Role of Microstructure on the Potential of MAX and MAB Phases …
39
63. Dey M, Fuka M, AlAnazi F, Gupta S (2018) Synthesis and characterization of novel
Ni-Ti 3 SiC 2 composites. In: Proceeding of the 42nd international conference on advanced
ceramics and composites, Daytona Beach, 21–26 Jan 2018, pp 105–116
64. Hu W, Huang Z, Cai L, Lei C, Zhai H, Hao S, Yu W, Zhou Y (2017) Preparation and mechanical
properties of TiC x -Ni 3 (Al,Ti)/Ni composites synthesized from Ni alloy and Ti 3 AlC 2 powders.
Mater Sci Eng A 697:48–54
65. Wang W, Zhai H, Chen L, Huang Z, Bei G, Baumgärtner C, Greil P (2014) Preparation and
mechanical properties of in situ TiC x –Ni (Si, Ti) alloy composites. Mater Sci Eng A616:214–
218
66. Xu Z, Shi X, Wang M, Zhai W, Yao J, Song S, Zhang Q (2014) Effect of Ag and Ti 3 SiC 2
on tribological properties of TiAl matrix self-lubricating composites at room and increased
temperatures. Tribol Lett 53:617–629
67. Wang D, Sun D, Han X et al (2018) Investigation on tribological properties of the preoxidized Ti 2 AlN/TiAl composite. J Mater Eng Perform 27:1973–1986. https://doi.org/10.
1007/s11665-018-3263-4
68. Xu Z, Xue B, Shi X, Zhang Q, Zhai W, Yao J, Wang Y (2015) Sliding speed and load
dependence of tribological properties of Ti 3 SiC 2 /TiAl composite. Tribol Trans 58(1):87–96.
https://doi.org/10.1080/10402004.2014.951748
69. Sun T, Wang Q, Sun DL, Wu GH, NaY(2010) Study on dry sliding friction and wear properties
of Ti 2 AlN/TiAl composite.Wear 268:693–699
70. Deng X, Shi X, Liu X, Huang Y, Yan Z, Yang K, Wang Y (2017) Effect of Ti 3 SiC 2 on
tribological properties of M50 matrix self-lubricating composites from 25 to 450 °C. J Mater
Eng Perform 26:4595–4604
71. Gupta S, Habib MA, Dunnigan R et al(2015) Synthesis and characterization of Ti 3 SiC 2
particulate-reinforced novel Zn matrix composites.J Mater Eng Perform 24:4071. https://doi.
org/10.1007/s11665-015-1691-y
72. Murugaiah A, Souchet A, El-Raghy T, Radovic M, Sundberg M, Barsoum MW (2014) Tape
casting, pressureless sintering, and grain growth in Ti 3 SiC 2 compacts. J Am Ceram Soc
87:550–556
73. Hu C, Sakka Y, Tanaka H, Nishimura T, Grasso S (2011) Fabrication of textured Nb 4 AlC 3
ceramic by slip casting in a strong magnetic field and spark plasma sintering. J Am Ceram
Soc 94:410–415
74. Hu C, Sakka Y, Grasso S, Suzuki T, Tanaka H (2011) Tailoring Ti 3 SiC 2 ceramic via a
strong magnetic field alignment method followed by spark plasma sintering. J Am Ceram
Soc 94:742–748
75. Mishra M, Sakka Y, Hu C, Suzuki TS, Uchikoshi T, Besra L (2012) Electrophoretic deposition
of Ti 3 SiC 2 and texture development in a strong magnetic field. J Am Ceram Soc 95:2857–2862
76. Yu W, Wang X, Zhao H, Ding C, Huang Z, Zhai H, Guo Z, Xiong S (2017) Microstructure, mechanical properties and fracture mechanism of Ti 2 AlC reinforced AZ91D composites
fabricated by stir casting. J Alloys Compd702:199–208
77. Yu W, Zhao H, Wang X, Wang L, Xiong S, Huang Z, Li S, Zhou Y, Zhai H (2018)
Synthesis and characterization of textured Ti 2 AlC reinforced magnesium composite. J Alloys
Compd730:191–195
78. Yu W, Zhao H, Hu X (2018) Anisotropic mechanical and physical properties in textured
Ti 2 AlC reinforced AZ91D magnesium composite. J Alloys Compd 732:894–901
79. Tran Q, Fuka M, Dey M, Gupta S (2019) Synthesis and characterization of novel Ti 3 SiC 2
reinforced Ni-matrix multilayered composite-based solid lubricants. Lubricants 7:110. https://
doi.org/10.3390/lubricants7120110
80. Qi F, Wang Z, Wu J, Xu H, Kou J, Zhang L (2017) Improved mechanical properties of
Al 2 O 3 ceramic by in-suit generated Ti 3 SiC 2 and TiC via hot pressing sintering. Ceram Int
43:10691–10697
81. Hu C, Zhou Y, Bao Y, Wan D (2006) Tribological properties of polycrystalline Ti 3 SiC 2 and
Al 2 O 3 -reinforced Ti 3 SiC 2 composites. J Am Ceram Soc 89:3456–3461
39
63. Dey M, Fuka M, AlAnazi F, Gupta S (2018) Synthesis and characterization of novel
Ni-Ti 3 SiC 2 composites. In: Proceeding of the 42nd international conference on advanced
ceramics and composites, Daytona Beach, 21–26 Jan 2018, pp 105–116
64. Hu W, Huang Z, Cai L, Lei C, Zhai H, Hao S, Yu W, Zhou Y (2017) Preparation and mechanical
properties of TiC x -Ni 3 (Al,Ti)/Ni composites synthesized from Ni alloy and Ti 3 AlC 2 powders.
