Welding device for welding a weld stud to a substrate surface, with gas distribution function

The welding device addresses the challenge of uniform inert gas flow by using an inert gas cover with increasing cross-sectional area channels, resulting in improved weld quality and reduced oxidation.

JP7681379B2Active Publication Date: 2025-05-22HILTI AG
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Patent Information

Application Number
JP2023537246
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-12-17
Filing Date
2021-12-03
Publication Date
2025-05-22
Estimated Expiration
2041-12-03

AI Technical Summary

Technical Problem

Existing welding devices face challenges in ensuring uniform and effective inert gas flow to the weld point, which can lead to oxidation and poor weld quality.

Method used

The welding device incorporates an inert gas cover with an input channel, distribution chamber, and first connecting channels that increase in cross-sectional area with distance from the input channel, ensuring a more uniform inert gas flow to the weld point.

Benefits of technology

This configuration results in a more uniform inert gas flow to the weld point, reducing oxidation and improving weld quality by ensuring consistent protection of the weld area.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a welding device for welding a weld stud to a substrate surface along a welding axis in a welding direction, the welding device including a protective gas reservoir with a welding chamber and a holding device for holding the weld stud in the welding chamber during the welding process. The protective gas reservoir has an inlet channel, a distribution chamber, a plurality of first connecting channels, and a protective gas inlet into the welding chamber, by which a protective gas supply line can be connected to the inlet channel, the inlet channel leading into the distribution chamber, the first connecting channels leading into the distribution chamber at different distances to the inlet channel, the first connecting channels pneumatically connecting the distribution chamber to a protective gas outlet, the first connecting channels leading into the distribution chamber, the greater the common cross-sectional area of ​​the first connecting channels.
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Description

[Technical field]

[0001] The present invention relates generally to a welding device for welding a weld stud to a substrate along a weld axis in a welding direction, and more particularly to a welding gun. [Background technology]

[0002] There are many known devices and methods for fastening various studs to substrates (fastened components) for different applications. For example, the stud is brought into contact with the substrate and a current is applied thereto. For this purpose, the stud is held by a conductive stud holder. As soon as a current flows between the stud and the substrate, the stud is lifted off from the substrate forming an arc. Due to the released energy, the material of the stud and the substrate is partially liquefied. The current is then switched off and the stud is immersed in the liquefied material, which then cools and solidifies. The stud is then connected to the substrate in an integrally joined manner.

[0003] In order to provide the energy required to liquefy the stud and substrate materials in a sufficiently short time, devices are known that generate a current of very high current strength and supply it to the stud using an electric cable of a corresponding rating. In order to avoid oxidation of the liquefied material, it is known to blanket the contact point between the stud and the substrate with an inert gas, which in this case flows past the weld point with the liquefied material and displaces from the ambient air the oxygen that is present in the ambient air under some circumstances.

[0004] For example, for applications in construction or shipbuilding, studs of various sizes having threads onto which items are screwed are used to fasten items to a substrate. Summary of the Invention [Problem to be solved by the invention]

[0005] The object of the present invention is to provide a device which allows for improved fastening of a stud to a substrate (a fastened component). [Means for solving the problem]

[0006] In the case of a welding apparatus for welding a weld stud to a substrate in a welding direction along a weld axis, the apparatus including an inert gas cover with a welding chamber and including a holding device for holding the weld stud in the welding chamber during a welding operation, the inert gas cover includes an input channel, a distribution chamber, a number of first connecting channels, an inert gas inlet into the welding chamber, an inert gas outlet leading to the surrounding area; and an inert gas supply line can be connected to the input channel, the input channel opening into the distribution chamber, and a first connecting channel opening into the distribution chamber at a different distance from the input channel, the first connecting channel pneumatically connecting the distribution chamber to an inert gas outlet, the object being to , minutes Opening into the distribution room The sum of the cross-sectional areas of the first connecting channels in a certain area is , from the input channel Up to the specified area The greater the distance, twist This is achieved by increasing the first connecting channel located at a greater distance from the input channel. For input channels Lower Exposure level As a result, under some circumstances, the inert gas flows more uniformly towards the weld point. The welding device is preferably configured as a welding gun.

