Drive unit for a hybrid vehicle and method for operating the same
09738149 · 2017-08-22
Assignee
Inventors
Cpc classification
B60K6/387
PERFORMING OPERATIONS; TRANSPORTING
B60W10/08
PERFORMING OPERATIONS; TRANSPORTING
B60W10/02
PERFORMING OPERATIONS; TRANSPORTING
Y10S903/91
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16H2200/0056
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2200/2005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H3/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60W2710/1011
PERFORMING OPERATIONS; TRANSPORTING
B60W20/10
PERFORMING OPERATIONS; TRANSPORTING
B60W10/06
PERFORMING OPERATIONS; TRANSPORTING
B60W10/113
PERFORMING OPERATIONS; TRANSPORTING
Y10S903/93
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10S903/914
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60K6/365
PERFORMING OPERATIONS; TRANSPORTING
B60W20/00
PERFORMING OPERATIONS; TRANSPORTING
B60W20/40
PERFORMING OPERATIONS; TRANSPORTING
B60K2006/4816
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60K6/365
PERFORMING OPERATIONS; TRANSPORTING
B60W20/10
PERFORMING OPERATIONS; TRANSPORTING
B60W20/40
PERFORMING OPERATIONS; TRANSPORTING
B60W20/00
PERFORMING OPERATIONS; TRANSPORTING
B60W10/113
PERFORMING OPERATIONS; TRANSPORTING
B60W10/08
PERFORMING OPERATIONS; TRANSPORTING
B60W10/06
PERFORMING OPERATIONS; TRANSPORTING
B60W10/02
PERFORMING OPERATIONS; TRANSPORTING
B60K6/387
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A drive unit for a hybrid vehicle includes a drive assembly with an internal combustion engine and an electric motor, and a transmission featuring several sub-transmissions shifting between the drive assembly and an output. Through a planetary transmission, the electric motor is coupled to an input shaft of a first sub-transmission and an input shaft of a second sub-transmission. Through a separating clutch, the internal combustion engine is to the input shaft of the first sub-transmission and, if the separating clutch is locked, is coupled to the same element of the planetary transmission as the input shaft of the first sub-transmission. A bypass shift element works with the planetary transmission such that, with a locked bypass shift element, a torque-proof connection between the electric motor, the input shaft of the first sub-transmission and the input shaft of the second sub-transmission exist, while, with an open bypass shift element, this torque-proof connection between the electric motor and the two input shafts of the two sub-transmissions does not exist. The separating clutch is formed as a frictional-locking or positive-locking separating clutch, and the bypass shift element is formed as a frictional-locking bypass shift element.
Claims
1. A drive unit for a hybrid vehicle, comprising: a drive assembly with an internal combustion engine, an electric motor, and a transmission with at least a first sub-transmission parallel to a second sub-transmission between the drive assembly and an output; the electric motor coupled to an input shaft of the first sub-transmission and an input shaft of the second sub-transmission through a planetary transmission; the internal combustion engine able to couple to the input shaft of the first sub-transmission through a clutch and, when the clutch is locked, is coupled to a same element of the planetary transmission as the input shaft of the first sub-transmission; a bypass shift element configured in such a manner that: (a) when the bypass shift element is locked, a torque-proof connection between the electric motor, the input shaft of the first sub-transmission and the input shaft of the second sub-transmission exists, and (b) with the bypass shift element open, the torque-proof connection between the electric motor and the two input shafts of the two sub-transmission does not exist; wherein the clutch is a frictional-locking or positive-locking separating clutch, and the bypass shift element is a frictional-locking bypass shift element; and the frictional-locking bypass shift element is interactively configured with the transmission as a power-shifting element for execution of a power shift in an all-electric driving mode, wherein: upon execution of a drive upshift and upon execution of a coast downshift, the power-shifting element is switched on or locked; and upon the execution of a drive downshift and upon the execution of a coast upshift, the power-shifting element is switched off or opened.
