This application is a National Phase of PCT International Application No. PCT/DE2011/075273, filed Nov. 15, 2011, which claims priority under 35 U.S.C. §119 from German Patent Application No. 20 2010 012 903.6, filed Nov. 16, 2011, the entire disclosures of which are herein expressly incorporated by reference.
The invention relates to a switchable coupling that is disposed between a driving element that is, for example, embodied as a pulley and an output element, wherein the switchable coupling includes a coupling system for creating a non-positive- and/or positive-locking connection between the driving element and the output element, as well as an actuator, preferably an electromagnetic actuator, a switching element in the operative vicinity of the actuator, as well as at least one elastic actuating element that is disposed between the output element and the switching element, and wherein the switching element is movable in an infinitely variable manner between a starting position via a central position as far as an end position, wherein, in the central position of the switching element, the switchable coupling has a different state (open or closed) than in the starting position, and wherein the elastic actuating element applies a force on the switching element in the direction of the starting position, and wherein the actuator only exercises forces on the switching element in the direction of the end position whose maximum value exceeds the force value of the elastic actuating element in any position.
Such preferably electromagnetically actuated couplings are known in the prior art. For example, European patent document EP 1378677 discloses a switchable coupling between a pulley as driving element and a shaft as output element. This switchable coupling also has an electromagnetic actuator whose force moves, in the state when current is applied, a switching element and further components of the coupling towards each other in such a manner that they are brought into a positive-locking engagement. Furthermore, this switchable coupling also includes an elastic actuating element that applies a spring force, countering the force of the actuator, to the switching element, such that, after the actuator has been switched off, the spring force moves the switching element out of engagement with the further parts of the coupling. Therefore, in the state “coupling=open” in this switchable coupling, the actuator is not active and does not consume energy. In the state “coupling=closed,” the actuator in this switchable coupling must, however, be permanently engaged and can then, as an electromagnetic actuator, be supplied with current, and wherein the actuator permanently consumes energy.
OS 1 575 762 also discloses an electromagnetic tooth clutch between a driving element and an output element. For the switching state “coupling=closed,” the electromagnetic actuator in this switchable coupling must also be permanently supplied with current. Although it is possible to reduce the magnetic force required therein by the shape of the switching teeth, complete cancellation is not possible.
German patent document DE 10331927 B3 discloses a clutch actuator for a switchable coupling between a driving element and an output element. In this coupling, preferably in use for utility vehicles, the clutch actuator does not act directly on the elastic actuating element of the coupling but on a transmission that reduces the required force in the clutch actuator for opening the coupling. Nonetheless, with this switchable coupling as well, the clutch actuator consumes energy to maintain the switchable coupling in the state “coupling=open.” When the energy supply to the clutch actuator is switched off, the elastic actuating element ultimately counteracts the force of the clutch actuator in this instance as well and switches the switchable coupling to the state “coupling=closed,” especially in the manner that is known, as a matter of principle, from most starting clutches in motor vehicles.
This prior art thus constitutes the basis for an initial partial object of the invention, which is to provide a switchable coupling that is able to maintain the two switching states “coupling=open” and “coupling=closed” without the supply and consumption of energy, and whose actuator uses energy only for the changeover between the two switching states.
A switchable coupling that achieves this partial object is disclosed in German patent document DE 102005001909 A1. Said coupling has an elastic actuating element that is a bistable spring and therefore able to assume two shapes. A switchable coupling having such a spring can be configured such that the switching states “coupling=open” and “coupling=closed” can be held stable without supplying energy to an actuator. However, switching such a coupling requires an actuator that is able to act on the bistable spring in two opposite directions of force.
According to this prior art, the above-captioned object shall be amended in such a manner that the switchable coupling must be configured such that the actuator thereof must only generate forces in one direction, thus making a single-side-operating actuator design, preferably an electromagnetic actuator, a possibility. This allows for the implementation of simple principles of operation, as well as the realization of savings in terms of construction space and costs.
