Helical laser welding method for joining metals

JP2024522011A5Active Publication Date: 2025-05-26CORELASE
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Patent Information

Application Number
JP2023574151
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-06-03
Filing Date
2022-05-17
Publication Date
2025-05-26
Estimated Expiration
2042-05-17

AI Technical Summary

Technical Problem

Conventional laser welding methods face challenges in creating strong weld joints for dissimilar metals, materials with entrapped gases, and coated metals due to issues like spatter, gas encapsulation, cooling rate differences, and cracking, which affect joint strength and conductivity.

Method used

A helical laser welding method using dual beam laser radiation with independent control of central and annular beams to stabilize keyholes, minimize spatter, and release entrapped gases, allowing for high-quality welds in zero-gap configurations.

Benefits of technology

The method achieves strong, crack-free welds with minimal spatter and porosity, even in scenarios with dissimilar metals and coatings, ensuring reliable joint integrity and conductivity.

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Abstract

The laser welding method includes focusing laser radiation (120) onto a first metal sheet (112) that is disposed on a metal component (114), optionally with one or more intervening metal sheets therebetween. The laser radiation (120) is steered to trace at least one helical path to spot weld the metal components (114) together. The laser radiation (120) includes a central beam (122C) and an annular beam (122A) to maintain a stable keyhole. One method is tailored to weld aluminum components with high gas content and / or dissimilar composition, for example, where the laser radiation (120) first traces an outward helical path (810) and then traces an inward helical path (830).
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Description

[Technical field]

[0001] (Priority) This application claims priority to U.S. Application Serial No. 17 / 338,109, filed June 3, 2021, the disclosure of which is incorporated herein by reference in its entirety.

[0002] The present invention relates generally to laser welding of metal sheets, particularly metal sheets with difficult material compositions. [Background technology]

[0003] Laser welding uses a laser beam as a focused heat source to locally melt and join two parts, typically made of metal. The laser beam can be focused to a relatively small spot, resulting in a high power density and a small heat affected zone. Laser welding is therefore an attractive technique when precision and a high degree of control are required. Moreover, laser welding is well suited to automation.

[0004] In laser welding, a focused laser beam precisely positions each weld spot or line while minimizing incidental heating. It is useful to distinguish between two main laser welding regimes. Conduction welding occurs at lower laser powers and lower laser power densities. The absorbed laser power heats the irradiated material, thereby melting the material in each part to be joined, which flows, mixes, and then solidifies. Keyhole welding occurs at higher laser powers and higher laser power densities that are sufficient to vaporize a portion of the irradiated material. The pressure of the vaporized material on the surrounding molten material opens a channel through the molten material. This channel, known in the art as a keyhole, has a characteristic narrow and deep profile that allows for deep penetration of the laser beam. The finished keyhole weld is generally narrower, deeper, and stronger than a conduction weld.

[0005] Laser welding has been successfully applied to a wide range of welding problems involving a variety of materials arranged in a variety of configurations. In some cases, laser welding replaces another welding technique. In other cases, laser welding enables the welding of structures that are not suitable for welding by traditional non-laser welding techniques.

[0006] The automotive industry is one of several manufacturing industries that are increasingly adopting laser welding. In the automotive industry, laser welding is currently used to weld many different vehicle parts, such as chassis, body frames, doors, engine parts, and batteries (for electric and hybrid vehicles). With the advantage of a small heat affected zone and a generally well-controlled and fine-tunable process, laser welding can be used to automatically and reliably weld thinner and smaller parts than when using traditional welding techniques. Laser welding is thus helping to advance automotive manufacturing technology to meet the demand for lighter and more efficient vehicles. For example, laser welding facilitates precise welding of lightweight body parts and connections in and to electrochemical batteries (e.g., connections between metal foil stacks and battery tabs and between battery tabs and busbars). In the case of car body parts, the materials being welded are typically steel, aluminum, and / or aluminum alloys. In the case of batteries, the materials being welded often include copper, but can also include aluminum or aluminum alloys.

[0007] Spot welding is one of many types of welding that can be used to laser weld overlapping parts. When spot laser welding two overlapping parts together, the laser beam is incident on one of the parts and melts locally through the part up to the interface with the second part and at least some distance into the second part. Spot laser welding may be applied to stacks of two, three, or more metal parts. Keyhole welding has been shown to create strong spot weld joints in many scenarios. To create larger spot welds than can be achieved with a stationary laser beam, the laser beam can be steered and trace a spiral pattern. Summary of the Invention [Means for solving the problem]

[0008] Disclosed herein is a helical laser welding method configured to spot weld together a stack of metal parts by tracing a helical shaped pattern with dual beam laser radiation. The dual beam laser radiation is incident on the metal stack from one side and melts through the stack to reach the furthest metal part. The metal parts may be a stack of two or more metal sheets. Alternatively, the furthest metal part of the stack, furthest from the side of the stack that receives the laser radiation, may be a thicker, non-sheet-like metal structure.

[0009] The method of the present disclosure utilizes keyhole welding and is specifically tailored to achieve strong weld joints in certain particularly challenging scenarios. Although keyhole welding is effective at melting and mixing materials, the quality of the resulting weld joint can be compromised by issues such as trapped gases, differing cooling rates, and material loss due to spatter.

[0010] Spatter is an undesirable effect in keyhole welding where the convection currents within the keyhole are strong enough that metal droplets are ejected during the welding process, which reduces the volume of the weld nugget in an uncontrolled manner.

[0011] Gas in the molten pool potentially poses several problems. The presence of gas bubbles in the molten pool can cause spatter. When gas remains trapped during the final cooling process, residual stresses caused by the presence of trapped gas can lead to cracks in the weld joint. If not released before or during cooling, the trapped gas forms substantial sized voids and / or smaller pores in the resulting weld mass.

[0012] Cooling rate differences are especially likely when dissimilar materials are welded together. When laser welding parts of the same or similar materials, a true metallurgical bond between the parts may be formed at the weld joint, and the material composition of the weld nugget is relatively uniform. When laser welding dissimilar materials, it may not be possible to form a metallurgical bond between the different materials. Instead, the weld may contain an intermixture of the two materials. When the intermixture is non-uniform, any substantial cooling rate difference between the two materials may lead to stress-induced cracking in response to the cooling of the molten pool.

