50
S. P. Donegan and M. A. Groeber
4. A. Jain, S.P. Ong, G. Hautier, W. Chen, W.D. Richards, S. Dacek, S. Cholia, D. Gunter, D.
Skinner, G. Ceder, K.A. Persson, Commentary: the materials project: a materials genome
approach to accelerating materials innovation. APL Mater 1(1) (2013). https://doi.org/10.1063/
1.4812323
5. J. Ahrens, B. Gevecki, C. Law, ParaView: an end-user tool for large data visualization, in
Visualization Handbook, (Elsevier, Amsterdam, 2005)
6. Applications. (Scientific Forming Technologies Corporation) [Online]. Available: https://
www.deform.com/applications/. Accessed Mar 2019
7. Casting Applications. (ESI Group) [Online]. Available: https://www.esi-group.com/softwaresolutions/virtual-manufacturing/casting/applications. Accessed Mar 2019
8. Abaqus Unified FEA. (Dassault Systemes) [Online]. Available: https://www.3ds.com/
products-services/simulia/products/abaqus/. Accessed Mar 2019
9. ANSYS. (ANSYS) [Online]. Available: https://www.ansys.com/. Accessed Mar 2019
10. Albany. (Sandia National Laboratories, Center for Computing Research) [Online]. Available:
https://cfwebprod.sandia.gov/cfdocs/CompResearch/templates/insert/project.cfm?proj=28.
Accessed Mar 2019
11. A.G. Salinger, R.A. Bartlett, A.M. Bradley, Q. Chen, I.P. Demeshko, X. Gao, G.A. Hansen, A.
Mota, R.P. Muller, E. Nielsen, J.T. Ostien, R.P. Pawlowski, M. Perego, E.T. Phipps, W. Sun,
I.K. Tezaur, Albany: using component-based design to develop a flexible, generic multiphysics
analysis code. Int J Multiscale Comput Eng 14(4), 415–438 (2016). https://doi.org/10.1615/
IntJMultCompEng.2016017040
12. MOOSE: Multiphysics Object Oriented Simulation Environment. (Idaho National Laboratory)
[Online]. Available: https://mooseframework.org/. Accessed Mar 2019
13. D. Gaston, C. Newman, G. Hansen, D. Lebrun-Grandie, MOOSE: A parallel computational
framework for coupled systems of nonlinear equations. Nucl. Eng. Des. 239(10), 1768–1778
(2009)
14. H. Moulinec, P. Suquet, A numerical method for computing the overall response of nonlinear
composites with complex microstructure. Comput. Methods Appl. Mech. Eng. 157(1–2), 69–
94 (1998). https://doi.org/10.1016/S0045-7825(97)00218-1
15. J.C. Michel, H. Moulinec, P. Suquet, A computational scheme for linear and non-linear
composites with arbitrary phase contrast. Numer Methods Eng 52(1–2), 139–160 (2001).
https://doi.org/10.1002/nme.275
16. S.P. Donegan, A.D. Rollett, Simulation of residual stress and elastic energy density in thermal
barrier coatings using fast Fourier transforms. Acta Mater. 96, 212–228 (2015). https://doi.org/
10.1016/j.actamat.2015.06.019
17. R. A. Lebensohn, N-site modeling of a 3D viscoplastic polycrystal using Fast Fourier Transform. Acta Mater. 49(14), 2723–2737 (2001). https://doi.org/10.1016/S1359-6454(01)001720
18. P. Eisenlohr, M. Diehl, R.A. Lebensohn, F. Roters, A spectral method solution to crystal
elasto-viscoplasticity at finite strains. Int. J. Plast. 46, 37–53 (2013). https://doi.org/10.1016/
j.ijplas.2012.09.012
19. F. Roters, M. Diehl, P. Shanthraj, P. Eisenlohr, C. Reuber, S.L. Wong, T. Maiti, A. Ebrahimi,
T. Hochrainer, H.-O. Fabritius, S. Nikolov, M. Friak, N. Fujita, N. Grilli, K.G.F. Janssens, N.
Jia, P.J.J. Kok, D. Ma, F. Meiner, E. Werner, M. Stricker, D. Weygand, D. Raabe, DAMASK –
The Dusseldorf advanced material simulation kit for modeling multi-physics crystal plasticity,
thermal, and damage phenomena from the single crystal up to the component scale. Comput.