2. A method for operating the drive unit for a hybrid vehicle, wherein the drive unit comprises: a drive assembly with an internal combustion engine, an electric motor, and a transmission with at least a first sub-transmission parallel to a second sub-transmission between the drive assembly and an output; the electric motor coupled to an input shaft of the first sub-transmission and an input shaft of the second sub-transmission through a planetary transmission; the internal combustion engine able to couple to the input shaft of the first sub-transmission through a clutch and, when the clutch is locked, is coupled to a same element of the planetary transmission as the input shaft of the first sub-transmission; a bypass shift element configured with the planetary transmission in such a manner that: (a) when the bypass shift element is locked, a torque-proof connection between the electric motor, the input shaft of the first sub-transmission and the input shaft of the second sub-transmission exists, and (b) with the bypass shift element open, the torque-proof connection between the electric motor and the two input shafts of the two sub-transmission does not exist; the method comprising: using the frictional-locking bypass shift element as a power-shifting element for execution of a power shift in all-electric driving mode, wherein, upon the execution of a drive upshift and upon the execution of a coast downshift, the power-shifting element is closed; and upon the execution of a drive downshift and upon the execution of a coast upshift, the power-shifting element is opened.
3. The method according to claim 2, wherein for the execution of a drive upshift or a coast downshift in all-electric driving mode, when the frictional-locking bypass shift element and the separating clutch are both open and one gear is engaged in both sub-transmissions: initially, bringing the frictional-locking bypass shift element into engagement to unload the first sub-transmission; subsequently, the engaged gear in the first sub-transmission is disengaged; thereupon, the frictional-locking bypass shift element is synchronized; and subsequently, the frictional-locking bypass shift element is locked.
4. The method according to claim 2, wherein for the execution of a drive downshift or a coast upshift in all-electric driving mode, when the frictional-locking bypass shift element is locked, the separating clutch is open, one gear is engaged in the second sub-transmission, and the first sub-transmission is in neutral: initially, reducing a torque-transfer capacity of the frictional-locking bypass shift element by bringing the frictional-locking bypass shift element into slip; whereas, through adjustment of rotational speed of the electric motor, the first sub-transmission is synchronized to a target gear of the power shift to be executed; thereupon, the target gear is engaged in the first sub-transmission; and subsequently, the frictional-locking bypass shift element is opened.
5. The method according to claim 2, wherein for coupling of the internal combustion engine to the transmission through the positive-locking separating clutch with assistance of the frictional-locking bypass shift element: synchronizing rotational speed of the input shaft of the first sub-transmission to rotational speed of the internal combustion engine while maintaining pulling force at the output.
6. The method according to claim 5, wherein for coupling of the internal combustion engine in all-electric driving mode when the frictional-locking bypass shift element is locked, the separating clutch is open, one gear is engaged in the second sub-transmission, and the first sub-transmission is in neutral: initially, reducing torque-transfer capacity of the frictional-locking bypass shift element by bringing the frictional-locking bypass element into slip; whereas, through an adjustment of rotational speed of the electric motor, the positive-locking separating clutch is synchronized; thereupon, the positive-locking separating clutch is locked; subsequently, through a load transfer to the internal combustion engine, the frictional-locking bypass shift element is unloaded; thereupon, the first sub-transmission is synchronized to a suitable gear and this gear is engaged in the first sub-transmission; and subsequently, through a further load transfer to the internal combustion engine, the electric motor is unloaded.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Preferred additional embodiments arise from the following description. Embodiments of the invention are, without any limitation, more specifically described by means of the drawing. Thereby, the following is shown:
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DETAILED DESCRIPTION
(16) Reference will now be made to embodiments of the invention, one or more examples of which are shown in the drawings. Each embodiment is provided by way of explanation of the invention, and not as a limitation of the invention. For example features illustrated or described as part of one embodiment can be combined with another embodiment to yield still another embodiment. It is intended that the present invention include these and other modifications and variations to the embodiments described herein.
(17)
(18) The transmission 5 includes two sub-transmissions 6 and 7, which are shifted, for all intents and purposes, parallel to each other. The embodiment shown, the first sub-transmission 6 provides the forward gears “1”, “3”, “5” and “7”, while the second sub-transmission 7 provides the forward gears “2”, “4”, “6”, and the reverse gear “R”. The gear set shown in
(19) For providing the forward gears and the reverse gear, the sub-transmissions 6 and 7 of the transmission 5 include positive-locking shift elements 13, which form the gear shift elements of the transmission 5. The structure and the arrangement of the sub-transmissions 6 and 7 are known from dual-clutch transmissions and are familiar to those skilled in the art.
