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51. Chai F, Zhang D, Li Y, Zhang W (2013) High strain rate superplasticity of a fine-grained AZ91
magnesium alloy prepared by submerged friction stir processing. Mater Sci Eng A 568:40–48
52. Yang Q, Xiao BL, Ma ZY, Chen RS (2011) Achieving high strain rate superplasticity in MgZn-Y-Zr alloy produced by friction stir processing. Scr Mater 65(4):335–338
53. Prabu SB, Padmanabhan KA (2014) Superplasticity in and Superplastic Forming of AluminumLithium Alloys. https://doi.org/10.1016/B978-0-12-401698-9.00008-2
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friction stir processed magnesium alloys for aeronautical applications: a modeling approach.
Mater Sci Forum 735:180–191
397
50. Patel V, Badheka V, Li W, Akkireddy S (2019) Hybrid friction stir processing with active
cooling approach to enhance superplastic behavior of AA7075 aluminum alloy. Arch Civil
Mech Eng 19(4):1368–1380. https://doi.org/10.1016/j.acme.2019.08.007
51. Chai F, Zhang D, Li Y, Zhang W (2013) High strain rate superplasticity of a fine-grained AZ91
magnesium alloy prepared by submerged friction stir processing. Mater Sci Eng A 568:40–48
52. Yang Q, Xiao BL, Ma ZY, Chen RS (2011) Achieving high strain rate superplasticity in MgZn-Y-Zr alloy produced by friction stir processing. Scr Mater 65(4):335–338
53. Prabu SB, Padmanabhan KA (2014) Superplasticity in and Superplastic Forming of AluminumLithium Alloys. https://doi.org/10.1016/B978-0-12-401698-9.00008-2
54. Carrino L, Squillace A, Paradiso V, Ciliberto S, Montuori M (2013) Superplastic forming of
friction stir processed magnesium alloys for aeronautical applications: a modeling approach.
Mater Sci Forum 735:180–191
