Laser welding of busbars with beam shaping
A method for joining busbars includes reshaping a raw laser beam to obtain a reshaped laser beam. The reshaped laser beam comprises a core focus portion and at least one ring focus portion. The core focus portion and the ring focus portion are coaxial with respect to one another. The ring focus portion surrounds the core focus portion. The method further includes directing the reshaped laser beam to a plurality of busbars to weld the plurality of busbars to one another along at least one weld seam.
1 . A method for joining busbars, the method comprising:
emitting, using a laser source, a raw laser beam,
reshaping the raw laser beam to obtain a reshaped laser beam, wherein the reshaped laser beam comprises a core focus portion and at least one ring focus portion, the core focus portion and the at least one ring focus portion being coaxial with respect to one another and the ring focus portion surrounding the core focus portion,
directing the reshaped laser beam to a plurality of busbars to weld the plurality of busbars to one another along at least one weld seam,
at a beginning of welding of a start section of the weld seam, initially decreasing an instantaneous average laser power of the reshaped laser beam and then increasing the instantaneous average laser power, and
during welding of an end section of the weld seam, decreasing the instantaneous average laser power.
2 . The method as claimed in claim 1 , wherein the reshaping of the raw laser beam is effected by using a multiclad fiber, wherein a first part of the raw laser beam is fed into a core fiber of the multiclad fiber and at least one second part of the raw laser beam is fed into a ring fiber of the multiclad fiber at an input end, the ring fiber surrounds the core fiber, and the reshaped laser beam is obtained at an output end of the multiclad fiber.
3 . The method as claimed in claim 1 , wherein the instantaneous average laser power is initially decreased and then increased continuously during the welding of the start section, and is decreased continuously during the welding of the end section.
4 . The method as claimed in claim 3 , wherein the instantaneous average laser power is initially decreased and then increased linearly with time during the welding of the start section, and is decreased linearly with time during the welding of the end section.
5 . The method as claimed in claim 3 , wherein the instantaneous average laser power is initially decreased and then increased linearly with a welding distance during the welding of the start section, and is decreased linearly with the welding distance during the welding of the end section.
6 . The method as claimed in claim 1 , wherein, compared with a maximally used laser power, the instantaneous average laser power is initially decreased by 30-50% and then increased by 30-50% during the welding of the start section, and the instantaneous average laser power is decreased by 50-70% during the welding of the end section.
7 . The method as claimed in claim 1 , wherein a division of the laser power between the core focus portion and the at least one ring focus portion remains constant during the welding of the start section and the welding of the end section compared with the welding of a middle section of the weld seam between the start section and the end section.
8 . The method as claimed in claim 1 , wherein for a proportion AK, allotted to the core focus portion, of a total laser power used in total during the welding, the following holds true: 50%≤AK≤80%.
9 . The method as claimed in claim 1 , wherein for a diameter DR of the ring focus portion and a diameter DK of the core focus portion, the following holds true:
1.5≤ DR/DK≤ 6.
10 . The method as claimed in claim 1 , wherein the reshaped laser beam is directed onto the busbars along a beam direction during the welding, the beam direction being inclined toward or inclined away from a already produced weld seam by a pivot angle a relative to a surface normal of the busbars facing the reshaped laser beam in a principal plane containing the surface normal and a feed direction of the welding process,
where 3o≤α≤80.
11 . The method as claimed in claim 1 , wherein, during the welding, a protective gas is guided onto a melt pool at a surface of the busbars.
12 . The method as claimed in claim 1 , wherein a position of the busbars is determined by a camera system, and wherein the reshaped laser beam is directed onto the busbars by a scanner optical unit, the scanner optical unit being aligned in an automated manner using the position of the busbars determined by the camera system during the welding.
13 . The method as claimed in claim 1 , wherein a first busbar and a second busbar of the plurality of busbars are arranged in an overlapping manner in an overlap region, and the at least one weld seam is placed in the overlap region, such that the weld seam projects through the first busbar right into the second busbar or through the second busbar.
14 . The method as claimed in claim 13 , wherein a plurality of weld seams are placed next to one another in the overlap region of the first and second busbars, such that each of the plurality of weld seams projects through the first busbar right into the second busbar or through the second busbar.
15 . The method as claimed in claim 1 , wherein the plurality of busbars includes a first busbar and a second busbar, an end face of the first busbar and an end face of the second busbar are arranged in a manner bearing against one another, and the weld seam is placed along a joint of the end face of the first busbar and the end face of the second busbar.
16 . The method as claimed in claim 1 , wherein—the plurality of busbars comprises Cu busbars having a thickness t, where 6 mm≤t≤12 mm
a total used maximum laser power GL where 12 kW<GL<20 kW;
a feed speed v, where 2 m/min≤v≤4 m/min;
a proportion AK, allotted to the core focus portion, of a total laser power used in total during the welding, where AK≥70%;
a focus position FL of the reshaped laser beam, where −4 mm≤FL≤+1 mm;
a protective gas flow rate SGF of argon, where SGF≥15 1/min;
a wavelength X of the reshaped laser beam where 1000 nm≤X≤1100 nm;
a beam parameter product BPP of the raw laser beam where 4 mm*mrad≤BPP≤16 mm*mrad; and
a diameter DR of the ring focus portion and a diameter DK of the core focus portion at a focus, where 150 um≤DK≤250 μm and 500 um≤DR≤900 um.
17 . The method as claimed in claim 1 , wherein
the plurality of busbars comprises Cu busbars having a thickness t where 2 mm≤t≤4 mm,
a total used maximum laser power GL where 5 kW≤GL≤10 kW;
a feed speed v, where v≥3 m/min;
a proportion AK, allotted to the core focus portion, of a total laser power used in total during the welding, where 50%≤AK≤75%;
a focus position FL of the reshaped laser beam,
where −3 mm≤FL≤0 mm;
a protective gas flow rate SGF of argon, where SGF≥15 l/min;
a wavelength λ of the reshaped laser beam where 1000 nm≤λ≤1100 nm;
a beam parameter product BPP of the raw laser beam, where
2 mm*mrad≤BPP≤8 mm*mrad; and
a diameter DR of the ring focus portion and a diameter DK of the core focus portion at a focus, where 35 μm≤DK≤200 μm and 120 μm≤DR≤700 μm.
18 . A busbar arrangement, comprising at least two busbars, the two busbars being joined by laser welding by the method as claimed in claim 1 .
19 . The method as claimed in claim 2 , wherein the reshaping of the raw laser beam is effected by a wedge plate disposed in a light path of the second part of the raw laser beam, so that the second part of the raw laser beam is fed into the ring fiber of the multiclad fiber.