[go: up one dir, main page]

WO2008065086A1 - Torque oscillation controller - Google Patents

Torque oscillation controller Download PDF

Info

Publication number
WO2008065086A1
WO2008065086A1 PCT/EP2007/062828 EP2007062828W WO2008065086A1 WO 2008065086 A1 WO2008065086 A1 WO 2008065086A1 EP 2007062828 W EP2007062828 W EP 2007062828W WO 2008065086 A1 WO2008065086 A1 WO 2008065086A1
Authority
WO
WIPO (PCT)
Prior art keywords
camshaft
magnets
controller according
torque
magnetic
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/EP2007/062828
Other languages
French (fr)
Inventor
Philippe S. Farah
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Delphi Technologies Inc
Original Assignee
Delphi Technologies Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Delphi Technologies Inc filed Critical Delphi Technologies Inc
Publication of WO2008065086A1 publication Critical patent/WO2008065086A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01LCYCLICALLY OPERATING VALVES FOR MACHINES OR ENGINES
    • F01L1/00Valve-gear or valve arrangements, e.g. lift-valve gear
    • F01L1/34Valve-gear or valve arrangements, e.g. lift-valve gear characterised by the provision of means for changing the timing of the valves without changing the duration of opening and without affecting the magnitude of the valve lift
    • F01L1/344Valve-gear or valve arrangements, e.g. lift-valve gear characterised by the provision of means for changing the timing of the valves without changing the duration of opening and without affecting the magnitude of the valve lift changing the angular relationship between crankshaft and camshaft, e.g. using helicoidal gear
    • F01L1/34409Valve-gear or valve arrangements, e.g. lift-valve gear characterised by the provision of means for changing the timing of the valves without changing the duration of opening and without affecting the magnitude of the valve lift changing the angular relationship between crankshaft and camshaft, e.g. using helicoidal gear by torque-responsive means
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01LCYCLICALLY OPERATING VALVES FOR MACHINES OR ENGINES
    • F01L1/00Valve-gear or valve arrangements, e.g. lift-valve gear
    • F01L1/34Valve-gear or valve arrangements, e.g. lift-valve gear characterised by the provision of means for changing the timing of the valves without changing the duration of opening and without affecting the magnitude of the valve lift
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01LCYCLICALLY OPERATING VALVES FOR MACHINES OR ENGINES
    • F01L1/00Valve-gear or valve arrangements, e.g. lift-valve gear
    • F01L1/46Component parts, details, or accessories, not provided for in preceding subgroups

