Electromechanical Actuator having Design Elements for Improved Oil Guidance
20250172199 ยท 2025-05-29
Inventors
Cpc classification
F16H57/0497
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/0421
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A linear actuator includes a hermetically sealed housing, a cantilever that can be retracted into and extended out of the housing, and several components provided in the linear actuator. The components are configured so as to facilitate a flow of lubricating oil through the linear actuator, in particular when the cantilever is rapidly retracted and extended. This is achieved in that through-holes are provided in some components, through which lubricating oil and gas that has been filled into the housing can flow upon retraction and extension.
Claims
1. A linear actuator, comprising: a housing; a cantilever, wherein the cantilever is borne along a longitudinal axis in a linearly movable manner in a first cavity of the housing and projects out of the housing, and wherein the cantilever comprises a second cavity and a threaded nut that engages in a screw-like manner with a threaded spindle, and wherein the threaded nut is configured to be borne in a torque-proof manner in the housing; a spindle pivot bearing in which the threaded spindle is borne in the housing at an end facing away from the cantilever; and a motor configured to rotate the threaded spindle, wherein the housing and the cantilever are configured to take up a space that is hermetically sealed against the external atmosphere by way of seals and is filled with a fluid, wherein the fluid comprises compressible and incompressible constituents, and wherein one or more components in the space sealed against the external atmosphere each comprise at least one through-hole, respectively, which allows the fluid to pass through upon a change of state of the linear actuator.
2. The linear actuator according to claim 1, wherein the components comprise a shaft sealing ring.
3. The linear actuator according to claim 1, wherein a through-hole is provided in at least one pivot bearing for bearing the cantilever.
4. The linear actuator according to claim 1, wherein a through-hole is provided in the threaded spindle.
5. The linear actuator according to claim 1, further comprising a piston which is received at the second end of the threaded spindle in a rotatable manner about the longitudinal axis via a piston pivot bearing.
6. The linear actuator according to claim 5, wherein a through-hole is provided in the piston.
7. The linear actuator according to claim 1, wherein a through-hole is provided in the threaded nut and furthermore extends parallel to the longitudinal axis of the linear actuator.
8. The linear actuator according to claim 1, further having an adapter part provided on the threaded nut and an internal thread, an external thread, a first collar projecting radially inward, and a second collar projecting radially outward, wherein the cantilever is screwed into the internal thread and tensioned against the first collar, and the threaded nut is screwed onto the external thread and tensioned against the second collar.
9. The linear actuator according to claim 1, wherein the fluid in the hermetically sealed space of the linear actuator comprises a liquid portion and a gaseous portion, wherein the amounts of the liquid portion and the gaseous portion are determined such that, in a maximally retracted state of the linear actuator, an internal pressure in the linear actuator does not substantially exceed a value of 2 MPa and the internal pressure in a maximally extended state does not substantially fall below a value of 0.8 MPa.
10. The linear actuator according to claim 1, wherein the threaded spindle comprises a spindle sealing surface on its external circumferential surface that has a constant radius in relation to the longitudinal axis, wherein the at least one first opening is arranged respectively in the direction of the longitudinal axis between the spindle sealing surface and the spindle pivot bearing, wherein the spindle sealing surface is in sealing contact with a separate sealing ring, and wherein the sealing ring is fastened onto the housing in such a way that it seals the first cavity.
11. The linear actuator according to claim 1, wherein the motor is an electric motor.
12. The linear actuator according to claim 5, wherein the piston is configured in the form of a pot.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION
[0023] Two exemplary embodiments of the present disclosure will be described in the following on the basis of the accompanying figures.