[0013] Cracks, voids, porosity, and material loss can compromise the strength of the welded joint. Additionally, in scenarios where the welded structure is intended to carry electrical current, for example in battery applications, the conductivity of the welded joint can be adversely affected by these effects.

[0014] In the method, the laser welding is performed by a dual beam laser radiation including two beams, a central beam and an annular beam surrounding the central beam. The individual powers of the central and annular beams are controlled independently of each other to achieve the desired results. The dual beam laser radiation is more stable than a single laser beam and can maintain a well-controlled keyhole. The higher stability of the keyhole can simultaneously (a) minimize spatter and (b) maximize the duration the keyhole is open, thereby facilitating the release of trapped gas. The method traces the dual beam laser radiation along a spiral shaped pattern, ensuring the production of a strong weld joint with minimal trapped gas and minimal (or no) cracking, even in scenarios involving materials that are otherwise prone to gas trapping and cracking. Also, for the purpose of avoiding or at least minimizing cracking, the method is completed with a controlled tapering of the laser power while moving towards the center of the spiral pattern.

[0015] Benefiting from the process features described above, the method is capable of welding dissimilar metals, metals with trapped gas, and metals with coatings that evaporate during the welding process. One method is tailored to weld together aluminum parts with trapped gas, tracing the same area with both an outward spiral and an inward spiral, with a pulsed output of the central beam along the inward spiral portion to properly release the trapped gas. The aluminum parts may be of dissimilar composition. Another method is tailored to trace an inward spiral and welding coated metal parts, such as zinc-coated steel or nickel-coated copper. Conventional laser welding methods struggle to reliably produce good weld joints in the presence of such coatings, especially when no gap exists between the parts. The method reliably achieves high quality weld joints even for zero gap configurations. In fact, the quality of the weld joint of the present method is essentially gap size independent, within a range extending from zero gap to gaps of, for example, about 0.5 millimeters or potentially more, depending on the thickness of the parts.

[0016] In one aspect, a laser welding method for joining aluminum includes focusing laser radiation onto a first aluminum sheet to be placed on the aluminum part, and controlling the focused laser radiation to trace a plurality of paths on the first aluminum sheet to weld the first aluminum sheet to the aluminum part. The laser radiation includes a central beam and an annular beam surrounding the central beam. The controlling step includes maintaining a first individual power of the central and annular beams while tracing an outward spiral path. The outward spiral path begins at a central location and spirals around and away from the central location. The controlling step further includes gradually decreasing the power of the central and annular beams from the first individual power to the second individual power while tracing an outer path after tracing the outward spiral path. The outer path is at the periphery of the spiral path when viewed from the central location. Additionally, the controlling step includes, after tracing the outer path, first (a) gradually increasing the power of the central and annular beams from a respective second power to a respective third power while tracing an inward spiral path toward the central location, followed by (b) maintaining the third power of the annular beam and repeatedly pulsing the central beam between the third power and a lower fourth power, and finally (c) turning off the central beam and gradually decreasing the power of the annular beam to zero.

[0017] In another aspect, a laser welding method for joining a stack of metal parts having a coating at the interface includes focusing laser radiation onto the stack of metal parts and controlling the focused laser radiation to trace at least one path on a first metal sheet of the stack of metal parts to weld the stack of metal parts together, thereby also at least partially evaporating the coating at the interface. The metal parts include (i) the first metal sheet, (ii) the furthest metal part, and (iii) zero, one, or several intervening metal sheets between the first metal sheet and the metal parts. At least one of the metal parts has a coating at an interface with a neighboring metal part. The interface is configured with direct contact between the two neighboring metal parts or with a gap between them. The laser radiation is incident on the first metal sheet and includes a central beam and an annular beam surrounding the central beam. The controlling step includes the steps of tracing an inward spiral path and, while tracing the inward spiral path, initially (a) sustaining individual first powers of the central and annular beams, followed by (b) simultaneously decreasing the power of the central beam from its first power to zero Watts and decreasing the power of the annular beam from its first power to a non-zero second power, and finally (c) turning off the annular beam. [Brief description of the drawings]

[0018] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate generally preferred embodiments of the invention and, together with the general description given above and the detailed description of the preferred embodiments given below, serve to explain the principles of the invention.

[0019] [Figure 1] FIG. 1 illustrates a laser welding apparatus for welding metal parts using dual beam laser radiation, according to one embodiment.

[0020] [Diagram 2]FIG. 2 illustrates a lateral laser profile of the laser radiation generated by the apparatus of FIG. 1 when focused on a target, according to one embodiment.

[0021] [Diagram 3] FIG. 3 is a flow chart of a method for joining aluminum using helical laser welding with dual beam laser radiation of FIG. 2, according to one embodiment.

[0022] [Figure 4] Figure 4 shows an example configuration of metal parts as laser welded by the method of Figure 3. In this configuration, a metal sheet is placed over the metal parts with no other intervening metal sheets between them, and the metal melt caused by the laser welding extends only part way into the metal parts.

[0023] [Diagram 5] Figure 5 shows another exemplary configuration of metal parts that may be laser welded by the method of Figure 3. This configuration is similar to that of Figure 4, except that the metal melt extends throughout the entire metal part.

[0024] [Figure 6] Figure 6 shows yet another exemplary configuration of metal parts that may be laser welded by the method of Figure 3. This configuration is similar to that of Figure 4, except that it includes an intervening metal sheet.

[0025] [Figure 7] FIG. 7 illustrates a laser power scheme utilized in the method of FIG. 3, according to one embodiment.

[0026] [Figure 8] 8A, 8B, and 8C show three paths traced by focused dual beam laser radiation in the method of FIG. 3 according to one embodiment.

[0027] [Figure 9]9 is a flow chart for a method for joining metal parts including a coating thereon at the interface between them, according to an embodiment. The method uses helical laser welding with dual beam laser radiation of FIG.

[0028] [Figure 10] FIG. 10 illustrates an example of a two-layer stack of metal parts that can be welded by the method of FIG.

[0029] [Figure 11] FIG. 11 illustrates an example of a stack of metal parts with more than two layers that can be welded by the method of FIG.

[0030] [Figure 12] FIG. 12 illustrates a laser power scheme utilized in the method of FIG. 9, according to one embodiment.

