Head piece, welding tool, and welding method
11498153 · 2022-11-15
Assignee
Inventors
- Bernd Richter (Königsbrunn, DE)
- Stefan Fröhlke (Augsburg, DE)
- Junhua Gao (Augsburg, DE)
- Stefan Habersetzer (Rinnenthal, DE)
Cpc classification
B23K20/1225
PERFORMING OPERATIONS; TRANSPORTING
B23K20/1265
PERFORMING OPERATIONS; TRANSPORTING
B23K20/122
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A head piece and a welding tool, in particular an FSW tool, equipped therewith, and a welding method. The head piece has a through-opening for a plasticizing welding means, in particular a rotating welding pin. The head piece also has a profiled end face which faces the workpiece during welding and has end face regions of different heights and a sloping shoulder, which conducts the plasticized material of the workpiece and connects the end face regions.
Claims
1. A head piece for a welding tool, the head piece comprising: a through-opening for receiving a plasticizing welding means; a profiled end face configured to face a workpiece during welding; the end face comprising end face regions having different heights along an axial direction of the head piece, the end face regions having different heights comprising a lower end face region and a higher end face region, the lower end face region and the higher end face region being generally flat, approximately parallel, and approximately normal to the axial direction of the head piece; a straight step formed between the lower end face region and the higher end face region, the straight step extending approximately centrally from a front edge of the through-opening in a welding feed direction; and a sloping shoulder connecting the lower end face region and the higher end face region and configured to conduct plasticized material of the workpiece during welding, wherein the sloping shoulder is arranged at a rear of the through-opening relative to the welding feed direction.
2. The head piece of claim 1, wherein at least one of: the welding tool is configured as a friction stir welding (FSW) tool; or the welding means is a rotatable welding pin.
3. The head piece of claim 1, wherein the sloping shoulder is arcuate and surrounds the through-opening in a semi-annular manner at the rear of the through-opening.
4. The head piece of claim 3, wherein the arcuate surface of the sloping shoulder has an elevation and slopes backward from a front edge of the arcuate surface facing the through-opening and in a direction toward the lower end face region.
5. The head piece of claim 1, wherein the end face regions of different heights extend from the through-opening in a welding feed direction.
6. The head piece of claim 5, wherein the end face regions have flat surfaces.
7. The head piece of claim 1, wherein the height difference of the end face regions is adapted to a height difference of work pieces to be welded on a weld joint.
8. The head piece of claim 7, wherein the height difference of the end face regions is adapted to a height difference of work pieces lying on top of one another and to be welded on a lap joint.
9. A welding tool, comprising: a plasticizing welding means; and a head piece, comprising: a through-opening for receiving the plasticizing welding means, a profiled end face configured to face a workpiece during welding, the end face comprising end face regions having different heights along an axial direction of the head piece, the end face regions having different heights comprising a lower end face region and a higher end face region, the lower end face region and the higher end face region being generally flat, approximately parallel, and approximately normal to the axial direction of the head piece, a straight step formed between the lower end face region and the higher end face region, the straight step extending approximately centrally from a front edge of the through-opening in a welding feed direction, and a sloping shoulder connecting the lower end face region and the higher end face region and configured to conduct plasticized material of the workpiece during welding, wherein the sloping shoulder is arranged at a rear of the through-opening relative to the welding feed direction.
10. The welding tool of claim 9, wherein the head piece is arranged in a rotationally fixed manner.
11. The welding tool of claim 9, wherein the head piece is arranged such that it can be exchanged and is configured as an adapter for different workpieces to be welded that have a height difference at the weld joint.
12. A welding method for welding workpieces, the method comprising: providing the welding tool according to claim 9; and welding with the welding tool along a welding path using a multi-axis industrial robot.
13. The welding method of claim 12, further comprising forming a weld joint at edge regions of the workpieces, which have a height difference.
14. The welding method of claim 13, wherein, during the welding, plasticized material is directed by the head piece of the welding tool such that a welding transition region is formed between the workpieces at the weld joint.
15. The method of claim 14, wherein the formed welding transition region is inclined.
16. The welding method of claim 12, further comprising closing a gap between the workpieces during the welding.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate exemplary embodiments of the invention and, together with a general description of the invention given above, and the detailed description given below, serve to explain the principles of the invention.
(2)
(3)
(4)
(5)
(6)
(7)
(8)
DETAILED DESCRIPTION
(9) The invention relates to a head piece (3) for a welding tool (1), in particular an FSW tool. The invention also relates to this welding tool (1), in particular an FSW tool and an associated welding method, in particular an FSW method. The invention also relates to a welded part produced with said method.
