The application relates to an apparatus for driving a fastening element into an underlying surface.
Such apparatuses usually have a piston for transmitting energy to the fastening element. The energy required for this has to be made available in a very short time, which is why, for example in the case of what are known as spring nailers, first of all a spring is tensioned, said spring, during the driving-in operation, imparting the tensile energy to the piston in a sudden burst and accelerating the latter onto the fastening element.
The energy released in a sudden burst, with which the fastening element is driven into the underlying surface, causes a recoil, which mechanically loads some components of such apparatuses. When a center of gravity of the apparatus does not lie on the path of movement of the piston or in the extension thereof, the recoil comprises a torque, which causes the entire apparatus to tilt while the fastening element is being driven into the underlying surface.
The object of the invention is to improve the fastening quality of the apparatus mentioned at the beginning.
The object is achieved by an apparatus for driving a fastening element into an underlying surface, having a center of gravity, an energy transmission element, which is movable between a starting position and a setting position, for transmitting driving-in energy to the fastening element, a piston drive that provides driving-in energy, a housing, and a bolt guide that guides the fastening element while it is being driven in, wherein the bolt guide is mounted on the housing in a rotatable manner with respect to rotation about the center of gravity. As a result of being mounted in a rotatable manner, the bolt guide remains in position on account of its mass inertia even when the rest of the apparatus is already tilting on account of the recoil. This applies for the period in which the fastening element is being driven into the underlying surface.
An advantageous embodiment is characterized in that the apparatus has a damping element, which damps a rotary movement of the bolt guide about the center of gravity.
An advantageous embodiment is characterized in that the bolt guide has a holder, which is mounted on the housing in a rotatable manner with respect to rotation about the center of gravity. Preferably, the holder comprises a deceleration element for braking the energy transmission element.
An advantageous embodiment is characterized in that the bolt guide is mounted on the housing in a rotatable manner through an angular range of at least 2°. Preferably, the angular range extends through at least 3°, particularly preferably through at least 5°.
Exemplary embodiments of an apparatus for driving a fastening element into an underlying surface are explained in more detail in the following text by way of examples with reference to the drawings, in which:
The driving-in apparatus 10 also has a handle 30, a magazine 40 and a bridge 50 connecting the handle 30 to the magazine 40. The magazine is not removable. Fastened to the bridge 50 are a scaffold hook 60 for hanging the driving-in apparatus 10 on a scaffold or the like, and an electrical energy store in the form of a rechargeable battery 590. Arranged on the handle 30 are a trigger 34 and a grip sensor in the form of a manual switch 35. Furthermore, the driving-in apparatus 10 has a guide duct 700 for guiding the fastening element and a pressing device 750 for identifying a distance of the driving-in apparatus 10 from an underlying surface (not illustrated). Alignment of the driving-in apparatus perpendicularly to an underlying surface is assisted by an alignment aid 45.
Furthermore, the driving-in apparatus 10 has an unlocking switch 730 for unlocking the guide duct 700 such that the guide duct 700 is removable, for example to make it easier to remove jammed fastening elements.
A driving-in apparatus 100 has a damping element 180, which is arranged on the side of the holder 160 remote from the center of gravity 110, in front of the holder 160 and behind a supporting element 145 of the housing 140, and therefore, during a recoil, a rotary movement of the bolt guide 150 about the center of gravity 110 relative to the housing 140 is damped. For symmetric mounting of the bolt guide 150, the driving-in apparatus 100 has a further damping element 185, which is arranged on the side of the holder 160 facing the center of gravity 110 and therefore makes no significant contribution to damping a rotary movement of the bolt guide 150 during a recoil.
An angular range through which the bolt guide is mounted on the housing in a rotatable manner depends on a distance between the holder 160 and the supporting element 145 and is 5° in the present case. The holder 160 otherwise comprises a deceleration element 190 for braking the energy transmission element 120.
Number | Date | Country | Kind |
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17209401.3 | Dec 2017 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2018/083635 | 12/5/2018 | WO | 00 |