The present invention is in the area of the mechanical arts, and more specifically refers to transmission parts used in off-road vehicles.
One of the more popular recreational activities for many people is off-road driving in various terrains. Most off-road driving is performed by owners of four-wheel drive vehicles. The reason why four-wheel drive vehicles are necessary in various terrains is to prevent the tires from getting stuck.
The problem with many off-road vehicles is that they are not specifically equipped for various terrains. Large rocks, boulders, hills, sand, mud, crevices, and other difficult obstacles can be dangerous for many 4-wheel drive vehicles to traverse because they may lack the necessary ratios to safely traverse those obstacles. Since many of these vehicles are predominantly designed for the highway, and smooth surface streets of the city, they lack the slow speed control to be effective off-road vehicles for all terrains.
Therefore, what is clearly needed in the art is an aftermarket assembly which can be quickly and easily incorporated into an off-road vehicle with 4-wheel drive. This extra gear box should give its user more gearing options to increase engine torque to suit the terrain which the vehicle is traversing. More gearing options aid the vehicle torque to move the tires with more precision, as well as enabling the vehicle with better traction in harsh off-road conditions such as sand, mud, crevices, etc. Furthermore, this implementation of an additional gear box should be able to be retrofitted without any drive shaft modifications to the vehicle. The extra bolt-in gear box should be able to simply replace the stock transmission tailhousing and should increase the transfer case gearing options from the stock two speeds to four speeds thereby aiding in the vehicles' off-road performance.
It is an object of the present invention to provide an extra gearbox which can give a driver robust performance and heightened control of an off-road vehicle as it is being driven through various terrains. The present invention can add more throttle response, and control to the vehicle.
It is an object of the present invention to equip off-road vehicles with multiple gear ratios without having to perform any driveshaft modifications to the off-road vehicle. By providing a gearbox which can be retrofitted into an off-road vehicle without a driveshaft modification, the implementation of the gearbox is more affordable and easier to install and use.
It is an object of the present invention to provide a gear reduction assembly for use with off-road vehicles. By incorporating more gearing options, off-road drivers may be able to navigate their vehicles easier. This gear reduction provides increased control by reducing the speed of various off-road vehicles. The present invention does this by including lower gear ratios which are specifically designed to operate in off-road conditions. The added lower gear ratios are housed within an additional gear box. This gear box does not require any transmission output shaft modifications or transfer case modifications.
It is an object of the present invention to provide an after-market transmission assembly, which may be incorporated into the drive train of an off-road vehicle without any driveshaft modifications.
It is an object of the present invention to have power flow through the auxiliary gear box while in high range at essentially the same speed and torque.
According to a preferred embodiment of the present invention, a unique Reduction Unit adapted for use with the Transmissions of Off-Road Vehicles is used to give a user greater control when driving in rugged terrain. The present invention is described in enabling detail below.
In some preferred embodiments, the Adapter Gear Housing 101 may be comprised of an aluminum alloy which may be heat-treated. As illustrated in
The Planetary Assembly 106 and the annulus gear 195 provide the gear reduction for the Auxiliary Gear Box 100. The Planetary Assembly 106 comprises a plurality of planetary pinion gears. In some preferred embodiments the Planetary Assembly 106 may comprise three planetary gears. And in some preferred embodiments, the Planetary Assembly 106 may comprise six planetary gears. The Planetary Assembly 106 provides the gear reduction.
The Planetary Assembly 106 is in communication with the Input Gear 107 and is affixed to the Input Gear 107 with a snap ring. The Planetary Assembly 106 is in communication with the annulus gear 195. The annulus gear 195 is pressed into the Adapter Gear Housing 101. The annulus gear 195 is pressed before the housing is finished machined as to keep alignment of the Adapter Gear Housing 101 to the annulus gear 195.
In some preferred embodiments, the Planetary Assembly 106 has a gear ratio of 2.72:1 in the lower gear range. And in some preferred embodiments, the Planetary Assembly 106 has a 1:1 gear ratio when engaged in the higher ranges. However, it should be noted that the scope of the invention is not limited to a specific gear range. Therefore, the present invention may incorporate different gear ratios in different embodiments.
It will be apparent to the skilled artisan that there are numerous changes that may be made in embodiments described herein without departing from the spirit and scope of the invention. As such, the invention taught herein by specific examples is limited only by the scope of the claims that follow.