Dual wire welding or additive manufacturing system and method
11964346 ยท 2024-04-23
Assignee
Inventors
Cpc classification
B23K9/04
PERFORMING OPERATIONS; TRANSPORTING
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B23K9/1735
PERFORMING OPERATIONS; TRANSPORTING
C22C1/05
CHEMISTRY; METALLURGY
B22F12/55
PERFORMING OPERATIONS; TRANSPORTING
B23K26/211
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B23K9/0017
PERFORMING OPERATIONS; TRANSPORTING
B23K9/121
PERFORMING OPERATIONS; TRANSPORTING
B23K9/188
PERFORMING OPERATIONS; TRANSPORTING
B22F2999/00
PERFORMING OPERATIONS; TRANSPORTING
B23K9/124
PERFORMING OPERATIONS; TRANSPORTING
B22F12/55
PERFORMING OPERATIONS; TRANSPORTING
C22C29/06
CHEMISTRY; METALLURGY
C22C1/05
CHEMISTRY; METALLURGY
G05B19/4099
PHYSICS
B22F2999/00
PERFORMING OPERATIONS; TRANSPORTING
C22C29/06
CHEMISTRY; METALLURGY
B23K9/123
PERFORMING OPERATIONS; TRANSPORTING
B23K9/092
PERFORMING OPERATIONS; TRANSPORTING
Y02P10/25
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B23K26/1423
PERFORMING OPERATIONS; TRANSPORTING
International classification
B22F12/55
PERFORMING OPERATIONS; TRANSPORTING
B23K9/04
PERFORMING OPERATIONS; TRANSPORTING
B23K9/09
PERFORMING OPERATIONS; TRANSPORTING
B23K9/12
PERFORMING OPERATIONS; TRANSPORTING
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A system and method of welding or additive manufacturing is provided where at least two welding electrodes are provided to and passed through a two separate orifices on a single contact tip and a welding waveform is provided to the electrodes through the contact tip to weld simultaneously with both electrodes, where a bridge droplet is formed between the electrodes and then transferred to the puddle.
Claims
1. A welding or additive manufacturing system, comprising: a power supply comprising a controller which controls operations of the power supply during gas metal arc welding, wherein the power supply provides a current waveform to a contact tip having a first channel terminating in a first exit orifice and second channel terminating in a second exit orifice, wherein the first channel is parallel with the second channel, and the first channel is configured to pass through a first wire electrode and the second channel is configured to pass through a second wire electrode, wherein the current waveform includes a bridge current portion and another current portion having a current level greater than the bridge current portion; wherein the first exit orifice is separated from the second exit orifice such that a distance provided between the first wire electrode and the second wire electrode facilitates a formation of a bridge droplet between the first wire electrode and the second wire electrode while preventing solid portions of the first wire electrode delivered through the first exit orifice from contacting solid portions of the second wire electrode delivered through the second exit orifice during the gas metal arc welding, wherein the bridge droplet forms during the bridge current portion of the current waveform and couples the first wire electrode and second wire electrode prior to contacting a puddle during the gas metal arc welding, and wherein a current due to the current waveform flows from the contact tip to the bridge droplet through both of the first wire electrode and the second wire electrode and the current is divided between the first wire electrode and the second wire electrode, and wherein the current flows from the bridge droplet to the puddle.
2. The system of claim 1, wherein the distance is in the range of 1.5 to 3.5 mm.
3. The system of claim 1, further comprising a wire feeder configured to drive one or both of the first wire electrode and the second wire electrode through the contact tip.
4. The system of claim 1, wherein the first wire electrode has a first composition and the second wire electrode has a second composition different from the first composition.
5. The system of claim 1, wherein the first wire electrode has a first diameter and the second wire electrode has a second diameter which is different than the first diameter.
6. The system of claim 1, wherein a deposition rate during the gas metal arc welding is in a range of 19 to 26 lbs/hr.
7. A welding or additive manufacturing system, comprising: a power supply comprising a controller which controls operations of the power supply, wherein the power supply provides a current waveform to a contact tip having a first channel terminating in a first exit orifice and second channel terminating in a second exit orifice, wherein the first channel is parallel with the second channel, and the first channel is configured to pass through a first wire electrode and the second channel is configured to pass through a second wire electrode, wherein the current waveform includes a bridge current portion and another current portion having a current level different from the bridge current portion; wherein the first exit orifice is separated from the second exit orifice such that a distance provided between the first wire electrode and the second wire electrode facilitates a formation of a bridge droplet between the first wire electrode and the second wire electrode while preventing solid portions of the first wire electrode delivered through the first exit orifice from contacting solid portions of the second wire electrode delivered through the second exit orifice during a deposition operation, wherein the bridge droplet forms during the bridge current portion of the current waveform and couples the first wire electrode and second wire electrode prior to contacting a puddle during the deposition operation, wherein a current due to the current waveform flows from the contact tip to the bridge droplet through both of the first wire electrode and the second wire electrode and the current is divided between the first wire electrode and the second wire electrode, and wherein the current flows from the bridge droplet to the puddle, and wherein the first wire electrode and the second wire electrode are cored electrodes.