German patent document DE 102005022218 A1 discloses a further relevant representative from the prior art regarding an actuating system for a switchable coupling. This switchable coupling has an actuator that acts only in one direction on a switching element of the coupling, specifically against the force of an elastic actuating element. In the closed state, this coupling is held by an automatically locking bolt mechanism functioning according to the operative principle of a free-running roller or ball. However, to switch this switchable coupling from the switching state “coupling=closed” to the switching state of “coupling=open,” said coupling requires a second actuator in order to release the bolt mechanism again.
Therefore, the underlying object of the present invention is the implementation of a switchable coupling that is able to maintain the two switching states “coupling=open” and “coupling=closed” without any supply or consumption of energy, and whose actuator must only generate forces for the changeover operation, specifically only in one direction, between the two switching states. The switchable coupling according to the invention shall also not need any additional actuating elements or further actuators for possibly needed bolts that may be required for holding certain switching states.
This object is achieved with a switchable coupling is disposed between a driving element and an output element and includes a coupling system for creating a non-positive- and/or positive-locking connection between the driving element and the output element, as well as, preferably, an electromagnetic actuator and a switching element in the operative vicinity of the actuator and at least one elastic actuating element that is disposed between the output element and the switching element, wherein the switching element is movable in an infinitely variable manner between a starting position and via a central position as far as an end position, and wherein the switchable coupling has a different state (open or closed) in the central position than in the starting position, and wherein the elastic actuating element applies a force on the switching element in the direction of the starting position, and wherein the actuator only applies forces on the switching element in the direction of the end position whose maximum value exceeds in each position the force value of the elastic actuating element, and according to the invention a bolt is rotably disposed in the circumferential direction on the output element or on parts connected to the output element but held in the axial direction between a first bolt stop and a second bolt stop, and wherein a rotational system is connected to the switching element or the bolt that includes first operative surfaces that, with a movement of the switching element from a position shortly behind the central position to as far as the end position, come into contact with first slanting molded elements on the bolt or first slanting molded elements on the switching element, thereby preloading first resilient rotational elements in such a manner that the bolt is rotated by a first angular pitch in relation to the switching element, and wherein the rotational system includes second operative surfaces that, upon a movement of the switching element back from the end position to the central position, make contact with second slanting molded elements on the bolt or second slanting molded elements on the switching element, thereby preloading second resilient rotational elements and rotating the bolt in relation to the switching element by a second angular pitch.
The coupling according to the invention is thus to include a bolt that locks a switching state in a manner that will be described below, or that makes a changeover process possible. To this end, however, the bolt must assume different positions. Avoiding any need for using a separate actuator for this purpose, the bolt is rotated by a rotational system, which is connected to the bolt itself or a switching element, by the movement of the switching element that is generated by the actuator, if possible around the actuation axis of the switching element.
In a further embodiment of the invention, after a first movement of the switching element from the starting position to the end position and back to the central position, the switching element assumes a first relative position in the circumferential direction in relation to the switching element in which, in the central position, the switching element makes contact in the axial operative direction with a bolt stop on the bolt. The bolt further includes second positive-locking retaining elements, and the switching element also has second positive-locking retaining elements that are engaged with each other in this central position fixing this first relative position in place in the circumferential direction.
With a first actuation of the actuator, the actuator acts, applying a force on the switching element, such that the switching element is moved against the force of the elastic actuation element in the axial direction from the starting position thereof and as far as an end position, and the bolt is rotated therein by a first angular pitch. The actuator is then deactivated, and the elastic actuation element returns the switching element to the central position. The bolt is therein rotated by a second angular pitch. The bolt is now in a relative position in relation to the switching element that the switching element is in contact by a switching element stop thereof with a first bolt stop of the bolt. This way, any further movement by the switching element in the direction of the starting position is locked. Second positive-locking retaining elements on the bolt and on the switching element prevent that this relative position changes inadvertently in the circumferential direction between the bolt and switching element, for example due to vibrations occurring in the switchable coupling.
