCH (Ebern, DE)
- Dimitri OSTROHOV (Ebern, DE)
- Marcel-Cornel GIRBEA (Ebern, DE)
Cpc classification
F04C11/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2121/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2300/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D31/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2230/21
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D27/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C21/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/808
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/0096
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2300/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2027/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2125/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2300/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C23/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An electromagnetic actuating device for a torque transmission system includes a shell arranged around an axis X, the shell being fixed relative to the axis X. The shell includes walls defining an annular cavity which houses a coil and at least partially a plunger which is able to move axially along the axis X to actuate a coupling device.
Claims
1. An electromagnetic actuating device for a torque transmission system, the electromagnetic actuating device comprising: a shell arranged around an axis X, the shell being fixed relative to the axis X and comprising walls defining an annular cavity which houses a coil and at least partially a plunger which is able to move axially along the axis X to actuate a coupling device, the actuating device being characterized in that the shell also comprises a recess and the actuating device comprises a detection lug fixed to the plunger and passing through this recess, wherein the detection lug is able to be detected by a sensor so as to generate a signal representative of the axial position of the plunger.
2. The electromagnetic actuating device as claimed in claim 1, wherein the relative rotation of the plunger relative to the shell along the axis X is prevented or limited by the cooperation of the detection lug and the recess.
3. The electromagnetic actuating device as claimed in claim 1, wherein the plunger is arranged radially outside the coil.
4. The electromagnetic actuating device as claimed in claim 1, wherein the plunger is situated axially facing the coil.
5. The electromagnetic actuating device as claimed in claim 1, wherein the shell comprises, viewed in a plane containing the axis X: a first side wall arranged around the axis X, a second side wall arranged around the axis X and axially spaced from the first side wall, a radially inner wall arranged around the axis X and connecting the first side wall to the second side wall, at least one radially outer wall arranged around the axis X and extending axially from the at least one of the first side wall and the second side wall, the plunger being arranged radially inside the radially outer wall and radially outside the radially inner wall.
6. The electromagnetic actuating device as claimed in claim 5, wherein the recess is situated on the radially outer wall.
7. The electromagnetic actuating device as claimed in claim 5, wherein the second side wall is situated, relative to the coil, on the side of the coupling device actuated by the axial movement of the plunger, and the first side wall is situated on the other side, the recess being situated at least partly in the first side wall.
8. The electromagnetic actuating device as claimed in claim 1, wherein the plunger is centred by its outer circumference on the shell.
9. The electromagnetic actuating device as claimed in claim 1, wherein the detection lug is able to be detected by a magnetic sensor, and the electromagnetic actuating device comprises a screen arranged between the sensor and the coil, the screen being carried by the detection lug.
10. The electromagnetic actuating device as claimed in claim 1, wherein the electromagnetic actuating device comprises a non-magnetic connecting ring fixed to the axial end of the plunger, on the side of the coupling device actuated by the axial movement of the plunger.
11. A transmission system for a motor vehicle, comprising: the electromagnetic actuating device according to claim 1, a first element and a second element, the second element being able to rotate relative to the first element around the axis X, the at least one of the first element and the second element being able to transmit a torque between a motor and a vehicle wheel, a coupling device which is actuatable by the electromagnetic actuating device; the coupling device comprising a first coupling part able to be axially pressed by the plunger of the electromagnetic actuating device, and a second coupling part; the first coupling part being fixed in rotation about the axis X relative to the first element, and the second coupling part being fixed in rotation about the axis X relative to the second element; the first coupling part being axially movable between a coupled position in which the first coupling part is coupled to the second coupling part so as to prevent a relative rotation of the first element and second element about the axis X, and a decoupled position in which the first coupling part and the second coupling part are decoupled so as to allow a relative rotation of the first element and second element about the axis X, a sensor cooperating with the detection lug to supply a signal representative of the axial position of the plunger, so as to determine whether the first coupling part is in the decoupled position, the coupled position, or an intermediate position between the decoupled position and the coupled position.
12. The transmission system as claimed in claim 11, wherein the transmission system comprises a differential drive device, and the first element comprises a casing inside which the second coupling part is housed; the first coupling part comprising an inner portion which is housed inside the casing, an outer portion which is positioned outside the casing, and a plurality of connecting portions which axially connect the inner portion and the outer portion of the first coupling part, each of the connecting portions passing through a corresponding through-opening made in the casing.
13. The transmission system as claimed in claim 11, wherein the second element comprises a supporting ring which is guided in rotation about the axis X inside the casing, two planet pinions which are mounted to rotate on the supporting ring about an axis Z perpendicular to the axis X, and two sun gears which are movable in rotation about the axis X and each in mesh with the two planet pinions and each intended to be rotationally fixed to a wheel drive shaft; the second coupling part of the coupling device being rotationally fixed to the supporting ring about the axis X.
14. The transmission system as claimed in claim 11, wherein the transmission system is housed in a housing comprising a non-magnetic wall, for example of aluminum, and the sensor is mounted on the housing wall outside the housing, the sensor being able to detect the detection zone of the detection lug through the housing wall.
