Method and device for laser welding conductor wires
The present invention relates to a method for laser welding conductor wires ( 5, 7 ), in particular conductor wires ( 5, 7 ) arranged in slots ( 2 ) of a core ( 3 ) of a dynamo electric machine, such as a stator core, to form a winding and a device ( 35 ) for laser welding conductor wires ( 5, 7 ). A first end ( 4 ) of a first conductor wire ( 5 ) and a second end ( 6 ) of a second conductor wire ( 7 ) are arranged adjacent to each other. A laser beam is applied to a first end surface ( 8 ) of the first conductor wire ( 5 ) and a second end surface ( 10 ) of the second conductor wire ( 7 ) to weld together the first end ( 4 ) of the first conductor wire ( 5 ) and the second end ( 6 ) of the second conductor wire ( 7 ). The first end surface ( 8 ) and the second end surface ( 10 ) point upwards, preferable the first end surface ( 8 ) and the second end surface ( 10 ) are axial end surfaces. A laser beam ( 31 ) is applied in a first substantially closed path ( 21 ) within the first end surface ( 8 ) to form a first molten pool ( 25 ). The laser beam ( 31 ) is applied in a second substantially closed path ( 22 ) within the second end surface ( 10 ) to form a second molten pool ( 26 ). The laser beam ( 31 ) is applied in a third substantially closed path ( 23 ) to the first end surface ( 8 ) and to the second end surface ( 10 ) connecting the first and second molten pool.
1 . A method for laser welding conductor wires to form a winding, wherein a first end of a first conductor wire and a second end of a second conductor wire are arranged adjacent to each other, and a laser beam is applied to a first end surface of the first conductor wire and a second end surface of the second conductor wire to weld together the first end of the first conductor wire and the second end of the second conductor wire, the first end surface, and the second end surface, the method comprising:
applying a laser beam in a first path within the first end surface to form a first molten pool; and
after applying the laser beam in the first path, performing, in either order:
(a) applying the laser beam in a second path within the second end surface to form a second molten pool; and
(b) applying the laser beam in at least one of (1) a path starting at the first molten pool and extending to the second end surface, and (2) a third path extending over the first end surface and the second end surface;
wherein:
each of the first path, the second path, and the third path encompasses at least a respective angle of 270°, and
the first and second molten pools are connected by the at least one of (1) the path starting at the first molten pool to the second end surface, and (2) the third path extending over the first end surface and the second end surface.
2 . The method according to claim 1 , wherein the conductor wires are arranged in slots of a core of a dynamo electric machine.
3 . The method according to claim 1 , wherein the first end surface and the second end surface point upwards.
4 . The method according to claim 1 , wherein the first end surface and the second end surface are axial end surfaces.
5 . The method according to claim 1 , wherein after forming the first molten pool the laser beam is guided to the second end surface in a straight path.
6 . The method according to claim 1 , wherein at least one of the first path and the second path is circular.
7 . The method according to claim 1 , wherein the third path is elliptical.
8 . The method according to claim 1 , wherein any one or more of:
the applying the laser beam in the first path within the first end surface to form the first molten pool,
the applying the laser beam in the second path within the second end surface to form the second molten pool,
the applying the laser beam in the path starting at the first molten pool and extending to the second end surface, or
the applying the laser beam in the third path extending over the first end surface and the second end surface, is repeated at least one time.
9 . The method according to claim 1 , further comprising applying the laser beam in a fourth path to the first end surface and to the second end surface surrounding the first path, the second path and third path, wherein the fourth path encompasses at least a respective angle of 270°.
10 . The method according to claim 9 , wherein the fourth path is elliptical.
11 . The method according to claim 1 , wherein at least one of the cross-sectional area of the first end of the first conductor wire and the cross-sectional area of the second end of the second conductor wire gets smaller towards the axial end.
12 . A device for laser welding conductor wires to form a winding, for laser welding conductor wires to form a winding, wherein a first end of a first conductor wire and a second end of a second conductor wire are arranged adjacent to each other, and a laser beam is applied to a first end surface of the first conductor wire and a second end surface of the second conductor wire to weld together the first end of the first conductor wire and the second end of the second conductor wire, the first end surface, and the second end surface, the device comprising:
at least one laser tool for one or more of generating or applying a moveable laser beam to a first end surface of a first conductor wire and a second end surface of a second conductor wire for welding together the first end of the first conductor wire and the second end of the second conductor wire; and
a control unit having an output in operative connection with the laser tool; wherein:
the control unit is configured for controlling the laser tool to cause the laser tool to apply the laser beam in a first path within the first end surface to form a first molten pool, and the control unit is further configured to cause the device to perform, in either order after applying the laser beam in the first path, one or more of the following:
(a) applying the laser beam in a second path within the second end surface to form a second molten pool; and
(b) applying the laser beam in at least one of (1) a path starting at the first molten pool and extending to the second end surface, and (2) a third path extending over the first end surface and the second end surface;
wherein:
each of the first path, the second path, and the third path encompasses at least a respective angle of 270°, and
the first and second molten pools are connected by the at least one of (1) the path starting at the first molten pool to the second end surface, and (2) the third path extending over the first end surface and the second end surface.
13 . The device according to claim 12 , wherein the control unit is configured for controlling the laser tool to cause the laser tool to apply the laser beam in a fourth path to the first end surface and to the second end surface surrounding one or more of the first path, the second path, or third path, wherein the fourth path encompasses at least a respective angle of 270°.