Hybrid transmission having electro-magnetically actuated pawl clutch
10724582 ยท 2020-07-28
Assignee
Inventors
Cpc classification
F16D2500/10493
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K6/387
PERFORMING OPERATIONS; TRANSPORTING
B60K6/383
PERFORMING OPERATIONS; TRANSPORTING
F16D41/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2500/7041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2500/1022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D27/118
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/62
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F16D27/118
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electro-magnetically actuated pawl clutch is adapted to establish a fixed overdrive ratio in a powersplit type hybrid gearing arrangement. In a first embodiment, the pawl clutch holds a member against rotation in one direction when engaged and permits rotation in the other direction. In a second embodiment, the pawl clutch prevents relative rotation between two rotatable members in one direction when engaged and permits relative rotation in the other direction. In either embodiment, the coil is stationary.
Claims
1. An electro-magnetically actuated clutch comprising: a toothed plate; a race supported for rotation relative to the toothed plate and including a plurality of pivotable pawls; a stationary, non-toothed plate separated from the race by an air gap; and a stationary coil configured to establish a magnetic circuit through the stationary plate, the pawls, and the toothed plate thereby attracting the pawls into engagement with the toothed plate to restrain relative rotation.
2. The electro-magnetically actuated clutch of claim 1 wherein the pawls remain separated from the stationary, non-toothed plate by the air gap when they pivot into engagement with the toothed plate.
3. The electro-magnetically actuated clutch of claim 2 wherein a distance separating the stationary, non-toothed plate from the race remains constant as the pawls pivot.
4. The electro-magnetically actuated clutch of claim 3 wherein the air gap separates the stationary, non-toothed plate from the race in a direction parallel to a pivot axis of the pawls.
5. The electro-magnetically actuated clutch of claim 1 wherein the toothed plate is stationary.
6. The electro-magnetically actuated clutch of claim 1 wherein the toothed plate is supported for rotation.
7. The electro-magnetically actuated clutch of claim 1 wherein the pawls engage the toothed plate to prevent relative rotation in one direction but permit relative rotation in an opposite direction.
8. The electro-magnetically actuated clutch of claim 7 wherein a surface of each of the pawls facing the toothed plate is concave.
9. The electro-magnetically actuated clutch of claim 1 wherein the race is radially outside the toothed plate.
10. An electro-magnetically actuated clutch comprising: a toothed plate; a race supported for rotation relative to the toothed plate and including a plurality of pivotable pawls; a stationary, non-toothed plate separated from the race by a fixed air gap; and a stationary coil configured to establish a magnetic circuit through the stationary plate, the pawls, and the toothed plate to attract the pawls into engagement with the toothed plate to restrain relative rotation.
11. The electro-magnetically actuated clutch of claim 10 wherein the toothed plate is stationary.
12. The electro-magnetically actuated clutch of claim 10 wherein the toothed plate is supported for rotation.
13. The electro-magnetically actuated clutch of claim 10 wherein the pawls engage the toothed plate to prevent relative rotation in one direction but permit relative rotation in an opposite direction.
14. The electro-magnetically actuated clutch of claim 13 wherein a surface of each of the pawls facing the toothed plate is concave.
15. The electro-magnetically actuated clutch of claim 10 wherein the race is radially outside the toothed plate.
16. An electro-magnetically actuated brake comprising: a stationary inner race including a toothed plate, a non-toothed plate, and a coil; and an outer race supported for rotation around the inner race and including a plurality of pivotable pawls; wherein the coil is configured to establish a magnetic circuit through the non-toothed plate, the pawls, and the toothed plate to attract the pawls into engagement with the toothed plate to restrain rotation of the outer race.
17. The electro-magnetically actuated brake of claim 16 wherein the pawls engage the toothed plate to prevent relative rotation in one direction hut permit relative rotation in an opposite direction.
18. The electro-magnetically actuated brake of claim 17 wherein a surface of each of the pawls facing the toothed plate is concave.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) Embodiments of the present disclosure are described herein. It is to be understood, however, that the disclosed embodiments are merely examples and other embodiments can take various and alternative forms. The figures are not necessarily to scale; some features could be exaggerated or minimized to show details of particular components. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a representative basis for teaching one skilled in the art to variously employ the present invention. As those of ordinary skill in the art will understand, various features illustrated and described with reference to any one of the figures can be combined with features illustrated in one or more other figures to produce embodiments that are not explicitly illustrated or described. The combinations of features illustrated provide representative embodiments for typical applications. Various combinations and modifications of the features consistent with the teachings of this disclosure, however, could be desired for particular applications or implementations.
(8) A group of rotating elements are fixedly coupled to one another if they are constrained to have the same rotational speed about the same axis in all operating conditions. Rotating elements can be fixedly coupled by, for example, spline connections, welding, press fitting, or machining from a common solid. Slight variations in rotational displacement between fixedly coupled elements can occur such as displacement due to lash or shaft compliance. In contrast, two rotating elements are selectively coupled by a shift element when the shift element constrains them to have the same rotational speed about the same axis whenever the shift element is fully engaged and the elements are free to have distinct speeds in at least some other operating condition. Two rotating elements are coupled if they are either fixedly coupled or selectively coupled. Two rotating elements are driveably connected if a series of gears and shafts is capable of transmitting power from one to the other and establishes a fixed speed ratio between the two elements.
