ACTUATOR ASSEMBLY
20230202446 · 2023-06-29
Inventors
- Florian Kupp (Koblenz, DE)
- Peter Kohns (Vallendar, DE)
- Bogdan Draghici (Herschbach, DE)
- Gokula Kannan Krishnaswamy (Friedrichshafen, DE)
- Nikolas Thönnißen (Koblenz, DE)
- Hans Friedrich (Koblenz, DE)
Cpc classification
F16D65/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2125/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T13/746
PERFORMING OPERATIONS; TRANSPORTING
B60T13/741
PERFORMING OPERATIONS; TRANSPORTING
F16D2125/48
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An actuator assembly for a vehicle brake is disclosed. The actuator assembly comprises, a carrier assembly, which comprises a first transmission plate and a second transmission plate, wherein the two transmission plates are connected to one another via a carrier component, are mounted in an actuator housing and carry a transmission unit. The first transmission plate has a fastening interface for an electric motor and is mounted in an elastically damped manner on the carrier component, and the second transmission plate is rigidly coupled to the carrier component.
Claims
1. An actuator assembly for a vehicle brake, comprising a carrier assembly, which comprises a first transmission plate and a second transmission plate, wherein the two transmission plates are connected to one another via a carrier component, are mounted in an actuator housing and carry a transmission unit, wherein the first transmission plate has a fastening interface for an electric motor and is mounted in an elastically damped manner on the carrier component, and the second transmission plate is rigidly coupled to the carrier component.
2. The actuator assembly according to claim 1, wherein at least one bearing journal for a gear wheel is arranged on the carrier component, and the first transmission plate and the carrier component and/or the second transmission plate and the carrier component are aligned with respect to one another, by the at least one bearing journal.
3. The actuator assembly according to claim 2, wherein a plurality of bearing journals connects the first transmission plate and the carrier component, and the bearing journals support gear wheels of an intermediate transmission between the motor and an output-side planetary transmission.
4. The actuator assembly according to claim 1, wherein at least one elastic arm is formed on the first transmission plate, and the first transmission plate is coupled to the carrier component via the at least one elastic arm.
5. The actuator assembly according to claim 2, wherein a bearing eye, in which a bearing journal is accommodated, is formed on a free end of at least one elastic arm formed on the first transmission plate.
6. The actuator assembly according to claim 1, wherein the second transmission plate rests against an end face of the carrier component and a bearing cover rests against an opposite end face of the carrier component from the second transmission plate, wherein the bearing cover and the second transmission plate each have mutually corresponding connecting arrangements and are connected to one another in such a way that the second transmission plate is secured on the carrier component by the bearing cover.
7. The actuator according to claim 6, wherein the bearing cover and the second transmission plate are latched to one another.
8. The actuator assembly according to claim 1, wherein the carrier assembly is accommodated with positive engagement in the actuator housing by a shaft-hub connection.
9. The actuator assembly according to claim 1, wherein the actuator assembly comprises a planetary transmission, and a ring gear of the planetary transmission is integrated into the carrier component.
10. The actuator assembly according to claim 1, wherein an electric motor is fastened to the first transmission plate, and the first transmission plate is mounted elastically in the actuator housing.
11. The actuator assembly according to claim 1, wherein at least one bearing journal for a gear wheel is arranged on the carrier component, and the first transmission plate and the carrier component and/or the second transmission plate and the carrier component are connected to one another, by the at least one bearing journal.
12. The actuator assembly according to claim 11, wherein at least one elastic arm is formed on the first transmission plate, and the first transmission plate is coupled to the carrier component via the at least one elastic arm.
13. The actuator assembly according to claim 3 wherein a bearing eye, in which a bearing journal is accommodated, is formed on a free end of at least one elastic arm formed on the first transmission plate.
14. The actuator assembly according to claim 12, wherein the second transmission plate rests against an end face of the carrier component and a bearing cover rests against an opposite end face of the carrier component from the second transmission plate, wherein the bearing cover and the second transmission plate each have a mutually corresponding connecting arrangement and are connected to one another in such a way that the second transmission plate-is secured on the carrier component by the bearing cover.
15. The actuator assembly according to claim 11, wherein the carrier assembly is accommodated with positive engagement in the actuator housing by a shaft-hub connection.
16. The actuator assembly according to claim 15, wherein the actuator assembly comprises a planetary transmission, and a ring gear of the planetary transmission is integrated into the carrier component.
17. The actuator assembly according to claim 11, wherein an electric motor is fastened to the first transmission plate, and the first transmission plate is mounted elastically in the actuator housing.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0025] Further advantages and features of the disclosure will be found in the following description and in the accompanying drawings, to which reference is made. In the drawings:
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION
[0032]
[0033] The actuator housing 12 has a shell-shaped part 14 and a housing cover 16.
[0034] It can also be seen in
[0035] In this case, an axis of rotation R of the electric motor 20 is parallel to a direction of movement of a brake piston, which is not illustrated in the figures for the sake of simplicity.
[0036] By way of example, the electric motor 20 drives a spindle drive 21 (illustrated schematically in
[0037] The actuator housing 12 has a receptacle 22 for the spindle drive 21.
[0038]
[0039] The transmission unit 24 comprises a cylindrical gear stage 26, an intermediate transmission 28, and a planetary transmission 30.
[0040] The cylindrical gear stage 26 has a drive wheel 32, which is coupled to the electric motor 20 via a drive shaft 34 and is driven by the electric motor 20.
[0041] Furthermore, the cylindrical gear stage 26 comprises an end-side gear wheel 36, with which the drive wheel 32 is in mesh. Consequently, the gear wheel 36 is driven by the drive wheel 32.
