References
- Aoyagi, Y. and Hasebe, T. (2007), "New physical interpretation of incompatibility and application to dislocation substructure evolution", Key Engineering Materials, 340-341, 217-222. https://doi.org/10.4028/www.scientific.net/KEM.340-341.217
- Aoyagi, Y., Hasebe, T., Chen, J.-S. and Guan, P.-C., "Reproducing kernel based evaluation of incompatibility tensor in field theory of plasticity", Interaction and Multiscale Mechanics, An Int. J., 1(4).
- Chen, J.S., Pan, C., Wu, C.T. and Liu, W.K. (1996), "Reproducing kernel particle methods for large deformation analysis of nonlinear structures", Comput. Methods Appl. Mech. Eng., 139, 195-227. https://doi.org/10.1016/S0045-7825(96)01083-3
-
Chen, Z.Z., Kioussis, N., Ghoniem, N. and Hasebe, T. (2008), "Lubricant effect of copper nano-clusters on dislocation core in
${\alpha}$ -Fe", Physical Review B., 77-1, 014103. - Ghoniem, N.M. and Sun, L.Z. (1999), "Fast-sum method for the elastic field of three-dimensional dislocation ensembles", Phys. Rev. B60, 128-140.
- Ghoniem, N.M., Tong, S.-H. and Sun, L.Z. (1999), "Parametric dislocation dynamics: A thermodynamics-based approach to investigations of mesoscopic plastic deformation", Phys. Rev. B61, 913-927.
- Hasebe, T., Kumai, S. and Imaida, Y. (1999), "Impact behavior of FCC metals with pre-torsion strains", Mater. Process. Technol., 85, 184-187. https://doi.org/10.1016/S0924-0136(98)00288-X
- Hasebe, T. (2004a): "Continuum description of inhomogeneously deforming polycrystalline aggregate based on field theory", Mesoscopic Dynamics of Fracture Processes and Materials Strength (Proc. IUTAM Symp.), Eds. H. Kitagawa, Y. Shibutani, Kluwer, 381-390.
- Hasebe, T. (2004b), "Field theoretical multiscale polycrystal plasticity", MRS-J, 29(8), 3619-3624.
- Hasebe, T. (2006), "Multiscale crystal plasticity modeling based on field theory", CMES, 11(3), 145-155.
- Hasebe, T. (2009), "Field theory-based description of interaction field for multiple scales: Part I-theory-", Interaction and Multiscale Mechanics, 2(1), 1-14. https://doi.org/10.12989/imm.2009.2.1.001
- Kubin, L.P., Canova, G., Condat, G., Devincre, B., Pontikis, V. and Brechet, Y. (1992), "Dislocation microstructures and plastic flow: 3D simulation", Solid State Phenomena, 23 & 24, 455-472.
- Liu, W.K., Jun, S. and Zhang, Y.F. (1995), "Reproducing kernel particle methods", Int. J. Numer. Methods Fluids, 20, 1081-1106. https://doi.org/10.1002/fld.1650200824
- Phillips, R. (2001), Crystals, Defects and Microstructures, Modeling Across Scales, Cambridge.
- Yamada, M., Hasebe, T., Tomita, Y. and Onizawa, T. (2008), "Dislocation dynamics simulation on stability of high dense dislocation structure interacting with coarsening defects", Interaction and Multiscale Mechanics, 1(4).
- Yokoi, T., Takahashi, M., Maruyama, N. and Sugiyama, M. (2004), "Application of controlled Cu nanoprecipitation for improvement in fatigue properties of steels", Nippon Steel Technical Report, 381, 45-50 (in Japanese).
- Zbib, H.M., Rhee, M. and Hirth, J.P. (1998), "On plastic deformation and the dynamics of 3D dislocations", Int. J. Mech. Sci., 40, 113-127. https://doi.org/10.1016/S0020-7403(97)00043-X
Cited by
- FTMP-BASED MODELING AND SIMULATION OF MAGNESIUM vol.02, pp.03n04, 2013, https://doi.org/10.1142/S204768411350022X
- Modeling and Simulations of Experimentally-Observed Dislocation Substructures Based on Field Theory of Multiscale Plasticity (FTMP) Combined with TEM and EBSD-Wilkinson Method for FCC and BCC Poly/Single Crystals vol.55, pp.5, 2014, https://doi.org/10.2320/matertrans.M2013226
- FTMP-BASED SIMULATION OF TWIN NUCLEATION AND SUBSTRUCTURE EVOLUTION UNDER HYPERVELOCITY IMPACT vol.02, pp.03n04, 2013, https://doi.org/10.1142/S2047684113500218
- Interaction fields based on incompatibility tensor in field theory of plasticity-Part I: Theory- vol.2, pp.1, 2009, https://doi.org/10.12989/imm.2009.2.1.001