1. Field of the Invention
This invention relates generally to an apparatus for transmitting rotary power in a vehicle powertrain. More particularly it pertains to full-time and part-time all-wheel-drive (AWD) systems driven from a transmission with a planetary final drive.
2. Description of the Prior Art
Power takeoff unit efficiency is a concern in AWD vehicles derived from front wheel drive vehicle platforms, partially due to kinematics dictated by the speed and torque of the transmission output.
The final drive unit of a transmission normally increases torque by a factor of approximately 4.0-4.5 before transmission output torque is delivered to the input of a differential mechanism, which drives the primary wheels of the vehicle, i.e., the front wheels. Then, the amplified torque is stepped down before it is delivered to a power takeoff unit (PTU), which drives the secondary wheels, i.e., the rear wheels.
In a powertrain for a motor vehicle whose transmission includes a planetary final drive unit that amplifies torque, it is possible to split the transmission output torque between the front wheels and rear wheels before performing the planetary torque amplification.
It is also possible in a part-time or torque-on-demand system to deliver the transmission output torque to the power takeoff unit directly, thereby bypassing the torque amplification that normally would occur in the final drive mechanism.
A need exists in the automotive industry for a drive mechanism that splits torque at the high-speed transmission output between the front wheels and rear wheels before a speed reduction of the transmission output occurs.
A system for transmitting rotary power to the wheels of a motor vehicle includes an input, a planetary final drive connected driveably to the input and including a first output that is driven at a speed that is slower than a speed of the input, and a inter-wheel planetary differential driveably connected to the first output for splitting torque carried by the first output between a second output connected driveably to a first wheel of a first wheel set and a third output connected driveably to a second wheel of the first wheel set.
An inter-axle differential, connected driveably to the input, splits torque carried by the input between an input of the planetary final drive and a second set of wheels.
The system reduces the PTU input torque by about 75 percent and eliminates need to step the speed up again. The PTU is arranged on a single axis.
Efficiency of the PTU is improved more than 50 percent compared to conventional PTU, and its cost and weight are reduced by a similar percentage.
The scope of applicability of the preferred embodiment will become apparent from the following detailed description, claims and drawings. It should be understood, that the description and specific examples, although indicating preferred embodiments of the invention, are given by way of illustration only. Various changes and modifications to the described embodiments and examples will become apparent to those skilled in the art.
The invention will be more readily understood by reference to the following description, taken with the accompanying drawings, in which:
An inter-wheel differential mechanism 18, located in the transaxle case, transmits power differentially to a right-side halfshaft 20 and to a left-side halfshaft 21, which are connected to the wheels 16, 17, respectively. Power is transmitted between the transaxle output 14 and driveshaft 24 through a bevel pinion 88 and a mating bevel gear 90 secured to the driveshaft 24. Drive shaft 24 transmits power to a rear inter-wheel differential mechanism 28, from which power is transmitted differentially to the rear wheels 30, 31 through axle shafts or halfshafts 32, 33, respectively.
Drum 46 and power takeoff shaft 48 are supported for rotation about a transverse axis 50 by bearings 51, 52, fitted into a housing 54 surrounding a torque splitting differential mechanism 56.
A grounded planetary, final drive 58 includes a sun gear 60, secured to drum 46; a carrier 62; a ring gear 64, held against rotation on housing 54; and a set of planet pinions 66, supported on carrier 62 and meshing with sun gear 60 and ring gear 64.
The power splitting inter-wheel differential 56 is a compound planetary gearset that includes a sun gear 68, a carrier 70, a ring gear 72, and two sets of planet pinions 73, 74 supported on the carrier and meshing with sun gear 68 and ring gear 72. Pinions 73 mesh with pinions 74 and ring gear 72. Pinions 74 mesh with sun gear 68 and pinions 73. The right-hand halfshaft 20 is secured to carrier 70 for rotation as a unit, and the left-hand side halfshaft 21 is secured to sun gear 68 for rotation as a unit.
