Hybrid module
10369879 ยท 2019-08-06
Assignee
Inventors
- Ulrich OHNEMUS (Hattenhofen, DE)
- Edmund Bauchrowitz (Hohenkammer, DE)
- Markus Nussbaumer (Munich, DE)
- Alexander Martin (Munich, DE)
Cpc classification
B60W30/20
PERFORMING OPERATIONS; TRANSPORTING
B60K6/387
PERFORMING OPERATIONS; TRANSPORTING
B60K2006/4825
PERFORMING OPERATIONS; TRANSPORTING
B60W2030/206
PERFORMING OPERATIONS; TRANSPORTING
B60Y2304/01
PERFORMING OPERATIONS; TRANSPORTING
B60Y2400/48
PERFORMING OPERATIONS; TRANSPORTING
F16D48/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2500/10462
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2500/1066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K6/54
PERFORMING OPERATIONS; TRANSPORTING
B60W20/15
PERFORMING OPERATIONS; TRANSPORTING
F16D2500/1045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D25/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K6/40
PERFORMING OPERATIONS; TRANSPORTING
F16D23/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D23/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60W20/15
PERFORMING OPERATIONS; TRANSPORTING
F16D48/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60W30/20
PERFORMING OPERATIONS; TRANSPORTING
B60K6/54
PERFORMING OPERATIONS; TRANSPORTING
B60K6/387
PERFORMING OPERATIONS; TRANSPORTING
F16D25/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A hybrid module for a powertrain includes a drive, a first coupling section that couples the hybrid module to a transmission, and a second coupling section that couples the hybrid module to an internal combustion engine. The second coupling section includes a shifting arrangement having at least two shift elements which can take an initial and a shift position.
Claims
1. A hybrid module for a drive train, comprising: a drive; a first coupling section that couples the hybrid module to a transmission; a clutch that is associated with the first coupling section; and a second coupling section that couples the hybrid module to an internal combustion engine, wherein the second coupling section comprises a shifting system having at least two shifting elements, which assume a starting position and a shifting position.
2. The hybrid module according to claim 1, wherein a damping system for torsional vibrations is provided, which comprises a dual mass flywheel and/or a centrifugal pendulum.
3. The hybrid module according to claim 1, wherein the shifting system comprises an actuator, which actuates at least one of the shifting elements, and in particular actuates the same electrohydraulically or electromechanically.
4. The hybrid module according to claim 3, wherein the shifting elements are coupled in a chamber in which a lubricant is accommodated.
5. The hybrid module according to claim 4, wherein the shifting elements are designed in a form-locked manner with respect to each other as claw elements.
6. The hybrid module according to claim 5, wherein the shifting elements have a substantially cylindrical design, in the shifting position, the one shifting element at least partially surrounds the other shifting element peripherally.
7. The hybrid module according to claim 6, wherein the shifting elements are provided with friction surfaces, which cooperate with each other in the shifting position.
8. The hybrid module according to claim 7, wherein the shifting system comprises at least one spring element, which is provided between one of the shifting elements and the damping system.
9. The hybrid module according to claim 8, wherein the coupling sections are designed as part of a keyed joint.
10. The hybrid module according to claim 9, wherein shiftable freewheeling is provided.
11. The hybrid module according to claim 1, wherein the drive is an electric drive.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1)
DETAILED DESCRIPTION OF THE DRAWINGS
(2) The hybrid module 10 includes a further drive 14 in the form of an electric drive, which forms part of the hybrid module 10. The hybrid module 10 is designed such that both the electric drive 14 and the internal combustion engine 12 can be coupled to a drive train 16 at the same time.
(3) At a first axial end, the hybrid module 10 includes a first coupling section 18, by way of which a transmission, which is not shown, can be coupled to the hybrid module 10. So as to be able to decouple the hybrid module 10 from the transmission, the first coupling section 18 includes a startable separating clutch 20 having a higher dynamic design, which is to say a starting clutch that can tolerate higher friction. If the separating clutch 20 is to protrude partially into the installation space of the hybrid module, of the electric motor rotor, it must be designed as a wet friction clutch.
(4) The transmission may be an automatic, a semi-automatic, a dual-clutch, or a manual transmission.
(5) At the other axial end, the hybrid module 10 includes a second coupling section 22, by way of which the hybrid module 10 is coupled to the internal combustion engine 12. A damping system 24 is moreover provided in the region of the second coupling section 22, the damping system being designed as a dual mass flywheel in the shown embodiment and damping the vibrations of the internal combustion engine 12.
(6) Alternatively, the damping system 24 can include a centrifugal pendulum, which may also be provided in addition to the dual mass flywheel.