Definitions

  • This invention relates to a torque oscillation controller. More particularly, but not exclusively, it relates to a torque oscillation controller for a camshaft.
  • a camshaft comprises a base circle portion, having a constant radius of curvature, and a cam lobe, having a varying radius of curvature.
  • the camshaft effects an eccentric path during its rotation.
  • a camshaft experiences a high variance of torque during a single revolution. This torque variance occurs during the opening and closing of an engine valve.
  • a valve follower traces a path that follows the surface camshaft.
  • the camshaft experiences a resistive torque.
  • This resistive torque opposes the rotation of the camshaft.
  • This resistive torque increases as the rotation of the camshaft continues until the apex of the cam lobe is reach, at which point the torque due to the reaction of the valve follower is zero.
  • Subsequent rotation of the camshaft results in a positive torque that acts in the direction of rotation.
  • the camshaft experiences an oscillatory torque during rotation.
  • a camshaft phaser changes the angular orientation of the camshaft. This adjusts the timing of the intake and exhaust valves in an attempt to maximise optimize performance and economy, and to reduce emissions.
  • a camshaft phase allows variable valve timing in relation to the crankshaft.
  • Camshaft torque oscillations cause problems for a number of cam phaser arrangements. For example, hydraulic phasers suffer oil leakage due to the oscillatory instability in the angular position of the rotor caused by the torque oscillations. Oil leakage over time can result in poor lubrication and eventually seizing of the engine. Such oil leakage results in a requirement for a larger oil pump than would otherwise be the case in order to meet the phase timing requirements for a hydraulic phaser.
  • geared phasers such as those employing helical spline or planetary gears, require backlash protection in order to reduce wear and meet phase angle accuracy requirements.
  • backlash protection increases the complexity of construction of such phasers.
  • camshaft torque oscillation may desirable for cam torque actuated devices that use those camshaft torque oscillations to meet phase timing requirements.
  • those camshaft torque actuated devices are used at low speed where the camshaft torque oscillations are sufficient meet phasing requirements, except where rapid phasing is required.
  • a torque oscillation controller for a camshaft comprising first and second magnetic elements, the first and second magnetic elements being positionable relative to the other of the first and second magnetic elements, wherein the relative positions of the first and second magnetic elements being arranged to either increase or decrease a torque oscillation of the camshaft.
  • the first magnetic element may comprise a stator.
  • the stator may comprise a cylinder head.
  • At least one of the first plurality of magnets may be mounted upon a surface of a post.
  • the surface of the disc or the post may comprise a surface facing away from the shaft.
  • the second magnetic element may comprise a rotor.
  • the rotor may comprise the camshaft.
  • the second magnetic element may comprise a second plurality of magnets.
  • the magnets may be circumferentially spaced about a surface of a disc or a channel.
  • at least one of the second plurality of magnets may be mounted upon a surface of a post.
  • Either, or both, of the first and second plurality of magnets may comprise a multiple of the number of cylinders comprising the engine.
  • Figure 1 is a partial sectional view of a camshaft-cylinder head arrangement of a four cylinder four stroke engine comprising an embodiment of a magnetic torque oscillation controller according to an aspect of the present invention
  • Figure 2 is a side elevation of the camshaft-cylinder head arrangement of Figure 1 ;
  • Figures 2a and 2b are schematic diagrams detailing the effect upon resultant magnetic fields of the alignment of the stator and rotor magnets of an embodiment of a magnetic torque oscillation controller according to an aspect of the present invention, and of the offsetting said stator and rotor magnets by 22.5°, respectively;
  • Figure 3 is a graphical representation of camshaft torque oscillation reduction achieved employing an embodiment of a magnetic torque oscillation controller according to an aspect of the present invention
  • Figure 4 is a graphical representation of camshaft torque oscillation enhancement achieved employing an embodiment of a magnetic torque oscillation controller according to an aspect of the present invention.
  • a camshaft-cylinder head arrangement 100 comprises a camshaft 102 and a cylinder head 104.
  • a tube 106 having a circular cross-section is mounted concentrically with the camshaft 102.
  • An open end 108 of the tube terminated adjacent an outer face 109 of the cylinder head 104.
  • An inner face 110 of the tube 106 has rotor magnets 112 located upon it adjacent the open end 108 of the tube 106.
  • the rotor magnets 112 may comprise permanent magnets. Alternatively, or additionally, the rotor magnets 112 may comprise electromagnets.
  • the cylinder head 104 comprises an annular block 114 through which the camshaft 102 passes.
  • An annular wall 116 projects perpendicularly away from the outer face 109 of the cylinder head 104.
  • the annular wall 116 is concentric with the block 114 and has a smaller external radius than the internal radius of the tube 106.
  • An exterior surface 118 of the wall 116 has stator magnets 120 located upon it remote from the outer face 109 of the cylinder head 104.
  • stator magnets 120 located upon it remote from the outer face 109 of the cylinder head 104.
  • camshaft 102 and cylinder head 104 are set in an initial position relative to one another. This initial position determines the timing of valve operation.
  • the camshaft 102 rotates with respect to the cylinder head 104 causing relative rotation of the rotor magnets 112 with respect to the stator magnets 120. This relative rotation causes the magnetic interaction of the rotor magnets 112 and the stator magnets 120 to vary.
  • Figure 2a shows the effect upon resultant magnetic fields of the alignment of the cylinder head and rotor magnets 104,112 to produce minimum camshaft torque.
  • Figure 2b shows the effect upon resultant magnetic fields of offsetting the cylinder head and rotor magnets 104,112 by 22.5° to produce maximum camshaft torque.
  • total camshaft torque 302 is due to variable friction and torque oscillations.
  • a magnetic torque 304 is in antiphase with the total camshaft torque oscillations 302. This results in a constant resultant torque 306 acting on the camshaft 102 of less that 5Nm, typically about 0.5Nm - 2Nm at 9O 0 C oil temperature.
  • total camshaft torque 402 is due to variable friction and torque oscillations.
  • a magnetic torque 404 of approximately the same magnitude as the camshaft torque oscillations is in phase with the camshaft torque oscillations 402. This results in a large resultant torque oscillations 406 acting on the camshaft 102 having a peak height of approximately 30Nm.
  • Such an arrangement may be useful where cam actuated torque phasers are used, as the increase in the magnitude the torque oscillation allows rapid phasing.

