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Published in: Strength of Materials 4/2015

01-07-2015

Numerical Procedure of Determining the Effective Mechanical Characteristics of an Aligned Fiber Composite

Authors: S. Darya Zadeh, G. I. L’vov

Published in: Strength of Materials | Issue 4/2015

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Abstract

Effective mechanical characteristics of fibrous composites are investigated. Calculations were performed with an ANSYS commercial package. Computational investigations of the stress state of a representative cell resulted in determining the effective elastic properties of an aligned fiber composite.

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Literature
1.
go back to reference I. M. Lifshits and L. N. Rozentsveig, “Theory of elastic properties of polycrystals,” Zh. Éksper. Teoret. Fiz., 16, Issue 11, 967–980 (1946). I. M. Lifshits and L. N. Rozentsveig, “Theory of elastic properties of polycrystals,” Zh. Éksper. Teoret. Fiz., 16, Issue 11, 967–980 (1946).
2.
go back to reference V. A. Lomakin, Statistical Problems of Mechanics of Deformable Solids [in Russian], Nauka, Moscow (1980). V. A. Lomakin, Statistical Problems of Mechanics of Deformable Solids [in Russian], Nauka, Moscow (1980).
3.
go back to reference J. W. Nunziato and S. C. Cowin, “A nonlinear theory of elastic materials with voids,” Arch. Ration. Mech. Anal., 72, No. 2, 175–201 (1979). J. W. Nunziato and S. C. Cowin, “A nonlinear theory of elastic materials with voids,” Arch. Ration. Mech. Anal., 72, No. 2, 175–201 (1979).
4.
go back to reference L. P. Khoroshun and Ya. A. Vetsalo, “Theory of effective properties of ideally plastic composite materials,” Prikl. Mekh., 23, No. 1, 86–90 (1987). L. P. Khoroshun and Ya. A. Vetsalo, “Theory of effective properties of ideally plastic composite materials,” Prikl. Mekh., 23, No. 1, 86–90 (1987).
5.
go back to reference T. D. Shermergor, Theory of Elasticity of Microheterogeneous Media [in Russian], Nauka, Moscow (1977). T. D. Shermergor, Theory of Elasticity of Microheterogeneous Media [in Russian], Nauka, Moscow (1977).
6.
go back to reference G. A. Vanin, Micromechanics of Composite Materials [in Russian], Naukova Dumka, Kiev (1985). G. A. Vanin, Micromechanics of Composite Materials [in Russian], Naukova Dumka, Kiev (1985).
7.
go back to reference M. J. Beran, Statistical Continuum Theories, Interscience Publishers, New York (1968). M. J. Beran, Statistical Continuum Theories, Interscience Publishers, New York (1968).
8.
go back to reference J. J. Hermans, “The elastic properties of fiber reinforced materials when the fibers are aligned,” Proc. Koninkl. Nederl. Akad. Wetenschap., B70, No. 1, 1–9 (1967). J. J. Hermans, “The elastic properties of fiber reinforced materials when the fibers are aligned,” Proc. Koninkl. Nederl. Akad. Wetenschap., B70, No. 1, 1–9 (1967).
9.
go back to reference S. Schmauder and L. Mishnaevsky, Micromechanics and Nanosimulation of Metals and Composites, Springer-Verlag, Berlin–Heidelberg (2009). S. Schmauder and L. Mishnaevsky, Micromechanics and Nanosimulation of Metals and Composites, Springer-Verlag, Berlin–Heidelberg (2009).
10.
go back to reference I. V. Andrianov, V. V. Danishevs’kyy, A. Guillet, and P. Pareige, “Effective properties and micromechanical response of filamentary composite wires under longitudinal shear,” J. Eur. J. Mech. A/Solids, 24, 195–206 (2005).CrossRef I. V. Andrianov, V. V. Danishevs’kyy, A. Guillet, and P. Pareige, “Effective properties and micromechanical response of filamentary composite wires under longitudinal shear,” J. Eur. J. Mech. A/Solids, 24, 195–206 (2005).CrossRef
11.
go back to reference H. R. Jahedmotlagh, M. R. Nooban, and M. A. Eshraghee, ANSYS, Tehran University (2006). H. R. Jahedmotlagh, M. R. Nooban, and M. A. Eshraghee, ANSYS, Tehran University (2006).
12.
go back to reference S. Darya Zadeh, “Numerical procedure of determining the effective characteristics of aligned fiber composites,” Vestn. NTU “KhPI,” 58, 71–77 (2013). S. Darya Zadeh, “Numerical procedure of determining the effective characteristics of aligned fiber composites,” Vestn. NTU “KhPI,” 58, 71–77 (2013).
Metadata
Title
Numerical Procedure of Determining the Effective Mechanical Characteristics of an Aligned Fiber Composite
Authors
S. Darya Zadeh
G. I. L’vov
Publication date
01-07-2015
Publisher
Springer US
Published in
Strength of Materials / Issue 4/2015
Print ISSN: 0039-2316
Electronic ISSN: 1573-9325
DOI
https://doi.org/10.1007/s11223-015-9687-2

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