Vietnam Welding Manpower Supplier

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Vietnam Welding Manpower Supplier

The best welders supplier in Vietnam- Get access to www.vnmanpower.com to be supported.

Vietnam Welding Manpower Supplier

The best welders supplier in Vietnam- Get access to www.vnmanpower.com to be supported.

Vietnam Welding Manpower Supplier

The best welders supplier in Vietnam- Get access to www.vnmanpower.com to be supported.

Vietnam Welding Manpower Supplier

The best welders supplier in Vietnam- Get access to www.vnmanpower.com to be supported.

Showing posts with label basic mig welding techniques. Show all posts
Showing posts with label basic mig welding techniques. Show all posts

Friday, September 4, 2015

Mig Welding Basics that Your Welders Must Master (Part 1)

Below are important Mig welding basics that welders must grasp as tightly as possible.

Helpful information for those who are interested in:

Mig welding is the most popularly used of the arc welding processes, suited for everything from small fabrications, repairs to large structures, shipbuilding, and robotic welding. Mig can be applied in a wide range of materials and thicknesses. Importantly, your Mig welders grasp those Mig welding basics to serve well their work, and refine their skills in this widely used welding process to produce more qualified welds and further their career. 

What is Mig welding?

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Mig (Metal Inert Gas) is also referred to as GMAW (Gas Metal Arc Welding). This is the most widely welding process in the world for various reasons. It is fast, cost effective and welders can be easily trained to create quality work.

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Gas or flux

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The welding process creates extreme amounts of heat that breakdown chemicals in the air into smaller molecules. Those substances then can contaminate the weld. 

The process generates a small electromagnetic field, which can also contaminate the weld. Weld contamination may (not) be visible to naked eye after the weld is finished. That’s why the weld can fail or show failure signs at a later time. Welders have 2 options to control contamination – use a flux core wire or use gas.

Using gas requires welders first source a welding supply or gas supply house for proper mix of gas provided, which is commonly a mix of CO2 and Argon for Mig welding carbon steel (also, mild steel).

Flux core welding wire includes a shielding substance for weld protection. Better portability is the advantage here, because there is no heavy gas rank to drag around with the welder. The disadvantage is the mess, since flux core welding often leave more spatter.  

Mig welding on mild steel and on aluminum

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Mig welding can be applied for most types of metals – steel, stainless steel, and aluminum. Still, welding aluminum is far from similar to welding mild steel, as aluminum is different from steel. Then when welding aluminum, welders have to use other settings and other parameters. For instance, as aluminum has lower melting temperature than mild steel, welders should use a higher local heat input but faster welding speed than with steel for good fusion and penetration. The welding sets would automatically adjust welding parameters, then the welder can focus on the welding operation, movement of welding gun and weld pool.

The machined-controlled parameters are, for instance, wire feed speed, arc voltage, gas consumption, wire diameter. Still, even if they are machine controlled, welders have to feed them into machine before starting to weld. During the welding process, the welding set can adjust relationship between those parameters. If they are set correctly, welders just have to focus on length of stick-out, angle of welding gun and welding speed. Then in many ways, Mig welding process is easier than metal arc welding.

Mig welding can be used with numerous metals, but there are some differences that welders should beware. Mig welding on mild steel and aluminum is a good example. The biggest differences between those 2 welding methods are choosing shielding gas and levels of ampere and voltages. Also, of course, the method used for metal transfer. Types of transfer can be listed as spray arc transfer, pulsed transfer, and dip transfer (also, short arc).

The spray arc transfer has higher arc voltage and amperage that short arc transfer. It is typically used on materials of different properties and thicknesses.

Shielding gas is chosen depending on metals to be welded. When welding aluminum, welders often use a mixture of argon and helium, or argon. Meanwhile, welding steel needs CO2. 

One problem with welding aluminum is to be able to see whether the weld you are doing will be right. Often, this problem can be handled by watching the welding pool. You can see from the material penetration, and from the weld flow, whether the welded joint is Ok or not. You can see whether the amperage and voltage levels are set right, or if the amperage is too low. That is something you can learn from experience.

One of most significant factors when welding is the current level. Without the current right, welders can make mistakes when Mig welding aluminum than when welding with coated electrodes. It is also important to clean the prepared joints. They can be cleaned with stainless steel wire brush, cleaning fluid. The fluid is, indeed, alcohol. It smells terrible. Still, welders can use welding masks with fresh air supply and use them when cleaning and welding. 

For those who may concern about:

Safety first

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Mig welding has very specific safety issues as compared with other processes. Following is basic safety equipment needed:

Welding helmet with the shade 10 or 11 lens reliant on the voltage welded with for eye protection from UV radiation.
Safety glasses to protect welder’s eyes from sparks as well as flying spatter from cleaning the weld.
Leather gloves to insulate the welder from electric shock and burns from sparks and heat. In some cases, welding gloves come with a reflective coating to tackle the head of welding heavy plate.
Long pants and sleeves made of cotton, leather or fire retardant material to protect the welder’s skin from UV rays as well as hot metals. Good sun block also helps the skin areas without clothing.
Leather booths to protect the welder’s feet from sparks and molten metals that will fall.
Good ventilation to get rid of shielding gasses but not take them away from the weld area.

Tuesday, August 4, 2015

24 Important Facts about Mig Welding

Important facts about Mig welding for your refreshing knowledge of this universal welding process.