Landscapes

  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Valve Device For Special Equipments (AREA)

Abstract

A magnetic torque oscillation controller for a camshaft (102) comprises first and second magnetic arrays (120, 112) located upon the cylinder head (104) and camshaft (106) respectively. The first and second magnetic arrays (120, 112) are positioned relative to each such that a torque oscillation of the camshaft can be either increased or decreased, selectively.

Description

TORQUE OSCILLATION CONTROLLER
TECHNICAL FIELD
This invention relates to a torque oscillation controller. More particularly, but not exclusively, it relates to a torque oscillation controller for a camshaft.
BACKGROUND OF THE INVENTION
A camshaft comprises a base circle portion, having a constant radius of curvature, and a cam lobe, having a varying radius of curvature. Thus, the camshaft effects an eccentric path during its rotation.
A camshaft experiences a high variance of torque during a single revolution. This torque variance occurs during the opening and closing of an engine valve.
During the opening of an engine valve a valve follower traces a path that follows the surface camshaft. As the valve follower leaves the base circle portion of the camshaft and climbs the cam lobe the camshaft experiences a resistive torque. This resistive torque opposes the rotation of the camshaft. This resistive torque increases as the rotation of the camshaft continues until the apex of the cam lobe is reach, at which point the torque due to the reaction of the valve follower is zero. Subsequent rotation of the camshaft results in a positive torque that acts in the direction of rotation. Thus, the camshaft experiences an oscillatory torque during rotation.
The effect is exacerbated for multiple cylinder engines as the cycle of oscillatory torque generation occurs at a different point in the revolution of the camshaft for each cylinder. A camshaft phaser changes the angular orientation of the camshaft. This adjusts the timing of the intake and exhaust valves in an attempt to maximise optimize performance and economy, and to reduce emissions. A camshaft phase allows variable valve timing in relation to the crankshaft. Camshaft torque oscillations cause problems for a number of cam phaser arrangements. For example, hydraulic phasers suffer oil leakage due to the oscillatory instability in the angular position of the rotor caused by the torque oscillations. Oil leakage over time can result in poor lubrication and eventually seizing of the engine. Such oil leakage results in a requirement for a larger oil pump than would otherwise be the case in order to meet the phase timing requirements for a hydraulic phaser.
Typically, geared phasers, such as those employing helical spline or planetary gears, require backlash protection in order to reduce wear and meet phase angle accuracy requirements. The provision of such backlash protection increases the complexity of construction of such phasers.
However, camshaft torque oscillation may desirable for cam torque actuated devices that use those camshaft torque oscillations to meet phase timing requirements. Typically, those camshaft torque actuated devices are used at low speed where the camshaft torque oscillations are sufficient meet phasing requirements, except where rapid phasing is required.
SUMMARY OF THE INVENTION
According to a first aspect of the present invention there is provided a torque oscillation controller for a camshaft comprising first and second magnetic elements, the first and second magnetic elements being positionable relative to the other of the first and second magnetic elements, wherein the relative positions of the first and second magnetic elements being arranged to either increase or decrease a torque oscillation of the camshaft.
The reduction of cam shaft torque oscillations reduces oil leakage from hydraulic phasers.
Also, it obviates the necessity of backlash protection apparatus associated with phasers using gears, thereby reducing the complexity of manufacture of a phaser. Additionally, such an arrangement can be used to increase the magnitude of the torque oscillation to allow more rapid phasing than can be achieved currently, where required. The first magnetic element may be located internally of the second magnetic element.
The first magnetic element may comprise a stator. The stator may comprise a cylinder head.
The first magnetic element may comprise a first plurality of magnets. The first plurality of magnets may be circumferentially spaced about a surface of an annular disc. The first plurality of magnets may be equiangularly spaced about the circumference of the disc.
Alternatively, at least one of the first plurality of magnets may be mounted upon a surface of a post. The surface of the disc or the post may comprise a surface facing away from the shaft.
The second magnetic element may comprise a rotor. The rotor may comprise the camshaft.
The second magnetic element may comprise a second plurality of magnets. The magnets may be circumferentially spaced about a surface of a disc or a channel. Alternatively, at least one of the second plurality of magnets may be mounted upon a surface of a post.
Either, or both, of the first and second plurality of magnets may comprise a multiple of the number of cylinders comprising the engine.
The use of magnets in multiples of the number of cylinders aids balance within the rotating system of thereby aiding smooth rotation of the camshaft.
BRIEF DESCRIPTION OF THE DRAWINGS
