Laser welding method and laser welding device
11235421 · 2022-02-01
Assignee
Inventors
Cpc classification
B23K26/08
PERFORMING OPERATIONS; TRANSPORTING
B23K26/14
PERFORMING OPERATIONS; TRANSPORTING
B23K26/083
PERFORMING OPERATIONS; TRANSPORTING
B23K26/0869
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23K26/14
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A laser welding method is constituted of: emitting shield gas in advance through a laser nozzle provided on a laser processing head at a time of moving the laser processing head from a reference position to a starting position for welding the workpiece; and radiating laser light onto the workpiece through the laser nozzle at the starting position for welding when a feeding rate of the shield gas gets stabilized, whereby performing laser welding on the workpiece.
Claims
1. A laser welding method, comprising: providing to a welding pattern selector a first welding pattern that causes an emission of shield gas through a laser nozzle provided on a laser processing head such that the shield gas is emitted at a mid-course position while moving the laser processing head along a travel path from a reference position to a starting position for welding the workpiece, the mid-course position being defined at a position intermediate the reference position and the starting position, the reference position being a stand-by position prior to moving the laser processing head along the travel path, the starting position for welding being a stand-still position at which the workpiece is welded, the first welding pattern causing an increase of the rate of the shield gas after starting the emission of the shield gas until the rate is stabilized, and, at the starting position for welding and when the rate of the shield gas is stabilized, starting radiating the laser beam onto the workpiece; providing to the welding pattern selector a second welding pattern that causes a start of emission of the shield gas when the laser processing head reaches the starting position for welding and radiating the laser beam onto the workpiece when the rate of the shield gas is stabilized; selecting and inputting a specific welding pattern into a welding pattern selector, the specific welding pattern being selected from among the first welding pattern and the second welding pattern; and performing laser welding on the workpiece according to the specific welding pattern that has been selected and inputted.
2. The laser welding method of claim 1, wherein, as caused by the second welding pattern, emission of the shield gas is started when the laser processing head reaches the starting position for welding, and emission of the shield gas is started at a time when the laser nozzle reaches the starting position for welding and then a feeding rate of the shield gas stabilizes.
3. The laser welding method of claim 1, wherein, as caused by the first welding pattern, emission of the shield gas is started when an elapsed time after the laser processing head starts moving from the reference position reaches a predetermined time, or when a travel distance along the travel path reaches a predetermined distance.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(6) Exemplary embodiments will be described hereinafter with reference to appended drawings.
(7) Referring mainly to
(8) Meanwhile, as the laser welding device 1 as described above has a constitution that has been well-known, descriptions about its detailed constitution and action of the laser welding device 1 will be omitted.
(9) In a case where laser welding is carried out on a workpiece W by means of the laser welding device 1, actions shown in
(10) In the case as described above, the laser welding is to be carried out after the feeding rate of the shield gas SG is stabilized. Thus the laser welding can be well carried out and fine appearances of weld beads can be improved. The standby time required for stabilizing the feeding rate of the shield gas is nevertheless long, and therefore further improvement is desired in order to gain further efficiency of the laser welding.
(11) Thus a control device 7 for controlling action of the laser welding device 1 is constituted in a way as illustrated in
(12) The control device 7 is provided with a travel path data memory 13. The travel path data memory 13 stores data about the travel path from the start position A for various sets of laser welding to the starting position D for welding the workpiece W. Further, it stores distance data and speed data of plural sections of various travel paths, such as distance data between positions A-B, between positions B-C and between C-D, and speed data.
(13) Further, the control device 7 is provided with a travel speed parameter memory 15. This travel speed parameter memory 15 stores data of speeds as parameters corresponding to respective sections in the various travel paths.
(14) Further, the control device 7 is provided with arrival estimation calculation means (travel time calculation means) 17 for calculating a time from starting at the start position A until reaching the starting position D for welding. This arrival estimation calculation means 17 is configured to refer the travel path data stored in the travel path data memory 13 and the travel speed data stored in the travel speed parameter memory 15 to calculate a travel time from starting at the start position A until reaching the starting position D for welding.
(15) The control device 7 is provided with a gas feeding rate stability data table 19. This gas feeding rate stability data table 19 stores data about stabilizing times required for stabilizing feeding rates from after starting feeding assist gas from the shield gas feeding means 11 to the laser nozzle 5 until the feeding rates get stabilized. In regard to the stabilizing times, values corresponding to respective kinds of laser nozzles and respective kinds of shield gas in various welding processing conditions are stored therein. Specifically, as shown in
(16) Further, the control device 7 is provided with an action pattern selection means (welding pattern selection means) 21. This action pattern selection means 21 is configured so that an operator can select and input therein one from a plurality of patterns as to welding patterns. For example, as the welding patterns, two patterns of a first pattern where a fine appearance of the weld bead or such weighs more and a second pattern where efficiency of the laser welding weighs more can be prepared. This action pattern selection means 21 may be snap switches connected to the control device 7 for example. Specifically, the action pattern selection means 21 is configured so that an operator when carrying out the laser welding can select and input therein the first pattern or the second pattern. Therefore it is possible to write selection of the first or second pattern in a processing program to carry out the laser welding.
(17) In addition, the control device 7 is provided with a gas emission point calculation means 23. This gas emission point calculation means 23 is configured so as to calculate a time Td after the laser processing head 3 starts moving from the start position A until emitting the gas is started (see
(18) Therefore, as schematically illustrated in
(19) As being already understood from the above descriptions, if the second pattern is selected by means of the action pattern selection means 21, as described already, at a mid-course position on the way of the laser processing head 3 departing from the start position A but before reaching the starting position D for welding, specifically at the position C for example, emission of the shield gas SG is started. Next, as soon as the laser processing head 3 reaches the starting position D for welding, the gas feeding rate of the shield gas SG is stabilized. Thus, as soon as the laser processing head 3 reaches the starting position D for welding, radiation of the laser beam LB onto the workpiece W can be enabled so as to start the laser welding. Specifically, efficiency of the laser welding can be improved.
(20) In the meantime, also in this second pattern, at a time when the laser processing head 3 reaches the starting position D for welding, the gas feeding rate of the shield gas SG has been stabilized. Therefore the fine appearance of the weld bead or such is improved. Specifically, both the efficiency and the fine appearance can be improved.
(21) If the first pattern is selected by means of the action pattern selection means 21, the laser processing head 3 is so configured as to act as described with reference to
(22) In regard to a timing when the gas feeding rate of the shield gas SG gets stabilized, however, it is desired to make it simultaneous with a timing when the laser nozzle 5 reaches the starting position D for welding. It could be nevertheless configured so that the gas feeding rate gets stabilized where the laser nozzle 5 reaches a point at a predetermined distance from the starting position D for welding. Further, it is possible that the gas feeding rate gets stabilized after a predetermined time elapsed after the laser nozzle 5 reaches the starting position D for welding.
(23) Although certain exemplary embodiments are described above, modifications and variations of the embodiments will occur to those skilled in the art, in light of the above teachings.
INDUSTRIAL APPLICABILITY
(24) A laser welding device and a laser welding method that can suppress wasted consumption of the shield gas.