(9)
(10) Generator 22 and motor 36 are both reversible electric machines. The terms generator and motor are used merely as labels. Both machines are capable of converting electrical power to mechanical power or converting mechanical power to electrical power. For example, each machine may be a synchronous motor in combination with a three phase inverter. Both machines are electrically connected to battery 46. In some circumstances, engine 10 may generate more power than is delivered to the vehicle wheels 42 and 44 with the excess power stored in battery 46. In other circumstances, power may flow from battery 46 permitting engine 10 to produce less power than the instantaneous demand of the vehicle. For example, the engine 10 may be off while power to propel the vehicles comes from battery 46.
(11) The powertrain of
(12)
where T.sub.eng is the torque generated by engine 10, T.sub.gen is the torque absorbed by the generator 22, T.sub.gear24 is the torque absorbed by gear 24, N.sub.sun is the number of teeth on sun gear 18, and N.sub.ring is the number of teeth on ring gear 20. The engine speed is a weighted average of the generator speed and the speed of gear 24.
(13)
(14) When the vehicle is moving slowly, gear 24 rotates slowly and generator 22 rotates faster than engine 10. Power generated by the engine is split by the planetary gear set. A portion of the power is transmitted mechanically to shaft 32 from carrier 14 to ring gear 20 to gear 24 to gear 26. The remaining power is transmitted from sun 18 to generator 22 which converts the power to electrical power. Motor 36 converts the electrical power to mechanical power which is transmitted to shaft 32 by gear 34 and 30. Although both power transfer paths are subject to some parasitic losses, conversions between electrical power and mechanical power typically involve more power loss than purely mechanical transfer. As the ratio of the speed of shaft 32 to the speed of engine 10 increases, a point is reached at which generator 22 is stationary. At this ratio, all of the power is transferred mechanically. At higher overdrive ratios, generator 22 rotates in the opposite direction as engine 10 and acts as a motor. Power circulates from generator 22 through the mechanical power flow path to shaft 32, through gears 30 and 34 to motor 36 which acts as a generator. The parasitic losses associated with the circulation of power tend to make operation at overdrive ratios inefficient.
(15) Even at the overdrive speed ratio at which no the generator is stationary, the electrical power flow path still incurs parasitic losses, because some electrical power is required to produce the necessary reaction torque on sun gear 18. To improve efficiency in this operating condition, the powertrain of
(16)
(17)
(18) Inner race 50, plates 58 and 60, and the pawls 56 are made of a magnetically conductive material. When the controller sends an electrical current through coil 64, a magnetic circuit is established running from race 50, through plate 60, across air gap 62, through pawl 56, across an air gap to the teeth 52 of plate 58, and back to inner race 50. The magnetic circuit causes magnetic forces across the air gaps. The magnetic forces cause pawls 56 to pivot into engagement with the teeth 52. As the pawls contact the teeth, one of the air gaps is eliminated. This reduces the magnetic resistance and thereby reduces the current required to maintain a certain level of magnetic flux. In this state, brake 48 prevents forward rotation of sun gear 18, thereby providing the reaction force for the overdrive ratio.
(19)
(20)
(21) Stationary member 80, plates 58 and 60, and the pawls 56 are made of a magnetically conductive material. When the controller sends an electrical current through coil 64, a magnetic circuit is established running from stationary member 80, through plate 60, across air gap 62, through pawl 56, across an air gap to the teeth 52 of plate 58, and then across air gap 82 back to stationary member 80. The magnetic circuit causes magnetic forces across the air gaps. The magnetic forces cause pawls 56 to pivot into engagement with the teeth 52. As the pawls contact the teeth, one of the air gaps is eliminated. This reduces the magnetic resistance and thereby reduces the current required to maintain a certain level of magnetic flux. In this state, clutch 70 prevents relative rotation in one direction between shaft 14 and gear 72, thereby establishing an overdrive power path.
(22)
(23) While exemplary embodiments are described above, it is not intended that these embodiments describe all possible forms encompassed by the claims. The words used in the specification are words of description rather than limitation, and it is understood that various changes can be made without departing from the spirit and scope of the disclosure. As previously described, the features of various embodiments can be combined to form further embodiments of the invention that may not be explicitly described or illustrated. While various embodiments could have been described as providing advantages or being preferred over other embodiments or prior art implementations with respect to one or more desired characteristics, those of ordinary skill in the art recognize that one or more features or characteristics can be compromised to achieve desired overall system attributes, which depend on the specific application and implementation. As such, embodiments described as less desirable than other embodiments or prior art implementations with respect to one or more characteristics are not outside the scope of the disclosure and can be desirable for particular applications.