Driving tool for driving fastening means into workpieces
10661470 · 2020-05-26
Assignee
Inventors
Cpc classification
B25C1/04
PERFORMING OPERATIONS; TRANSPORTING
B27F7/003
PERFORMING OPERATIONS; TRANSPORTING
International classification
B25C1/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A driving tool for driving fasteners means into workpieces comprising a main cylinder with a piston displaceable therein and a sealing element on the lower end with a first through hole through which a piston rod connected to the piston is guided in a sealing manner, a pressing cylinder that carries on the lower end an outlet tool with a driving channel into which a lower section of a driving tappet connected to the piston rod projects through an upper opening and that has a lower opening at the bottom for discharging fasteners, a magazine for fastening means that is attached to a side opening of the driving channel in order to supply fasteners to the driving channel, a first holding device that has a first holding element connected to the piston rod and a second holding element connected to the pressing cylinder that are designed so that the pressing cylinder can be displaced into an upper pressing cylinder position by displacing the piston into an upper piston position and the outlet tool can be placed onto a workpiece by displacing the piston downwards from the upper piston position, a first stop device that has a first stop element connected to the piston rod and a second stop element connected to the pressing cylinder that are designed to limit the downward displacement of the driving tappet in order to drive a fastening element out of the driving channel and into a workpiece to a determined penetration depth by the driving tappet.
Claims
1. A driving tool for driving fastening means into workpieces comprising a main cylinder (4) with a piston (12) displaceable therein and a sealing element (17) on the lower end with a first through hole (18) through which a piston rod (15) connected to the piston (12) passes in a sealing manner, wherein a first air chamber (20) connected to a first air inlet for filling with air for the purpose of displacing the piston (12) downwards is present in the main cylinder (4) above the piston (12), and a second air chamber (21) connected to a second air inlet for filling with air for the purpose of displacing the piston (12) upwards is present below the piston (12), a pressing cylinder (6) that carries on the lower end an outlet tool (7) with a driving channel (26) into which a lower section of a driving tappet (30) connected to the piston rod (15) projects through an upper opening (27) and that has a lower opening (28) at the bottom for discharging fastening means (79), a magazine (8) for fastening means (82) that is attached to a side opening (29) of the driving channel (26) in order to supply fastening means (82) to the driving channel (26), a first holding device (32) that has a first holding element (33) connected to the piston rod (15) and a second holding element (36) connected to the pressing cylinder (6) that are designed so that the pressing cylinder (6) can be displaced into an upper pressing cylinder position by displacing the piston (12) into an upper piston position and the outlet tool (7) can be placed onto a workpiece (3) by displacing the piston (12) downwards from the upper piston position, a first stop device (38) that has a first stop element (39) connected to the piston rod (15) and a second stop element (40) connected to the pressing cylinder (6) that are designed to limit the downward displacement of the driving tappet (30) in order to drive a fastening element (82) out of the driving channel (26) and into a workpiece (3) to a determined penetration depth by means of the driving tappet (30).
2. The driving tool according to claim 1, in which the first holding device (32) comprises a first projection (33) protruding from the piston rod (15) radially to the outside and a second projection (36) protruding from the pressing cylinder (6) radially to the inside, wherein the first projection (33) is arranged below the second projection (36) so that in the upper piston position the first projection (33) abuts the underside of the second projection (36) and can be displaced downwards away from the second projection (36) when the outlet tool (7) sits on the workpiece (3).
3. The driving tool according to claim 2, in which the first projection (33) is arranged at the bottom on a hollow cylindrical outer piston rod (15) that passes through the through hole (18) in a sealing manner, the lower edge of the outer piston rod (15.1) is the first stop element (52), the driving tappet (30) is connected to an inner piston rod (15.2) arranged concentrically in the outer piston rod (15.1), and a compression spring (104) is arranged in the ring space between the outer piston rod (15.1) and the inner piston rod (15.2) as well as in the pressing cylinder (6) and is supported with the one end on the underside of the main piston (12) and with the other end on the upper side of the second stop element (40).
