The present disclosure relates to the field of welding equipment and application technology, and more particularly to methods and devices for a central negative pressure arc welding.
Since Swedes invented shielded metal arc welding (SMAW) and applied it to connection of the metal in 1907, welding technology has developed rapidly. As an important metal forming process, arc welding techniques have widely used in modern industrial production process such as automotive, shipbuilding, marine, aerospace and other industrial sectors. Development of various technical areas has raised higher requirements to welding process. The traditional welding processes have not met their application requirements, especially in terms of some of high-performance, large structures and new structural materials. Therefore, with the continuous development of science and technology, welding combine technology moves forward.
GTAW (TIG), as a kind of high quality welding method, has been widely used, and it has the following advantages.
Argon gas can be isolated effectively from the ambient air and it neither dissolves in the liquid metal, nor reacts with the metal. The arc can remove the surface oxide film of weld surface. Therefore, it can apply to weld a variety of metals, especially colored, easily oxidized weld metal.
TIG is the most stable arc welding method, which is very stable even though the welding current is less than 10 A and especially suitable for welding thin and ultra-thin plate. However, GTAW (TIG) itself has many shortcomings such as shallow depth of penetration, small deposition rate, low productivity and only suitable for welding thin plate which become the biggest bottleneck for this welding method. In particular, modern industry is moving in the direction of large-scale development, thick and ultra-thick plate has become increasingly widespread application. GTAW (TIG) welding can't meet such demands.
The emergence of three kind high energy density welding heat source: plasma arc welding, laser welding and electron beam welding meets new requirements to some extent, especially thick and ultra-thick plate, which have been the rapid development and application in the field of welding. Emergence of high-energy beam welding technique fills the vacancy of traditional welding techniques. High energy density welding method not only achieves one-pass penetration of thick plates, but also improves the quality of welding and welding efficiency to achieve a high quality and efficient welding.
However, welding equipment of laser welding and electron beam welding is expensive and they have high equipment operating costs and strict requirements for the joint assembly because of small beam diameter. In spite of lower energy density and larger key-hole than these two welding methods, plasma arc welding has the following advantages such as larger jet velocity, lower process costs and requirements for the joint assembly. However, welding process window of plasma arc welding is narrow and difficult to control, which has higher requirements for the skill of workers.
Therefore, these three welding methods have limitations and may be mainly applied to the field of airplane, rockets, space ship and space welding.
In order to overcome the above drawbacks and deficiencies of the existing welding method and improve welding process capabilities, the present disclosure invents a new welding apparatus and method, namely Central Negative Pressure Arc Welding Apparatus and Method. This new apparatus and method possesses excellent feasibilities and adaptabilities. Not only does it possess good stability of traditional Tungsten Arc Welding, but also improves penetration of traditional Tungsten Arc Welding. In order to achieve the above objectives, the present present disclosure presents following technical solutions:
Central negative pressure arc welding apparatus may include the following items such as a welding torch containing a hollow tubular electrode and a suction device connected with the inner chamber of said hollow tubular electrode is able to make a stable negative pressure region formed in the inner chamber of the hollow tubular electrode and the arc center of the hollow tubular electrode.
The apparatus may further include a pressure release device, said suction device is connected through with said hollow tubular electrode via said pressure release device, a valve is provided in the gas pipeline from said pressure release device to said hollow tubular electrode.
The apparatus may further include pressure display device which is used to measure and display the pressure of the pressure release device, said pressure display device connects with said pressure release device.
Said welding torch is non-consumable electrode welding torch.
Central negative pressure arc welding method may include through gas pipeline from the suction device to said hollow tubular electrode, pumping said gas pipeline by said suction device to establish a stable, high energy density and binding arc beneath hollow tubular electrode.
Binding degree, energy density and voltage of arc can be adjusted and controlled by adjusting the pressure value of the center of arc and thus welding heat input and weld shape can be adjusted and controlled during the welding process.
Turn on periodicity said valve to make a periodic negative pressure in the center of arc, when it is in atmospheric state in the center of arc, the arc is free-form, when it is in negative pressure state in the center of arc, the arc is binding-form, which sets up center pulsating negative pressure arc.
The pulsation frequency of center pulsating negative pressure arc is controlled easily during the welding process.
Differing from all conventional arc welding methods, this welding apparatus and method have advantages as follows.
1) This method has good arc stability similar to Gas Tungsten Arc Welding and greater weld penetration than Gas Tungsten Arc Welding because of the binding central negative pressure arc.
2) This method not only has binding arc of high energy density similar to Plasma Arc Welding, but also has better adaptability and wider window of welding process than Plasma Arc Welding.
3) It can adjust and control degree of binding, energy density and voltage of arc by changing the value of the negative pressure in the center of the arc precisely, thus it can control the welding heat input and coefficient of weld precisely.
4) This method can agitate and oscillate the weld pool as it is central pulsating negative pressure arc, thus it can not only prevent liquid metal from forming coarse columnar dendrites and be conducive to the formation of fine equiaxed grain, but it is beneficial to gas escape from the weld pool to keep from forming the weld porosity. So this method can improve the mechanical properties of welded joints greatly.
As illustrated in the Figures above, 1 represents welding power and control systems, 2 represents non-consumable electrode welding torch, 3 represents hollow tubular electrode, 4 represents work-pieces, 5 represents suction device, 6 represents the airway path A, 7 represents pressure relief device, 8 represents pressure display device, 9 represents the airway path B, 10 represents valve, 11 represents the airway path C, 12 represents connectors, 13 represents welding cable A, 14 represents welding cable B, 15 represents the arc, 16 represents the weld, 151 represents freedom arc, 152 represents binding arc.
As seen in
Step 1: Preparations before welding: Work-pieces 4 and the welding wire matched with them are ready; Non-consumable electrode welding torch 2 is in the proper position above work-pieces 4 and the wire feed device is on same side of the welding torch 2.
Step 2: Pumping: Make sure that the gas line of suction device 5—the airway path A 6—pressure relief device 7—the airway path B 9—valve 10—the airway path C 11—connectors 12—hollow tubular electrode 3 is connected properly and then start suction device 5 to get pumping process for pressure relief device 7. Keep observing the pressure value within pressure relief device 7 until the value of pressure display device 8 reached the preset value.
Step 3: Establishing the arc: Make sure that valve 10 is being closed and then start high frequency to ignite arc. Thus freedom arc 15 is established between the hollow tubular electrode 3 and the surface of work-pieces 4 as seen in
Step 4: During the welding process: it can get independently adjusting the value of negative pressure within pressure release device 7 to change the value of negative pressure in the center of arc 15 in real-time. Thereby, it could change binding degree, voltage and energy density of arc to control and adjust welding heat input and formation coefficient of the weld precisely.
As seen in
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Number | Date | Country | Kind |
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201410458968.9 | Sep 2014 | CN | national |
201410459304.4 | Sep 2014 | CN | national |
This application is a continuation application of International application number PCT/CN2014/088499, filed Oct. 13, 2014, title “CENTRAL NEGATIVE PRESSURE ARC WELDING APPARATUS AND METHOD,” which claims the priority benefit of Chinese Patent Application Nos. 201410459304.4 and 201410458968.9, filed on Sep. 10, 2014, which is hereby incorporated by reference in its entirety.
Number | Date | Country | |
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Parent | PCT/CN2014/088499 | Oct 2014 | US |
Child | 14865491 | US |