[0031] [Figure 13] FIG. 13 illustrates a path traced by focused dual beam laser radiation in the method of FIG. 9 according to an embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0032] Detailed Description of the Invention Referring now to the drawings, where like components are designated by like numbers, Figure 1 generally illustrates one laser welding apparatus 100 for welding metal parts. The apparatus 100 is configured to focus dual beam laser radiation 120 onto a target and trace one or more paths, such as a helical path 130, on the target.

[0033] In the scenario depicted in FIG. 1, the apparatus 100 welds together two overlapping metal parts, namely a metal sheet 112 and a metal part 114. As used herein, the term "metal sheet" refers to a metal part with a thickness of 10 millimeters or less, and thus, focused laser radiation with an average power in the kilowatt range can melt through its thickness. As used herein, the term "metal sheet" includes metal foils with a thickness of less than 100 microns, and non-flat metal parts. As used herein, the term "metal sheet" also refers to localized sheet-like portions of a metal part having one or more other portions that are thicker than 10 millimeters. Thus, the thickness 112T of the metal sheet 112 is 10 millimeters or less. While joining the metal parts 112 and 114 by welding requires the laser radiation 120 to melt through the thickness 112T of the metal sheet 112, it is not required to melt through the thickness 114T of the metal part 114. Thus, metal part 114 may or may not be a metal sheet, and thickness 114T may or may not exceed 10 millimeters.

[0034] FIG. 2 shows the lateral profile 200 of the laser radiation 120 when focused on a target, for example, on the metal sheet 112 as depicted in FIG. 1. The laser radiation 120 includes a central beam 122C and an annular beam 122A that surrounds the central beam 122C. At least a majority of the power of the annular beam 122A is outside the diameter of the central beam 122C. In the embodiment depicted in FIG. 2, the central beam 122C and the annular beam 122A are circular. The following discussion assumes a circular beam, but is easily extended to an elliptical beam. The central beam 122C has a 1 / e 2 The annular beam 122A has a diameter 210C of 1 / e 2 of diameter 212A and the inner 1 / e 2The inner diameter 214A of the annular beam 122A exceeds the diameter 210C of the central beam 122C. The combined power of the central beam 122C and the annular beam 122A attains a minimum along a circle 220 that is between the outer diameter 210C of the central beam 122C and the inner diameter 214A of the annular beam 122A. In one embodiment, the diameter 210C is in the range of 50-500 microns and the outer diameter 212A is in the range of 2-3 times the diameter 210C. In another embodiment, the diameter 210C is in the range of 15-50 microns and the outer diameter 212A is in the range of 4-10 times the diameter 210C. The laser radiation 120 may be near infrared, for example with a wavelength in the range of 900-1,200 nanometers.

[0035] Referring again to FIG. 1 , the apparatus 100 includes a laser source 170, a central power controller 172, an annular power controller 174, an optical fiber 178, and a beam delivery module 180. The laser source 170 generates laser radiation. The laser source 170 couples one portion of the generated laser radiation into the central core of the optical fiber 178 to form the central beam 122C, and another portion of the generated laser radiation into the annular core of the optical fiber 178 to form the annular beam 122A. For purposes of coupling the laser radiation from the laser source 170 into the optical fiber 178, the apparatus 100 may implement fiber coupling techniques similar to those discussed in U.S. Pat. No. 10,807,190 and U.S. Patent Application Publication No. 2019 / 0118299, both of which are incorporated herein by reference in their entireties.

[0036] A central power controller 172 adjusts the power of central beam 122C as needed. An annular power controller 174 adjusts the power of annular beam 122A as needed. In one implementation, laser source 170 includes at least one laser controlled by central power controller 172 and dedicated to generating central beam 122C, and at least one other laser controlled by annular power controller 174 and dedicated to generating annular beam 122A.

[0037] Beam delivery module 180 receives laser radiation 120 from optical fiber 178. Beam delivery module 180 focuses laser radiation 120 onto a target and steers laser radiation 120 as needed, for example to trace a helical path 130. Beam delivery module 180 steers central beam 122C and annular beam 122A together as a whole, and need not be capable of spatially manipulating central beam 122C and annular beam 122A independently of one another. Beam delivery module 180 may include a focusing or objective lens and beam steering optics as known in the art.

[0038] The apparatus 100 may further include a master controller 190 that manages the operation of the central power controller 172, the annular power controller 174, and the beam delivery module 180. The master controller is, for example, a computer that contains machine-readable instructions that define the operations to be performed by the central power controller 172, the annular power controller 174, and the beam delivery module 180.

[0039] 1, the beam delivery module 180 focuses the laser radiation 120 onto a surface 112S of the metal sheet 112. The surface 112S is on the opposite side of the metal sheet 112 from the metal part 114. The beam delivery module 180 traces one or more paths, including a spiral path 130, with the laser radiation 120. The beam delivery module 180 focuses and steers both the central beam 122C and the annular beam 122A, while the central power controller 172 and the annular power controller 174 adjust the individual powers of the central beam 122C and the annular beam 122A independently of one another as needed to weld the metal sheet 112 and the metal part 114 together. For example, the power of central beam 122C may be ramped up or down at a different rate than the power of annular beam 122A, or central beam 122C may be pulsed or turned off while annular beam 122A is continuously on.

[0040] 3 is a flow chart for one method 300 for joining aluminum using helical laser welding with dual beam laser radiation 120. Method 300 may be performed by apparatus 100 and may be used to weld an aluminum sheet to one or more other aluminum sheets and / or to another aluminum part. Each aluminum sheet / part is made substantially from aluminum or an aluminum alloy. Without departing from the scope of this specification, the surface may exhibit some degree of oxidation and / or contamination prior to the welding step.

[0041] Aluminum is relatively viscous when melted. Because aluminum generally contains some trapped gas and the high viscosity prevents the release of such gas, conventional laser welding of aluminum is particularly prone to producing weld masses with significant porosity and substantial sized voids, and also prone to spatter. Some forms of aluminum, such as cast aluminum, tend to contain relatively large amounts of gas. The method 300 is tailored to optimize the release of trapped gas. For at least this reason, the method 300 is capable of forming high quality, low porosity weld joints between aluminum parts, even when one or more of the parts have high gas content, such as when one or more of the parts are cast aluminum parts. For example, the method 300 may be used to weld one or more extruded aluminum sheets to a cast aluminum part. In general, the method 300 promotes controlled release of trapped gas and minimizes stress, thereby minimizing spatter and porosity, and the risk of cracks forming during cooling.

