Microscale Testing and Characterization Techniques for Benchmarking Crystal. . .
121
References
1. S. Ghosh, D.M. Dimiduk, Computational Methods for Microstructure-Property Relationships
(Springer, New York, NY, 2011)
2. M.P. Echlin et al., The TriBeam system: femtosecond laser ablation in situ SEM. Mater.
Charact. 100, 1–12 (2015)
3. R. Becker, S. Panchanadeeswaran, Effects of grain interactions on deformation and local
texture in polycrystals. Acta Metall. Mater. 43(7), 2701–2719 (1995)
4. N. Zhang, W. Tong, An experimental study on grain deformation and interactions in an Al0.5% Mg multicrystal. Int. J. Plast. 20(3), 523–542 (2004)
5. K.-S. Cheong, E.P. Busso, Effects of lattice misorientations on strain heterogeneities in FCC
polycrystals. J. Mech. Phys. Solids 54(4), 671–689 (2006)
6. S.R. Kalidindi, A. Bhattacharyya, R.D. Doherty, Detailed analyses of grain–scale plastic
deformation in columnar polycrystalline aluminium using orientation image mapping and
crystal plasticity models. Proc. R. Soc. Lond. Ser. A 460(2047), 1935–1956 (2004)
7. C. Rehrl et al., Crystal orientation changes: a comparison between a crystal plasticity finite
element study and experimental results. Acta Mater. 60(5), 2379–2386 (2012)
8. Z. Zhao et al., Investigation of three-dimensional aspects of grain-scale plastic surface
deformation of an aluminum oligocrystal. Int. J. Plast. 24(12), 2278–2297 (2008)
9. H. Lim et al., Grain-scale experimental validation of crystal plasticity finite element simulations of tantalum oligocrystals. Int. J. Plast. 60, 1–18 (2014)
10. E. Héripré et al., Coupling between experimental measurements and polycrystal finite element
calculations for micromechanical study of metallic materials. Int. J. Plast. 23(9), 1512–1539
(2007)
11. A. Bhattacharyya et al., Evolution of grain-scale microstructure during large strain simple
compression of polycrystalline aluminum with quasi-columnar grains: OIM measurements
and numerical simulations. Int. J. Plast. 17(6), 861–883 (2001)
12. T.J. Turner, S.L. Semiatin, Modeling large-strain deformation behavior and neighborhood
effects during hot working of a coarse-grain nickel-base superalloy. Model. Simul. Mater.
Sci. Eng. 19(6), 065010 (2011)
13. L. St-Pierre et al., 3D simulations of microstructure and comparison with experimental
microstructure coming from OIM analysis. Int. J. Plast. 24(9), 1516–1532 (2008)
14. A. Musienko et al., Three-dimensional finite element simulation of a polycrystalline copper
specimen. Acta Mater. 55(12), 4121–4136 (2007)
15. A. Lewis et al., Two-and three-dimensional microstructural characterization of a superaustenitic stainless steel. Mater. Sci. Eng. A 418(1–2), 11–18 (2006)
16. J. Alkemper, P. Voorhees, Quantitative serial sectioning analysis. J. Microsc. 201(3), 388–394
(2001)
17. J.E. Spowart, H.E. Mullens, B.T. Puchala, Collecting and analyzing microstructures in three
dimensions: a fully automated approach. JOM 55(10), 35–37 (2003)
18. J.E. Spowart, Automated serial sectioning for 3-D analysis of microstructures. Scr. Mater.
55(1), 5–10 (2006)
19. M.D. Uchic et al., Augmenting the 3D characterization capability of the dual beam FIB-SEM.
Microsc. Microanal. 10(S02), 1136–1137 (2004)
20. M.A. Groeber et al., 3D reconstruction and characterization of polycrystalline microstructures
using a FIB–SEM system. Mater. Charact. 57(4–5), 259–273 (2006)
21. N. Zaafarani et al., Three-dimensional investigation of the texture and microstructure below
a nanoindent in a Cu single crystal using 3D EBSD and crystal plasticity finite element
simulations. Acta Mater. 54(7), 1863–1876 (2006)
22. P.A. Shade et al., Micro-tensile testing and 3D-EBSD characterization of pure nickel multicrystals (preprint). (Air Force Research Lab Wright-Patterson AFB OH Materials and
Manufacturing DIR Metals Ceramics and Nondestructive Evaluation DIV/Metals Branch,
2011)
121
References
1. S. Ghosh, D.M. Dimiduk, Computational Methods for Microstructure-Property Relationships
(Springer, New York, NY, 2011)