First Exemplary Embodiment
[0024] Based on
[0025]
[0026] If the electric motor 14 now rotates the threaded spindle 40, the threaded nut 62 in the tube 22 moves to the left and to the right. The threaded nut 62 is connected to the cantilever 60, which thus extends out of and retracts into the housing 20. The cantilever is guided in a third housing portion 23 of the housing 20. The third housing portion 23 also performs the sealing of the internal space against the external environment at the guide of the cantilever 60. Also provided are a piston 50, a piston pivot bearing 51, and a front plate 52. The piston 50 abuts in a substantially fluid-tight manner against an internal circumferential surface 61 of the cantilever 60 such that it seals a first cavity 11 in the tube 22 and a second cavity 12 in the cantilever 60 against one another, wherein the second cavity is arranged on the side of the piston 50 facing away from the spindle pivot bearing 43.
[0027] According to the disclosure, several of the aforementioned components comprise through-holes or longitudinal channels in order to improve a flushing or passage of lubricating oil and gas as a fluid, in particular upon rapid retraction and extension, and thereby reduce the pressure difference discussed above. For example, a first longitudinal channel 81 is provided as a through-hole in the threaded spindle 40. A second longitudinal channel 82 (or several channels) is provided in the bearing support 21. A third longitudinal channel 83 is located in the piston 50, and a fourth longitudinal channel 84 penetrates an adapter part 70 provided on the spindle nut 62. In addition to the longitudinal channels, skewed or radial through-holes such as a radial hole 24 in the bearing support 21 can also facilitate the passage of lubricating and cooling fluid.
[0028] With such through-holes in the components located in the hermetically enclosed space, the fluid can flow through the internal space of the linear actuator 10 with as little resistance as possible. This improves the efficiency, as discussed above.
[0029] A first cavity 11 in the bearing support 21 is at least partially filled with a liquid, as discussed. The threaded nut 62 is open at its two ends lying opposite one another in the direction of the longitudinal axis 13 such that the liquid can flow through the threaded nut 62 upon a movement of the cantilever 60.
[0030] As an example for the disclosure, a first longitudinal channel 81 is arranged inside the threaded spindle 40, as seen in
[0031] The spindle pivot bearing 43 is preferably configured as a rolling bearing, wherein it can comprise several tapered roller bearings or axial spherical roller bearings. For example, in
[0032] The threaded nut 62 and the threaded spindle 40 are preferably engaged with one another in a screw-like manner via rolling bodies, in particular in the manner of planetary threaded drive, wherein the rolling bodies are the corresponding planetary rollers. However, it is also contemplated that the threaded nut 62 and the threaded screw 50 are engaged in the manner of a ball screw drive, wherein the rolling bodies are balls that preferably circulate continuously. Adjacent to the rolling bodies, cavities are provided in the threaded nut 62, through which the fluid can flow. In the case of planets or rollers, holes can also be provided through the rollers or planets in the axial direction thereof in order to further reduce the resistance against the fluid flow.
[0033] The fluid comprises a proportion of gas and a proportion of liquid. The liquid is preferably oil, in particular lubricating oil. The portion of the first cavity 11 remaining after the liquid is preferably filled with a gas, in particular air or nitrogen. The gas volume is preferably chosen such that the volume change of the first cavity associated with the movement of the cantilever causes only a little over-pressure or under-pressure that stresses the sealing of the first cavity. For example, depending on the size and stroke of the actuator, a maximum over-pressure of 2 to 3 MPa with the actuator retracted and a maximum under-pressure of 0.2 to 0.5 MPa with the actuator fully extended is desired.
[0034] As can be seen from
[0035] In addition, it can be seen from
[0036] As a further detail discernible in
[0037] The second longitudinal channel 82 in the embodiment of
[0038] As can be seen in
[0039]
[0040] In this embodiment, the piston 50 also comprises the third longitudinal channel 83, which opens into the first cavity 11. The third longitudinal channel 83 passes by the piston pivot bearing 51 such that, upon a movement of the cantilever 60, the fluid can flow through the third longitudinal channel 83 while bypassing the piston pivot bearing 51.
[0041]
[0042] In this embodiment, the total flow resistance of the at least one fourth longitudinal channel 84 is selected such that, upon a movement of the cantilever 60, between 10% and 40% of the liquid flows through the threaded nut 62, while the remainder passes through the first longitudinal channel 81. Such a division has proven to be advantageous in terms of flow, strength, and wear.