Hybrid power system having CVT
11198354 · 2021-12-14
Assignee
Inventors
Cpc classification
B60K2006/4808
PERFORMING OPERATIONS; TRANSPORTING
B60K6/387
PERFORMING OPERATIONS; TRANSPORTING
B60K6/547
PERFORMING OPERATIONS; TRANSPORTING
B60K6/26
PERFORMING OPERATIONS; TRANSPORTING
B60W10/113
PERFORMING OPERATIONS; TRANSPORTING
B60K2006/268
PERFORMING OPERATIONS; TRANSPORTING
B60K6/442
PERFORMING OPERATIONS; TRANSPORTING
B60K6/36
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/62
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
F16H9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B60K6/543
PERFORMING OPERATIONS; TRANSPORTING
B60K6/26
PERFORMING OPERATIONS; TRANSPORTING
B60K6/36
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A hybrid power system includes a CVT, an internal combustion engine, an electric motor, a clutch, and a synchronization apparatus. The CVT has a CVT input shaft and a CVT output shaft. The internal combustion engine has an internal combustion engine output shaft and the electric motor has an electric motor shaft. The clutch is provided between the internal combustion engine and the CVT. The synchronization apparatus is provided between the internal combustion engine and the electric motor. The clutch and the synchronization apparatus can be adjusted to connect the internal combustion engine output shaft to the electric motor shaft via the CVT, and connect the internal combustion engine output shaft to the electric motor shaft without the CVT. In an example embodiment, the synchronization apparatus includes a first synchronizer between the internal combustion engine and the CVT, and a second synchronizer between the CVT and the electric motor.
Claims
1. A hybrid power system comprising: a CVT comprising a CVT input shaft and a CVT output shaft; an internal combustion engine comprising an internal combustion engine output shaft; an electric motor comprising an electric motor shaft; a clutch provided between the internal combustion engine and the CVT; and a synchronization apparatus provided between the internal combustion engine and the electric motor, wherein: the clutch and the synchronization apparatus can be adjusted to connect the internal combustion engine output shaft to the electric motor shaft via the CVT and connect the internal combustion engine output shaft to the electric motor shaft without the CVT; the synchronization apparatus comprises a first synchronizer provided between the internal combustion engine and the CVT and a second synchronizer provided between the CVT and the electric motor; and the first synchronizer is switchable between a first synchronizer closed state in which the internal combustion engine output shaft is connected to the electric motor shaft, and a first synchronizer open state in which the internal combustion engine output shaft is disconnected from the electric motor shaft; or the second synchronizer is switchable between a second synchronizer closed state in which the CVT output shaft is connected to the electric motor shaft, and a second synchronizer open state in which the CVT output shaft is disconnected from the electric motor shaft.
2. The hybrid power system of claim 1, wherein, when: the clutch is put into a clutch open state; the first synchronizer is in the first synchronizer open state; and the second synchronizer is in the second synchronizer open state, then the internal combustion engine and the CVT are both disabled, so that the hybrid power system can operate in a pure electric motor drive mode or an energy recovery mode.
3. The hybrid power system of claim 1, further comprising: a first connection apparatus connected between the first synchronizer and the electric motor shaft for connecting the internal combustion engine output shaft to the electric motor shaft; or a second connection apparatus connected between the second synchronizer and the electric motor shaft for connecting the CVT output shaft to the electric motor shaft.
4. The hybrid power system of claim 1, further comprising a differential connected to the electric motor shaft by a gear set.
5. A hybrid power system comprising: a CVT comprising a CVT input shaft and a CVT output shaft; an internal combustion engine comprising an internal combustion engine output shaft; an electric motor comprising an electric motor shaft; a clutch provided between the internal combustion engine and the CVT; and a synchronization apparatus provided between the internal combustion engine and the electric motor, wherein: the clutch and the synchronization apparatus can be adjusted to connect the internal combustion engine output shaft to the electric motor shaft via the CVT and connect the internal combustion engine output shaft to the electric motor shaft without the CVT; the synchronization apparatus comprises a first synchronizer provided between the internal combustion engine and the CVT and a second synchronizer provided between the CVT and the electric motor; and when: the clutch is closed or put into a frictional sliding state, the first synchronizer is in a first synchronizer open state, and the second synchronizer is in a second synchronizer closed state, then: the internal combustion engine output shaft is connected to the CVT input shaft; the CVT output shaft is connected to the electric motor shaft; and the internal combustion engine output shaft is connected to the electric motor shaft via the CVT.
6. The hybrid power system of claim 5, wherein, if the electric motor has not been started, then the hybrid power system outputs a driving force from the internal combustion engine via the CVT, thereby operating in a pure internal combustion engine drive mode.
7. The hybrid power system of claim 5, wherein, if the electric motor is started when the internal combustion engine is operating, then the hybrid power system outputs a driving force from the internal combustion engine and the electric motor via the CVT, thereby operating in a hybrid power mode.
8. The hybrid power system of claim 7, wherein the electric motor can adjust an operating point of the internal combustion engine in the hybrid power mode.
