This invention relates to a variable timing camshaft drive for an internal combustion engine and, more particularly, to a variable camshaft drive having a remote mounted compound cam phaser driven by a crankshaft and operable to vary the phase angle of multiple camshafts relative to the crankshaft.
Internal combustion engines commonly employ rotatable camshafts, driven by an engine crankshaft, to operate engine intake and exhaust valves of the engine. These camshafts may operate with fixed timing relative to the crankshaft or may be operated with a phasing device capable of altering the phase angle of the camshafts relative to the crankshaft.
Such phasing devices are commonly attached coaxially at an end of an associated camshaft to phase the associated camshaft or a pair of camshafts on a single cylinder bank. However, adding a cam phaser to a camshaft increases its length and may require cylinder head modifications to accommodate the lengthened camshaft. In addition, engines having multiple cylinder banks, require multiple cam phasers, one phaser for each bank, which increases engine cost and complexity.
The present invention provides a variable timing camshaft drive assembly for an internal combustion engine utilizing a single remote cam phaser rotatable on a fixed mounting member and capable of operating multiple camshafts carried on multiple banks of an engine.
The drive includes an engine crankshaft having a drive sprocket disposed at one end of the crankshaft. The drive sprocket engages a timing chain engaging an input sprocket of a remotely mounted compound cam phaser. The input sprocket of the cam phaser drives an output sprocket, which drives a second chain, engaging at least one driven sprocket disposed at a front end of an overhead camshaft. If desired, the second chain may be adapted to engage multiple driven sprockets of multiple camshafts on multiple cylinder banks of the engine.
The cam phaser is carried by a hub extending from a fixed mounting member adapted for attachment to an engine block. The mounting member allows the cam phaser to be remotely mounted on various locations of an engine block to provide mounting versatility for various engine sizes and configurations.
During operation, the phasing device operates to selectively alter the phase angle between the input sprocket and the output sprocket to vary the phase angle of the camshafts relative to the crankshaft.
These and other features and advantages of the invention will be more fully understood from the following description of certain specific embodiments of the invention taken together with the accompanying drawings.
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When assembled, the radially extending vanes 54 of the rotor 53 subdivide the chambers 58 of the output sprocket 46 to form advance and retard chambers 62, 64. If desired, each vane 54 may be provided with a longitudinal seal 57 to improve the hydraulic separation between the chambers. Advance and retard oil passages 65, 66 are provided through the mounting member 44, the hub 42 the flange 52 and the rotor 53 to deliver pressurized oil to opposite sides of each vane in each chamber 62, 64. If desired, seals or covers may be provided between the input and output sprockets, as needed, to prevent the leakage of pressurized oil from the oil passages 65, 66 and the chambers 62, 64.
In addition, the cam phaser 40 may be installed with a biasing device such as a spring 67 operable to return the input and output sprockets 46, 48 to a predetermined relationship when the engine is shut down.
When assembled, the vanes 74 of the rotor 70 subdivide the chambers 58 of the output sprocket 46 to form advance and retard chambers 62, 64. Oil passages 65, 66 are provided through the mounting member 44, the hub 42 the flange 52 and the rotor 53 to deliver pressurized oil to opposite sides of each vane in each chamber 62, 64. If desired, seals or covers may be provided between the input and output sprockets, as needed, to prevent the leakage of pressurized oil from the oil passages 65, 66 and the chambers 62, 64.
The drive sprocket 38 of the crankshaft 34 engages and drives the input sprocket 46 of the cam phaser 40 via a first timing chain 76. As the input sprocket 46 is rotated, the motion of the input sprocket is transferred through the cam phaser 40 to the output sprocket 48, which in turn drives a second timing chain 78 that engages and drives the driven sprockets 30, 32 of the camshafts 22, 24. The chains 54, 56 may be conventional silent type chains, roller chains, or a belts made of fiber reinforced electrometric materials or other types of generally inextensible drive elements known to those skilled in the art.
In operation, the crankshaft 34 rotates within the block 12. The rotation of the crankshaft 34 drives the first chain 54 which rotates the input sprocket 46 of the cam phaser 40. The rotation of the input sprocket 46 drives the output sprocket 48 in a desired phase relationship. As the output sprocket 48 rotates it drives the second chain 56 which rotates the driven sprockets 30, 32 and the camshafts 22, 24 within the heads 18, 20.
Sensors, not shown, monitor the angular relationship between the camshafts 22, 24 and the crankshaft 34 and relay the angular relationship to an engine control module (ECM), not shown. The ECM determines, moment by moment, the optimal crank/cam phase relationship. As the optimal crank/cam phase relationship is calculated, the ECM sends a signal to an oil control solenoid, not shown, which directs pressurized oil through the oil passages 65, 66 to the chambers 58 of the cam phaser 40.
As needed, variable oil pressure is selectively delivered into the advance and retard chambers 62, 64 of the cam phasing device 40, to alter the phase angle between the input sprocket and the output sprockets 46, 48. As the pressurized oil is delivered to the advance chamber 62, the oil urges the vanes 54 into the retard chambers 64. This causes the phase angle between the input and output sprockets 46, 48 to increase and thereby advance the camshafts 22, 24 relative to the crankshaft 34. When oil is directed to the retard chambers 64, the phase angle between the input and output sprockets 46, 48 decreases, thereby retarding the phase angle between the camshafts 22, 24 relative to the crankshaft 34. When the engine is stopped, oil pressure supplied to the chambers 58 is reduced allowing the spring 67 to return the cam phaser 40 to a predetermined phase relationship for restarting the engine.
In operation, the cam phaser 68 operates similarly to cam phaser 40 of
The above-described embodiments are directed to a V-type engine. However, it should be understood that the cam phasers 40, 68 may be applied to other engine configurations such as an inline engine having one cylinder bank.
While the invention has been described by reference to certain preferred embodiments, it should be understood that numerous changes could be made within the spirit and scope of the inventive concepts described. Accordingly, it is intended that the invention not be limited to the disclosed embodiments, but that it have the full scope permitted by the language of the following claims.
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3619577 | Dec 1987 | DE |
Number | Date | Country | |
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20060032469 A1 | Feb 2006 | US |