Vane pump unit
09810216 · 2017-11-07
Assignee
Inventors
Cpc classification
F04C2/3441
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/344
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C21/108
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/3446
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/805
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C21/104
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2230/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C14/223
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/3442
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C14/226
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04C14/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/344
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A vane pump unit assembled into a housing includes a rotor; a plurality of vanes; a cam ring; a first plate; a second plate; a connecting bar that has a first end portion fixed to the first plate, and a second end portion which protrudes from the second plate; and a clip that prevents the second plate and the cam ring from slipping out of the connecting bar. Before the clip is assembled into the housing, the retaining of the clip is positioned at least either between the first plate and the cam ring or between the second plate and the cam ring, in a place where a gap is formed. After the clip is assembled into the housing, the housing interposes the first plate, the cam ring, and the second plate in the axial direction, and the first and second plates are in close contact with the cam ring.
Claims
1. A vane pump unit comprising: a rotor; a plurality of vanes that are slidably provided in the rotor; an cam ring that surrounds the rotor and the plurality of vanes; a first plate that is disposed on one end surface side of the rotor; a second plate that is disposed on the other end surface side of the rotor; a connecting bar that passes through the cam ring in an axial direction, and has a first end portion fixed to the first plate, and a second end portion which passes through the second plate and then protrudes from the second plate; and a retainer that is retained in the second end portion of the connecting bar, the retainer being configured to prevent the second plate and the cam ring from slipping out of the connecting bar, wherein the retainer is placed at the second end portion to secure the second plate and the cam ring such that the secured cam ring and the secured second plate are displaceable along the connecting bar.
2. The vane pump unit according to claim 1, wherein the second end portion of the connecting bar is provided with a contact surface that is in contact with the retainer in the axial direction.
3. The vane pump unit according to claim 2, wherein the second end portion of the connecting bar is provided with an attachment groove into which the retainer is attached, and which extends in a circumferential direction of the connecting bar, and the retainer has a C shape when seen in the axial direction.
4. The vane pump unit according to claim 1, wherein the second end portion of the connecting bar is provided with an attachment groove into which the retainer is attached, and which extends in a circumferential direction of the connecting bar, and the retainer has a C shape when seen in the axial direction.
5. The vane pump unit according to claim 1, wherein, the connecting bar is partially received within the first plate and passes through the second plate and the cam ring and is secured by the retainer.
6. A vane pump comprising: a housing; and the vane pump unit according to claim 1, wherein when the vane pump unit is accommodated in the housing, the housing interposes the vane pump unit in the axial direction in such a manner that the first plate and the second plate are in close contact with the cam ring.
7. The vane pump according to claim 6, wherein a surface of the retainer facing toward the second plate is spaced away from the second plate.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
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DESCRIPTION OF EMBODIMENTS
(8) An embodiment of the present invention will be described with reference to
(9) Configuration of Vane Pump
(10) A vane pump 200 is a device that supplies oil (a fluid) to fluid using equipment. The following exemplifies the fluid using equipment: a continuous variable transmission that steplessly changes a gear ratio via the stepless variable winding diameter of a belt wound around a drive pulley and a driven pulley, corresponding to a oil pressure; a hydraulic cylinder of a hydraulic power steering apparatus; and so on.
(11) The vane pump 200 is a constant displacement pump that has a constant amount of discharge. While a rotor 10 rotates one revolution, the vane pump 200 executes two pumping strokes, that is, a suction stroke, a discharge stroke, a suction stroke, and then a discharge stroke. A cam ring 30 may be a variable type in which the cam ring 30 reciprocates in a radial direction, thereby the amount of discharge is variable. While the rotor 10 rotates one revolution, the vane pump 200 may execute one pumping stroke or more than three pumping strokes. A plurality of vanes 20 may be disposed in multiple stages in an axial direction.
(12) The vane pump 200 includes a vane pump unit 1 (a vane pump main body) that has a substantially columnar exterior appearance, and a housing 100 that accommodates the vane pump unit 1 therein.
(13) Housing
(14) The housing 100 includes a bottomed cylindrical housing main body 110 having a shallow depth, and a cover 120 with which an opening of the housing main body 110 is covered. The housing main body 110 and the cover 120 are tightened together with a bolt 131.
(15) Housing Main Body
(16) The following is formed inside of the housing main body 110: a columnar accommodating chamber 111 that accommodates the vane pump unit 1; a suction path 112; and a discharge path 113.
