M-SERVE and P-SERVE
89
18. J. Zhang, M. Shenoy, D.L. McDowell, Estimating fatigue sensitivity to polycrystalline Ni-base
superalloy microstructures using a computational approach. Fatigue Fract. Eng. Mater. Struct.
30, 889–904 (2007)
19. S. Keshavarz, S. Ghosh, Multi-scale crystal plasticity finite element model approach to
modeling nickel-based superalloys. Acta Mater. 61(17), 6549–6561 (2013)
20. S. Keshavarz, S. Ghosh, Hierarchical crystal plasticity FE model for nickel-based superalloys:
sub-grain microstructures to polycrystalline aggregates. Int. J. Sol. Struct. 55, 17–31 (2015)
21. S. Ghosh, G. Weber, S. Keshavarz, Multiscale modeling of polycrystalline nickel-based
superalloys accounting for subgrain microstructures. Mech. Res. Commun. 78, 34–46 (2016)
22. S. Keshavarz, S. Ghosh, A crystal plasticity finite element model for flow stress anomalies in
Ni 3 Al single crystals. Philos. Mag. 95(24), 2639–2660 (2015)
23. S. Keshavarz, S. Ghosh, A. Reid, S. Langer, A non-Schmid crystal plasticity finite element
approach to multi-scale modeling of nickel-based superalloys. Acta Mat. 114, 106–115 (2016)
24. R. Hill, Elastic properties of reinforced solids: some theoretical principles. J. Mech. Phys.
Solids 11(5), 357–372 (1963)
25. I.M. Gitman, H. Askes, L.J. Sluys, Representative volume: existence and size determination.
Eng. Fract. Mech. 74(16), 2518–2534 (2007)
26. S. Swaminathan, S. Ghosh, N.J. Pagano, Statistically equivalent representative volume
elements for composite microstructures, Part I: without damage. J. Comput. Mater. 40(7), 583–
604 (2006)
27. S. Swaminathan, S. Ghosh, Statistically equivalent representative volume elements for composite microstructures, Part II: with interfacial debonding. J. Comput. Mater. 40(7), 605–621
(2006)
28. D. McDowell, S. Ghosh, S. Kalidindi, Representation and computational structure-property
relations of random media. JOM J. Miner. Met. Mater. Soc. 63(3), 45–51 (2011)
29. A. Bagri, G. Weber, J.C. Stinville, W. Lenthe, T. Pollock, C. Woodward, S. Ghosh,
Microstructure and property-based statistically equivalent representative volume elements for
polycrystalline Ni-based superalloys containing annealing twins. Metall. Mater. Trans. A
49(11), 5727–5744 (2018)
30. M. Pinz, G. Weber, W.C. Lenthe, M.D. Uchic, T.M. Pollock, S. Ghosh, Microstructure and
property based statistically equivalent RVEs for intragranular γ − γ ’ microstructures of Nibased superalloys. Acta Mat. 157, 245–258 (2018)
31. X. Tu, A. Shahba, J. Shen, S. Ghosh, Microstructure and property based statistically equivalent
RVEs for polycrystalline-polyphase aluminum alloys. Int. J. Plast. 115, 268–292 (2019)
32. M. Echlin, W. Lenthe, T. Pollock, Three-dimensional sampling of material structure for
property modeling and design. Int. Mater. Manuf. Innov. 3(1), 21–34 (2014)
33. M.A. Groeber, M. Jackson, DREAM.3D: a digital representation environment for the analysis
of microstructure in 3D. Integr. Mater. Manuf. Innov. 3, 5 (2014)
34. M.A. Groeber, S. Ghosh, M.D. Uchic, D.M. Dimiduk, A framework for automated analysis
and representation of 3D polycrystalline microstructures, Part 1: statistical characterization.
Acta Mat. 56(6), 1257–1273 (2008)
35. M.A. Groeber, S. Ghosh, M.D. Uchic, D.M. Dimiduk, A framework for automated analysis
and representation of 3D polycrystalline microstructures, Part 2: synthetic structure generation.
Acta Mat. 56(6), 1274–1287 (2008)
36. Y. Bhandari, S. Sarkar, M.A. Groeber, M.D. Uchic, D. Dimiduk, S. Ghosh, 3D polycrystalline
microstructure reconstruction from FIB generated serial sections for FE analysis. Comput.
Mater. Sci. 41, 222–235 (2007)
37. S. Niezgoda, D. Turner, D. Fullwood, S. Kalidindi, Optimized structure based representative
volume element sets reflecting the ensemble-averaged 2-point statistics. Acta Mat. 58, 4432–
4445 (2010)
38. D.M. Saylor, J. Fridy, B.S. El-Dasher, K.-Y. Jung, A.D. Rollett, Statistically representative 3D
microstructures based on orthogonal observation sections. Met. Mat. Trans. A 35, 1969–1979
(2004)
89
18. J. Zhang, M. Shenoy, D.L. McDowell, Estimating fatigue sensitivity to polycrystalline Ni-base
superalloy microstructures using a computational approach. Fatigue Fract. Eng. Mater. Struct.
