HYBRID DRIVE DEVICE
20250100369 ยท 2025-03-27
Inventors
- Carsten GITT (Stuttgart, DE)
- Jonathan ZEIBIG (Aalen, DE)
- Peter HAHN (Stuttgart, DE)
- Tobias SCHILDER (Ludwigsburg, DE)
Cpc classification
B60K6/387
PERFORMING OPERATIONS; TRANSPORTING
B60W10/08
PERFORMING OPERATIONS; TRANSPORTING
B60W10/02
PERFORMING OPERATIONS; TRANSPORTING
F16H2200/2038
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2200/201
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K6/547
PERFORMING OPERATIONS; TRANSPORTING
B60K6/26
PERFORMING OPERATIONS; TRANSPORTING
B60W10/06
PERFORMING OPERATIONS; TRANSPORTING
F16H3/64
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2200/0039
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60W20/15
PERFORMING OPERATIONS; TRANSPORTING
B60K17/356
PERFORMING OPERATIONS; TRANSPORTING
B60K6/52
PERFORMING OPERATIONS; TRANSPORTING
B60K2006/381
PERFORMING OPERATIONS; TRANSPORTING
F16H2200/2007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K6/365
PERFORMING OPERATIONS; TRANSPORTING
B60K6/40
PERFORMING OPERATIONS; TRANSPORTING
F16H3/66
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K2006/4816
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60K6/365
PERFORMING OPERATIONS; TRANSPORTING
B60W20/15
PERFORMING OPERATIONS; TRANSPORTING
B60W10/06
PERFORMING OPERATIONS; TRANSPORTING
B60W10/08
PERFORMING OPERATIONS; TRANSPORTING
F16H3/64
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K6/387
PERFORMING OPERATIONS; TRANSPORTING
B60K6/547
PERFORMING OPERATIONS; TRANSPORTING
B60K6/40
PERFORMING OPERATIONS; TRANSPORTING
B60K6/52
PERFORMING OPERATIONS; TRANSPORTING
B60K17/354
PERFORMING OPERATIONS; TRANSPORTING
B60K17/356
PERFORMING OPERATIONS; TRANSPORTING
B60W10/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A hybrid drive device includes an internal combustion engine, an electric motor having a rotor, and a gearbox having an input planetary gearing with a main axis of rotation. The internal combustion engine is connected to the input planetary gearing via a disconnect clutch. The input planetary gearing has exactly two planetary gear sets each with three elements. The third element is connected to the sixth element to conjointly rotate and the second element is connected to the fifth element to conjointly rotate. The rotor is coupled to the third element such that torque originating from the rotor is introduced into the gearbox via the third element and the sixth element. The gearbox has a third planetary gear set with three further elements. The second element is connected to the seventh element to conjointly rotate and the eighth element is connected to a driven gear to conjointly rotate.
Claims
1-12. (canceled)
13. A hybrid drive device comprising: an internal combustion engine; an electric motor having a rotor; and a gearbox comprising an input planetary gearing having a main axis of rotation, wherein the internal combustion engine is connected to the input planetary gearing via a disconnect clutch, wherein the input planetary gearing has exactly two planetary gear sets, which consists of a first and second planetary gear set, wherein the first planetary gear set comprises a first element, a second element, and a third element, and wherein the second planetary gear set comprises a fourth element, a fifth element, and a sixth element, wherein the third element is connected to the sixth element to conjointly rotate, wherein the second element is connected to the fifth element to conjointly rotate, wherein the rotor is coupled to the third element in such a way that torques, originating from the rotor, are introducible into the gearbox via the third element and the sixth element, wherein the gearbox has a third planetary gear set comprising a seventh element, an eighth element, and a ninth element, wherein the second element is connected to the seventh element to conjointly rotate, and wherein the eighth element is connected to conjointly rotate to a driven gear that discharges torque from the gearbox; a second switching element configured to block the input planetary gearing; and a third switching element configured to connect the fourth element to the eighth element to conjointly rotate, wherein seen in a direction of the main axis of rotation, the second switching element, the first planetary gear set, the second planetary gear set, the third switching element, and the third planetary gear set are arranged successively in the recited order.
14. The hybrid drive device of claim 13, wherein the disconnect clutch is configured to connect a crankshaft of the internal combustion engine to the first element to conjointly rotate.
15. The hybrid drive device of claim 13, further comprising: a first switching element configured to connect the ninth element to a housing of the gearbox to conjointly rotate.
16. The hybrid drive device of claim 14, wherein seen in a direction of the main axis of rotation, the input planetary gearing, the third planetary gear set, the driven gear, the disconnect clutch, and the internal combustion engine are arranged successively in the recited order.
17. The hybrid drive device of claim 13, wherein the rotor is arranged coaxially, axially overlapping and radially surrounding in relation to at least one of the first, second, and third planetary gear sets.
