Variable Valve Lift System
20200340373 ยท 2020-10-29
Inventors
- Ian Methley (Witney Oxfordshire, GB)
- Timothy Mark Lancefield (Shipston on Stour Warwickshire, GB)
- Kyle Webb (Abingdon Oxfordshire, GB)
Cpc classification
F01L1/181
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/182
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2001/186
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L13/0047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/267
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2001/467
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2001/0473
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2301/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2303/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A summation rocker system is disclosed for acting on the end of a stem of a poppet valve (16) in dependence upon the combined lifts of a first and a second cam profile defined by different cam lobes (14, 22) of a concentric camshaft (46). The system comprises a first rocker (12) mounted on a pivot shaft (18) and having a first follower (44) to contact the first cam profile and an end acting on the valve (16) to displace the valve (16) by an amount dependent upon the lift of the first cam profile, a rocker shaft (24) to be fixedly mounted on the engine, and a second rocker (20) pivotable about the rocker shaft (24), the second rocker (20) having a second follower (48) to contact the second cam profile and acting to displace the pivot shaft (18) of the first rocker (12) in dependence of the lift of second cam profile. The rocker shaft (24) intersects a plane containing the axis of the pivot shaft (18) and the end of the first rocker (12) acting on the valve stem, and the first rocker (12) includes a cut-out (26) for receiving the rocker shaft (24), which cut-out (26) is configured and dimensioned to prevent the rocker shaft (24) from interfering with movement of the first rocker (12).
Claims
1. A summation rocker system for acting on the end of a stem of a poppet valve (16) in dependence upon the combined lifts of a first and a second cam profile defined by different cam lobes (14, 22) of a concentric camshaft (46), the system comprising: a first rocker (12) mounted on a pivot shaft (18) and having a first follower (44) to contact the first cam profile and an end acting on the valve (16) to displace the valve (16) by an amount dependent upon the lift of the first cam profile, a rocker shaft (24) to be fixedly mounted on the engine, and a second rocker (20) pivotable about the rocker shaft (24), the second rocker (20) having a second follower (48) to contact the second cam profile and acting to displace the pivot shaft (18) of the first rocker (12) in dependence of the lift of second cam profile, characterized in that the rocker shaft (24) intersects a plane containing the axis of the pivot shaft (18) and the end of the first rocker (12) acting on the valve stem, and the first rocker (12) includes a cut-out (26) for receiving the rocker shaft (24), which cut-out (26) is configured and dimensioned to prevent the rocker shaft (24) from interfering with movement of the first rocker (12).
2. A summation rocker system as claimed in claim 1, wherein the cut-out (26) in the first rocker (12) is a hole for receiving the fixed rocker shaft (24), the hole (26) being dimensioned to permit the rocker shaft (24) to pass through the hole with swept clearance.
3. A summation rocker system as claimed in claim 1, wherein the rocker shaft (124) has reduced cross sectional area in regions (121, 123) where it is received within the cut-out (126) in the first rocker (112).
4. A summation rocker system as claimed in claim 1, wherein the first rocker (212) comprises two surfaces (213,215) axially straddling the second rocker (20), the two surfaces (213,215) defining between them a pocket (217) within which the second rocker (20) is received with clearance.
5. A summation rocker system as claimed in claim 1, wherein the first rocker 212 comprises at least two parts (712a; 712b) that are secured to one another.
6. A summation rocker system as claimed in claim 1, wherein the first rocker (212) is formed from sheet metal.
7. A valvetrain comprising a summation rocker system as claimed in claim 1, for operating valves of two different types of an engine cylinder, wherein the summation rocker system serves to open and close one of the two types of valves (16) in dependence on the combined lift of two cam profiles of the camshaft, and wherein the valvetrain further comprises a third rocker (332) for operating the other of the two types of valves in dependence upon a single profile of a third cam (334) of the camshaft.
8. A summation rocker system as claimed in claim 7, wherein the third rocker (332) is mounted pivotably about the axis of the rocker shaft (324) of the second rocker (320).