15. The transmission system as claimed in claim 11, wherein a pivot joint kinematically links the plunger and the first coupling part so as to allow a relative rotation of the plunger and the first coupling part about the axis X.
16. The transmission system as claimed in claim 15, wherein the connecting ring and the first coupling part each comprise a groove, the two grooves being arranged radially opposite one another, and a retaining ring is arranged inside the two grooves.
17. A power train, in particular electrified, comprising a motor, in particular electric, at least one drive wheel, and a transmission system as claimed in claim 11, the transmission system being configured to transmit a torque between the motor and said at least one drive wheel.
18. The electromagnetic actuating device as claimed in claim 2, wherein the plunger is arranged radially outside the coil.
19. The electromagnetic actuating device as claimed in claim 2, wherein the plunger is situated axially facing the coil.
20. The electromagnetic actuating device as claimed in claim 2, wherein the shell comprises, viewed in a plane containing the axis X: a first side wall arranged around the axis X, a second side wall arranged around the axis X and axially spaced from the first side wall, a radially inner wall arranged around the axis X and connecting the first side wall to the second side wall, at least one radially outer wall arranged around the axis X and extending axially from the at least one of the first side wall and the second side wall, the plunger being arranged radially inside the radially outer wall and radially outside the radially inner wall.
Description
[0018] The invention will be described below on the basis of two embodiments which are illustrated in the appended drawings, in which:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027] A fluid pump 10, which has a housing 12 in which a stator 14 (see
[0028] The rotor 18 is part of a pump module which has a pump unit 20, driven by the rotor 18, by means of which a fluid can be pumped through suction and pressure ports 22 shown schematically in
[0029] The pump module with the pump unit 20 and the rotor 18 is attached to the housing 12 from outside such that the rotor 18 lies inside the stator 14.
[0030] A cap 24 which delimits the space relative to the rotor 18 is arranged inside the housing 12. The internal volume between the wall of the housing 12 and the cap 24 is filled with a casting compound 26. In addition to the stator 14 and the control unit 16, a heat-conducting element 30 is also embedded in the casting compound 26 and thus in the cast body 28 formed by the set casting compound 26.
[0031] The heat-conducting element 30 (see in particular
[0032] Provided in the vicinity of the outer rim of the base body 32 are a plurality of spacers 34 which are here designed in the form of beads which extend along almost the whole outer circumference of the base body.
[0033] The heat-conducting element 30 here extends over almost the whole cross-section of the housing 12.
[0034] Provided at the outer rim of the base body 32 of the heat-conducting element 30 are a plurality of support tabs 36 which are provided and dimensioned so as to bear against the inner side of the housing 12 under pretension (see
[0035] The heat-conducting element 30 is attached to a printed circuit board 38 of the control unit 16 before the housing 12 is filled with the casting compound 26, and to be precise such that the spacers 34 are supported on the printed circuit board 38. It is consequently ensured that the base body 32 of the heat-conducting element 30 is situated with a desired predefined spacing from electronic power components 40 which are part of the control unit 16.
[0036] As can be seen in
[0037] The support tabs 36 can be used to install the heat-conducting element 30 at the desired position inside the housing 12 and bearing against the printed circuit board 38 of the control unit 16. Depending on the component heights of the electronic power components 40 of the control unit 16 (and also depending on any raised/depressed portions which are embossed in the base body 32 of the heat-conducting element 30), the electronic power components 40 bear directly against the heat-conducting element 30 or a small gap is present between the upper side of the power components 40 and the underside of the base body 32 of the heat-conducting element 30.
[0038] If the interior of the housing 12 is filled with the casting compound 26, the space between the printed circuit board 38 and the heat-conducting element 30 is also filled. A quantity of casting compound 26 is added here such that the level of the casting compound is above the heat-conducting element 30 such that the latter is completely embedded. As can be seen in
[0039] Heat from the electronic power components 40 is transmitted into the base body 32 either by direct contact with the base body 32 (see the relieved portion, labelled with the reference sign 50 in
[0040] The heat introduced locally from the power components 40 is transmitted over the whole surface area of the heat-conducting element 30 by virtue of the high thermal conductivity of the heat-conducting element 30. Some of the heat is emitted into the environment via the outer end side of the cast body 28, and some of the heat is emitted into the housing 12 via the support tabs 36. Relatively large amounts of heat can be effectively dissipated into the environment without there being any need for heat sinks to be provided which have to extend through the cast body 28 to the outside.
[0041] A further advantage of the heat-conducting element 30 which is electrically conductively connected to the housing 12 is that it improves the EMV properties of the pump because it serves as a shield.
[0042]
[0043] The difference between the first and the second embodiment is that, in the second embodiment, the base body 32 is designed as not closed and instead has a plurality of perforations or through openings 60. Material bridges of casting compound extend through the through openings 60 such that those sections of the cast body 28 which are situated above and below the heat-conducting element 30 are connected directly to one another. This is advantageous for the strength of the cast body 28.
[0044] In terms of avoiding notch effects, the rims of the through openings 60 are designed as very smooth and in particular with a rounded bevel.