Engine-and-electric-machine assembly
11303187 ยท 2022-04-12
Assignee
Inventors
Cpc classification
F02N11/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K11/21
ELECTRICITY
F02N15/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K6/26
PERFORMING OPERATIONS; TRANSPORTING
F02N11/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K24/00
ELECTRICITY
H02K7/085
ELECTRICITY
B60K6/24
PERFORMING OPERATIONS; TRANSPORTING
H02K7/006
ELECTRICITY
B60K2006/268
PERFORMING OPERATIONS; TRANSPORTING
F02B63/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K9/193
ELECTRICITY
International classification
H02K9/193
ELECTRICITY
H02K24/00
ELECTRICITY
F02B63/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K11/21
ELECTRICITY
Abstract
An engine-and-electric-machine assembly is provided that includes an engine and an electric machine, a crankshaft being provided in the engine, the crankshaft including a main body and an extension section that extends out to the exterior of the engine, the extension section forming a rotation shaft of the electric machine, and a rotor of the electric machine being mounted on the extension section. Moreover, a terminal of the rotation shaft is connected to a coolant pump, a rotor of the coolant pump is mounted to the rotation shaft, and while the rotation shaft is rotating the rotation shaft drives the coolant pump to provide coolant to the electric machine. By connecting the rotation shaft of the electric machine to the coolant pump, the assembly enables the pump to be highly integrated into the system and reduce manufacturing cost.
Claims
1. An engine-and-electric-machine assembly, comprising an engine and an electric machine, a crankshaft being provided in the engine, the crankshaft comprising a main body and an extension section that extends out to the exterior of the engine, the extension section forming a rotation shaft of the electric machine, and a rotor of the electric machine being mounted on the extension section, wherein a terminal of the rotation shaft is connected to a coolant pump, a rotor of the coolant pump is mounted onto the rotation shaft, and while the rotation shaft is rotating the rotation shaft drives the coolant pump to provide coolant to the electric machine.
2. The engine-and-electric-machine assembly according to claim 1, wherein a transition section is provided between the main body and the extension section of the crankshaft, and the rotor of the electric machine is connected to the end face of the transition section via a flange structure.
3. The engine-and-electric-machine assembly according to claim 2, wherein the rotor of the electric machine comprises an iron-core support, a plurality of main connecting holes are provided at a middle part of the iron-core support, a plurality of secondary connecting holes are correspondingly provided at the end face of the transition section, and the main connecting holes and the secondary connecting holes are aligned and are fastened together by using bolts.
4. The engine-and-electric-machine assembly according to claim 3, wherein a protrusion that faces the transition section is provided at the middle part of the iron-core support, and the main connecting holes are provided at the protrusion.
5. The engine-and-electric-machine assembly according to claim 2, wherein a sleeve is provided at a middle part of the iron-core support, and the sleeve is interference-fitted to the extension section when the rotor of the electric machine is mounted on the extension section to guarantee that the sleeve is concentric with the rotation shaft.
6. The engine-and-electric-machine assembly according to claim 5, wherein a synchro-resolver rotor is mounted onto the sleeve, or a synchro-resolver rotor is mounted onto the extension section.
7. The engine-and-electric-machine assembly according to claim 5, wherein the extension section is provided with a plurality of stepped sections whose diameters sequentially and gradually decrease from a position of the extension section that is connected to the transition section to a terminal of the extension section, the sleeve is interference-fitted to a first stepped section of the stepped sections, the rotor of the coolant pump is mounted to a last one stepped section, and an auxiliary bearing is mounted to one of the other stepped sections to support the rotation shaft.
8. The engine-and-electric-machine assembly according to claim 7, wherein the rotor of the coolant pump and a fourth stepped section are connected by a key or a spline, or are connected by interference fitting.
9. The engine-and-electric-machine assembly according to claim 2, wherein a sleeve is provided at a middle part of the iron-core support, and the sleeve is transition-fitted or clearance-fitted to the extension section when the rotor of the electric machine is mounted on the extension section.
