FLYWHEEL-DRIVEN SETTING DEVICE AND METHOD FOR OPERATING A SETTING DEVICE OF SAID TYPE
20200016732 ยท 2020-01-16
Inventors
Cpc classification
F16F15/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D41/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41B4/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A flywheel-driven setting device for driving fastening elements into a foundation is disclosed, having a driving element, which can be driven in a setting direction by a flywheel and which is guided between the flywheel, which is rotatable about a flywheel rotation axis, and a counter roller, which is rotatable about a counter roller rotation axis. The flywheel rotation axis is arranged at an angle alpha () to the counter roller rotation axis, wherein the angle is not equal to zero.
Claims
1. A flywheel-driven setting device for driving fastening elements into a substrate, the setting device having a driving element, which can be driven in a setting direction by a flywheel and which is guided between the flywheel, which is rotatable about a flywheel rotation axis, and a counter roller, which is rotatable about a counter roller rotation axis; wherein the driving element comprises a flywheel coupling surface, which is connectable with the flywheel and a counter roller coupling surface, which is connectable with the counter roller, wherein a surface normal of the flywheel coupling surface is arranged at an angle alpha () to a surface normal of the counter roller coupling surface, and wherein the angle alpha () is not equal to zero.
2. The flywheel-driven setting device according to claim 1, wherein the flywheel rotation axis is arranged parallel to the counter roller rotation axis.
3. The flywheel-driven setting device according to claim 1, wherein the flywheel rotation axis is arranged at an angle alpha () to the counter roller rotation axis, and wherein the angle is not equal to zero.
4. The flywheel-driven setting device according to claim 3, wherein the driving element has a flywheel coupling surface, which is facing the flywheel, and which is arranged parallel to the flywheel rotation axis.
5. The flywheel-driven setting device according to claim 4, wherein the driving element has a counter roller coupling surface facing the counter roller, which is arranged parallel to the counter roller rotation axis.
6. The flywheel-driven setting device according to claim 5, wherein the driving element with the flywheel coupling surface and the counter roller rotation axis has a wedge-shaped cross section.
7. The flywheel-driven setting device according to claim 6, wherein the flywheel coupling surface and the counter roller rotation axis are formed as planar surfaces, which are in a friction-fit with side surfaces of the flywheel or the counter roller for driving the driving element.
8. The flywheel-driven setting device according to claim 1, wherein the angle alpha () is an acute angle.
9. The flywheel-driven setting device according to claim 1, wherein an angle beta () not equal to zero is provided between a perpendicular to a movement axis of the driving element and the flywheel rotation axis and the counter roller rotation axis.
10. The flywheel-driven setting device according to claim 1, wherein the line of action of a pressing force which is applied for generating a coupling normal force onto the driving element, is perpendicular to a movement axis of the driving element.
11. The flywheel-driven setting device according to claim 1, wherein the driving element is guided between two linear guides.
12. A method for operating a flywheel-driven setting device for setting fastening elements into a substrate, the setting device having a driving element, which can be driven in a setting direction by a flywheel and which is guided between the flywheel, which is rotatable about a flywheel rotation axis, and a counter roller, which is rotatable about a counter roller rotation axis; wherein the driving element comprises a flywheel coupling surface, which is connectable with the flywheel and a counter roller coupling surface, which is connectable with the counter roller, wherein a surface normal of the flywheel coupling surface is arranged at an angle alpha () to a surface normal of the counter roller coupling surface, and wherein the angle alpha () is not equal to zero, the method comprising driving in the driving element in a self-reinforcing way upon the closing of an oblique-wheel coupling formed with the flywheel and the counter roller.
13. The flywheel-driven setting device according to claim 2, wherein the angle alpha () is an acute angle.
14. The flywheel-driven setting device according to claim 3, wherein the angle alpha () is an acute angle.
15. The flywheel-driven setting device according to claim 4, wherein the angle alpha () is an acute angle.
16. The flywheel-driven setting device according to claim 5, wherein the angle alpha () is an acute angle.
17. The flywheel-driven setting device according to claim 6, wherein the angle alpha () is an acute angle.
18. The flywheel-driven setting device according to claim 7, wherein the angle alpha () is an acute angle.
19. The flywheel-driven setting device according to claim 2, wherein an angle beta () not equal to zero is provided between a perpendicular to a movement axis of the driving element and the flywheel rotation axis and the counter roller rotation axis.
20. The flywheel-driven setting device according to claim 3, wherein an angle beta () not equal to zero is provided between a perpendicular to a movement axis of the driving element and the flywheel rotation axis and the counter roller rotation axis.
Description
[0017] Further advantages, features and details of the invention will become apparent from the following description, in which, with reference to the drawings, various embodiments are described in detail. In particular:
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
EXEMPLARY EMBODIMENTS
[0028] In
[0029] In
[0030] A driving element 10 is arranged between the flywheel 3 and the counter roller 7. The driving element 10 is designed as a setting plunger 12 having a plunger tip 13 and is translationally movable in the direction of an arrow 14 between the flywheel 3 and the counter roller 7. The arrow 14 illustrates a setting direction of a setting device provided with the flywheel drive.
[0031] The flywheel 3, the counter roller 7, and the driving element 10 represent an oblique-wheel coupling. When a pressing force indicated by an arrow 16 in
[0032] In
[0033] The left leg in
[0034] In
[0035] It follows that the two coupling surfaces 21, 22 also include the angle . The angle between the flywheel rotation axis 5 and the counter roller rotation axis 8 is advantageously used for amplifying the frictional force. In a setting process, the driving element 10 or the setting plunger 12 in
[0036] In
[0037] The angle describes the angle between the perpendicular 30 to the plunger axis of the setting plunger 12 and the rotation axis 5 or 8 of the flywheel 3 or counter roller 7. In analogy to the flywheel 3, the counter roller 7 can also be referred to as a counter wheel.
[0038] The angle is responsible for the fact that the oblique-wheel coupling has a self-reinforcing effect, as soon as the driving element 10 or the setting plunger 12 engages with the flywheel 3 and the counter roller 7. The setting plunger 12 and the driving element 10 are, so to speak, automatically drawn into the system during a setting process, since the conveying action of the drive system presses the setting plunger 12 or the driving element 10 downwards in
[0039] In
[0040]
[0041] The linear guide 32 comprises rollers 36, which are arranged between the housing-fixed reference surface 1 and a guide track 38 on the driving element 10.
[0042] In
[0043] In
[0044] In
[0045] The setting device or setting tool 50 is used for driving fastening elements 40 into a substrate (not shown). A desired number of fastening elements 40 is stored in a magazine 56 at the set end 55. The fastening elements 40 are individually removed from the magazine 56, preferably automatically, and provided in a bolt guide 58.
[0046] The energy required for driving the fastening elements 40 is provided, for example, in the form of electrical energy in an accumulator 60 at the lower end of the handle 54. The electrical energy stored in the accumulator 60 is converted into rotational energy by means of an electric motor, which is advantageously integrated in the flywheel 3.
[0047] The flywheel 3 is rotated by this rotational energy. Upon actuation of a trigger or operating knob 62 on the handle 54, the previously described oblique-wheel coupling is closed so that the rotational energy stored in the flywheel 3 is transferred as translational energy to the driving element 10 to initiate a setting operation.
[0048]
[0049] The right leg of the wedge-shaped or trapezoidal cross section of the driving element 10 in
[0050] When a pressing force indicated by an arrow 16 in
[0051] In