Welding is a hard work. That’s why there needs some relaxing time to refresh yourself after all sweat, even burns you have sacrificed. Below are some facts about Mig welding that will help polish your knowledge and give you some ‘wise’ relaxation. This below list can also used as the note-taking sheet for brand-new welders to remember the key points of Mig welding and all welders to recall basics of this process. Hope you heart it!


Mig welding is another name of Metal Inert Gas Welding.

Developed in the 1940s.

Considered a semi automatic welding process

First called Gas Metal Arc (also, GMA, Gas Metal Arc Welding). There are some different Mig welding names as a result of types of gas used (Inert gas vs. non-inert gas).

Mig welders have a handle with a trigger. The trigger controls the wire feed.

Most used in fabrication shops that come with high production and unlikeness of wind blowing away the gas shielding.

Employs a consumable wire electrode during the welding process fed from different spool sizes.

Unlike just about all other welding processes, Mig welding includes one standard polarity type and voltage type. The voltage is direct current (DC). The polarity is DC electrode positive.

The power source for Mig welding is ‘constant voltage power supply’ while Tig and Arc welding uses ‘constant amperage power supply’.

Mig wire/ electrode types are associated with types of metal to be welded, type of transfer, abrasive resistance, position to be welded.

Common Mig welding electrodes are the solid wire of thickness ranged from .023, .030, .035, to .045.

Requires use of a shielding gas.

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3 common types of gas for shielding in Mig welding are: Argon, Carbon Dioxide, Helium.

The shielding gas used needs be a match with the electrode, and base metal.

4 transfer types used in Mig welding are short circuit, globular, spray, and pulsed spray.

Transfer types are associated with metal type, shielding gas, and machine settings.

Just about every metal can be Mig welded.

Weld area is critically clean.

Brings out a uniform, clean weld bead.

Brings out a weld bead free of slag.

Maintained by shielding gas.

Facilitates welding in all positions.

Produces long welds without repeated starts or stops.

Requires less clean-up.

Monday, July 13, 2015

What is Your Definition of Mig Welding?

 Below specify definition of MIG welding along with its pros and cons. Read on and don’t hesitate to leave your viewpoints of this process.

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MIG welding (also, Gas Metal Arc Welding (GMAW)) involves a process that takes advantage of a persistently fed solid electrode, shielding gas from an external supply, and electric power for melting the electrode and depositing this molten material in the welding joint. The equipment employed automatically regulates the electric characteristics of the arc. The welder is required of the only manual control (travel speed, travel direction and gun positioning). As far as appreciate equipment settings come, the power supply will give the needed amperage for melting the electrode at the required rate to maintain the pre-selected arc length (voltage). For instance, a higher stick-out resulted from drawing the torch back from the work piece leads to a decrease in current from the power source. That way maintains the similar electrode heating and returns the arc length to its pre-set condition. The selection of filler metal should be closely associated with the base material to be welded. Regarding MIG welding, the filler metal helps reinforce the completed welding joint aside from conducting current to the arc zone (and melting base metal and electrode as a result).

MIG welding can be employed on various metals, and base metals of numerous different thicknesses. Its successful application is related to the appropriate selection of:

  • Electrode (composition, diameter, packaging)
  • Shielding gas (type, purity, flow rate)
  • Process variables (current, voltage, mode of metal transfer and travel speed)
  • Equipment (power supply source, welding gun, wire feeder)


Why Use MIG Welding?
  • MIG welding is a high-productivity, low-cost welding process
  • It can be used for welding all types of metals and alloys commercially available
  • Welding can work in all positions with right selection of equipment and parameters
  • Using a persistently fed electrode maintains a high duty cycle and minimizes the defect occurrences
  • In-depth weld penetration can be gained, which enables the employment of small weld sizes for equal weld strengths in some applications
  • There requires minimal after-weld clean-up as a result of the absence of a slag cover on the weld bead
  • Welding speeds and rates of weld metal deposition are higher than those got with stick welding
  • Perfect for multi-pass welding (with appropriate filler metal selection)
  • Less manual skill is required comparatively to stick welding
  • Fume rates come at really low levels as compared to stick welding and flux cored welding
  • Compositions and diameters of filler metal are widely selected for welding thick or thin material
  • This process is perfect for mechanized welding.
  • This process provides enhanced electrode deposition efficiency in comparison with stick welding and FCAW
  • Welds of X-ray quality can be produced.
What are Downsides to MIG Welding?
  • Weld equipment is considered more complex, more costly and less portable compared to stick welding
  • It is difficult for the required welding torch to reach into the constricted areas. Plus, the good gas shielding is needed, which makes the torch be quite closer to the weld area.
  • The welding arc with its gas shield is necessarily protected from drafts, which may cause the shielding to be blown away from the arc. This doesn’t facilitate the use of this process outdoors unless the protective shields are placed around the working area
  • Pretty high levels of radiated heat and light might cause operator’s discomfort, initial resistance to the process
  • Burn-through commonly occurs when welding especially thin materials (smaller than 1/16”)
  • Pertaining to traditional transfer when welding out of position, rates of weld metal deposition are less than those obtained with flux cored welding
  • This process fails to perform well in which base metal contamination is an issue. The base metal is required to be clean and rust-free
  • Lacking in fusion defects may induce where process parameters are wrongly set. This is extremely critical when welding base metals are thicker than 1/4”
Are you finishing this read? What is your definition of MIG welding? Your opinions of its pros and cons?