18. The hybrid drive device of claim 13, wherein the first element is a first sun gear, the second element is a first planetary carrier, the third element is a first ring gear, the fourth element is a second sun gear, the fifth element is a second planetary carrier, the sixth element is a second ring gear, the seventh element is a third sun gear, the eighth element is a third planetary carrier, and the ninth element is a third ring gear.
19. A hybrid vehicle comprising: a first driven vehicle axle; a hybrid drive device in driving connection with the first driven vehicle axle, the hybrid drive device comprising an internal combustion engine; an electric motor having a rotor; and a gearbox comprising an input planetary gearing having a main axis of rotation, wherein the internal combustion engine is connected to the input planetary gearing via a disconnect clutch, wherein the input planetary gearing has exactly two planetary gear sets, which consists of a first and second planetary gear set, wherein the first planetary gear set comprises a first element, a second element, and a third element, and wherein the second planetary gear set comprises a fourth element, a fifth element, and a sixth element, wherein the third element is connected to the sixth element to conjointly rotate, wherein the second element is connected to the fifth element to conjointly rotate, wherein the rotor is coupled to the third element in such a way that torques, originating from the rotor, are introducible into the gearbox via the third element and the sixth element, wherein the gearbox has a third planetary gear set comprising a seventh element, an eighth element, and a ninth element, wherein the second element is connected to the seventh element to conjointly rotate, and wherein the eighth element is connected to conjointly rotate to a driven gear that discharges torque from the gearbox; a second driven vehicle axle; a second electric motor, wherein the second driven vehicle axle is in driving connection exclusively with the second electric motor; a second switching element configured to block the input planetary gearing; and a third switching element configured to connect the fourth element to the eighth element to conjointly rotate, wherein seen in a direction of the main axis of rotation, the second switching element, the first planetary gear set, the second planetary gear set, the third switching element, and the third planetary gear set are arranged successively in the recited order.
20. The hybrid vehicle of claim 19, wherein the electric motor and the second electric motor are at least indirectly electrically coupled.
21. A method for operating the hybrid vehicle of claim 19, wherein the method comprises: operating the first electric motor and the internal combustion engine in driving mode and at a same time operating the second electric motor in regenerative mode by closing the disconnect clutch, opening the second switching element, closing first switching element, and opening third switching element.
Description
BRIEF DESCRIPTION OF THE DRAWING FIGURES
[0021] Here:
[0022]
[0023]
[0024]
DETAILED DESCRIPTION
[0025] In the illustration of
[0026] An input shaft 20 thus simultaneously forms the main axis of rotation of the input planetary gear 7. This input shaft 20 can be connected via a disconnect clutch K0 to a crankshaft 21 of the internal combustion engine 2, so that the internal combustion engine 2 can introduce torque into the input planetary gear 7 and thus into the gearbox 3. The input shaft 20 is connected for conjoint rotation in the region of the input planetary gear 7 to the first element 11, i.e., the sun gear of the first planetary gear set 8. This sun gear, as a first element 11, meshes with the planets on the planetary carrier 12 as a second element and with the ring gear as a third element 13. Two elements of the input planetary gear 7, that are otherwise not permanently connected for conjoint rotation can be connected for conjoint rotation via a blocking switching element SK, in this case the first element 11, i.e., the sun gear of the first planetary gear set 8, and the third element 13, as its ring gear.
[0027] In the direction of the input shaft 20, seen as a main axis of rotation, the first planetary gear set 8 and then the second planetary gear set 9, so its fifth element 15, i.e., planetary carrier, is connected for conjoint rotation to the second element 12, i.e., planetary carrier of the first planetary gear set 8, follows the blocking switching element SK, which in the meaning of the invention forms the second switching element SK. Also, its sixth element 16, i.e., the ring gear of the second planetary gear set 9, is connected for conjoint rotation to the third element 13, i.e., the ring gear of the first planetary gear set 8. Both together are attached to the rotor 6 for conjoint rotation via a connection 22, so that the electric motor 4 can introduce torque by its rotor 6 via the two ring gears, as a third element 13 and a sixth element 16 into the input planetary gear 7, or, in the case of a regenerative mode of the electric motor 4, can discharge from the input planetary gear 7 to this.
[0028] The two planetary carriers connected to each other for conjoint rotation, i.e., the second element 12 and the fifth element 15, are connected for conjoint rotation to the seventh, here the sun gear of the third planetary gear set 10, via a first hollow shaft 23. The eighth element 18, here the planetary carrier of the third planetary gear set 10, is connected for conjoint rotation via a second hollow shaft 24 to a driven gear 25, by which torque is discharged from the gearbox 3 and guided via an intermediate gear 26 in the exemplary embodiment presented here to a differential 27. The ninth element 19, the ring gear of the third planetary gear set 10, which follows the second planetary gear set 9 along the input shaft 20 as a main axis of rotation, can be connected via a first switching element SA to a housing 28 of the gearbox 3. The driven gear 25, the disconnect clutch K0 and the internal combustion engine 2 then follow the third planetary gear set 10 along the main axis of rotation.