(17) The suction path 112 is a flow path that allows the oil suctioned into the vane pump unit 1 to pass therethrough. A reservoir (not illustrated) is connected to an end upstream of the suction path 112 via an external suction flow path (not illustrated), and temporarily stores the oil therein. A side downstream of the suction path 112 branches into two paths, a first suction path 112a and a second suction path 112b. An end downstream of the first suction path 112a communicates with a first suction port 2a of the vane pump unit 1, and an end downstream of the second suction path 112b communicates with a second suction port 2b of the vane pump unit 1.
(18) The discharge path 113 is a flow path that allows the oil discharged from the vane pump unit 1 to pass therethrough. A side upstream of the discharge path 113 branches into two paths, a first discharge path 113a and a second discharge path 113b. An end upstream of the first discharge path 113a communicates with a first discharge port 3a of the vane pump unit 1, and an end upstream of the second discharge path 113b communicates with a second discharge port 3b of the vane pump unit 1.
(19) Two pins 132 (refer to
(20) An O-ring 133 is provided between a bottom wall portion 110a of the housing main body 110 and a first plate 40 so as to surround the first discharge path 113a and the second discharge path 113b. That is, the O-ring 133 is interposed between the bottom wall portion 110a and the first plate 40 in the axial direction. The O-ring 133 seals the first discharge path 113a and the second discharge path 113b so as to prevent oil leakage.
(21) Configuration of Vane Pump Unit
(22) The vane pump unit 1 has a substantially columnar exterior appearance. As described above, while the rotor 10 rotates one revolution, the vane pump unit 1 executes a suction stroke, a discharge stroke, a suction stroke, and then a discharge stroke. The first suction port 2a, the first discharge port 3a, the second suction port 2b, and the second discharge port 3b are disposed in an outer surface of the vane pump unit 1 in sequence in the circumferential direction (refer to
(23) Each of the first suction port 2a and the second suction port 2b are an entrance of the oil to the vane pump unit 1, and is opened in the outer surface of the vane pump unit 1. Each of the first discharge port 3a and the second discharge port 3b is an exit of the oil from the vane pump unit 1, and is opened in an end surface (a right end surface in
(24) The vane pump unit 1 includes the rotor 10; ten pieces of (the plurality of) vanes 20; the cam ring 30; the first plate 40; the second plate 50; two (a plurality of) connecting bars 60; and two clips 71 (refer to
(25) Rotor
(26) The rotor 10 has a substantially columnar shape. The rotor 10 is provided with ten (a plurality of) vane grooves 11 that extend from an outer circumferential surface of the rotor 10 inwardly in a radial direction. The ten vane grooves 11 are disposed at equal intervals in the circumferential direction.
(27) A serration hole 15 is formed on the center axis of the rotor 10. A serration shaft portion 17 of a shaft 16 is fitted into the serration hole 15. The rotor 10 and the shaft 16 are united together via a serration connection, and rotate in a counter-clockwise direction in
(28) Vane
(29) The vanes 20 are sliding pieces that are respectively provided in the plurality of vane grooves 11, and are slidable in the radial direction. When the rotor 10 rotates, a centrifugal force is exerted on each of the vanes 20, thereby the tip of each of the vanes 20 is brought into sliding contact with a cam surface (an inner circumferential surface) 31 of the cam ring 30.
(30) Cam Ring
(31) The cam ring 30 is a cylindrical component having a thickness that is disposed coaxially with the rotor 10 so as to surround the rotor 10 and the vanes 20. The cam surface 31 of the cam ring 30 has a substantially elliptical shape when seen in the axial direction.
(32) A through-hole 32 (refer to
(33) Height of Rotor, Vane, and Cam Ring (Axial Length)
(34) The rotor 10, the vane 20, and the cam ring 30 have a height of L10, a height of L20, and a height of L30, respectively, and have a relationship of “L30>L10>L20” in the axial direction (refer to
(35) First Plate and Second Plate
(36) The first plate 40 and the second plate 50 are plates having a thickness that interpose the rotor 10 and the cam ring 30 therebetween in the axial direction.
(37) The first plate 40 is disposed on an end surface side (a right side in
(38) The second plate 50 is disposed on the other end surface side (a left side in
(39) Connecting Bar
(40) The connecting bar 60 is a bar that connects the first plate 40 and the second plate 50. The first end portion 61 of the connecting bar 60 is press fitted into the press-fit hole 42. A second end portion 62 of the connecting bar 60 protrudes from an end of the second plate 50. A groove 63 is formed in the second end portion 62 so as to extend in the circumferential direction, and the clip 71 is attached into the groove 63 (refer to
(41) The clip 71 is in contact with a first contact surface 63a on one end side, and a second contact surface 63b on the other end side, which surround the groove 63 in the axial direction. That is, the clip 71 is inserted into the groove 63, and is interposed between the first contact surface 63a and the second contact surface 63b, thereby the position of the clip 71 is determined with respect to the connecting bar 60 in the axial direction. Accordingly, the clip 71 is prevented from moving to the one end side of the connecting bar 60. As a result, the second plate 50 is prevented from undergoing concave bending.
