ROTATION ACTUATING DEVICE AND METHOD FOR OPERATING A ROTATION ACTUATING DEVICE OF THIS TYPE
20230063046 · 2023-03-02
Inventors
Cpc classification
International classification
Abstract
The invention relates to a rotation actuating device (1), comprising a base (2), a rotor (3) and at least two groups (40, 42) of drive units, each group comprising at least two drive units (4), wherein the drive units (4) are arranged peripherally on the base (2) and between the base and the rotor (3), wherein each drive unit (4) comprises two deflectable actors (5), which are arranged in a V-shape with respect to each other, and a friction element (6), which is connected to both actors, and wherein the rotor (3) and the friction elements (6) are pressed in a direction toward each other by means of a spring device (30) arranged between the drive units (4), such that, when the actors (5) are not deflected, all the friction elements (6) are in contact with the rotor (3) and jointly span a contact plane (K), wherein a continuous movement of the rotor (3) is realized by means of phase-offset control of the actors (5) of different groups (40, 42) of drive units (4). The invention further relates to a method for operating the rotation actuating device
Claims
1. Rotation actuating device having a base, a rotor, and at least two groups of drive units which each comprise at least two drive units, wherein the drive units are arranged circumferentially on the base and between the latter and the rotor, and each drive unit comprises two deflectable actors arranged in a V-shape with respect to one another and a friction element which is connected to both actors, and wherein the rotor and the friction elements are pressed towards each other in a direction by means of a spring device which is arranged between the drive units such that, when the actors are not deflected, all the friction elements are in contact with the rotor and jointly span a contact plane, wherein a continuous movement of the rotor is realized by means of phase-offset actuation of the actors of different groups of drive units.
2. The rotation actuating device according to claim 1, wherein the spring device is formed in one piece with the rotor
3. The rotation actuating device according to claim 1, characterized in that wherein the spring device comprises slit-shaped recesses.
4. The rotation actuating device according to claim 1, wherein the actors are each supported on the base via a support section which is connected to the base via a joint.
5. The rotation actuating device according to claim 1, wherein the rotor comprises a friction disc which is provided for contact with the friction elements.
6. The rotation actuating device according to claim 1, wherein a shaft is formed in one piece with the rotor and projects through the base, wherein the shaft is provided for attaching an element to be positioned by the rotation adjusting device thereto.
7. The rotation actuating device according to claim 1, wherein the actors comprise an electromechanical material and preferably consist thereof.
8. The rotation actuating device according to claim 7, wherein the actors consist of piezoelectric and preferably of piezoceramic material.
9. A method for operating the rotation actuating device according to claim 1, wherein different groups of drive units are actuated in a phase-offset manner with respect to one another.
10. A method for operating the rotation actuating device according to claim 9, wherein the actuation of the respective group of drive units effects a defined movement path of the friction elements associated with these drive units, which comprises a vertical movement component arranged substantially perpendicular to the contact plane and a horizontal movement component arranged substantially parallel to the contact plane, and due to the vertical movement component which acts against the force of the spring device, a bringing the friction elements of the actors of the respective other group of drive units out of contact with the rotor results and, due to the horizontal movement component generation of a defined drive step of the rotor in the drive direction results.
Description
[0021] The following is a description of an embodiment of the rotation actuating device according to the invention with regard to the corresponding figures, wherein the same reference signs relate to identical parts of the different figures.
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028] Each drive unit 4 is formed by two elongated piezoelectric actors 5, which are arranged relative to one another in such a way that they commonly essentially form a V-shape, wherein the ends of the two actors 5 of a drive unit 4 pointing away from the base 2 are connected or coupled to one another via a substantially triangular friction element 6. The respective other end of each actor 5 of a drive unit 4, which points towards the base 2, is supported on a support section 20 which is connected to the base 2 via a solid-state joint. The support section 20 and the solid-state joint are formed in one piece or integrally with the base 2.
[0029] The central planes of the two actors 5, which are assigned to a drive unit 4 and are arranged in a V-shape relative to one another, span a plane which defines a drive unit center plane A, wherein the drive unit center planes A of the drive units 4 arranged diametrically opposite one another lie substantially parallel to one another, and wherein the drive unit center planes A of adjacent drive units 4 are arranged substantially perpendicular to one another.
[0030] The column-shaped piezoelectric actors consist of a piezoceramic material. The same are each connected both to the associated joint 20 and to the associated friction element 6 in a materially bonded manner, in particular by adhesive bonding. The two actors 5 which are associated with a drive unit 4 enclose between them an angle of approximately 90°.
