Transfer gearbox device
11148528 · 2021-10-19
Assignee
Inventors
Cpc classification
F16H57/0473
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/0409
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/0453
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/0423
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/0435
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/0457
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D13/72
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K17/346
PERFORMING OPERATIONS; TRANSPORTING
F16D13/74
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/0483
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/0445
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H57/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K17/346
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A transfer gearbox device, comprising a differential gear with a crown wheel in a first oil chamber, and a friction clutch in a second oil chamber. The first oil chamber comprises a first oil sump and the second oil chamber comprises a second oil sump. A valve is between the first oil chamber and the second oil chamber. When the valve is open, oil can pass via the valve out of the first oil chamber into the second oil chamber. When the valve is closed, oil cannot pass via the valve out of the first oil chamber. When the valve is open, by rotating the crown wheel, oil is conveyed by the crown wheel from the first oil sump into a first oil collector and is guided therefrom via a first oil guide and via the valve to the friction clutch cool and/or to lubricate the friction clutch.
Claims
1. A transfer gear device for a motor vehicle, comprising: a differential gear with at least one crown wheel in a first oil chamber, and a friction clutch in a second oil chamber, wherein the first oil chamber comprises a first oil sump and the second oil chamber comprises a second oil sump, wherein a valve is arranged between the first oil chamber and the second oil chamber, and therefore, when the valve is open, oil can pass via the valve out of the first oil chamber into the second oil chamber and, when the valve is closed, oil cannot pass via the valve out of the first oil chamber into the second oil chamber, wherein the valve and the crown wheel are arranged in such a manner that, when the valve is open, upon rotation of the crown wheel oil is conveyed by means of the crown wheel out of the first oil sump into a first oil collector and is guided from the first oil collector via a first oil guide and via the valve to the friction clutch in order to cool and/or to lubricate the friction clutch.
2. The transfer gear device as claimed in claim 1, wherein a second oil collector and a second oil guide of the transfer gear device are arranged in such a manner that, upon rotation of a component of the friction clutch, in particular a clutch cage of the friction clutch and/or plates of the friction clutch, oil is conveyed by means of the component of the friction clutch out of the friction clutch into the second oil collector and is guided from the second oil collector via the second oil guide into the first oil sump.
3. The transfer gear device as claimed in claim 2, wherein the second oil guide is arranged substantially radially outside the first oil guide.
4. The transfer gear device of claim 2, wherein the device has a clutch connect state and clutch disconnect state, wherein in the clutch connect state, the friction clutch opens the valve and oil is conveyed form the first oil sump to the friction clutch via the first oil guide and oil is conveyed from the second oil sump to the first oil sump via the second oil guide, and wherein in the clutch disconnect state the clutch closes the valve and oil is blocked from being conveyed from the first oil sump to the second oil sump via the first oil guide, and oil can continue to be conveyed from the second oil sump to the first oil sump via the second oil guide.
5. The transfer gear device as claimed in claim 1 wherein the transfer gear device comprises a clutch actuator which is configured to actuate the friction clutch, wherein the clutch actuator opens the valve when the friction clutch is closed, and the clutch actuator closes the valve when the friction clutch is open.
6. The transfer gear device as claimed in claim 1, wherein the first oil guide is designed in such a manner that the oil is supplied to a radially inner portion of the friction clutch and is flung off radially outward to drip into the second oil sump.
7. The transfer gear device as claimed in claim 1, wherein the first oil guide comprises an oil finger, wherein the oil finger is arranged coaxially on a first output shaft of the differential gear and rotates with the first output shaft.
8. The transfer gear device as claimed in claim 1, wherein the first oil guide comprises an oil downpipe, wherein oil is guided out of the first oil collector via the oil downpipe by means of gravity in the direction of the friction clutch.
9. The transfer gear device as claimed in claim 8, wherein oil is guided out of the first oil collector via the oil downpipe by means of gravity to the oil finger, wherein the valve is arranged between the oil downpipe and the oil finger.
10. The transfer gear device as claimed in claim 1, wherein the valve is actuated by a clutch actuator for actuating the friction clutch, wherein the clutch actuator comprises a ball ramp mechanism.
11. The transfer gear device as claimed in claim 1, wherein the differential gear has at least one side wheel, and, when the valve is closed, the oil in the first oil sump, after reaching a static oil level in the first oil sump, reaches at least as far as the lower edge of the side wheel.
12. The transfer gear device as claimed in claim 1, wherein the valve is opened and closed automatically in response to actuation of the friction clutch, and wherein the valve is located above an oil level of the second oil sump when the friction clutch is closed and the valve is open.
13. The transfer gear device as claimed in claim 1, wherein the first oil guide includes a down pipe selectively fluidly connected to an oil finger via the valve, wherein the valve is disposed axially between the downpipe and the oil finger, and the downpipe is disposed axially between the first oil collector and the valve.
14. A transfer gear device for a motor vehicle, comprising: a differential gear with at least one crown wheel in a first oil chamber, and a friction clutch in a second oil chamber, wherein the first oil chamber comprises a first oil sump and the second oil chamber comprises a second oil sump, a first oil collector disposed in the first oil chamber and a first oil guide extending from the first oil collector in the first oil chamber to the second oil chamber, a valve connected to the first oil guide; wherein the valve is arranged between the first oil chamber and the second oil chamber, and therefore, when the valve is open, oil can pass via the valve out of the first oil chamber into the second oil chamber and, when the valve is closed, oil cannot pass via the valve out of the first oil chamber into the second oil chamber, wherein the valve and the crown wheel are arranged in such a manner that, when the valve is open, upon rotation of the crown wheel oil is conveyed by means of the crown wheel out of the first oil sump into the first oil collector and is guided from the first oil collector via the first oil guide and via the valve to the friction clutch in order to cool and/or to lubricate the friction clutch; wherein the valve is opened and closed automatically in response to actuation of the friction clutch; and wherein the valve is located above an oil level of the second oil sump when the friction clutch is closed and the valve is open.
