DEVICE AND METHOD FOR INCREASING THE SPEED AND INCREASING THE STABILITY OF THE WELDING PIN IN FRICTION STIR WELDING
20220001487 ยท 2022-01-06
Assignee
Inventors
Cpc classification
International classification
Abstract
The invention relates to a device and method for increasing the speed and increasing the stability of the welding pin in friction stir welding with the following device features: a) a tool drive (1) has a retaining flange (2) for a cone-shaped tool cover (3) with a union nut (4); b) an annular retaining ring (12) surrounds a pin shank (6) with a tool shoe (7) secured to the diameter of the retaining ring (12), wherein the tool shoe (7) has a smoothing and compressing surface (11) in the region of the pin tip (10) for smoothing the weld seam, wherein the pin shank has the width of the tool shoe (7); c) the pin tip (10) has an annular friction surface (9) which surrounds a screw conveyor (8) for the output of material transport from the pin tip (10), which has a thread running in the opposite direction to the thread of the pin tip (10).
Claims
1. A device for increasing the speed and increasing the stability of the welding pin in friction stir welding, said device having the following features: a) a tool drive (1) bears a retaining flange (2) for a conical tool dome (3) with a union nut (4), b) an annular retaining ring (12) encloses a pin shank (6) with a tool shoe (7) which is fastened to the diameter of the retaining ring (12), wherein the tool shoe (7), in the region of the pin tip (10), has a smoothing and compacting surface (11) for smoothing the weld seam, wherein the pin shank has the width of the tool shoe (7), c) the pin tip (10) has an annular friction surface (9) which surrounds a conveying screw (8) for the output of the material transport from the pin tip (10), the thread of which conveying screw runs counter to the thread of the pin tip (10).
2. The device as claimed in claim 1, wherein the side is a lifting device (18) for the possible swivelling of a rolling-roller arm (17) into the region of the abutment edge (1) of the parts (5) to be joined.
3. The device as claimed in claim 1, wherein the half radius (15) of the smoothing and compacting surface (11) adjoins the pin shank (6).
4. The device as claimed in claim 1, wherein the conveying screw (8) starts from the smoothing and compacting surface (1).
5. A method for increasing the speed and increasing the stability of the welding pin in friction stir welding, having the following features: a tool drive (1) bears a conical tool dome (3), wherein a lifting device (18) of a rolling-roller arm (17) is provided in the region of the abutment edge (19) of the parts (5) to be joined, wherein the tool shoe (7) has a smoothing and compacting surface (11) for smoothing the weld seam, has an annular friction surface (9) which encloses a conveying screw (8) for the output of the material transport from the pin tip (10), the thread of which conveying screw runs counter to the thread of the pin tip (10).
6. The method as claimed in claim 5, wherein the annular friction surface (9) heats the parts (5) to be joined by friction and thus increases the speed of the welding operation, wherein a slight burr is raised on the left and right sides that is however flattened by means of the rolling rollers (16).
7. The method for claim 5, wherein the distance the breakaway edge (13) of the smoothing and compacting surface (11) from the pin shank (6) is optimized during the progression.
8. A computer program with a program code for carrying out the method steps as claimed in claim 5, when the program is executed on a computer.
9. A machine-readable carrier with the program code of a computer program for carrying out the method as claimed in claim 5, when the program is executed on a computer.
Description
[0022] In the figures, specifically:
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030] The tool shoe (7) is fastened to the tool dome (3) via a union nut (4). Radial screws may also be used for this purpose.
[0031] The tool shoe (7) is shown with its pin shank (6) in direct engagement with the part (5) to be joined that is to be welded. On the left-hand side, fastened to the retaining flange (2) for the tool dome (3), is a lifting device (18) for a rolling-roller arm (17) (or corresponding balls) which takes on the guidance of two rolling rollers (16) which run in parallel, fastened one (18) of which can be seen in the side view. The lifting device is regulated by piezo means, wherein the height or contact pressure of the rollers must be regulated independently of the actual process force regulation. In this way, the pressure of the rolling rollers can adapt to the burr that is produced, because an excessively high pressure would impress the rollers into the part to be joined, since the rollers press the parts to be joined within the heating zone (15) (see
[0032]
[0033] The pin shank (6), which runs out into the pin tip (10), before it reaches the pin tip (10) likewise bears a conveying screw (8) which has a counterclockwise thread and continually conveys the drainage material into the process zone, wherein the conveying screw (8) is surrounded in the lower region by a ring-shaped annular friction surface (9) at the level of the smoothing and compacting surface (11), which ring-shaped annular friction surface serves to heat the part(s) (5) to be joined. It would also be possible here to refer to a second and/or rotating remaining shoulder. As a result of conveying the drainage material downward by way of the conveying screw (8), the annular gap between the pin shoe radius (14) and the pin shank (6) is sealed upwardly. Drainage material is the term for the abraded material which is detached during the welding process from the parts (5) to be joined and is deposited on the pin (6).
[0034]
[0035] The retaining ring (12), which is depicted by dashed lines through the machine reconstruction, is known from
[0036] The rolling-roller arm (17), known from
[0037] The small sliding surface (11) on the shoe results in the advantage of a low contact pressure of the tool and a faster welding speed. The contact pressure is specific to the tool and therefore fixed. On account of the small contact surface, the contact pressure is however considerable, but this means that welding can be performed faster at a given mechanical force. Indeed, produced as a result of this is a slight burr which is however slightly smoothed by the rolling rollers (in the transition region between the weld seam and the base material along the flanks of the welding shoe).
[0038]
[0039]
[0040] The pin shank (6), which is illustrated perpendicularly in the center, allows the tool shoe (7), illustrated in dashed lines in a concealed manner, with its smoothing and compacting surface (11), mounted in the lower region, the annular friction surface (9) and the conveying screw (8) to be seen. The pin tip (10) can likewise be seen.
[0041] A faster welding speed and a longer service life of the tool follow from this configuration. Inter alia, by virtue of the reduced self-heating of the tool by the conveying screw (8), which reduces the internal friction.
[0042]
[0043] The curve (15) shows the heating zone of the actual welding operation, wherein the dashed center line (19) of
[0044] The two rolling rollers (16) smooth the unevennesses and/or weld seam edges (20).
[0045] The boundary lines of the welding shoe (7) from the top are identified by (7).
[0046] The smoothing surface (11) with its breakaway edge (13) encircles half of the surface (9) which is referred to as the friction surface for the heating of the parts to be joined.
[0047] The pin shank (6) with its pin tip (10) can be seen as the hub of the welding operation. The control of the welding process with its comprehensive regulation options requires a special computer program.
LIST OF REFERENCE SIGNS
[0048] 1 Tool drive [0049] 2 Retaining flange for tool dome (cone) [0050] 3 Tool dome (cone) [0051] 4 Union nut for tool shoe [0052] 5 Part(s) to be joined [0053] 6 Pin shank [0054] 7 Tool shoe [0055] 8 Conveying screw for transporting abraded material (also referred to as a burr screw.) [0056] 9 Annular friction surface for heating the parts to be joined [0057] 10 Pin tip [0058] 11 Smoothing and compacting surface [0059] 12 Retaining ring for welding shoe [0060] 13 Breakaway edge [0061] 14 Pin shoe radius [0062] 15 Heat distribution curve [0063] 16 Rolling roller (or ball) [0064] 17 Rolling-roller arm [0065] 18 Lifting device for rolling-roller arm [0066] 19 Abutment edge of the parts to be joined [0067] 20 Burr, unevennesses, weld seam edge [0068] 21 Weld seam, seam surface