Device for controlling at least one valve in an internal combustion engine
10648373 · 2020-05-12
Assignee
Inventors
Cpc classification
F01L1/181
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2001/34423
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L13/0047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2810/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/267
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2250/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2305/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D13/0269
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/3442
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2001/0473
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/12
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
International classification
F01L1/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/344
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A device for actuating at least one valve in an internal combustion engine includes a camshaft arrangement including a hollow outer shaft and an inner shaft, which is concentrically mounted inside of the outer shaft to be pivotable relative to the outer shaft. A first cam lobe is mounted on one of the inner shaft and the outer shaft in a rotationally fixed manner and a second cam lobe is mounted on the other of the inner shaft and the outer shaft in a rotationally fixed manner. The device further includes a rocker arm arrangement including a first primary rocker arm, which is arranged to follow the first cam lobe and arranged to actuate a first valve when it follows the first cam lobe. The rocker arm arrangement further includes an auxiliary rocker arm, which is arranged to follow the second cam lobe. The auxiliary rocker arm is adapted to actuate the first primary rocker arm so that an opening tune of the first valve may be extended by the auxiliary rocker arm following the second cam lobe.
Claims
1. A device for actuating at least one valve in an internal combustion engine, wherein the device comprises a camshaft arrangement comprising a hollow outer shaft, an inner shaft, which is concentrically mounted inside of the outer shaft to be pivotable relative to the outer shaft, a first cam lobe mounted on one of the inner shaft and the outer shaft in a rotationally fixed manner, a second cam lobe mounted on an other one of the inner shaft and the outer shaft than the first cam lobe in a rotationally fixed manner, a rocker arm arrangement comprising a first primary rocker arm, which is arranged to follow the first cam lobe and arranged to actuate a first valve when it follows the first cam lobe, an auxiliary rocker arm, which is arranged to follow the second cam lobe and that the auxiliary rocker arm is adapted to actuate the first primary rocker arm so that an opening time of the first valve is arranged to selectively be extended by the auxiliary rocker arm following the second cam lobe, wherein the first cam lobe and the second cam lobe have different cam profiles, and in that the device comprises a damper for damping a transition at a transfer point, at which a change of valve opening actuation takes place between the first cam lobe and the second cam lobe, for achieving a smooth transition between valve actuation controlled by the first cam lobe and the second cam lobe.
2. A device according to claim 1, wherein the first cam lobe has a symmetrical shape with regard to a peak point of the first cam lobe.
3. A device according to claim 1, wherein the first cam lobe has a continuously rounded contour.
4. A device according to claim 1, wherein the second cam lobe has a non symmetrical shape with regard to a peak point of the second cam lobe.
5. A device according to claim 1, wherein the second cam lobe has a substantially planar profile part.
6. A device according to claim 5, wherein the substantially planar profile part has a first end and a second end, which are at different lift heights.
7. A device according to claim 1, wherein the first cam lobe and the second cam lobe have different maximum lift heights.
8. A device according to claim 1, wherein the first cam lobe has a higher maximum lift height than the second cam lobe.
9. A device according to claim 1, wherein the damper comprises a hydraulic circuit.
10. A device according to claim 9, wherein a first one of the auxiliary rocker arm and the first primary rocker arm comprises at least a part of the damper, the damper comprises a first contact member for contacting a second one of the auxiliary rocker arm and the first primary rocker arm in order to actuate it, the first contact member is moveably arranged in the first one of the auxiliary rocker arm and the first primary rocker arm, and wherein the first contact member is formed by a piston in the hydraulic circuit.
11. A device according to claim 1, wherein a first one of the auxiliary rocker arm and the first primary rocker arm comprises at least a part of the damper.
12. A device according to claim 11, wherein the damper comprises a first contact member for contacting a second one of the auxiliary rocker arm and the first primary rocker arm in order to actuate it.
13. A device according to claim 12, wherein the first contact member is moveably arranged in the first one of the auxiliary rocker arm and the first primary rocker arm.
14. A device according to claim 1, wherein the first primary rocker arm comprises a first contact portion and the auxiliary rocker arm comprises a second contact portion and wherein the first primary rocker arm and the auxiliary rocker arm are arranged in relation to one another so that the first and second contact portions is arranged to selectively be in contact for achieving that the opening time of the first valve is extended by the auxiliary rocker arm following the second cam lobe.
15. A device according to claim 14, wherein the device is adapted so that the first and second contact portions are in contact with each other when the first primary rocker arm and the auxiliary rocker arm are moved relative to one another in a first direction and wherein the first and second contact portions are free from contact with each other when the first primary rocker arm and the auxiliary rocker arm are moved relative to one another in a second direction, opposite the first direction.