Embodiments of the present invention will now be described, by way of example only, with reference to the accompanying drawings in which:
Figure 1 is a partial sectional view of a camshaft-cylinder head arrangement of a four cylinder four stroke engine comprising an embodiment of a magnetic torque oscillation controller according to an aspect of the present invention;
Figure 2 is a side elevation of the camshaft-cylinder head arrangement of Figure 1 ;
Figures 2a and 2b are schematic diagrams detailing the effect upon resultant magnetic fields of the alignment of the stator and rotor magnets of an embodiment of a magnetic torque oscillation controller according to an aspect of the present invention, and of the offsetting said stator and rotor magnets by 22.5°, respectively;
Figure 3 is a graphical representation of camshaft torque oscillation reduction achieved employing an embodiment of a magnetic torque oscillation controller according to an aspect of the present invention; and Figure 4 is a graphical representation of camshaft torque oscillation enhancement achieved employing an embodiment of a magnetic torque oscillation controller according to an aspect of the present invention.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
Referring now to Figures 1 and 2, a camshaft-cylinder head arrangement 100 comprises a camshaft 102 and a cylinder head 104.
A tube 106 having a circular cross-section is mounted concentrically with the camshaft 102. An open end 108 of the tube terminated adjacent an outer face 109 of the cylinder head 104. An inner face 110 of the tube 106 has rotor magnets 112 located upon it adjacent the open end 108 of the tube 106. The rotor magnets 112 may comprise permanent magnets. Alternatively, or additionally, the rotor magnets 112 may comprise electromagnets. In the preferred embodiment shown in Figure 1 there are eight rotor magnets 112 equiangularly spaced about the circumference of the inner face 110. The use of eight magnets in this arrangement is appropriate for a four cylinder four stroke engine. The cylinder head 104 comprises an annular block 114 through which the camshaft 102 passes. An annular wall 116 projects perpendicularly away from the outer face 109 of the cylinder head 104. The annular wall 116 is concentric with the block 114 and has a smaller external radius than the internal radius of the tube 106.
An exterior surface 118 of the wall 116 has stator magnets 120 located upon it remote from the outer face 109 of the cylinder head 104. In the preferred embodiment shown in Figure 1 there are eight magnets 120 equiangularly spaced about the circumference of the exterior surface 118.
During manufacture of an engine the camshaft 102 and cylinder head 104 are set in an initial position relative to one another. This initial position determines the timing of valve operation.
At this initial position that the resultant magnetic field due to the interaction of the rotor magnets 112 and the stator magnets 120 at rest is defined.
The camshaft 102 rotates with respect to the cylinder head 104 causing relative rotation of the rotor magnets 112 with respect to the stator magnets 120. This relative rotation causes the magnetic interaction of the rotor magnets 112 and the stator magnets 120 to vary.
Figure 2a shows the effect upon resultant magnetic fields of the alignment of the cylinder head and rotor magnets 104,112 to produce minimum camshaft torque.
Figure 2b shows the effect upon resultant magnetic fields of offsetting the cylinder head and rotor magnets 104,112 by 22.5° to produce maximum camshaft torque.
The resultant sinusoidal variation in the magnetic forces exerted between the rotor magnets 112 and the stator magnets 120 either oppose or enhance the torque oscillations experienced by the camshaft 102. This is dependent upon the arrangement of the magnets relative to each other. In most cases it is desired to reduce camshaft torque oscillations. Referring now to Figure 3, total camshaft torque 302 is due to variable friction and torque oscillations. A magnetic torque 304 is in antiphase with the total camshaft torque oscillations 302. This results in a constant resultant torque 306 acting on the camshaft 102 of less that 5Nm, typically about 0.5Nm - 2Nm at 9O0C oil temperature.
Referring now to Figure 4, total camshaft torque 402 is due to variable friction and torque oscillations. A magnetic torque 404 of approximately the same magnitude as the camshaft torque oscillations is in phase with the camshaft torque oscillations 402. This results in a large resultant torque oscillations 406 acting on the camshaft 102 having a peak height of approximately 30Nm. Such an arrangement may be useful where cam actuated torque phasers are used, as the increase in the magnitude the torque oscillation allows rapid phasing.
It will be appreciated that although described with reference to an engine comprising four cylinders the present invention is equally applicable to an engine having any number of cylinders. The number of magnets provided will vary dependent upon the number of cylinders. The number of magnetic pole pairs required varies with the number of cylinders within the engine. For example an engine comprising six cylinders will require six North-South magnetic pole pairs giving a total of twelve magnets on each of the rotor and stator.
It will be further appreciate that although described with reference to the application of a radial magnetic torque the present invention is equally applicable to the application of an axial magnetic torque.

