Friction Stir Additive Manufacturing—A Review
33
19. DebRoy T, Wei HL, Zuback JS, Mukherjee T, Elmer JW, Milewski JO, Beese AM, Wilson-Heid
A, De A, Zhang W (2018) Additive manufacturing of metallic components – process, structure
and properties. Prog Mater Sci 92:112. https://doi.org/10.1016/j.pmatsci.2017.10.001
20. Sames WJ, List FA, Pannala S, Dehoff RR, Babu SS (2016) The metallurgy and processing
science of metal additive manufacturing. Int Mater Rev 61:315
21. Frazier WE (2014) Metal additive manufacturing: a review. J Mater Eng Perform 23(6):1917–
1928. https://doi.org/10.1007/s11665-014-0958-z
22. He X, Mazumder J (2007) Transport phenomena during direct metal deposition. J Appl Phys
101:053113. https://doi.org/10.1063/1.2710780
23. Agarwala M, Bourell D, Beaman J, Marcus H, Barlow J (1995) Direct selective laser sintering
of metals. Rapid Prototyping J 1(1):26–36
24. Kruth J-P, Mercelis P, Van Vaerenhergh J, Froyen L, Rombouts M (2005) Binding mechanisms
in selective laser sintering and selective laser melting. Rapid Prototyping J 11(1):26–36. https://
doi.org/10.1108/13552540510573365
25. Murr LE, Gaytan SM, Ramirez DA, Martinez E, Hernandez J, Amato KN et al (2012) Invited
review: metal fabrication by additive manufacturing using laser and electron beam melting
technologies. J Mater Sci Technol 28(1):1–14
26. Bartkowiak K, Ullrich S, Frick T, Schmidt M (2011) New developments of laser processing
aluminium alloys via additive manufacturing technique. Phys Procedia 12:393–401
27. Merz R, Prinz FB, Ramaswami K, Terk M, Weiss LE (2004) Shape deposition manufacturing.
In: Proceedings solid freeform fabrication symposium. The University of Texas, Austin, pp
1–8
28. Taminger KMB, Hafley RA (2003) Electron beam freeform fabrication: a rapid metal deposition
process. In: Proceedings of the third annual automotive composites conference, Troy, MI
29. Hybrid manufacturing technologies resources. https://www.hybridmanutech.com/resources.
html. Last accessed on 2020/07/18
30. Dilip JJS, Babu S, Varadha Rajan S, Rafi KH, Janaki Ram GD, Stucker BE (2013) Use of
friction surfacing for additive manufacturing. Mater Manuf Process 28(2):189–194. https://
doi.org/10.1080/10426914.2012.677912
31. Gibson I, Rosen DW, Stucker BE (2010) Additive manufacturing technologies: rapid
prototyping to direct digital manufacturing. Springer, New York
32. Guo J (2014) Solid state welding processes in manufacturing welding process manufacturing,
solid state welding processes. In: Handbook of manufacturing engineering and technology, pp
569–592. https://doi.org/10.1007/978-1-4471-4670-4_55
33. White DR (2003) Ultrasonic consolidation of aluminium tooling. Adv Mater Process 161:64–65
34. Slattery KT (2008) Structural assemblies and preforms formed by linear friction welding. U.S.
Patent # 7398911
35. Lequeu PH, Muzzolini R, Ehrstrom JC, Bron F, Maziarz R (2006) Powerpoint presentation on:
high performance friction stir welded structures using advanced alloys. In: Aeromat conference,
Seattle, WA
36. Baumann JA (2012) Technical report on: production of energy efficient preform structures.
The Boeing Company, Huntington Beach, CA
37. Palanivel S, Nelaturu P, Glass B, Mishra RS (2015) Friction stir additive manufacturing for
high structural performance through microstructural control in an Mg based WE43 alloy. Mater