15. A transfer gear device for a motor vehicle, comprising: a differential gear with at least one crown wheel in a first oil chamber having a first oil sump, and a friction clutch in a second oil chamber having a second oil sump, a first oil collector disposed above the first oil sump configured to collect oil that is flung from the crown wheel during rotation of the crown wheel; a second oil collector disposed above the second oil sump configured to collect oil that is flung from a component of the friction clutch during rotation of the component of the friction clutch; a first oil guide extending from the first oil collector to the friction clutch; a second oil guide extending from the second oil collector to the first oil chamber; a valve disposed in the first oil guide, the valve configured to selectively block oil from being conveyed to the friction clutch via the first oil guide; wherein, when the friction clutch is closed, oil is conveyed from the first oil sump to the second oil sump via the first oil guide; wherein, when the friction clutch is open, oil is blocked from being conveyed from the first oil sump to the second oil sump via the first oil guide, and oil from the second oil sump is conveyed to the first oil sump via the second oil guide; wherein an oil level in the first oil sump is increased; wherein an oil level in the second oil sump is minimized when the clutch is open and the valve is closed.
16. The transfer gear device of claim 15, wherein the valve is disposed above the oil level in the second oil sump both when the clutch is open and when the clutch is closed.
17. The transfer gear device of claim 15, wherein the first oil guide includes a downpipe disposed in a first axial direction relative to the first oil collector, wherein the valve is axially downstream from the downpipe in the first axial direction, and an oil finger of the first oil guide is axially downstream from the valve in the first axial direction.
Description
DRAWINGS
(1) The drawings described herein are for illustrative purposes only of selected embodiments and not all possible implementations, and are not intended to limit the scope of the present disclosure.
(2)
(3)
(4)
DESCRIPTION OF THE INVENTION
(5) A transfer gearbox device according to the invention is illustrated in
(6) The transfer gearbox device comprises a differential gear 1, having at least one crown wheel 2, as an input element of the differential gear 1, and having a first output shaft 15 and a second output shaft 21 on the two sides of the differential gear 1. The differential gear 1 is arranged in a first oil chamber 3 of the transfer gearbox device, and a friction clutch 4 is arranged in a second oil chamber 5 of the transfer gearbox device. By means of the friction clutch 4, the first output shaft 15 can be coupled to a clutch output shaft 22.
(7) As can be seen in
(8) Arranged between the first oil chamber 3 and the second oil chamber 5 is a valve 8, and therefore, when the valve 8 is open, oil can pass via the valve 8 out of the first oil chamber 3 into the second oil chamber 5. The first and the second oil chamber 3, 5 are operated with a common oil quantity for the transfer gearbox device. When the valve 8 is closed, oil cannot pass via the valve 8 out of the first oil chamber 3 into the second oil chamber 5.
(9) The valve 8 and the crown wheel 2 are arranged in such a manner that, when the valve 8 is open, upon rotation of the crown wheel 2 oil is conveyed by means of the crown wheel 2 out of the first oil sump 3 into a first oil collector 9 and is guided from the first oil collector 9 via a first oil guide 10, comprising an oil downpipe 16 and an oil finger 14, and via the open valve 8 radially inward to the friction clutch 4 in order to cool and/or to lubricate the friction clutch 4.
(10) As can be seen in
(11) In the connect state (closed clutch,
(12) The intermediate wall 20 also serves as a bearing receptacle of the differential cage of the differential gear 1. Via the oil downpipe 16, the oil reaches the positions of actuation of the ball ramp, i.e. the clutch actuator 17. The valve 8 which can close and open the oil flow between the oil downpipe 16 and the oil finger 14 in a controlled manner is also implemented on this actuating mechanism, clutch actuator 17.
(13) In the connect state (clutch closed,
(14) The oil flung off drips into the second oil sump 7 of the second oil chamber 5 and, once there, is immediately conveyed upward out of an oil pan by the pumping action of the clutch cage 13 and at that location is flung into an oil catching device, namely the second oil collector 11 (see
(15) From this oil catching device, the second oil collector 11, the oil can then flow back into the first oil chamber 3 (drive assembly oil chamber) with the second oil guide 12 as an oil return. This oil return via the second oil guide 12 can take place even when the valve 8 is closed (see
(16) In the disconnect state (clutch open,
(17) Thus, the first oil sump 6 in the left-hand, first oil chamber 3 is increased, and the tips of the side wheels 18 of the differential gear 1 dip into the sump in order in this way to ensure adequate lubrication of the differential. The crown wheel 2 can be stationary in this state.
(18) The second oil sump 7 in the right-hand, second oil chamber 5 is reduced to a minimum, and the second oil chamber 5 becomes “virtually dry”.
(19) The size of the first oil chamber 3 can also be adapted, in particular the volumetric capacity thereof can be increased, in such a manner that, although the differential gear 1 receives sufficient oil for “torque idling”, only slight drag torques are caused.
LIST OF REFERENCE SIGNS
(20) 1 differential gear 2 crown wheel 3 first oil chamber 4 friction clutch 5 second oil chamber 6 first oil sump 7 second oil sump 8 valve 9 first oil collector 10 first oil guide 11 second oil collector 12 second oil guide 13 clutch cage 14 oil finger 15 first output shaft 16 oil downpipe 17 clutch actuator 18 side wheel 19 plates 20 intermediate wall 21 second output shaft 22 clutch output shaft