(20) It should be noted that each sub-transmission 6, 7 includes a respective input shaft 8, 9, which, depending on the shifting state of the shift elements 13, are selectively coupled through an output shaft 18 with the output 4. An input shaft 9 of the sub-transmission 7 is designed as a hollow shaft, in which the other input shaft 8 of the other sub-transmission 6 runs in a coaxial manner. The shift elements 13 of the sub-transmissions 6 and 7 are allocated to lay shafts 19 and 20 of the sub-transmissions 6 and 7.
(21) Through a planetary transmission 10, the electric motor 2 of the drive assembly 3 engages at an input shaft 8 of the first sub-transmission 6 and at an input shaft 9 of the second sub-transmission 7. On the input shaft 8 of the first sub-transmission 6, the internal combustion engine 1 of the drive assembly 3 is able to be directly coupled through a separating clutch 11, whereas, with a locked separating clutch 11, through the planetary transmission 10, the internal combustion engine 1 is further indirectly coupled to the input shaft 9 of the second sub-transmission 7.
(22) Of the planetary transmission 10, a sun gear 14, a ring gear 15, planetary gears 16 and a bar or planetary carrier 17 are shown in
(23) A bypass shift element 12 works together with the planetary transmission 10 in such a manner that, with a locked bypass shift element 12, a torque-proof connection between the electric motor 2, the input shaft 9 of the second sub-transmission 7 and the input shaft 8 of the first sub-transmission 6, and thus a mandatory equality of rotational speed between the same, exist, while, with an open bypass shift element 12, this torque-proof connection between the electric motor 2 and the two input shafts 8, 9 of the two sub-transmissions 6, 7, and thus the mandatory equality of rotational speed, do not exist.
(24) The bypass shift element 12 comprises a frictional-locking bypass shift element 12. According to a preferred embodiment of the invention, the separating clutch 11 comprises a positive-locking separating clutch 11.
(25) A first method in accordance with the invention for operating such a drive unit relates to the execution of a power shift in all-electric driving mode of the drive unit, whereas, in accordance with the invention, the frictional-locking bypass shift element 12 is used as a power-shifting element for this purpose.
(26) It is a realization of the invention that, if all gear shift elements of the transmission 5, thus all shift elements 13, are designed as positive-locking shift elements, in electric driving mode, a power shift can be executed through the frictional-locking bypass shift element 12 of the planetary transmission 10.
(27) Thereby, upon the execution of a drive upshift or upon the execution of a coast downshift, the bypass shift element 12 is used as a power-shifting element to be switched on or locked. Upon the execution of a drive downshift or a coast upshift, the frictional-locking bypass shift element 12 is used as a power-shifting element to be switched off or opened.
(28)
(29) In accordance with
(30) In this case of the electric method,
(31) It follows that, for this case of the electric method, the electric motor 2 provides power of approximately 35 kW, which is also applied at the output 4, whereas the idle power flowing through the sub-transmission 6 amounts to approximately 28 kW.
(32) If, upon all-electric driving mode, a power shift is then executed, as already stated, the frictional-locking bypass shift element 12 is used as a power-shifting element, whereas, for the case of a drive upshift in all-electric driving mode,
(33) In the initial state with all-electric driving, thus in
(34) For the execution of the power drive upshift, initially between the points in time t1 and t2, a load transfer is carried out by the frictional-locking bypass shift element 12; that is, for the unloading of the first sub-transmission 6. Whereas, in accordance with
(35) Thereupon, the gear of the first sub-transmission 6 is disengaged between the points in time t2 and t3, whereas, an adjustment to the rotational speed thereupon takes place between the points in time t3 and t4. In accordance with
(36) Under the assumption that the rotational speed n-EM of the electric motor 2 amounts to 3500 rpm, and the torque M-EM provided by the same amounts to 100 Nm, as a result of the execution of the power drive upshift, the torque M-AB taking effect at the output is reduced from 500 Nm prior to the point in time t1 to 300 Nm after the point in time t2 with a rotational speed n-AB of 700 rpm. Starting with the point in time t1, until the point in time t2, the torque M-12 to be transferred by the frictional-locking bypass shift element 12 increases to 67 Nm with a slip speed n-12 of 2100 rpm. The power loss at the bypass shift element 12 then amounts to 14 kW. The aforementioned adjustment to the rotational speed takes place between the points of time t2 and t3, whereas, starting with the point in time t3, the rotational speed n-EM of the electric motor 2 is reduced from 3500 rpm to 2100 rpm by the point in time t4; that is, to the rotational speed n-GE9 of the input shaft 9 of the second sub-transmission 7; while, during the same period of time between the points in time t3 and t4, the rotational speed n-GE8 of the input shaft 8 of the first sub-transmission 6 is increased from 700 rpm to 2100 rpm.
