Superplasticity: Recent Approaches and Trends
395
3. Bernhart G, Lours P, Cutard V et al (2011) Processes and equipment for superplastic forming
of metals. In: Superplastic Forming of advanced metallic materials. Methods & Applications,
Metals & Surface Engineering. Woodhead Publishing Ltd., pp 49–71
4. Patel VV, Vora JJ, Gupta K (ed) (2019) Near net shape manufacturing processes. In: Materials
forming, machining and tribology. Springer Nature, Switzerland
5. Vol. JIS-H-7007 3 (1995) Glossary of terms used in metallic superplastic materials
6. Mabuchi M, Higashi K (1998) The processing, properties, and applications of high-strain-rate
superplastic materials. J Miner Metals Mater Soc 50(6):34–39
7. Dudina DV, Mishra RS, Mukherjee AK (2016) Superplasticity. Mater Sci Technol. https://doi.
org/10.1016/B978-0-12-803581-8.02886-1
8. Ma Z, Mishra RS (2005) Friction stir superplasticity for unitized structures. In: Friction stir
welding & processing. Elsevier
9. Mishra RS, Bieler TR, Mukherjee AK (1995) Superplasticity in powder metallurgy aluminum
alloys and composites. Acta Metall Mater 43(3):877–891
10. Nieh TG, Wadsworth J, Sherby OD (1997) Superplasticity in metals and ceramics. Cambridge
University Press. ISBN 0521561051
11. Jain V, Mishra RS, Verma R, Essadiqi E (2013) Superplasticity and microstructural stability in
a Mg alloy processed by hot rolling and friction stir processing. Scr Mater 68(7):447–450
12. Ghosh AK (2007) On the measurement of strain-rate sensitivity for deformation mechanism
in conventional and ultra-fine grain alloys. Mater Sci Eng A 463(1–2):36–40
13. Raja A, Biswas P, Pancholi V (2018) Effect of layered microstructure on the superplasticity of
friction stir processed AZ91 magnesium alloy. Mater Sci Eng A 725:492–502
14. Ridley N (2011) Metals for superplastic forming. In: Giuliano G (ed) Superplastic forming of
advanced metallic materials. Methods & Applications. Woodhead Publishing Ltd.
15. Dudina DV, Mishra RS, Mukherjee AK (2016) Superplasticity, Materials Science and
Engineering. https://doi.org/10.1016/B978-0-12-803581-8.02886-1
16. Barnes AJ (2001) Industrial applications of superplastic forming: trends & prospects. Mater
Sci Forum 357–359:3–16
17. Koehler W, Plege B, Sahm KF, Padmapriya N (2017) Metal forming: specialized procedures
for the aircraft industry. Mater Sci Technol. https://doi.org/10.1016/B978-0-12-803581-8.019
39-1
18. LUXFER SUPERFORM Homepage, www.superforming.com. Last accessed 19 Aug 2020
19. Jin H (2017) Improvement of superplasticity in AA5083 by equal channel angular extrusion
and rolling. Mater Sci Technol. https://doi.org/10.1080/02670836.2017.1317954
20. Xinggang J, Jianzhong C, Longxiang M (1993) Grain refinement and superplasticity of high
strength 7475 aluminium alloy. Mater Sci Technol 9(6), 493–496. https://doi.org/10.1179/mst.
1993.9.6.493
21. Paton NE, Hamilton CH, Wert JA, Mahoney MW (1982) Characterization of fine-grained
superplastic aluminum alloys. J Miner Metals Mater Soc (TMS) 34:21–27
22. Bridgman PW (1935) Effects of high shearing stress combined with high hydrostatic pressure.
Phys Rev 48(10):825–847
23. Sakai G, Nakamura K, Horita Z, Langdon TG (2006) Application of high pressure torsion to
bulk samples. Mater Sci Forum 503–504:391–398
24. Edalati K, Masuda T, Arita M, Furui M et al (2017) Room-temperature superplasticity in an
ultra-fine-grained magnesium alloy. Sci Rep 7(1):1–9
25. Valiev RZ, Korznikov A, Mulyukov R (1993) Structure and properties of ultrafine-grained
materials produced by severe plastic deformation. Mater Sci Eng A 168:141–148
26. Alizadeh R, Mahmudi R, Ngan AHW, Huang Y, Langdon TG (2016) Superplasticity of a nanograined Mg-Gd-Y-Zr alloy processed by high-pressure torsion. Mater Sci Eng A 651:786–794
27. Song Y, Wang W, Chen M et al (2017) Ultrafine-grained materials fabrication with high pressure
torsion and simulation of plastic deformation inhomogeneous characteristics. In: Cabibbo M
(ed) Severe plastic deformation techniques. https://doi.org/10.5772/intechopen.68360
28. Szabó PJ, Bereczki P, Verö B (2011) The effect of multiaxial forging on the grain refinement
of low alloyed steel. Periodica Polytechnica 55(1):63–66
395
3. Bernhart G, Lours P, Cutard V et al (2011) Processes and equipment for superplastic forming
of metals. In: Superplastic Forming of advanced metallic materials. Methods & Applications,