To ensure that, following re-activation of the actuator, the switching element can be moved to the starting position, the bolt includes locking grooves. Following a second movement of the switching element from the central position as far as to the end position and back to the central position, the bolt assumes a second relative position in relation to the switching element in the circumferential direction in which, starting from the central position, the switching element with all of the molded elements thereof is able to glide, without impediment, through the bolt grooves in the bolt, specifically as far as to the starting position in which the switching element makes contact with the starting stop. Furthermore, the bolt includes third positive-locking retaining elements of the bolt, and the switching element includes third positive-locking retaining elements of the switching element that, in this second relative position, are engaged with each other in each axial position of the switching element between the central position and the starting position, whereby they fix said relative position in place in the circumferential direction.
To ensure that after each actuation of the actuator and the thus resulting movement of the switching element to the end position, subsequently followed by the return movement to the central position, and that, after the actuator has been switched off, the first and second positions are alternating between the switching element and the bolt in the circumferential direction, it is envisioned according to the invention to offset the first relative position and the second relative position between the switching element and the bolt by an angular pitch, respectively, in the circumferential direction, and in that the first angular pitch and the second angular pitch result together in this overall angular pitch, and in that this overall angular pitch is an even-numbered angular pitch of 360°. Preferably, the first angular pitch and the second angular pitch are of equal sizes, thereby each constituting half the size of the overall angular pitch.
The cyclical rotation of the bolt in relation to the switching element occurs due to a first partial rotation by the first angular pitch, when the switching element moves from the central position to the end position, and due to a second partial rotation by the second angular pitch, when the switching element moves from the end position to the central position. To prevent that the bolt performs a reverse rotation by the same second angular pitch after the second partial rotation, when the switching element moves next from the central position to the end position, it is provided according to the invention that, when the switching element is located in the central position, the first operative surfaces of the rotational system are disengaged from the switching element or the bolt, whereby the first resilient rotational elements are relaxed. To prevent that the bolt performs a reverse rotation by the same first angular pitch after the first partial rotation, when the switching element moves next from the end position to the central position, it is provided according to the invention that, when the switching element is located in the end position, the second operative surfaces of the rotational system are disengaged from the switching element or the bolt, whereby the second resilient rotational elements are relaxed.
A geometric requirement for the correct cyclical rotation is, furthermore, that the overall angular pitch between the first positive-locking retaining elements and the second positive-locking retaining elements on the switching element, minus the offset angle between the first positive-locking retaining elements and the second positive-locking retaining elements on the bolt, plus the first angular pitch or minus the second angular pitch is a whole-numbered multiple of the angular pitch between the first relative position and the second relative position.
Finally, it is also envisioned according to the invention that, when the switching element is located in the end position, first positive-locking retaining elements on the bolt are engaged with first positive-locking retaining elements on the switching element fixing in place in the circumferential direction the relative position of the switching element and the bolt in this switching position. By the different retaining elements it is ensured that, following rotations by certain angular pitches and during the relaxing of the resilient rotational elements, the bolt does not inadvertently change position in relation to the switching element, for example due to oscillations and vibrations in the switchable coupling.
The invention is not limited to the characteristics of the associated claims. Possibilities involving combinations of individual characteristics of claims and combinations of individual characteristics of claims with the information as to advantages and disclosures in the embodiments are conceivable and envisioned. The invention also relates particularly to solutions that operate in the manner of the prior art, some of which have already been described previously in the embodiments.
Three embodiments of the switchable coupling according to the invention will be described below in an exemplary manner on the basis of
Other objects, advantages and novel features of the present invention will become apparent from the following detailed description of one or more preferred embodiments when considered in conjunction with the accompanying drawings.
