VALVE ACTUATORS
20200157977 ยท 2020-05-21
Inventors
Cpc classification
F01L1/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2009/4088
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L9/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L2820/032
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L1/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01L9/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01L1/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An actuator for operating a poppet valve (30) of an internal combustion engine. The actuator comprises a rotary portion (4) and a body portion (2), and the rotary portion defines a cam surface (50, 60). A cam follower (10) is engaged with the cam surface, and a linkage is coupled to the cam follower at one end and coupled to a valve stem (12) at its other end. The cam surface (50, 60) is shaped such that exertion of a closing force on the valve stem, by a piston of the engine following failure of the actuator for example, causes the cam follower (10) to exert a turning force on the rotary portion (4).
Claims
1. An actuator for operating a valve, the actuator comprising: a rotary portion and a body portion, wherein the rotary portion is rotatable relative to the body portion about an axis of rotation by actuation of the actuator, and the rotary portion defines a cam surface; a cam follower engaged with the cam surface as the cam surface rotates; and a linkage which is coupled to the cam follower at one end and to be coupled to a valve stern at its other end, wherein rotation of the rotary portion from a first rotational position to a second rotational position causes displacement of the cam follower, which in turn causes the other end of the linkage to move from a first position to a second position, and wherein the cam surface is shaped such that exertion of a force on the other end of the linkage which urges the other end from its second position towards its first position causes the cam follower to exert a turning force on the rotary portion so as to rotate it towards its first rotational position.
2. The actuator of claim 1, wherein the cam surface is shaped such that when the rotary portion is in its second rotational position, a reference line which lies in a plane perpendicular to the axis of rotation of the rotary portion and is normal to the cam surface at a point of contact by the cam follower is spaced from the axis of rotation of the rotary portion.
3. The actuator of claim 2, wherein the cam surface is shaped such that when the rotary portion is in its second rotational position, or in a rotational position in a range from the second rotational position to an intermediate rotational position between the first and second rotational positions, the reference line is spaced from the axis of rotation of the rotary portion.
4. The actuator of claim 1, wherein the first position corresponds to a valve closed position and the second position corresponds to a valve open position.
5. The actuator of claim 4, wherein the second position corresponds to a valve fully open position.
6. The actuator of claim 1, wherein the actuator is an electromagnetic actuator, the rotary portion comprises a rotor and the body portion comprises a stator.
7. The actuator of claim 1, wherein the actuator is a hydraulic actuator.
8. The actuator of claim 1, wherein the actuator is a pneumatic actuator.
9. An internal combustion engine including at least one cylinder having at least one inlet or exhaust valve, a piston and the actuator of claim 1, wherein the at least one inlet or exhaust valve is operable independently of rotation of a crankshaft of the engine, and the other end of the actuator linkage is coupled to the at least one inlet or exhaust valve to enable the actuator to actuate the at least one inlet or exhaust valve.
10. The engine of claim 9, wherein the engine is a diesel engine.
11. The engine of claim 9, wherein the valve includes a valve stem which is arranged to reciprocate along a valve axis, the piston is arranged to reciprocate along a piston axis, and the valve axis is substantially parallel to the piston axis.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Embodiments of the invention will now be described by way of example and with reference to the accompanying schematic drawings, wherein:
[0020]
[0021]
[0022]
[0023]
DETAILED DESCRIPTION OF THE DRAWINGS
[0024]
[0025] The cam follower may be urged into contact with the cam surface by a biasing arrangement such as a spring for example. Alternatively, in a desmodromic configuration, a second cam and cam follower mechanism may be employed to control the closing motion of the valve stem.
[0026] The cam follower 10 is coupled to a valve stem 12 by a mechanical linkage 14. The linkage comprises a cam follower arm 16 and a rocker arm 18 which are rigidly connected together and rotatable about a rocker pivot 20. Cam follower 10 is mounted on (or integrally formed with) a distal end of the cam follower arm 16.
[0027] The rocker arm 18 is pivotably coupled to one end 21 of a rigid link arm 22 by a first pivot joint 24. The other end 23 of the link arm 22 is pivotably coupled to the valve stem 12 via a second pivot joint 26.
[0028] Valve 30 comprises the valve stem 12, a valve head 32 which is rigidly connected to the valve stem, and a valve seat 34 (supported by the cylinder head of the engine). A valve guide (not shown) permits linear reciprocal movement in direction D by the valve stem along the valve axis to open and close the valve by bringing the valve head 32 into or out of engagement with the valve seat 34.
[0029] In operation of the actuator and valve configuration shown in
[0030] When the rotor is rotated in either direction away from the position shown in
[0031] In a configuration of the form shown in
[0032] In
[0033]
[0034] With the valve fully open as shown in
[0035] The geometry and dimensions of the cam surface, cam follower and linkage are selected such that a force on the valve of the magnitude generated during a piston-to-valve contact event (at least for the cam and linkage positions in which this contact could take place) will exert a sufficient torque on the rotary portion of the actuator to overcome readily the maximum torque that the actuator is able to produce. It will be appreciated that this torque is proportional to the distance x (as denoted on
[0036]
[0037] In
[0038] Dashed circles 72 and 74 identify possible positions for the cam follower at the start of a valve opening event. They are located at each end of base circle section 66. In order to open the valve, the rotor rotates clockwise when viewed in the direction of
[0039] In the embodiment of
[0040] In this embodiment, the cam surface continues to increase its distance from the axis of rotation beyond point 70 along a portion 76 at one end of section 68 of the cam surface (that is, the cam lift increases). In normal use, the cam follower would not travel onto this surface. However, it ensures that even if the follower does travel slightly beyond point 70 due to manufacturing tolerances for example, a turning force will be exerted on the rotor if there is piston to valve contact.
[0041] As reference line L is offset from the axis of rotation 6, the force has a lever arm relative to the axis causing it to exert a torque on the rotor. This torque overrides the electromagnetic forces acting between the rotor and its stator, and the inertia of the rotor, allowing the valve to close without damage to the valve, piston or any part of the mechanical, electrical or control systems.
[0042] Such a cam surface configuration would be intended for use in an oscillating mode to open and close a valve, and not in a full rotation mode, as described with relation to the configuration of
[0043] The embodiments of
[0044] The actuator to valve linkages shown in