Non-synchronous gear meshing events for limited slip differentials
09863517 ยท 2018-01-09
Assignee
Inventors
Cpc classification
F16H48/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2048/087
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H48/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H48/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2048/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H48/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H48/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A differential gear mechanism includes a differential case, a first side gear, a second side gear, a first pinion and a second pinion. The first side gear is rotatably mounted within the differential case and has a first outer diameter. The second side gear is rotatably mounted within the differential case and has a second diameter. The first pinion gear is meshed for rotation with the first side gear during a first meshing event. The second pinion gear is meshed for rotation with the second side gear during a second meshing event. The first and second pinion gears form a torque transfer arrangement configured for transferring torque between the first and second pinion gears and the first and second side gears to rotate the first and second side gears. The first and second outer diameters are distinct such that the first and second meshing events are offset in time.
Claims
1. A differential assembly comprising: a differential case defining first and second output shaft openings that are coaxially aligned along an axis of rotation of the differential case; a first side gear rotatably mounted within the differential case and having a first outer diameter; a second side gear rotatably mounted within the differential case and having a second outer diameter; a first pinion gear rotatably coupled to a first pinion gear shaft fixed to the differential case, the first pinion gear meshed for rotation with the first side gear during a first meshing event, the first pinion gear being the only gear coupled to the first pinion gear shaft, and the first pinion gear meshing with the first side gear and not the second side gear; and a second pinion gear rotatably coupled to a second pinion gear shaft fixed to the differential case, the second pinion gear meshed for rotation with the second side gear during a second meshing event, the second pinion gear being the only gear coupled to the second pinion gear shaft, and the second pinion gear meshing with the second side gear and not the first side gear; wherein the first and second pinion gears form a torque transfer arrangement configured for transferring torque between the first and second pinion gears and the first and second side gears to rotate the first and second side gears about the axis of rotation; wherein the first and second outer diameters are distinct such that the first and second meshing events are offset in time.
2. The differential assembly of claim 1 wherein the first and second meshing events occur at distinct angular positions.
3. The differential assembly of claim 1 wherein the first and second meshing events are not in phase.
4. The differential assembly of claim 3 wherein the first meshing event and the second meshing event are offset between 2-4 degrees.
5. The differential assembly of claim 1 wherein the first side gear and the first pinion collectively provide a first contact ratio and wherein the second side gear and the second pinion collectively provide a second contact ratio, wherein the first and second contact ratios are distinct.
6. The differential assembly of claim 1 wherein the first side gear and the first pinion collectively provide a first length of contact and wherein the second side gear and the second pinion collectively provide a second length of contact, wherein the first and second lengths of contact are distinct.
7. The differential assembly of claim 1 wherein the first pinion gear includes a first series of pinion gear teeth each having a first pinion gear tip wherein a series of first contacts between the respective first pinion gear tips and corresponding teeth of the first side gear occurs at a first sequence of contacting times.
8. The differential assembly of claim 7 wherein the second pinion gear includes a second series of pinion gear teeth each having a second pinion gear tip wherein a series of second contacts between the respective second pinion gear tips and corresponding teeth of the second side gear occurs at a second sequence of contacting times, wherein each time of the first sequence of contacting times is offset from each time of the second sequence of contacting times.
9. The differential assembly of claim 1 wherein the first side gear and the first pinion collectively provide a first line of action and wherein the second side gear and the second pinion collectively provide a second line of action, wherein the first and second lines of action are distinct.
10. A differential assembly comprising: a differential case defining first and second output shaft openings that are coaxially aligned along an axis of rotation of the differential case; a first side gear rotatably mounted within the differential case and having a first outer diameter; a second side gear rotatably mounted within the differential case and having a second outer diameter; a first pinion gear rotatably coupled to a first pinion gear shaft fixed to the differential case, the first pinion gear meshed for rotation with the first side gear during a first meshing event, the first pinion gear being the only gear coupled to the first pinion pear shaft, and the first pinion gear meshing with the first side gear and not the second side gear; and a second pinion gear rotatably coupled to a second pinion gear shaft fixed to the differential case, the second pinion gear meshed for rotation with the second side gear during a second meshing event, the second pinion gear being the only gear coupled to the second pinion gear shaft, and the second pinion gear meshing with the second side pear and not the first side gear; wherein the first and second pinion gears form a torque transfer arrangement configured for transferring torque between the first and second pinion gears and the first and second side gears to rotate the first and second side gears about the axis of rotation; wherein the first side gear and the first pinion collectively provide a first contact ratio and wherein the second side gear and the second pinion collectively provide a second contact ratio, wherein the first and second contact ratios are distinct.
