This invention relates generally to an actuation subsystem of variable compression ratio control system for internal combustion engines, and more particularly to such a system that uses mechanical actuators.
It is generally believed that the engine equipped with a variable compression ratio (VCR) control system should work best if operated with a lower compression ratio under higher load conditions, and with a higher compression ratio under relatively lower load conditions. The higher load conditions occur, for example, at the start from a stopped state, during climbing on a hill and during an overtaking maneuver, and the relatively lower load conditions occur, for example, during cruising on a highway.
The VCR control system should be able to respond quickly enough to cope with any changes in load conditions that occur during a trip. The quick response of the VCR control system is necessary not only to assure smooth operation of the vehicle during the change in compression ratio takes place but also to protect the engine. For example, in a four-cylinder engine, the response and execution time of the VCR control system will have to be as short as that spent in one half rotation of the driveshaft to prevent knocking in the next combustion phase in the same cylinder.
It is probably true that the super-fast responding VCR control system such as described above should generally be able to operate the engine with a higher compression ratio than the compression ratio in a slow-responding VCR control system because the potential damage from operating the engine with a higher-than-ordinary compression ratio is much smaller than operating the engine with a slow responding VCR system, and/or that the VCR control system does not have to keep changing the compression ratio continuously as long as the compression ratio is kept in a permissible range and the system is ready to respond to any sudden large changes in all load conditions.
Our review of reports available in the public domain suggests that, in general, the hydraulic actuator tends to have a leak problem when operated under high pressure, and the mechanical actuator powered by the electric motor tends to have a longer response and execution time than desired.
An object of this invention is the provision of a VCR actuation subsystem that is able to change the compression ratio on a real time basis without an unwanted time lag.
An object of this invention is the provision of a VCR actuation subsystem that is able to reduce the compression ratio fast enough not to require advancing the ignition timing when knock is detected.
An object of this invention is the provision of a VCR actuation subsystem that does not keep changing the compression ratio continuously, but changes the compression ratio as the necessity of doing so occurs: the VCR control system continuously keeps measuring the load conditions and the compression ratio, and changes the compression ratio when the difference between the desired compression ratio (due to the measured current load conditions) and the current compression ratio becomes greater than a preset value.
An object of this invention is the provision of a VCR actuation subsystem that is able to maximize the compression ratio under all load conditions by changing the compression ratio continuously.
An object of this invention is the provision of a VCR actuation subsystem that is sturdy enough to endure long time continuous use of the VCR control system.
An actuation subsystem of a variable compression ratio control system includes a drive means, a connecting means, and an actuator means. The drive means of the preferred embodiment of this invention includes a pair of generally identical clutch assemblies. The clutch assembly includes a clutch driver plate assembly and a clutch driven plate assembly. The clutch driver plate assemblies are rigidly mounted on the power shaft of an engine and the clutch driven plate assemblies are rotatably and longitudinally slidably mounted on the power shaft in such a manner that the clutch driven plate assemblies are placed next to each other, wherein the power shaft may be a driveshaft or a crankshaft.
The clutch driver plate assembly includes a solenoid and a driver plate. The clutch driven plate assembly includes a cylindrical core, a clutch driven plate, a back plate, a spring, and a pulley tire longitudinally slidably mounted on the core's outer cylindrical wall. The spring holds the clutch driven plate away from the paired clutch driver plate assembly and pushes the clutch driven plate assembly toward the other clutch driven plate assembly, causing their back plates pressed against each other to prevent the drive gear shaft described blow from rotating in either direction when the clutch assemblies are not activated. The connecting means includes an idler shaft, a drive gear shaft, a pulley mounted on the idler shaft, a pulley mounted on the drive gear shaft, a spur gear set mounted on the idler shaft and the drive gear shaft. The first clutch driven plate assembly and the pulley on the idler shaft are rotatably connected by a belt, and second clutch driven plate assembly and the pulley on the drive gear shaft are rotatably connected by a belt.
The actuator means of the preferred embodiment of the present invention is a plurality of jackscrew assemblies. The jackscrew assembly includes a jackscrew comprising a worm gear mounted on the drive gear shaft, a thimble with a worm gear, a spindle and a base plate, an upper plate, and a hexahedron-shaped arm holder with a hexahedron-shaped opening. The top end of the spindle is affixed to the bottom of the arm holder. The arm holder is pivotally and laterally slidably connected to an arm member (or a control lever) of the VCR control system.
The above description and other objects and advantages of this invention will become more clearly understood from the following description when considered with the accompanying drawings. It should be understood that the drawings are for purposes of illustration only and not by way of limitation of the invention. In the drawings, like reference characters refer to the same parts in the several views:
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The hexahedron-shaped arm holder 43 has front and rear walls, top and bottom walls, and a hollow hexahedron-shaped inner space with open-ended two sides. The hollow inner space of the arm holder 43 slidably receives the arm member (or a control lever) 14 used in lifting up/down the crankshaft in such a manner that the front and rear walls of the arm holder 43 generally slidably covers the square window 51 of the arm member, and holds the arm member 14 inside the hexahedron-shaped inner space 53. The arm holder 43 is pivotally connected to a hexahedron-shaped metal piece 55 by a pin 41 wherein the hexahedron metal piece 55 is slidably received by a square window 51 of the arm member 14.
Under the normal condition, neither of the clutch assemblies is activated. In operation, only one of the clutch assemblies is activated at a time. When the first clutch assembly is activated, the arm member 14 is lifted/lowered (or pushed/pulled) in one direction, and when the second clutch assembly is activated the arm member 14 is lifted/lowered (or pushed/pulled) in the other direction.
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The drive means 20D of an alternative embodiment shown in
The drive means 20E of another alternative embodiment shown in
Another alternative embodiment of the drive means 20G includes generally identical drive means to that of the embodiment 20D except that the pair of the clutch assemblies are mounted on the drive gear shaft 42G.
Another alternative embodiment of the drive means 20H includes generally identical drive means 20E except that the pair of the clutch driver plate assemblies and the clutch driven plate assembly are mounted on the drive gear shaft 42H.
The invention having been described in detail in accordance with the requirements of the U.S. Patent Statutes, various other changes and modifications will suggest themselves to those skilled in this art. For example, the pulleys and belts may be replaced by gears, or the pulley ratios may be different from that described above, or the brake mounted on the drive gear shaft in some of the alternative embodiment may not be necessary. It is intended that the above and other such changes and modifications shall fall within the spirit and scope of the invention defined in the appended claims.
Number | Name | Date | Kind |
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5031715 | Ogawa et al. | Jul 1991 | A |
6202623 | Ehrlich | Mar 2001 | B1 |
6247430 | Yapici | Jun 2001 | B1 |
6588384 | Yapici | Jul 2003 | B2 |
7007640 | Sakita | Mar 2006 | B2 |
7059280 | Nohara et al. | Jun 2006 | B2 |
7174865 | Sakita | Feb 2007 | B2 |
Number | Date | Country | |
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20090145715 A1 | Jun 2009 | US |