CVT drive train
10240667 ยท 2019-03-26
Assignee
Inventors
Cpc classification
F16H2200/2038
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2200/2005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2037/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2200/0008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2037/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2037/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H37/0813
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2200/0034
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H37/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A CVT drive train having an input drive, a start-up element, a continuously variable variator, and a differential. A direct shifting stage bridges the variator and is connected directly to the input drive. The direct connection of the direct shifting stage to the input drive enables the direct shifting stage to be used advantageously independently of the start-up element and can be connected, for example, to a gear that is used in conventional CVT drive trains to drive a hydraulic pump.
Claims
1. A continuously variable transmission (CVT) drive train, the CVT drive train comprising: an input drive; a torque converter; a continuously variable variator; a differential; a direct shifting stage that bridges the variator and that is connected to the input drive, wherein the direct shifting stage is configured to couple a pump gear to a spur gear of the differential via a switching device, wherein the pump gear is configured to drive a pump; and a torsional vibration damper positioned between the input drive and the torque converter, wherein an output of the torsional vibration damper is an input of the torque converter and is non-rotatably connected to the pump gear.
2. The CVT drive train according to claim 1, wherein the direct shifting stage which bridges the variator is connected to a crankshaft of the input drive.
3. The CVT drive train according to claim 1, wherein the direct shifting stage includes an intermediate gear stage that meshes with the spur gear of the differential.
4. The CVT drive train according to claim 1, wherein a sub-transmission is positioned between the variator and the differential.
5. The CVT drive train according to claim 4, wherein the sub-transmission is a fixed-stage transmission having a forward branch and a reverse branch.
6. The CVT drive train according to claim 5, wherein the torque converter, the variator, the sub-transmission, the direct shifting stage, and the differential are arranged in front-transverse construction in a motor vehicle.
7. The CVT drive train according to claim 4, wherein the sub-transmission is a dual-range transmission.
8. The CVT drive train according to claim 7, wherein the sub-transmission is a planetary transmission.
9. The CVT drive train according to claim 1, wherein the drive train is configured to utilize the direct shifting stage at an operating point that is relevant for fuel consumption, for driving with favorable fuel consumption.
10. The CVT drive train according to claim 1, wherein the drive train is configured to utilize the direct shifting stage for a change of operating range at a predetermined transmission ratio.
11. The CVT drive train according to claim 1, wherein the torque converter includes a lockup clutch and a decoupling clutch.
12. The CVT drive train according to claim 11, wherein the decoupling clutch is configured to decouple an input of the torque converter from an input of the continuously variable variator.
13. A continuously variable transmission (CVT) drive train, comprising: an input drive; a torque converter having a torque converter housing and including a lockup clutch and a decoupling clutch disposed within the torque converter housing; a continuously variable variator; a differential; a direct shifting stage that bridges the continuously variable variator, wherein the direct shifting stage is connected to the input drive via the torque converter housing, wherein the direct shifting stage is configured to couple a pump gear to a spur gear of the differential via a switching device, the pump gear being configured to drive a pump; and a torsional vibration damper positioned between the input drive and the torque converter, wherein an output of the torsional vibration damper is an input of the torque converter and is non-rotatably connected to the pump gear.
14. The CVT drive train according to claim 13, wherein the decoupling clutch is configured to disconnect the torque converter from the direct shifting stage.
15. The CVT drive train according to claim 13, wherein the decoupling clutch is configured to couple an input of the torque converter to an input of the continuously variable variator.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Additional advantages, features and details of the invention can be seen from the following description, in which various exemplary embodiments are described in detail with reference to the drawings. The drawing figures show the following:
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
(10)
(11) The CVT drive trains 1; 41; 71 include an input drive 3. The input drive is, for example, a combustion machine, which is also referred to as an internal combustion engine when used in a motor vehicle. The CVT drive train 1; 41; 71 is used in motor vehicles.
(12) A start-up element 5 makes it possible to move the motor vehicle off. A torque is forwarded from the input drive 3 to a start-up output part 6 through the start-up element 5. The start-up output part 6 is connected to a variator input of a variator 10 through a gear stage having a gear 8 and a gear 9.
(13) The variator 10 includes a conical disk set 11 on the drive side and a conical disk set 12 on the output side. The two conical disk sets 11, 12 are coupled with each other by an endless torque-transmitting means 13, which is only suggested. The endless torque-transmitting means 13 is, for example, a special chain.
(14) By means of the two conical disk sets 11 and 12, the transmission ratio between the input drive 3 and an output 15 can be varied continuously. The output 15 includes at least one driven wheel (not shown).
(15) Normally, the output 15 includes at least two driven wheels. An equalizing transmission, also referred to as a differential 16, serves to distribute the provided torque to the two driven wheels. The differential 16 includes a spur gear 18.
(16) The spur gear 18 of the differential 16 meshes with a sub-transmission output gear 19 of a sub-transmission 20. The sub-transmission 20 is operatively connected to a variator output on the output-side conical disk set 12.
(17) A torsional vibration damper 22 is operatively connected to the input drive 3 of the CVT drive trains 1; 41; 71. The torsional vibration damper 22 is positioned between the input drive 3 and the start-up element 5. In
(18) In the CVT drive train 41 shown in
(19) An input part 25 of the torsional vibration damper 22 is non-rotatably connected to a crankshaft of the input drive 3. An output part 26 of the torsional vibration damper 22 represents, on the one hand, an input of the start-up clutch 24 or torque converter 44. On the other hand, the output part 26 of the torsional vibration damper 22 is non-rotatably connected to a gear 28. The gear 28 serves, for example, to drive a pump (not shown). The gear 28 is therefore also referred to as a pump gear. However, the gear 28 can also serve to drive a different or an additional vehicle component.
(20) According to one essential aspect of the invention, a direct shifting stage 30 which is switchable with the aid of a switching device 29 is operatively connected to the gear 28. An arrow 31 indicates that the direct shifting stage 30 serves to bridge the variator 10. As indicated by the arrow 31, with the aid of the switching device 29 the direct shifting stage 30 can provide a direct coupling of the gear 28 to the spur gear 18 of the differential 16. With the aid of the direct shifting stage 30, the input drive 3 can be connected as a drive through the torsional vibration damper 22 to the output drive 15, independently of the start-up element 5 and the variator 10, to the differential 16.
(21) In
(22) The circles in
(23) In
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(25) An upper characteristic curve 54; 64 serves in
(26) The transmission ratio characteristic map shown in
(27) At operating point 55 in the driving operation of a motor vehicle equipped with the CVT drive trains 1: 41, it is possible with the direct switching stage 30 to switch over in such a way that the output drive is connected as a drive directly to the differential, as indicated by the arrow 31 in
(28) The variator (component 10 in
(29) In
(30) The CVT drive train 71 shown in
(31) In the transverse view of the CVT drive train 71 shown in