4. The driving tool according to claim 1, in which a second holding device (51) is present that has a third holding element (52) connected to the piston rod (15) and a fourth holding element (53) connected to the pressing cylinder (6) that are designed so that they firmly hold the piston rod (15) on the pressing cylinder (6) when the first stop element (39) abuts the second stop element (40) so that when the piston (12) is displaced upwards the pressing cylinder (6) can be displaced upwards with it, in which a third holding device (60) is present that has a fifth holding element (61) on the main cylinder (4) and a sixth holding element (62) on the pressing cylinder (6) that are designed so that they can be connected to each other when the pressing cylinder (6) is displaced upwards, whereby the pressing cylinder (6) is held in the reached position and the connection between the third and fourth holding elements (52, 53) of the second holding device (51) is eliminated when the piston (12) is further displaced upwards, and in which a retracting device (76) is present that is designed so that it releases the connection between the fifth and the sixth holding elements (61, 62) when the first holding element (33) hits the second holding element (36).
5. The driving tool according to claim 4, in which the second holding device (51) is a first magnetic coupling (54), wherein a first magnetic coupling element (55) is connected to the piston rod (15) and a second magnetic coupling element (56) is connected to the pressing cylinder (6).
6. The driving tool according to claim 5, in which the first magnetic coupling element (55) is the first stop element (39) and the second magnetic coupling element (56) is the second stop element (40).
7. The driving tool according to claim 4, in which the third holding device (60) comprises a second magnetic coupling (63) that has a third magnetic coupling element (64) connected to the main cylinder (4) and a fourth magnetic coupling element (65) connected to the pressing cylinder (6), and wherein the third holding device (60) comprises a second stop device (73) that has a third stop element (74) on the main cylinder (4) and a fourth stop element (75) on the pressing cylinder (6) that are designed so that they abut each other and prevent a further upward displacement of the pressing cylinder (6).
8. The driving tool according to claim 7, in which the retracting device (73) comprises vertically aligned pins (77), the second holding element (36) can be displaced in the vertical direction until it abuts the sixth holding element (62), wherein the pins (77) can be displaced upwards with their upper ends over the sixth holding element (62) in order to push the fifth holding element (61) away from the sixth holding element (62), and the piston (12) is located in the upper piston position when the second holding element (36) abuts the sixth holding element (62).
9. The driving tool according to claim 7, in which the third magnetic coupling element (64) is held on a vertical guide device that is designed so that the third magnetic coupling element (64) can be displaced vertically upwards starting from a lower stop position, wherein the third magnetic coupling element (64) can be coupled with the fourth magnetic coupling element (65) in the lower stop position and can be pushed upwards away from the fourth magnetic coupling element (65) by means of the pins (77).
10. The driving tool according to claim 4, in which the second holding device has at least one groove (101, 102) in a lower section of the driving tappet (30) and at least one locking element (93) on the outlet tool (7) that locks into the groove (101, 102) when the first stop element (33) abuts the second stop element (36).
11. The driving tool according to claim 10, in which the outlet tool (7) has a nail centering (83) that has a centering opening (85.1) below the driving channel (26) that is limited by at least one guide element (92) movable in the radial direction that is pretensioned in the radial direction towards the centering channel (85) by at least one spring device (95, 96), wherein the guide element (92) is simultaneously the locking element of the third holding device.
12. The driving tool according to claim 11, in which the nail centering (83) comprises a centering housing (84) in which at least one circle (88 to 91) of balls (92) is arranged, between which the centering opening (85.1) is defined, wherein at least one elastic snap ring or other elastic ring acts as a spring device (95, 96) on the outside of the balls (92).
13. The driving tool according to claim 1, in which the second stop element (40) is held by a setting device (41) in the pressing cylinder (6), wherein the setting device (41) is designed to set the vertical location of the second stop element (40) in the pressing cylinder (6).
14. The driving tool according to claim 13, in which the second stop element (40) is a ring with an external thread (44) that is screwed into an internal thread (43) of an adjusting ring (42), wherein the adjusting ring (42) is guided between a first and a second bearing in the pressing cylinder (6) so that it can be rotated in the pressing cylinder (6) but cannot be displaced in the vertical direction, and a linear guide (50) is present which allows a displacement of the second stop element (40) in the vertical direction but hinders it from rotating about a vertical axis.
15. The driving tool according to claim 1, held on a woodworking bridge (2) or on another displacement device or on a stationary tool support.