(10)
(11) In addition to the head piece (3), the welding tool (1) comprises a welding means (2) plasticizing the workpiece (7, 8) as well as other components. In the embodiment shown for the friction stir welding, the welding means (2) is a schematically illustrated rotating welding pin, which is rotatably and optionally also adjustably positioned in a suitable holder (not shown) in the axial direction. Said further components can be a rotary drive and possibly also a feed drive for the welding means (2), a control unit and the like.
(12) The welding tool (1) can be moved and guided along a welding path by a handling device (not shown) in a welding feed direction (6) relative to two or more workpieces (7, 8) to be welded. The welding tool (1) can be moved relative to the stationary workpieces (7, 8). Alternatively, a kinematic reversal or a mutual relative movement is possible. The handling device can, for example, be the aforementioned multi-axis and preferably tactile industrial robot. The welding tool (1) can have a suitable connection for attachment to the handling device and, if necessary, also for a required supply of operating resources.
(13) The workpieces (7,8) can be designed as metal sheets, for example. In
(14) The drawings show various welding arrangements of workpieces (7,8) and weld joints (9).
(15) The welding means (2) is directed toward the butt joint or welding joint (9) of the workpieces (7,8). It acts on both workpieces (7,8) at their respective edge, for example according to
(16) The head piece (3) shown in the drawings has a preferably central through-opening (4) for the welding means (2) and an end face (13) or end surface facing the workpiece (7,8) during welding operation. The through-opening (4) leads to the end face (13). The head piece (3) can, for example, have the hollow body shape shown in the sectional views of
(17) In the drawings, the welding tool (1) and the head piece (3) are aligned perpendicular or in the normal direction to the main plane or surface of the workpieces (7,8) to be welded. Likewise, the through-opening (4) with its central axis (5) has this orientation as well. The axis (5) can also be the central axis of the head piece (3). The axis (5) is aligned perpendicular to the welding feed direction (6).
(18) In a modification of the embodiment shown, the welding tool (1) and the head piece (3) can be positioned such that they are slightly tilted against the welding feed direction (6) and such that they have a so-called penetration angle of, for example, approximately 2° against said normal direction with respect to the workpieces (7,8). The tip of the welding means (2) acting on the workpieces (7,8) and on the weld joint (9) can lead in the welding feed direction (6).
(19) The head piece (3) has a profiled end face (13) with end face regions (14,15) of different heights. The end face regions (14,15) protrude differently far from the end face (13) or its main plane. The end face regions (14,15) have a height difference (h) shown in
(20) The head piece (3) has a sloping shoulder (17) which connects the end face regions (14, 15) of different heights. The shoulder (17) compensates for the difference in height and guides the workpiece material, which has been plasticized during the welding process. As a result, a welding transition region, shown in
(21) The welding means (2) acts on the thicker or upper workpiece (8) earlier and, if necessary, more strongly, its material being increasingly plasticized and displaced. Said step between the workpieces (7,8) is filled by the guided plasticized material and the welding transition region (12). The welding transition region (12) can have a sloped extension.
(22) In another variant of a lap joint with workpieces (7,8) lying flush on top of one another, the welding transition region can be designed differently, for example in the manner of a cap.
(23) A possibly existing gap (10) (cf.
(24) As
(25) The sloping shoulder (17) in the embodiment shown has a surface or arcuate surface (18).
(26) Its width can remain the same over the angle of the arc. The arcuate shoulder (17) directly adjoins the through-opening (4) on the rear side, seen in the welding feed direction (6), with the edge (19) of the shoulder (17) or its arcuate surface (18) also being the opening edge.
(27) The arcuate surface (18) can have an elevation. Said elevation slopes backward from its front edge (19). The edge (19) is the part of the arcuate surface (18) which protrudes furthest in the direction of the axis (5).
(28) In a modification that is not shown, the sloping shoulder (17) can, on the one hand, be located at a distance from the through-opening (4) that is counter to the welding feed direction (6). It can also have a different, for example straight, extension and can be oriented transversely to the welding feed direction (6). The shoulder can maintain its sloped inclined arrangement or position for guiding the plasticized material.
(29) The end face regions (14,15) of different heights can start from the through-opening (4) and can extend in the welding feed direction (6). They preferably each have a flat surface.
(30) The higher end face region (14) is flush with the upper end of the shoulder (17) or arcuate surface (18) at the level of the axis (5). A set-off (20) can be provided at the lower connection point of the shoulder (17) or arcuate surface (18) and the lower end face region (14).
