Voir la notice de l'article provenant de la source Math-Net.Ru
[1] Kawai M., “A comparative study of anisotropic creep theories”, Nuclear Engineering and Design, 152:1–3 (1994), 121–133 | DOI
[2] Kawai M., “Creep hardening rule under multiaxial repeated stress changes”, JSME International Journal. Series A, 38:2 (1995), 201–212
[3] Rubin M. B., Bodner S. R., “An incremental elastic viscoplastic theory indicating a reduced modulus for nonproportional buckling”, Int. J. Solids and Struct., 32:20 (1995), 2967–2987 | DOI | Zbl
[4] Yang X. J., “Constitutive description of temperature-dependent nonproportional cyclic viscoelasticity”, J. Eng. Mater. and Technol., 119:1 (1997), 12–19 | DOI
[5] Klebanov J. M., “Constitutive equations of creep under changing multiaxial stresses”, European Journal of Mechanics A/Solids, 18:3 (1999), 433–442 | DOI | Zbl
[6] Basuroychowdhury I. N., Voyiadjis G. Z., “A multiaxial cyclic plasticity model for non-proportional loading cases”, International Journal of Plasticity, 149 (1998), 855–870 | DOI
[7] Saleeb A. F., Arnold S. M., Castelli M. G. et al., “A general hereditary multimechanism-based deformation model with application to the viscoelastoplastic response of titanium alloys”, International Journal of Plasticity, 17:10 (2001), 1305–1350 | DOI | Zbl
[8] Chen G. G., Hsu T. R., “A mixed explicit-implicit (EI) algorithm for creep stress analysis”, International Journal for Numerical Methods in Engineering, 26 (1988), 511–524 | DOI | Zbl
[9] Ladeverze P., Nonlinear computational structural mechanics : new approaches and non-incremental methods of calculation, Springer, New York, 1999
[10] Belleneger E., Bussy P., “Phenomenological modeling and numerical simulation of different modes of creep damage evolution”, International Journal of Solids and Structures, 38:4 (2001), 577–604 | DOI
[11] Allix O., Vidal P., “A new multi-solution approach suitable for structural identification problems”, Computer Methods in Appl. Mechanics and Engineering, 191:25 (2002), 2727–2758 | DOI | MR | Zbl
[12] Klebanov Ya. M., “Opredelyayuschie uravneniya polzuchesti pri slozhnom nagruzhenii”, Izvestiya vuzov. Mashinostroenie, 1987, no. 3, 7–11
[13] Klebanov Ya. M., “Model polzuchesti sredy pri slozhnom nagruzhenii, uchityvayuschem nachalnuyu anizotropiyu i vid napryazhennogo sostoyaniya”, Prikladnye problemy prochnosti i plastichnosti, 46 (1990), 102–108
[14] Trampczynski W., Mroz Z., “Anisotropic hardening model and its application to cyclic loading”, International Journal of Plasticity, 8 (1992), 925–949 | DOI
[15] Kachanov L. M., Nekotorye voprosy polzuchesti, Fizmatgiz, M., 1960
[16] Boyle J. T., Spence J., Stress analysis for creep, Butterworths, London, 1983
[17] Samarin Yu. P., Klebanov Ya. M., Obobschennye modeli v teorii polzuchesti konstruktsii, SamGTU, Samara, 1994
[18] Samarin Yu. P., System analysis for creep in materials and structures, World Federation Publishers, Atlanta, 1996 | MR | Zbl