CVT drive train
10378626 ยท 2019-08-13
Assignee
Inventors
Cpc classification
F16H2045/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H45/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2045/0205
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2037/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H37/0813
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2045/0294
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H37/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H45/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H37/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A CVT drive train including an input drive is disclosed. A torque converter is downstream from the input drive in a power flow direction and contained within a torque converter housing, where the torque converter serves as a starting element. A disconnect clutch is contained within the torque converter housing along with a converter bridging clutch. The bridging clutch is combined with the disconnect clutch such that the impeller shell acts as a friction member for both clutches. In this way, the bridging clutch is positioned between a turbine shell and an impeller shell and the disconnect clutch is positioned between the impeller shell and housing of the torque converter. A continuously variable variator is operatively connected to and arranged downstream from the torque converter, and a rotation reversing device is downstream of the variator to enable a shift between a neutral position of the drive train and one of a forward driving position and a reverse driving position.
Claims
1. A continuously variable transmission (CVT) drive train comprising: an input drive; a torque converter as a starting element, wherein the torque converter is contained within a torque converter housing, the torque converter further including: an impeller including an impeller shell and at least one impeller blade connected to the impeller shell; a turbine including a turbine shell and at least one turbine blade connected to the turbine shell; a disconnect clutch positioned between the torque converter housing and the impeller shell, wherein the disconnect clutch includes a portion of the impeller shell located radially outward of the at least one impeller blade; and a bridging clutch positioned between the turbine shell and the impeller shell, wherein the bridging clutch includes the portion of the impeller shell and a portion of the turbine shell located radially outward of the at least one turbine blade, wherein the portion of the impeller shell directly contacts the portion of the turbine shell when the bridging clutch is closed, and wherein the portion of the impeller shell located radially outward of the at least one impeller blade is a friction member for both the disconnect clutch and the bridging clutch; a rotation reversing device; and a continuously variable variator.
2. A CVT drive train according to claim 1, wherein the disconnect clutch within the torque converter housing is operable with slip.
3. A CVT drive train according to claim 1, wherein the torque converter is a multi-function torque converter.
4. A CVT drive train according to claim 3, wherein the disconnect clutch within the torque converter is operable with slip.
5. A CVT drive train according to claim 1, wherein the rotation reversing device is a reversing gear including a claw clutch for shifting between a neutral position N, a forward driving position D, and a reverse driving position R.
6. A CVT drive train according to claim 1, wherein the rotation reversing device includes a synchronization device.
7. A CVT drive train according to claim 1, wherein the rotation reversing device is located on an output side of the variator between a variator output and a differential.
8. A CVT drive train according to claim 1, including a torque sensor positioned in an intermediate space between the torque converter and the variator.
9. A method for operating a continuously variable transmission (CVT) drive train having an input drive, a torque converter including an impeller and a turbine, a rotation reversing device, and a continuously variable variator, the method comprising: operating a disconnect clutch positioned within a housing of the torque converter between the housing and an impeller shell to uncouple the torque converter and the variator from the input drive, wherein the disconnect clutch includes a portion of the impeller shell located radially outward of at least one impeller blade; switching the rotation reversing device between a neutral position N, and one of a forward driving position D, and a reverse driving position R; operating the disconnect clutch to couple the torque converter and the variator to the input drive to enable a selected one of forward driving and reverse driving; and operating a bridging clutch positioned within the housing of the torque converter between a turbine shell and the impeller shell to selectively block or bridge the torque converter, wherein the bridging clutch includes the portion of the impeller shell and a portion of the turbine shell located radially outward of at least one turbine blade, wherein the portion of the impeller shell directly contacts the portion of the turbine shell when the bridging clutch is closed, and wherein the portion of the impeller shell located radially outward of the at least one impeller blade is a friction member for both the disconnect clutch and the bridging clutch.
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:
(2)
(3)
(4)
DESCRIPTION OF THE PREFERRED EMBODIMENTS
(5)
(6) Starting to drive a motor vehicle equipped with the CVT drive train 1 is enabled by a starting element 5. The starting element 5 is implemented as a torque converter. A torque from the input drive 3 is transmitted through the torque converter 5 to a variator input of the variator 10.
(7) The variator 10 includes a conical disk set 11 on the input side and a conical disk set 12 on the output side. The two conical disk sets 11 and 12 are coupled with each other by an endless torque-transmitting means 13. The endless torque-transmitting means 13 is, for example, a special chain.
(8) By means of the two conical disk sets 11 and 12, the transmission ratio between the input drive 3 and an output drive 15 can be adjusted continuously. The output drive 15 includes at least one driven vehicle wheel (not shown).
(9) Normally, the output drive 15 includes at least two driven vehicle wheels. An equalizing transmission 16, also referred to as a differential, serves to distribute the provided torque to the two driven vehicle wheels. The differential 16 includes a spur gear 18.
(10) The torque converter 5 includes a housing 20. The housing 20 of the torque converter 5 is firmly connected to the input part 4 of the CVT drive train 1. Located in the housing 20 of the torque converter 5 are a turbine 21, a diffuser 22, and an impeller 23. The construction and the function of a torque converter are disclosed, for example, in the international published unexamined application WO 2004/003400 A1.
(11) A torsional vibration damping device 28 is integrated into the torque converter 5. The torsional vibration damping device 28 is non-rotatably connected or connectible on the input side to the input part 4. On the output side, the torsional vibration damping device 28 is connected to an input shaft 30 of the variator 10. In
(12) Furthermore, a converter bridging clutch 31 and a disconnect clutch 32 are integrated into the torque converter 5. The converter bridging clutch 31 serves to block or bridge the torque converter 5. The input part 4 of the CVT drive train 1 can be connected directly to the input shaft 30 of the variator 10 through the engaged converter bridging clutch 31.
(13) The disconnect clutch 32 makes it possible to uncouple the input shaft 30 of the variator 10 from the input part 4 of the CVT drive train 1. That enables the torque converter 5 to be uncoupled from the input drive 3.
(14) The variator 10 has an output shaft 35 on the output side. A rotation reversing device 36 is operatively connected to the output shaft 35 of the variator 10.
(15) The rotation reversing device 36 includes a claw clutch 38, which enables shifting between a neutral position N, a reverse driving position R, and a forward driving position D.
(16) The rotation reversing device 36 including the claw clutch 38 is operatively connected with the differential 16 between the output shaft 35 of the variator 10 by the spur gear 18.
(17) The circles shown in
(18) In the CVT drive train 1 shown in
(19) In the CVT drive train 1 shown in
(20) Furthermore, the variator 10 of the CVT drive train 1 in
(21) The gear 26 shown in