正在加载图片...
1042 CARBON47(2009)Io34-1042 [14] Odeshi AG, Mucha H, Wielage B Manufacture and 20]Mei H Measurement and calculation of thermal residual characterisation of a low cost carbon fbre reinforced C/Sic stress in fiber reinforced ceramic matrix composites Compos dual matrix composite Carbon 2006: 44: 1994-2001. Sci Technol2008;68:3285-92 [15] Almaz A, Ducret D, El Guerjouma R, Reynaud P, Franciosi P, [21] Morscher GN Stress-dependent matrix cracking in 2D woven Rouby d, et al. Elastic moduli of a 2.5D CySic composite: Sic-fiber reinforced melt-infiltrated Sic matrix composites. xperimental and theoretical estimates Compos Sci Technol ompos Sci Technol 2004: 64: 1311-9 2000;60:913-25 [22] Ramakrishnan N, Arunachalam VS. Effective elastic moduli [16 Staehler JM, Mall S, Zawada LP. Frequency dependence of of porous ceramic materials. J Am Ceram Soc high-cycle fatigue behavior of CVI C/Sic at room 99376112745-52 temperature Compos Sci Technol 2003: 63: 2121-31. [23 Naslain R, Lamon J, Pailler R, Bourrat x, Guette A, [17] Boitier G, Vicens ], Chermant JL Understanding the creep anglais F. Micro/minicomposites: a useful approach to behavior of a 2. 5D CrSiC composite-l. Morphology and e design and development of non-oxide CMCs. Compos microstructure of the as-received material. Mater Sci Eng 1999:30A:537-47 2000;A279:7380 [24Lissart N, Lamon J Damage and failure in ceramic matrix [18 Mei H, Cheng LF, Zhang LT, Xu YD. Modeling the effects of al study and model. Acta Mater thermal and mechanical load cycling on a C/Sic composite in 199745(3):1025-44 oxygen/argon mixtures. Carbon 2007: 45: 2195- [25 Mei H, Cheng LF, Zhang LT, Fang P, Meng ZX, Liu CD. Real-time [19] Mei H, Cheng LF Thermal cycling response behavior of onitoring of thermal cycling damage in ceramic matrix ceramic matrix composites under load and displacement mposites under a constant stress. J Am Ceram Soc constraints. Mater Sci Eng 2008 A 486: 235-40 200790(7:213542[14] Odeshi AG, Mucha H, Wielage B. Manufacture and characterisation of a low cost carbon fibre reinforced C/SiC dual matrix composite. Carbon 2006;44:1994–2001. [15] Dalmaz A, Ducret D, El Guerjouma R, Reynaud P, Franciosi P, Rouby D, et al. Elastic moduli of a 2.5D Cf/SiC composite: experimental and theoretical estimates. Compos Sci Technol 2000;60:913–25. [16] Staehler JM, Mall S, Zawada LP. Frequency dependence of high-cycle fatigue behavior of CVI C/SiC at room temperature. Compos Sci Technol 2003;63:2121–31. [17] Boitier G, Vicens J, Chermant JL. Understanding the creep behavior of a 2. 5D Cf–SiC composite-I. Morphology and microstructure of the as-received material. Mater Sci Eng 2000;A279:73–80. [18] Mei H, Cheng LF, Zhang LT, Xu YD. Modeling the effects of thermal and mechanical load cycling on a C/SiC composite in oxygen/argon mixtures. Carbon 2007;45:2195–204. [19] Mei H, Cheng LF. Thermal cycling response behavior of ceramic matrix composites under load and displacement constraints. Mater Sci Eng 2008;A486:235–40. [20] Mei H. Measurement and calculation of thermal residual stress in fiber reinforced ceramic matrix composites. Compos Sci Technol 2008;68:3285–92. [21] Morscher GN. Stress-dependent matrix cracking in 2D woven SiC-fiber reinforced melt-infiltrated SiC matrix composites. Compos Sci Technol 2004;64:1311–9. [22] Ramakrishnan N, Arunachalam VS. Effective elastic moduli of porous ceramic materials. J Am Ceram Soc 1993;76(11):2745–52. [23] Naslain R, Lamon J, Pailler R, Bourrat X, Guette A, Langlais F. Micro/minicomposites: a useful approach to the design and development of non-oxide CMCs. Compos 1999;30A:537–47. [24] Lissart N, Lamon J. Damage and failure in ceramic matrix minicomposites: experimental study and model. Acta Mater 1997;45(3):1025–44. [25] Mei H, Cheng LF, Zhang LT, Fang P, Meng ZX, Liu CD. Real-time monitoring of thermal cycling damage in ceramic matrix composites under a constant stress. J Am Ceram Soc 2007;90(7):2135–42. 1042 CARBON 47 (2009) 1034 – 1042
<<向上翻页
©2008-现在 cucdc.com 高等教育资讯网 版权所有