scholarly journals GAS-DYNAMIC EFFECT OF THE ARC ON THE METAL OF THE WELD POOL DURING NON-CONSUMABLE ELECTRODE WELDING (REWIEW)

Author(s):  
A. V. Savinov ◽  
O. A. Polesskiy ◽  
A. A. Chudin ◽  
P. P. Krasikov ◽  
L. S. Krasikova ◽  
...  

Based on the analysis of the literature data, the influence of the composition of the shielding gas, the voltage across the arc, the current strength on the power (gas-dynamic) effect of an arc discharge with a non-consumable electrode, the thickness of the liquid layer of the molten metal, and the depth of the crater of the weld pool are shown.

2014 ◽  
Vol 1040 ◽  
pp. 850-853 ◽  
Author(s):  
Dmitry A. Chinakhov ◽  
A.V. Zuev ◽  
A.G. Filimonenko

The processes taking place in a drop of a molten electrode metal and in a metal of a weld pool play the dominant role in formation of joint welds properties. In consumable electrode welding with jet gas shielding under certain conditions a drop of an electrode metal is influenced by the main forces as well as by the force of a shielding gas jet impact which depends upon the method and composition of a gas shielding in a welding area. The results of research have stated that the force of a shielding gas jet impact on a drop of an electrode metal in double-jet gas shielding is twelvefold as in one-jet one; it is directed along the electrode to a workpiece and stimulates stability of the electrode metal drops transfer into a weld pool.


2013 ◽  
Vol 762 ◽  
pp. 717-721 ◽  
Author(s):  
Dmitry A. Chinakhov ◽  
A.V. Vorobyov ◽  
A.A. Tomchik

Controlling the processes, which take place during consumable-electrode shield-gas welding, is one of the main problems of the welding industry. The paper shows that under the certain conditions the electrode-metal drop and heat distribution in the weld area are influenced by the active shielding gas jet. The paper provides the results of modeling heat distribution in the weld area and active shielding gas outflow from the traditional and double-jet welding torch nozzles.


Author(s):  
V D Sarychev ◽  
D A Chinakhov ◽  
S A Solodsky ◽  
A Yu Granovskii ◽  
S A Nevskii

2022 ◽  
Author(s):  
Dominic S. Sebastian ◽  
Sonu K. Thomas ◽  
T M Muruganandam

2015 ◽  
Vol 33 (4) ◽  
pp. 332-340 ◽  
Author(s):  
Hisaya KOMEN ◽  
Masaya SHIGETA ◽  
Manabu TANAKA ◽  
Yu FUKUNISHI

2008 ◽  
Vol 22 (6) ◽  
pp. 369-372
Author(s):  
A.V. Savinov ◽  
V.I. Atamanyuk ◽  
I.E. Lapin ◽  
V.I. Lysak ◽  
A.B. Markin

2020 ◽  
Vol 10 (10) ◽  
pp. 3569 ◽  
Author(s):  
Manh Ngo Huu ◽  
Anh Nguyen Van ◽  
Tuan Nguyen Van ◽  
Dang Tran Hai ◽  
Thanh Nguyen Van ◽  
...  

In this study, the effect of oxygen in the shielding gas on the material flow behavior of the weld pool surface was discussed to clarify the dominant driving weld pool force in keyhole plasma arc welding (KPAW). To address this issue, the convection flow on the top surface of weld pool was observed using a high-speed video camera. The temperature distribution on the surface along keyhole wall was measured using the two-color pyrometry method to confirm the Marangoni force activity on the weld pool. The results show that the inclination angle of the keyhole wall (keyhole shape) increased especially near the top surface due to the decrease in the surface tension of weld pool through surface oxidation when a shielding gas of Ar + 0.5% O2 was used. Due to the change in the keyhole shape, the upward and backward shear force compositions created a large inclination angle at the top surface of the keyhole. From the temperature measurement results, the Marangoni force was found to alter the direction when 0.5% O2 was mixed with the shielding gas. The shear force was found to be the strongest force among the four driving forces. The buoyant force and Lorentz force were very weak. The Marangoni force was stronger than the Lorentz force but was weaker than shear force. The interaction of shear force and Marangoni force controlled the behavior and speed of material flow on the weld pool surface. A strong upward and backward flow was observed in the case of mixture shielding gas, whereas a weak upward flow was observed for pure Ar. The heat transportation due to the weld pool convection significantly changed when only a small amount of oxygen was admixed in the shielding gas. The results can be applied to control the penetration ratio in KPAW.


2012 ◽  
Author(s):  
Yao Xu ◽  
Wenyu Li ◽  
Hongyan Wang ◽  
Zining Yang ◽  
Xiaojun Xu

2018 ◽  
Vol 8 (8) ◽  
pp. 1215 ◽  
Author(s):  
Baohua Chang ◽  
Hong Xiao ◽  
Jinle Zeng ◽  
Shuo Yang ◽  
Dong Du ◽  
...  

This study aims to reveal the cause of different weld formation quality for varying welding position in the GTAW (Gas Tungsten Arc Welding) of a thick-sheet aluminum alloy structure. The fluid flow characteristics of weld pools are investigated by CFD (Computational Fluid Dynamic) modeling and high-speed imaging for the climbing and flat welding positions, which correspond to the start and finish ends of the welds of the structure, respectively. Results show that the directions of gravity relative to weld pools may notably affect the fluid flows in weld pools for different welding positions. For flat welding, gravity will accelerate the fluid flow in the direction of sheet thickness only and in turn result in a high velocity downwards, which implies a good penetrating capability. Welds of good formation with smooth surface and consistent width can be produced under flat welding position. In contrast, for climbing welding, gravity will act on the molten metal in both the direction of sheet thickness and the lateral direction of the weld pool. As a result, the velocity in sheet-thickness direction is decreased, which implies a decreased penetrating capability. Meanwhile, the velocity backwards is increased in the top portion of the weld pool, which makes the molten metal apt to flow out of the weld pool. Both the decreased penetrating capability and the accelerated molten metal outflow would render the climbing welding process unstable, and result in welds of poor formation with uneven weld surface and inconsistent weld width. Based on the study, possible methods are proposed that could be used to improve the weld formation quality when welding thick-sheet aluminum alloys structures using various welding positions.


2016 ◽  
Vol 30 (12) ◽  
pp. 941-944 ◽  
Author(s):  
A. V. Savinov ◽  
I. E. Lapin ◽  
O. A. Polesskiy ◽  
V. I. Lysak ◽  
P. P. Krasikov

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