Description
(1) The invention is explained in greater detail below based on the accompanying drawings of exemplary embodiments. In the drawings:
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(19) In the present application, the indicators up and down and indicators derived therefrom such as above and below and vertical and horizontal refer to an orientation of the driving tool with the main cylinder over the pressing cylinder and the lower opening of the outlet tool on the lower end of the driving tool.
(20) According to
(21) According to
(22) The main cylinder 4 is designed circular-cylindrically or ovally on the inside. The main cylinder 4 is closed at the top by a lid 9. In a central, hexagonal recess 10 in the underside of the lid 9, the hexagon head of a first screw 11 sits, the threaded shaft of which passes through a central bore in the lid 9 and protrudes from the lid 9 at the top. The first screw 11 serves for fastening to the bridge 2.
(23) A piston 12 is guided vertically displaceably in the main cylinder 4. The piston is sealed off from the main cylinder 4 with first and second O-rings 13, 14.
(24) A piston rod 15 protrudes downwards from the underside of the piston 12. The piston rod 15 is connected to the piston 12 by means of a second screw 16.
(25) Underneath, the main cylinder 4 has a sealing element 17 that is designed as a first floor plate. The sealing element 17 has a first through hole 18 in the center in the form of a guide bushing, through which the piston rod 15 passes through so that it stands out from the sealing element 17 at the bottom.
(26) A third O-ring is held in a groove on the outer circumference of the sealing element 17 that seals off the sealing element from the main cylinder 4.
(27) The piston rod 15 is sealed off from the sealing element 17 by a fourth O-ring held in the sealing element 17.
(28) Above the piston 12 a first air chamber 20 is present in the main cylinder 4 and below the piston 12 a second air chamber 21 is present. The first air chamber 20 is connected to a first air inlet 22 accessible from the outside and the second chamber is connected to a second air inlet 23 accessible from the outside.
(29) The pressing cylinder 6 is substantially box-shaped on the outside and has a round or oval cross-section on the inside. The pressing cylinder 6 has a second floor plate 24 at the bottom with a second through hole 25. The pressing cylinder 6 has an outwardly protruding flange 6.1 at the top.
(30) The outlet tool 7 is fastened to the underside of the second floor plate 24. It has a driving channel 26 that has an upper opening 27 at the top, has a lower opening 28 on the lower end of the outlet tool 7, and has a side opening 29 on the side. The barrel-shaped magazine 8 for fastening means is attached with its output opening to the side opening 29.
(31) A driving tappet 30 projects with a lower section through the second through hole 25 and the upper opening 27 into the driving channel 26. The upper section of the driving tappet 30 is fastened to the piston rod 15 at the bottom. For this, the driving tappet 30 has an external thread 31 at the top that is screwed into a threaded bore on the underside of the piston rod 15.
(32) A first holding device 32 has a first holding element 33 protruding radially from the piston rod 15. It is hereby a circular disk-shaped projection running around the central axis of the piston rod. The first holding element 33 has a pot-shaped shape 34 in the center into which the lower end of the piston rod 15 is inserted. The driving tappet 30 passes through a central hole of the shape and is screwed into the piston rod. A collar 35 on the outer circumference of the driving tappet 30 abuts the underside of the shape 34 so that the first holding element 33 is fixed between the piston rod 15 and driving tappet 30.
(33) The first holding device 32 has a second holding element 36 connected to the pressing cylinder 6. The second holding element 36 is a projection protruding radially to the inside from the pressing cylinder 6. This projection is designed as an annular disk that is arranged vertically displaceably in a first expansion 37 on the upper end of the pressing cylinder 6.
(34) A first stop device 38 has a first stop element 39 connected to the piston rod and a second stop element 40 connected to the pressing cylinder 6. The first holding element 33 is simultaneously the first stop element 39. The second stop element 40 is a ring that is held by a setting device 41 near the second floor plate 24.
(35) The setting device 41 comprises an adjusting ring 42 that has an internal thread 43 into which the second stop element 40 is screwed with an external thread 44. In the region of the external thread 44, the second stop element 40 has a reduced outer diameter.