9. The hybrid power system as claimed in claim 5, wherein, if the electric motor starts and outputs a driving force, then the electric motor can be made to start the internal combustion engine, so as to operate in a start/stop mode.
10. A hybrid power system comprising: a CVT comprising a CVT input shaft and a CVT output shaft; an internal combustion engine comprising an internal combustion engine output shaft; an electric motor comprising an electric motor shaft; a clutch provided between the internal combustion engine and the CVT; and a synchronization apparatus provided between the internal combustion engine and the electric motor, wherein: the clutch and the synchronization apparatus can be adjusted to connect the internal combustion engine output shaft to the electric motor shaft via the CVT, and connect the internal combustion engine output shaft to the electric motor shaft without the CVT; the synchronization apparatus comprises a first synchronizer provided between the internal combustion engine and the CVT, and a second synchronizer provided between the CVT and the electric motor; and when: the clutch is opened, the first synchronizer is in a first synchronizer closed state, and the second synchronizer is in a second synchronizer open state, then: the internal combustion engine output shaft is connected to the electric motor shaft without the CVT.
11. The hybrid power system of claim 10, wherein, if the electric motor has not been started, the hybrid power system outputs a driving force from the internal combustion engine without the CVT, thereby operating in a pure internal combustion engine drive mode.
12. The hybrid power system of claim 10, wherein, if the electric motor is started when the internal combustion engine is operating, the hybrid power system outputs a driving force from the internal combustion engine and the electric motor via the CVT, thereby operating in a hybrid power mode.
13. The hybrid power system of claim 10, wherein, when the hybrid power system is stationary: if the electric motor shaft turns the internal combustion engine output shaft, then the hybrid power system operates in a start/stop mode; or if the internal combustion engine output shaft turns the electric motor shaft, then the hybrid power system runs in a charging mode.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other features and advantages of the present disclosure can be obtained through an explanation of embodiments according to the accompanying drawings below.
(2) The drawings are as follows:
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(13) Identical reference labels are used for identical or functionally identical components of the present disclosure. Additionally, due to the need for clear display, individual drawings only show those reference labels which are needed to describe the drawing in question.
DETAILED DESCRIPTION
(14) As shown in
(15) In this embodiment, the synchronization apparatus 3, 5 comprises two synchronizers A and B and a gear connection apparatus 8. The synchronizer A is installed between the clutch 2 and the internal combustion engine, and the synchronizer A can switch between connecting and disconnecting the gear connection apparatus 8 and an electric motor shaft; the other synchronizer B is installed between the CVT and the electric motor 6, and the other synchronizer B can switch between connecting and disconnecting a CVT output shaft and the electric motor shaft.
(16) In this embodiment, the hybrid power system need only open/close the synchronization apparatus and the clutch in order to simply and smoothly switch between a pure internal combustion engine drive mode, a pure electric motor drive mode, a hybrid power mode, an internal combustion engine start/stop mode, a charging mode and an energy recovery mode.
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(26) Although possible embodiments have been described demonstratively in the description above, it should be understood that variations still exist through all combinations of embodiments and technical features which are already known and additionally those which would readily occur to those skilled in the art. In addition, it should also be understood that a demonstrative embodiment merely serves as an example, and such an embodiment does not restrict the scope of protection, application and construction of the present disclosure in any way. Through the description above, it is more the case that a form of technical guidance for converting at least one demonstrative embodiment is provided to those skilled in the art, wherein as long as the scope of protection of the claims is not departed from, it is possible to make various changes, especially changes relating to the function and structure of the components. For example, in the embodiments above, the synchronization apparatus includes the two synchronizers and the connection apparatus is connected to the synchronizer A, but this is merely an example; those skilled in the art will realize that all synchronization apparatuses may be considered as long as they are capable of realizing the function of connecting and disabling the CVT. For example, the synchronizer B connects the CVT output shaft to the electric motor shaft via the connection apparatus, or the synchronizer A connects the output shaft of the internal combustion engine to the electric motor shaft via a first connection apparatus and the synchronizer B connects the CVT output shaft to the electric motor shaft via a second connection apparatus; all are also included in the scope of the present disclosure.
(27) In the description of the present disclosure, it must be understood that orientations or positional relationships indicated by the terms “upper”, “lower”, “front”, “rear”, “left”, “right”, “horizontal”, “inner” and “outer” etc. are based on the orientations or positional relationships shown in the drawings, and are merely intended to facilitate the description of the present disclosure and simplify description; they do not indicate or imply that the apparatus or element referred to must have a specific orientation or be constructed and operated in a specific orientation, and therefore must not be interpreted as limiting the present disclosure. In addition, the terms “first”, “second” etc. are merely used for descriptive purposes and must not be interpreted as indicating or implying relative importance or implicitly showing the quantity of the indicated technical feature. In the description of the present disclosure, the meaning of “multiple” is two or more, unless otherwise defined clearly and specifically.
REFERENCE LABELS
(28) 1 CVT (continuously variable transmission) 2 clutch 3 synchronization apparatus 4 internal combustion engine 5 synchronization apparatus 6 electric motor 7 differential 8 gear connection apparatus A synchronizer B synchronizer