142
D. K. Sharma et al.
22. Rana H, Badheka V (2018) Influence of friction stir processing conditions on the manufacturing
of Al-Mg-Zn-Cu alloy/boron carbide surface composite. J Mater Process Technol 255:795–807
23. Rana H, Badheka V, Kumar A, Satyaprasad A (2018) Strategical parametric investigation on
manufacturing of Al–Mg–Zn–Cu alloy surface composites using FSP. Mater Manuf Processes
33(5):534–545
24. Sharma V, Gupta Y, Kumar BM, Prakash U (2016) Friction stir processing strategies for uniform
distribution of reinforcement in a surface composite. Mater Manuf Processes 31(10):1384–1392
25. María Abreu Fernández C, Rey RA, Julia Cristóbal Ortega M, Verdera D, Vidal CL (2018)
Friction stir processing strategies to develop a surface composite layer on AA6061-T6. Mater
Manuf Processes 33(10):1133–1140
26. Dani MS, Dave IB, Parmar B (2019) Corrosion behavior of die-cast and friction stir-processed
AZ91 magnesium alloys in 5% NaCl. J Inst Eng (India): Ser D 100(1):21–27
27. Gangil N, Maheshwari S, Siddiquee AN (2018) Multipass FSP on AA6063-T6 Al: Strategy to
fabricate surface composites. Mater Manuf Processes 33(7):805–811
28. Mehraban FA, Karimzadeh F, Abbasi M (2015) Development of surface nanocomposite based
on Al-Ni-O ternary system on Al6061 alloy by friction-stir processing and evaluation of its
properties. JOM 67(5):998–1006
29. Sharma A, Sharma VM, Jinu P (2019) A: comparative study on microstructural evolution
and surface properties of graphene/CNT reinforced Al6061− SiC hybrid surface composite
fabricated via friction stir processing. Trans Nonferrous Met Soc China 29(10):2005–2026
30. Sharma A, Sharma VM, Sahoo B, Pal SK, Paul J (2019) Effect of multiple micro channel
reinforcement filling strategy on Al6061-graphene nanocomposite fabricated through friction
stir processing. J Manuf Processes 37:53–70
31. Qu J, Xu H, Feng Z, Frederick DA, An L, Heinrich H (2011) Improving the tribological
characteristics of aluminum 6061 alloy by surface compositing with sub-micro-size ceramic
particles via friction stir processing. Wear 271(9–10):1940–1945
32. Yuvaraj N, Aravindan S (2015) Fabrication of Al5083/B 4 C surface composite by friction stir
processing and its tribological characterization. J Mater Res Technol 4(4):398–410
33. Saadatmand M, Mohandesi JA (2015) Optimization of mechanical and wear properties of
functionally graded Al6061/SiC nanocomposites produced by friction stir processing (FSP).
Acta Metall Sin (English Lett) 28(5):584–590
34. Karpasand F, Abbasi A, Ardestani M (2020) Effect of amount of TiB 2 and B 4 C particles on
tribological behavior of Al7075/B 4 C/TiB 2 mono and hybrid surface composites produced by
friction stir processing. Surface Coatings Technol 125680
35. Ostovan F, Amanollah S, Toozandehjani M, Shafiei E (2020) Fabrication of Al5083 surface
hybrid nanocomposite reinforced by CNTs and Al 2 O 3 nanoparticles using friction stir
processing. J Compos Mater 54(8):1107–1117
36. Mehta K, Badheka V (2019) Wear behavior of boron-carbide reinforced aluminum surface
composites fabricated by friction stir processing. Wear 426:975–980
37. Sudhakar I, Madhu V, Reddy GM, Rao KS (2015) Enhancement of wear and ballistic resistance
of armour grade AA7075 aluminium alloy using friction stir processing. Def Technol 11(1):10–
17
38. Srinivasu R, Rao AS, Reddy GM, Rao KS (2015) Friction stir surfacing of cast A356
aluminium–silicon alloy with boron carbide and molybdenum disulphide powders. Def Technol
11(2):140–146
39. Anvari S, Karimzadeh F, Enayati M (2013) A novel route for development of Al–Cr–O surface
nano-composite by friction stir processing. J Alloy Compd 562:48–55
40. Palanivel R, Dinaharan I, Laubscher R, Davim JP (2016) Influence of boron nitride nanoparticles on microstructure and wear behavior of AA6082/TiB 2 hybrid aluminum composites
synthesized by friction stir processing. Mater Des 106:195–204
41. Sharma DK, Patel V, Badheka V, Mehta K, Upadhyay G (2020) Different reinforcement strategies of hybrid surface composite AA6061/(B 4 C + MoS 2 ) produced by friction stir processing.
