Oil pump driving device
11204033 · 2021-12-21
Assignee
Inventors
Cpc classification
F04C2/344
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04C15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/344
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An oil pump includes a hollow rotor having an inner peripheral portion defining a space inside of the inner peripheral portion. A first one-way clutch configured to transmit the motive power input from an engine side, to the rotor only in one direction, and a second one-way clutch configured to transmit the motive power input from an electric motor side, to the rotor only in the one direction are arranged inside of the inner peripheral portion of the rotor.
Claims
1. An oil pump driving device comprising: a single oil pump including a rotor configured to rotate by receiving motive power; a first one-way clutch configured to transmit motive power input from an engine side, to the rotor only in one direction; a second one-way clutch configured to transmit motive power input from an electric motor side, to the rotor only in the one direction; and a bearing, wherein: the rotor comprises a hollow rotor including an inner peripheral portion defining a space inside of the inner peripheral portion, and the first one-way clutch and the second one-way clutch are arranged inside of the inner peripheral portion of the rotor; the first one-way clutch comprises a first input shaft inserted in the space defined inside of the inner peripheral portion of the rotor, and first engagement elements configured to transmit motive power between the first input shaft and the inner peripheral portion of the rotor; the second one-way clutch comprises a second input shaft inserted in the space defined inside of the inner peripheral portion of the rotor, and second engagement elements configured to transmit motive power between the second input shaft and the inner peripheral portion of the rotor; the first input shaft and the second input shaft are axially and radially opposed, through a gap, to each other inside of the inner peripheral portion of the rotor; and the bearing is arranged in the gap, and supports the second input shaft so as to be rotatable relative to the first input shaft.
2. The oil pump driving device according to claim 1, further comprising a seal, a first radial bearing supporting the first input shaft, a second radial bearing supporting the second input shaft, and a single housing, wherein the single housing retains, as a single unit, the oil pump, the first one-way clutch, the second one-way clutch, the first radial bearing, the second radial bearing, and the seal.
3. The oil pump driving device according to claim 1, wherein one of an opposed end portion of the first input shaft and an opposed end portion of the second input shaft is a hollow end portion, and the other of the opposed end portion of the first input shaft and the opposed end portion of the second input shaft is inserted in the hollow end portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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BEST MODE FOR CARRYING OUT THE INVENTION
(5) An oil pump driving device embodying the present invention is now described with reference to the attached drawings. As illustrated in
(6) As illustrated in
(7) As illustrated in
(8) As illustrated in
(9) While the oil pump 1 is a vane pump in the embodiment, the oil pump 1 may be any oil pump capable of functioning as a pump when the rotor rotates due to the motive power transmitted to the rotor from the engine side transmission path or the motor side transmission path, for example, may be an internal gear pump as disclosed in JP 2011-106543. In this case, the inner rotor of the internal gear pump which has an external gear is used as the rotor for receiving motive power.
(10) The rotor 6 is a hollow rotor including an inner peripheral portion 17 defining a space axially extending through the rotor 6. A first one-way clutch 18 and a second one-way clutch 19 are arranged inside of the inner peripheral portion 17 of the rotor 6. The first one-way clutch 18 constitutes the terminal end of the engine side transmission path 3 (seen in
(11) As illustrated in
(12) As illustrated in
(13) As illustrated in
(14) As illustrated in
(15) As illustrated in
(16) The first input shaft 20 has a first cylindrical surface 32 formed on the portion of the outer periphery of the input shaft 20 located inside of the inner peripheral portion 17 of the rotor 6. The rotor 6 has first cam surfaces 33 formed on its inner peripheral portion 17 so as to be circumferentially spaced apart from each other at predetermined intervals such that wedge-shaped spaces are defined between the respective first cam surfaces 33 and the first cylindrical surface 32. The wedge-shaped spaces each narrows in the counterclockwise direction in
(17) The first engagement elements 21 are rollers received in the respective wedge-shaped spaces described above, and biased by the respective first elastic members 23 in the counterclockwise direction (in
(18) While the first one-way clutch 18 is a roller-type clutch in the embodiment, the first one-way clutch 18 may be a sprag-type one-way clutch as disclosed in JP 2011-106543, which uses/includes sprags as the engagement elements.
