
Submerged Arc Welding
Kjellberg's coating protects the pool with a thin shell carried on the electrode. It works, but it limits how much current you can push: crank the amps up and the coating burns off ahead of the arc, spatter goes everywhere, and the operator is standing in front of a small sun.
Submerged arc welding takes the idea to its conclusion. Instead of coating the electrode, pour a deep blanket of granular flux over the joint and run a bare wire down into it. The arc burns underneath the powder, completely buried. There is no visible light, almost no spatter, no fume escaping, and no radiated heat — and because the flux blanket also traps the heat, far more of the energy goes into melting metal instead of warming the room.
US 2,043,960, “Electric Welding”, filed 9 October 1935 and granted 9 June 1936. Three inventors are named — Lloyd T. Jones, Harry E. Kennedy and Maynard A. Rotermund, assigned to Union Carbide and Carbon. Note the spelling: Rotermund, not Rothermund, and three men rather than the one the process is usually credited to.
The experiment below buries a heat source under granular material and measures what the blanket does to the energy — the principle, at a temperature you can put a thermometer on.
手順
State the two claims you are testing
State the two claims you are testing
Write both down: a granular blanket blocks radiation, and a granular blanket keeps heat in the joint. They are separate claims.
必要な工具:
Notebook and PencilSet up two identical steel coupons
Set up two identical steel coupons
Cut two matched coupons from the steel flat bar and sand both bright. They must start identical for the comparison to mean anything.
このステップの材料:
Mild Steel Flat Bar2 個
Sandpaper (220 Grit)1 枚必要な工具:
Steel Ruler (30cm)
Vernier CaliperHeat the open coupon and start timing
Heat the open coupon and start timing
Heat coupon A to about 400 °C with the torch, then remove the flame and start the clock. Record temperature every 30 seconds.
このステップの材料:
Mild Steel Flat Bar1 個
Firebricks2 個必要な工具:
Propane Torch
Infrared Thermometer
Leather GlovesHeat the second coupon and bury it
Heat the second coupon and bury it
Heat coupon B the same way, then immediately cover it with 30 mm of clean dry sand. Start the clock again.
このステップの材料:
Mild Steel Flat Bar1 個
Clean Dry Sand2 kg必要な工具:
Propane Torch
Leather GlovesTrack the buried coupon with the thermocouple
Track the buried coupon with the thermocouple
The infrared thermometer cannot see through sand. Use the thermocouple probe placed against the coupon before burying, and read every 30 seconds.
必要な工具:
K-Type Thermocouple with MAX6675 ModulePlot both cooling curves on one chart
Plot both cooling curves on one chart
Plot temperature against time for A and B together. The buried coupon holds heat markedly longer — that is the thermal-efficiency claim, confirmed.
このステップの材料:
Graph Paper1 枚必要な工具:
Notebook and PencilMeasure the radiation the blanket blocks
Measure the radiation the blanket blocks
Point the infrared thermometer at each coupon's surface from 300 mm. The sand surface reads far cooler than the bare coupon. That is why no helmet is needed.
このステップの材料:
Graph Paper1 枚必要な工具:
Infrared Thermometer
Steel Ruler (30cm)Test whether the blanket excludes air
Test whether the blanket excludes air
Uncover coupon B once cold and compare its surface with coupon A's. The buried one carries much less scale — the sand kept oxygen out too.
必要な工具:
Magnifying GlassWeigh the scale loss on both
Weigh the scale loss on both
Brush both coupons and weigh. Quantify what you saw in step 8 rather than trusting the eye.
必要な工具:
Digital Scale (0.01g)
File SetNote what real flux does that sand cannot
Note what real flux does that sand cannot
Record the difference: welding flux melts to a slag, deoxidises the pool and can carry alloying elements. Sand is inert — it models the blanket, not the chemistry.
このステップの材料:
Notebook and Pencil1 個Work out why the process must be mechanised
Work out why the process must be mechanised
The operator cannot see the arc. Write down what that implies: the travel speed, wire feed and current must be set by machine, not judged by eye.
このステップの材料:
Graph Paper1 枚必要な工具:
Notebook and PencilList where the geometry limits it
List where the geometry limits it
Loose powder falls off anything that is not roughly flat. Note the consequence: submerged arc welds flat and horizontal joints only — no overhead, no vertical.
このステップの材料:
Notebook and Pencil1 個Safety awareness — the hazard you cannot see
Safety awareness — the hazard you cannot see
An invisible arc is still an arc. Submerged arc welding is famous for needing no helmet, and that breeds carelessness: if the flux blanket thins or breaks — at the start of a run, at a joint edge, or when the hopper empties — the arc flashes through and the ultraviolet is as damaging as any other. Operators keep eye protection to hand precisely because the exposure is unexpected.
Hot flux looks exactly like cold flux. Fused slag and unfused powder are the same colour and sit side by side at wildly different temperatures. Recovered flux is handled with tools, and slag is chipped only behind eye protection — it detaches under tension and flies.
In this blueprint the sand is the hazard. Sand heated against a 400 °C coupon holds that heat for a long time and gives no visual warning at all. Leave it to cool fully and check with the thermometer before putting a hand near it.
必要な工具:
Clear Safety Glasses
Leather Gloves
Infrared ThermometerHistory & Context
History & Context
US 2,043,960, “Electric Welding”, filed 9 October 1935, granted 9 June 1936, assigned to Union Carbide and Carbon Corporation. The named inventors are Lloyd Theodore Jones, Harry Edward Kennedy and Maynard Arthur Rotermund — three men. The process is habitually credited to one, and the third name is regularly misspelled Rothermund. The document settles both points.
Slavyanov got there first, sort of. In the 1890s at Perm he covered the weld pool with a molten slag blanket, for the same reason. The 1936 patent is the industrialised, granular, machine-fed form of an idea that had been floating around since arc welding began — which is a fair description of a good many welding patents.
Why the numbers are so different. Because none of the energy escapes as light or radiated heat, submerged arc welding runs at currents that would be unusable in the open — commonly 300 to 1000 A and, on multi-wire installations, far more. Thermal efficiency approaches 90 per cent against roughly 60 to 70 for open-arc processes, and deposition rates are several times higher than manual stick welding. On thick plate it is not a little faster; it is a different order of magnitude.
Where you have seen it without knowing. Pressure vessels, shipbuilding, wind-turbine towers, structural I-beams and large-diameter pipe are almost all submerged arc welded, usually with the work rotating under a fixed head. It arrived just in time for the Second World War, where it welded ship hulls and armour plate at rates riveting could not approach.
The strange consequence. This is the only common welding process where the operator's protection is not equipment but the process itself. The arc is not shielded from the welder; the welder is shielded from the arc — by the same blanket that shields the weld.
材料
6- プレースホルダー
- プレースホルダー
- 2 個プレースホルダー
- 2 kgプレースホルダー
- 3 枚プレースホルダー
- プレースホルダー
必要な工具
11- プレースホルダー
- プレースホルダー
- プレースホルダー
- プレースホルダー
- プレースホルダー
- プレースホルダー
- プレースホルダー
- プレースホルダー
- プレースホルダー
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