Direct acting electronic locking differential
11378168 · 2022-07-05
Assignee
Inventors
Cpc classification
F16H2048/346
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H48/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H48/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D27/09
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H48/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H48/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H48/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A lock plate for an electronically actuated locking differential is provided. In one example embodiment, the lock plate includes a base portion having a first side and an opposite second side, a plurality of radially spaced teeth extending outwardly from the first side, and a plurality of standoffs extending outwardly from the second side.
Claims
1. A lock plate for an electronically actuated locking differential having an armature, the lock plate comprising: a base portion having a first side and an opposite second side; a plurality of radially spaced teeth extending outwardly from the first side; and a plurality of standoffs extending outwardly from the second side, each standoff of the plurality of standoffs extending from a proximal end to a distal end and having an outer diameter and an inner diameter, the outer diameter including (i) a groove configured to receive a snap ring and (ii) a shoulder portion arranged closer to the proximal end than the groove, wherein a portion of the armature is disposed between each standoff and the snap ring at the shoulder portion.
2. The lock plate of claim 1, wherein the standoffs of the plurality of standoffs are integrally formed with the base portion.
3. The lock plate of claim 1, wherein the standoffs of the plurality of standoffs are circumferentially spaced about the base portion.
4. The lock plate of claim 1, wherein each standoff includes an outer lip, the groove disposed between the outer lip and the shoulder portion.
5. The lock plate of claim 4, wherein each standoff includes a pair of opposed straight walled portions and a pair of opposed rounded portions.
6. An electronically actuated locking differential comprising: a gear case having opposite first and second ends and a plurality of slots formed in the first end; a differential gear set disposed in the gear case; a lock plate disposed at the gear case first end and configured to selectively engage the differential gear set, wherein the lock plate includes a plurality of standoffs extending through the plurality of slots formed in the gear case first end, each standoff of the plurality of standoffs extending from a proximal end to a distal end and having an outer diameter and an inner diameter, the outer diameter including (i) a groove configured to receive a snap ring and (ii) a shoulder portion arranged closer to the proximal end than the groove; and an electronic actuator disposed at the gear case first end and having a stator and an armature, wherein a portion of the armature is disposed between each standoff and the snap ring at the shoulder portion, wherein the electronic actuator is operable between an unlocked first mode where the lock plate does not lockingly engage the differential gear set, and a locked second mode wherein when the stator is energized, the armature is pulled toward the gear case first end such that the lock plate is pushed into locking engagement with the differential gear set to thereby lock a pair of axle shafts.
7. The electronically actuated locking differential of claim 6, wherein the differential gear set includes a first side gear and a second side gear, the lock plate configured to selectively lockingly engage the first side gear in the locked second mode.
8. The electronically actuated locking differential of claim 7, further comprising a biasing mechanism disposed between the first side gear and the lock plate, the biasing mechanism configured to bias the lock plate out of engagement with the first side gear.
9. The electronically actuated locking differential of claim 7, wherein the lock plate is disposed between the first side gear and the stator.
10. The electronically actuated locking differential of claim 6, wherein the lock plate comprises: a base portion having a first side and an opposite second side; a plurality of radially spaced teeth extending outwardly from the first side; and the plurality of standoffs extending outwardly from the second side.
11. The electronically actuated locking differential of claim 10, wherein the standoffs of the plurality of standoffs are integrally formed with the base portion.
12. The electronically actuated locking differential of claim 10, wherein the standoffs of the plurality of standoffs are circumferentially spaced about the base portion.
13. The electronically actuated locking differential of claim 10, wherein the stator and the armature are disposed outside of the gear case and the lock plate base portion is disposed within the gear case.
14. The electronically actuated locking differential of claim 6, wherein each standoff includes an outer lip, the groove disposed between the outer lip and the shoulder portion.
15. The electronically actuated locking differential of claim 14, wherein each standoff includes a pair of opposed straight walled portions and a pair of opposed rounded portions.
16. The electronically actuated locking differential of claim 6, wherein each slot formed in the gear case includes a pair of opposed straight wall portions and a pair of rounded end portions.
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)
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DETAILED DESCRIPTION
(7) With initial reference to
(8) The gear case 12 defines a gear chamber 20, which generally supports a differential gear set including a pair of input pinion gears (not shown) rotatably mounted on a pinion shaft (not shown), which is secured relative to the gear case 12 by any suitable mechanism. The pinion gears are meshingly engaged with a respective pair of left and right side gears 28 (only one shown). The side gears 28 define respective sets of internal, straight splines 30 that are adapted to be in splined engagement with mating external splines on a respective pair of left and right axle shafts (not shown).
(9) The electronically actuated locking differential 10 further includes a rotation prevention mechanism 32 configured to selectively prevent relative rotation of the left and right axle shafts. The rotation prevention mechanism 32 is disposed at least partially within gear case 12 and generally includes a lock plate 34 operably associated with side gear 28 (the first output gear), and an electronic actuator 36.
(10) As illustrated in
(11) With additional reference to
(12) As shown in
(13) In the example embodiment, each standoff 40 includes a proximal end 60 and a distal end 62. The proximal end 60 is integrally coupled with the base portion second side 46 such that standoffs 40 extend orthogonal to or substantially orthogonal thereto. The distal end 62 generally defines an outer lip 64, a groove 66, and a shoulder portion 68 formed therein as the standoff 40 extends from the distal end 62 toward the proximal end 60.
(14) With continued reference to
(15) As shown in
(16) With additional reference to
(17) During normal, straight-ahead operation of a vehicle within which the differential 10 is employed, no differentiation occurs between the left and right axle shaft or side gears 28. Therefore, the pinion gears do not rotate relative to the pinion shaft. As a result, the gear case 12, pinion gears, and side gears 28 all rotate about an axis of rotation as if the gear case 12, pinion gears, and side gears 28 are a solid unit.
(18) When direct current (DC) power is supplied to the electromagnetic coil 60, magnetic energy is generated within the stator 72, which creates an attractive force between the stator 72 and the armature 70, thereby causing the armature 70 to move toward the gear case 12. This in turn causes the lock plate 34 to move leftward (as shown in
(19) The differential 10 may be controlled manually, wherein a driver of the vehicle manually selects “locked” mode (rather than “unlocked” mode) to operate the differential 10. For example, when, say the vehicle is at rest, the driver simply manually activates a switch or button (not shown), such as a simple momentary-type “on/off” toggle or rocker switch or push button, mounted to a dash or console (not shown) of the vehicle. In this way, an electric circuit (not shown) is closed, thereby turning on current in the circuit and a lamp (not shown) located in or near the toggle switch or push button to indicate to the driver that the differential is actuated. Current flows in the circuit and ultimately to the electromagnetic coil 76 of the differential 10. The differential 10 then operates in the “locked” mode (i.e., when the vehicle is in first gear or reverse). In this way, the first output gear 28 is locked relative to the gear case 12, preventing any further differentiation between the first output gear 28 and gear case 12.
(20) Described herein are systems and methods for a lock plate of an electronic locking differential. The lock plate includes near net-forged integrated standoffs on an opposing surface from the lock teeth. The standoffs are straight walled and orthogonal to the differential centerline. The standoffs increase the interface area between the lock plate and differential case to reduce contact stress and provide a robust design. The lock plate improves unlock performance, provides allowance for lock detection integration, and reduces bill of material complexity. Additionally, the lock plate accommodates the use of lower cost materials and heat treatment options, as well as improves compatibility assembling the differential into a one-piece differential case.
(21) The foregoing description of the examples 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 example are generally not limited to that particular example, but, where applicable, are interchangeable and can be used in a selected example, 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.