DRIVER DEVICE HAVING A GAS SPRING
20170282341 ยท 2017-10-05
Assignee
Inventors
Cpc classification
International classification
Abstract
The invention relates to a driver device, comprising a rotating motor, a gas spring having an elastically compressible gas volume, and a setting piston, wherein the gas spring can be loaded by the motor by means of a loading mechanism in order to accelerate the setting piston in a driving direction after a release from the loaded state, wherein the gas spring comprises a piston head guided in a gas-tight manner, which is adjoined by a piston rod as a separate component in the driving direction, wherein the piston rod is connected to the piston head by means of a thrust bearing that can be pivoted in several planes.
Claims
1. A driver device, comprising a rotating motor a gas spring having an elastically compressible gas volume, and a setting piston, and a loading mechanism, wherein the gas spring can be loaded by the rotating motor by the loading mechanism in order to accelerate the setting piston in a driving direction after a release from a loaded state, wherein the gas spring comprises a piston head guided by gas, wherein the gas spring is adjoined by a piston rod and wherein the piston rod contacts the piston head by a thrust bearing that can be pivoted in several planes.
2. The driver device according to claim 1, wherein the piston head has a central axis (Z), and the thrust bearing comprises a pair of press surfaces which are each rotationally symmetrical about the central axis (Z) of the piston head.
3. The driver device according to claim 2, wherein each of the press surfaces has a region of contact for the piston head, the region of contact having a radius of curvature, wherein one radius of curvature is different than another radius of curvature.
4. The driver device according to claim 2, each of the press surfaces has a region of contact for the piston head, the region of contact having a radius of curvature, wherein one radius of curvature is the same as another radius of curvature.
5. The driver device according to claim 2, wherein at least one of the press surfaces is an insert part fixed to the piston head or to the piston rod.
6. The driver device according claim 1, wherein the piston rod is made from a metal.
7. The driver device according to claim 1, wherein the piston head comprises a radially inward facing edge for guiding the piston rod in a radial direction by the piston head.
8. The driver device according claim 1, wherein the piston rod is not connected to the piston head in the driving direction.
9. The driving device according to claim 1, wherein the loading mechanism comprises a structure part of non-uniform material, for coupling the piston rod to the rotating motor.
10. The driving device according to claim 9, wherein the structure part is molded onto the piston rod.
11. The driver device according to claim 1, wherein the piston rod has a ball head as part of the thrust bearing.
12. The driver device according to claim 1, wherein the piston rod is connected to the piston head by an elastic snap connection.
13. The driver device according to one claim 1, wherein the piston rod is connected to the piston head by a pliable plastic.
14. The driver device of claim 1, wherein the rotating motor is an electric motor.
15. The driver device according to claim 3, wherein at least one of the press surfaces is an insert part fixed to the piston head or to the piston rod.
16. The driver device according to claim 4, wherein at least one of the press surfaces is an insert part fixed to the piston head or to the piston rod.
17. The driver device of claim 6, wherein the metal is steel.
18. The driver device of claim 7, wherein the edge is curved.
19. The driver device according to claim 2, wherein the piston head comprises a radially inward facing edge for guiding the piston rod in a radial direction by the piston head.
20. The driver device according to claim 3, wherein the piston head comprises a radially inward facing edge for guiding the piston rod in a radial direction by the piston head.
Description
[0021] Several exemplary embodiments of the invention are described below and explained in more detail with reference to the attached drawings.
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030] According to
[0031] One nail at a time is loaded from a nail magazine 5 into a muzzle 6 of the driver device. From this position, the nail is driven into a workpiece by the impact of a setting piston 7.
[0032] Here, the setting piston 7 is formed as the front end of a piston rod 8 in the driving direction. At its rear end, the piston rod 8 rests on a piston head 10 via a thrust bearing 9. As the moving part of a gas spring 11, the piston head 10 is guided in a cylinder 12 and is sealed in a pressure-tight manner by the circumferential seals 13.
[0033] Even in a maximally relaxed state (
[0034] The gas spring is loaded by moving the piston rod 8 by means of an electric motor 14 in the opposite direction to the driving direction. For this purpose, a structure 15 is formed on the piston rod 8, which meshes with a rotating drive member 16 of the electric motor 14, thus collectively forming a loading mechanism. The structure 15 has substantially the form and function of a toothed rack. Further parts of the loading mechanism can include a retaining member, for example, by means of which the loaded gas spring can be triggered (not shown).
[0035] The diagram according to
[0036] According to the example of
[0037] The first press surface 9a is formed as a substantially flat surface (infinite radius of curvature) on a face of the piston head 10. In the example of
[0038] The second press surface 9b is formed as a convex surface (positive radius of curvature) on a mushroom-shaped rear end of the piston rod 8. The press surfaces 9a, 9b therefore have different radii of curvature in their region of contact; purely geometrically, the surfaces therefore touch at only one point. The actual contact area of the press surfaces is, of course, larger, wherein the size depends on the hardness of the surface materials and on the magnitude of the contact force.
[0039] Here, the piston rod is made from a steel in order to be able to transmit larger setting energies of more than 40 Joules to the nail.
[0040] A radially inward facing outer edge 17 is stepped into the piston head, by means of which the rear, mushroom-shaped end of the piston rod 8 is guided in a radial direction at least while the press surfaces 9a, 9b are in contact. The edge 17 also has a chamfer, by means of which the piston rod 8 is guided in a self-centering manner in case the piston rod 8 disengages from the piston head 10 in the course of the driving operation.
[0041] In this respect, it is pointed out that, in the example of
[0042]
[0043] In the examples according to
[0044] In the example shown in
[0045]
[0046]
[0047] The piston rod 8 can be pivoted in any plane about an angle W with respect to the piston head 10. In
[0048] In the version shown according to
[0049] The seal 13 of the piston head is shown in
[0050] The exemplary embodiment according to
[0051]
[0052] It is understood that at least one of the press surfaces 9a, 9b of the examples from
[0053] In general, the specific characteristics of the different exemplary embodiments can be combined with one another depending on requirements. In particular, the recesses of the structure part 15 according to