Claims
- 1. A variable cam timing system for an internal combustion engine having a crankshaft, at least one camshaft, a cam drive connected to the crankshaft, and a variable cam phaser having an inner portion mounted to at least one camshaft and a concentric outer portion connected to the cam drive, the relative angular positions of the inner portion and the outer portion being controllable in response to a fluid control input, such that the relative phase of the crankshaft and at least one camshaft can be shifted by varying the fluid at the fluid control input of the variable cam phaser, the variable cam timing system comprising:
a) a spool valve (192) comprising a spool slidably mounted in a bore at an axis at a center of the inner portion of the variable cam phaser, the bore having a plurality of passages coupled to the fluid control input of the variable cam phaser, such that axial movement of the spool in the bore controls fluid flow at the fluid control input of the variable cam phaser; b) a vacuum actuator (301) comprising a diaphragm (301a), an actuator rod (301b) coupled to the diaphragm and the spool, and a vacuum input such that a vacuum level at the vacuum input causes movement of the actuator rod, causing the spool to move axially in the bore; and c) a vacuum control valve (300) connected to the vacuum input of the actuator such that the vacuum control valve (300) modulates an amount of vacuum pressure applied to the vacuum actuator.
- 2. The variable cam timing system of claim 1, further comprising:
d) VCT phase measurement sensors (20)(21) coupled to the crankshaft and the at least one camshaft controlled by the variable cam timing system; and e) a VCT control circuit comprising:
a cam phase input coupled to the VCT phase measurement sensors; a phase set point input for accepting a signal representing a desired relative phase of the camshaft and crankshaft; a combiner (8) comprising a first input coupled to a null duty cycle signal (9), a second input coupled to an output of a phase comparator; and an output; a current driver (10) having an input coupled to the output of the combiner, and an output; a solenoid drive input coupled to the combiner output; a solenoid drive output coupled to the electrical input of the vacuum control valve; a signal processing circuit accepting signals from the phase set point input, cam phase input, and solenoid drive input and outputting to the solenoid drive output such that when a phase set point signal is applied at the phase set point input, the control circuit provides the vacuum input to cause the vacuum actuator to move the spool to control the variable cam phaser to shift the phase of the camshaft as selected by the phase set point signal.
- 3. The variable cam timing system of claim 1, further comprising a position sensor (304) coupled to the actuator rod (301b), having a position signal output representing the physical position of the actuator rod (301b).
- 4. The variable timing system of claim 3, further comprising:
d) VCT phase measurement sensors (20)(21) coupled to the crankshaft and the at least one camshaft controlled by the variable cam timing system; and e) a VCT control circuit comprising:
a cam phase input coupled to the VCT phase measurement sensors; a phase set point input for accepting a signal representing a desired relative phase of the camshaft and crankshaft; a vacuum actuator position input coupled to the position signal output; and a solenoid drive output coupled to the electrical input of a vacuum control valve; a signal processing circuit accepting signals from the phase set point input, cam phase input, and vacuum actuator position input and outputting to the solenoid drive output such that when a phase set point signal is applied at the phase set point input, the the control circuit provides the vacuum input to cause the vacuum actuator to move the spool to control the variable cam phaser to shift the phase of the camshaft as selected by the phase set point signal.
- 5. The variable cam timing system of claim 4, in which the signal processing circuit comprises:
an outer loop for controlling the phase angle, coupled to the set point input, cam phase input, and solenoid drive output; and an inner loop for controlling the spool valve position, coupled to the vacuum actuator position input and to the inner loop; such that the solenoid drive output as set by the outer loop is modified by the inner loop based on the vacuum actuator position.