(19) The second one-way clutch 19 (see
(20) The first input shaft 20 (see
(21) Namely, since, while the engine 2 is operating, and the electric motor 4 is not operating, the first one-way clutch 18, which is a portion of the engine side transmission path 3, is engaged, the motive power output from the engine 2 is transmitted to the rotor 6 from the first one-way clutch 18. By receiving this motive power, the rotor 6 rotates in the counterclockwise direction (in 4), thereby driving the oil pump 1. The counterclockwise rotation of the rotor 6 is output to the second engagement elements 25 of the second one-way clutch 19, and since the second input shaft 24 is not rotating at this time, this means that the second input shaft 24 rotates in the clockwise direction (in
(22) On the other hand, since, while the engine 2 is not operating, and the electric motor 4 is operating, the second one-way clutch 19, which is a portion of the motor side transmission path 5, is engaged, the motive power output from the electric motor 4 is transmitted to the rotor 6 from the second one-way clutch 19, thereby driving the oil pump 1. At this time, since the first input shaft 20 is not rotating, this means that the first input shaft 20 rotates in the clockwise direction relative to the rotor 6, so that the first one-way clutch 18 remains disengaged.
(23) The electric motor 4 may be configured to be always operating irrespective of whether or not the engine 2 is operating. If the electric motor 4 always rotates/operates, when the engine 2 is started, the oil pump 1 is driven and controlled by one of the first and second input shafts 20 and 24 that is rotating at a higher speed than the other input shaft, because the first and second one-way clutches 18 and 19 have the same shape, and both transmit motive power only in the same one direction.
(24) As described above, the oil pump driving device embodying the present invention is configured such that the single oil pump 1 can be driven by either of the engine 2 and the electric motor 4. Also, since, in the oil pump driving device embodying the present invention, the rotor 6 comprises a hollow rotor including an inner peripheral portion 17 defining a space, and the first and second one-way clutches 18 and 19 are arranged inside of the inner peripheral portion 17, that is, disposed within the axial width of the rotor 6, the oil pump driving device of the present invention is shorter in axial length than a conventional oil pump driving device as disclosed in JP 2011-106543 which includes one-way clutches on both sides of the oil pump.
(25) Since, in the oil pump driving device embodying the present invention, the first one-way clutch 18 includes a first input shaft 20 inserted in the space defined inside of the inner peripheral portion 17 of the rotor 6, and first engagement elements 21 configured to transmit motive power between the first input shaft 20 and the inner peripheral portion 17 of the rotor 6, and the second one-way clutch 19 includes a second input shaft 24 inserted in the space defined inside of the inner peripheral portion 17 of the rotor 6, and second engagement elements 25 configured to transmit motive power between the second input shaft 24 and the inner peripheral portion 17 of the rotor 6, the first and second one-way clutches 18 and 19 can be received, substantially in their entireties, inside of the inner peripheral portion 17 of the rotor 6, namely, among all the components of the first and second one-way clutches 18 and 19, only the portions of the input shafts 20 and 24 that need to be connected, respectively, to the engine side transmission path 3 and the motor side transmission path 5 protrude axially beyond the rotor 6.
(26) Since, in the oil pump driving device embodying the present invention, the first and second input shafts 20 and 24 are axially and radially opposed, through the gap 30, to each other inside of the inner peripheral portion 17 of the rotor 6, and also a bearing 31 is arranged in the gap 30, and supports the second input shaft 24 so as to be rotatable relative to the first input shaft 20, the bearing 31 prevents the run-out of the input shafts 20 and 24 in the interior space of the inner peripheral portion 17 of the rotor 6, in which the input shafts 20 and 24 cannot be supported relative to the housing 9, so that the first and second one-way clutches 18 and 19 can operate in a stable manner, and the rotor 6 can also rotate in a stable manner.
(27) Since, in the oil pump driving device embodying the present invention, the single housing 9 retains, as a single unit, the oil pump 1, the first one-way clutch 18, the second one-way clutch 19, the first radial bearing 28, which supports the first input shaft 20, the second radial bearing 29, which supports the second input shaft 24, and the seals (oil seals S1 and S2 in the embodiment), the oil pump driving device can be easily mounted to the engine side transmission path 3 and the motor side transmission path 5.
(28) The above embodiment is merely an example in every respect, and the present invention is not limited to the above embodiment. Therefore, the scope of the present invention is indicated not by the above description but by the claims, and should be understood to include all modifications within the scope and the meaning equivalent to the scope of the claims.
DESCRIPTION OF REFERENCE NUMERALS
(29) 1: oil pump 2: engine 4: electric motor 6: rotor 17: inner peripheral portion 18: first one-way clutch 19: second one-way clutch 20: first input shaft 21: first engagement element 24: second input shaft 25: second engagement element 30: gap 31: bearing