The present invention concerns a rotary damper for a vehicle, for damping relative movements.
From automotive technology linear dampers are known, for the damping of linear movements. Furthermore, from the document DE 10 2008 042 389 A, a rotary damper is also known, which consists of an inner, fixed part and an outer part that can rotate relative to the inner part, the outer part being connected to a lever for producing the rotation. Between the inner part and the outer part there is arranged a frictional clutch in the form of a disk clutch, whose disks are connected fixed, in alternation, to the two parts. In the area of the lever, the outer part is fixed to a first component of a spindle gear, which can move in rotation on balls over a second component and during this, undergoes axial movement that is guided by a ramp on the second component. Accordingly, rotational movement of the outer part produced by the spindle drive is converted to axial movement of the first component and thus also of the outer part, in order to bring the friction surfaces of the clutch into contact. This brings about a coupling of the inner and outer parts, which brakes the outer part and therefore damps the rotational movement.
The purpose of the present invention is to propose a rotary damper with as compact a structure as possible.
According to the invention, that objective is achieved by virtue of the characteristics and advantageous design features that emerge from the description and the drawings.
For a compact structure a rotary damper is proposed, preferably fitting in a vehicle in order to damp relative movements between vehicle wheels and the vehicle body, the damper comprising at least one gear assembly, that converts the relative movement into rotational movement, and at least one electric machine, which are functionally connected with one another in such manner that damping of the relative movement can be actively controlled.
In this way the relative movement, after being converted to rotational movement, can be damped as desired by means of the electric machine connected to the gear assembly. To further improve the braking action, in the context of the present invention it can be provided that at least one dynamic brake is used. Dynamic brakes are those whose braking force is speed-dependent. With the dynamic brake the electric machine and so also the gear assembly can be braked appropriately in order to obtain a desired damping of the relative movement. As the dynamic brake, preferably at least one eddy current brake, a hydrodynamic brake or the like can be used.
In a preferred embodiment variant of the invention it can be provided that when an eddy current brake is used, this is connected or arranged relative to the connection between the at least one gear assembly and the electric machine, in parallel, in series or in a power-branched configuration.
To produce a particularly space-saving arrangement of the eddy current brake in the proposed rotary damper, it can be provided that the eddy current brake has for example a drum-shaped structure, arranged for example coaxially with the rotor of the electric machine. It is also conceivable for the eddy current brake to have for example a disk-shaped structure such that the disk-shaped plates can each be associated with a respective end side of the electric machine.
The magnetic flux for producing the eddy currents can be produced by the stator of the electric machine. For this, as an example the stator plate or a similar component of the electric machine can for example have grooves or recesses which are rectangular, V-shaped or shaped in some other way, in order to produce a stray field on the outside. Alternatively, the stator can also be made longer than the rotor, and the drum of the eddy current brake can project into the stator of the electric machine. If the eddy current brake is designed with a disk shape or a plate shape, then, for example, to produce the required stray field an extension of the stator or of the pole-pieces of the electric machine can be provided so that magnetic flux is generated in the disks or plates of the eddy current brake.
Beside the disk-shaped or drum-shaped designs, conical or similarly designed embodiments or combinations thereof can be used as eddy current brakes, which project at least in part into the stator or which surround it. Furthermore, to produce the eddy currents permanent magnets or the like can be used, which can be attached preferably on the housing of the rotary damper in the area of the outside of the stator or, for example, on the drum or the plates themselves. Instead of permanent magnets external excitation by means of a coil arrangement or the like is also conceivable, wherein for cost reasons it is preferable to use a coil arrangement with claw poles analogous to a claw pole generator or the like.
Alternatively to or in combination with the eddy current brake, a hydrodynamic brake or clutch can be used, As the medium for this, aside from oil it is also possible for example to use a magneto-rheological or electro-rheological fluid, whose viscosity can be adjusted by means of the magnetic or electric field, respectively.
