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0040703846
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Southwest Research Institute, San Antonio
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For a discussion of the characteristics of the various impact regimes, see, for example, the course notes for, A Short Course on Penetration Mechanics by J. S. Wilbeck, C. E. Anderson, A. B. Wenzel, P. S. Westine & U. S. Lindholm, (Southwest Research Institute, San Antonio).
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B. R. Lawn, "Partial Cone Crack Formation in a Brittle Material Loaded with a Sliding Spherical Indenter," Proc. Roy. Soc. 299, 307 (1967).
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M. L. Wilkins, "Armor Penetration Phenomena," Third Progress Report of Light Armor Program, Lawrence Radiation Laboratory Report (July, 1968); Fourth Progress Report UCRL-50694 (1969); Fifth Progress Report UCRL-50980 (1971).
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10See A. M. Rajandran and W. H. Cook, "A Comprehensive Review of Modeling of Impact Damage in Ceramics," AFATL-TR-88-143 (1988), p.32.
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Z. Rosenberg, D. Yaziv, Y. Yeshurum, S. J. Bless, "Shear strength of shock loaded alumina as determined with longitudinal and transverse manganin gauges,: J. Appl. Phys. 62, 1120 (1987).
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R. Bianchi, et al, "Experimental Simulation of Asteroidal Fragmentation by Macroscopic Hypervelocity Impacts Against Free Falling Bodies," Astron. Astrophys. 139, 1 (1984).
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R. Arrowood and J. Lankford, "Dynamic charaterization of an alumina ceramic," Southwest Res. Inst. Rpt. SwRI-6724, San Antonio, TX, 1982; G. R. Johnson, T. J. Holmlquist, H. Lankford, C. E. Anderson, J.Walker, "A computational Constitutive Model and Test Data for Ceramics Sujected to Large Stains, High Strain rates and high pressure, "Final Report, DE-AC04-87AL-42550, Los Alamos National Laboratory, 1990.
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