(31) A straight step (16), for example, is formed between the end face regions (14,15) of different heights. According to
(32) According to
(33) The head piece (3) can have sloping cutouts (21) on the upper side. As a result, the end face regions (14,15) which primarily interact with the workpieces (7,8) and the sloping shoulder (17) can be exposed and constraints during the welding feed can be avoided. The head piece (3) can have a preferably cylindrical body on the front region facing the work pieces (7,8). The end face regions (14,15) end in the feed direction (6) at the edge of the body.
(34) The height difference (h) of the end face regions (14,15) is formed on the step (16). The step wall extends, for example, perpendicular to the surfaces of the end face regions (14,15) and can run parallel to the axis (5).
(35) The height difference (h) of the end face regions (14, 15) can be adapted to a height difference (w) on the workpieces (7,8) to be welded. According to
(36) During the adjustment, the height difference (h) can be the same as the height difference (w). Alternatively, it can approximate the height difference (w) and be slightly smaller. This is the case, for example, with the aforementioned sloped alignment of the welding tool (1) and its axis (5) with a penetration angle with respect to the workpieces (7,8). As a result, a better defined contact of the head piece (3) with only one end face region (14,15), in particular the lower end face region (15), on the upper or higher workpiece (8) can be achieved. In addition, it is possible to prevent a jam in the groove between the workpieces (7,8).
(37) The head piece (22) can also have one or more openings (22) extending inward from the outer surface to the through-opening (4). These openings can, for example, be used to eject plasticized material drawn in from the through-opening (4).
(38) The openings (22) can have a substantially circular mouth at the edge of the through-opening (4). The mouth can be larger on the outside of the head piece (3) or its body. The mouth can, for example, extend a little over the circumference of the body. This is advantageous for the rotating ejection. The alignment with the axis (5) can be sloped or in the manner of a screw section. The openings (22) can be present on both sides of the head piece (3) and can open opposite to one another at the through-opening (4).
(39) In the exemplary embodiment shown, the head piece (3) is arranged on the welding tool (1) in a rotationally fixed manner. The head piece (3) can be arranged on the welding tool (1) in an exchangeable manner by means of a screw connection, bayonet lock or the like. The head piece (3) can be designed as an adapter for different work pieces (7,8) with a changing height difference (w) that are to be welded. The different head pieces (3) can have a plurality of height differences (h) at their end face regions (14, 15).
(40) During the welding process, the welding tool (1) with the head piece (3) can be guided along the welding joint (9) in the feed direction (6). The step (16) between the end face regions (14,15) can serve as a leading edge. The step can be pressed against the end face of the thicker workpiece (8) for the butt joint or against the upper workpiece (8) for the lap joint. The leading contact can be detected by the handling device by means of a suitable force measurement and used to control or regulate the feed movement.
(41) At the beginning of the welding process, the welding tool (1) can be fed to the workpieces (7,8) to be welded from its upper side with a vertical or sloped feed movement. By plasticizing the workpiece material, a starting hole can be formed, for example with the rotating welding pin (2), with the welding feed (6) subsequently taking place. During delivery, the head piece (3) can be aligned with the feed direction (6) and the weld joint (9) in a suitable manner. The head piece (3) can be coupled to the handling device in a rotationally fixed manner via the welding tool (1) and has a known rotation assignment.
(42) In the drawings, the welding means (2) is indicated schematically. For an FSW welding tool, said means can be a rotating welding pin with a suitable tip, for example a conical tip, which plasticizes the workpiece. In other embodiments, the welding means (2) can be designed in a different way and cause the workpieces (7,8) to be plasticized at the welding point.
(43) Modifications of the embodiments shown are possible in various ways. The number and arrangement of the end face regions (14,15) of different heights can vary, in particular if more than two workpieces (7,8) are to be welded.
(44) While the present invention has been illustrated by a description of various embodiments, and while these embodiments have been described in considerable detail, it is not intended to restrict or in any way limit the scope of the appended claims to such detail. The various features shown and described herein may be used alone or in any combination. Additional advantages and modifications will readily appear to those skilled in the art. The invention in its broader aspects is therefore not limited to the specific details, representative apparatus and method, and illustrative example shown and described. Accordingly, departures may be made from such details without departing from the spirit and scope of the general inventive concept.
LIST OF REFERENCE SIGNS
(45) 1 Welding tool, FSW tool 2 Welding means, welding pin 3 Head piece, adapter 4 Through-opening 5 Axis 6 Welding feed direction 7 Workpiece 8 Workpiece 9 Weld joint, lap joint, butt joint 10 Gap 11 Weld seam 12 Welding transition region 13 End face 14 Higher end face region 15 Lower end face region 16 Step, leading edge 17 Sloped shoulder 18 Arcuate surface 19 Edge 20 Set-off 21 Cut-out 22 Opening h Difference in height of the end face regions w Difference in height of the workpieces