[0007] An advantageous embodiment of the invention is characterized in that the cross-sectional area of ​​the individual first connecting channels increases with increasing distance from the input channel at which the first connecting channels open into the distribution chamber.A further advantageous embodiment is characterized in that the density of the individual first connecting channels increases with increasing distance from the input channel at which the first connecting channels open into the distribution chamber.

[0008] An advantageous embodiment is characterized in that the inert gas inlet comprises a number of inlet openings arranged annularly around the welding axis.

[0009] An advantageous aspect is characterized in that the first connection channel extends substantially parallel to the welding axis. A further advantageous aspect is characterized in that the first connection channel is arranged annularly around the welding axis. A further advantageous aspect is characterized in that the distribution chamber is formed annularly around the welding axis.

[0010] An advantageous aspect is characterized in that the first connection channel opens into the welding chamber and extends to the inert gas inlet.

[0011] An advantageous aspect is that the inert gas cover has a collection chamber and a plurality of second connection channels, the first connection channel and the second connection channels open into the collection chamber, and the second connection channels pneumatically connect the collection chamber to the inert gas inlet. Preferably, the common cross-sectional area of the second connection channels is smaller than the common cross-sectional area of the first connection channel. Similarly preferably, the second connection channels extend substantially parallel to the welding axis. Similarly preferably, the second connection channels are arranged annularly around the welding axis. Similarly preferably, the collection chamber is formed annularly around the welding axis. Similarly preferably, the second connection channels open into the welding chamber and extend to the inert gas inlet.

[0012] An advantageous aspect is characterized in that the inert gas cover has an opening facing the welding direction.

[0013] Hereinafter, the present invention will be described in more detail based on embodiments with reference to the drawings.

Brief Description of the Drawings

[0014] [Figure 1] It is a diagram schematically showing a welding apparatus. [Diagram 2] It is a partial longitudinal sectional view schematically showing a welding apparatus. [Diagram 3] It is a diagram schematically showing a distribution chamber. [Figure 4] It is a diagram showing a collection chamber. [Diagram 5] It is a developed longitudinal sectional view schematically showing an inert gas cover. [Figure 6] FIG. 2 is an exploded vertical cross-sectional view illustrating an inert gas cover. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0015] 1 shows a schematic representation of a welding device 10 for welding a weld stud 20 to a substrate (part to be fastened) 30. The material of the weld stud 20 and the material of the substrate 30 are electrically conductive, in particular metallic. The welding device 10 comprises a welding gun 40 with a trigger switch 41 formed as a push button switch, a welding unit 50, a first electric cable 61, a second electric cable 62 with a connection terminal 63, an electric supply cable 64, for example as a power cable, an electric communication line 65, a gas reservoir 70 as a gas cylinder, a tubular gas supply line 71 and a gas hose 72.

[0016] The first cable 61 serves to supply current to the welding stud 20 via the welding unit 50. The second cable 62 serves to electrically connect the substrate 30 to the welding unit 50 when the connection terminal 63 is clamped to the substrate 30. When the welding stud 20 comes into contact with the substrate 30, a circuit is closed, whereby a welding current, for example in the form of a direct or alternating current, can be applied to the welding stud 20 via the welding unit 50. For this purpose, the welding gun 40 comprises welding current contact elements, not shown in FIG. 1. The welding unit 50 comprises a device, not shown, for converting the current from the supply cable 64 into a welding current, which also comprises, for example, electric capacitors, thyristors, bipolar transistors with insulated gate electrodes or other components from power electronics, and an associated control unit with a microprocessor, in order to provide a welding current at the desired voltage and current strength.