9. A summation rocker system as claimed in claim 7, wherein the third rocker (432) is mounted to the rocker shaft (424) by way of an eccentric component (436) to pivot about an axis different from that of the second rocker (420).
10. A summation rocker system as claimed in claim 1, wherein a control spring (28) is provided to act between a stationary point in the engine and the first rocker (12) to urge the followers (44) towards the first cam profile (14).
11. A summation rocker system as claimed in claim 1, wherein the first rocker (512) features a hole with an axis lying in a plane normal to the axes of the pivot (518) and rocker shafts (524), the hole permitting a control spring (528) connected to the second rocker (520) to pass with clearance through the first rocker (512).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The invention will now be described further, by way of example, with reference to the accompanying drawings, in which:
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
DETAILED DESCRIPTION OF EMBODIMENTS
[0019] In the description below of embodiments of the invention, in order to avoid unnecessary repetition, like parts of different embodiments have been allocated reference numerals with the same last two digits. Hence numerals XX, 1XX, 2XX, 3XX etc. will be to designate identical components, or possibly modified components fulfilling the same function.
[0020]
[0021] As can be seen from
[0022] To accommodate the rocker shaft 24 in such a position, the first rocker 12 of the embodiments of the invention shown in
[0023] While a circular hole of sufficiently large diameter may be used, it is preferred to minimise the amount of material removed from the first rocker by providing a hole that is elongated in the direction of relative movement. The direction of relative movement may be curved or relatively straight, depending on the geometry of the valvetrain.
[0024] The first rocker 212, of the embodiment shown in
[0025] A control spring 28, shown in
[0026] The optimum position of the control spring 28 creates a force vector through the pivot shaft 18 perpendicular to a line created between the pivot shaft 18 and the fixed rocker shaft 24. However, it is often a greater priority to minimize the height of the valvetrain, in which case the spring 28 may be moved from this optimum position.
[0027] In a second embodiment of the invention as shown in
[0028] It would equally be possible to form the reduced regions of the rocker shaft 124 with one or more slots rather than a reduced diameter in order to reduce the size of the cut-out 126 in the first rocker 112.
[0029] If formed as a hole, a portion of the cut-out 126 should remain of a diameter to provide a clearance fit for the larger diameter regions of the rocker shaft 124. The diameter of the rocker shaft 124 is usually specified for a journal bearing of the second rocker 120 and so cannot be directly modified in the region that passes through the second rocker 120. The position of this larger diameter portion of the hole may be positioned anywhere along its swept range in order to maximize stiffness.
[0030] The first rocker 212 of
[0031] Alternatively, as illustrated in
[0032] It is common for a summation rocker system to be used on only one of the intake or exhaust valves, the valve being operated using a conventional system with a single cam profile. Such a valvetrain is shown in each of
[0033] The embodiments of the invention shown in
[0034] An alternative approach for preventing rotation of the bushing 436 is adopted in the embodiment illustrated in
[0035] As previously disclosed, the control spring 28 can sometimes be mounted in a less than optimal orientation in order to minimize the overall height of the valvetrain. Moving the control spring 28 from its optimal position requires the spring 28 to produce a higher force. Designing a control spring which exerts sufficient force but still fits into the packaging space of the cylinder head may be difficult or costly.
[0036]
[0037] It will be appreciated that the embodiments described above may be combined where technically possible. For example, the control spring may act on the second rocker independent of the design of the first rocker. If the first rocker were to be constructed in any other way than illustrated in
[0038] Furthermore, it is alternatively possible for the control spring to be arranged to act between the two rockers in order to maintain the desired contact with one of the cam profiles, rather than acting between one of the rockers and a fixed point on the engine.
[0039] Although the summation rocker system is, in the above embodiments, related to varying the lift of the valve, the duration that the valves are open and the timing of the valves may be varied depending on the phase of the cam lobes with respect to either each other, the crankshaft of the engine, or both.
[0040] The invention may be used with any number of intake or exhaust valves in the engine, or indeed any engine configuration or number of cylinders. Where more than one valve per rocker is acted upon, the valves may be synchronized through a valve bridge connecting them to the rocker.