(36) The underside of the adjusting ring 42 abuts the upper side of the second floor plate 24. At the top, the adjusting ring 42 is guided on a shoulder 45 of the pressing cylinder 6. Accordingly, the adjusting ring 42 is caught between the shoulder 45 and the second floor plate 24 so that it cannot be displaced vertically but can be rotated only about the vertical axis.
(37) The adjusting ring 42 has multiple first blind bores 46 on the outer circumference into which a pin can be inserted from the outside through a slot 47 in the pressing cylinder 6 for adjusting the adjusting ring 42 (
(38) By rotating the adjusting ring 42, the second stop element 40 can be displaced in the vertical direction since it is prevented by the studs 49 from rotating with the adjusting ring 42.
(39) Furthermore, a second holding device 51 is present that has a third holding element 52 connected to the piston rod 15 and a fourth holding element 53 connected to the pressing cylinder 6. The second holding device 51 is a first magnetic coupling 54 that has a first magnetic coupling element 55 connected to the piston rod 15 and a second magnetic coupling element 56 connected to the pressing cylinder 6. The first magnetic coupling element 55 has permanent magnets 57 that are fastened to the underside of the first stop element 39 by means of third screws 58 and first nuts 59. The second magnetic coupling element 56 is the second stop element 40 that consists of a ferromagnetic material. By putting the first stop element 39 against the second stop element 40, the first and second magnetic coupling elements 55, 56 can be coupled with each other.
(40) Furthermore, a third holding device 60 is present that has a fifth holding element 61 on the main cylinder 4 and a sixth holding element 62 on the pressing cylinder 6. The third holding device 60 comprises a second magnetic coupling 63 that has a third magnetic coupling element 64 connected to the main cylinder 4 and a fourth magnetic coupling element 65 connected to the pressing cylinder 6. The third magnetic coupling element 64 has circular disk-shaped permanent magnets 66 that are fastened by means of fourth screws 67 to the lower ends of first bars 68 that are guided in vertical first bores 69 of the housing 5.
(41) On the upper ends of the bars 68, first disks 71 are fastened, by means of fifth screws 60, that protrude to the outside radially in relation to the bars 68. The first disks 71 are arranged in second expansions 72 of the first bores 69 and limit the downward displacement of the first bars 68 by abuting an attachment on the lower end of the second expansions 72. The upward displacement of the first bars 68 is limited by the abutment of the permanent magnets 66 on the underside of the housing 5 protruding radially in relation to the first bars 68. The fourth magnetic coupling element 65 is designed as an annular disk from a ferromagnetic material and is fastened on the upper end of the pressing cylinder 6.
(42) The third holding device 60 comprises a second stop device 73 that has a third stop element 74 on the main cylinder 4 and a fourth stop element 75 on the pressing cylinder 6. The fourth stop element 75 is a part of the fourth magnetic coupling element 65 protruding radially to the inside and the third stop element 74 is the underside of the sealing element 17.
(43) The fourth magnetic coupling element 65 limits the upward displacement of the pressing cylinder 6 by abutting the underside of the sealing element 17. Furthermore, it covers the first expansion 37 of the pressing cylinder 6 at the top and limits the upward displacement of the second holding element 36. The downward displacement of the second holding element 36 is limited by the floor of the first expansion 37.
(44) Furthermore, a retracting device 76 with vertically oriented pins 77 is present. The pins 77 protrude upwards from the upper side of the second holding element 36.
(45) The pins 77 engage with holes 78 of the fourth magnetic coupling element 65. When the second holding element 36 is located in the lower location, the pins 77 do not protrude over the upper side of the fourth magnetic coupling element 65 (
(46) The flange 6.1 of the pressing cylinder 6 is fastened to second bars 80, by means of sixth screws 79, that are guided in vertical third bores 81 in the housing 5. A holder 8.1 of the magazine 8 is firmly clamped between a sixth screw 79 and the flange 6.1.
(47)
(48) According to
(49) Afterwards, according to
(50) With the abutment of the first stop element 39 against the second stop element 40, the first magnetic coupling 51 is simultaneously coupled since the first stop element 39 is simultaneously the first magnetic coupling element 52 and the second stop element 40 is simultaneously the second magnetic coupling element 53.