10. The engine-and-electric-machine assembly according to claim 2, wherein the transition section comprises a main body and a flange, the flange faces the rotor of the electric machine, a connecting neck is provided between the main body and the flange, and a diameter of the connecting neck is less than the diameter of the main body and the diameter of the flange.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7) in the drawings: 1. cylinder block; 2. housing; 3. rotor; 4. stator; 5. auxiliary bearing; 6. rotation shaft; 6-1. first stepped section; 6-2. second stepped section; 6-3. third stepped section; 6-4. fourth stepped section; 7. crankshaft; 7-1. main body; 7-2. transition section; 7-3. extension section; 8. engine; 9. electric machine; 10. right end cap; 11. sliding bearing; 12. double oil seal; 13. rotor of coolant pump; 14. stator of coolant pump; 15. synchro-resolver rotor; 16. synchro-resolver stator; 17. iron-core support; and 17-1. sleeve.
DETAILED DESCRIPTION
(8) In order to present the objectives, the technical solutions and the advantages of the present disclosure clearer, the embodiments of the present disclosure will be described below in further detail in conjunction with the drawings.
The First Embodiment
(9) As shown in
(10) A crankshaft 7 is provided in the engine 8. The crankshaft 7 is provided with an extension section 7-3 that extends out to the exterior of the engine 8. The extension section 7-3 forms a rotation shaft 6 of the electric machine 9. A rotor 3 of the electric machine 9 is mounted on the extension section 7-3.
(11) The terminal of the rotation shaft 6 is connected to a coolant pump. The rotor of the coolant pump is mounted onto the rotation shaft 6. While rotating, the rotation shaft 6 drives the coolant pump to provide coolant to the electric machine 9.
(12) The coolant may be oil or water. The coolant pump may be a cycloid-rotor/gerotor pump. As shown in
(13) A transition section 7-2 is provided between a main body 7-1 of the crankshaft 7 and the extension section 7-3. The rotor of the electric machine 9 is connected to an end face of the transition section 7-2 via a flange structure. The end face of the transition section 7-2 is a flush face, which can guarantee that, after the mounting of the rotor of the electric machine 9, the rotor does not incline.
(14) The transition section 7-2 is provided originally for a sealing structure. A double oil seal 12 seals a spacing between the transition section 7-2 and a sealing slot on the cylinder block 1, thereby sealing the engine 8 and the electric machine 9 in both directions. By connecting the transition section 7-2 via the flange, the strength of the connection between the crankshaft 7 and the rotor of the electric machine 9 can be improved.
(15) Particularly, the rotor of the electric machine 9 comprises an iron-core support 17. A winding or a magnetic steel is provided on the circumference of the iron-core support 17. A plurality of main connecting holes are provided at the middle part of the iron-core support 17. A plurality of secondary connecting holes are correspondingly provided at the end face of the transition section 7-2. The main connecting holes and the secondary connecting holes are aligned and are fastened together by using bolts. The main connecting holes are unthreaded holes. The secondary connecting holes are threaded holes. The numbers of the main connecting holes and the secondary connecting holes may be selected to be 6-12.
(16) As shown in
(17) A sleeve 17-1 is provided at the middle part of the iron-core support 17. Preferably, the sleeve 17-1 is interference-fitted to the extension section 7-3 where the rotor of the electric machine 9 is mounted onto the extension section 7-3 to guarantee that the sleeve 17-1 is concentric with the rotation shaft 6.
(18) In order to facilitate the assembling, before the rotor of the electric machine is mounted to the extension section 7-3, the sleeve 17-1 may be heated to cause the inner diameter of the sleeve 17-1 to be greater than the external diameter of the extension section 7-3, and after the assembly is cooled, the interference fitting between the sleeve 17-1 and the extension section 7-3 can be formed.
(19) In order to detect the rotation angle of the rotor of the electric machine 9, a synchro-resolver rotor 15 is mounted onto the sleeve 17-1. The synchro-resolver stator 15 is required to be mounted on the housing 2. The synchro-resolver rotor 15 may also be mounted onto the extension section 7-3, in which case the length of the sleeve 17-1 may be reduced accordingly.
(20) As shown in
(21) Particularly, the rotor 13 of the coolant pump is mounted onto the fourth stepped section 6-4 via a key or a spline, or by interference fitting.