[0042] Method 300 includes steps 310 and 320. Step 310 focuses laser radiation 120 onto a first aluminum sheet that is disposed on another aluminum part, optionally with one or more other intervening aluminum sheets disposed therebetween. Step 320 controls laser radiation 120 to trace multiple paths on the first aluminum sheet as it is focused, thereby welding the first aluminum sheet to the aluminum part (and the intervening aluminum sheets, if present).

[0043] Before proceeding to discuss the details of steps 310 and 320, a description is given of different configurations of aluminum parts that may be welded by method 300. Figures 4, 5, and 6 illustrate example configurations of metal parts to which method 300 may be applied, and example weld ingots formed by method 300. Within the context of method 300, the metal parts shown in Figures 4, 5, and 6 are, respectively, aluminum parts.

[0044] 4 shows a configuration 400 in which the metal sheet 112 is disposed on the metal component 114 with no other intervening metal sheets therebetween, and the metal melt caused by the implementation of the method 300 extends only partway into the metal component 114. The metal sheet 112 may be in direct contact with the metal component 114 along the interface 414F therebetween. Without departing from the scope of this specification, a small gap may be in place along the interface 414F, for example, due to positioning tolerances or surface non-flatness. The metal component 114 has a surface 414S on a side of the metal component 114 opposite the interface 414F. The metal sheet 112 and the metal component 114 have a combined thickness 410T between the surfaces 112S and 414S as arranged in the configuration 400. In scenarios where the metal sheet 112 and / or metal part 114 are non-planar, the thickness 410T is a local thickness measured in the area where the laser radiation 120 is incident on the metal sheet 112 during welding.

[0045] When applying method 300 to configuration 400, method 300 directs laser radiation 120 onto surface 112S of metal sheet 112 and melts through metal sheet 112, across interface 414F, and into metal component 114, but not throughout metal component 114 to surface 414S. Method 300 thereby forms weld nugget 450 beginning at surface 112S and terminating within an interior portion of metal component 114, such that depth 450D of weld nugget 450 is less than thickness 410T. Weld nugget 450 has a width 450W, which may exceed depth 450D. For example, width 450W may be in the range of 1 to 5 times depth 450D. Because method 300 does not attempt to melt metal component 114 all the way through to surface 414S in configuration 400, thickness 414T of metal component 114 may actually exceed thickness 112T of metal sheet 112 unless a corresponding heat sink provided by metal component 114 prevents laser radiation 120 from melting across interface 414F. In one embodiment of configuration 400, thickness 112T is in the range of 1-5 millimeters, thickness 114T is in the range of 2-30 millimeters, width 450W is in the range of 3-15 millimeters, and depth 450D extends into metal component 114 by at least 1 millimeter. Alternatively, depth 450D may extend into metal component 114 by less than 1 millimeter, for example, when metal component 114 is relatively thin and surface 414S preferably shows no signs of the welding process. Weld nugget 450 is typically widest at or near surface 112S, and therefore width 450W is taken about that center; the width of weld nugget 450 at interface 414F is somewhat smaller.

[0046] 5 illustrates a configuration 500, which is similar to configuration 400, except that the metal melt and associated weld nugget 550 generated by the implementation of method 300 extends throughout metal part 114 to surface 414S. In configuration 500, metal part 114 may be a metal sheet with a thickness 114T, similar to thickness 112T. The width 550W of weld nugget 550 may exceed thickness 410T. However, because only the periphery of weld nugget 550 is supported by the solid portions of metal sheet 112 and metal part 114 during laser welding, it may be preferable to limit width 550W to less than about three times thickness 410T. If width 550W is allowed to exceed this limit, laser radiation 120 may blow away a substantial amount of molten metal. Such blowout can compromise the size and strength of weld nugget 550, and in the worst case, can even form an opening extending through metal sheet 112 and metal component 114. In one embodiment of configuration 500, thicknesses 112T and 114T are each in the range of 1 to 3 millimeters, and width 550W is less than three times the resulting value of thickness 410T.

[0047] 6 shows configuration 600, which is similar to configuration 400, except that it includes an intervening metal sheet 616 between metal sheet 112 and metal component 114. Metal sheet 616 has a thickness 616T similar to thickness 112T. Metal sheets 112 and 616 abut at interface 616F, and metal sheet 616 and metal component 114 abut at interface 614F. Interfaces 616F and 614F each have properties similar to interface 414F. When method 300 is applied to configuration 600, laser radiation 120 melts through metal sheet 112, across interface 616F, through metal sheet 616, across interface 614F, and into metal component 114, but not down to surface 414S. The resulting weld nugget 650 terminates within an interior portion of the metal component 114 and has a depth 650D that is less than the combined thickness 610T of the metal sheets 112 and 616 and the metal component 114 between the surfaces 112S and 414S. In one embodiment of the configuration 600, the thicknesses 112T and 616T are each in the range of 1 to 3 millimeters, the thickness 414T is in the range of 2 to 30 millimeters, and the width 650W is 3 to 15 millimeters. The extension of the depth 650D into the metal component 114 may be similar to the extension of the weld nugget 450 into the metal component 114 in the configuration 400.

[0048] Configuration 600 may be modified for metal fusing according to method 300 that extends throughout metal part 114 to surface 414S in a manner similar to the modification of configuration 400 to arrive at configuration 500. Additionally, configuration 600 may be extended to include more than one intervening metal sheet 616 between metal sheet 112 and metal part 114.

[0049] 3, in one implementation of step 310, laser source 170 generates laser radiation 120 and beam delivery module 180 focuses laser radiation 120, including central beam 122C and annular beam 122A, onto surface 112S of metal sheet 112, such that the central beam 122C and annular beam 122A are arranged in any one of the configurations discussed above with reference to Figures 4, 5, and 6. In a related implementation of step 320, beam delivery module 180 steers laser radiation 120 to trace multiple paths on surface 112S with central beam 122C and annular beam 122A.