11. The differential assembly of claim 10 wherein the first and second meshing events are not in phase.
12. The differential assembly of claim 11 wherein the first meshing event and the second meshing event are offset between 2-4 degrees.
13. The differential assembly of claim 10 wherein the first side gear and the first pinion collectively provide a first length of contact and wherein the second side gear and the second pinion collectively provide a second length of contact, wherein the first and second lengths of contact are distinct.
14. The differential assembly of claim 10 wherein the first and second outer diameters are distinct such that the first and second meshing events are offset in time.
15. The differential assembly of claim 10 wherein the first side gear and the first pinion collectively provide a first line of action and wherein the second side gear and the second pinion collectively provide a second line of action, wherein the first and second lines of action are distinct.
16. A differential assembly comprising: a differential case defining first and second output shaft openings that are coaxially aligned along an axis of rotation of the differential case; a first side gear rotatably mounted within the differential case and having a first outer diameter; a second side gear rotatably mounted within the differential case and having a second outer diameter; a set of three first pinion gears meshed for rotation with the first side gear during a first meshing event; and a set of three second pinion gears meshed for rotation with the second side gear during a second meshing event, wherein the first and second sets of pinion gears form a torque transfer arrangement configured for transferring torque between the first and second sets of pinion gears and the first and second side gears to rotate the first and second side gears about the axis of rotation; wherein (i) the set of first pinion gears includes a first series of pinion gear teeth each having a first pinion gear tip wherein a series of first contacts between the respective first pinion gear tips and corresponding teeth of the first side gear occurs at a first sequence of contacting times, and (ii) the set of second pinion gears includes a second series of pinion gear teeth each having a second pinion gear tip wherein a series of second contacts between the respective second pinion gear tips and corresponding teeth of the second side gear occurs at a second sequence of contacting times, wherein each time of the first sequence of contacting times is offset from each time of the second sequence of contacting times.
17. The differential assembly of claim 16 wherein the first and second meshing events occur at distinct angular positions.
18. The differential assembly of claim 16 wherein the first side gear and the set of first pinion pears collectively provide a first contact ratio and wherein the second side gear and the set of second pinion pears collectively provide a second contact ratio, wherein the first and second contact ratios are distinct.
19. The differential assembly of claim 16 wherein the first and second meshing events are out of phase.
20. The differential assembly of claim 16 wherein the first side gear and the set of first pinion pears collectively provide a first length of action and wherein the second side gear and the set of second pinion pears collectively provide a second length of action, wherein the first and second lengths of action are distinct.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present disclosure will become more fully understood from the detailed description and the accompanying drawings, wherein:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION
(6) With initial reference to
(7) The driveline 10 can generally include a limited slip differential assembly 20 having a clutch assembly 22 and a differential gear assembly or mechanism 24. The limited slip differential assembly 20 operates to drive a pair of axle shafts 30 and 32 that are connected to drive wheels 40 and 42, respectively. In general, the limited slip differential assembly 20 functions as a traditional open differential during normal operating conditions until an event occurs where a bias torque is required. When a loss in traction is detected or anticipated, the clutch assembly 22 can be selectively actuated in order to generate the optimum bias ratio for the situation.
(8) A ring gear 48 can be fixed to a differential case 50 of the differential gear assembly 20. The ring gear 48 can be meshed for rotation with a drive pinion 52 of an input pinion shaft 54. In general, the input pinion shaft 54 can be driven by an engine (not shown) through a transmission (not shown). The input pinion shaft 54 can transmit rotatable motion from the drive pinion 52 through the ring gear 48 to drive the differential case 50.