This switchable coupling 1 can be used in this form for powering in a switchable manner, for example, a climate compressor in a motor vehicle. To lower fuel consumption, the possibility of coupling a climate compressor to the pulley drive for powering secondary units must only be available if needed. In many operational situations, it is possible, however, to switch the climate compressor off and deactivate the same with opened coupling. The switchable coupling shall be configured such therein that said coupling must only be actively actuated with auxiliary energy during changeover operations, after which the coupling is able to maintain itself in the two switching states of “coupling=open” and “coupling=closed.”
The switchable coupling 1 contains a solenoid 50 that functions as an actuator 5. A hydraulic actuator having the same direction of force is alternately possible. The actuator 5 is seated in a housing 0 that has the driving element 2 supported thereupon.
The coupling system 4 of this switchable coupling contains on the one side, seen in
The friction clutch, seen in
The switching element 6, which is made up of a plurality of single parts that are fixedly connected to each other, is axially movable inside the switchable coupling and able to transfer torque to the output element 3 in all axial positions. An elastic actuating element 10 is provided for this purpose, as seen in
The elastic actuating element 10 applies an axial force on the switching element 6, as seen in
a to 8c depict this switchable coupling 1 in three different switching positions 7, 8 and 9 that differ in terms of the axial positions of the switching element 6 and the state of deformation of the elastic actuating element 10. In
With the characteristics of the switchable coupling 1 according to the invention, the object is achieved that, by an initial activation of the actuator 5, the switching element 6 is moved from the central position 8 into the end position 9, and after the deactivation of the actuator 5, the return movement of the switching element 6 is made possible by the axial force from the elastic actuating element 10 to the starting position 7. With the next activation of the actuator 5, the switching element 6 is first moved into the end position 9 again to limit thereafter, after the deactivation of the actuator 5, the movement of the switching element 6 back to the central position 8.
A bolt 11 is provided to this end, as seen in
By the repeated axial movement of the switching element 6 due to the activation of the actuator 5, and by a rotational system 23 that is connected to the switching element 6 in this embodied variant, the bolt is rotated in a cyclical sequence into such relative positions 16 and 18 in relation to the switching element 6 that, on the one hand, the axial movement of the switching element 6 is limited in the central position 8 due to the axial force from the elastic actuating element 10, and in that, with the next time, the axial movement of the switching element 6 is possible as far as to the starting position 7.
To achieve this, the bolt has, as depicted in
In
a and/or 9c depict the engagement situations between the switching element 6 with the rotational system 23 and the bolt 11 in the end position 9 of the switching element 6 and/or in the starting position 7 of the switching element.
a to 11f show the sequence of the relative positions between the switching element 6 with the rotational system 23 and the bolt 11 between the axial stops thereof. In
When the switching element 6 is moved further in the direction of the switching end position 9, further loads are applied to the resilient rotational elements 25. This also causes the lateral force upon the second positive-locking retaining elements 34 and 35 to increase. To be able to move the spring tongues (second resilient rotational elements 29 and second operative surfaces 28) that are connected thereto against the non-positive force in contact with and out with the bolt teeth, these spring tongues are prevented from topping out by the axial stop 59 on the spring plates 45.
c and 9a show how the switching element 6 has been moved by the force from the actuator 5 as far as end position 9. The resilient rotational elements 29 thereof with the slanting operative surfaces 28 have been completely disengaged from the bolt 11. The forces on the previously preloaded resilient rotational elements 25 can now engage in such a manner via the slanting operative surfaces 24 on the slanting molded elements 26 on the bolt, presently on the short bolt teeth 52, that the bolt is rotated downward in the circumferential direction by a first angular pitch 21, as shown in
As geometric requirement for achieving the correct contact between the operative surfaces 24 of the rotational system 23 that is connected to the switching element 6 and the slanting molded elements 26 on the bolt, in this embodied variant, the angular pitch 57 is between the first positive-locking retaining element 33 and the second positive-locking retaining element 35 on the switching element 6, plus the first angular pitch 21 or minus the second angular pitch 22 a whole-numbered multiple of the angular pitch 20 between the relative positions 16 and 18. To be taken into account therein is the fact that the offset angle 44 between the first positive-locking retaining elements 32 and the second positive-locking retaining elements 34 is zero at the bolt 11, because they are formed by coaxial grooves in the bolt.