Claims

CLAIMS:
1. A magnetic torque oscillation controller for a camshaft (102) comprising first and second magnetic elements (120, 112) , the first and second magnetic elements (120, 112) being positionable relative to the other of the first and second magnetic elements (120, 112) , wherein the relative positions of the first and second magnetic elements (120, 112)are arranged to either increase or decrease a torque oscillation of the camshaft (102).
2. A controller according to claim 1 first magnetic element (120) is located internally of the second magnetic element (112).
3. A controller according to either claim 1 , or claim 2, wherein first magnetic element (120) comprises a stator.
4. A controller according to claim 3 the stator (120) comprises a cylinder head (104).
5. A controller according to any preceding claim wherein the first magnetic element (120) comprises a first plurality of magnets.
6. A controller according to claim 5 wherein the first plurality of magnets are circumferentially spaced about a surface of an annular disc (104).
7. A controller according to claim 6 wherein the first plurality of magnets are equiangularly spaced about the circumference of the disc (104).
8. A controller according to claim 5 wherein at least one of the first plurality of magnets is mounted upon a surface (118) of a post or a wall (116).
9. A controller according to any one of claims 6 to 8 wherein the surface (118) of the disc (104), the post, or the wall (116), comprises a surface facing away from the camshaft (102).
10. A controller according to any preceding claim wherein the second magnetic element (112) comprises a rotor.
11. A controller according to claim 10 wherein the rotor comprises the camshaft (102).
12. A controller according to any preceding claim wherein the second magnetic element comprises a second plurality of magnets.
13. A controller according to claim 12 wherein the second plurality of magnets are circumferentially spaced about a surface of a disc or a channel.
14. A controller according to claim 12 wherein at least one of the second plurality of magnets is mounted upon a surface of a post.
15. A controller according to any one of claims 5 to 14 wherein either, or both, of the first and second plurality of magnets comprises a multiple of four magnets.
PCT/EP2007/062828 2006-12-01 2007-11-26 Torque oscillation controller Ceased WO2008065086A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
EP06256170.9 2006-12-01
EP06256170A EP1927733B1 (en) 2006-12-01 2006-12-01 Torque Oscillation Controller

Publications (1)

Publication Number Publication Date
WO2008065086A1 true WO2008065086A1 (en) 2008-06-05

Family

ID=38035012

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/EP2007/062828 Ceased WO2008065086A1 (en) 2006-12-01 2007-11-26 Torque oscillation controller

Country Status (3)