[0050] Step 320 includes steps 324, 326, and 328, which are performed in the order listed. The performance of step 320 involves tracing multiple paths while manipulating the power of the central beam 122C and the annular beam 122A. FIG. 7 shows the laser power scheme utilized in step 320, and FIGS. 8A, 8B, and 8C show three paths traced by the focused laser radiation 120 in steps 324, 326, and 328, respectively. The central beam 122C and the annular beam 122A may be continuous wave beams. The power of the central beam 122C and the annular beam 122A may be adjusted by the central power controller 172 and the annular power controller 174, respectively, as required.

[0051] Step 324 traces an outward spiral path 810, shown in FIG. 8A. The outward spiral path 810 begins at a central location L C Starting from the central location L at time t2 C It spirals around and away from the outer location L O In the embodiment depicted in FIG. 8A, the spiral path 810 resembles an Archimedes spiral, and thus reaches a central location L Care approximately equidistant and are characterized by a separation distance 812. Separation distance 812 is determined by diameter 212A of annular beam 122A and may be, for example, at least as large as diameter 212A, but not greater than twice diameter 212A. Without departing from the scope of this specification, helical path 810 may take shapes other than an Archimedean spiral.

[0052] While tracing the outward spiral path 810, step 324 calculates the power P C1 and the power P of the annular beam 122A A1 (See Figure 7.) P A1 , P C1 These powers of the central beam 122C and the annular beam 122A are set to be sufficient to maintain a localized melt pool with a keyhole extending from the surface of the aluminum sheet (e.g., surface 112S of metal sheet 112) on which the laser radiation 120 is incident, through any intervening aluminum sheet, if present (e.g., metal sheet 616), and into or through the aluminum part furthest from the aluminum sheet (e.g., metal part 114) on which the laser radiation 120 is incident. The keyhole and surrounding melt pool travel with the laser radiation 120 along the outward spiral path 810 during step 324. The keyhole is positioned relative to the area on which the laser radiation 120 is incident. The melt pool will generally have a tail behind the laser radiation 120.

[0053] Conventionally, keyhole welding is typically performed by a single laser beam with a near-normal or flat-top transverse intensity distribution. The power density of this single laser beam is set high enough to form the keyhole. However, the convection mechanism of the keyhole is often so violent that significant spatter is inevitable and the keyhole opens and closes unpredictably. On the other hand, the method 300 benefits from the presence of the annular beam, which (a) controls the thermal gradient imposed in the metal and (b) reduces the power density requirements for the central beam. When tracing the outward spiral path 810 with the laser radiation 120, a portion 824L of the annular beam 122A leads the central beam 122C, and another portion 824T of the annular beam 122A follows the central beam 122C. The leading portion 824L preheats the material, so that the keyhole is relatively easy to establish and maintain. The heating provided by trailing portion 824T serves to reduce the temperature of the material behind the keyhole more slowly, reducing the temperature gradient trailing the keyhole and minimizing stress in the cooled material. Method 300 thereby achieves a stable keyhole with little or no material loss through sputtering and with minimal stress. The improved keyhole stability achieved by method 300 aids in releasing gas trapped within the aluminum, since trapped gas can only escape through the keyhole when the keyhole is opened.

[0054] It has been found that step 324 alone is insufficient to achieve a satisfactory weld joint between aluminum parts when one or more parts contain a substantial amount of trapped gas. If step 324 is not accompanied by additional welding, the gas remains trapped within the molten material, typically resulting in a final weld mass having substantial sized voids and associated stress-induced cracks. Similarly, it has also been found that step 324 alone is insufficient to weld together aluminum parts of dissimilar composition, where a single pass along the outward spiral path 810 does not provide sufficient mixing, and the weld mass is therefore prone to cracking in response to cooling. Therefore, method 300 further includes step 328, which comprises: forming an inward spiral path 830 shown in FIG. 8C at a central location L C However, because in step 324 the tracing of outward spiral path 810 leaves the material hot, if step 328 were to be immediately initiated with the same power level as completing step 324, the material would become very hot. Sputtering would likely be unavoidable. To prevent such overheating, step 328 is separated from step 324 by step 326, which (a) starts at a reduced power level and (b) irradiates an area that is around the spiral paths of steps 324 and 328.

[0055] Step 326 traces the outer path 820 shown in FIG. 8B between times t2 and t3. The outer path 820 is a path from the outer location L O The outer path 820 starts from the central location L C When viewed radially from the outside, they lie about an outward spiral path 810 (FIG. 8B shows an example of a radial path 890). While tracing the outer path 820, step 326 calculates the power of the central beam 122C and the annular beam 122A, respectively, as power P C1 and P A1 From, respectively, power P C2 and P A2(See Figure 7.) C2 and P A2 Both are P C1 Lower than. P C2 and P A2 may be zero.

[0056] In one implementation, the outer path 820 includes a closed path, such as a circle as shown in FIG. 8B. In this implementation, step 326 may further serve to ensure that the weld nugget formed by the method 300 has a well-defined perimeter of the desired shape. Step 326 may trace this closed loop once, in this case, the outer path 820 includes an outer location L O Alternatively, step 326 may be performed by starting and ending at a central location L along a closed loop. C , in this case the outer path 820 is centered around the outer location L O or another end point L on the closed loop T When sufficient, a single circuit along the closed loop minimizes the overall processing time in this implementation.

[0057] In another implementation, the outer path 820 is C Before completing the complete circuit centered on the terminal point L T In this implementation, the terminal point L T is located at the center beam 122C and the annular beam 122A, respectively. C2 and P A2 The termination of the outer pass 820 before completing a full circuit results in a smaller weld mass, which may be preferable in some scenarios.

[0058] Without departing from the scope of this specification, the outer path 820 may be a continuation of the outward spiral path 810 and correspond to step 326, which gradually reduces the laser power at the outer end of the expanded version of the outward spiral path 810.