[0017] The gas supply line 71 and the gas hose 72 serve to supply inert gas from the gas reservoir 70 to the contact area between the weld stud 20 and the substrate 30 to protect the contact area from oxidation by oxygen from the surrounding area during the welding operation. To control the flow of gas to the contact area, the gas reservoir 70, the gas supply line 71, the welding unit 50, the gas hose 72, or the welding gun 40 include valves (not shown), in particular controllable valves.

[0018] The welding unit 50 comprises an input device 51 with an actuation element 52 and an output device 53 with a visual display element 54 and a wireless transmission unit. The input device 51 serves to input the parameters of the welding method to be carried out with the welding device 10 by a user of the welding device 10, such as, for example, the voltage, the current strength, the power and duration of the welding current, the position and the speed of the stud, etc. The output device 53 serves to output information to the user, which is, for example, information on the parameters of the welding method, information on the detected emissions of the welding method or other variables, information on the quality of the welding operation, information on measures for improving the welding operation, information on the detected properties of the welding studs or information derived from the aforementioned variables and / or recommendations or instructions for cleaning and / or maintaining the welding device 10, in particular the welding gun 40.

[0019] The communication line 65 serves for communication between the welding gun 40, in particular a control device of the welding gun 40, not shown in Fig. 1, and the welding unit 50, in particular a control unit and / or an input device 51 and / or an output device 53. By means of this communication, for example, an exchange of information on the parameters of the welding operation is achieved, for example in order to achieve or to make it easier to achieve synchronization of the welding current with the movement of the welding stud 20. In the case of an embodiment not shown, the communication between the welding gun and the welding unit is performed wirelessly, by wireless communication or by a first electric cable carrying the welding current.

[0020] The welding gun 40 has a housing 42 with an opening 46, from which a handle 43 with a trigger switch 41 projects. The welding gun 40 also has a stud holder 44, on which the welding stud 20 is held during the welding operation. For this purpose, the stud holder comprises, for example, two, three, four or more resilient arms (not shown in detail), between which the welding stud 20 is inserted and held by a clamping engagement. The welding gun 40 also has a welding current contact element, for example in the form of one or more resilient arms, integrated into the stud holder 44 for applying a welding current to the welding stud 20.

[0021] The welding gun 40 also has a controller 99 for controlling the various components and devices of the welding gun and welding unit 50. The controller 99 is intended to control one or more parameters of the welding operation. To this end, the controller 99 includes various electronic components, such as one or more microprocessors, one or more temporary or permanent data memories, etc.

[0022] The welding gun 40 also has a stud lifting device formed as a first lift magnet which, when activated, acts on the stud holder 44 with a rearward (upward in FIG. 1 ) force from the opening 46. A controller 99 communicates with the stud lifting device via signal lines (not shown) to control it and, in particular, to activate and deactivate it.

[0023] The welding gun 40 also has a stud dipping device formed as a spring element or a second lift magnet, which when activated moves forward on the stud holder 44 with a force forward towards the opening 46 (downwards in FIG. 1 ). The control device 99 communicates with the stud dipping device via signal lines (not shown) in order to control it and in particular to activate and deactivate it. If the stud dipping device is formed as a spring element, this spring element is preferably tensioned when the stud holder is moved backwards by the stud lift device, so that the spring element moves the stud holder forward as soon as the stud lift device is deactivated.

[0024] In a welding method using the welding device 10, firstly the substrate 30 and the stud 20 are provided. In a further step, for example, information regarding the desired parameters of the subsequent welding operation is input by the user via an input device. In a further step, a welding current between the welding stud 20 and the substrate 30 is applied to the welding stud 20 by the welding unit 50 using the first cable 61 and the second cable 62. In a further step, the welding stud 20 is lifted off the substrate by the stud lifting device while maintaining the welding current flowing between the welding stud 20 and the substrate 30, forming an arc between the welding stud 20 and the substrate 30. Due in particular to the heat generated by the arc, the material of the welding stud 20 and / or the substrate 30 is then partially liquefied. In a further step, the welding stud 20 is immersed in the liquefied material of the welding stud 20 or the substrate 30 by the stud immersion device. The liquefied material of the welding stud 20 or the substrate 30 then solidifies, so that the welding stud 20 is connected to the substrate 30 in an integrally joined manner.