(7) The second coupling section 22 furthermore includes a shifting system 26, which includes a housing 28 in which at least two shifting elements 30, 32 are disposed. The internal combustion engine 12 can be coupled to the drive train 16 by way of the two shifting elements 30, 32, so that the torque generated by the internal combustion engine 12 can be transmitted to the drive train 16, and in particular to the driven axle.
(8) The housing 28 is in particular designed as a chamber in which a lubricant is accommodated, whereby the shifting elements 30, 32 located therein are lubricated.
(9) The shifting elements 30, 32 can have a form-locked design, for example as claw elements, whereby the transmission of power from the internal combustion engine 12 to the drive train 16 is ensured.
(10) According to an exemplary embodiment, the shifting elements 30, 32 can have a cylindrical design, so that, in the shifting position, they make contact with one another via mutually opposing circumferential surfaces.
(11) The shifting elements 30, 32 can furthermore generally be provided with friction surfaces, so that a certain amount of torque can also be transmitted with slippage. After a relative rotational speed that now is only minimal has been ensured, the shifting elements can ensure the actual torque transmission by way of form fit.
(12) The FIGURE shows the shifting elements 30, 32 in the starting position thereof. So as to transfer the two shifting elements 30, 32 into the shifting position thereof, an actuator 34 is provided, which forms part of the shifting system 26. The actuator 34 acts on at least one of the two shifting elements 30, 32 directly or indirectly, so that these engage, whereby the internal combustion engine 12 is coupled to the drive train 16. The actuator 34 is likewise disposed within the housing 28.
(13) The actuator 34 can be driven electrohydraulically or electromechanically, so that the control for adjusting the shifting elements 30, 32 is accordingly fine.
(14) In the shown embodiment, the second shifting element 32 is furthermore attached to a holding element 36, which can be acted on by the actuator 34 and additionally comprises at least one spring element 38.
(15) The normally closed function is ensured by way of the spring element 38, so that the decoupling of the internal combustion engine 12 must be actively carried out, for example when the electronics system of the hybrid vehicle fails, whereby the internal combustion engine 12 is automatically mechanically coupled to the hybrid module 10 and the drive train 16 by way of the spring element 38.
(16) The two coupling sections 18, 22 can in particular be designed as part of a keyed joint, so that the hybrid module 10 can be easily coupled to the internal combustion engine 12 and the transmission disposed in the drive train 16. In this way, in particular a modular design of the hybrid module 10 is possible, so that the same can be coupled to various transmissions and drive systems.
(17) Furthermore, the hybrid module can be separately tested. The end-of-line (EOL) test can be carried out without difficulty.
(18) The operating principle of the hybrid module 10 according to the invention is as follows:
(19) The hybrid vehicle, which comprises such a hybrid module 10, is driven only by way of the electric drive 14 in a first driving situation, for example starting. For this purpose, the internal combustion engine 12 is decoupled from the drive train 16, as is shown in
(20) The actuator 34 acts on the holding element 36 for this purpose, against the spring pressure of the spring element 38, so that the two shifting elements 30, 32 are disengaged. The internal combustion engine 12 is thereby decoupled from the drive train 16.
(21) If the electric vehicle now accelerates such that the electric drive 14 is no longer able to provide the required power, the internal combustion engine 12 is coupled to the drive train 16.
(22) The actuator 34 is controlled within a required speed window for the shifting process so that the holding element 36, together with the shifting element 32 disposed thereon, is axially displaced by the spring pressure of the spring element 38, whereby the shifting elements 32, 30 engage. The internal combustion engine 12 is thereby coupled to the drive train 16.
(23) In this position, the electric motor 14 remains coupled to the drive train 16 and is now operated as a generator, so that the internal combustion engine 12 at the same time charges a storage medium of the electric drive 14, such as a battery, for example.
(24) However, the electric motor 14 can also contribute a driving torque, simultaneously with the internal combustion engine 12, which is to say provide a boost.
(25) In this driving situation, the vibrations of the internal combustion engine 12 are damped via the damping system 24, so that the vibrations in the drive train 16 originating from the internal combustion engine 12 are largely suppressed.
(26) Due to the lower space requirement of the switching system 26 compared to a separating clutch, the electric drive 14 and/or the damping system 24 can be designed larger, so that the performance capability of the electric drive 14 or the damping properties of the damping system 24 are improved.
(27) Due to the simple configuration of the coupling sections 18, 22, the hybrid module 10 furthermore has a modular design, so that it can be used for both in-line and front-transverse drive trains.
(28) In general, a hybrid module 10 having a lower axial installation space is thus created.
(29) The foregoing disclosure has been set forth merely to illustrate the invention and is not intended to be limiting. Since modifications of the disclosed embodiments incorporating the spirit and substance of the invention may occur to persons skilled in the art, the invention should be construed to include everything within the scope of the appended claims and equivalents thereof.