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Articles

Effect of machining parameters on the milling process of 2.5D C/SiC ceramic matrix composites

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References

  • Cao, X.; Lin, B.; Zhang, X. (2013) A study on grinding surface waviness of woven ceramic matrix composites. Applied Surface Science, 270: 503–512.
  • Cong, W.L.; Pei, Z.J.; Deines, T.W.; Srivastava, A. (2012) Rotary ultrasonic machining of CFRP composites: A study on power consumption. Ultrasonics, 52(8): 1030–1037.
  • Diaz, O.G.; Axinte, D.A. (2017) Towards understanding the cutting and fracture mechanism in ceramic matrix composites. International Journal of Machine Tools and Manufacture, 118: 12–25.
  • Ding, K.; Fu, Y.; Su, H.; Chen, Y.; Yu, X.; Ding, G. (2014) Experimental studies on drilling tool load and machining quality of C/SiC composites in rotary ultrasonic machining. Journal of Materials Processing Technology, 214(12): 2900–2907.
  • Du, J.; Ming, W.; Ma, J.; He, W.; Cao, Y.; Li, X.; Liu, K. (2018) New observations of the fiber orientations effect on machinability in grinding of C/SiC ceramic matrix composite. Ceramics International, 44(12): 13916–13928.
  • Feng, P.; Wang, J.; Zhang, J.; Zheng, J. (2017) Drilling induced tearing defects in rotary ultrasonic machining of C/SiC composites. Ceramics International, 43(1): 791–799.
  • Fujihara, K.; Ohshiba, K.; Komatsu, T.; Ueno, M.; Ohmori, H.; Bandyopadhyay, B.P. (1997) Precision surface grinding characteristics of ceramic matrix composites and structural ceramics with electrolytic in-process dressing. Machining Science and Technology, 1(1): 81–94.
  • Isbilir, O.; Ghassemieh, E. (2013) Comparative study of tool life and hole quality in drilling of CFRP/titanium stack using coated carbide drill. Machining Science and Technology, 17(3): 380–409.
  • Kaczmar, J.W.; Pietrzak, K.; Włosiński, W. (2006) The production and application of metal matrix composite materials. Journal of Materials Processing Technology, 106(1–3): 58–67.
  • Krenkel, W.; Berndt, F. (2005) C/C–SiC composites for space applications and advanced friction systems. Materials Science and Engineering: A, 412(1–2): 177–181.
  • Krishnaraj, V.; Prabukarthi, A.; Ramanathan, A.; Elanghovan, N.; Kumar, M.S.; Zitoune, R.; Davim, J.P. (2012) Optimization of machining parameters at high speed drilling of carbon fiber reinforced plastic (CFRP) laminates. Composites Part B: Engineering, 43(4): 1791–1799.
  • Li, Z.C.; Jiao, Y.; Deines, T.W.; Pei, Z.J.; Treadwell, C. (2005) Rotary ultrasonic machining of ceramic matrix composites: Feasibility study and designed experiments. International Journal of Machine Tools and Manufacture, 45(12–13): 1402–1411.
  • Liu, Q.; Huang, G.; Fang, C.; Cui, C.; Xu, X. (2017) Experimental investigations on grinding characteristics and removal mechanisms of 2D–Cf/C-SiC composites based on reinforced fiber orientations. Ceramics International, 43(17): 15266–15274.
  • Liu, Q.; Huang, G.; Xu, X.; Fang, C.; Cui, C. (2018) Influence of grinding fiber angles on grinding of the 2D–Cf/C–SiC composites. Ceramics International, 44(11): 12774–12782.
  • Liu, Y.; Wang, C.; Li, W.; Zhang, L.; Yang, X.; Cheng, G.; Zhang, Q. (2014) Effect of energy density and feeding speed on micro-hole drilling in C/SiC composites by picosecond laser. Journal of Materials Processing Technology, 214(12): 3131–3140.
  • Maegawa, S.; Morikawa, Y.; Hayakawa, S.; Itoigawa, F.; Nakamura, T. (2016) Mechanism for changes in cutting forces for down-milling of unidirectional carbon fiber reinforced polymer laminates: Modeling and experimentation. International Journal of Machine Tools and Manufacture, 100: 7–13.
  • Mei, J.; Diaz, O.G.; Axinte, D.A. (2017) An approach on capturing the influence of the stochasticity of fibre distributions for modelling the variability of cutting forces in composite materials. Composites Part B: Engineering, 125: 27–38.
  • Naslain, R.R. (2005) SiC‐matrix composites: Nonbrittle ceramics for thermo‐structural application. International Journal of Applied Ceramic Technology, 2(2): 75–84.
  • Phapale, K.; Ahire, A.; Singh, R. (2018) Experimental characterization and finite element modeling of critical thrust force in CFRP drilling. Machining Science and Technology, 22(2): 249–270.
  • Quemard, L.; Rebillat, F.; Guette, A.; Tawil, H. (2007) Self-healing mechanisms of a SiC fiber reinforced multi-layered ceramic matrix composite in high pressure steam environments. Journal of the European Ceramic Society, 27(4): 2085–2094.
  • Rajasekaran, T.; Palanikumar, K.; Vinayagam, B.K. (2011) Application of fuzzy logic for modeling surface roughness in turning CFRP composites using CBN tool. Production Engineering, 5(2): 191–199.
  • Schmidt, S.; Beyer, S.; Knabe, H.; Immich, H.; Meistring, R.; Gessler, A. (2004) Advanced ceramic matrix composite materials for current and future propulsion technology applications. Acta Astronautica, 55(3-9): 409–420.
  • Su, Y.; Jia, Z.; Niu, B.; Bi, G. (2017) Size effect of depth of cut on chip formation mechanism in machining of CFRP. Composite Structures, 164: 316–327.
  • Tong, Y.G.; Bai, S.X.; Zhang, H.; Ye, Y.C. (2012). Effect of C/C preform density on microstructure and mechanical properties of C/C–SiC composites prepared by alloyed reactive melt infiltration. Materials Science and Technology, 28(12), 1505–1512.
  • WANG, H.B.; Zhang, W.H.; Xu, Y.J.; Zeng, Q.F. (2008) Numerical computing and experimental validation of effective elastic properties of 2D multilayered C/SiC composites. Materials Science and Technology, 24(11): 1385–1398.
  • Wang, Z.P.; Huang, J.H.; Zhang, H., Zhao, X.K. (2011) Reactive composite brazing of Cf/SiC composites to Ti alloy with (Ag–6Al)+ Ti + C composite filler materials. Materials Science and Technology, 27(1): 49–52.
  • Wu, Q.; Xu, W.; Zhang, L. (2018) A micromechanics analysis of the material removal mechanisms in the cutting of ceramic particle reinforced metal matrix composites. Machining Science and Technology, 22(4): 638–651.
  • Zitoune, R.; Krishnaraj, V.; Almabouacif, B.S.; Collombet, F.; Sima, M.; Jolin, A. (2012) Influence of machining parameters and new nano-coated tool on drilling performance of CFRP/aluminium sandwich. Composites Part B: Engineering, 43(3): 1480–1488.

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