(22) Alternatively, the sleeve 17-1 and the extension section 7-3 may be connected by transition fitting or clearance fitting, whereby the sleeve 17-1 and the extension section 7-3 can be more easily assembled. Similarly, in order to facilitate the assembling, before the rotor of the electric machine is mounted to the extension section 7-3, the sleeve 17-1 may be heated to cause the inner diameter of the sleeve 17-1 to be greater than the external diameter of the extension section 7-3, and after the assembly is cooled the transition fitting or clearance fitting between the sleeve 17-1 and the extension section 7-3 can be formed.
(23) In the present embodiment, the engine 8 and the electric machine 9 are integrated, and the components for the connection between an electric machine and an engine in conventional solutions, such as a flywheel and a torsional shock absorber, are not needed, which results in less component parts, a smaller volume, lighter in weight and a more compact structure.
(24) In order to further reduce the parts and reduce the weight, in the present embodiment, the engine 8 and the electric machine 9 are provided adjacent, and the left end of the housing 2 is directly mounted to the cylinder block 1 of the engine, and, particularly, mounted to a front flange face of the cylinder block 1, to form a fixed sealing face.
(25) The electric machine 9 is further provided with a right end cap 10, and the housing 2 of the electric machine 9 is manufactured together with the right end cap 10. Such a design can simplify the housing structure of the electric machine 9, and further achieve a higher level of integration.
(26) In the electric machine 9 a left end cap is eliminated, which can reduce the axial length of the engine-and-electric-machine assembly.
(27) As shown in
(28) A double oil seal 12 is provided at the position where the engine 8 and the electric machine 9 abut, to seal the engine 8 and the electric machine 9 in both directions. The double oil seal 12 may be provided on the cylinder block 1 of the engine 8, and correspondingly the cylinder block 1 of the engine 8 is required to be provided with a sealing slot to mount a sealing element.
(29) As shown in
(30) As shown in
(31) The crankshaft 7 is provided with a sliding bearing 11 at the position where the engine 8 and the electric machine 9 abut. The sliding bearing 11 may be considered as a bearing used commonly by the crankshaft 7 and the rotation shaft 6.
(32) In the present embodiment, the electric machine 9 may be a permanent magnet electric machine, an induction electric machine, a hybrid excited electric machine or a switch reluctance electric machine, and the stator 4 of the electric machine 9 may employ a distributed winding or a concentrated winding.
(33) An oil channel or a water channel is provided inside the housing 2 of the electric machine 9, wherein if the cooling mode is oil cooling an oil channel is required to be provided, and if the cooling mode is water cooling a water channel is required to be provided.
(34) Radiating ribs may be provided on the outer side of the housing 2 of the electric machine 9, to improve the effect of heat dissipation.
(35) By connecting the rotation shaft of the electric machine and the coolant pump, wherein the coolant pump may be an oil pump or a water pump and while rotating the rotation shaft drives the coolant pump to operate, the present embodiment can provide the cooling fluid to the electric machine, thereby improving the energy utilization ratio of the powertrain assembly.
(36) The coolant pump does not require a power source for operation, which reduces the energy consumption of the vehicle, highly integrates the pump, and reduces the manufacturing cost.
(37) The present embodiment, by connecting the rotor of the electric machine and the crankshaft of the engine by using the flange structure, improves the strength of the connection between the rotor and the crankshaft, optimizes the moment transmission structure between the rotor and the crankshaft, prevents connection failure due to key damage, and increases the service life of the assembly.
The Second Embodiment
(38)
(39) As shown in
(40) In the present embodiment, the length of the transition section 7-2 is larger than that of the transition section 7-2 of the first embodiment to some extent, and therefore the iron-core support 17 is not required to be provided with a protrusion.
(41) The connecting neck can reduce the weight of the transition section 7-2 while satisfying the structural strength.
(42) The other structures of the engine-and-electric-machine assembly of the second embodiment of the present disclosure are the same as those of the first embodiment, and are not described repeatedly here.
(43) The above are merely particular embodiments of the present disclosure. By the information of the present disclosure, a person skilled in the art can make other modifications or variations on the basis of the above embodiments. A person skilled in the art should understand that the above particular descriptions are only for the purpose of interpreting the present disclosure better, and the scope of invention of the present disclosure shall be subjected to the protection scope of the claims.