Stochastic Virtual Tests for High-Temperature Ceramic Matrix Composites

被引:66
作者
Cox, Brian N. [1 ]
Bale, Hrishikesh A. [2 ]
Begley, Matthew [3 ]
Blacklock, Matthew [4 ]
Do, Bao-Chan [5 ]
Fast, Tony [6 ]
Naderi, Mehdi [5 ]
Novak, Mark [7 ]
Rajan, Varun P.
Rinaldi, Renaud G. [8 ]
Ritchie, Robert O. [2 ]
Rossol, Michael N.
Shaw, John H.
Sudre, Olivier [1 ]
Yang, Qingda [5 ]
Zok, FrankW.
Marshall, David B. [1 ]
机构
[1] Teledyne Sci Co LLC, Thousand Oaks, CA 91360 USA
[2] Univ Calif Berkeley, Dept Mat Sci & Engn, Berkeley, CA 94720 USA
[3] Univ Calif Santa Barbara, Dept Mat, Santa Barbara, CA 93106 USA
[4] RMIT Univ, Sch Aerosp Mech & Mfg Engn, Sir LawrenceWackett Aerosp Res Ctr, Melbourne, Vic 3001, Australia
[5] Univ Miami, Dept Mech & Aerosp Engn, Coral Gables, FL 33124 USA
[6] Georgia Inst Technol, Woodruff Sch Mech Engn, Atlanta, GA 30332 USA
[7] ATI Wah Chang, Albany, OR 97321 USA
[8] INSA Lyon, MATEIS CNRS UMR5510, F-69621 Villeurbanne, France
来源
ANNUAL REVIEW OF MATERIALS RESEARCH, VOL 44 | 2014年 / 44卷
关键词
stochastic properties; stochastic microstructure; FINITE-ELEMENT-METHOD; POLYCRYSTALLINE MICRO STRUCTURES; INFILTRATED SIC/SIC COMPOSITES; DIGITAL-IMAGE-CORRELATION; MONTE-CARLO SIMULATIONS; FATIGUE CRACK-GROWTH; X-RAY TOMOGRAPHY; TEXTILE COMPOSITES; BINARY MODEL; MECHANICAL-PROPERTIES;
D O I
10.1146/annurev-matsci-122013-025024
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We review the development of virtual tests for high-temperature ceramic matrix composites with textile reinforcement. Success hinges on understanding the relationship between the microstructure of continuous-fiber composites, including its stochastic variability, and the evolution of damage events leading to failure. The virtual tests combine advanced experiments and theories to address physical, mathematical, and engineering aspects of material definition and failure prediction. Key new experiments include surface image correlation methods and synchrotron-based, micrometer-resolution 3D imaging, both executed at temperatures exceeding 1,500 degrees C. Computational methods include new probabilistic algorithms for generating stochastic virtual specimens, as well as a new augmented finite element method that deals efficiently with arbitrary systems of crack initiation, bifurcation, and coalescence in heterogeneous materials. Conceptual advances include the use of topology to characterize stochastic microstructures. We discuss the challenge of predicting the probability of an extreme failure event in a computationally tractable manner while retaining the necessary physical detail.
引用
收藏
页码:479 / +
页数:10
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