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A Constitutive Law for Porous Solids with Pressure-Sensitive Matrices and a Void Nucleation Model

평균수직응력에 민감한 모재를 가진 기공체의 구성식과 기공생성모델


Abstract

A macroscopic yield criterion for porous solids with pressure-sensitive matrices modeled by Coulomb's yield criterion was obtained by generalizing Gurson's yield criterion with consideration of the hydrostatic yield stresses for a spherical thick-walled shell and by fitting the finite element results of a voided cube. The macroscopic yield criterion is valid for negative mean normal stresses as well as for positive mean normal stresses. From the yield criterion, a plastic potential function for the porous solids was derived either for plastic normality flow or for plastic non-normality flow of pressure- sensitive matrices. In addition, the elastic relation, an evolution equation of the plastic flow stress of the matrices and an evolution equation of the void volume fraction were presented to complete a set of constitutive relations. The set of constitutive relations was implemented into a finite element code ABAQUS to analyze the material behavior of rubber-toughened epoxies. The cavitation and the deformation behavior were analyzed around a crack tip under three-point bending and around notch tips under four-point bending. In the numerical analyses, the cavitation of rubber particles was considered via a stress-controlled nucleation model. The numerical results indicate that a reasonable cavitation zone can be obtained with void nucleation controlled by the macroscopic mean normal stress, and a plastic zone is smaller around a notch tip under compression than under tension. These numerical results agree well with corresponding experimental results on the cavitation and plastic zones.

