A Review of Challenges to Hastelloy – C Series Weld Overlay
171
5. Volpi A, Serra G (2018) Weld overlay of highly corrosion resistant nickel chromium. In:
ASME 2018 symposium on elevated temperature application of materials for fossil, nuclear,
and petrochemical industries, pp 1–12
6. da Silva MM, Batista VR, Maciel TM, dos Santos MA, Brasileiro TL (2018) Optimization of
submerged arc welding process parameters for overlay welding. Weld Int 32:122–129
7. Sorell G (1997) Corrosion-resistant nickel alloys. Chem Process 60(54–8):61
8. DuPont JN (2009) Welding metallurgy and weldability of nickel-base alloys. WILEY
9. Anon (1924) Nickel and its alloys J Franklin Inst 198:554–556
10. ASME (2010) Material specifications—Part B. Nonferrous materials. ASME Boil. Press. Vessel
Code
11. Haynes International 2003 Fabrication of Hastelloy ® H-2010f
12. Kannan T, Yoganandh J (2010) Effect of process parameters on clad bead geometry and its
shape relationships of stainless steel claddings deposited by GMAW. Int J Adv Manuf Technol
47:1083–1095
13. Murugan N, Parmar RS (2010) Effects of welding process parameters on the geometry and
dilution of the bead in the automatic surfacing. J Mater Process Technol 41:244–247
14. Palani PK, Murugan N (2007) Optimization of weld bead geometry for stainless steel claddings
deposited by FCAW. J Mater Process Technol 190:291–299
15. Sowrirajan M, Koshy Mathews P, Vijayan S (2018) Simultaneous multi-objective optimization
of stainless steel clad layer on pressure vessels using genetic algorithm. J Mech Sci Technol
32:2559–2568
16. Sowrirajana M, Koshy Mathewsb P, SV, YA (2018) Ac ce us. Mater Res Express 5
17. Kumar V, Lee C, Verhaeghe G, Raghunathan S (2010) CRA weld overlay—influence of welding
process and parameters on dilution and corrosion resistance. TWI Ltd.
18. Tahaei A, Vazquez FG, Merlin M, Arizmendi-Morquecho A, Valdes FAR, Garagnani GL (2016)
Metallurgical characterization of a weld bead coating applied by the PTA process on the D2
tool steel. Soldag Inspeção 21:209–219
19. Balasubramanian V, Varahamoorthy R, Ramachandran CS, Muralidharan C (2009) Selection
of welding process for hardfacing on carbon steels based on quantitative and qualitative factors.
Int J Adv Manuf Technol 40:887–897
20. Correia SL (2014) 21 o CBECIMAT - Congresso Brasileiro de Engenharia e Ciência dos Materiais 09 a 13 de Novembro de 2014, Cuiabá, MT, Brasil. Investig Mech Prop Magnes Met
matrix Compos with a fine Dispers. CeO2 Part 5738:2665–2672
21. Amudha A, Shashikala HD, Nagaraja HS (2019) Corrosion protection of low-cost carbon steel
with SS-309Mo and Inconel-625 bimetallic weld overlay. Mater Res Express 6:046523
22. Materials T, Company I (2018) Wrought stainless steels Prop Sel Irons, Steels, HighPerformance Alloy, 841–907
23. Perricone MJ, Dupont JN (2006) Effect of composition on the solidification behavior of several
Ni-Cr-Mo and Fe-Ni-Cr-Mo alloys. Metall Mater Trans A Phys Metall Mater Sci 37:1267–1280
24. DuPont JN, Robino CV, Michael JR, Nous MR, Marder AR (1998) Solidification of Nbbearing superalloys: part I. Reaction sequences. Metall Mater Trans A Phys Metall Mater Sci
29:2785–2796
25. Cieslak MJ, Knorovsky GA, Headley TJ, Romig AD (1986) The use of new PHACOMP in
understanding the solidification microstructure of nickel base alloy weld metal. Metall Trans
A 17:2107–2116
26. Hayens International H-2019A 2020 HASTELLOY ® C-22 ® alloy Hast Int,+ H-2019A
27. International H 2017 HASTELLOY ® C-276 alloy. Haynes Int, 1–17
28. Perricone MJ, DuPont JN, Cieslak MJ (2003) Solidification of hastelloy alloys: an alternative
interpretation. Metall Mater Trans A Phys Metall Mater Sci 34A:1127–1132
29. Antoszczyszyn TJ, Paes RMG, de Oliveira ASCM, Scheid A (2014) Impact of dilution on the
microstructure and properties of Ni-based 625 alloy coatings. Soldag Inspeção 19:134–144
30. Brien AO (1969) Welding Handbook, vol 1
31. Haynes International Inc. Haynes International, Physical properties of C-276. Haynes Int
32. Haynes International Inc. Haynes International, Physical properties of C-22. Haynes Int