[0059] Step 328 is initiated at time t3, as shown in FIG. 8C, by following an inward spiral path 830 to a central location L C The geometry of the inward spiral path 830 may be similar to that of the outward spiral path 810. The inward spiral path 830 starts where the outer path 820 ends. Thus, the inward spiral path 830 traces back to the outer location L (as depicted in FIG. 8C ). O or terminal point L T The process of tracing the inward spiral path 830 begins at either the outer location L at time t3 or the outer location L at time t4. O (or terminal point L T ) to location L at time t4 P (2) the first section at location L at time t P from location L at time t5 R and (3) a second section at location L at time t. R from the central location L at time t6 C While tracing the first section, step 328 adjusts the power of the central beam 122C and the annular beam 122A to P C2 and P A2 From, respectively, power P C3 and P A3 (See FIG. 7.) In the embodiment depicted in FIG. C3 , P C2 Exceeds P A3 , P A2 and P C3 However, other relationships may be advantageous in some scenarios. Next, while tracing the second segment, step 328: (a) the power P of the annular beam 122A A3 (b) P C3 and lower power P C4 The central beam 122C is repeatedly pulsed between the 122C and the 122C (see FIG. 7). C4may be off power, i.e., zero watts. The pulse power rate of the central beam 122C may be in the range of 0.5 to 5 kilohertz. Finally, while tracing the third segment, step 328 reduces the power of the central beam 122C and the annular beam 122A. In one embodiment of this power reduction, step 328 turns off the central beam 122C and ramps down the annular beam 122A to zero watts (see FIG. 7). C4 When P is non-zero, step 328 may turn off central beam 122C by (a) switching its power to zero watts, for example, in response to starting the third segment, or (b) tapering its power to zero watts during the tracing of the third segment. Without departing from the scope of this specification, step 328 may turn off central beam 122C by switching its power to zero watts, for example, in response to starting the third segment, in response to starting the third segment. A3 It can be completed using:

[0060] Pulsing the central beam 122C during the second segment of the inward spiral path 830 proves effective to release gas trapped within the molten material after tracing the outward spiral path 810 in step 324. The tapering of the annular beam 122A, as opposed to abruptly turning it off, serves to slow down the cooling of the material, relieve stress, and prevent cracking of the weld mass. It has been found that tapering the power while the laser radiation 120 is steady tends to produce holes or dents in the weld mass. Thus, step 328 moves along the inward spiral path 830 while performing a final tapering of the laser radiation 120.

[0061] Step 320 may further include step 322, which precedes step 324. At time t0, step 322 includes C In the case of the central beam 122C and the annular beam 122A, the initial power P C0 and P A0 At each of the points P A0 , P C0From time t0 to time t1, the laser radiation 120 is directed to the central location L C While continuing to direct the beam toward the center, step 322 increases the power of the central beam 122C and the annular beam 122A, respectively, by P C1 and P A1 In step 322, the energy deposited by laser radiation 120 serves to form the melt pool and establish the keyhole. An embodiment that omits step 322 first reduces the power P of central beam 122C and annular beam 122A in step 324. C1 and P A1 , respectively, to turn on the laser emission 120.

[0062] In one embodiment, step 324 has a duration of 150-300 ms, step 326 has a duration of 25-100 ms, step 328 has a duration of 150-300 ms, and step 322 (if included) has a duration of 25-100 ms. Method 300 may be completed in less than one second. In some implementations, P C0 , P A0 , P C1 , P A1 , P C3 , and P A3 Each exceeds kilowatts of average power. For example, P C0 , P A0 , P C1 , P A1 , and P A3 can range from 2 to 4 kilowatts, and P C3 may be in the range of 0.5 to 2.5 kilowatts, and P C2 , P C4 , and P A2 can be in the range of 0 to 0.2 kilowatts. The power level can be adjusted according to the thickness of the aluminum parts involved and based on whether the resulting weld nub should penetrate the farthest aluminum part, or rather terminate at an interior location thereof.

[0063] The method 300 may include providing a shielding gas to the weld area to prevent porosity in the upper layer (e.g., the nearest surface 112S) of the weld mass, prevent plasma formation, and further help minimize exposure to ambient oxygen. The shielding gas may be, for example, argon or nitrogen.

[0064] Paths 810, 820, and 830 connect to form a single continuous path. Step 320 may trace each of paths 810, 820, and 830 in a clockwise or counterclockwise direction. The direction need not be the same for each path. For example, inward spiral path 830 may be traced the same as outward spiral path 810, but in a retrograde and inward direction rather than outward. The area traced by the combination of paths 810, 820, and 830 may have a general extent, e.g., diameter 870D as shown in FIG. 8C, in the range of 3 to 15 millimeters.

[0065] 9 is a flow chart for one method 900 for joining metal parts including a coating at the interface therebetween. Method 900 may be performed by apparatus 100. Method 900 may be used to weld zinc coated steel or nickel coated copper.

[0066] The presence of a coating at the interface between metal parts to be welded presents a challenge when the coating evaporates at a temperature lower than that required to melt the metal parts themselves. For example, the melting temperature of steel is typically about 1,370 degrees Celsius, while the evaporation temperature of zinc is only 907 degrees Celsius. In the absence of an efficient gas escape route, the gases produced by the evaporation of the coating cause significant spatter during keyhole welding. In conventional keyhole laser welding of such coated metal parts, the metal parts are separated from each other by a gap large enough to provide an alternative escape route for the gases. The method 900 does not require such a gap. Instead, the method 900 is tailored to allow the gases produced by the evaporation of the coating to efficiently escape through the keyhole with minimal (or no) spatter. The method 900 is thus able to minimize spatter when the metal parts are in direct contact with each other, thus achieving a high quality weld joint. It has been found that the method 900 also minimizes spatter and achieves high quality weld joints when the parts are separated from each other by a certain amount of gap. In the case of zinc coated steel, it has been found that the quality of the weld joint is not sensitive to the presence of gaps as long as the gaps are relatively small. The same weld joint quality is achieved for small and no gaps without even modifying any process parameters according to the gap size. The thickness of the top sheet is the primary factor that defines the maximum gap size for which the weld joint quality is not sensitive, since the keyhole tends to force the molten metal from the top sheet (closer to the incident laser radiation) onto the lower sheet or part. In one scenario, the quality of the weld joint is not sensitive to the gap size as long as the gap is within the range of 0 (no gap) to about 60% of the thickness of the top sheet.

[0067] Method 900 includes steps 910 and 920. Step 910 focuses laser radiation 120 onto a stack of metal parts. The stack of metal parts consists of a first metal sheet disposed on the metal parts, optionally with one or more intervening metal sheets disposed therebetween. The metal parts may or may not be metal sheets. Step 920 controls the laser radiation 120 to trace at least one path on the first metal sheet when focused, such that the first metal sheet is welded to the metal parts (and the intervening metal sheets, if present). This welding causes evaporation of coatings disposed within the path of the laser radiation 120, including coatings at the interface between the metal parts.

