Systems and methods for corrosion-resistant welding electrodes
The invention relates generally to welding and, more specifically, to corrosion resistant weld deposits created during arc welding, such as Gas Metal Arc Welding (GMAW) or Flux Core Arc Welding (FCAW). A disclosed corrosion resistant weld deposit comprises nickel, chromium, and copper, and has a low porosity.
1. A corrosion-resistant weld deposit formed on a coated workpiece, wherein the weld deposit comprises:
greater than 50% iron by weight:
between greater than approximately 0.5% and less than 10% chromium by weight;
between greater than approximately 0.02% and less than 10% nickel by weight; and
between approximately 0.05% and approximately 2% copper by weight;
a total alloy content, including chromium, nickel, and copper, of less than 10% by weight;
wherein the weld deposit has a porosity less than approximately 0.25 inches per inch of the weld deposit; and
wherein the weld deposit is a low alloy weld deposit that is characterized by a martensitic structure, a ferritic structure, or a combination thereof.
2. The weld deposit of claim 1 , comprising:
between approximately 0.6% and approximately 10% chromium by weight; and
between approximately 0.02% and approximately 0.7% nickel by weight.
3. The weld deposit of claim 1 , wherein the porosity is less than approximately 0.10 inches per inch of the weld deposit.
4. The weld deposit of claim 1 , wherein the weld deposit has a tensile strength of at least 70 kilopounds per square inch (ksi).
5. The weld deposit of claim 1 , wherein the weld deposit is formed at travel speeds greater than approximately 30 inches per minute.
6. The weld deposit of claim 1 , wherein the weld deposit is formed at travel speeds greater than approximately 10 inches per minute, and wherein a thickness of the coated workpiece is 0.05 inches or less.
7. The weld deposit of claim 1 , wherein the coated workpiece comprises a coated mild steel workpiece.
8. The weld deposit of claim 1 , wherein the coated workpiece comprises a galvanized mild steel workpiece.
9. The weld deposit of claim 1 , wherein the coated workpiece is a nitrided steel workpiece.
10. The weld deposit of claim 1 , wherein the weld deposit is a hard-facing weld deposit.
11. The weld deposit of claim 1 , wherein the weld deposit comprises between greater than approximately 0.6% and less than 10% chromium by weight.
12. The weld deposit of claim 1 , wherein the weld deposit comprises between greater than approximately 0.7% and less than 10% chromium by weight.
13. The weld deposit of claim 1 , wherein the weld deposit comprises between approximately 0.02% and approximately 1% nickel by weight.
14. The weld deposit of claim 1 , wherein the weld deposit comprises between approximately 0.1% and approximately 0.7% nickel by weight.
15. The weld deposit of claim 1 , wherein the weld deposit comprises between approximately 0.07% and approximately 1% copper by weight.
16. The weld deposit of claim 1 , wherein the weld deposit comprises between approximately 0.1% and approximately 0.8% copper by weight.
17. The weld deposit of claim 1 , wherein the weld deposit comprises between approximately 0.001% and approximately 0.2% molybdenum by weight.
18. The weld deposit of claim 1 , wherein the weld deposit comprises between approximately 0.01% and approximately 0.15% molybdenum by weight.
19. The weld deposit of claim 1 , wherein the weld deposit comprises between approximately 0.001% and approximately 0.2% titanium by weight.
20. The weld deposit of claim 1 , wherein the weld deposit comprises between approximately 0.001% and approximately 0.2% niobium by weight.