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51649136061
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The Micromechanics of Fatigue Crack Growth at 25 °C in Ti-6Al-4V Reinforced with SCS-6 Fibers
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4
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6044251037
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Crack Bridging Effects in Notch Fatigue of SCS-6/Timetal 21S Composite Laminates
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ASTM Special Technical Publication, eds. W.S. Johnson, J.M. Larsen, and B.N. Cox, American Society for Testing and Materials, Philadelphia, PA
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Crack Growth in Alloy 718 under Thermal-Mechanical Cycling
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H. Sehitoglu and S.Y. Zamrik, Editor, American Society of Mechanical Engineers, New York
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Heil, M. L., Nicholas, T., and Haritos, G. K., "Crack Growth in Alloy 718 Under Thermal-Mechanical Cycling," Thermal Stress, Materials Deformation and Thermo-Mechanical Fatigue, H. Sehitoglu and S.Y. Zamrik, Editor, American Society of Mechanical Engineers, New York, 1987, pp. 23-29.
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0021939168
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A Model for Creep/Fatigue Interactions in Alloy 718
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ASTM STP 868, ed. M.F. Kanninen and A.T. Hopper, American Society for Testing and Materials
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Nicholas, T., Weerasooriya, T., and Ashbaugh, N. E. "A Model for Creep/Fatigue Interactions in Alloy 718," Fracture Mechanics: Sixteenth Symposium, ASTM STP 868, ed. M.F. Kanninen and A.T. Hopper, American Society for Testing and Materials, 1985, pp. 167-180
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8
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0025507133
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Investigation of Creep/Fatigue Interaction on Crack Growth in a Titanium Aluminide Alloy
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Mall, S., Staubs, E. A., and Nicholas, T., "Investigation of Creep/Fatigue Interaction on Crack Growth in a Titanium Aluminide Alloy," Journal of Engineering Materials and Technology, Vol. 112, 1990, pp. 435-441.
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9
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0026726982
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Elevated Temperature Crack Growth in Aircraft Engine Materials
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Vol. ed. M.R. Mitchell and R.W. Landgraf, American Society of Testing and Materials
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Nicholas, T. and Mail, S. "Elevated Temperature Crack Growth in Aircraft Engine Materials," Advances in Fatigue Lifetime Predictive Techniques, Vol. ed. M.R. Mitchell and R.W. Landgraf, American Society of Testing and Materials, 1992, pp. 143-157
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Air Force Institute of Technology, Wright-Patterson AFB, Ohio, Ph.D. Thesis
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Pernot, J. J., "Crack Growth Rate Modeling of a Titanium-Aluminide Alloy Under Thermal-Mechanical Cycling," Air Force Institute of Technology, Wright-Patterson AFB, Ohio, Ph.D. Thesis, 1991.
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Crack Growth Rate Modeling of a Titanium-Aluminide Alloy under Thermal-Mechanical Cycling
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Pernot, J.J.1
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11
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0028369757
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Modeling Thermomechanical Fatigue Crack Growth Rates in Ti-24Al-11Nb
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Pernot, J. J., Nicholas, T., and Mall, S., "Modeling Thermomechanical Fatigue Crack Growth Rates in Ti-24Al-11Nb," International Journal of Fatigue, Vol. 16, No. 2, 1994, pp. 111-122.
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Pernot, J.J.1
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6044222197
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NASA - Johnson Space Center, Technical Memorandum, NASA JSC 32171, August
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Dao, T. X. and Mettu, S. R., "Analysis of an Edge-Cracked Specimen Subjected to Rotationally-Constrained End Displacements," NASA - Johnson Space Center, Technical Memorandum, NASA JSC 32171, August, 1991.
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Analysis of an Edge-Cracked Specimen Subjected to Rotationally-Constrained End Displacements
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Dao, T.X.1
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14
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0028392808
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Stress Intensity Factor and Compliance Solutions for a Single Edge Notched Specimen with Clamped Ends
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Blatt, D., John, R., and Coker, D., "Stress Intensity Factor and Compliance Solutions for a Single Edge Notched Specimen with Clamped Ends," Engineering Fracture Mechanics, Vol. 47, No: 4, 1994, pp. 521-532.
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University of Dayton Research Institute, Technical Report, UNR-TR-88-138
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6044262183
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A Methodology for Thermomechanical Fatigue Crack Growth Testing of Metal Matrix Composites
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Frequency, Temperature, and Environmental Effects on Fatigue Crack Growth in Ti3Al
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ed. H. Kitagawa and T. Tanaka, Materials and Components Engineering Publications LTD, Birmingham UK
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Balsone, S. J., Maxwell, D. C, Khobaib, M., and Nicholas, T. "Frequency, Temperature, and Environmental Effects on Fatigue Crack Growth in Ti3Al," Fatigue 90, Vol. II, ed. H. Kitagawa and T. Tanaka, Materials and Components Engineering Publications LTD, Birmingham UK, 1990, pp. 1173-1178
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0026855053
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Frequency and Hold-Time Effects on Crack Growth of Ti-24Al-11Nb at High Temperature
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Parida, B. K. and Nicholas, T., "Frequency and Hold-Time Effects on Crack Growth of Ti-24Al-11Nb at High Temperature," Material Science Engineering, Vol. A153, 1992, pp. 493-498.
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Effect of Frequency on Fatigue Crack Growth Rate of Inconel 718 at High Temperature
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Cyclic Behavior of Unidirectional and Cross-ply Titanium Matrix Composites
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Fatigue Crack Propagation in Ti-6242 as a Function of Temperature and Waveform
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A Mechanistic-based Thermomechanical Fatigue Life Prediction Model for Metal Matrix Composites
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The Statistical Nature of Fatigue Crack Propagation
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