[0068] 10 and 11 illustrate example configurations of metal sheets / components that may be welded by method 900. Within the context of method 900, each metal sheet / component is made of steel, optionally coated with zinc or a zinc alloy, or each metal sheet / component is made of copper or a copper alloy, optionally coated with nickel or a nickel alloy. Without departing from the scope of this specification, the surfaces may exhibit some degree of oxidation and / or contamination prior to the welding step.

[0069] FIG. 10 illustrates a configuration 1000 with a two-layer stack. Configuration 1000 is similar to configurations 400 and 500, except that (a) at least one of metal sheet 112 and metal part 114 has a coating thereon at interface 414F, and (b) a gap 1010G may be present at interface 414F. Metal sheet 112 has a coating 1012C on a surface of metal sheet 112 facing interface 414F, and / or metal part 114 has a coating 1014C on a surface of metal part 114 facing interface 414F. Other surfaces of metal sheet 112 and metal part 114 may be coated as well. In a typical scenario, all surfaces of at least one of metal sheet 112 and metal part 114 are coated. Gap 1010G may be in the range of 0 (no gap) to 1 millimeter, or 0 to 60% of the thickness of metal sheet 112.

[0070] The weld nuggets formed by method 900 can have dimensions similar to those formed by method 300. The weld nuggets (not shown in FIG. 10) can extend through metal part 114 in a manner similar to weld nuggets 550 of FIG. 5, or terminate within an interior portion of metal part 114 in a manner similar to weld nuggets 450 of FIG. 4.

[0071] 11 illustrates a configuration 1100 including an intervening metal sheet 616 between metal sheet 112 and metal component 114. Configuration 1100 is similar to configuration 600, except that (a) at least one of metal sheet 112, metal sheet 616, and metal component 114 has a coating at the corresponding interface, and (b) a gap may be present at one or more of interfaces 616F and 614F. With respect to the coatings, metal sheet 112 may have coating 1012C at interface 616F, metal sheet 616 may have one or both of coating 1116C(1) at interface 616F and coating 1116C(2) at interface 614F, and metal component 114 may have coating 1014C at interface 614F. Interfaces 616F and 614F may each be configured with a gap similar to gap 1010G of FIG. The configuration 1100 is easily extended to include more than one intervening metal sheet 616 .

[0072] In configuration 1100 (not shown in FIG. 11), the weld nugget formed by method 900 may penetrate metal part 114 in a manner similar to weld nugget 550 of FIG. 5, or may terminate within an inner portion of metal part 114 in a manner similar to weld nugget 650 depicted in FIG. 6.

[0073] Referring again to FIG. 9, in one embodiment of step 910, the laser source 170 generates the laser radiation 120, and the beam delivery module 180 focuses the laser radiation 120, including the central beam 122C and the annular beam 122A, onto the surface 112S of the metal sheet 112, arranged in any one of the configurations discussed above with reference to FIGS. 10 and 11. In an embodiment of step 920, the beam delivery module 180 steers the laser radiation 120 to trace at least one path on the surface 112S with the central beam 122C and the annular beam 122A. The implementation of step 920 involves tracing at least one path while manipulating the power of the central beam 122C and the annular beam 122A. The power of the central beam 122C and the annular beam 122A can be adjusted by the central power controller 172 and the annular power controller 174, respectively, as required. The central beam 122C and the annular beam 122A can be continuous wave beams.

[0074] Step 920 includes step 924 of tracing the inward spiral path. Step 920 may further include, prior to step 922, tracing a closed loop with laser radiation 120. The closed loop surrounds the inward spiral path and ends at the starting point for the inward spiral path. Thus, when step 920 includes step 922, the closed loop and the inward spiral path form one continuous path.

[0075] Figure 12 illustrates a laser power scheme utilized in an embodiment of step 920, including step 922. Figure 13 illustrates the path traced by focused laser radiation 120 in steps 922 and 924.

[0076] Step 924 traces an inward spiral path 1320. The inward spiral path 1320 is similar to the inward spiral path 830 of FIG. 8C. The inward spiral path 1320 starts at an outer location L0 at time t1 and reaches a central location L1. C, and spirals toward it, and at time t3, C The process of tracing the inward spiral path 1320 is divided into two sections: (1) the outer location L at time t; O from location L at time t2 R and (2) the first section at location L at time t. R from the central location L at time t3 C While tracing the first section, step 924 calculates the power of the central beam 122C and the annular beam 122A to power P C0 and P A0 P A0 As depicted in FIG. C0 Next, while tracing the second section, step 924 compares the power of the central beam 122C and the annular beam 122A with zero and non-zero power P A1 Finally, at time t3, the central location L C When this is reached, step 924 turns off the annular beam 122A.

[0077] The power P of the central beam 122C and the annular beam 122A C0 and P A0are set to maintain a localized melt pool with a keyhole extending from a surface of the first metal sheet (e.g., surface 112S of metal sheet 112), through any intervening metal sheets (e.g., metal sheet 616), if present, and into or through the farthest metal component (e.g., metal component 114). As discussed above with reference to step 324 of method 300, the keyhole and surrounding melt pool travel with the laser radiation 120 along an inward spiral path 1320 during step 924. By including both the central beam 122C and the annular beam 122A, method 900 achieves a stable keyhole with little or no material loss through sputtering, as discussed above with reference to method 300. The improved keyhole stability achieved by method 900 helps to release gas trapped within the metal and provides an efficient escape route for gases generated by evaporation of any coatings at the interface in the metal stack. When the method 900 is applied to copper or copper alloys, the presence of the annular beam 122A has an additional benefit, namely, the preheat provided by the leading portion 824L of the annular beam 122A may induce a phase transition in the copper / copper alloy to a state characterized by a higher level of absorption of the laser radiation 120. The annular beam 122A thereby further reduces the power requirements for the central beam 122C. The gradual taper of the laser power while tracing the second segment of the inward spiral path 1320 serves to slow down the cooling of the material, relieve stress, and prevent cracking of the weld mass. This taper of power is performed while the laser radiation 120 moves along the inward spiral path 1320, as opposed to being steady, to prevent the formation of holes or dents in the weld mass, as discussed above with reference to step 328 of the method 300.