(37) As an analogy to the above design of the power drive upshifts, a power coast downshift can also be executed; that is, if the electric motor 2 is in coasting mode (for example, as a result of recuperation).
(38)
(39) In an analogous manner to the power drive downshift, a power coast upshift can also be executed, whereas, at that point (for example, as a result of a recuperation action), the electric motor 2 in turn is in coasting mode.
(40) An additional method in accordance with the invention for operating the drive unit in accordance with the invention relates to the coupling of the internal combustion engine 1 when coming out of all-electric driving mode, whereas, for this purpose, the coupling of the internal combustion engine 1 takes place through the positive-locking separating clutch 11; that is, in such a manner, with the assistance of the frictional-locking bypass shift element 12, that the rotational speed of the input shaft 8 of the first sub-transmission 6 is synchronized to the rotational speed of the internal combustion engine 1 while maintaining the pulling force at the output 4. Details of this method for the coupling of the internal combustion engine 1 through the positive-locking separating clutch 11 with the assistance of the frictional-locking bypass shift element 12 are described below with reference to
(41) In
(42) In order to then couple the internal combustion engine 1, initially between the points in time t1 and t2, the ability to transfer of the frictional-locking bypass shift element 12 is reduced, until the slip up to the same occurs; however, this is not visible in
(43) Thereupon, the positive-locking separating clutch 11 is locked between the points in time t2 and t3, whereas a load transfer is subsequently carried out by the internal combustion engine 1 between the points in time t3 and t4. Thereby, the frictional-locking bypass shift element 12 is unloaded, which may be inferred from the torque curve M 12 in accordance with
(44) In the above embodiments, the input shaft 8 of the first sub-transmission 6, just like the internal combustion engine 1, is engaged at the ring gear 15 of the planetary transmission 10 if the separating clutch 11 is locked. The input shaft 9 of the second sub-transmission 7 engages at the bar or the planetary carrier 17 of the planetary transmission 10. The electric motor 2 engages at the sun gear 14 of the planetary transmission 10.
(45) The connection of the internal combustion engine 1, the electric motor 2 and the two sub-transmissions 6 and 7 at the planetary transmission 10 may also be designed differently. However, the internal combustion engine 1 and the input shaft 8 of the first sub-transmission 6 always engage at the same element of the planetary transmission 10.
(46)
(47) In this case,
(48) Under the assumption that, upon all-electric driving in
(49) Upon the execution of the power drive upshift in all-electric driving mode in accordance with
(50)
(51) Under the assumption that, upon all-electric driving in
(52) Upon the execution of the power drive upshift in all-electric driving mode in accordance with
(53) The torque M-12 to be transferred by the frictional-locking bypass shift element 12 increases to 200 Nm with a slip speed n-12 of 700 rpm. The power loss at the bypass shift element 12 amounts to 14 kW.
(54) For the drive units of
(55) Although the design of the separating clutch 11 as a positive-locking separating clutch is preferred, as can be inferred from
(56) As already stated, the connection of the internal combustion engine 1, the electric motor 2 and the second sub-transmission 7 at the planetary transmission 10 may vary. Thus, for example, in
(57) Modifications and variations can be made to the embodiments illustrated or described herein without departing from the scope and spirit of the invention as set forth in the appended claims.
REFERENCE SIGNS
(58) 1 Internal combustion engine 2 Electric motor 3 Drive assembly 4 Output 5 Transmission 6 Sub-transmission 7 Sub-transmission 8 Input shaft 9 Input shaft 1 Planetary transmission 11 Separating clutch 12 Bypass shift element 13 Shift element 14 Sun gear 15 Ring gear 16 Planetary gear 17 Planetary carrier 18 Output shaft 19 Lay shaft 20 Lay shaft