171
5. Volpi A, Serra G (2018) Weld overlay of highly corrosion resistant nickel chromium. In:
ASME 2018 symposium on elevated temperature application of materials for fossil, nuclear,
and petrochemical industries, pp 1–12
6. da Silva MM, Batista VR, Maciel TM, dos Santos MA, Brasileiro TL (2018) Optimization of
submerged arc welding process parameters for overlay welding. Weld Int 32:122–129
7. Sorell G (1997) Corrosion-resistant nickel alloys. Chem Process 60(54–8):61
8. DuPont JN (2009) Welding metallurgy and weldability of nickel-base alloys. WILEY
9. Anon (1924) Nickel and its alloys J Franklin Inst 198:554–556
10. ASME (2010) Material specifications—Part B. Nonferrous materials. ASME Boil. Press. Vessel
Code
11. Haynes International 2003 Fabrication of Hastelloy ® H-2010f
12. Kannan T, Yoganandh J (2010) Effect of process parameters on clad bead geometry and its
shape relationships of stainless steel claddings deposited by GMAW. Int J Adv Manuf Technol
47:1083–1095
13. Murugan N, Parmar RS (2010) Effects of welding process parameters on the geometry and
dilution of the bead in the automatic surfacing. J Mater Process Technol 41:244–247
14. Palani PK, Murugan N (2007) Optimization of weld bead geometry for stainless steel claddings
deposited by FCAW. J Mater Process Technol 190:291–299
15. Sowrirajan M, Koshy Mathews P, Vijayan S (2018) Simultaneous multi-objective optimization
of stainless steel clad layer on pressure vessels using genetic algorithm. J Mech Sci Technol
32:2559–2568
16. Sowrirajana M, Koshy Mathewsb P, SV, YA (2018) Ac ce us. Mater Res Express 5
17. Kumar V, Lee C, Verhaeghe G, Raghunathan S (2010) CRA weld overlay—influence of welding
process and parameters on dilution and corrosion resistance. TWI Ltd.
18. Tahaei A, Vazquez FG, Merlin M, Arizmendi-Morquecho A, Valdes FAR, Garagnani GL (2016)
Metallurgical characterization of a weld bead coating applied by the PTA process on the D2
tool steel. Soldag Inspeção 21:209–219
19. Balasubramanian V, Varahamoorthy R, Ramachandran CS, Muralidharan C (2009) Selection
of welding process for hardfacing on carbon steels based on quantitative and qualitative factors.
Int J Adv Manuf Technol 40:887–897
20. Correia SL (2014) 21 o CBECIMAT - Congresso Brasileiro de Engenharia e Ciência dos Materiais 09 a 13 de Novembro de 2014, Cuiabá, MT, Brasil. Investig Mech Prop Magnes Met
matrix Compos with a fine Dispers. CeO2 Part 5738:2665–2672
21. Amudha A, Shashikala HD, Nagaraja HS (2019) Corrosion protection of low-cost carbon steel
with SS-309Mo and Inconel-625 bimetallic weld overlay. Mater Res Express 6:046523
22. Materials T, Company I (2018) Wrought stainless steels Prop Sel Irons, Steels, HighPerformance Alloy, 841–907
23. Perricone MJ, Dupont JN (2006) Effect of composition on the solidification behavior of several
Ni-Cr-Mo and Fe-Ni-Cr-Mo alloys. Metall Mater Trans A Phys Metall Mater Sci 37:1267–1280
24. DuPont JN, Robino CV, Michael JR, Nous MR, Marder AR (1998) Solidification of Nbbearing superalloys: part I. Reaction sequences. Metall Mater Trans A Phys Metall Mater Sci
29:2785–2796
25. Cieslak MJ, Knorovsky GA, Headley TJ, Romig AD (1986) The use of new PHACOMP in
understanding the solidification microstructure of nickel base alloy weld metal. Metall Trans
A 17:2107–2116
26. Hayens International H-2019A 2020 HASTELLOY ® C-22 ® alloy Hast Int,+ H-2019A
27. International H 2017 HASTELLOY ® C-276 alloy. Haynes Int, 1–17
28. Perricone MJ, DuPont JN, Cieslak MJ (2003) Solidification of hastelloy alloys: an alternative
interpretation. Metall Mater Trans A Phys Metall Mater Sci 34A:1127–1132
29. Antoszczyszyn TJ, Paes RMG, de Oliveira ASCM, Scheid A (2014) Impact of dilution on the
microstructure and properties of Ni-based 625 alloy coatings. Soldag Inspeção 19:134–144
30. Brien AO (1969) Welding Handbook, vol 1
31. Haynes International Inc. Haynes International, Physical properties of C-276. Haynes Int
32. Haynes International Inc. Haynes International, Physical properties of C-22. Haynes Int