(42) Clip
(43) The clip 71 is a retainer that is retained in the groove 63 of the second end portion 62, and prevents the second plate 50 and the cam ring 30 from slipping out of the connecting bar 60. The clip 71 has a C shape when seen in the axial direction, and has a spring force that allows a tip portion of the clip 71 to be openable and closeable (refer to
(44) Axial Position of Groove and Position of Retaining Clip
(45) Here, the axial position of the groove 63, that is, the position of retaining the clip 71 will be described.
(46) Before the clip 71 is assembled into the housing 100 (refer to
(47) In contrast, after the clip 71 is assembled into the housing 100 (refer to
(48) Method of Assembling Vane Pump (Action Effects)
(49) First, a method of assembling the vane pump unit 1 will be described.
(50) The first end portion 61 of the connecting bar 60 is inserted and press fitted into the press-fit hole 42 of the first plate 40. For example, (1) when the first end portion 61 is brought into contact with a bottom surface of the press-fit hole 42, the press-fit length of the first end portion 61 is set to become a predetermined length as designed. Alternatively, (2) a protrusion for determining the axial position is formed on an outer circumferential surface of the first end portion 61, and when the protrusion is brought into contact with the first plate 40, the press-fit length is set to become a predetermined length as designed.
(51) Subsequently, the first end portion of the shaft 16 joined with the rotor 10 via a serration connection is inserted into the supporting portion 41, thereby the rotor 10 equipped with the vanes 20 is stacked on the first plate 40. In parallel, the connecting bar 60 is inserted through the through-hole 32 of the cam ring 30 that surrounds the rotor 10, thereby the cam ring 30 is also stacked on the first plate 40.
(52) Subsequently, the shaft 16 is inserted through the through-hole 51 of the second plate 50, and the connecting bar 60 is inserted through the through-hole 52 of the second plate 50, thereby the second plate 50 is stacked on the rotor 10 and the cam ring 30. In this state, the second end portion 62 of the connecting bar 60 protrudes from the second plate 50.
(53) Subsequently, the clip 71 is attached into the groove 63 of the connecting bar 60. As a result, the vane pump unit 1 is obtained.
(54) Since the clip 71 is attached in this state, the second plate 50, the cam ring 30, the rotor 10, and the like are prevented from slipping out of their respective positions. Accordingly, the second plate 50 and the like are prevented from slipping out of their respective position during the transportation of the vane pump unit 1, and it is easy to handle the vane pump unit 1.
(55) In this state, the first plate 40 and the second plate 50 are not in press contact with the cam ring 30, and the first plate 40 and the second plate 50 do not bend.
(56) Subsequently, a method of assembling the vane pump 200 will be described.
(57) The accommodating chamber 111 of the housing main body 110 accommodates the vane pump unit 1. Subsequently, the housing main body 110 and the vane pump unit 1 are covered with the cover 120, and the housing main body 110 and the cover 120 are tightened together with the bolt 131.
(58) Accordingly, the housing 100 interposes the vane pump unit 1 in the axial direction, that is, the housing main body 110 and the cover 120 interpose the first plate 40, the second plate 50, and the cam ring 30 therebetween, and the first plate 40 and the second plate 50 are brought into close contact with the cam ring 30.
(59) As a result, the vane pump 200 is obtained.
(60) In regard to manufacturing the vane pump unit 1, and the vane pump 200, for example, after the vane pump unit 1 is manufactured in a main factory (a major factory), and is transported to sub-factories everywhere, it is possible to manufacture the vane pump 200 by assembling the vane pump unit 1 into the housing 100 in each sub-factory. At this time, since the connecting bar 60 is retained by the clip 71, the second plate 50 and the like are prevented from slipping out of their respective positions during the transportation of the vane pump unit 1 from the main factory to each of the sub-factories, and the first plate 40 and the second plate 50 also do not bend. Since the sub-factory does not require equipment for assembling the vane pump unit 1, it is possible to save space at the sub-factory, and manufacture the vane pump 200 at low costs.
(61) Modification Example
(62) The embodiment of the present invention is described above, the present invention is not limited to the embodiment. For example, the following modifications may be made.
(63) The connecting bar 60 and a clip 72 may have a configuration as illustrated in
(64) The connecting bar 60 and a clip 73 may have a configuration as illustrated in