The invention relates to a method and an apparatus for laser welding of two joining members of plastic material in which a focussed laser beam is emitted into a welding zone in the region of the boundary surfaces of the joining members facing one another so as to form a weld seam having a particular seam depth between the joining members.
Conventional plastic laser welding methods are based on an input of thermal energy into the welding zone by means of the focussed laser beam, causing the joining members to melt so as to form a corresponding weld seam in-between. A common method is the so-called transmission welding in which a joining member transmissive of the laser radiation is disposed on a joining member absorbent of said laser radiation; the laser beam is then emitted through the transmissive joining member onto the absorbent joining member. This causes the latter to melt so that thermal energy is transmitted to the transmissive joining member, causing said joining member to melt as well. As a result, a weld seam is formed in the welding zone in the region of the boundary surfaces of the joining members facing one another.
A method and an apparatus for laser transmission welding is known from U.S. 2003/0090562 A1 in which the focus of the laser processing beam is displaceable to compensate for distortions and other faults in the welding plane between the two joining members in a direction perpendicular to the welding plane (z-direction). The component is displaced in a slow movement. A targeted adjustment of the heat input zone by means of high-frequency modulation of the Z-position is not possible by means of this system.
DE 10 2007 036 838 A2 discloses a method for joining different types of document materials so as to form a multilayer security document body such as a debit card, wherein an electromagnetic radiation emitted into a layer structure is modulated. This modulation is an amplitude or frequency modulation; a modulation of the focal position of the radiation in a direction perpendicular to the boundary surface between the individual layers is not shown in this disclosure.
A laser welding method which becomes more and more important in the welding of plastic materials is the so-called butt welding. This method allows for instance two joining members, which are positioned relative to each other in such a way as to form a butt joint and which are transmissive of the laser radiation, to be welded together by melting the boundary surfaces facing one another by means of the laser beam so that a corresponding weld seam can be formed by moving the laser beam along the direction of extension (x-direction) of the butt joint region.
A fundamental problem in laser welding of joining members made of plastic material is the fact that the laser beam needs to be emitted through the surface of one or both joining members in order to reach the welding zone. Depending on the transmission or absorption properties of the plastic materials that are used, the surface may on the one hand be affected by thermal impacts. Another problem may be that the actual welding zone in the region of the boundary surfaces facing one another is rather small relative to the direction of the seam depth (z-direction), with the result that the strength and quality of the seam may be in need of improvement. Consequently, there is a requirement for better controllability of the weld seam formation in the z-direction that is better adapted to the individual workpiece.
This object of the invention is on the one hand achieved by a method for laser welding of two joining members of plastic material in which a focussed laser beam is emitted into a welding zone in the region of the boundary surfaces of the joining members facing one another so as to form a weld seam having a particular seam depth between the joining members, wherein the laser power density is modulated during the welding process in a direction of the seam depth in the welding zone, wherein the modulation of the laser power density is performed by a modulation of the focal position of the laser beam in the direction of the seam depth, wherein the modulation frequency of the laser power density in the direction of the seam depth is correlated with the feed rate of the laser beam in a direction of seam extension in such a way that the focus passes over the seam depth of the weld seam at least once when the laser beam is moved in the direction of seam extension. On the other hand, the object of the invention is achieved by an apparatus for laser welding of two joining members of plastic material in which a focussed laser beam is emitted into a welding zone in the region of the boundary surfaces of the joining members facing one another so as to form a weld seam having a particular seam depth between the joining members, in particular for laser welding of two joining members according to the invention, the apparatus comprising a laser beam source, a laser beam guiding and forming unit for forming and guiding the focussed laser beam to the welding zone, comprising a layout of the laser beam source and/or the laser beam guiding and forming unit such that the laser power density can be modulated during the welding process in the direction of the seam depth, wherein the modulation of the laser power density is performed by a modulation of the focal position of the laser beam in the direction of the seam depth, and wherein the modulation frequency of the laser power density in the direction of the seam depth is correlated with a feed rate of the laser beam in the direction of seam extension in such a way that the focus passes over the seam depth of the weld seam at least once when the laser beam is moved in the direction of seam extension.
According thereto, the gist of the present invention is to modulate the laser power density during the welding process in the direction of the seam depth (z-direction). The modulation frequency of the laser power density is defined by a modulation frequency of the laser focal position in the Z-direction and correlated with the feed rate of the laser beam in the direction of seam extension—in other words in the X-direction of a conventional coordinate system—that the focus passes over the seam depth of the weld seam at least once when the laser beam is moved in the direction of seam extension.
