1. Field of the Invention
The present invention relates to a super-finished rear axle gear set for a vehicle that improves the fuel efficiency of the vehicle.
2. Background Art
In an effort to improve fuel efficiency for a vehicle lubricants are used to reduce the amount of friction between the ring and pinion gears in the rear axle gear set. Using appropriate lubricants to reduce friction in a gear set is crucial because the gears operate differently under different conditions. Depending on the speed and load of the vehicle, there can be full metal to metal contact, partial metal to metal contact or the metal surfaces may be completely separated by the lubricant. A manufacturer is forced to choose one type of lubricant to minimize the friction in three different scenarios because it is impractical to use three different types of lubricant for each of the regimes. This leads to a decreased rear axle efficiency because the performance of the selected lubricant is not optimal for each scenario.
According to one aspect of the present invention, the rear axle gear set for a vehicle is super-finished in order to improve the rear axle efficiency by reducing the severity of metal to metal contact. The super-finish makes the gears smoother, thereby reducing the friction when there is full metal to metal contact or partial metal to metal contact.
The rear axle gear set includes a pinion gear and a ring gear. The pinion gear is connected to the drive shaft of the vehicle. The ring gear is connected to the rear axle of the vehicle and has teeth that mesh with the teeth on the pinion gear. When the gear set is in operation, the teeth of the pinion gear drive the teeth of the ring gear. The teeth of the pinion and ring gears are super-finished to reduce the friction between the teeth of the pinion gear and the teeth of the ring gear when the gear set is in operation.
The super-finish is applied to the gears by first placing the gears into a vessel containing an acidic solution and ceramic pebbles of various sizes. The acidic solution etches high asperities from the surfaces of the gears, leaving a chemical film. The ceramic pebbles remove the film, leaving a smooth, super-finished surface. The final step is putting the gears into a vessel containing a solution to neutralize the acid. After the gears have been super-finished, they have a mirror-finish. After super-finishing, the pinion gear and ring gear have an average surface roughness of 4-7 microinches.
These and other aspects of the present invention will be apparent to one of ordinary skill in the art in view of the attached detailed description of the preferred embodiments below.
a-c are a set of graphs showing the difference in efficiency between a production and a super-finished rear axle gear set.
a-c are a set of graphs showing the difference in temperature between a production and a super-finished rear axle gear set.
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A super-finish is applied to the pinion gear teeth 16 and the ring gear teeth 18 to reduce the friction between the pinion gear teeth 16 and the ring gear teeth 18.
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The super-finished pinion gear teeth 16 and the ring gear teeth 18 have an average centerline roughness of 4-7 microinches. The smooth surface on the pinion gear teeth 16 and on the ring gear teeth 18 decreases the coefficient of friction when the pinion gear teeth 16 are driving the ring gear teeth 18. The decreased coefficient of friction can lead to an increase in fuel efficiency of about 0.5%. Additionally, after the super-finish has been applied, the gear set 10 does not require a break-in coating before being used in a vehicle.
An alternative method for applying the super-finish is disclosed in U.S. Patent Application publication No. 2002/0106978 to Michaud et al., the disclosure of which is hereby incorporated by reference.
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While the best mode for carrying out the invention has 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 as defined by the following claims.