- 6. The variable cam timing system of claim 5, in which:
a) the outer loop comprises:
i) an anti-windup loop comprising:
A) a first PI controller (5) having a first input coupled to the set point input; a second input coupled to the cam phase input; a third input and an output; B) a phase compensator (6) having an input coupled to the output of the first PI controller and a first output and a second output; and C) anti-windup logic (7) having an input coupled to the second output of the phase compensator and an output coupled to the third input of the PI controller; ii) a combiner (402) having a first input coupled to a null position offset signal (410), a second input coupled to the output of the phase comparator, a third input, and an output; iii) a second PI controller (401) having an input coupled to the output of the combiner and an output; and iv) a current driver (403) having an input coupled to the output of the second PI controller and an output coupled to the solenoid drive output; and b) the inner loop comprises coupling the vacuum actuator position input to the third input of the combiner.
- 7. The variable cam timing system of claim 6, further comprising a dither signal (11) coupled to the solenoid drive output.
- 8. The variable cam timing system of claim 3, wherein the position sensor is selected from the group consisting of a linear potentiometer, a hall effect sensor, and a tape end sensor.
- 9. The variable cam timing system of claim 3, wherein a coupling between the actuator rod and the position sensor is selected from the group consisting of a physical coupling, an optical coupling, a magnetic coupling, and a capacitive coupling.
- 10. An internal combustion engine, comprising:
a) a crankshaft; b) at least one camshaft (126); c) a cam drive connected to the crankshaft; d) a variable cam phaser having an inner portion mounted to at least one camshaft and a concentric outer portion connected to the cam drive, the relative angular positions of the inner portion and the outer portion being controllable in response to a fluid control input, such that the relative phase of the crankshaft and at least one camshaft can be shifted by varying the fluid at the fluid control input of the variable cam phaser; and e) a variable cam timing system comprising:
i) a spool valve (192) comprising a spool slidably mounted in a bore at an axis at a center of the inner portion of the variable cam phaser, the bore having a plurality of passages coupled to the fluid control input of the variable cam phaser, such that axial movement of the spool in the bore controls fluid flow at the fluid control input of the variable cam phaser; ii) a vacuum actuator (301) comprising a diaphragm (301a), an actuator rod (301b) coupled to the diaphragm and the spool, and a vacuum input such that a vacuum level at the vacuum input causes movement of the actuator rod, causing the spool to move axially in the bore; and iii) a vacuum control valve (300) connected to the vacuum input of the actuator such that the vacuum control valve (300) modulates an amount of vacuum pressure applied to the vacuum actuator.
- 11. The engine of claim 10, wherein the variable cam timing system further comprises:
iv) VCT phase measurement sensors (20)(21) coupled to the crankshaft and the at least one camshaft controlled by the variable cam timing system; and v) a VCT control circuit comprising:
a cam phase input coupled to the VCT phase measurement sensors; a phase set point input for accepting a signal representing a desired relative phase of the camshaft and crankshaft; a combiner (8) comprising a first input coupled to a null duty cycle signal (9), a second input coupled to an output of a phase comparator; and an output; a current driver (10) having an input coupled to the output of the combiner, and an output; a solenoid drive input coupled to the combiner output; a solenoid drive output coupled to the electrical input of the vacuum control valve; a signal processing circuit accepting signals from the phase set point input, cam phase input, and solenoid drive input and outputting to the solenoid drive output such that when a phase set point signal is applied at the phase set point input, the control circuit provides the vacuum input to cause the vacuum actuator to move the spool to control the variable cam phaser to shift the phase of the camshaft as selected by the phase set point signal.
- 12. The engine of claim 10, further comprising a position sensor (304) coupled to the actuator rod (301b), having a position signal output representing the physical position of the actuator rod (301b).
- 13. The engine of claim 12, wherein the variable cam timing system further comprises:
iv) VCT phase measurement sensors (20)(21) coupled to the crankshaft and the at least one camshaft controlled by the variable cam timing system; and v) a VCT control circuit comprising:
a cam phase input coupled to the VCT phase measurement sensors; a phase set point input for accepting a signal representing a desired relative phase of the camshaft and crankshaft; a vacuum actuator position input coupled to the position signal output; and a solenoid drive output coupled to the electrical input of a vacuum control valve; a signal processing circuit accepting signals from the phase set point input, cam phase input, and vacuum actuator position input and outputting to the solenoid drive output such that when a phase set point signal is applied at the phase set point input, the control circuit provides the vacuum input to cause the vacuum actuator to move the spool to control the variable cam phaser to shift the phase of the camshaft as selected by the phase set point signal.