(51) Afterwards, according to
(52) According to
(53) The second driving tool 1 from
(54) The nail centering 83 has a circular disk-shaped centering housing 84 with a vertical centering channel 85 that is aligned with the driving channel 26. In the centering housing 84, two concentric circles 88, 89, 90, 91 of balls 92 are arranged in each of two horizontal planes over each other in chambers 86, 87 that are designed as radial ball guide channels. The balls 92 of the two inner circles 88, 90 arranged over each other protrude partially into the centering channel 85, wherein adjacent balls 92 support each other. Adjacent balls 92 of the outer circles 89, 91 and of the inner circles 88, 90 abut each other on their equator.
(55) The centering housing 84 has on the outer circumference a circumferential groove 93, 94 in the equatorial plane of the upper circles 88, 89 and of the lower circles 90, 91 respectively that reach into the chambers 86, 87 in the centering housing 84 in which the balls 92 are arranged. A snap ring 95, 96 sits in each groove 93, 94 that pushes under elastic pretensioning against the balls 92 of the outer circle 89, 91, which then push the balls of the inner circles 88, 90 into the centering channel 85 until they abut each other so that a centering opening 85 remains between the balls 92 of the inner circles 88, 90. In addition, O-rings 97, 98 are arranged between the balls 92 of the inner circles 88, 90 and of the outer circles 89, 91 in order to compensate for different diameters of standardized balls 92 and snap rings 95, 96 so that the balls 92 of the inner circles 88, 90 each abut each other.
(56) Moreover, the driving tappet 30 is provided in a lower section with circumferential grooves 101, 102 arranged over each other. In the vertical section, the grooves 101, 102 are lightly rounded, corresponding to the outer contour of the balls 92 of the nail centering 83. The spacing of the two grooves 101, 102 corresponds to the spacing from each other of the circles 88, 89, 90, 91 that are arranged over each other.
(57) Before the nail 82 is driven in, the initial location of the second driving tool 1 from
(58) The lowering onto the workpiece 3 takes place as in the case of the first driving tool 1, wherein, however, the nail centering 83 is placed onto the workpiece 3. This is shown in
(59) A nail 82 is driven in by a further proceeding of the piston 12 downward. The nail shaft is hereby centered by the circles 88, 89, 90, 91 of balls 92 so that it penetrates into the workpiece 3 in a straight line.
(60) According to
(61) The pressing cylinder 6 is hindered from a further upward displacement by the abutment of the sixth holding element 62 against the first floor plate 17 and the driving tappet 30 is pulled out of the nail centering 83. When the first holding element 33 hits the second holding element 36, the pins 77 release the second magnetic coupling 63. The pressing cylinder 6 is held firmly by the abutment of the first holding element 33 against the second holding element 36 and the second holding element 36 against the sixth holding element 62. This is shown in
(62) After feeding a further nail 82 from the magazine 8 into the driving channel 26, the driving tool 1 is ready for another driving process. This is shown in
(63) The third driving tool 1 from
(64) Another difference consists in that the piston 12 has a hollow cylindrical outer piston rod 15 on the underside, on the lower edge of which the first holding element 33 protrudes circumferentially radially to the outside (piston excess). Furthermore, an inner piston rod 15.2 protrudes downwards centrally from the piston 12, the piston rod 15.2 being connected to the driving tappet 30. In the ring space between the inner piston rod 15.2 and the outer piston rod 15.1 as well as in the pressing cylinder 6, a compression spring 104 is arranged that is designed as a helical spring. The upper end of the compression spring 104 is supported on the underside of the piston 12 and the lower end is supported on the upper side of the first stop element 40.
(65) The outer piston rod 15.1 passes through the first through hole 18 of the sealing element 17 in a sealing manner. There, the sealing element 17 has the fourth O-ring.
(66) According to
(67) According to
(68) According to
(69) After that, the piston 12 is displaced upwards, wherein first the outlet tool 7 remains in abutment against the workpiece 3 and the driving tappet 30 is pulled out of the outlet tool 7 until the first holding element 33 hits the second holding element 36. This is shown in
(70) After that, the first holding element 33 takes the second holding element 36 and therefore the pressing cylinder 6 with it so that the outlet tool 7 is lifted away from the workpiece 3. Finally, the pressing cylinder 6 abuts the underside of the sealing element 17. This is shown in