When the actuator 5 is deactivated, only the force from the elastic actuating element 10 acts on the switching element 6 in the axial direction in order to move the switching element 6 in the direction toward the starting position 7.
The second operative surfaces 28 of the rotational system 23 that are connected to the second resilient rotational elements 29 come into contact with two slanting molded elements 30 on the bolt during this movement of the switching element 6, specifically the long bolt teeth 53 of the bolt, and they are preloaded therein. To allow the resilient rotational elements sufficient spring deflection, the, in the present embodied variant, the neighboring coupling sleeve has localized cutouts, which are discernable in
The resilient rotational elements 25 with the slanting operative surfaces 24 and the correspondingly formed first positive-locking retaining elements 33 on the switching element are still in lateral contact with the first positive-locking retaining elements 32 on the bolt 11, specifically in such a manner that the forces from the slanting operative surfaces 28 on the slanting molded elements 30 on bolt 11 are not yet able to rotate the bolt in the circumferential direction, in
As soon as, as demonstrated in
In the starting position 7, the movement of the switching element 6 is limited by a stop 19, as seen in
a to 12f demonstrate the sequence of switching positions, when the switching element 6 is moved once again, by activation of actuator 5, from the starting position 7 into the end position 9. The bolt 11 is rotated therein by a first angular pitch 21. Following deactivation of the actuator, only the force of the elastic actuating element 10 is in effect in the axial direction acting on the switching element 6 pulling the same back in the direction of the starting position 7. The bolt 11 therein is rotated still further by a second angular pitch 22, such that the switching element 6 with the switching element stops 14 on the contact teeth 51 makes contact again with the bolt stops 15 on the long bolt teeth 53. This causes the movement of the switching element 6 to be limited again in the central position 8.
After locking the coupling sleeve 43 in the switching teeth 42, the switching element 6 is moved still further to the left, as far as end position 9. The actuating force that is needed for this purpose is greater than the preloading force of the second elastic actuating element 10b. This results in an elastic deformation of this second elastic actuating element 10b, and thereby an energy storage in this element.
During the axial movement thereof, the switching element 6 is in complex engagement with a bolt 11 that is unable to move in the axial direction because it is seated with minimal play between the two axial stops 12 and 13.
a to 16f depict the sequence of the relative positions between the switching element 6 with the rotational system 23 and the bolt 11 between the axial stops.
In
Only when, as seen in
After the rotation around the first angular pitch 21, the switching element 6 and the bolt 11 are located in a relative position, such that after deactivating the actuator 5 and, due to the forces from the elastic actuating elements 10a and 10b, the switching element 6 makes contact with second operative surfaces 28 of the rotational system 23 against second slanting molded elements 30 at the bolt 11. With a further axial movement of the switching element 6 in the direction of the starting position 7, second resilient rotational elements 29 are preloaded and the bolt 11 is rotated in relation to the switching element 6 by a second angular pitch 22 until the switching element 6 engages initially with second 35 then third positive-locking retaining elements 37 in initially second 34 then third positive-locking retaining element 36 on the bolt 11. In this embodied variant, the second and the third retaining elements on the bolt and on the switching element are constituted by the same operative surfaces. This distinction is only necessary in a comparison with the first embodied variant.
The switching element 6 and the bolt 11 remain in this second relative position 18 until the switching element 6 makes contact in the starting position 7 with a stop 19 for the switching element in the starting position 7. In the present embodied variant, this stop 19 is implemented as a stop on the sleeve support 38 that is axially fixed in place in the switchable coupling 1. The third positive-locking retaining elements on bolt 36 on the bolt constitute simultaneously the bolt groove 17, and through which the switching element 6 is able to glide together with all the molded elements thereof as far as the starting position 7. In this starting position 7, the switchable coupling in this embodied variant is in the switching position “coupling=open.” In the starting position 7, the rotational system 23 is once again disengaged by the operating surfaces 24 thereof from the bolt 11. The second resilient rotational elements 29 relax, and the rotational system 23 returns to a relative position in relation to the bolt 11, where once again, when the switching element 6 moves in the direction of the end position 9, first operative surfaces 24 of the rotational system make contact with first slanting molded elements 26 on the bolt.