[0078] If so, step 922 traces a closed loop 1310 between time t0 and time t1. The closed loop 1310 exists around an inward spiral path 1320. The closed loop 1310 is located at an outer location L O, which may be a circle. Step 922 completes at least one full circuit of the closed loop 1310. The closed loop 1310 may extend from the central location L C Step 922 serves primarily to ensure a well-defined perimeter of the weld mass formed by method 900. When such a perimeter is not required, it may be advantageous to omit step 922, for example, to achieve a smaller weld mass when subject to space constraints, or to minimize overall processing time.

[0079] The power P applied by the method 900 C0 and P A0 can be in the range of 1.5 to 5 kilowatts, while P A1 may be in the range of 0.05 to 1.0 kilowatts. The area traced by the inward spiral path 1320 and the closed loop 1310 (if included) may have a general extent, e.g., diameter 1370D as shown in FIG. 13, in the range of 3 to 15 millimeters. The method 900 is completed in less than 500 milliseconds, and the duration of the power ramp-down portion of step 924 may be in the range of 30 to 100 milliseconds. The portion of step 924 performed with stable laser power (between times t1 and t2) preceding the power ramp-down may account for 60 to 100 percent of the processing time.

[0080] The method 900 may include providing a shielding gas to the weld area to further help prevent porosity in the top layer of the weld nugget. The shielding gas may be nitrogen.

[0081] The present invention is described above in terms of preferred and alternative embodiments. However, the present invention is not limited to the embodiments described and depicted herein. Rather, the present invention is limited only by the claims appended hereto.

Claims

1. A laser welding method for joining aluminum, comprising: Focusing a laser emission on a first aluminum sheet disposed on an aluminum part, the laser emission including a central beam and an annular beam surrounding the central beam; Controlling the focused laser emission, the controlling step controlling the focused laser emission to trace a plurality of paths on the first aluminum sheet to weld the first aluminum sheet to the aluminum part, the controlling step including: While tracing an outward spiral path, maintaining an individual first power of the central beam and the annular beam, the outward spiral path starting from a central location and spiraling around and away from the central location; After tracing the outward spiral path, while tracing an outer path, gradually reducing the power of the central beam and the annular beam from the individual first power to an individual second power, the outer path being located at the periphery of the spiral path when viewed from the central location; After tracing the outer path, while tracing an inward spiral path toward the central location, first, (a) gradually increasing the power of the central beam and the annular beam from the individual second power to an individual third power, then, (b) maintaining the third power of the annular beam and repeatedly pulsing the central beam between the third power and a lower fourth power, and finally, (c) reducing the power of the central beam and the annular beam; Including; A method.

2. The method according to claim 1, wherein the reducing step turns off the central beam and gradually reduces the power of the annular beam from the third power.

3. The method according to claim 2, wherein the reducing step gradually reduces the power of the annular beam to zero.

4. The method according to any one of claims 1 to 3, wherein the aluminum part is a second aluminum sheet.

5. The method according to any one of claims 1 to 3, wherein the outer path includes a closed loop that completes at least one full circuit around the central location.

6. The method according to any one of claims 1 to 3, wherein the outer path is an open path that does not complete a full rotation around the central location.

7. The method according to any one of claims 1 to 3, wherein the aluminum melting caused by the controlling step terminates at a certain depth within the inner part of the aluminum component.

8. The method according to any one of claims 1 to 3, wherein at least one of the first aluminum sheet and the aluminum component is cast aluminum or a cast aluminum alloy.

9. The method according to claim 8, wherein the first aluminum sheet is extruded aluminum or an extruded aluminum alloy, and the aluminum component is cast aluminum or a cast aluminum alloy.

10. One or more intervening aluminum sheets are disposed between the first aluminum sheet and the aluminum component, The method according to any one of claims 1 to 3, wherein the controlling step welds together the first aluminum sheet, the intervening aluminum sheet, and the aluminum component.

11. The method according to any one of claims 1 to 3, wherein the controlling step further includes gradually reducing the power of the central beam and the annular beam from individual initial powers to the individual first powers prior to tracing the outward spiral path at the central location.

12. The method according to any one of claims 1 to 3, wherein the first, second, and third powers of the annular beam each exceed the corresponding ones of the first, second, and third powers and the central beam.

13. A laser welding method for joining a stack of metal components including a coating at the interface. Focusing laser radiation onto a stack of the metal parts, wherein the metal parts include: (i) a first metal sheet; (ii) a farthest metal part; and (iii) zero, one, or several intervening metal sheets between the first metal sheet and the metal parts, at least one of the metal parts having a coating at an interface with an adjacent metal part, the interface being configured with direct contact between the two adjacent metal parts or with a gap therebetween, and the laser radiation being incident on the first metal sheet and including a central beam and an annular beam surrounding the central beam; Controlling the focused laser radiation, the controlling including controlling the focused laser radiation to trace at least one path on the first metal sheet to weld the stack of the metal parts together, thereby also at least partially evaporating the coating at the interface, and the controlling step including: Tracing an inward spiral path; While tracing the inward spiral path, first, (a) maintaining individual first powers of the central beam and the annular beam, and subsequently, (b) simultaneously, gradually decreasing the power of the central beam from its first power to zero watts and gradually decreasing the power of the annular beam from its first power to a non-zero second power, and finally, (c) turning off the annular beam; Including; A method including.

14. The method according to claim 13, wherein the farthest metal part is a metal sheet.

15. The method according to claim 13 or claim 14, wherein each of the metal parts is made of steel and the coating includes zinc.

16. The method according to claim 13 or claim 14, wherein each of the metal parts is made of copper or a copper alloy and the coating includes nickel.

17. The method according to claim 13 or claim 14, wherein the metal melting caused by the controlling step terminates at a certain depth in the stack inside the farthest metal part.

18. The method according to claim 13 or claim 14, wherein the first power of the annular beam exceeds the first power of the central beam.

19. The step of controlling further includes, prior to tracing the inward spiral path, tracing a closed loop using the central beam and the annular beam at the individual first power, the closed loop being present around the periphery of the inward spiral path and ending at the starting point of the inward spiral path, the method according to claim 13 or claim 14.

20. The method according to claim 13 or claim 14, wherein the gap is 60% or less of the thickness of one of the two adjacent metal parts closest to the side surface of the stack that receives the laser radiation.