The disclosure relates to a ball screw having a spindle nut which is arranged on a threaded spindle and in which balls are received which roll along ball tracks of the spindle nut and the threaded spindle, and having a first stop element associated with the spindle nut and a second stop element associated with the threaded spindle.
DE 10 2008 025 349 A1 discloses a ball screw which has stop parts of which one is arranged on a deflection piece arranged on the spindle nut and another is arranged on the threaded spindle. In a ball screw, either the spindle nut or the threaded spindle is driven. If the threaded spindle is driven, the spindle nut is moved axially upon a rotation of the threaded spindle. Conversely, if the spindle nut is driven, the threaded spindle is moved axially upon a rotation of the spindle nut. The ball screw described in the said publication is designed such that the two stop parts strike against one another when an end position is reached, whereby the relative movement is delimited.
A further ball screw having a stop element is disclosed in DE 10 2008 062 180 A1. Incorporated in the end face of the spindle nut is a groove which is delimited circumferentially by a stop face. If the spindle nut and the threaded spindle are twisted relative to one another, the spindle-side circumferential stop and the nut-side circumferential stop approach one another in one of the two directions of rotation until mutually facing stop faces of the two stops finally strike against one another and prevent a further relative rotation. The spindle nut is therefore prevented from jamming.
In a conventional ball screw of this type, a perceptible noise is produced when the two stop elements contact one another, although this noise is undesirable in certain applications.
Therefore, an object of the disclosure is to provide a ball screw which causes no noise or only a damped stop noise.
To achieve this object, it is provided according to the disclosure that at least one stop element has a resiliently deformable body.
The disclosure is based on the recognition that soundless or at least low-noise operation of a ball screw is possible if a resiliently deformable body is associated with at least one stop element. Upon contact between the two stop elements, a resilient deformation takes place whereby a stop noise is prevented or damped to the extent that it is tolerable.
The ball screw according to the disclosure is advantageous in that the resiliently deformable body can be manufactured economically and can moreover be realized without affecting the installation space.
According to a first embodiment of the disclosure, the spindle nut can be surrounded by a sleeve on which the stop element associated with the spindle nut is integrally formed.
According to a second, alternative embodiment of the disclosure, the stop element associated with the spindle nut can be arranged on a deflection body for the balls.
In one advantageous manner, in the ball screw according to the disclosure, it can be provided that the resiliently deformable body is manufactured from a plastic material or from an elastomer material. The resiliently deformable body can be fixedly connected to the stop element, for example the resiliently deformable body can be vulcanized thereon. However, it can also be held with force fit or form fit; for example, it can be clamped, bonded or screwed on.
The resiliently deformable body of the ball screw according to the disclosure can be arranged either on the spindle nut or on the threaded spindle. In both cases, the resiliently deformable body is associated with the stop element, that is to say it is preferably mounted on the stop element such that the other stop element abuts against the resiliently deformable body when the end position is reached.
A variant of the stop element of the ball screw according to the disclosure provides that the stop element has a rigid component which is surrounded by the resiliently deformable body. The rigid component can be designed for example as a pin or the like, which is surrounded by an annular resilient deformable body. Alternatively, the rigid component can also be designed as a bolt or screw which is surrounded by the resiliently deformable body. The rigid components and the resiliently deformable body can be fixedly connected to one another, for example the rigid component can be extrusion-coated with an elastomer material or the elastomer material can be vulcanized onto the rigid component.
It is also within the scope of the disclosure that that stop element which does not have a resiliently deformable body is movable against a rigid face forming a stop. In this embodiment, this can be a face of the ball screw nut, a face of the sleeve or a face of a deflection body for deflecting the balls.
A further alternative embodiment of the ball screw according to the disclosure provides that the resiliently deformable body is mounted on a deflection body for the balls. The deflection body therefore serves as a stop element and, with the respective other stop element, forms a delimitation for the relative movement between the spindle nut and the threaded spindle.
The ball screw according to the disclosure can be a component of a parking brake for a motor vehicle. In addition, it can also be used in a so-called e-booster and generally in an electromechanical brake or a clutch actuator for a motor vehicle.
The disclosure is explained below with the aid of embodiments with reference to the drawings. The drawings are schematic illustrations and show:
The sleeve 6 is provided with protrusions 10 which are integrally formed thereon in one piece and are arranged distributed over the circumference. The protrusions 10 serve as twist prevention for the spindle nut 3. The protrusions 10 can engage for example in grooves of a component (not shown), for example of a housing or a piston, so that the spindle nut 3 is prevented from twisting relative to this component.
If the stop element 5 associated with the threaded spindle 2 and the stop element 7, that is to say the resiliently deformable body 8, associated with the spindle nut 3 strike against one another when the end position is reached, the impact energy is at least partially converted into deformation energy of the resiliently deformable body 8. Accordingly, noise production is prevented so that the ball screw 1 can be operated noiselessly or at least with extremely low noise.
Corresponding to the first embodiment, the ball screw 11 has the stop plate 4, which is connected in a torque-proof manner to the threaded spindle 2 and has the stop element 5. The sleeve 6 connected to the spindle nut 3 has a stop element 12 which is designed as a plate-shaped resiliently deformable body. The resiliently deformable body is likewise manufactured from an elastomer material and serves as a circumferential stop when the spindle nut 3 and the threaded spindle 2 reach their end position.
The ball screws shown in the different embodiments may be components of an electric parking brake for a motor vehicle.
Ball screw
Threaded spindle
Spindle nut
Stop plate
Stop element
Sleeve
Stop element
Body
Stop face
Protrusions
Ball screw
Stop element
Ball screw
Sleeve
Body
Ball screw
Stop element
Rigid component
Body
Ball screw
Threaded nut
Rigid stop element
Stop element
Threaded spindle
Stop plate
Spindle nut
Body
Deflection body
Stop element
Spindle nut
Stop element
Number | Date | Country | Kind |
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10 2015 220 515.0 | Oct 2015 | DE | national |
This application is the U.S. National Phase of PCT Appln. No. PCT/DE2016/200475 filed Oct. 19, 2016, which claims priority to DE 102015220515.0 filed Oct. 21, 2015, the entire disclosures of which are incorporated by reference herein.
Filing Document | Filing Date | Country | Kind |
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PCT/DE2016/200475 | 10/19/2016 | WO | 00 |