正在加载图片...
2142 Journal of the American Ceramic Society-Mei et al Vol. 90. No. 7 F. Ziegler, "Acoustic Emission from Strain-Determined Sources, "Int J. Sol- a tes Submitted to Thermal Cycling. " Mater. Sci. Eng. A234-23, 774-7 hmelik. P. Lukac. J. Kiehn. L. B. Mordike. K. U. Kainer and G. T. Z-Fiber Types. Characteristics of Thermal Cycling in a Magnesi lloy Composite, Am. Ceram.Soc,88146-5302005). Shocked Discontinuous Fid K.M.Prew."Fracture Process of Thermally P. Lukac. Z. Trojanova, F. Chmelik, and J. Kiehn. "Thermal Stress Relax Sci,32,6l53-62 2-5(goes Studied by Non-Destructive Methods, "Mater. Res.Adv. S. Jeelani, "Thermal Shock 4H. Mei. L. F. Cheng. L. T. Zhang, and Y. D. Xu, "Effect of Temperature Behavior of Nicalon Fiber Sicn Ceramic Symp.Exb,49,39546602004 llekeen, J N. Amoako, H. Mahfuz, and S. Jeelani, ""Mechanical Property egradation of a Nicalon Fiber Reinforced SiNC Ceramic Matrix Composite Technol,61,2285-97(200 F Mignard, C. Olagnon, and G Fantoni -A 78. 47-85:(2007 H. Mei, L. F. Cheng. and L. T. Zhang. "Damage Mechanisms of Cl Composites Subjected to Constant Load and Thermal Cycling in Oxidizing A umics Submitted to Thermal Shock, " J. Eur. Panda. T.S. Kannan, J. Dubois. C. Olagnon, and G. Fantozzi. Ther- H. Mei. L. E cheng, and L. T. Zhang. "Thermal Cycling Damage Mecha- mal Shock and Thermal Fatigue Study of Ceramic Materials on a Newly Devel- 中mCmM,.闭到 Constraint and Oxidizing Atme oed Ascending Thermal Shock Test Equipment, "Sci. Tecno/. Adv. Mater. X. W. Yin, L. F. Cheng. L. T. Zhang, and Y. D. Xu. "Thermal Shock Behavior of 3-Dimensional C/SiC Composite " Carbon, 40. 905-10(2002) on. B. proceedings e ter. Sci. Eng, A250[ astritseas P. A. Smith and J. A. Yeomans. "Thermal Shock Fracture in Unidirectional Fibre-Reinforced Ceramic-Matrix Composites, Comp. Sci. Te Engines. Edited by w. Bunk and H. Hausner. Deutsche Keramische, Gesellschaft. Halbig. "The Oxidation Kinetics of Continuous Carbon Fibers in a 4P. K Panda. T.S. Kannan, J. Dubois. C. Olagmon and G. Fantozzi. ""Ther mal Shock and Thermal Fatigue Study of Alumina, " J. Eur. Ceram. Soc. 22. L. F. Cheng. Y D Xu. L. T. Zhang, and Q. Zhang. "Effect of Heat Treatment on the Thermal Expansion of 2D and 3D C/SiC Composites from Room Tem- F. Chmelik J Kiehn, P Lukac K. U. Kainer. and B. L Mordike.""Acoustic perature to 1400"C, Carbon 411, 1645-87(2002) Emission and Dilatometry for Non-Destructive Characterisation of Microstruc- Sw. D. Kingery, "Factors Affecting Thermal Stress Resistance of Ceramic tural Changes in Mg Based Metal Matrix Composites Submitted to Thermal Materials, J. Am. Ceran. Soc. 38 3-15(195. H. Mei, L. F. Cheng. L. T. Zhang. X. G. Luan, and J. Zhang. ""Behavior of hmelik, Z. Trojanova, J. Kiehn, P. Lukac, and K. U. Kainer, "Non-De- structive Characterization of microstructure Evolution in Mg Based metal matrix33F. Ziegler, ‘‘Acoustic Emission from Strain-Determined Sources,’’ Int. J. Sol￾ids Struct., 39, 5465–79 (2002). 34G. N. Morscher, H. M. Yun, and J. A. DiCarlo, ‘‘Matrix Cracking in 3D Orthogonal Melt-Infiltrated SiC/SiC Composites With Various Z-Fiber Types,’’ J. Am. Ceram. Soc., 88 [1] 146–53 (2005). 35K. Ogi, N. Takeda, and K. M. Prewo, ‘‘Fracture Process of Thermally Shocked Discontinuous Fibre-Reinforced Glass Matrix Composites under Tensile Loading,’’ J. Mater. Sci., 32, 6153–62 (1997). 36S. Salekeen, J. N. Amoako, H. Mahfuz, and S. Jeelani, ‘‘Thermal Shock Behavior of Nicalon Fiber SiCN Ceramic Matrix Composites,’’ Int. SAMPE Symp. Exhib., 49, 3954–66 (2004). 37S. Salekeen, J. N. Amoako, H. Mahfuz, and S. Jeelani, ‘‘Mechanical Property Degradation of a Nicalon Fiber Reinforced SiNC Ceramic Matrix Composite Under Thermal Shock Loading,’’ Comp. Struct., 78, 477–85 (2007). 