As a result, at a slow feed rate, the modulation frequency is correspondingly lower in the X-direction than at a high feed rate. In a so-called quasi-simultaneous welding procedure in which a closed contour line is traced several times at short intervals, the feed rate is much higher; therefore, the modulation frequency needs to be set to a much higher level as well.
In addition to the actual variable power density, said modulation can also take place by means of a variable focal diameter that is modulated accordingly in a particular z-position of the seam depth.
The modulation-dependent variability of the energy input in the z-direction provides a way to advantageously influence the seam geometry in a defined manner So when two equally transparent joining members are butt-welded by means of a 2 μm laser, the energy input in the region of the seam across the component thickness can be optimized by modulating the Z-position of the focus. So instead of a central, spatially limited weld seam having a small seam depth, this modulation in the Z-direction causes a seam to be formed whose depth is increased in the Z-direction, allowing the seam to be extended into the vicinity of the upper and lower abutting edges of the joining members, which results in a maximum sewing depth and a distance from the upper and lower abutting edges that is sufficient to prevent damages to the surface.
A preferred wavelength range of the laser beam for power density modulated laser welding is between 0.7 μm and 2.5 μm, in other words in the infrared range.
In a typical layout of a corresponding apparatus for laser welding which allows the laser power density to be modulated, a corresponding layout of the laser beam source and/or laser beam guiding and forming unit is provided which allows the laser power density to be modulated in the direction of the seam depth during the welding process. If the laser beam guiding and forming unit comprises a focussing unit having a collimating lens and a focussing lens, modulation can be performed by displacing the collimating lens and/or the focussing lens along the transmission direction of the laser beam (optical axis). To this end, one or both lenses are advantageously displaceable by means of a motor. An alternative to this type of modulation is the modulation of the focal position of the laser beam by means of a focussing unit comprising a 3D scanner unit.
Further features, details and advantages of the invention will become apparent from the ensuing description in conjunction with the attached drawings.
a to c shows a schematic sectional view of a laser beam guiding and forming unit comprising a displaceable focussing lens for focal position modulation; and
a to c shows a schematic sectional view of a laser beam guiding and forming unit comprising a displaceable collimating lens for focal position modulation.
The laser welding method performed with a modulated power density in the direction of the seam depth z shall be explained with reference to
The position of the focus F of the laser beam 1 shown in
Generally speaking, the modulation amplitude in the z-direction allows the seam depth T to be extended just up to the upper and lower edges 8, 9 of the boundary surfaces 4, 5 of the joining members 2, 3.
As also indicated by
a to c and 3a to c show an apparatus for laser beam welding in which the joining members 2, 3 are arranged one above the other in a transmission configuration. The apparatuses comprise a schematically shown laser beam source 10 the laser beam 1 of which is guided via a suitable optical waveguide 11 to the laser guiding and forming unit which—in its entirety—is designated by 12. For the sake of simplicity, the latter is referred to as laser processing head 12 in the following description.
In the laser processing head 12, a collimating lens 13 is provided by means of which the diverging laser beam 1 is collimated after exiting the optical waveguide 11 and transmitted to the focussing lens 14. The latter focuses the laser beam 1 in the region of the joining members 2, 3 with a particular focal width f.
In the embodiment according to
According to
By means of the drive 15, the focussing lens 15 is therefore positionable in accordance with the desired modulation frequency and amplitude of the focal position 6, 6′, 6″ in such a way as to oscillate in a direction parallel to the z-axis.
It shall be noted that in order to actuate the drive 15 accordingly, the modulation parameters may be varied prior to or during a welding process. So for instance when several types or components are produced by means of one installation, the parameters may be changed prior to the actual welding process. For a corresponding seam examination to be performed, it may be useful, in particular depending on the individual component, to vary modulation parameters along the displacement path in the x-direction in the course of the welding process.
In the exemplary embodiment shown in
Number | Date | Country | Kind |
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10 2011 081 554.6 | Aug 2011 | DE | national |
This application claims the priority of Patent Application Serial No. DE 10 2011 081 554.6 filed on Aug. 25, 2011, pursuant to 35 U.S.C. 119(a)-(d), the content of which is incorporated herein by reference in its entirety as if fully set forth herein.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2012/066167 | 8/20/2012 | WO | 00 | 2/25/2014 |