Computational Micromechanics Modeling of Polycrystalline Superalloys. . .
163
62. J. Segurado, J. Llorca, Simulation of the deformation of polycrystalline nanostructured Ti by
computational homogenization. Comput. Mater. Sci. 76, 3–11 (2013)
63. J. Segurado, R.A. Lebensohn, J. Llorca, Computational homogenization of polycrystals. Adv.
Appl. Mech. 51, 1–114 (2018). Elsevier
64. M. Shenoy, J. Zhang, D. McDowell, Estimating fatigue sensitivity to polycrystalline ni-base
superalloy microstructures using a computational approach. Fatigue Fract. Eng. Mater. Struct.
30(10), 889–904 (2007)
65. M. Shenoy, Y. Tjiptowidjojo, D. McDowell, Microstructure-sensitive modeling of polycrystalline {IN} 100. Int. J. Plast. 24(10), 1694–1730 (2008). Special issue in honor of Jean-Louis
Chaboche
66. I.N. Sneddon, The relation between load and penetration in the axisymmetric boussinesq
problem for a punch of arbitrary profile. Int. J. Eng. Sci. 3(1), 47–57 (1965)
67. R. Soler, J.M. Molina-Aldareguia, J. Segurado, J. Llorca, Effect of misorientation on the
compression of highly anisotropic single-crystal micropillars. Adv. Eng. Mater. 14(11), 1004–
1008 (2012)
68. Y.S. Song, M.R. Lee, J.T. Kim, Effect of grain size for the tensile strength and the low cycle
fatigue at elevated temperature of alloy 718 cogged by open die forging press. in Superalloys
718, 625, 706 and Derivatives, ed. by E.A. Loria (TMS, Warrendale, 2005), pp. 539–549
69. C. Sweeney, P. McHugh, J. McGarry, S. Leen, Micromechanical methodology for fatigue in
cardiovascular stents. Int. J. Fatigue 44, 202–216 (2012)
70. C.A. Sweeney, B. O’Brien, P.E. McHugh, S.B. Leen, Experimental characterisation for
micromechanical modelling of CoCr stent fatigue. Biomaterials 35(1), 36–48 (2014)
71. C. Sweeney, B. O’Brien, F. Dunne, P. McHugh, S. Leen, Micro-scale testing and micromechanical modelling for high cycle fatigue of CoCr stent material. J. Mech. Behav. Biomed.
Mater. 46, 244–260 (2015)
72. C. Tome, G. Canova, U. Kocks, N. Christodoulou, J. Jonas, The relation between macroscopic
and microscopic strain hardening in F.C.C. polycrystals. Acta Metall. 32(10), 1637–1653
(1984)
73. M.D. Uchic, D.M. Dimiduk, J.N. Florando, W.D. Nix, Sample dimensions influence strength
and crystal plasticity. Science 305(5686), 986–989 (2004)
74. V. Wan, D. MacLachlan, F. Dunne, A stored energy criterion for fatigue crack nucleation in
polycrystals. Int. J. Fatigue 68, 90–102 (2014)
75. V. Wan, J. Jiang, D. MacLachlan, F. Dunne, Microstructure-sensitive fatigue crack nucleation
in a polycrystalline Ni superalloy. Int. J. Fatigue 90, 181–190 (2016)
76. L. Xiao, D. Chen, M. Chaturvedi, Shearing of γ ” precipitates and formation of planar slip
bands in inconel 718 during cyclic deformation. Scr. Mater. 52(7), 603–607 (2005)
77. C. Zambaldi, C. Zehnder, D. Raabe, Orientation dependent deformation by slip and twinning
in magnesium during single crystal indentation. Acta Mater. 91, 267–288 (2015)
163
62. J. Segurado, J. Llorca, Simulation of the deformation of polycrystalline nanostructured Ti by
computational homogenization. Comput. Mater. Sci. 76, 3–11 (2013)
63. J. Segurado, R.A. Lebensohn, J. Llorca, Computational homogenization of polycrystals. Adv.
Appl. Mech. 51, 1–114 (2018). Elsevier
64. M. Shenoy, J. Zhang, D. McDowell, Estimating fatigue sensitivity to polycrystalline ni-base
superalloy microstructures using a computational approach. Fatigue Fract. Eng. Mater. Struct.
30(10), 889–904 (2007)
65. M. Shenoy, Y. Tjiptowidjojo, D. McDowell, Microstructure-sensitive modeling of polycrystalline {IN} 100. Int. J. Plast. 24(10), 1694–1730 (2008). Special issue in honor of Jean-Louis
Chaboche
66. I.N. Sneddon, The relation between load and penetration in the axisymmetric boussinesq
problem for a punch of arbitrary profile. Int. J. Eng. Sci. 3(1), 47–57 (1965)
67. R. Soler, J.M. Molina-Aldareguia, J. Segurado, J. Llorca, Effect of misorientation on the
compression of highly anisotropic single-crystal micropillars. Adv. Eng. Mater. 14(11), 1004–
1008 (2012)
68. Y.S. Song, M.R. Lee, J.T. Kim, Effect of grain size for the tensile strength and the low cycle
fatigue at elevated temperature of alloy 718 cogged by open die forging press. in Superalloys
718, 625, 706 and Derivatives, ed. by E.A. Loria (TMS, Warrendale, 2005), pp. 539–549
69. C. Sweeney, P. McHugh, J. McGarry, S. Leen, Micromechanical methodology for fatigue in
cardiovascular stents. Int. J. Fatigue 44, 202–216 (2012)
70. C.A. Sweeney, B. O’Brien, P.E. McHugh, S.B. Leen, Experimental characterisation for
micromechanical modelling of CoCr stent fatigue. Biomaterials 35(1), 36–48 (2014)
71. C. Sweeney, B. O’Brien, F. Dunne, P. McHugh, S. Leen, Micro-scale testing and micromechanical modelling for high cycle fatigue of CoCr stent material. J. Mech. Behav. Biomed.
Mater. 46, 244–260 (2015)
72. C. Tome, G. Canova, U. Kocks, N. Christodoulou, J. Jonas, The relation between macroscopic
and microscopic strain hardening in F.C.C. polycrystals. Acta Metall. 32(10), 1637–1653
(1984)
73. M.D. Uchic, D.M. Dimiduk, J.N. Florando, W.D. Nix, Sample dimensions influence strength
and crystal plasticity. Science 305(5686), 986–989 (2004)
74. V. Wan, D. MacLachlan, F. Dunne, A stored energy criterion for fatigue crack nucleation in
polycrystals. Int. J. Fatigue 68, 90–102 (2014)
75. V. Wan, J. Jiang, D. MacLachlan, F. Dunne, Microstructure-sensitive fatigue crack nucleation
in a polycrystalline Ni superalloy. Int. J. Fatigue 90, 181–190 (2016)
76. L. Xiao, D. Chen, M. Chaturvedi, Shearing of γ ” precipitates and formation of planar slip
bands in inconel 718 during cyclic deformation. Scr. Mater. 52(7), 603–607 (2005)
77. C. Zambaldi, C. Zehnder, D. Raabe, Orientation dependent deformation by slip and twinning
in magnesium during single crystal indentation. Acta Mater. 91, 267–288 (2015)