[0025] 2 shows diagrammatically a longitudinal section of a welding device 100 intended to weld a weld stud 120 to a substrate (part to be fastened) 130 in a welding direction 110 along a welding axis 105. The welding device 100 is formed as a welding gun which defines the welding direction 110. The welding device 100 has a holding device 144 formed as a stud holder with an outer diameter dA, which has a stud receiving part 121 with an inner diameter dI for holding the weld stud 120 during the welding operation, into which the weld stud 120 can be inserted and in which the weld stud 120 is held, preferably by a clamping action. A contact surface 125 of the weld stud 120 comes into contact with the substrate 130 before and / or during the welding operation.

[0026] The welding device 100 comprises a schematic housing 101 with a handle (not shown) and a trigger switch (not shown) and also an inert gas cover 140, which is intended to be filled with inert gas in order to reduce or completely prevent oxidation of the weld melt by oxygen from the surrounding air. For this purpose, the inert gas cover 140 has an inert gas supply source comprising an input channel 155, a distribution chamber 156 and a number of first connecting channels 150 arranged annularly around the welding axis 105. An inert gas supply line, such as an inert gas hose 145, for supplying the inert gas cover 140 can be connected to the input channel 155.

[0027] Each of the first connecting channels 150, which run parallel to the welding axis 105, opens at an inlet opening 160 into the welding chamber 141 of the inert gas cover 140, so that the inlet openings 160 are likewise arranged in an annular manner around the welding axis 105 and together form an inert gas inlet. The input channel 155 and the first connecting channel 150 open into a distribution chamber 156, the first connecting channel 150 pneumatically connecting the distribution chamber 156 to the inert gas inlet. The greater the distance from the input channel 155 at which the first connecting channel 150 opens into the distribution chamber 156, the greater the cross-sectional area of ​​each of the individual first connecting channels 150 becomes. The pressure drop across the distribution chamber 156, which is formed in an annular manner around the welding axis 105, away from the input channel 155, results in a lower exposure of the first connecting channels 150 (on the right in FIG. 2) located at a greater distance from the input channel 155. This lower exposure is partially compensated for by the increased cross-sectional area. As a result, under some circumstances, the inert gas flows more uniformly toward the weld site.

[0028] Furthermore, the inert gas cover 140 has a number of outlet openings 170 which are likewise arranged annularly around the welding axis and which pass radially through the inert gas cover 140 relative to the welding axis 105 and open outwardly into the surrounding area and form inert gas outlets. In a direction transverse to the welding axis 105 (perpendicular to the plane of the drawing in FIG. 2), in particular in the circumferential direction, the outlet openings 170 are respectively arranged offset from the inlet openings 160.

[0029] Furthermore, the inert gas cover 140 has an opening 180 facing the welding direction 110 and having an opening diameter dM transverse to the welding direction 110. An inert gas inlet, specifically an inlet opening 160, is located an inlet distance aE from the opening 180 in the direction opposite the welding direction 110. An inert gas outlet, specifically an outlet opening 170, is located an outlet distance aA from the opening 180 in the direction opposite the welding direction 110.

[0030] The exit distance aA is approximately half the size of the difference between the diameter dM of the opening and the inner diameter dI, i.e., approximately the same as the radial distance x between the weld stud 120 and the inert gas cover 140. Furthermore, the exit distance aA is greater than the inlet distance aE. When the opening 180 is covered by the substrate 130, the inert gas entering the welding chamber 141 through the inlet opening 160 first flows along the flow path 190 to the radially outer region of the opening 180, then flows radially inward from all directions to the weld stud 120, and then flows substantially axially upward to the exit opening 170. This creates a toroidal flow pattern that is radially symmetrically arranged around the weld axis 105, which has the effect of uniformly and effectively covering the weld point of the weld stud 120 with inert gas. For example, ambient air that slowly leaks through the narrow gap between the retainer 144 and the inert gas cover (above the exit opening 170 in FIG. 2) is entrained by the flow through the exit opening 170 and directed away from the weld site.

