This invention relates generally to internal combustion engines, and relates more specifically to driving a camshaft with a crankshaft in a system that includes a balance shaft.
Internal combustion engines balance shaking forces resulting from crankshaft and connecting rod assembly rotation. The balance shaft is operable to offset rotational energy created by the rotation of the crankshaft. Both the camshaft and balance shaft are typically driven by gears, or sprockets. A crankshaft gear drives both the camshaft gear and the balance shaft gear, often using belts or chains. Unfortunately, belts or chains may break and often require tensioners. Tensioners add to the complexity, and cost, of building or repairing engines. In addition, tensioners may be remotely located and tensioner placement can result in parasitic energy losses.
Each gear rotates at a speed inversely proportional to its relative radius compared to the crankshaft gear. For example, if camshaft gear radius is twice the radius of the crankshaft gear, the camshaft will rotate at half the speed of the crankshaft gear. Similarly, balance shaft gear rotates at twice the speed of the crankshaft gear, if the radius of the balance shaft gear is half the radius of the crankshaft gear.
One aspect of the invention provides an engine drive assembly including a camshaft gear engaged with a first idler gear. The first idler gear is engaged with a crankshaft gear. The crankshaft gear is engaged with a second idler gear assembly. The second idler gear assembly is engaged with a balance shaft gear. The crankshaft gear drives the camshaft gear via the first idler gear and the crankshaft gear drives the balance shaft gear via the second idler gear assembly.
Another aspect of the invention provides an auxiliary shaft (such as a balance shaft) gear carrier drive including an auxiliary shaft housing and a camshaft gear supported by the balance shaft housing. The auxiliary shaft gear carrier drive further includes a first idler gear engaged with the camshaft gear and a crankshaft gear engaged with the first idler gear, the crankshaft gear supported by the auxiliary shaft housing. The second idler gear assembly is engaged with the crankshaft gear. The balance shaft gear carrier drive further includes a auxiliary shaft gear engaged with the second idler gear, the auxiliary shaft gear supported by the auxiliary shaft housing. The crankshaft gear drives the camshaft gear via the first idler gear and the crankshaft gear drives the auxiliary shaft gear via the second idler gear assembly.
Yet another aspect of the invention provides an auxiliary shaft gear carrier system. The system includes means for rotating a camshaft in a camshaft direction using idler gear means; and means to rotate a auxiliary shaft in a direction opposite the camshaft direction using idler gear means. The means for rotating the camshaft and auxiliary shaft includes a crankshaft.
These and other features and advantages of the invention will become further apparent from the following detailed description of the presently preferred embodiments, read in conjunction with the accompanying drawings. The detailed description and drawings are merely illustrative of the invention rather than limiting, the scope of the invention being defined by the appended claims and equivalents thereof.
Engine drive assembly 100 includes axial shaft 3 pressed and roll formed into balance shaft housing 4. Axial shaft 3 supports first idler gear 2. Axial shaft 5 supports needle bearing compliment 6. First idler gear 2 is engaged with crankshaft gear 7. In one embodiment, first idler gear 2 is in direct physical engagement with crankshaft gear 7, such that the gear teeth of first idler gear 2 intermesh with the gear teeth of crankshaft gear 7. Distance A, between crankshaft gear centerline 9 and camshaft gear centerline 8 accommodates first idler gear 2. In one embodiment, the radius of first idler gear 2 is substantially the same as the radius of crankshaft gear 7. In one embodiment, the radius of first idler gear 2 is substantially one half the radius of camshaft gear 1.
In the embodiment, illustrated in
First and second idler gears 2, 10 are loaded into carrier segment 13 of balance shaft housing 4 in direction of arrow B and arrow C, respectively. Axial shaft 5 is loaded into carrier segment 13 in direction of arrow D to retain first and second idler gears 2, 10. Balance shaft housing 4 is mounted to an engine (not shown) in direction of arrow D.
Crankshaft gear 7 engages first idler gear 2 at 15 driving camshaft gear 1 at 14. Crankshaft gear 7 engages second idler gear 10 at 16 driving balance shaft gear 11 at 21. Balance shaft housing 4 is piloted on dowels 17 pressed into modified bearing cap 18. Fasteners 19 and 20 mount balance shaft housing 4 to the engine.
Balance shaft housing 4 includes balance shaft housing centerline 28. In one embodiment, camshaft gear centerline 8 intersects balance shaft housing centerline 28. In one embodiment, crankshaft gear centerline 9 intersects balance shaft housing centerline 28. In one embodiment, balance shaft gear centerline 42 intersects balance shaft housing centerline 28. In one embodiment, balance shaft housing centerline 28 is co-linear with the radius of first and second idler gears 2, 10 such that the center of first and second idler gears 2, 10 is disposed upon balance shaft housing centerline 28. In the embodiment illustrated in
As shown in
The size and pitch of first idler gear 2 and second idler gear is a design and manufacturing choice. The size and pitch of first and second idler gear 2, 10 are further constrained by the distance between camshaft gear 1 and crankshaft gear 7 and the distance between crankshaft gear 7 and balance shaft gear 11.
As in the embodiment illustrated in
The embodiments of the invention illustrated in
The size and pitch of first idler gear 52, crankshaft idler gear 54 and balance shaft idler gear 55 is a design and manufacturing choice. The size and pitch of first idler gear 52, crankshaft idler gear 54 and balance shaft idler gear 55 are further constrained by the distance between camshaft gear 51 and crankshaft gear 57 and the distance between crankshaft gear 57 and balance shaft gear 60.
Use of a first and second idler gear assembly as described herein, in one embodiment, reduces parasitic energy loss within a balance shaft system by providing a compact system. As used herein, the term “gear” includes rotors or hubs connected to a shaft to rotate the shaft in a desired direction.
The disclosure herein encompasses a design wherein an idler gear assembly is included between the crankshaft gear and camshaft gear and a single gear is included between the crankshaft gear and balance shaft gear. While the embodiment of the invention disclosed herein is presently considered to be preferred, various changes and modifications can be made without departing from the spirit and scope of the invention. The scope of the invention is indicated in the appended claims, and all changes that come within the meaning and range of equivalents are intended to be embraced therein.
Number | Name | Date | Kind |
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3511110 | Grieve | May 1970 | A |
20040108167 | Elliott | Jun 2004 | A1 |
Number | Date | Country | |
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20060130797 A1 | Jun 2006 | US |