In the next movement of the switching element 6 as far as the end position 9, which is initiated by the activation of the actuator 5, first, once again, the first resilient rotational element 25 is preloaded, and then the bolt 11 is rotated in relation to the switching element by the first angular pitch 21, as soon as the end position 9 of the switching element 6 is disengaged from the bolt 11 and the resilient rotational element 25 is able to relax again.
Following the deactivation of the actuator 5, the elastic actuating element 10 pulls the switching element 6 back in the direction of the starting position 7. The second operative surfaces 28 of the rotational system 23 therein make contact once again with the second slanting molded elements 30 on the bolt 11, preloading the second resilient rotational elements 29 and rotating the bolt 11 in relation to the switching element 6 once again by the second angular pitch 22. In the central position 8, the switching element once again makes contact by the switching element stops 14 with the bolt stops 15 that limit the axial movement of the switching element in the central position 8.
As depicted in
a to 20f demonstrate the sequence of the relative positions between the switching element 6 with the rotational system 23 and the bolt 11 between the axial stops thereof. In
After the rotation around said first angular pitch 21, first positive-locking retaining elements 32 on the bolt, which are then engaged with first positive-locking retaining elements 33 on the switching element, prevent any inadvertent further rotation. In the present embodied variant, these first retaining elements are the teeth of the end toothed rings 75 of the rotational system 76 of the switching element that is connected to the bolt 76 and held in the engagement position by the axial springs 74.
The geometric requirement for the correct contact between the operative surfaces 24 of the rotational system 23 that is connected to the bolt 11 and the slanting molded elements 27 on the switching element 6 for this third embodied variant is that the angular pitch 57 between the first positive-locking retaining elements 33 and the second positive-locking retaining elements 35 on the switching element 6, minus the offset angle 44 between the first positive-locking retaining elements 32 and the second positive-locking retaining elements 34 on the bolt 11, plus the first angular pitch 21 or minus the second partial angular pitch 22 is a whole-numbered multiple of the angular pitch 20 between the relative positions 16 and 18. In the third embodied example therein, this offset angle is greater zero, because said retaining elements are in fact not formed by coaxial grooves in the bolt.
In this embodied variant of the coupling according to the invention 1, it is important, furthermore, that the angular pitch of both end toothed rings 75 and 76 is as great as the angular pitch 20. Following the rotation around the first angular pitch 21, the switching element 6 and the bolt 11 are located in such a relative position that, following the deactivation of the actuator 5 and, due to forces from the elastic actuating elements 10 of the bolt 11, the second operating surfaces 28 of the rotational systems 23 make contact with second slanting molded elements 31 on the switching element 6. With a further axial movement of the switching element 6 in the direction of the starting position 7, the axial springs 74 are now preloaded as second resilient rotational elements 29, and the bolt 11 is rotated in relation to the switching element 6 by a second angular pitch 22, until the switching element 6 engages initially with second 35 and then with third positive-locking retaining elements 37 initially in second 34 and thereafter in third positive-locking retaining elements 36 on the bolt 11. In this embodied variant as well, the second and third retaining elements on the bolt and on the switching element are constituted by the same operative surfaces. This distinction is, as mentioned previously, only necessary in a comparison with the first embodied variant. The switching element 6 and the bolt 11 remain in this second relative position 18 until the switching element 6 makes contact in the starting position 7 with a stop 19 for the switching element. In the present embodied variant, this stop 19 is embodied as a stop on the disc support 61 that is axially fixed in place in the switchable coupling 1.