[0031] In the rest state of the rotation actuating device shown in
[0032] The friction disc 60 is arranged substantially parallel to the base 2 and spaced apart therefrom, the drive units 4 being located between the base 2 and the friction disc 60. This contact points or contact surfaces of the friction elements 6 with the friction disc 60 lie substantially in a contact plane K (see
[0033] The socle 200 serves to receive the cables leading to the actors 5 of the drive units 4, by means of which the electrical voltage supply of the actors 5 is ensured. These inner cables are connected to the supply line 220. The socle 200 is also used to mount the rotation actuating device on a higher-level unit. It is conceivable to integrate electronic components into the socle 200 for controlling the rotation actuating device 1, such as sensors, receivers, controllers, drivers, etc. In addition, it is conceivable to provide a battery or an accumulator for the independent energetic supply of the rotation actuating device in the socle 200.
[0034] The rotor 3 is mounted rotatably relative to the fixed base 2. A spring device 30 is formed integrally or in one piece with the rotor on its inner circumference, wherein the spring device 30 is arranged centrally and between the drive units 4, so that the drive units 4 surround or frame the spring device 30 in a circumferential manner. The resilient action of the spring device 30 is realized by slit-shaped recesses 32 which point in the circumferential direction of the rotor 3 and are spaced apart in the axial direction of the rotor 3. The spring device 30 of the rotor 3 causes the rotor 3 or the friction disc 60 to be pressed elastically against all the friction elements 6 of the drive units 4.
[0035]
[0036]
[0037] Furthermore, it can be seen from
[0038] In order to adjust the spring force with which the rotor 3 or the friction disc 60 is elastically pressed against the friction elements 6 of the drive units 4, a clamping nut 7 acts on a corresponding threaded section of the shaft 34 and is supported on a bearing 8. By rotating the clamping nut 7 onto the threaded section of the shaft 34, the shaft 34 and thus the rotor 3 are moved in the direction of the clamping nut 7 (in
[0039] The bearing 8 is an angular ball bearing which is prestressed by the clamping nut 7 screwed onto the threaded section of the shaft 34. A second angular ball bearing 8′ is separated from the first angular contact ball bearing 8 by a snap ring and is prestressed by a plate spring 9 provided between the rotor 3 and the latter.
[0040]
[0041] In a method according to the invention for operating a corresponding rotation actuating device according to
[0042] Due to the shape of the movement path of the friction elements 6 of the drive units 4, which is preferably elliptical and thus comprises both horizontal movement components substantially parallel to the contact plane K and vertical movement components substantially perpendicular to the contact plane K and substantially parallel to the drive unit center planes A, the drive movement of a group 40, 42 of drive units 4 effects or the vertical movement components of the respective friction element 6 effect a force on the spring device 30 of the rotor 3, which counteracts the spring force exerted by said spring device, wherein the spring force ensures a movement of the rotor 3 or friction disc 60 in the direction of the friction elements 6, whereby the effect results that, in a purely mechanical or passive manner, the friction elements 6 of the respective other group of drive units 4, which are not used for propulsion, are lifted or brought out of contact. It is thus ensured that, during an advance step—implemented by a group of drive units 4 or by means of the horizontal components of the movement paths of the friction elements assigned to them—the friction elements of the drive units 4 of the respective other group do not impede this advance step by their contact with the friction disc 60 of the rotor 3.
[0043] It can be advantageous that the previously described process of mechanically caused lifting of the friction elements of a group of drive units is supported by a corresponding electrical actuation of the actors of this group of drive units, in which the same experiences a certain length reduction.
[0044] According to
[0045] In addition to the two arrangements of the drive units shown in
LIST OF REFERENCE SIGNS:
[0046] 1: Rotation actuating device
[0047] 2: Basis
[0048] 3: Rotor
[0049] 4: Drive unit
[0050] 5: actor (of the drive unit 4)
[0051] 6: Friction element (the drive unit 4)
[0052] 7: Clamping nut
[0053] 8, 8′: Angular ball bearing
[0054] 9: Disc spring
[0055] 20: Support section
[0056] 30: Spring device
[0057] 32: slit-shaped recesses (of the spring device 30)
[0058] 34: Shaft (of rotor 3)
[0059] 40: first group of device units 4
[0060] 42: second group of device units 4
[0061] 60: friction disc
[0062] 200: socle
[0063] 220: electrical supply line
[0064] A: drive unit center plane
[0065] K: contact plane