30, 889–904 (2007)
19. S. Keshavarz, S. Ghosh, Multi-scale crystal plasticity finite element model approach to
modeling nickel-based superalloys. Acta Mater. 61(17), 6549–6561 (2013)
20. S. Keshavarz, S. Ghosh, Hierarchical crystal plasticity FE model for nickel-based superalloys:
sub-grain microstructures to polycrystalline aggregates. Int. J. Sol. Struct. 55, 17–31 (2015)
21. S. Ghosh, G. Weber, S. Keshavarz, Multiscale modeling of polycrystalline nickel-based
superalloys accounting for subgrain microstructures. Mech. Res. Commun. 78, 34–46 (2016)
22. S. Keshavarz, S. Ghosh, A crystal plasticity finite element model for flow stress anomalies in
Ni 3 Al single crystals. Philos. Mag. 95(24), 2639–2660 (2015)
23. S. Keshavarz, S. Ghosh, A. Reid, S. Langer, A non-Schmid crystal plasticity finite element
approach to multi-scale modeling of nickel-based superalloys. Acta Mat. 114, 106–115 (2016)
24. R. Hill, Elastic properties of reinforced solids: some theoretical principles. J. Mech. Phys.
Solids 11(5), 357–372 (1963)
25. I.M. Gitman, H. Askes, L.J. Sluys, Representative volume: existence and size determination.
Eng. Fract. Mech. 74(16), 2518–2534 (2007)
26. S. Swaminathan, S. Ghosh, N.J. Pagano, Statistically equivalent representative volume
elements for composite microstructures, Part I: without damage. J. Comput. Mater. 40(7), 583–
604 (2006)
27. S. Swaminathan, S. Ghosh, Statistically equivalent representative volume elements for composite microstructures, Part II: with interfacial debonding. J. Comput. Mater. 40(7), 605–621
(2006)
28. D. McDowell, S. Ghosh, S. Kalidindi, Representation and computational structure-property
relations of random media. JOM J. Miner. Met. Mater. Soc. 63(3), 45–51 (2011)
29. A. Bagri, G. Weber, J.C. Stinville, W. Lenthe, T. Pollock, C. Woodward, S. Ghosh,
Microstructure and property-based statistically equivalent representative volume elements for
polycrystalline Ni-based superalloys containing annealing twins. Metall. Mater. Trans. A
49(11), 5727–5744 (2018)
30. M. Pinz, G. Weber, W.C. Lenthe, M.D. Uchic, T.M. Pollock, S. Ghosh, Microstructure and
property based statistically equivalent RVEs for intragranular γ − γ ’ microstructures of Nibased superalloys. Acta Mat. 157, 245–258 (2018)
31. X. Tu, A. Shahba, J. Shen, S. Ghosh, Microstructure and property based statistically equivalent
RVEs for polycrystalline-polyphase aluminum alloys. Int. J. Plast. 115, 268–292 (2019)
32. M. Echlin, W. Lenthe, T. Pollock, Three-dimensional sampling of material structure for
property modeling and design. Int. Mater. Manuf. Innov. 3(1), 21–34 (2014)
33. M.A. Groeber, M. Jackson, DREAM.3D: a digital representation environment for the analysis
of microstructure in 3D. Integr. Mater. Manuf. Innov. 3, 5 (2014)
34. M.A. Groeber, S. Ghosh, M.D. Uchic, D.M. Dimiduk, A framework for automated analysis
and representation of 3D polycrystalline microstructures, Part 1: statistical characterization.
Acta Mat. 56(6), 1257–1273 (2008)
35. M.A. Groeber, S. Ghosh, M.D. Uchic, D.M. Dimiduk, A framework for automated analysis
and representation of 3D polycrystalline microstructures, Part 2: synthetic structure generation.
Acta Mat. 56(6), 1274–1287 (2008)
36. Y. Bhandari, S. Sarkar, M.A. Groeber, M.D. Uchic, D. Dimiduk, S. Ghosh, 3D polycrystalline
microstructure reconstruction from FIB generated serial sections for FE analysis. Comput.
Mater. Sci. 41, 222–235 (2007)
37. S. Niezgoda, D. Turner, D. Fullwood, S. Kalidindi, Optimized structure based representative
volume element sets reflecting the ensemble-averaged 2-point statistics. Acta Mat. 58, 4432–
4445 (2010)
38. D.M. Saylor, J. Fridy, B.S. El-Dasher, K.-Y. Jung, A.D. Rollett, Statistically representative 3D
microstructures based on orthogonal observation sections. Met. Mat. Trans. A 35, 1969–1979
(2004)
