OPERATION |
The Ranger 305D can be used with a broad range of DC stick electrodes. The MODE switch provides two stick welding settings as follows:
Constant Current (CC-STICK) Welding
The
The ARC CONTROL dial sets the short circuit current
DOWNHILL PIPE Welding
This slope controlled setting is intended for
can also increase spatter. | TABLE B.2 |
It is recommended that the ARC CONTROL be set to the minimum number without electrode sticking. Start with the dial set at 0.
TIG WELDING
The TOUCH START TIG setting of the MODE switch is for DC TIG (Tungsten Inert Gas) welding. To initiate a weld, the CONTROL dial is first set to the desired current and the tungsten is touched to the work. During the time the tungsten is touching the work there is very little volt- age or current and, in general, no tungsten contamina- tion. Then, the tungsten is gently lifted off the work in a rocking motion, which establishes the arc.
When in the TOUCH START TIG mode and when a Amptrol is connected to the
The ARC CONTROL is not active in the TIG mode. To STOP a weld, simply pull the TIG torch away from the work. When the arc voltage reaches approximately 30 Volts the arc will go out and the machine will reset the current to the Touch Start level. To reinitiate the arc, retouch the tungsten to the work and lift. Alternatively, the weld can be stopped by releasing the Amptrol or arc start switch.
The RANGER 305 D can be used in a wide variety of DC TIG welding applications. In general the ʻTouch Startʼ feature allows contamination free starting without the use of a
TYPICAL CURRENT RANGES (1) FOR TUNGSTEN ELECTRODES(2)
Tungsten Electrode | DCEN | DCEP (+) | Approximate Argon Gas Flow |
| TIG TORCH |
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Diameter in. (mm) |
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| Flow Rate C.F.H. ( l | /min.) |
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| 1%, 2% Thoriated | 1%, 2% Thoriated | Aluminum |
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| Stainless Steel |
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| Tungsten | Tungsten |
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.010 | (.25) | (3) |
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0.020 | (.50) | (3) |
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0.040 | (1.0) | (3) |
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1/16 | (1.6) |
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3/32 | (2.4) |
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1/8 | (3.2) |
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5/32 | (4.0) |
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3/16 | (4.8) |
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1/4 | (6.4) |
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(1)When used with argon gas. The current ranges shown must be reduced when using argon/helium or pure helium shielding gases.
(2)Tungsten electrodes are classified as follows by the American Welding Society (AWS):
Pure | EWP |
1% Thoriated | |
2% Thoriated |
Though not yet recognized by the AWS, Ceriated Tungsten is now widely accepted as a substitute for 2% Thoriated Tungsten in AC and DC applications.
(3)DCEP is not commonly used in these sizes.
(4)TIG torch nozzle "sizes" are in multiples of 1/16ths of an inch:
# 4 = 1/4 in. | (6 mm) | |
# 5 | = 5/16 in. | (8 mm) |
# 6 | = 3/8 in. | (10 mm) |
# 7 | = 7/16 in. | (11 mm) |
# 8 | = _ in. | (12.5 mm) |
#10 = 5/8 in. | (16 mm) |
(5)TIG torch nozzles are typically made from alumina ceramic. Special applications may require lava nozzles, which are less prone to breakage, but cannot withstand high temperatures and high duty cycles.