[0031] In Fig. 3 a further embodiment of the distribution chamber 256 is shown diagrammatically, with the viewing direction coinciding with the welding direction. An input channel 255 and a number of first connecting channels 250 open into the distribution chamber 256. The greater the distance from the input channel 255 at which the first connecting channels 250 open into the distribution chamber 256, the greater the density of the individual first connecting channels 250. Single Only the first connecting channel 250 , enter Located closest to the force channel 255 (See the bottom of Figure 3) In contrast, the larger group of first connecting channels 250 located closer to each other are on the opposite side of the distribution chamber 256 from the input channel 255. Distributed in a certain area Placed (Shown at the top of Figure 3) As a result, in that area Opens into distribution chamber 256 The sum of the cross-sectional areas of the first connecting channels 250 is , from input channel 255 To that area The greater the distance ,Ma It keeps getting bigger.

[0032] In FIG. 4, the collection chamber 266 of the embodiment shown in FIG. 3 is shown in a schematic manner, with the viewing direction coinciding with the welding direction. In addition to the first connecting channels, not shown in FIG. 4, a number of second connecting channels 270 open into the collection chamber 266. The second connecting channels 270 are arranged in an annular manner around the welding axis and are uniformly distributed over the circumference of the collection chamber 266, which is also arranged in an annular manner around the welding axis. The number of second connecting channels 270 is less than the number of first connecting channels 250 shown in FIG. 3, so that the common cross-sectional area of ​​the second connecting channels 270 is smaller than the common cross-sectional area of ​​the first connecting channels 250. As a result, under some circumstances, the flow rate of the inert gas flowing through the first connecting channels 250 and the second connecting channels 270 becomes more uniform. This, in turn, has the effect that the weld point, not shown, is more uniformly exposed to the inert gas.

[0033] In Fig. 5, the inert gas cover 340 is shown in an expanded longitudinal section, so that the arrangement of the flow channels along the circumference of the substantially tubular, in particular cylindrical, inert gas cover 340 can be seen. The inert gas cover 340 comprises an input channel 355, a distribution chamber 356, a number of first connecting channels 350, a collection chamber 366 and a number of second connecting channels 370. The input channel 355 opens into the distribution chamber 356. The first connecting channel 350 opens into the distribution chamber 356 on the one hand and into the collection chamber 366 on the other hand. The second connecting channel 370 opens into the collection chamber 366 on the one hand and into the welding chamber, which is not further shown, on the other hand, and for this purpose extends to an inlet opening 360 forming an inert gas inlet. The input channel 355, the first connecting channel 350, and the second connecting channel 370 extend substantially parallel to the welding axis and pneumatically connect an inert gas supply line connected to the input channel 355 to the welding chamber of the inert gas cover 340.

[0034] With increasing distance from the input channel 355, the first connecting channels 350 are arranged in larger and larger groups, so that the first connecting channels 350 open into the distribution chamber 356. As a result, the greater the distance from the input channel 355, the greater the density of the first connecting channels 350. The cut area The sum of As explained with respect to the previous embodiment, the result is, under some circumstances, a more uniform flow of the inert gas toward the weld site.