Metals & Surface Engineering. Woodhead Publishing Ltd., pp 49–71
4. Patel VV, Vora JJ, Gupta K (ed) (2019) Near net shape manufacturing processes. In: Materials
forming, machining and tribology. Springer Nature, Switzerland
5. Vol. JIS-H-7007 3 (1995) Glossary of terms used in metallic superplastic materials
6. Mabuchi M, Higashi K (1998) The processing, properties, and applications of high-strain-rate
superplastic materials. J Miner Metals Mater Soc 50(6):34–39
7. Dudina DV, Mishra RS, Mukherjee AK (2016) Superplasticity. Mater Sci Technol. https://doi.
org/10.1016/B978-0-12-803581-8.02886-1
8. Ma Z, Mishra RS (2005) Friction stir superplasticity for unitized structures. In: Friction stir
welding & processing. Elsevier
9. Mishra RS, Bieler TR, Mukherjee AK (1995) Superplasticity in powder metallurgy aluminum
alloys and composites. Acta Metall Mater 43(3):877–891
10. Nieh TG, Wadsworth J, Sherby OD (1997) Superplasticity in metals and ceramics. Cambridge
University Press. ISBN 0521561051
11. Jain V, Mishra RS, Verma R, Essadiqi E (2013) Superplasticity and microstructural stability in
a Mg alloy processed by hot rolling and friction stir processing. Scr Mater 68(7):447–450
12. Ghosh AK (2007) On the measurement of strain-rate sensitivity for deformation mechanism
in conventional and ultra-fine grain alloys. Mater Sci Eng A 463(1–2):36–40
13. Raja A, Biswas P, Pancholi V (2018) Effect of layered microstructure on the superplasticity of
friction stir processed AZ91 magnesium alloy. Mater Sci Eng A 725:492–502
14. Ridley N (2011) Metals for superplastic forming. In: Giuliano G (ed) Superplastic forming of
advanced metallic materials. Methods & Applications. Woodhead Publishing Ltd.
15. Dudina DV, Mishra RS, Mukherjee AK (2016) Superplasticity, Materials Science and
Engineering. https://doi.org/10.1016/B978-0-12-803581-8.02886-1
16. Barnes AJ (2001) Industrial applications of superplastic forming: trends & prospects. Mater
Sci Forum 357–359:3–16
17. Koehler W, Plege B, Sahm KF, Padmapriya N (2017) Metal forming: specialized procedures
for the aircraft industry. Mater Sci Technol. https://doi.org/10.1016/B978-0-12-803581-8.019
39-1
18. LUXFER SUPERFORM Homepage, www.superforming.com. Last accessed 19 Aug 2020
19. Jin H (2017) Improvement of superplasticity in AA5083 by equal channel angular extrusion
and rolling. Mater Sci Technol. https://doi.org/10.1080/02670836.2017.1317954
20. Xinggang J, Jianzhong C, Longxiang M (1993) Grain refinement and superplasticity of high
strength 7475 aluminium alloy. Mater Sci Technol 9(6), 493–496. https://doi.org/10.1179/mst.
1993.9.6.493
21. Paton NE, Hamilton CH, Wert JA, Mahoney MW (1982) Characterization of fine-grained
superplastic aluminum alloys. J Miner Metals Mater Soc (TMS) 34:21–27
22. Bridgman PW (1935) Effects of high shearing stress combined with high hydrostatic pressure.
Phys Rev 48(10):825–847
23. Sakai G, Nakamura K, Horita Z, Langdon TG (2006) Application of high pressure torsion to
bulk samples. Mater Sci Forum 503–504:391–398
24. Edalati K, Masuda T, Arita M, Furui M et al (2017) Room-temperature superplasticity in an
ultra-fine-grained magnesium alloy. Sci Rep 7(1):1–9
25. Valiev RZ, Korznikov A, Mulyukov R (1993) Structure and properties of ultrafine-grained
materials produced by severe plastic deformation. Mater Sci Eng A 168:141–148
26. Alizadeh R, Mahmudi R, Ngan AHW, Huang Y, Langdon TG (2016) Superplasticity of a nanograined Mg-Gd-Y-Zr alloy processed by high-pressure torsion. Mater Sci Eng A 651:786–794
27. Song Y, Wang W, Chen M et al (2017) Ultrafine-grained materials fabrication with high pressure
torsion and simulation of plastic deformation inhomogeneous characteristics. In: Cabibbo M
(ed) Severe plastic deformation techniques. https://doi.org/10.5772/intechopen.68360
28. Szabó PJ, Bereczki P, Verö B (2011) The effect of multiaxial forging on the grain refinement
of low alloyed steel. Periodica Polytechnica 55(1):63–66