As an alternative to the electric machine designed as an internal-rotor machine, in the proposed rotary damper it is also possible to use an external-rotor electric machine. For example, a metallic cylinder, forming an external rotor arrangement of the external-rotor machine, can at the same time form the eddy current brake, which, by virtue of a further stator or a permanent magnet, is located in a magnetic flux for producing the eddy currents. Optionally, the magnetic flux can also be produced in the rotor of the external-rotor machine by a multi-component rotor arrangement or the like, such that between the components of the multi-component rotor arrangement a minimal air-gap is provided. The metallic portion of the rotor arrangement can for example consist of a metallic cylinder and the magnetic portion of the rotor arrangement for example of a cylindrical, non-magnetic holding arrangement for the magnets or suchlike. The magnet holding arrangement and the metallic cylinder are coupled to the gear assembly, for example in the form of a planetary gear assembly, in such manner that the magnet holding arrangement and the metallic cylinder move in opposite directions, Regardless of the design of the rotor arrangement of the electric machine the eddy current brake is, as it were, integrated in the rotor arrangement or contained therein. Other possible arrangements too are conceivable.
The proposed rotary damper can preferably be used for damping relative movements between vehicle wheels and a vehicle body. However other uses, for example in other vehicles are also possible,
Below, the present invention is explained in more detail with reference to the drawings, which show:
In this way the relative movement to be damped between two bodies or masses, particularly in a vehicle between a wheel and the vehicle body, is transmitted by way of a deflection lever as rotational movement to the planetary gear assembly 1 which, for example, increases the rotation speedal and reduces the torque introduced. The electric machine 2 is connected in parallel with the eddy current brake 3 on a common shaft. For example, the electric machine 2, designed as an electric motor or generator, drives the planetary gearwheels of the positionally fixed planetary carrier 8 by way of the sun gear 5, whereas in turn the planetary gearwheels mesh with the ring gear 4,
In other respects, in the embodiment variant shown in
In this type of power-branched arrangement of the electric machine 2 and the eddy current brake 3, depending on the transmission ratio of the gear assembly the power-branching serves as overload protection for the electric machine 2. Due to the inertia of the rotor 6 and the planetary gear assemblies 1 and 13 connected upstream from the electric machine 2, externally introduced accelerations for example in the form of direction changes can block the branch driven by electric motor, so that in such a case the rotary movement is mostly damped by the eddy current brake 3.
A further variant of the power-branching is shown in
In
As in the previous embodiment variants, the lever that transmits the relative movement is connected to the ring gear 4 of the first planetary gear assembly 1. The sun gear 5 of the first planetary gear assembly 1 is connected to the rotor 6 of the electric machine 6, whereas the planetary carrier 8 of the first planetary gear assembly 1 is connected to the housing 9.
In
As with the previous embodiment variants the lever that transmits the relative movement is connected to the ring gear 4 of the first planetary gear assembly 1, whereas the sun gear 5 of the planetary gear assembly 1 is coupled by way of a rotational-direction-reversing intermediate stage to the metal cylinder 21. Furthermore, the planetary carrier 8 of the planetary gear assembly 1 is connected to the housing 9. Since the sun gear 5 is connected to the metal cylinder 21 by way of an intermediate stage, the rotational directions of the metal cylinder 21 and the magnet holding arrangement 22 are different.
For example, the intermediate stage can be formed by providing a further spur gear on the magnet holding arrangement 22, which is connected to the sun gear 5 in a rotationally fixed manner. The spur gear 23 engages with an intermediate gearwheel or planetary gear 24 mounted to rotate on the planetary gear shaft. In turn, the intermediate gearwheel 24 meshes with a ring gear 25 provided on the metal cylinder 21.
Number | Date | Country | Kind |
---|---|---|---|
10 2013 203 431.8 | Feb 2013 | DE | national |
This application is a National Stage completion of PCT/EP2014/052004 filed Feb. 3, 2014, which claims priority from German patent application serial no. 10 2013 203 431.8 filed Feb. 28, 2013.
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/EP2014/052004 | 2/3/2014 | WO | 00 |