참고문헌
- Miyamoto, Y., Kaysser, W.A., Rabin, B.H., Kawasaki, A., Ford, and R.G., Functionally Graded Materials: Design, Processing and Applications. Kluwer Academic Publishers, First ed., Dordrecht. 1999.
- Pompea, W., Worch, H., Epple, M., Friess, W., Gelinsky, M., Greil, P., Hempele, U., Scharnweber, D., and Schulte, K., "Functionally Graded Materials for Biomedical Applications," Material Science and Engineering A, Vol. 362, 2003, pp. 40-60. https://doi.org/10.1016/S0921-5093(03)00580-X
- Mller, E., Draar, C., Schilz, J., and Kaysser, W.A., "Functionally Graded Materials for Sensor and Energy Applications," Material Science and Engineering, Vol. 362, 2003, pp. 17-30. https://doi.org/10.1016/S0921-5093(03)00581-1
- Hill, M.R., Carpenter, D., Paulino, G.H., Munir, Z.A., and Gibeling, J.C., "Fracture Testing of a Layered Functionally Graded Material. Fracture Resistance Testing of Monolithic and Composite Brittle Materials," ASTM STP 1409, J.A. Salem, G.D. Quinn, G.D., and M.G. Jenkins. eds., American Society for Testing and Materials, West Conshohocken, PA, 2002.
- Kidane, A., and Shukla, A., "Dynamic Constitutive Behavior of Ti/TiB FGM under Thermo Mechanical Loading," Journal of Material Science, Vol. 43, 2003, pp. 2771-2777.
- Kidane, A., and Shukla, A., "Quasi-Static and Dynamic Fracture Initiation Toughness of Ti/TiB Layered Functionally Graded Material under Thermo-Mechanical Loading," Engineering Fracture Mechanics, Vol. 77, 2010, pp. 479-491. https://doi.org/10.1016/j.engfracmech.2009.10.006
- Birman, V., and Byrd, L.W., "Modeling and Analysis of Functionally Graded Materials and Structures," Applied Mechanics Reviews, Vol. 60, 2007, pp. 195-216. https://doi.org/10.1115/1.2777164
- Weng, G.J., "Effective Bulk Moduli of Two Functionally Graded Composites," Acta Mechanica, Vol. 166, 2003, pp. 57-67. https://doi.org/10.1007/s00707-003-0063-0
- Rahman, S., and Chakraborty, A., "A Stochastic Micromechanical Model for Elastic Properties of Functionally Graded Materials" Mechanics of Materials, Vol. 39, 2007, pp. 548-563. https://doi.org/10.1016/j.mechmat.2006.08.006
- Pindera, M., Aboudi, J., and Arnold, S., "Limitations of the Uncoupled, RVE-Based Micromechanical Approach in the Analysis of Functionally Graded Composites," Mechanics of Materials, Vol. 20, 1995, pp. 77-94. https://doi.org/10.1016/0167-6636(94)00052-2
- NFang, X. Hu, Q.C., and Huang, W.H., "Determination of Dynamic Effective Properties in Functionally Graded Materials," Acta Mechanica, Vol. 192, 2007, pp. 49-63. https://doi.org/10.1007/s00707-006-0440-6
- Zuiker, J., "Functionally Graded Materials: Choice of Micromechanics Model and Limitations in Property Variation," Composite Engineering, Vol. 5, 1995, pp. 807-819. https://doi.org/10.1016/0961-9526(95)00031-H
- Gasik, M., "Micromechanical Modeling of Functionally Graded Materials," Computational Material Science, Vol. 13, 1998, pp. 42-55. https://doi.org/10.1016/S0927-0256(98)00044-5
- Reiter, T., and Dvorak, G.J., "Micromechanical Models for Graded Composite Materials," Journal of Mechanics and Physics of Solids, Vol. 46, 1997, pp. 1655-1673.
- Yin, H.M., Sun, L.Z., and Paulino, G.H., "Micromechanics- Based Elastic Model for Functionally Graded Materials with Particle Interactions," Acta Materilia, Vol. 52, 2004, pp. 3535-3543. https://doi.org/10.1016/j.actamat.2004.04.007
- Yin, H.M., Paulino, G.H., Buttlar, W.G., and Sun, L.Z., "Micromechanics- Based Thermoelastic Model for Functionally Graded Particulate Materials with Particle Interactions," Journal of Mechanics and Physics of Solids, Vol. 55, 2007, pp. 132-160. https://doi.org/10.1016/j.jmps.2006.05.002
- Mori, T., and Tanaka, K., "Average Stress in Matrix and Average Elastic Energy of Materials with Misfitting Inclusions," Acta Metallurgica et Materialia, 21, 1973, pp. 571-574. https://doi.org/10.1016/0001-6160(73)90064-3
- Benveniste, Y., "A New Approach to the Application of Mori- Tanaka's Theory in Composite Materials," Mechanics of Materials, Vol. 6, 1987, pp. 147-157. https://doi.org/10.1016/0167-6636(87)90005-6
- Mura, T., "Micromechanics of Defects in Solids," Second ed., Martinus Nijhoff, Dordrecht. 1987.
- Nemat-Nasser, and Hori, M., Micromechanics: Overall Properties of Heterogeneous Materials. Elsiver, Second ed., North- Holland, Amsterdam. 1993.
- Eshelby, J.D., "The Determination of the Elastic Field of an Ellipsoidal Inclusion and Related Problems," Proceedings of the Royal Society A241, 1957, pp. 376-396.
- Yu, J., Lacy, T.E., Toghiani, H., and Pittman, C.U., "Classical Micromechanics Modeling of Nanoreinforced Composites with Carbon Nanofibers and Interphase," Journal of Composite Materials, Vol. 45, 2011, pp. 2401-2414. https://doi.org/10.1177/0021998311401092
- Yu, J., Lacy, T.E., Toghiani, H., and Pittman, C.U., "Effective Property Estimates For Composites Containing Multiple Nano- Heterogeneities: Part I Nanospheres, Nanoplatelets, and Voids," Journal of Composite Materials, Vol. 47, 2012, pp. 549-558.
- Yu, J., Lacy, T.E., Toghiani, H., and Pittman, C.U., "Effective Property Estimates for Composites Containing Multiple Nano- Heterogeneities: Part II Nanofibers & Voids," Journal of Composite Materials, Vol. 47, 2012, pp. 1273-1282.
- Parameswaran, V., and Shukla, A., "Processing and Characterization of A Model Functionally Graded Material," Journal of Material Science, Vol. 35, 2002, pp. 21-29.