[0035] In Fig. 6, the inert gas cover 440 is shown in an expanded longitudinal section, so that the arrangement of the flow channels along the circumference of the substantially tubular, in particular cylindrical, inert gas cover 440 can be seen. The inert gas cover 440 comprises an input channel 455, a distribution chamber 456, a number of first connecting channels 450, a collection chamber 466 and a number of second connecting channels 470. The input channel 455 opens into the distribution chamber 456. The first connecting channel 450 opens into the distribution chamber 456 on the one hand and into the collection chamber 466 on the other hand. The second connecting channel 470 opens into the collection chamber 466 on the one hand and into a welding chamber, not further shown, on the other hand, and for this purpose extends to an inlet opening 460 forming an inert gas inlet. The input channel 455, the first connecting channel 450, and the second connecting channel 470 extend substantially parallel to the welding axis and pneumatically connect an inert gas supply line connected to the input channel 455 to the welding chamber of the inert gas cover 440.

[0036] With increasing distance from the input channel 455, the first connecting channels 450 open into the distribution chamber 456. The greater the distance from the input channel 455, the larger the cross-sectional area of ​​each first connecting channel 450 becomes. As a result, with increasing distance from the input channel 455, the first connecting channels 450 open into the distribution chamber 456. The cut area The sum ofAs explained with respect to the previous embodiment, the result is, under some circumstances, a more uniform flow of the inert gas toward the weld site.

[0037] The invention has been described on the basis of the example of a welding gun, whereby the features of the described embodiments can be combined with one another as desired in a single fastening device, it being pointed out that the device according to the invention is also suitable for other purposes.

Claims

1. 1. A welding device which is a welding gun for welding a weld stud to a substrate (workpiece) along a weld axis in a welding direction, comprising an inert gas cover with a welding chamber and a holding device for holding the weld stud in the welding chamber during a welding operation, characterized in that the inert gas cover has an input channel, a distribution chamber, a number of first connecting channels, an inert gas inlet into the welding chamber and an inert gas outlet leading to a surrounding area, an inert gas supply line is connected to the input channel, the input channel opens into the distribution chamber, the first connecting channels open into the distribution chamber at different distances from the input channel, pneumatically connecting the distribution chamber to the inert gas outlet, and the sum of the cross-sectional areas of the first connecting channels in a certain area opening into the distribution chamber is greater the greater the distance from the input channel to the certain area.

2. The welding apparatus of claim 1, wherein the cross-sectional area of ​​each of the first connection channels opening into the distribution chamber becomes larger the greater the distance from the input channel.

3. A welding apparatus as described in claim 1 or 2, wherein the density of individual first connection channels opening into the distribution chamber is greater the greater the distance from the input channel.

4. The welding apparatus of any one of claims 1 to 3, wherein the inert gas inlet comprises multiple inlet openings arranged annularly around the weld axis.

5. The welding device according to any one of the preceding claims, wherein the first connecting channel extends substantially parallel to the welding axis.

6. The welding device according to any one of the preceding claims, wherein the first connecting channel is arranged annularly around the welding axis.

7. The welding device according to any one of claims 1 to 6, wherein the distribution chamber is formed annularly around the welding axis.

8. The welding device according to any one of claims 1 to 7, wherein the first connecting channel opens into the welding chamber and extends to the inert gas inlet.

9. The welding device according to any one of claims 1 to 8, wherein the inert gas cover further comprises a collection chamber and a number of second connecting channels, the first connecting channel and the second connecting channel opening into the collection chamber, and the second connecting channel pneumatically connecting the collection chamber to the inert gas inlet.

10. The welding apparatus of claim 9 , wherein the second connecting channel extends substantially parallel to the welding axis.

11. The welding device according to claim 9 or 10, wherein the second connecting channel is arranged annularly around the welding axis.

12. The welding device according to any one of claims 9 to 11, wherein the collection chamber is formed annularly around the welding axis.

13. The welding device according to any one of claims 9 to 12, wherein the second connecting channel opens into the welding chamber and extends to the inert gas inlet.

14. The welding device according to any one of claims 1 to 13, wherein the inert gas cover has an opening facing the welding direction.

Citation Information

Patent Citations

  • welding device with inert gas supply

    DE102016217499A1

  • Fastening system

    WO2019120781A2