Mater Sci Eng A 697:48–54
65. Wang W, Zhai H, Chen L, Huang Z, Bei G, Baumgärtner C, Greil P (2014) Preparation and
mechanical properties of in situ TiC x –Ni (Si, Ti) alloy composites. Mater Sci Eng A616:214–
218
66. Xu Z, Shi X, Wang M, Zhai W, Yao J, Song S, Zhang Q (2014) Effect of Ag and Ti 3 SiC 2
on tribological properties of TiAl matrix self-lubricating composites at room and increased
temperatures. Tribol Lett 53:617–629
67. Wang D, Sun D, Han X et al (2018) Investigation on tribological properties of the preoxidized Ti 2 AlN/TiAl composite. J Mater Eng Perform 27:1973–1986. https://doi.org/10.
1007/s11665-018-3263-4
68. Xu Z, Xue B, Shi X, Zhang Q, Zhai W, Yao J, Wang Y (2015) Sliding speed and load
dependence of tribological properties of Ti 3 SiC 2 /TiAl composite. Tribol Trans 58(1):87–96.
https://doi.org/10.1080/10402004.2014.951748
69. Sun T, Wang Q, Sun DL, Wu GH, NaY(2010) Study on dry sliding friction and wear properties
of Ti 2 AlN/TiAl composite.Wear 268:693–699
70. Deng X, Shi X, Liu X, Huang Y, Yan Z, Yang K, Wang Y (2017) Effect of Ti 3 SiC 2 on
tribological properties of M50 matrix self-lubricating composites from 25 to 450 °C. J Mater
Eng Perform 26:4595–4604
71. Gupta S, Habib MA, Dunnigan R et al(2015) Synthesis and characterization of Ti 3 SiC 2
particulate-reinforced novel Zn matrix composites.J Mater Eng Perform 24:4071. https://doi.
org/10.1007/s11665-015-1691-y
72. Murugaiah A, Souchet A, El-Raghy T, Radovic M, Sundberg M, Barsoum MW (2014) Tape
casting, pressureless sintering, and grain growth in Ti 3 SiC 2 compacts. J Am Ceram Soc
87:550–556
73. Hu C, Sakka Y, Tanaka H, Nishimura T, Grasso S (2011) Fabrication of textured Nb 4 AlC 3
ceramic by slip casting in a strong magnetic field and spark plasma sintering. J Am Ceram
Soc 94:410–415
74. Hu C, Sakka Y, Grasso S, Suzuki T, Tanaka H (2011) Tailoring Ti 3 SiC 2 ceramic via a
strong magnetic field alignment method followed by spark plasma sintering. J Am Ceram
Soc 94:742–748
75. Mishra M, Sakka Y, Hu C, Suzuki TS, Uchikoshi T, Besra L (2012) Electrophoretic deposition
of Ti 3 SiC 2 and texture development in a strong magnetic field. J Am Ceram Soc 95:2857–2862
76. Yu W, Wang X, Zhao H, Ding C, Huang Z, Zhai H, Guo Z, Xiong S (2017) Microstructure, mechanical properties and fracture mechanism of Ti 2 AlC reinforced AZ91D composites
fabricated by stir casting. J Alloys Compd702:199–208
77. Yu W, Zhao H, Wang X, Wang L, Xiong S, Huang Z, Li S, Zhou Y, Zhai H (2018)
Synthesis and characterization of textured Ti 2 AlC reinforced magnesium composite. J Alloys
Compd730:191–195
78. Yu W, Zhao H, Hu X (2018) Anisotropic mechanical and physical properties in textured
Ti 2 AlC reinforced AZ91D magnesium composite. J Alloys Compd 732:894–901
79. Tran Q, Fuka M, Dey M, Gupta S (2019) Synthesis and characterization of novel Ti 3 SiC 2
reinforced Ni-matrix multilayered composite-based solid lubricants. Lubricants 7:110. https://
doi.org/10.3390/lubricants7120110
80. Qi F, Wang Z, Wu J, Xu H, Kou J, Zhang L (2017) Improved mechanical properties of
Al 2 O 3 ceramic by in-suit generated Ti 3 SiC 2 and TiC via hot pressing sintering. Ceram Int
43:10691–10697
81. Hu C, Zhou Y, Bao Y, Wan D (2006) Tribological properties of polycrystalline Ti 3 SiC 2 and
Al 2 O 3 -reinforced Ti 3 SiC 2 composites. J Am Ceram Soc 89:3456–3461