16. A device according to claim 14, wherein the first primary rocker arm has a main extension direction in a transverse direction in relation to a rotational axis of the camshaft arrangement, wherein the first primary rocker arm comprises a boss projecting in a transverse direction in relation to the main extension direction and wherein the boss comprises the first contact portion.
17. A device according to claim 14, wherein the camshaft arrangement comprises a third cam lobe mounted on the same shaft of the inner shaft and the outer shaft as the first cam lobe in a rotationally fixed manner, wherein the rocker arm arrangement comprises a second primary rocker arm, which is arranged to follow the third cam lobe and arranged to actuate a second valve when it follows the third cam lobe, the auxiliary rocker arm is adapted to actuate the second primary rocker arm so that an opening time of the second valve maybe extended by the auxiliary rocker arm following the second cam lobe, the second primary rocker arm is positioned on an opposite side of the auxiliary rocker arm in relation to the first primary rocker arm, wherein the second primary rocker arm has a main extension direction in a transverse direction in relation to a rotational axis of the camshaft arrangement, wherein the second primary rocker arm comprises a boss (325) projecting in a transverse direction in relation to the main extension direction, and wherein the boss comprises a third contact portion for contacting the second contact portion of the auxiliary rocker arm.
18. A device according to claim 12, wherein the first primary rocker arm comprises a first contact portion and the auxiliary rocker arm comprises a second contact portion and wherein the first primary rocker arm and the auxiliary rocker arm are arranged in relation to one another so that the first and second contact portions is arranged to selectively be in contact for achieving that the opening time of the first valve is extended by the auxiliary rocker arm following the second cam lobe, and wherein the first contact member comprises the second contact portion.
19. A device according to claim 1, wherein the device is arranged so that the opening time of the first valve is arranged to selectively be controlled via the second cam lobe by pivoting the inner shaft relative to the outer shaft to different relative circumferential positions.
20. A device according to claim 1, wherein the device is arranged so the inner shaft is pivotable relative to the outer shaft to different relative circumferential positions and allowing the inner shaft and the outer shaft to rotate with same speed in the different relative circumferential positions.
21. A device according to claim 1, wherein the camshaft arrangement comprises a third cam lobe mounted on a same shaft of the inner shaft and the outer shaft as the first cam lobe in a rotationally fixed manner, wherein the rocker arm arrangement comprises a second primary rocker arm, which is arranged to follow the third cam lobe and arranged to actuate a second valve when it follows the third cam lobe and wherein the auxiliary rocker arm is adapted to actuate the second primary rocker arm so that an opening time of the second valve may be extended by the auxiliary rocker arm following the second cam lobe.
22. A device according to claim 21, wherein the third cam lobe is positioned on an opposite side of the second cam lobe in relation to the first cam lobe.
23. A device according to claim 21, wherein the second primary rocker arm is positioned on an opposite side of the auxiliary rocker arm in relation to the first primary rocker arm.
24. A device according to claim 21, wherein the first cam lobe and the third cam lobe are substantially identical.
25. A device according to claim 1, wherein the rocker arm arrangement comprises a rocker arm shaft and wherein at least one of the first primary rocker arm and the auxiliary rocker arm is pivotally arranged on the shaft.
26. A device according to claim 25, wherein the rocker arm shaft is arranged in parallel with the camshaft arrangement.
27. A device according to claim 1, wherein the device is adapted for actuating at least one intake valve.
28. An internal combustion engine comprising a cylinder provided with at least one intake valve and at least one exhaust valve and an engine valve actuation device according to claim 1 for actuating at least one of the at least one intake valve and the at least one exhaust valve.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) With reference to the appended drawings, below follows a more detailed description of embodiments of the invention cited as examples.
(2) In the drawings:
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
DETAILED DESCRIPTION
(14)
(15)
(16) The valve actuation device 100 further comprises an arrangement 400 for pivoting an inner shaft relative to an outer shaft in the camshaft arrangement 200 to different relative circumferential positions and allowing the inner shaft and the outer shaft to rotate with same speed in the different relative circumferential positions. The pivoting arrangement 400 is arranged at one end of the cam shaft arrangement 200.
(17)
(18) The first cam lobe 206 and the second cam lobe 208 have different cam profiles.