Des 1980–2015(65):934–952. https://doi.org/10.1016/j.matdes.2014.09.082
38. Arbegast WJ (2007). In: Mishra RS, Mahoney MW (eds) Friction stir welding and processing.
ASM International, New York, pp 273–308
39. Kulekci MK, Esme U, Buldum B (2016) Critical analysis of friction stir-based manufacturing
processes. Int J Adv Manuf Technol 85(5–8):1687–1712. https://doi.org/10.1007/s00170-0158071-5
40. Vilac P, Vidal C, Gandra J (2012) In: Ahmed Z (ed) Aluminium alloys—new trends in
fabrication and applications. Intech Open Access Publisher, London, pp 159–197
41. Padhy GK, Wu CS, Gao S (2018) Friction stir based welding and processing technologies—
processes, parameters, microstructures and applications: a review. J Mater Sci Technol 34(1):1–
38. https://doi.org/10.1016/j.jmst.2017.11.029
33
19. DebRoy T, Wei HL, Zuback JS, Mukherjee T, Elmer JW, Milewski JO, Beese AM, Wilson-Heid
A, De A, Zhang W (2018) Additive manufacturing of metallic components – process, structure
and properties. Prog Mater Sci 92:112. https://doi.org/10.1016/j.pmatsci.2017.10.001
20. Sames WJ, List FA, Pannala S, Dehoff RR, Babu SS (2016) The metallurgy and processing
science of metal additive manufacturing. Int Mater Rev 61:315
21. Frazier WE (2014) Metal additive manufacturing: a review. J Mater Eng Perform 23(6):1917–
1928. https://doi.org/10.1007/s11665-014-0958-z
22. He X, Mazumder J (2007) Transport phenomena during direct metal deposition. J Appl Phys
101:053113. https://doi.org/10.1063/1.2710780
23. Agarwala M, Bourell D, Beaman J, Marcus H, Barlow J (1995) Direct selective laser sintering
of metals. Rapid Prototyping J 1(1):26–36
24. Kruth J-P, Mercelis P, Van Vaerenhergh J, Froyen L, Rombouts M (2005) Binding mechanisms
in selective laser sintering and selective laser melting. Rapid Prototyping J 11(1):26–36. https://
doi.org/10.1108/13552540510573365
25. Murr LE, Gaytan SM, Ramirez DA, Martinez E, Hernandez J, Amato KN et al (2012) Invited
review: metal fabrication by additive manufacturing using laser and electron beam melting
technologies. J Mater Sci Technol 28(1):1–14
26. Bartkowiak K, Ullrich S, Frick T, Schmidt M (2011) New developments of laser processing
aluminium alloys via additive manufacturing technique. Phys Procedia 12:393–401
27. Merz R, Prinz FB, Ramaswami K, Terk M, Weiss LE (2004) Shape deposition manufacturing.
In: Proceedings solid freeform fabrication symposium. The University of Texas, Austin, pp
1–8
28. Taminger KMB, Hafley RA (2003) Electron beam freeform fabrication: a rapid metal deposition
process. In: Proceedings of the third annual automotive composites conference, Troy, MI
29. Hybrid manufacturing technologies resources. https://www.hybridmanutech.com/resources.
html. Last accessed on 2020/07/18
30. Dilip JJS, Babu S, Varadha Rajan S, Rafi KH, Janaki Ram GD, Stucker BE (2013) Use of
friction surfacing for additive manufacturing. Mater Manuf Process 28(2):189–194. https://
doi.org/10.1080/10426914.2012.677912
31. Gibson I, Rosen DW, Stucker BE (2010) Additive manufacturing technologies: rapid
prototyping to direct digital manufacturing. Springer, New York
32. Guo J (2014) Solid state welding processes in manufacturing welding process manufacturing,
solid state welding processes. In: Handbook of manufacturing engineering and technology, pp
569–592. https://doi.org/10.1007/978-1-4471-4670-4_55
33. White DR (2003) Ultrasonic consolidation of aluminium tooling. Adv Mater Process 161:64–65
34. Slattery KT (2008) Structural assemblies and preforms formed by linear friction welding. U.S.
Patent # 7398911
35. Lequeu PH, Muzzolini R, Ehrstrom JC, Bron F, Maziarz R (2006) Powerpoint presentation on:
high performance friction stir welded structures using advanced alloys. In: Aeromat conference,
Seattle, WA
36. Baumann JA (2012) Technical report on: production of energy efficient preform structures.
The Boeing Company, Huntington Beach, CA
37. Palanivel S, Nelaturu P, Glass B, Mishra RS (2015) Friction stir additive manufacturing for
high structural performance through microstructural control in an Mg based WE43 alloy. Mater
Des 1980–2015(65):934–952. https://doi.org/10.1016/j.matdes.2014.09.082
38. Arbegast WJ (2007). In: Mishra RS, Mahoney MW (eds) Friction stir welding and processing.
ASM International, New York, pp 273–308
39. Kulekci MK, Esme U, Buldum B (2016) Critical analysis of friction stir-based manufacturing
processes. Int J Adv Manuf Technol 85(5–8):1687–1712. https://doi.org/10.1007/s00170-0158071-5
40. Vilac P, Vidal C, Gandra J (2012) In: Ahmed Z (ed) Aluminium alloys—new trends in
fabrication and applications. Intech Open Access Publisher, London, pp 159–197
41. Padhy GK, Wu CS, Gao S (2018) Friction stir based welding and processing technologies—
processes, parameters, microstructures and applications: a review. J Mater Sci Technol 34(1):1–
38. https://doi.org/10.1016/j.jmst.2017.11.029