Country Link
EP (1) EP1927733B1 (en)
AT (1) ATE524640T1 (en)
WO (1) WO2008065086A1 (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9587525B2 (en) 2014-10-21 2017-03-07 Ford Global Technologies, Llc Method and system for variable cam timing device
US9611764B2 (en) 2014-10-21 2017-04-04 Ford Global Technologies, Llc Method and system for variable cam timing device

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2180151B1 (en) * 2008-10-24 2013-02-27 Delphi Technologies, Inc. Valve gear assembly for an internal combustion engine

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB1256133A (en) * 1969-06-30 1971-12-08 British Aircraft Corp Ltd Improvements relating to eddy current damping devices
US20050076867A1 (en) * 2003-10-09 2005-04-14 Denso Corporation Valve controller
DE102004037261A1 (en) * 2004-07-31 2006-03-23 Ina-Schaeffler Kg Electric machine at the camshaft of an IC motor, driven by a belt/chain from the camshaft, has a rotor of two rings keyed to the camshaft flanked by stator coils at a holder at the outer ring

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB1256133A (en) * 1969-06-30 1971-12-08 British Aircraft Corp Ltd Improvements relating to eddy current damping devices
US20050076867A1 (en) * 2003-10-09 2005-04-14 Denso Corporation Valve controller
DE102004037261A1 (en) * 2004-07-31 2006-03-23 Ina-Schaeffler Kg Electric machine at the camshaft of an IC motor, driven by a belt/chain from the camshaft, has a rotor of two rings keyed to the camshaft flanked by stator coils at a holder at the outer ring

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US9587525B2 (en) 2014-10-21 2017-03-07 Ford Global Technologies, Llc Method and system for variable cam timing device
US9611764B2 (en) 2014-10-21 2017-04-04 Ford Global Technologies, Llc Method and system for variable cam timing device
US10174642B2 (en) 2014-10-21 2019-01-08 Ford Global Technologies, Llc Method and system for variable cam timing device
US10337361B2 (en) 2014-10-21 2019-07-02 Ford Global Technologies, Llc Method and system for variable cam timing device

Also Published As

Publication number Publication date
EP1927733B1 (en) 2011-09-14
ATE524640T1 (en) 2011-09-15
EP1927733A1 (en) 2008-06-04

Similar Documents

Publication Publication Date Title
US5417186A (en) Dual-acting apparatus for variable valve timing and the like
JP4873194B2 (en) Engine with variable valve system
EP2067961B1 (en) Coupling device
US8371257B2 (en) Engine with dual cam phaser for concentric camshaft
CN102439265B (en) Phaser assembly for an internal combustion engine
US20080047511A1 (en) Harmonic drive camshaft phaser
US7523728B2 (en) Phaser for controlling the timing between a camshaft and a timing gear
JP2011163274A (en) Engine with variable valve device
WO1992001144A1 (en) Variable valve timing
EP1914396A2 (en) Camshaft phaser having a differential bevel gear system
CN1965150A (en) Multi-cylinder internal combustion engine valve driving device
US20150176442A1 (en) Camshaft-in-camshaft apparatus of variable valve duration system
CN1977091B (en) Engine with variable valve timing
US7540266B2 (en) Rotary-to-linear actuator, linear motion shaft mechanism, variable valve actuation mechanism and variable valve engine
WO2008065086A1 (en) Torque oscillation controller
US20040144348A1 (en) Variable cam timing (vct) system having modifications to increase cam torsionals for engines having limited inherent torsionals
JP2006105062A (en) Valve operation control device for engine
KR101518951B1 (en) Variable valve timing camshaft
US11008937B2 (en) Crank and connecting rod mechanism which can realize miller cycle and its control method
US10954829B2 (en) Oldham flexplate for concentric camshafts controlled by variable camshaft timing
US8707919B2 (en) Camshaft adjuster arrangement and camshaft adjuster
RU2709540C2 (en) Device for reduction of torsion load on cam shaft
US20120199085A1 (en) Camshaft arrangement
JP2003322034A (en) Internal-combustion engine
US11268412B2 (en) Camshaft phaser

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 07822865

Country of ref document: EP

Kind code of ref document: A1

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 07822865

Country of ref document: EP

Kind code of ref document: A1