(19) A valve lift profile 208 of the second cam lobe 208 has a non-symmetrical shape with regard to a peak point 232 of the second cam lobe. More specifically, the second cam lobe 208 has a substantially planar profile part in the form of a slope 234. The substantially planar profile part 234 has a first end 236 and a second end 238, which are at different lift heights (position in radial direction). More specifically, the first end 236 is at an opening side of the cam profile while the second end 238 is at a closing side of the cam profile. Thus, the planar profile part of the second cam lobe 208 is inclined with regard to the rotational angle. Further, the first cam lobe 206 and the second cam lobe 208 have different maximum lift heights. More specifically, the first cam lobe 206 has a higher maximum lift height than the second earn lobe 208. More specifically, the first cam lobe 206 has about twice the maximum lift height of the second cam lobe 208. According to the shown example, both the first end 236 and the second end 238 are positioned in the vicinity of half the maximum lift height of the first cam lobe 206.
(20) Further,
(21)
(22) The rocker arm arrangement 300 further comprises an auxiliary rocker arm 306, which is arranged to follow the second cam lobe 208. The auxiliary rocker arm 306 is adapted to actuate the first primary rocker arm 302 so that an opening time of the first valve 4 may be extended by the auxiliary rocker arm 306 following the second cam lobe 208. The auxiliary rocker arm 306 comprises a cam roller 308 adapted to contact the second cam lobe 208.
(23) The rocker arm arrangement 300 further comprises a stationary (non-rotating) rocker arm shaft 310 and wherein said rocker arms 302,306 are pivotally arranged on said shaft 310. The rocker arm shaft 310 is arranged in parallel with the rotational axis X of the camshaft arrangement 200.
(24)
(25) The auxiliary rocker arm 306 comprises at least a part of the damping arrangement 500. The damping arrangement 500 comprises a hydraulic circuit 502. The damping arrangement comprises a first contact member 504 for contacting the first primary rocker arm 302 in order to actuate the first primary rocker arm. The first contact member 504 is moveably arranged in the auxiliary rocker arm 306. More specifically, the first contact member 504 is adapted to be hydraulically actuated. More specifically, the first contact member 504 is formed by a piston in the hydraulic circuit 502.
(26) The rocker arm shaft 310 comprises one or more internal passages 506 for the delivery of hydraulic fluid, such as engine oil, to the auxiliary rocker arm 306 mounted thereon. Specifically, the rocker arm shaft 310 comprises a control fluid supply passage 508. The control fluid supply passage 508 is adapted to provide hydraulic fluid to the hydraulic circuit 502 in the auxiliary rocker arm 306 through a rocker shaft passage 510. A solenoid control valve (not shown) may control the supply of low pressure hydraulic fluid to the control fluid supply passage 508.
(27) The auxiliary rocker arm 306 includes a rocker shaft bore 312 extending laterally through a central portion of the auxiliary rocker arm 306. The rocker shaft bore 312 is adapted to receive the rocker arm shaft 310. The rocker shaft bore 312 comprises one or more ports 314 funned in the wall thereof to receive fluid from the control fluid supply passage 508 formed in the rocker arm shaft.
(28) The auxiliary rocker arm 306 comprises a chamber 506 for receipt of the piston 504, wherein the piston 504 is allowed to move back and forth in the chamber 506 in a sliding manner. The chamber 506 is in fluid communication with the port 314 of the rocker shaft bore 312. More specifically, the chamber 506 is in fluid connection with the port 314 of the rocker shaft bore 312 via a first port 512 at an inner closed end of the chamber on a first side of the piston. The chamber 506 is in fluid connection with the port 314 of the rocker shaft bore 312 via a line 516 for the hydraulic fluid. More specifically, the damping chamber 506 comprises two ports 512,514, wherein a second port 514 has a direct connection to the port 314 of the rocker shaft bore. The oil can flow without any restriction in both directions via the second port 514. The damping piston 504 is adapted to be pressed into the damping chamber 314 by the first primary rocker arm 302 during operation.
(29) The hydraulic circuit 502 comprises a check valve 518. The first port 512 in the damping chamber 506 is connected to the port 314 of the rocker shaft bore 312 via the check valve 518 in an open direction. The hydraulic circuit 502 comprises a first line 520 arranged between the first port 512 and the port 314 of the rocker shaft bore 312 and a second line 522 arranged between the second port 514 and the port 314 of the rocker shaft bore 312. Further, the hydraulic circuit 502 comprises a flow restriction 524. The flow restriction 524 is arranged on a line 526 connecting the first line 520 and the second line 522. When the damping piston 504 is in inner part of damping chamber 506, overlapping and thereby blocking the second port 514, and moving inwards, the remaining oil has to pass the flow restriction 524 (as check valve 518 is closed). This oil flow restriction cause the damping piston 504 to have a relative low velocity versus damping chamber 506. This damping arrangement 500 is adapted to avoid severe impact forces between the first primary rocker arm 302 and the auxiliary rocker arm 306.
