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Halliday, D., & Resnick, R. (1966). Physics. John Wiley & Sons, Inc.
Imanian, A., & Modarres, M. (2018). A thermodynamic entropy-based damage. Assessment with
applications to prognosis and health management. Structural Health Monitoring, 17(2),
240–254.
Lemaitre, J., & Chaboche, J. L. (1985). Mechanics of solid materials. Cambridge University Press.
Lemaitre, J., & Chaboche, J. L. (1990). Mechanics of solid materials. Cambridge University Press.
Malvern, L. E. (1969). Introduction to the Mechanics of continuous medium. Prentice-Hall.
Naderi, M., Amiri, M., & Khonsari, M. M. (2009). On the thermodynamic entropy of fatigue
fracture. Proceedings of the Royal Society A: Mathematical, Physical and Engineering, 466
(2114), 423–438.
Onsager, L. (1931). Reciprocal relations in irreversible processes I. Physics Review, 37, 405–426.
Planck, M. (1900a). Über eine Verbesserung der Wienschen Spektralgleichung. Verhandlungen der
Deutschen Physikalischen Gesellschaft, 2, 202–204. Translated in ter Haar, D. (1967). “On an
Improvement of Wien’s Equation for the Spectrum” (PDF). The Old Quantum Theory.
Pergamon Press. pp. 79–81. LCCN 66029628.
Planck, M. (1900b). Zur Theorie des Gesetzes der Energieverteilung im Normalspectrum.
Verhandlungen der Deutschen Physikalischen Gesellschaft, 2, 237. Translated in ter Haar,
D. (1967). “On the Theory of the Energy Distribution Law of the Normal Spectrum” (PDF).
The Old Quantum Theory. Pergamon Press. p. 82. LCCN 66029628.
Planck, M. (1900c). Entropie und Temperatur strahlender Wärme [entropy and temperature of
radiant heat]. Annalen der Physik, 306(4), 719–737. https://doi.org/10.1002/andp.
19003060410.
Planck, M. (1900d). Über irreversible Strahlungsvorgänge [on irreversible radiation processes]
(PDF). Annalen der Physik, 306(1), 69–122. https://doi.org/10.1002/andp.19003060105.
Ramsey, N. F. (1956). Thermodynamics and statistical Mechanics at negative absolute temperatures. Physics Review, 103(1), 20.
Sharp, K., & Matschinsky, F. (2015). “Translation of Ludwig Boltzmann’s Paper, On the Relationship between the Second Fundamental Theorem of the Mechanical “Theory of Heat and
Probability Calculations Regarding the Conditions for Thermal Equilibrium” Sitzungberichte
der Kaiserlichen Akademie der Wissenschaften. Mathematisch-1031 Naturwissen Classe. Abt.
II, LXXVI 1877, pp 373–435 (Wien. Ber. 1877, 76:373–435)] 1032 Reprinted in Wiss.
Abhandlungen, Vol. II, reprint 42, p. 164–223, Barth, Leipzig, 1909” 1033, Entropy, 2015,
17, 1971–2009.
Thomson, W. (1851). On the dynamical theory of heat; with numerical results deduced from
Mr. Joule’s equivalent of a thermal unit and M. Regnault’s observations on steam. Mathematics
and Physics Papers, 1, 175–183.
Truesdell, C., & R. Toupin, R. (1960). The Classical Field Theories. In S. Flügge (Ed.), Principles
of classical mechanics and field theory/Prinzipien der Klassischen Mechanik und Feldtheorie
(pp. 226–858). Springer.
Truesdell, C., & Noll, W. (1985). The non-linear field theories of Mechanics. Springer.
Tu, K. N., & Gusak, A. M. (2019). A unified model of mean-time-to-failure for electromigration,
thermomigration, and stress-migration based on entropy production. Journal of Applied Physics, 126, 075109.
Yun, H., & Modarres, M. (2019). Measures of entropy to characterize fatigue Damage in metallic
materials. Entropy, 21(8), 804.
Ziegler, (1963). Some extremum principles in irreversible thermodynamics with application to
continuum mechanics. In I. N. Sneddon and R. Hill (Eds.), Progress in solid mechanics
(pp. 91–193). North Holland, Amsterdam.
References
113