38F. Mignard, C. Olagnon, and G. Fantozzi, ‘‘Acoustic Emission Monitoring of Damage Evaluation in Ceramics Submitted to Thermal Shock,’’ J. Eur. Ceram. Soc., 15, 651–3 (1995). 39P. K. Panda, T. S. Kannan, J. Dubois, C. Olagnon, and G. Fantozzi, ‘‘Ther￾mal Shock and Thermal Fatigue Study of Ceramic Materials on a Newly Devel￾oped Ascending Thermal Shock Test Equipment,’’ Sci. Technol. Adv. Mater., 3, 327–34 (2002). 40M. Busawon, B. Augustyniak, G. Fantozzi, and D. Rouby, ‘‘Relation Between Acoustic Emission and Damage Caused by Thermal Fatigue and Thermal Shocks in Structural Ceramics,’’ pp. 799–806 in Proceedings of the 2nd International Symposium on Ceramic Materials & Components for Engines. Edited by W. Bunk and H. Hausner. Deutsche Keramische, Gesellschaft, 1986. 41P. K. Panda, T. S. Kannan, J. Dubois, C. Olagnon, and G. Fantozzi, ‘‘Ther￾mal Shock and Thermal Fatigue Study of Alumina,’’ J. Eur. Ceram. Soc., 22, 2187–96 (2002). 42F. Chmelik, J. Kiehn, P. Lukac, K. U. Kainer, and B. L. Mordike, ‘‘Acoustic Emission and Dilatometry for Non-Destructive Characterisation of Microstruc￾tural Changes in Mg Based Metal Matrix Composites Submitted to Thermal Cycling,’’ Scr. Mater., 38, 81–7 (1997). 43F. Chmelik, Z. Trojanova, J. Kiehn, P. Lukac, and K. U. Kainer, ‘‘Non-De￾structive Characterization of Microstructure Evolution in Mg Based Metal Matrix Composites Submitted to Thermal Cycling,’’ Mater. Sci. Eng., A234-23, 774–7 (1997). 44F. Chmelik, P. Lukac, J. Kiehn, L. B. Mordike, K. U. Kainer, and G. T. Langdon, ‘‘Characteristics of Thermal Cycling in a Magnesium Alloy Composite,’’ Mater. Sci. Eng., A325, 320–3 (2002). 45P. Lukac, Z. Trojanova, F. Chmelik, and J. Kiehn, ‘‘Thermal Stress Relax￾ation in Mg Composites Studied by Non-Destructive Methods,’’ Mater. Res. Adv. Tech., 90, 892–5 (1999). 46H. Mei, L. F. Cheng, L. T. Zhang, and Y. D. Xu, ‘‘Effect of Temperature Gradients and Stress Levels on Damage of C/SiC Composites in Oxidizing Atmosphere,’’ Mater. Sci. Eng., A430, 314–9 (2006). 47S. Baste, ‘‘Inelastic Behaviour of Ceramic-Matrix Composites,’’ Comp. Sci. Technol., 61, 2285–97 (2001). 48H. Mei, L. F. Cheng, and L. T. Zhang, ‘‘Damage Mechanisms of C/SiC Composites Subjected to Constant Load and Thermal Cycling in Oxidizing At￾mosphere,’’ Scr. Mater., 54, 163–8 (2006). 49H. Mei, L. F. Cheng, and L. T. Zhang, ‘‘Thermal Cycling Damage Mecha￾nisms of C/SiC Composites in Displacement Constraint and Oxidizing Atmo￾sphere,’’ J. Am. Ceram. Soc., 89 [7] 2330–4 (2006). 50X. W. Yin, L. F. Cheng, L. T. Zhang, and Y. D. Xu, ‘‘Thermal Shock Behavior of 3-Dimensional C/SiC Composite,’’ Carbon, 40, 905–10 (2002). 51M. Steen, ‘‘Tensile Mastercurve of Ceramic Matrix Composites: Significance and Implications for Modeling,’’ Mater. Sci. Eng., A250 [2] 241–8 (1998). 52C. Kastritseas, P. A. Smith, and J. A. Yeomans, ‘‘Thermal Shock Fracture in Unidirectional Fibre-Reinforced Ceramic-Matrix Composites,’’ Comp. Sci. Tech￾nol., 65, 1880–90 (2005). 53M. C. Halbig, ‘‘The Oxidation Kinetics of Continuous Carbon Fibers in a Cracked Ceramic Matrix Composite’’; NASA/TM-2001-210520, June 2001. 54L. F. Cheng, Y.D Xu, L. T. Zhang, and Q. Zhang, ‘‘Effect of Heat Treatment on the Thermal Expansion of 2D and 3D C/SiC Composites from Room Tem￾perature to 14001C,’’ Carbon, 411, 1645–87 (2002). 55W. D. Kingery, ‘‘Factors Affecting Thermal Stress Resistance of Ceramic Materials,’’ J. Am. Ceram. Soc., 38, 3–15 (1955). 56H. Mei, L. F. Cheng, L. T. Zhang, X. G. Luan, and J. Zhang, ‘‘Behavior of Two-dimensional C/SiC Composites subjected to Thermal Cycling in Controlled Environments,’’ Carbon, 44, 121–7 (2006). & 2142 Journal of the American Ceramic Society—Mei et al. Vol. 90, No. 7
<<向上翻页
©2008-现在 cucdc.com 高等教育资讯网 版权所有