Mater Sci Eng Technol 51(11):1493–1506
D. K. Sharma et al.
22. Rana H, Badheka V (2018) Influence of friction stir processing conditions on the manufacturing
of Al-Mg-Zn-Cu alloy/boron carbide surface composite. J Mater Process Technol 255:795–807
23. Rana H, Badheka V, Kumar A, Satyaprasad A (2018) Strategical parametric investigation on
manufacturing of Al–Mg–Zn–Cu alloy surface composites using FSP. Mater Manuf Processes
33(5):534–545
24. Sharma V, Gupta Y, Kumar BM, Prakash U (2016) Friction stir processing strategies for uniform
distribution of reinforcement in a surface composite. Mater Manuf Processes 31(10):1384–1392
25. María Abreu Fernández C, Rey RA, Julia Cristóbal Ortega M, Verdera D, Vidal CL (2018)
Friction stir processing strategies to develop a surface composite layer on AA6061-T6. Mater
Manuf Processes 33(10):1133–1140
26. Dani MS, Dave IB, Parmar B (2019) Corrosion behavior of die-cast and friction stir-processed
AZ91 magnesium alloys in 5% NaCl. J Inst Eng (India): Ser D 100(1):21–27
27. Gangil N, Maheshwari S, Siddiquee AN (2018) Multipass FSP on AA6063-T6 Al: Strategy to
fabricate surface composites. Mater Manuf Processes 33(7):805–811
28. Mehraban FA, Karimzadeh F, Abbasi M (2015) Development of surface nanocomposite based
on Al-Ni-O ternary system on Al6061 alloy by friction-stir processing and evaluation of its
properties. JOM 67(5):998–1006
29. Sharma A, Sharma VM, Jinu P (2019) A: comparative study on microstructural evolution
and surface properties of graphene/CNT reinforced Al6061− SiC hybrid surface composite
fabricated via friction stir processing. Trans Nonferrous Met Soc China 29(10):2005–2026
30. Sharma A, Sharma VM, Sahoo B, Pal SK, Paul J (2019) Effect of multiple micro channel
reinforcement filling strategy on Al6061-graphene nanocomposite fabricated through friction
stir processing. J Manuf Processes 37:53–70
31. Qu J, Xu H, Feng Z, Frederick DA, An L, Heinrich H (2011) Improving the tribological
characteristics of aluminum 6061 alloy by surface compositing with sub-micro-size ceramic
particles via friction stir processing. Wear 271(9–10):1940–1945
32. Yuvaraj N, Aravindan S (2015) Fabrication of Al5083/B 4 C surface composite by friction stir
processing and its tribological characterization. J Mater Res Technol 4(4):398–410
33. Saadatmand M, Mohandesi JA (2015) Optimization of mechanical and wear properties of
functionally graded Al6061/SiC nanocomposites produced by friction stir processing (FSP).
Acta Metall Sin (English Lett) 28(5):584–590
34. Karpasand F, Abbasi A, Ardestani M (2020) Effect of amount of TiB 2 and B 4 C particles on
tribological behavior of Al7075/B 4 C/TiB 2 mono and hybrid surface composites produced by
friction stir processing. Surface Coatings Technol 125680
35. Ostovan F, Amanollah S, Toozandehjani M, Shafiei E (2020) Fabrication of Al5083 surface
hybrid nanocomposite reinforced by CNTs and Al 2 O 3 nanoparticles using friction stir
processing. J Compos Mater 54(8):1107–1117
36. Mehta K, Badheka V (2019) Wear behavior of boron-carbide reinforced aluminum surface
composites fabricated by friction stir processing. Wear 426:975–980
37. Sudhakar I, Madhu V, Reddy GM, Rao KS (2015) Enhancement of wear and ballistic resistance
of armour grade AA7075 aluminium alloy using friction stir processing. Def Technol 11(1):10–
17
38. Srinivasu R, Rao AS, Reddy GM, Rao KS (2015) Friction stir surfacing of cast A356
aluminium–silicon alloy with boron carbide and molybdenum disulphide powders. Def Technol
11(2):140–146
39. Anvari S, Karimzadeh F, Enayati M (2013) A novel route for development of Al–Cr–O surface
nano-composite by friction stir processing. J Alloy Compd 562:48–55
40. Palanivel R, Dinaharan I, Laubscher R, Davim JP (2016) Influence of boron nitride nanoparticles on microstructure and wear behavior of AA6082/TiB 2 hybrid aluminum composites
synthesized by friction stir processing. Mater Des 106:195–204
41. Sharma DK, Patel V, Badheka V, Mehta K, Upadhyay G (2020) Different reinforcement strategies of hybrid surface composite AA6061/(B 4 C + MoS 2 ) produced by friction stir processing.
Mater Sci Eng Technol 51(11):1493–1506