8. The system of claim 7, wherein the distance is in the range of 1.5 to 3.5 mm.
9. The system of claim 7, further comprising a wire feeder configured to drive one or both of the first wire electrode and the second wire electrode through the contact tip.
10. The system of claim 7, wherein the first wire electrode has a first composition and the second wire electrode has a second composition different from the first composition.
11. The system of claim 7, wherein the first wire electrode has a first diameter and the second wire electrode has a second diameter which is different than the first diameter.
12. The system of claim 7, wherein a deposition rate of the deposition operation is in a range of 19 to 26 lbs/hr.
13. A welding or additive manufacturing system, comprising: a power supply comprising a controller which controls operations of the power supply, wherein the power supply provides a current waveform to a contact tip having a first channel terminating in a first exit orifice and second channel terminating in a second exit orifice, wherein the first channel is configured to pass through a first wire electrode and the second channel is configured to pass through a second wire electrode, wherein the current waveform includes a bridge current portion and another current portion having a current level less than than the bridge current portion; wherein the first exit orifice is separated from the second exit orifice such that a distance provided between the first wire electrode and the second wire electrode facilitates a formation of a bridge droplet between the first wire electrode and the second wire electrode while preventing solid portions of the first wire electrode delivered through the first exit orifice from contacting solid portions of the second wire electrode delivered through the second exit orifice during a deposition operation, wherein the bridge droplet forms during the bridge current portion of the current waveform and couples the first wire electrode and second wire electrode prior to contacting a puddle during the deposition operation, and wherein a current due to the current waveform flows from the contact tip to the bridge droplet through both of the first wire electrode and the second wire electrode and the current is divided between the first wire electrode and the second wire electrode, and wherein the current flows from the bridge droplet to the puddle.
14. The system of claim 13, wherein the distance is in the range of 1.5 to 3.5 mm.
15. The system of claim 13, further comprising a wire feeder configured to drive one or both of the first wire electrode and the second wire electrode through the contact tip.
16. The system of claim 13, wherein the first wire electrode has a first composition and the second wire electrode has a second composition different from the first composition.
17. The system of claim 13, wherein the first wire electrode has a first diameter and the second wire electrode has a second diameter which is different than the first diameter.
18. The system of claim 13, wherein the first channel is parallel with the second channel.
19. The system of claim 13, wherein an angle between a centerline of the first wire electrode when exiting the first channel and a centerline of the second wire electrode when exiting the second channel is in the range of +15 degrees to ?15 degrees.
20. The system of claim 13, wherein at least one of the first wire electrode and the second wire electrode is a flux cored electrode.
21. The system of claim 13, wherein at least one of the first wire electrode and the second wire electrode is a metal cored electrode.
22. The system of claim 13, wherein a deposition rate of the deposition operation is in a range of 19 to 26 lbs/hr.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above and/or other aspects of the invention will be more apparent by describing in detail exemplary embodiments of the invention with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS
(12) Exemplary embodiments of the invention will now be described below by reference to the attached Figures. The described exemplary embodiments are intended to assist the understanding of the invention, and are not intended to limit the scope of the invention in any way. Like reference numerals refer to like elements throughout.
(13) While embodiments of the present invention discussed herein are discussed in the context of GMAW type welding, other embodiments or the invention are not limited thereto. For example, embodiments can be utilized in SAW and FCAW type welding operations, as well as other similar types of welding operations. Further, while the electrodes described herein are solid electrodes, again, embodiments of the present invention are not limited to the use of solid electrodes as cored electrodes (either flux or metal cored) can also be used without departing from the spirit or scope of the present invention. Further, embodiments of the present invention can also be used in manual, semi-automatic and robotic welding operations. Because such systems are well known, they will not be described in detail herein.
(14) Turning now to the Figures,
(15) Once driven by the rollers 107, the electrodes E1 and E2 are passed through a liner 113 to deliver the electrodes E1 and E2 to the torch 111. The liner 113 is appropriately sized to allow for the passage of the electrodes E1 and E2 to the torch 111. For example, for two 0.030 inch diameter electrodes, a standard 0.0625 inch diameter liner 113 (which is typically used for a single 0.0625 inch diameter electrode) can be used with no modification.
(16) Although the examples referenced above discuss the use of two electrodes having a same diameter, the present invention is not limited in this regard as embodiments can use electrodes of a different diameter. That is, embodiments of the present invention can use an electrode of a first, larger, diameter and an electrode of a second, smaller, diameter. In such an embodiment, it is possible to more conveniently weld two work pieces of different thicknesses. For example, the larger electrode can be oriented to the larger work piece while the smaller electrode can be oriented to the smaller work piece. Further, embodiments of the present invention can be used for many different types of welding operations including, but not limited to, metal inert gas, submerged arc, and flux-cored welding. Further, embodiments of the present invention can be used for automatic, robotic and semi-automatic welding operations. Additionally, embodiments of the present invention can be utilized with different electrode types. For example, it is contemplated that a cored electrode can be coupled with a non-cored electrode. Further, electrodes of differing compositions can be used to achieve the desired weld properties and composition of the final weld bead. Thus, embodiments of the present invention can be utilized a broad spectrum of welding operations.
