DEVICE AND METHOD FOR THE RESIDUE-FREE FRICTION STIR WELDING OF WORKPIECES WITH HEIGHT DIFFERENCES BETWEEN THE JOINT PARTNERS
20190091797 ยท 2019-03-28
Assignee
Inventors
Cpc classification
B23K20/129
PERFORMING OPERATIONS; TRANSPORTING
B23K20/1285
PERFORMING OPERATIONS; TRANSPORTING
B23K20/123
PERFORMING OPERATIONS; TRANSPORTING
B23K20/122
PERFORMING OPERATIONS; TRANSPORTING
B23K20/1255
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The invention relates to a method and a device for the residue-free friction stir welding of workpieces with different thicknesses, having the following method steps:
a) two workpieces (6) to be welded are mounted such that the workpieces can be approached by a holding bell (3) for the friction stir welding tool and the drive head (2) thereof, b) after the welding device is started up, a welding pin tip (5) is immersed into the plastified material of the two workpieces (6) to be connected, wherein a welding shoe (4) is used which has a trapezoidal structure that extends in the diagonal direction of the welding shoe (4) for receiving the welding pin tip (5), and a circular opening (14) is mounted in a web with a smoothing surface (13) which has a front edge (12) that is part of a stepped Spahn guide stage (11), c) in order to improve the method, a welding shoe (4) is used in which the stepped Spahn guide stage (11) has material conducting channels on the front edge (12).
Claims
1. A device for the residue-free friction stir welding of workpieces of dissimilar thickness, in particular of tubular structures, said device having the following features: e) a drive head (2) which by means of a receptacle head (1) is guided by a guiding machine, and a holding bell (3) for a welding shoe (4) that by means of a fastening flange (8) is screw-fitted to the drive head (2), form the drive and the guide for a welding pin tip (5); f) the welding shoe (4) has a circular structure which in the center thereof has a circular opening (14) for receiving the welding pin tip (5), wherein said circular opening (14) is mounted in a web that runs diagonally in relation to the circular structure of the welding shoe (4), said web having a smoothing face (13) in the movement direction (21) of the procedure of friction stir welding, and wherein the smoothing face (13) has a front edge (12) which is part of a step-shaped chip groove (11); g) the smoothing face (13) has the shape of an elongate trapezoidal structure which extends in the diagonal direction of the welding shoe (4), in which trapezoidal structure in the direction of the advance (21) of the welding shoe (4) in the forward region the wider side extends as a front edge (12), and in the rear region a corresponding narrower side extends as a rear edge (17), wherein furthermore the rear edge (17) forms the delimitation of a run-out face (15) of the smoothing face (13) that is conceived so as to be step-shaped, and wherein the trapezoidal structure is supplemented by a left and a right curve-shaped lateral face (18), the plane normals thereof in each case extending in the direction toward the opening (14); h) the smoothing face (13) in relation to the vertical reference axis of the welding pin (4) has a small angle of attack (19).
2. The device as claimed in claim 1, characterized in that the chip groove (11) on the left and on the right side of the front edge (12) has material-guiding ducts (22).
3. The device as claimed in claim 1, characterized in that the chip groove (11) on the left and on the right side of the front edge (12) has material-guiding ducts (22) which are connected by a duct track (23).
4. The device as claimed in claim 1, characterized in that the chip groove (11) on the left and on the right side has relatively narrow duct tracks (23), the external region of the latter having in each case one material-pathfinding edge (24) that is rounded on the outside.
5. A method for the residue-free friction stir welding of workpieces of dissimilar thickness, in particular of tubular structures, comprising the following method steps: d) two workpieces (6) to be welded, for example two tubular parts in the course of the relocation of a high-tension line, are mounted such that said workpieces (6) can be driven around by a holding bell (3) for the friction stir welding tool and by the drive head (2) for said holding bell (3); e) after setting the welding device in operation, a welding pin tip (5) plunges into the plasticized material of the two workpieces (6) to be connected and goes around both workpieces (6), wherein a welding shoe (4) is used for leveling height differences, said welding shoe (4) having a trapezoidal structure, extending in the diagonal direction of the welding shoe (4), for receiving the welding pin tip (5), wherein said circular opening (14) is mounted in a web that runs diagonally in relation to the circular structure of the welding shoe (4), said web having a smoothing face (13) in the movement direction (21) of the procedure of friction stir welding, and wherein the smoothing face (13) has a front edge (12) which is part of a step-shaped chip groove (11); f) in order for the method for leveling height differences to be improved, a welding shoe (4) in which the chip groove (11) on the left and on the right side of the front edge (12) has material-guiding ducts is used.
6. The method as claimed in claim 5, characterized in that the chip groove (11) on the left and on the right side of the front edge (12) has material-guiding ducts which are connected by a duct track (23).
7. The method as claimed in claim 5, characterized in that the chip groove (11) on the left and on the right side has relatively narrow duct tracks, the external region of the latter having in each case one material-pathfinding edge (24) that is rounded on the outside.
8. A computer program having a program code for carrying out the method steps as claimed in claim 5 when the program is executed in a computer.
9. A machine-readable carrier having the program code of a computer program for carrying out the method as claimed in claim 5 when the program is executed in a computer.
Description
[0024] In the figures in detail:
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[0039] As opposed to the version of
[0040] A variant of the version illustrated in
[0041] The material-pathfinding edge 24 is slightly rounded and therefore has a long service life and is thus subject to little wear.
[0042] It goes without saying that the method according to the invention and the device thereof likewise offer better welding results in the presence of workpieces without any height differences.
LIST OF REFERENCE SIGNS
[0043] 1 Receptacle head [0044] 2 Drive head [0045] 3 Holding bell for the tool [0046] 4 Welding shoe having a trapezoidal smoothing face [0047] 5 Welding pin tip [0048] 6 Component to be joined [0049] 7 Union nut as mounting for a welding shoe [0050] 8 Receptacle flange for the holding bell 3 [0051] 9 Peripheral ridge [0052] 10 Region of the weld seam [0053] 11 Chip groove [0054] 12 Front edge of the trapezoidal smoothing face [0055] 13 Smoothing face [0056] 14 Opening for a welding pin [0057] 15 Run-out face of the trapezoidal smoothing face [0058] 16 Holding flange of the welding shoe for the union nut 7 [0059] 17 Rear edge of the trapezoidal smoothing face [0060] 18 Curve-shaped lateral face of the trapezoidal smoothing face [0061] 19 Angle of attack of the smoothing face 13 [0062] 20 Shank of the welding pin [0063] 21 Direction of advancing the welding shoe 4 [0064] 22 Material-guiding ducts [0065] 23 Duct track [0066] 24 Material-pathfinding edge (duct 22) round