[0042] A gear wheel 38, which is assigned to the intermediate transmission 28, is in turn coupled for conjoint rotation to the end-side gear wheel 36.
[0043] The end-side gear wheel 36 and gear wheel 38 have the same axis of rotation X. However, the gear wheel 38 of the intermediate transmission 28 has a smaller diameter than the gear wheel 36 of the cylindrical gear stage 26.
[0044] In one exemplary arrangement, the gear wheels 36, 38 are designed as double gear wheels.
[0045] In addition to gear wheel 38, the intermediate transmission 28 comprises two identically designed intermediate wheels 40 and an output wheel 42.
[0046] Gear wheel 38 meshes with both intermediate wheels 40 and drives them.
[0047] The intermediate wheels 40 are in turn in mesh with the output wheel 42 and drive the output wheel 42.
[0048] The output wheel 42 is coupled for conjoint rotation to a sun wheel 44 (see
[0049] The spindle drive 21 of the actuator assembly 10 is driven by the planetary transmission 30.
[0050] Consequently, the transmission unit 24 couples the electric motor 20 in terms of drive to the spindle drive 21 of the actuator assembly 10 in order to move a brake piston linearly.
[0051] The transmission unit 24 is supported by a carrier assembly 50, which can be seen in
[0052]
[0053] The carrier assembly 50 comprises a first transmission plate 52 and a second transmission plate 54.
[0054] The two transmission plates 52, 54 are connected to one another via a carrier component 56, which in
[0055] The ring gear 48 of the planetary transmission 30 is integrated into the carrier component 56, as can be seen in
[0056] The first transmission plate 52 has a fastening interface 58 for the electric motor 20.
[0057] A plurality of bearing journals 60, 62 is arranged on the carrier component 56.
[0058] The bearing journals 60, 62 support gear wheel 38 and the intermediate wheels 40 of the intermediate transmission 28.
[0059] In addition, the bearing journals 60, 62 serve to connect the first transmission plate 52 and the carrier component 56 as well as the second transmission plate 54 and the carrier component 56 to one another and to align them with one another.
[0060] More precisely, the first transmission plate 52 is fastened on the carrier component 56 by the bearing journals 60, which support the intermediate wheels 40. Fastening by way of two bearing journals 60 ensures that the first transmission plate 52 is simultaneously aligned in a defined position on the carrier component 56.
[0061] For the purpose of fastening on the carrier component 56, two elastic arms 64 are formed on the first transmission plate 52, and the first transmission plate 52 is coupled to the carrier component 56 via the elastic arms.
[0062] At the free end of each of the elastic arms 64, a bearing eye 66 is formed, the bearing journals 60 being accommodated in the bearing eyes 66.
[0063] By virtue of the fact that the first transmission plate 52 is fastened on the carrier component 56 by elastic arms, the first transmission plate 52 is mounted not rigidly but in an elastically damped manner on the carrier component 56. Thus, the first transmission plate 52 can oscillate with the electric motor 20 during operation.
[0064] As can be seen in
[0065] The second transmission plate 54, on the other hand, is rigidly coupled to the carrier component 56.
[0066] As can be seen in
[0067] For this purpose, a bearing eye 68 is likewise formed on the second transmission plate 54.
[0068] Moreover, the second transmission plate 54 is fastened on the carrier component 56 by a bearing cover 70. The bearing cover 70 covers a transmission chamber 72, in which the transmission unit 24 is accommodated, and separates this from the receptacle 22 for the spindle drive.
[0069] In this case, the second transmission plate 54 rests against an end face 74 of the carrier component 56 and the bearing cover 70 rests against an opposite end face 76 of the carrier component 56 from the second transmission plate 54.
[0070] The bearing cover 70 and the second transmission plate 54 each have a mutually corresponding connecting arrangement 78 and are connected to one another in such a way that the second transmission plate 54 is secured on the carrier component 56 by the bearing cover 70.
[0071] To be precise, in one exemplary arrangement, the bearing cover 70 has integrally formed latching noses 80, which are latched into corresponding recesses 82 in the second transmission plate 54.
[0072]
[0073] In addition, the second transmission plate 54 is centred by its inner wall 84 on a circumferential wall 86 of the carrier component 56 (see
[0074] The second transmission plate 54 is in turn clamped axially between the bearing cover 70 and the actuator housing 12, in particular the housing cover 16.
[0075] The bearing cover 70 is clamped axially between the actuator housing 12, in particular the shell-shaped part 14, and the second transmission plate 54 as well as the carrier component 56.
[0076] This means that the bearing cover 70, the carrier component 56 and the second transmission plate 54 are clamped axially in the actuator housing 12 between the shell-shaped part 14 and the housing cover 16. As a result, forces acting in the axial direction in the region of the second transmission plate 54 can be dissipated particularly well via the actuator housing 12.
[0077] 1 In addition, the carrier assembly 50 is accommodated with positive engagement in the actuator housing 12 by a shaft-hub connection 88 (see
[0078] In particular, the shaft-hub connection 88 is formed between the carrier component 56 and the actuator housing 12.
[0079] Due to the shaft-hub connection 88, the carrier assembly 50 is accommodated non-rotatably in the actuator housing 12. It is thus possible for torques which are transmitted from the spindle drive to the transmission unit 24 to be dissipated via the actuator housing 12.
[0080] In order to additionally damp vibrations of the electric motor 20, the electric motor 20 is supported, on the one hand, directly and, on the other hand, via the first transmission plate 52 by additional damping elements 90, as can be seen in