Surface Composite AA6061/SiC Manufactured by Hole and Groove …
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References
1. Miracle D (2005) Metal matrix composites–from science to technological significance. Compos
Sci Technol 65(15–16):2526–2540
2. Sharma DK, Mahant D, Upadhyay G (2020) Manufacturing of metal matrix composites: a state
of review. Mater Today: Proc 26:506–519
3. Sharma DK, Sharma M, Upadhyay G (2019) Boron carbide (B4C) reinforced aluminum matrix
composites (AMCs). Int J Innov Technol Explor Eng 9(1):2194
4. Shorowordi KM, Laoui T, Haseeb A, Celis J-P, Froyen L (2003) Microstructure and interface
characteristics of B 4 C, SiC and Al 2 O 3 reinforced Al matrix composites: a comparative study.
J Mater Process Technol 142(3):738–743
5. Mishra RS, Ma Z, Charit I (2003) Friction stir processing: a novel technique for fabrication of
surface composite. Mater Sci Eng A 341(1–2):307–310
6. Lorenzo-Martin MC, Ajayi OO (2014) Surface layer modification of 6061 Al alloy by friction
stir processing and second phase hard particles for improved friction and wear performance. J
Tribol 136(4):044501
7. Mishra RS, Ma Z (2005) Friction stir welding and processing. Mater Sci Eng: R: Rep 50(1–
2):1–78
8. Pantelis D, Tissandier A, Manolatos P, Ponthiaux P (1995) Formation of wear resistant Al–SiC
surface composite by laser melt–particle injection process. Mater Sci Technol 11(3):299–303
9. Chao M, Cui H, Lu F, Tang X (2013) Evolution behavior of TiB 2 particles during laser welding
on aluminum metal matrix composites reinforced with particles. Trans Nonferrous Met Soc
China 23(6):1543–1548
10. Rana H, Badheka V (2019) Elucidation of the role of rotation speed and stirring direction on
AA 7075–B 4 C surface composites formulated by friction stir processing. Proc Inst Mech Eng
Part L: J Mater: Des Appl 233(5):977–994
11. Sharma DK, Patel V, Badheka V, Mehta K, Upadhyay G (2019) Fabrication of hybrid surface
composites AA6061/(B 4 C+MoS 2 ) via friction stir processing. J Tribol 141(5):052201
12. Sharma A, Narsimhachary D, Sharma VM, Sahoo B, Paul J (2019) Surface modification of
Al6061-SiC surface composite through impregnation of graphene, graphite & carbon nanotubes
via FSP: a tribological study. Surf Coat Technol 368:175–191
13. Patel VV, Badheka VJ, Kumar A (2016) Effect of velocity index on grain size of friction stir
processed Al-Zn-Mg-Cu alloy. Procedia Technol 23:537–542
14. Dinaharan I, Balakrishnan M, Selvam JDR, Akinlabi E (2019) Microstructural characterization and tensile behavior of friction stir processed AA6061/Al2Cu cast aluminum matrix
composites. J Alloy Compd 781:270–279
15. Patel VV, Badheka V, Kumar A (2016) Friction stir processing as a novel technique to
achieve superplasticity in aluminum alloys: process variables, variants, and applications. Metall
Microstruct Anal 5(4):278–293
16. Patel VV, Badheka V, Kumar A (2017) Effect of polygonal pin profiles on friction stir processed
superplasticity of AA7075 alloy. J Mater Process Technol 240:68–76
17. Jesus JS, Costa JM, Loureiro A, Ferreira JM (2017) Fatigue strength improvement of GMAW
T-welds in AA 5083 by friction-stir processing. Int J Fatigue 97(Suppl C):124–134
18. Sharma V, Prakash U, Kumar BM (2015) Surface composites by friction stir processing: a
review. J Mater Process Technol 224:117–134
19. Patel V, Li W, Vairis A, Badheka V (2019) Recent development in friction stir processing as
a solid-state grain refinement technique: microstructural evolution and property enhancement.
Crit Rev Solid State Mater Sci 1–49
20. Komarasamy M, Mishra RS, Baumann JA, Grant G, Hovanski Y (2013) Processing, microstructure and mechanical property correlation in Al-B 4 C surface composite produced via friction
stir processing. In: Friction stir welding and processing, vol VII. Springer, Berlin, pp 39–46
21. Ratna Sunil B (2016) Different strategies of secondary phase incorporation into metallic sheets
by friction stir processing in developing surface composites. Int J Mech Mater Eng 11:12
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