COOLANT SUPPLY SYSTEM FOR AN ELECTRICALLY OPERATED VEHICLE AXLE
20240333103 ยท 2024-10-03
Assignee
Inventors
- Andreas WEBER (Ingolstadt, DE)
- Ivo GREITER (Eitensheim, DE)
- Harald GLOEDE (Pf?rring, DE)
- Herbert TSCHENTSCHER (Riedenburg, DE)
- Frank R?THLINGSH?FER (Ingolstadt, DE)
Cpc classification
H02K2209/00
ELECTRICITY
H02K7/006
ELECTRICITY
H02K9/197
ELECTRICITY
International classification
H02K9/193
ELECTRICITY
H02K7/00
ELECTRICITY
Abstract
A coolant supply system for a drive device of an electrically operated vehicle axle of a two-track vehicle with an electric machine. The coolant supply system has an electric machine hydraulic circuit in which a coolant tank, the interior of a cylindrical stator housing and a stator housing sump are integrated, in which the coolant draining from the stator housing collects, which can be returned from there to the coolant tank by at least one return pump. The stator housing sump has a suction point on each of its axially opposite axial sides, from which the coolant can be sucked off by the return pump.
Claims
1-9. (canceled)
10. A coolant supply system for a drive device of an electrically operated vehicle axle of a two-track vehicle with an electric machine, comprising: an electric machine hydraulic circuit in which the interior of a cylindrical stator housing and a stator housing sump are integrated, in which the coolant draining from the stator housing collects, which is returned from there to a coolant tank by at least one return pump, wherein the stator housing sump at each of its axially opposite axial sides has a suction point at which the coolant is sucked off by the return pump and a drain opening is formed on each stator housing axial side on the stator housing bottom, via which the coolant is drained from a respective winding head space into the stator housing sump.
11. The coolant supply system according to claim 10, wherein the electric machine is installed transversely parallel to the vehicle axis, and a first suction point of the stator housing sump is positioned on the left side of the vehicle and the second suction point of the stator housing sump is positioned on the right side of the vehicle, and, when the vehicle is cornering to the left, the coolant in the stator housing sump shifts towards the right suction point due to centrifugal force, and when the vehicle is cornering to the right, the coolant in the stator housing sump shifts towards the left suction point due to centrifugal force, so that the coolant is safely returned to the coolant tank from either the first or second suction point when cornering.
12. The coolant supply system according to claim 10, wherein, in the drive device, the electric machine drives via a gear flange shafts guided to the vehicle wheels, and the coolant supply system has a transmission hydraulic circuit, in which a transmission chamber and a transmission sump formed on the transmission bottom are integrated, in which the coolant draining from transmission components collects at a transmission-side suction point, from which the coolant is returned into the transmission tank with a transmission return pump and the transmission is arranged on a stator housing axial side.
13. The coolant supply system according to claim 12, wherein a flow connection is formed between the stator housing sump and the transmission sump, and the coolant collected in the stator housing sump, as a result of cornering, is transferred to the transmission sump at the flow connection, so that the transmission-side suction point has a dual function, namely not only collecting the coolant that collects in the transmission sump, but also sucking the coolant transferred from the stator housing sump to the coolant tank.
14. The coolant supply system according to claim 10, wherein no flow connection is formed between the stator housing sump and the transmission sump, and, on the side of the stator housing sump close to the transmission, a separate stator housing suction point is provided, and the stator housing suction point is assigned an electric machine return pump, which transfers the coolant from the stator housing suction point towards the coolant tank.
15. The coolant supply system according to claim 10, wherein the return pumps are arranged on a common stator housing axial side and the stator housing sump extends in the axial direction up to the respective stator housing axial sides.
16. The coolant supply system according to claim 15, wherein the suction point arranged on the axial side of the stator housing remote from the pump is connected to the electric machine return pump via a return line.
17. The coolant supply system according to claim 16, wherein the return line runs axially parallel to the stator housing sump, and the return line, preferably together with the stator housing sump, is formed of the same material and in one piece on the stator housing.
18. The coolant supply system according to claim 11, wherein, in the drive device, the electric machine drives via a gear flange shafts guided to the vehicle wheels, and the coolant supply system has a transmission hydraulic circuit, in which a transmission chamber and a transmission sump formed on the transmission bottom are integrated, in which the coolant draining from transmission components collects at a transmission-side suction point, from which the coolant is returned into the transmission tank with a transmission return pump and the transmission is arranged on a stator housing axial side.
19. The coolant supply system according to claim 11, wherein no flow connection is formed between the stator housing sump and the transmission sump, and, on the side of the stator housing sump close to the transmission, a separate stator housing suction point is provided, and the stator housing suction point is assigned an electric machine return pump, which transfers the coolant from the stator housing suction point towards the coolant tank.