- 14. The engine of claim 13, in which the signal processing circuit comprises:
an outer loop for controlling the phase angle, coupled to the set point input, cam phase input, and solenoid drive output; and an inner loop for controlling the spool valve position, coupled to the vacuum actuator position input and to the inner loop; such that the solenoid drive output as set by the outer loop is modified by the inner loop based on the vacuum actuator position.
- 15. The engine of claim 14, in which:
a) the outer loop comprises:
i) an anti-windup loop comprising:
A) a first PI controller (5) having a first input coupled to the set point input; a second input coupled to the cam phase input; a third input and an output; B) a phase compensator (6) having an input coupled to the output of the first PI controller and a first output and a second output; and C) anti-windup logic (7) having an input coupled to the second output of the phase compensator and an output coupled to the third input of the PI controller; ii) a combiner (402) having a first input coupled to a null position offset signal (410), a second input coupled to the output of the phase comparator, a third input, and an output; iii) a second PI controller (401) having an input coupled to the output of the combiner and an output; and iv) a current driver (403) having an input coupled to the output of the second PI controller and an output coupled to the solenoid drive output; and b) the inner loop comprises coupling the vacuum actuator position input to the third input of the combiner.
- 16. The engine of claim 15, further comprising a dither signal (11) coupled to the solenoid drive output.
- 17. The engine of claim 12, wherein the position sensor is selected from the group consisting of a linear potentiometer, a hall effect sensor, and a tape end sensor.
- 18. The engine of claim 12, wherein a coupling between the actuator rod and the position sensor is selected from the group consisting of a physical coupling, an optical coupling, a magnetic coupling, and a capacitive coupling.
- 19. In an internal combustion engine having a variable camshaft timing system for varying the phase angle of a camshaft relative to a crankshaft, a method of regulating the flow of fluid from a source to a means for transmitting rotary movement from the crankshaft to a housing, comprising the steps of:
sensing the positions of the camshaft and the crankshaft; calculating a relative phase angle between the camshaft and the crankshaft, the calculating step using an engine control unit for processing information obtained from the sensing step, the engine control unit further adjusting a command signal based on a phase angle error; controlling a position of a vented spool slidably positioned within a spool valve body, the controlling step utilizing a vacuum actuator coupled to the spool to vary the position of the vented spool; supplying fluid from the source through the spool valve to a means for transmitting rotary movement to the camshaft, the spool valve selectively allowing and blocking flow of fluid through an inlet line and through return lines; and transmitting rotary movement to the camshaft in such a manner as to vary the phase angle of the camshaft with respect to the crankshaft, the rotary movement being transmitted through a housing, the housing being mounted on the camshaft, the housing further being rotatable with the camshaft and being oscillatable with respect to the camshaft.
- 20. The method of claim 19, wherein the step of controlling the position of the vented spool further utilizes a position sensor coupled to the vacuum actuator, wherein the position sensor senses a position of the spool.
- 21. The method of claim 20, wherein the position sensor is selected from the group consisting of a linear potentiometer, a hall effect sensor, and a tape end sensor.
- 22. The method according to claim 20, wherein the command signal adjusted by the engine control unit is selected from the group consisting of duty cycle and current.
REFERENCE TO RELATED APPLICATIONS
[0001] This application claims an invention which was disclosed in Provisional Application No. 60/374,600, filed Apr. 22, 2002, entitled “EXTERNALLY MOUNTED VACUUM CONTROLLED ACTUATOR WITH POSITION SENSOR CONTROL MEANS TO REDUCE FUNCTIONAL AND MAGNETIC HYSTERESIS”. The benefit under 35 USC §119(e) of the United States provisional application is hereby claimed, and the aforementioned application is hereby incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60374600 |
Apr 2002 |
US |