The grounded planetary final drive gearset 58 causes its output carrier 62 to rotate slower than its sun gear 60 and drum 46. Gearset 56 operates as an inter-wheel differential, splitting power carried by carrier 62 and ring gear 72 between its sun gear 68 and carrier 70, i.e., between the right front and left front wheels 16, 17. Driveshaft 24 transmits power at relatively high speed and low torque to the rear wheels from the transmission output 40.
Drum 92 and power takeoff shaft 100 are supported for rotation about transverse axis 50 by bearings 51, 52, fitted into the transaxle housing 54.
A grounded, final drive planetary gearset 102 includes a sun gear 104, secured to ring gear 97; a carrier 106; a ring gear 108, held against rotation on housing 54; and a set of planet pinions 110, supported on carrier 106 and meshing with sun gear 104 and ring gear 108.
A power splitting, inter-wheel, compound planetary differential 120 includes a sun gear 122; a carrier 124; a ring gear 126, which is secured to carrier 106; and two sets of planet pinions 128, 129 supported on carrier 124 and meshing with sun gear 122 and ring gear 126. Pinions 128 mesh with pinions 129 and sun gear 122. Pinions 129 mesh with pinions 128 and ring gear 126. Halfshaft 20 is secured to carrier 124 for rotation as a unit, and halfshaft 21 is secured to sun gear 122 for rotation as a unit. Inter-wheel differential 120 splits its input torque equally between shafts 20, 21.
The grounded planetary gearset 102 causes its carrier 106 to rotate slower than its input sun gear 104. Inter-wheel differential 120 splits power carried to its input ring gear 126 between its carrier 124 and sun gear 122, i.e., between the right front and left front wheels 16, 17. Driveshaft 24 transmits power at relatively high speed and low torque to the rear wheels 30, 31.
The inter-wheel, planetary differential 120 includes a first set of planet pinions 148, supported on carrier 124 and meshing with sun gear 122; and a second set of planet pinions 150, supported on carrier 124 and meshing with the first set of planet pinions 148 and ring gear 126. Carrier 124 is secured to halfshaft 21. Sun gear 122 is secured to halfshaft 20.
In accordance with the provisions of the patent statutes, the preferred embodiment has been described. However, it should be noted that the alternate embodiments can be practiced otherwise than as specifically illustrated and described.
Number | Name | Date | Kind |
---|---|---|---|
4428452 | Muraoka et al. | Jan 1984 | A |
4476953 | Hiraiwa | Oct 1984 | A |
4700800 | Friedrich et al. | Oct 1987 | A |
4738152 | Takimura et al. | Apr 1988 | A |
5041068 | Kobayashi | Aug 1991 | A |
5054573 | Bennett | Oct 1991 | A |
5083478 | Hiraiwa | Jan 1992 | A |
5083635 | Tashiro | Jan 1992 | A |
5098351 | Kobayashi | Mar 1992 | A |
5234072 | Chludek | Aug 1993 | A |
6076623 | Teraoka et al. | Jun 2000 | A |
6513615 | Bowen et al. | Feb 2003 | B2 |
6523633 | Teraoka et al. | Feb 2003 | B1 |
6620071 | Cook et al. | Sep 2003 | B1 |
6668961 | Bowen et al. | Dec 2003 | B2 |
20030040394 | Palazzolo | Feb 2003 | A1 |
20030141127 | Kobayashi | Jul 2003 | A1 |
20060094556 | Mizon et al. | May 2006 | A1 |
20060100054 | Maruyama et al. | May 2006 | A1 |
20060157291 | Puiu et al. | Jul 2006 | A1 |
20070093347 | Janson et al. | Apr 2007 | A1 |
Number | Date | Country |
---|---|---|
2119329 | Nov 1983 | GB |
Number | Date | Country | |
---|---|---|---|
20090120706 A1 | May 2009 | US |