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(18) As shown in
(19) As explained further below, the distance S should be selected to ensure that a single bridge droplet is formed between the electrodes, before the droplet is transfer, while preventing the electrodes from contacting each other, other than through the bridge droplet.
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(22) Further,
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(26) Turning now to
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(30) The use of embodiments described herein can provide significant improvements in stability, weld structure and performance over known welding operations. However, in addition to welding operations, embodiments can be used in additive manufacturing operations. In fact the system 100 described above can be used in additive manufacturing operations as in welding operations. In exemplary embodiments, improved deposition rates can be achieved in additive manufacturing operations. For example, when using an STT type waveform a single wire additive process, using an 0.045 wire can provide a deposition rate of about 5 lb/hr before becoming unstable. However, when using embodiments of the present invention and two 0.040 wires a deposition rate of 7 lbs/hr can be achieved in a stable transfer. Because additive manufacturing processes and systems are known, the details of which need not be described herein. In such processes a bridging current, such as that descried above, can be used in the additive manufacturing current waveform.
(31) It is noted that exemplary embodiments are not limited to the usage of the waveforms discussed above and described herein, as other welding type waveforms can be used with embodiments of the present invention. For example, other embodiments can use variable polarity pulsed spray welding waveforms, AC waveforms, etc. without departing from the spirit and scope of the present invention. For example, in variable polarity embodiments the bridge portion of the welding waveform can be done in a negative polarity such that the bridge droplet is created while reducing the overall heat input into the weld puddle. For example, when using AC type waveforms, the waveforms can have a frequency of 60 to 200 Hz of alternating negative and positive pulses to melt the two wires and form the bridge droplet between them. In further embodiments the frequency can be in the range of 80 to 120 Hz.
(32) As explained previously, embodiments of the present invention can be used with different types and combinations of consumables including flux cored consumables. In fact, embodiments of the present invention can provide a more stable welding operation when using flux cored electrodes. Specifically, the use of a bridging droplet can aid in stabilizing flux core droplets that can tend to be unstable in a single wire welding operation. Further, embodiments of the present invention allow for increased weld and arc stability at higher deposition rates. For example, in single wire welding operations, at high current and high deposition rates the transfer type for the droplets can change from streaming spray to a rotational spray, which appreciably reduces the stability of the welding operation. However, with exemplary embodiments of the present invention the bridge droplet stabilizes the droplets which significantly improves arc and weld stability at high deposition rates, such as those above 20 lb/hr.
(33) Additionally, as indicated above the consumables can be of different types and/or compositions, which can optimize a given welding operation. That is, the use of two different, but compatible, consumables can be combined to create a desired weld joint. For example, compatible consumables include hardfacing wires, stainless wires, nickel alloys and steel wires of different composition can be combined. As one specific example a mild steel wire can be combined with an overalloyed wire to make a 309 stainless steel composition. This can be advantageous when a single consumable of the type desired does not have desirable weld properties. For example, some consumables for specialized welding provide the desired weld chemistry but are extremely difficult to use and have difficulty providing a satisfactory weld. However, embodiments of the present invention allow for the use of two consumables that are easier to weld with to be combined to create the desired weld chemistry. Embodiments of the present invention can be used to create an alloy/deposit chemistry that is not otherwise commercially available, or otherwise very expensive to manufacture. Thus, two different consumables can be used to obviate the need for an expensive or unavailable consumable. Further, embodiments can be used to create a diluted alloy, for example, the first wire is a common inexpensive alloy and the second is wire is a specialty wire. The desired deposit would be the average of the two wires, mixed well in the formation of the bridged droplet, at the lower average cost of the two wires, over an expensive specialty wire. Further, in some applications, the desired deposit could be unavailable due to the lack of appropriate consumable chemistry, but could be reached by mixing two standard alloy wires, mixed within the bridged droplet and deposited as a single droplet. Further, in some applications, such as the application of wear resistance metals, the desired deposit may be combination of tungsten carbide particles from one wire and chrome carbide particles from another. Still in another application, a larger wire housing larger particles within is mixed with a smaller wire containing less particles or smaller particles is used to deposit a mixture of the two wires. Here the expected contribution from each of the wires is proportional to the size of wire given the wire feed speeds are same. In yet another example, the wire feed speeds of the wires is different to allow the alloy produced to change based on the desired deposit but the mixing of the wires is still produced by the bridged droplet created between the wires.
(34) While the invention has been particularly shown and described with reference to exemplary embodiments thereof, the invention is not limited to these embodiments. It will be understood by those of ordinary skill in the art that various changes in form and details may be made therein without departing from the spirit and scope of the invention as defined by the following claims.