(9) The ring gear 48 is non-rotatably fixed to the differential case 50. The differential gear assembly 24 includes a first and second side gear 60 and 62 that are mounted for rotation with the axle shafts 30 and 32 (and first and second drive wheels 40 and 42), respectively. A first and second pinion gear shaft 64 and 66 are fixedly mounted to the differential case 50 for rotation therewith. A corresponding first and second pinion gear 68 and 70 are mounted for rotation with the pinion gear shafts 64, 66 and are in meshing relationship with both of the side gears 60 and 62. While two pinion gears are shown in the drawings, it will be appreciated that more than two pinion gears may be included in the differential gear assembly 24. In an open configuration, described more fully below, the differential gear assembly 24 acts to allow the axle shafts 30 and 32 to rotate at different speeds.
(10) The clutch assembly 22 can generally include a clutch pack 72 and a clutch actuator (not shown). The clutch pack 72 includes a plurality of annular plates 74 interleaved between a plurality of annular friction disks 78. The plurality of annular plates 74 can be coupled for rotation with one of the differential case 50 and the differential gear assembly 24. The plurality of annular friction disks 78 can be coupled for rotation with the other one of the differential case 50 and the differential gear assembly 24.
(11) The plurality of annular plates 74 and annular friction disks 78 are interleaved between one another and act to rotate past one another in substantially non-contacting relationship when the clutch assembly 32 is in its open position. However, it will be appreciated by those skilled in the art that the term non-contacting as used herein is relative and is not meant to necessarily indicate that the annular plates 74 and annular friction disks 78 have absolutely no contact when the clutch assembly 22 is in the open condition. The annular plates 74 and annular friction disks 78 are axially movable into frictional engagement relative to one another, thereby reducing relative rotation between the annular plates 74 and annular friction disks 78 when the clutch assembly 22 is in the closed or partially closed configurations. In this manner, when the clutch assembly 22 is in its closed position, the side gears 60 and 62, as well as the axle shafts 30 and 32 and the drive wheels 40 and 42 rotate together.
(12) The clutch assembly 22 can operate in an open configuration to allow the side gears 60 and 62 to rotate independently from each other, e.g., at different speeds. The clutch assembly 22 can also operate in a closed or partially closed configuration where the side gears 60 and 62 rotate together or partially together (that is, not independently), e.g., at substantially the same speed. The clutch assembly 22 can, for example, be a hydraulic clutch assembly that utilizes pressurized hydraulic fluid that can act on a piston (not shown) of the clutch actuator to selectively actuate the clutch pack 72 between the open, closed and partially closed configurations. Other configurations are contemplated.
(13) With additional reference now to
(14) The first pinion gear 68 is meshed for rotation with the first side gear 60 at a first gear mesh 110 (
(15) Turning now to
(16) Turning now to
(17) When differential assemblies incorporate side gears having the same gear geometry, meshing events with corresponding pinion gears are concurrent. That is, the tip of one gear contacts with the root of its mate at a given position. All pinion gears will share this rotational contact point. The position is specified in degrees of roll, which is an angular rotation of the gear. The differential assembly 24 of the present disclosure provides many advantages over differential assemblies having side gears with the same gear geometries. Because the side gears 60 and 62 have different diameters, the meshing events of the side gears 60 and 62 with the pinion gears 68 and 70 are staggered. Again, it will appreciated that while the drawings identify two pinion gears, more than two may be incorporated into the differential assembly 24. The timing of the gear meshing events is therefore offset. The contact ratio, the length of contact and the tip-to-root contact event will be different for both side gears 60 and 62. By providing side gears 60 and 62 that have different diameters, the meshing events will occur at different angular positions creating slight out-of-phase meshing event frequency for each side gear 60 and 62. In this regard, the first and second meshing events are not in phase. In one example the first and second meshing events are offset between 2-4 degrees. The differential assembly 24 can operate at reduced noise levels and encounter reduced stress amplitudes during operation.
(18) Returning now to
(19) The foregoing description of the embodiments has been provided for purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure. Individual elements or features of a particular embodiment are generally not limited to that particular embodiment, but, where applicable, are interchangeable and can be used in a selected embodiment, even if not specifically shown or described. The same may also be varied in many ways. Such variations are not to be regarded as a departure from the disclosure, and all such modifications are intended to be included within the scope of the disclosure.