The Mechanical Performance of In Situ Processed …
15
19. Koch CC (1998) Intermetallic matrix composites prepared by mechanical alloying—a review.
Mater Sci Eng A 244(1):39–48
20. Chen MR, Jiang Y, Lin LW (2011) Effect of powder size on the pore structure of Ti-35Al
porous material. Mater Sci Eng Powder Metall 4
21. Zheng Y, Xiong W, Liu W, Lei W, Yuan Q (2005) Effect of nano addition on the microstructures
and mechanical properties of Ti (C, N)-based cermets. Ceram Int 31(1):165–170
22. Mamedov V (2002) Spark plasma sintering as advanced PM sintering method. Powder Metall
45(4):322–328
23. Munir ZA, Quach DV, Ohyanagi M (2011) Electric current activation of sintering: a review of
the pulsed electric current sintering process. J Am Ceram Soc 94(1):1–19
24. Anselmi-Tamburini U, Garay JE, Munir ZA (2005) Fundamental investigations on the spark
plasma sintering/synthesis process III. Current effect on reactivity. Mater Sci Eng A 407:1–2
25. Song X, Liu X, Zhang J (2006) Neck formation and self-adjusting mechanism of neck growth
of conducting powders in spark plasma sintering. J Am Ceram Soc 89(2):494–500
26. Khan MUF, Patil A, Christudasjustus J, Borkar T, Gupta RK (2020) Spark plasma sintering of
a high-energy ball milled Mg-10 wt% Al alloy. J Magnes Alloys
27. Chakravarty D, Ramesh H, Rao TN (2009) High strength porous alumina by spark plasma
sintering. J Eur Ceram Soc 29(8):1361–1369
28. Saba F, Zhang F, Sajjadi SA, Haddad-Sabzevar M (2019) Surface-modified-CNTs/Al matrix
nanocomposites produced via spark plasma sintering: microstructures, properties, and formation mechanism. In: Spark plasma sintering of materials. Springer, Cham, pp 119–159
29. Zhang F, Fan K, Yu J, Saba F, Sun J (2019) Pulsed direct current field-induced thermal stability
and phase transformation of nanodiamonds to carbon onions. RSC Adv 9(25):14360–14371
30. Rao VR, Ramanaiah N, Sarcar MMM (2016) Tribological properties of aluminium metal matrix
composites (AA7075 reinforced with titanium carbide (TiC) particles). Int J Adv Sci Technol
88:13–26
31. Saba F, Sajjadi SA, Haddad-Sabzevar M, Zhang F (2017) Formation mechanism of nano
titanium carbide on multi-walled carbon nanotube and influence of the nanocarbides on the
load-bearing contribution of the nanotubes inner-walls in aluminum-matrix composites. Carbon
115:720–729
32. Saba F, Sajjadi SA, Haddad-Sabzevar M, Zhang F (2018) TiC-modified carbon nanotubes,
TiC nanotubes and TiC nanorods: synthesis and characterization. Ceram Int 44(7):7949–7954.
JCPDS card No: 87-0712 and 32-1383
33. Borkar T, Mohseni H, Hwang J, Scharf TW, Tiley JS, Hong SH, Banerjee R (2015) Excellent
strength–ductility combination in nickel-graphite nanoplatelet (GNP/Ni) nanocomposites. J
Alloy Compd 646:135–144
34. Sharma P, Sharma S, Khanduja D (2015) A study on microstructure of aluminium matrix
composites. J Asian Ceram Soc 3(3):240–244
35. Kumar A, Jha PK, Mahapatra MM (2014) Abrasive wear behavior of in situ TiC reinforced
with Al-4.5% Cu matrix. J Mater Eng Perform 23(3):743–752
15
19. Koch CC (1998) Intermetallic matrix composites prepared by mechanical alloying—a review.
Mater Sci Eng A 244(1):39–48
20. Chen MR, Jiang Y, Lin LW (2011) Effect of powder size on the pore structure of Ti-35Al
porous material. Mater Sci Eng Powder Metall 4
21. Zheng Y, Xiong W, Liu W, Lei W, Yuan Q (2005) Effect of nano addition on the microstructures
and mechanical properties of Ti (C, N)-based cermets. Ceram Int 31(1):165–170
22. Mamedov V (2002) Spark plasma sintering as advanced PM sintering method. Powder Metall
45(4):322–328
23. Munir ZA, Quach DV, Ohyanagi M (2011) Electric current activation of sintering: a review of
the pulsed electric current sintering process. J Am Ceram Soc 94(1):1–19
24. Anselmi-Tamburini U, Garay JE, Munir ZA (2005) Fundamental investigations on the spark
plasma sintering/synthesis process III. Current effect on reactivity. Mater Sci Eng A 407:1–2
25. Song X, Liu X, Zhang J (2006) Neck formation and self-adjusting mechanism of neck growth
of conducting powders in spark plasma sintering. J Am Ceram Soc 89(2):494–500
26. Khan MUF, Patil A, Christudasjustus J, Borkar T, Gupta RK (2020) Spark plasma sintering of
a high-energy ball milled Mg-10 wt% Al alloy. J Magnes Alloys
27. Chakravarty D, Ramesh H, Rao TN (2009) High strength porous alumina by spark plasma
sintering. J Eur Ceram Soc 29(8):1361–1369
28. Saba F, Zhang F, Sajjadi SA, Haddad-Sabzevar M (2019) Surface-modified-CNTs/Al matrix
nanocomposites produced via spark plasma sintering: microstructures, properties, and formation mechanism. In: Spark plasma sintering of materials. Springer, Cham, pp 119–159
29. Zhang F, Fan K, Yu J, Saba F, Sun J (2019) Pulsed direct current field-induced thermal stability
and phase transformation of nanodiamonds to carbon onions. RSC Adv 9(25):14360–14371
30. Rao VR, Ramanaiah N, Sarcar MMM (2016) Tribological properties of aluminium metal matrix
composites (AA7075 reinforced with titanium carbide (TiC) particles). Int J Adv Sci Technol
88:13–26
31. Saba F, Sajjadi SA, Haddad-Sabzevar M, Zhang F (2017) Formation mechanism of nano
titanium carbide on multi-walled carbon nanotube and influence of the nanocarbides on the
load-bearing contribution of the nanotubes inner-walls in aluminum-matrix composites. Carbon
115:720–729
32. Saba F, Sajjadi SA, Haddad-Sabzevar M, Zhang F (2018) TiC-modified carbon nanotubes,
TiC nanotubes and TiC nanorods: synthesis and characterization. Ceram Int 44(7):7949–7954.
JCPDS card No: 87-0712 and 32-1383
33. Borkar T, Mohseni H, Hwang J, Scharf TW, Tiley JS, Hong SH, Banerjee R (2015) Excellent
strength–ductility combination in nickel-graphite nanoplatelet (GNP/Ni) nanocomposites. J
Alloy Compd 646:135–144
34. Sharma P, Sharma S, Khanduja D (2015) A study on microstructure of aluminium matrix
composites. J Asian Ceram Soc 3(3):240–244
35. Kumar A, Jha PK, Mahapatra MM (2014) Abrasive wear behavior of in situ TiC reinforced
with Al-4.5% Cu matrix. J Mater Eng Perform 23(3):743–752
