Referring to the drawings, wherein like reference numbers correspond to like or similar components throughout the several figures, there is shown in
The internal combustion engine 10 includes an engine block 12 having a first cylinder head 14 and a second cylinder head 16 mounted thereto. An accessory drive system 18 is mounted with respect to the internal combustion engine 10 ahead of a plane, indicated by broken line P (the plane being perpendicular to the page), which is delineated by the engine block 12 and the first and second cylinder heads 14 and 16, respectively. Therefore, the engine block 12 and the first and second cylinder heads 14 and 16 are disposed generally behind plane P, while the accessory drive system 18 is disposed substantially in front of plane P. The orientation of the plane P within the vehicle, not shown, will vary depending on the orientation of the internal combustion engine 10. For a longitudinal orientation of the internal combustion engine 10, the plane P will face toward the front of the vehicle. Alternately, for a transverse orientation of the internal combustion engine 10, the plane P will face toward either the driver's side or passenger's side of the vehicle.
The accessory drive system 18 includes an alternator 20, water pump 22, and a high-pressure fuel pump assembly 24 all of which are driven by a serpentine drive belt 25. The serpentine drive belt 25 transmits torque from the crankshaft, not shown, of the internal combustion engine 10 to the alternator 20, water pump 22, and high-pressure fuel pump assembly 24. Those skilled in the art will recognize that the accessory drive system 18 may include additional components, such as a power steering pump, air conditioning compressor, etc. while remaining within the scope of that which is claimed. Since the high-pressure fuel pump assembly 24 is not driven directly by the engine's camshaft, not shown, or cam drive, not shown, as in conventional fuel pump drives, the high-pressure fuel pump assembly 24 can be characterized as remotely mounted.
The high-pressure fuel pump assembly 24 includes a high-pressure fuel pump 26 mounted with respect to a pump camshaft housing 28. The high-pressure fuel pump assembly 24 further includes a pulley 30 operable to transfer driving torque from the serpentine drive belt 25 to a drive shaft 32, shown as a broken line. The drive shaft 32 is configured to drive the high-pressure fuel pump 26 in a manner to be described hereinbelow with reference to
A bearing support bracket 34 and the pump camshaft housing 28 cooperate to mount the high-pressure fuel pump assembly 24 with respect to the internal combustion engine 10. The high-pressure fuel pump 26 is preferably mounted behind the plane P, thereby reducing the likelihood of damage caused to the high-pressure fuel pump 26 in the event of a vehicle accident or impact. A high-pressure oil feed 36 may be provided should the high-pressure fuel pump assembly 24 require an external lubrication source. The oil may drain from the high pressure fuel pump 26 to an area beneath a rocker cover 40. Alternately, an oil return passage 38 may be provided in a rocker cover 40 to enable drain back of lubricant from the high-pressure fuel pump assembly 24.
Referring now to
The coupling member 50 is sufficiently configured to engage the drive shaft 32 for unitary rotation therewith. The coupling member 50 preferably engages a first end 52 of the drive shaft 32 via a splined engagement, hex engagement or any other engagement mechanism known in the art to allow the axial movement between the coupling member 50 and the drive shaft 32, while allowing the transfer of torque therebetween. A second end 54 of the drive shaft 32 is sufficiently configured to engage a camshaft 56 for unitary rotation therewith. The second end 54 of the drive shaft 32 preferably engages the camshaft 56 via a splined engagement, hex engagement or any other engagement mechanism known in the art to allow the axial movement between the drive shaft 32 and the camshaft 56, while allowing the transfer of torque therebetween. The camshaft 56 is rotatably supported within the pump camshaft housing 28 and includes an eccentric cam 58 operable to selectively bias a piston 60 to effect operation of the high-pressure fuel pump 26 with the rotation of the camshaft 56.
A seal support 62 is mounted to the pump camshaft housing 28 and is configured to retain a seal member 64 in relation to the camshaft 56 to reduce the likelihood external leakage of lubricant from within the pump camshaft housing 28. Additionally, the seal member 64 may prevent the intrusion of foreign matter into the pump camshaft housing 28, thereby increasing the reliability of the high-pressure fuel pump assembly 24. A sleeve 66 extends between the seal support 62 and the bearing support bracket 34 and is sealed by seal members 68 and 70, respectively. The sleeve 66 is operable to prevent infiltration of foreign matter, such as dirt, water, grease, etc. within the high-pressure fuel pump assembly 24.
A target wheel 72 is mounted with respect to the camshaft 56, while a sensor 74 is mounted with respect to the pump camshaft housing 28. The sensor 74 and the target wheel 72 cooperate to provide camshaft position information for pump synchronization purposes. The sensor may be any type known in the art, such as a Hall Effect sensor, while remaining within the scope of that which is claimed.
The camshaft 56 is preferably formed with a hollow center having an internal diameter of D1, while the drive shaft 32 is formed having an external diameter of D2. Preferably, the diameter D1 is greater than the diameter D2. A shaft retainer 76 is provided within the camshaft 56 and operates to maintain the relative axial position between the drive shaft 32 and the camshaft 56. Should an axial force of sufficient magnitude be applied to the pulley 30 and the flanged shaft 42, such as in a vehicle impact situation, the driveshaft 32 will cause the shaft retainer 76 to shear thereby allowing the translation of the drive shaft 32 within the camshaft 56. This relative translational or axial movement between the drive shaft 32 and the camshaft 56 allows a predetermined amount of deflection to occur within the high-pressure fuel pump assembly 24 while allowing the high-pressure fuel pump 26 to remain substantially undamaged. The sleeve 66 includes a plurality of pleats 78, which allow the sleeve 66 to collapse or buckle as the drive shaft 32 telescopes within the camshaft 56.
Referring now to
Referring now to
The telescoping nature of the drive shafts 32 and 32A and the bucking nature of the drive shaft 32B in conjunction with the positioning of the high-pressure fuel pumps 26 and 26A behind the plane P (i.e. toward the top of the drawing as viewed in
While the best modes for carrying out the invention have been described in detail, those familiar with the art to which this invention relates will recognize various alternative designs and embodiments for practicing the invention within the scope of the appended claims.
This application claims the benefit of U.S. Provisional Application No. 60/824,961, filed Sep. 8, 2006, which is hereby incorporated by reference in its entirety.
| Number | Date | Country | |
|---|---|---|---|
| 60824961 | Sep 2006 | US |