Damage and Fracture in quasibrittle materials by Jirasek M.

By Jirasek M.

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J. Therm. , 40:949–955 (1993) 40. Flynn, J. , Supplement Volume, pp. , USA (1989) 41. Flynn, J. , Thermochimica Acta, 131:115, SPE Conf. , ANTEC88, Atlanta, GA, (Apr. , pp. 93–932 (1988) 42. , and Seferis, J. , Kinetic Analysis of High Resolution TGA Variable Heating Rate Data, J. , 47:847–856 (1993) 32 Chapter 1 - Thermoanalytical Techniques 43. Sichina, W. , Automated Stepwise Thermogravimetric Analysis, Proc. 21st North Am. Thermal Anal. Soc. , Atlanta, GA, pp. 214–217 (1992) 44. , Decomposition Kinetics Using High Resolution TGA™, Proc.

There are two types of creep: basic creep in which the specimen is under constant humidity conditions and drying creep when the specimen is dried during the period under load. Creep of a cement paste increases at a gradually decreasing rate, approaching a value several times larger than the elastic deformation. Creep is, in part, irrecoverable, as is drying shrinkage. On unloading, deformation decreases immediately due to elastic recovery. This instantaneous recovery is followed by a more gradual decrease in deformation due to creep recovery.

1:113 (1972) 14. , Ann. Chim. (Rome), 67:73 (1977) 15. Skinner, H. , Theory, Scope, and Accuracy of Calorimetric Measurements, in: Biochem. Microcalorimetry, (H. D. ), Ch. 1, Academic Press, New York (1969) 16. , J. , 29:1369 (1984) 17. Vold, M. , Anal. , 21:683 (1949) 18. White, M. , Thermochimica Acta, 74:55 (1984) 19. Wilhoit, R. , Thermodynamic Properties of Biochemical Substances, in: Biochem. Microcalorimetry, (H. D. ), Ch. 2, Academic Press, New York (1969) 20. , Compt. Rend. Hebd. Séanc.

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