20. The coolant supply system according to claim 12, wherein no flow connection is formed between the stator housing sump and the transmission sump, and, on the side of the stator housing sump close to the transmission, a separate stator housing suction point is provided, and the stator housing suction point is assigned an electric machine return pump, which transfers the coolant from the stator housing suction point towards the coolant tank.
21. The coolant supply system according to claim 11, wherein the return pumps are arranged on a common stator housing axial side and the stator housing sump extends in the axial direction up to the respective stator housing axial sides.
22. The coolant supply system according to claim 12, wherein the return pumps are arranged on a common stator housing axial side and the stator housing sump extends in the axial direction up to the respective stator housing axial sides.
23. The coolant supply system according to claim 13, wherein the return pumps are arranged on a common stator housing axial side and the stator housing sump extends in the axial direction up to the respective stator housing axial sides.
24. The coolant supply system according to claim 14, wherein the return pumps are arranged on a common stator housing axial side and the stator housing sump extends in the axial direction up to the respective stator housing axial sides.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0013] Exemplary embodiments of the invention are described in the following on the basis of the appended figures. In the figures:
[0014]
[0015]
[0016]
DETAILED DESCRIPTION
[0017]
[0018] In
[0019] As shown in
[0020] By means of the supply line 43, coolant is guided through the rotor shaft 6 and passed via a flow connection 51 into radially inner stator channels 53 into the right winding head space 27. In addition, coolant is projected radially outwards towards the winding heads starting from the flow connection 51 and starting from the right mouth opening of the radially inner stator channels 53.
[0021] The two winding head spaces 27 are separated from one another in a substantially coolant-tight manner in the interior of the stator housing via the rotor/stator arrangement. In order to provide a flow connection between the two winding head spaces 27, there is a respective drain opening 54 on each of the two stator housing axial sides. These are positioned in the housing bottom of the stator housing 2. The coolant collecting on the bottom side in the respective winding head space 27 can flow out into an underlying stator housing sump 55 via the two drain openings 54. In the installed position, the stator housing sump 55 is positioned centrally, that is in vertical alignment with the rotor axis, at the lowest point below the stator housing 2, so that the coolant can flow under gravity from the inside of the stator housing into the stator housing sump 55.
[0022] In
[0023] The transmission return pump 59 is part of a transmission hydraulic circuit G of the coolant supply system. In the transmission hydraulic circuit G, the coolant tank 35 is connected to the suction pump 37 via the suction line. By means of the suction pump 37, the coolant coming from the coolant tank 25 can be guided through a transmission supply line to a tooth engagement point Z of the transmission 19 in order to lubricate transmission components. From there, the coolant drips off and collects on the bottom of the transmission in a transmission sump 65. In the transmission sump 65, the coolant is guided back into the coolant tank 35 in a return line 67 using the transmission return pump 59.
[0024] In
[0025] As already mentioned, in
[0026] A core idea of the invention is that a flow connection 68 to the transmission sump 65 is formed on the side of the stator housing sump 55 close to the transmission. When cornering to the right, the coolant in the stator housing sump 55 is transferred via the flow connection 68 into the transmission sump 65. In this case, with double functionality, at the transmission-side suction point A1, not only the coolant collected in the transmission sump 65 is sucked off in the direction of the coolant tank 35, but the coolant is also transferred from the stator housing sump 55. A separate stator housing suction point A3 (as indicated in
[0027] As can be seen from
[0028] In
[0029] A second exemplary embodiment is shown in
LIST OF REFERENCE NUMERALS
[0030] 2 stator housing [0031] 3 flange shafts [0032] 4 stator [0033] 5 rotor [0034] 6 rotor shaft [0035] 8,9 housing walls [0036] 17 transmission input shaft [0037] 19 transmission [0038] 21 stator windings [0039] 27 winding head space [0040] 35 coolant tank [0041] 37 suction pump [0042] 41, 43 coolant supply lines [0043] 44 coolant spray rings [0044] 45 annular gap [0045] 46 nozzles [0046] 47 radially outer stator channels [0047] 49 annular gap [0048] 51 flow connection [0049] 53 radially inner stator channels [0050] 54 drain openings [0051] 55 stator housing sump [0052] 56 electric machine return pump [0053] 59 transmission return pump [0054] 65 transmission sump [0055] 67 return line [0056] 68 flow connection [0057] 69 return line [0058] 71 second electric machine return pump [0059] 73 return line [0060] 75 mouth opening [0061] 77 suction nozzle [0062] A1 left suction point [0063] A2 right suction point [0064] A3 additional suction point [0065] G transmission hydraulic circuit [0066] E electric machine hydraulic circuit [0067] Z tooth meshing point