2. M.P. Echlin et al., The TriBeam system: femtosecond laser ablation in situ SEM. Mater.
Charact. 100, 1–12 (2015)
3. R. Becker, S. Panchanadeeswaran, Effects of grain interactions on deformation and local
texture in polycrystals. Acta Metall. Mater. 43(7), 2701–2719 (1995)
4. N. Zhang, W. Tong, An experimental study on grain deformation and interactions in an Al0.5% Mg multicrystal. Int. J. Plast. 20(3), 523–542 (2004)
5. K.-S. Cheong, E.P. Busso, Effects of lattice misorientations on strain heterogeneities in FCC
polycrystals. J. Mech. Phys. Solids 54(4), 671–689 (2006)
6. S.R. Kalidindi, A. Bhattacharyya, R.D. Doherty, Detailed analyses of grain–scale plastic
deformation in columnar polycrystalline aluminium using orientation image mapping and
crystal plasticity models. Proc. R. Soc. Lond. Ser. A 460(2047), 1935–1956 (2004)
7. C. Rehrl et al., Crystal orientation changes: a comparison between a crystal plasticity finite
element study and experimental results. Acta Mater. 60(5), 2379–2386 (2012)
8. Z. Zhao et al., Investigation of three-dimensional aspects of grain-scale plastic surface
deformation of an aluminum oligocrystal. Int. J. Plast. 24(12), 2278–2297 (2008)
9. H. Lim et al., Grain-scale experimental validation of crystal plasticity finite element simulations of tantalum oligocrystals. Int. J. Plast. 60, 1–18 (2014)
10. E. Héripré et al., Coupling between experimental measurements and polycrystal finite element
calculations for micromechanical study of metallic materials. Int. J. Plast. 23(9), 1512–1539
(2007)
11. A. Bhattacharyya et al., Evolution of grain-scale microstructure during large strain simple
compression of polycrystalline aluminum with quasi-columnar grains: OIM measurements
and numerical simulations. Int. J. Plast. 17(6), 861–883 (2001)
12. T.J. Turner, S.L. Semiatin, Modeling large-strain deformation behavior and neighborhood
effects during hot working of a coarse-grain nickel-base superalloy. Model. Simul. Mater.
Sci. Eng. 19(6), 065010 (2011)
13. L. St-Pierre et al., 3D simulations of microstructure and comparison with experimental
microstructure coming from OIM analysis. Int. J. Plast. 24(9), 1516–1532 (2008)
14. A. Musienko et al., Three-dimensional finite element simulation of a polycrystalline copper
specimen. Acta Mater. 55(12), 4121–4136 (2007)
15. A. Lewis et al., Two-and three-dimensional microstructural characterization of a superaustenitic stainless steel. Mater. Sci. Eng. A 418(1–2), 11–18 (2006)
16. J. Alkemper, P. Voorhees, Quantitative serial sectioning analysis. J. Microsc. 201(3), 388–394
(2001)
17. J.E. Spowart, H.E. Mullens, B.T. Puchala, Collecting and analyzing microstructures in three
dimensions: a fully automated approach. JOM 55(10), 35–37 (2003)
18. J.E. Spowart, Automated serial sectioning for 3-D analysis of microstructures. Scr. Mater.
55(1), 5–10 (2006)
19. M.D. Uchic et al., Augmenting the 3D characterization capability of the dual beam FIB-SEM.
Microsc. Microanal. 10(S02), 1136–1137 (2004)
20. M.A. Groeber et al., 3D reconstruction and characterization of polycrystalline microstructures
using a FIB–SEM system. Mater. Charact. 57(4–5), 259–273 (2006)
21. N. Zaafarani et al., Three-dimensional investigation of the texture and microstructure below
a nanoindent in a Cu single crystal using 3D EBSD and crystal plasticity finite element
simulations. Acta Mater. 54(7), 1863–1876 (2006)
22. P.A. Shade et al., Micro-tensile testing and 3D-EBSD characterization of pure nickel multicrystals (preprint). (Air Force Research Lab Wright-Patterson AFB OH Materials and
Manufacturing DIR Metals Ceramics and Nondestructive Evaluation DIV/Metals Branch,
2011)