[0029] Via a third hollow shaft 29, which on the one hand surrounds the input shaft 20, such as all three hollow shafts 23, 24, 29, and on the other hand the first hollow shaft 23, the fourth element 14, i.e., the sun gear of the second planetary gear set 9, can also be connected via a third switching element SB to the eighth element 18, i.e., the planetary gear carrier, and indirectly via this to the driven gear 25. The third switching element SB is arranged here, seen along the main axis of rotation, between the input planetary gear 7 or its second planetary gear set 9 and the third planetary gear set 10.
[0030] As shown in
[0031] In addition to the hybrid drive device 1, with the internal combustion engine 2, the electric motor 4, and the gearbox 3, the hybrid vehicle 30 also has a second driven axle, which is formed here by the rear axle HA. This is exclusively driven by a second electric motor 32. In addition to the mechanical active connections shown with a solid line in the illustration of
[0032] In the illustration in
[0033] In the illustration in
[0034] All conceivable variants of the drive according to
[0035] A first basic variant would be to design the operation in a such a way that the second hollow shaft 24 forms the sum shaft of the gearbox 3, i.e., the torques of the input shaft 20 and the connection 21 and thus of the internal combustion engine 2 and the first electric motor 4 are summed accordingly, wherein the torque of the first electric motor 4 can also be negative when it is in regenerative mode. The second variant is that the input shaft 20 forms the sum shaft of the gearbox 3.
[0036] The first state, which is labelled with EVT A in the switching table according to
[0037] The special feature is now exactly the same constellation, but in which the rear axle HA is also towed, so that the second electric motor 32 is in the regenerative mode. It then supplies, alone or in addition to the electric power from the battery 31, the power required to drive the first electric motor 4, which transmits its power to the differential 27 as a sum shaft when the connection 22 rotates in the positive direction and the input shaft 20 and the second hollow shaft 24 rotate in the corresponding positive direction.
[0038] In the subsequent switching state, a change is then made to first gear (gear 1), for which purpose the blocking switching element SK, i.e., the second switching element according to the nomenclature of the invention, is brought into engagement. When changing to second gear (gear 2), the blocking switching element SK is opened, and the third switching element SB is engaged. When subsequently changing to third gear (gear 3), the third switching element SA is then opened and the ninth element 19, i.e., the ring gear of the third planetary gear set 10, is released relative to the housing 28. At the same time, the blocking switching element SK is again engaged as a second switching element, which blocks the first planetary gear set 8. This makes it possible to drive in gear 1, gear 2, and gear 3, in which torque is typically generated via the first electric motor 4, as well as via the internal combustion engine 2 or just one of the two. Any electrical power that may be required again comes from the battery 31 or can optionally also come from the second electric motor 32 in regenerative mode for certain situations, as described above.
[0039] If the blocking switching element SK is then released again, the state labelled EVT B is reached. In this case, the sum shaft is now formed by the input shaft 20 and the first electric motor 4 can be operated in a regenerative mode, for example when the input shaft 20, the second hollow shaft 24 and the connection 21 rotate in a positive direction, in order to supply power to the second electric motor 32. Alternatively, additional power can be provided from the battery 31. Both axles VA and HA are thus driven.
[0040] An alternative to all-wheel drive in the state EVT B would be, for example, pure drive of the front axle VA under otherwise identical conditions, except that in this case the electrical power of the first electric motor 4 does not reach the second electric motor 32 in regenerative mode but is used to charge the battery 31. Front wheel operation with a power booster via the first electric motor 4 with electric power from the battery 31 would also be conceivable. In this case, the direction of rotation of the connection 22 would be reversed to be negative. If the direction of rotation of the input shaft 20 and the second hollow shaft 24 as the output shaft remains positive, the power is then transmitted from both drive machines, i.e., the first electric motor 4 and the internal combustion engine 2, to the differential 27 and thus to the driven front axle VA. Again, it would be conceivable in this situation to operate the second electric motor 32 in a regenerative mode and to utilize the power generated by it instead of the power from the battery 31 or, in addition to this, for the motor drive of the first electric motor 4.
[0041] Although the invention has been illustrated and described in detail by way of preferred embodiments, the invention is not limited by the examples disclosed, and other variations can be derived from these by the person skilled in the art without leaving the scope of the invention. It is therefore clear that there is a plurality of possible variations. It is also clear that embodiments stated by way of example are only really examples that are not to be seen as limiting the scope, application possibilities or configuration of the invention in any way. In fact, the preceding description and the description of the figures enable the person skilled in the art to implement the exemplary embodiments in concrete manner, wherein, with the knowledge of the disclosed inventive concept, the person skilled in the art is able to undertake various changes, for example, with regard to the functioning or arrangement of individual elements stated in an exemplary embodiment without leaving the scope of the invention, which is defined by the claims and their legal equivalents, such as further explanations in the description.