The third positive-locking retaining elements on the bolt 36 presently constitute, simultaneously, the bolt groove 17 through which the switching element 6 can glide together with all the molded elements thereof as far as starting position 7. In the present embodied example, the switchable coupling is in this starting position 7 in the switching position “coupling=open.”
In the starting position 7, the rotational system 23 has been disengaged again by the operative surfaces 24 thereof from the switching element 6. The second resilient rotational elements 29 relax and the rotational system 23 returns to a relative position in relation to the switching element 6 in which, when the switching element 6 moves in the direction of the end position, first operative surfaces 24 of the rotational system make contact with first slanting molded elements 27 on the switching element 6.
In this embodied variant of the switchable coupling the first elastic rotational elements 25 are created by the interaction of the axial springs 74 with the slanting first operative surfaces 24 of the rotational system when the same make contact with the first slanting molded elements 27 on the switching element. The second resilient rotational elements 29 are created from the interaction of the same axial springs 74 with the second operative surfaces 28 of the rotational system, when the same make contact with the second slanting molded element 31 on the switching element. This is the only way in which it is possible in this embodied variant to create rotational torques in the circumferential direction over two operating surfaces using an axial spring. With the next movement of the switching element 6 as far as the end position 9, initiated by the activation of the actuator 5, the first resilient rotational element 25 is preloaded initially, then the bolt 11 is rotated in relation to the switching element by an angular pitch 21, as soon as the switching element 6 disengages in the end position 9 from the bolt 11, and the resilient rotational element 25 can relax again.
Following the deactivation of the actuator 5, the elastic actuating element 10 pulls the switching element 6 back in the direction of the starting position 7. The second operative surfaces 28 of the rotational system 23 therein make contact with second slanting molded elements 31 on the switching element 6, preloading the second resilient rotational elements 29 and rotating the bolt 11 in relation to the switching element again by the second angular pitch 22. In the central position 8, the switching element again makes contact by the switching element stops 14 thereof with the bolt stops 15 that limit the axial movement of the central position.
There exist further structural solutions for the configuration of the switching element 6, of the bolt 11 and of the rotational system 23 in all three embodied variants, particularly for the configuration of the operative surfaces on the engagement elements of these parts, all of which have the same effect with regard to the basic function.
To Summarize:
By certain molded elements, the switching element 6 is able to penetrate corresponding molded elements on the bolt 11; specifically, in a first relative position as far as a central position 8 and in a second relative position as far as a starting position 7. In the starting position 7 and in the central position 8, the switchable coupling has different coupling states (open or closed). With a movement of the switching element 6 relative to the bolt 11 from the central position 8 to the end position 9, the rotational system 23 provides for a rotation by a first angular pitch 21. With a reverse movement of the switching element 6 in relation to the bolt 11 from the end position 9 as far as the central position 8, the rotational system 23 provides for the further rotation by a second partial angular pitch 22. The two partial angular pitches 21 and 22 are combined into angular pitch 20. The bolt 11 with the rotational system, eventually connected thereto, is therein never completely disengaged from the switching element 6 and the rotational system 23 that is eventually connected thereto. Therefore, it cannot inadvertently become misadjusted, either by itself or by other external effects, and move to an undesired position.
To the person skilled in the art it is naturally immediately obvious that the previously described components can also be constructed of further components if this will simplify the manufacture of the components.
Similarly, it is also clear to the person skilled in the art that the different locking systems comprised of switching element 6, bolt 11 and rotational system 23, which are explained in an exemplary manner in a variant of the switchable coupling, can also be used in the context of the other coupling variants.
The foregoing disclosure has been set forth merely to illustrate the invention and is not intended to be limiting. Since modifications of the disclosed embodiments incorporating the spirit and substance of the invention may occur to persons skilled in the art, the invention should be construed to include everything within the scope of the appended claims and equivalents thereof.
Number | Date | Country | Kind |
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20 2010 012 903.6 | Nov 2010 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/DE2011/075273 | 11/15/2011 | WO | 00 | 7/31/2013 |