(30) Further, the hydraulic circuit 502 may optionally comprise an oil accumulator 528 in order to reduce requirement on oil supply capacity. The oil accumulator 528 is in fluid communication with the second line 522.
(31) An adjustment screw 311 is indicated for adjustment of a relative distance between the primary rocker arm 302 and the valve 4. The adjustment screw 311 is arranged in a bore in the primary rocker arm 302, which bore extends in parallel with the valve opening direction.
(32) In addition to what is shown in
(33) Further, in addition to what is shown in
(34)
(35)
(36) More specifically, the device 100 is adapted so that the first and second contact portions 320,322 are in contact with each other when the first primary rocker arm 302 and the auxiliary rocker arm 306 are moved relative to one another in a first direction while the first and second contact portions 320,322 are free from contact with each other when the first primary rocker arm 302 and the auxiliary rocker arm 306 are moved relative to one another in a second direction, opposite the first direction.
(37) The first moveably arranged contact member 504 (the damping piston in the hydraulic circuit 502) comprises the second contact portion 322.
(38) The first primary rocker arm 302 has a main extension direction in a transverse direction in relation to the rotational axis X of the camshaft arrangement 200, wherein the first primary rocker arm 302 comprises a boss 324 projecting in a transverse direction in relation to the main extension direction and wherein the boss 324 comprises the first contact portion 320.
(39) According to one example, a transmission element in the form of a cog wheel is rigidly attached to one of the shafts in the camshaft arrangement 200 for transferring a rotational movement from the crankshaft 6 to the camshaft arrangement 200.
(40)
(41) Further, the pivoting arrangement 400 comprises a second part 420 adapted to be rotationally rigidly connected to the inner shaft 204 via a spline connection 422,424. The second part 420 comprises an inner circular wall 428 and a plurality of circumferentially spaced walls 428 extending outwards from the inner wall 426 in a radial direction of the second part. The second part 420 is adapted to be fitted inside of the first part 402 (in the central space) so that the circumferentially spaced walls 428 of the second part 420 are received in the chambers 414 of the first part. More specifically, the circumferentially spaced walk 428 of the second part 420 has a substantially smaller extension in the circumferential direction than the chambers 414 of the first part 402 thereby allowing a relative pivoting between the first part 402 and the second part 420 in an engaged state. More specifically, the circumferential extension of the chamber 414 in relation to the circumferential extension of the wall 428 defines end positions for said pivoting movement.
(42) Turning now to
(43) Turning now to
(44) Further, the pivoting arrangement comprises the housing 442 for receipt of the first part 402. More specifically, the housing 442 comprises a circular opening 444 for receipt of the second, tubular section 416 of the first part 402. Further, the housing 442 comprises two radially spaced circular grooves 446,448 in the contact surface 440 facing in an axial direction. More specifically, the contact surface 440 extends in a plane transverse to an axial direction of the housing 442 and preferably in a plane perpendicular to the axial direction. The two radially spaced circular grooves 446,448 are concentric with the circular opening 444. Further, each one of the two radially spaced circular grooves 446,448 are matched with regard to size and position to one of the third and fourth port 434,436 for establishing a fluid communication in an operational state. Further, each one of the two radially spaced circular (grooves 446,448 are in fluid communication with a fluid line 450,452.
(45) Further, the housing 442 comprises a sealing arrangement 460 for sealing between the circular opening 444 and the second, tubular section 416 of the first part 402. The sealing arrangement 460 comprises the three circular sealings 462,464,466. Each one of the two lines 450,452 providing the ports 434 and 436 with fluid is arranged between two adjacent sealings 462,464,466.
(46) Further, the pivoting arrangement 400 comprises a cover 454 on an opposite side of the first and second part relative to the housing for closing the chambers in an axial direction.
(47)
(48) The camshaft arrangement 200 is disclosed in
(49) The rocker arm arrangement 300 is disclosed in
(50) Turning now to
(51)
(52) It is to be understood that the present invention is not limited to the embodiments described above and illustrated in the drawings; rather, the skilled person will recognize that many changes and modifications may be made within the scope of the appended claims.
(53) According to one example, the cam profiles of the cam lobes may be different from what has been shown in
(54) According to a further example, instead of the auxiliary rocker arm comprising the damping arrangement, the first (or second) primary rocker arm may comprise the damping arrangement. In such a solution, the auxiliary rocker arm would comprise a boss projecting in a transverse direction in relation to its main extension direction and wherein the boss comprises a contact portion for engagement with a piston in the hydraulic circuit of the primary rocker arm.
(55) According to a further example, the rocker arm arrangement according to the first embodiment (