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References

  1. Sternstein, S. S. and Ongchin, 1969, 'Yield Criteria for Plastic Deformation of Glassy High Polymers in General Stress Fields,' American Chemistry Society Polymer Preprint 10, pp. 1117-1124
  2. Rabinowitz, S., Ward, I. M. and Perry, J. S. C., 1970, 'The Effect of Hydrostatic Pressure on the Shear Yield Behavior of Polymers,' Journal of Materials Science, Vol. 5, pp. 29-39 https://doi.org/10.1007/BF02427181
  3. Sauer, J. A., Pae, K. D. and Bhateja, S. K., 1973, 'Influence of Pressure on Yield and Fracture in Polymers,' Journal of Macro- molecular Science-Physics, Vol. B8, pp. 631-654
  4. Spitzig, W. A., Sober, R. J. and Richmomd, O., 1975, 'Pressure Department of Yielding and Associated Volume Expansion in Tempered Matensite,' Acta Metallurgica, Vol. 19, pp. 1129-1139
  5. Spitzig, W. A., Sober, R. J. and Richmomd, O., 1976, 'The Effect of Hydrostatic pressure on the Deformation Behavior of Managing and HY-80 Steels and Its Implications for Plasticity Theory,' Metallurgical Transactions, Vol. 7A, pp. 1703-1710
  6. Spitzig, W. A. and Richmomd, O., 1979, 'Effect of Hydrostatic Pressure on the Deformation Behavior of Polyethylene and Polycarbonate in Tension and Compression,' Polymer Engineering an Science, Vol. 19., pp. 1129-1139 https://doi.org/10.1002/pen.760191602
  7. Gurson, A. L., 1975, Plastic Flow and Fracture Behavior of Ductile Materials Incorporating Void Nucleation, Growth and Interaction, Ph.D.Dissertation, Brown University
  8. Gurson, A. L., 1977, 'Continuum Theory of Ductile Rupture by Void Growth: Part I-Yield Criteria and Flow Rules for Porous Ductile Media,' Journal of Engineering Materials Technology, Vol. 99, pp. 2-15
  9. Yee, A. F. and Pearson, R. A., 1986, 'Toughening Mechanisms in Elastomer- Modified Epoxies, Part 1. Mechanical Studies,' Journal of Material Sciences, Vol. 21, pp. 2462-2474 https://doi.org/10.1007/BF01114293
  10. Pearson, R. A. and Yee, A. F., 1986, 'Toughening Mechanisms in Elastomer- Modified Epoxies,' Journal of Materials Science, Vol. 21, pp. 2475-2488 https://doi.org/10.1007/BF01114294
  11. Pearson, R. A. and Yee, A. F., 1991, 'Influence of Particle Size and Particle Size Distribution on Toughening Mechanisms in Rubber-Modified Epoxies,' Journal of Materials Science, Vol. 26, pp. 3828-3844 https://doi.org/10.1007/BF01184979
  12. Jeong, H.-Y., 1992, 'A Macroscopic Constitutive Law for Porous Solids with Pressure-Sensitive Matrices and Its Implications to Plastic Flow Localization and Crack-Tip Behavior, Ph.D. Dissertation, The University of Michigan
  13. Jeong, H.-Y. and Pan, J., 1995, 'A Macroscopic Constitutive Law for Porous Solids with Pressure-Sensitive Materices and Its Implications to Plastic Flow Localization,' International Journal of Solids Structure, Vol. 32, pp. 3669-3691 https://doi.org/10.1016/0020-7683(95)00009-Y
  14. Lazzeri, A. and Bucknall, C. B., 1993, 'Dilatational Bands in Rubber-Toughened Polymers,' Journal of Materials Science, Vol. 28, pp. 6799-6808 https://doi.org/10.1007/BF00356433
  15. Kinloch, A. J. and Young, R. J., 1983, Fracture Behavior of Polymers, Elsevier Applied Science
  16. Yu, C.-S. and Shetty, D., 1989, 'Transformation Zone Shape, Size, and Crack-Growth-Resistance (R-Curve) Behavior of Ceria-Partially-Stabilized Zirconia Polycrystals,' Journal of American Ceramic Society, Vol. 72, pp. 921-928 https://doi.org/10.1111/j.1151-2916.1989.tb06245.x
  17. Chen, I.-W., 1991, 'Model of Transformation Toughening in Brittle Materials,' Journal of American Ceramic Society, Vol. 74, pp. 2564-2572
  18. Tvergard, V., 1981, 'Influence of Voids on Shear Band Instabilities under Plane Strain Conditions,' International Journal of Fracture, Vol. 17, pp. 389-407 https://doi.org/10.1007/BF00036191
  19. Tvergaard, V., 1982, 'On Localization in Ductile Materials Containing Spherical Voids,' International Journal of Fracture, Vol. 18, pp. 237-252 https://doi.org/10.1007/BF00015686
  20. Rudnicki, J. W. and Rice, J., 1975, 'Conditions for the Localization of Deformation in Pressure-Sensitive Dilatant Materials,' Journal of the Mechanics and Physics of Solids, Vol. 23, pp. 371-394 https://doi.org/10.1016/0022-5096(75)90001-0
  21. Tandon, G. P. and Weng, G. J., 1988, 'A Theory of Particle-Reinforced Plasticity,' Transactions of the ASME, Vol. 55, pp. 126-135
  22. Argon, A. S. and Im, J., 1975, 'Separation of Second Phase Particles in Spheroidized 1045 Steel, Cu-0.6pct Cr Alloy, and Managing Steel in Plastic Straining,' Metallurgical Transactions, Vol. 6A, pp. 839-851 https://doi.org/10.1007/BF02672307
  23. Tvergaard, V., 1982, 'Influence of Void Nucleation on Ductile Shear Fracture at a Free Surface,' Journal of the Mechanics and Physics of Solids, Vol. 30, pp. 399-425 https://doi.org/10.1016/0022-5096(82)90025-4
  24. Pan, J., Saje, M. and Needleman, A., 1983, 'Localization of Deformation in Rate Sensitive Porous Plastic Solids,' International Journal of Fracture, Vol. 21, pp. 261-278 https://doi.org/10.1007/BF00942345
  25. Needleman, A. and Tvergaard, V., 1987, 'An Analysis of Ductile Rupture Modes at a Crack Tip,' Journal of the Mechanics and Physics of Solids, Vol. 35, pp. 151-183 https://doi.org/10.1016/0022-5096(87)90034-2
  26. Jeong, H.-Y. and Pan, J., 1996, 'Crack-Tip Fields for Porous Solids with Pressure-Sensitive Matrices and for Rubber-Toughened Epoxies,' Polymer Engineering and Science, Vol. 36, pp. 2306-2319
  27. Yee, A. F., Li, D. and Li, X., 1993, 'The Importance of Constraint Relief Caused by Rubber Cavitations in the Toughening of Epoxy,' Journal of Materials Science, Vol. 28, pp. 6392-6398 https://doi.org/10.1007/BF01352202