Mater. Sci. 158, 420–478 (2019)
20. What is VASP? (VASP Software GmbH) [Online]. Available: https://www.vasp.at/index.php/
about-vasp/59-about-vasp. Accessed Mar 2019
21. LAMMPS Molecular Dynamics Simulator. (Sandia National Laboratories) [Online]. Available: https://lammps.sandia.gov/. Accessed Mar 2019
22. ParaDiS. (Lawrence Livermore National Laboratory) [Online]. Available: http://
paradis.stanford.edu/site/home. Accessed Mar 2019
S. P. Donegan and M. A. Groeber
4. A. Jain, S.P. Ong, G. Hautier, W. Chen, W.D. Richards, S. Dacek, S. Cholia, D. Gunter, D.
Skinner, G. Ceder, K.A. Persson, Commentary: the materials project: a materials genome
approach to accelerating materials innovation. APL Mater 1(1) (2013). https://doi.org/10.1063/
1.4812323
5. J. Ahrens, B. Gevecki, C. Law, ParaView: an end-user tool for large data visualization, in
Visualization Handbook, (Elsevier, Amsterdam, 2005)
6. Applications. (Scientific Forming Technologies Corporation) [Online]. Available: https://
www.deform.com/applications/. Accessed Mar 2019
7. Casting Applications. (ESI Group) [Online]. Available: https://www.esi-group.com/softwaresolutions/virtual-manufacturing/casting/applications. Accessed Mar 2019
8. Abaqus Unified FEA. (Dassault Systemes) [Online]. Available: https://www.3ds.com/
products-services/simulia/products/abaqus/. Accessed Mar 2019
9. ANSYS. (ANSYS) [Online]. Available: https://www.ansys.com/. Accessed Mar 2019
10. Albany. (Sandia National Laboratories, Center for Computing Research) [Online]. Available:
https://cfwebprod.sandia.gov/cfdocs/CompResearch/templates/insert/project.cfm?proj=28.
Accessed Mar 2019
11. A.G. Salinger, R.A. Bartlett, A.M. Bradley, Q. Chen, I.P. Demeshko, X. Gao, G.A. Hansen, A.
Mota, R.P. Muller, E. Nielsen, J.T. Ostien, R.P. Pawlowski, M. Perego, E.T. Phipps, W. Sun,
I.K. Tezaur, Albany: using component-based design to develop a flexible, generic multiphysics
analysis code. Int J Multiscale Comput Eng 14(4), 415–438 (2016). https://doi.org/10.1615/
IntJMultCompEng.2016017040
12. MOOSE: Multiphysics Object Oriented Simulation Environment. (Idaho National Laboratory)
[Online]. Available: https://mooseframework.org/. Accessed Mar 2019
13. D. Gaston, C. Newman, G. Hansen, D. Lebrun-Grandie, MOOSE: A parallel computational
framework for coupled systems of nonlinear equations. Nucl. Eng. Des. 239(10), 1768–1778
(2009)
14. H. Moulinec, P. Suquet, A numerical method for computing the overall response of nonlinear
composites with complex microstructure. Comput. Methods Appl. Mech. Eng. 157(1–2), 69–
94 (1998). https://doi.org/10.1016/S0045-7825(97)00218-1
15. J.C. Michel, H. Moulinec, P. Suquet, A computational scheme for linear and non-linear
composites with arbitrary phase contrast. Numer Methods Eng 52(1–2), 139–160 (2001).
https://doi.org/10.1002/nme.275
16. S.P. Donegan, A.D. Rollett, Simulation of residual stress and elastic energy density in thermal
barrier coatings using fast Fourier transforms. Acta Mater. 96, 212–228 (2015). https://doi.org/
10.1016/j.actamat.2015.06.019
17. R. A. Lebensohn, N-site modeling of a 3D viscoplastic polycrystal using Fast Fourier Transform. Acta Mater. 49(14), 2723–2737 (2001). https://doi.org/10.1016/S1359-6454(01)001720
18. P. Eisenlohr, M. Diehl, R.A. Lebensohn, F. Roters, A spectral method solution to crystal
elasto-viscoplasticity at finite strains. Int. J. Plast. 46, 37–53 (2013). https://doi.org/10.1016/
j.ijplas.2012.09.012
19. F. Roters, M. Diehl, P. Shanthraj, P. Eisenlohr, C. Reuber, S.L. Wong, T. Maiti, A. Ebrahimi,
T. Hochrainer, H.-O. Fabritius, S. Nikolov, M. Friak, N. Fujita, N. Grilli, K.G.F. Janssens, N.
Jia, P.J.J. Kok, D. Ma, F. Meiner, E. Werner, M. Stricker, D. Weygand, D. Raabe, DAMASK –
The Dusseldorf advanced material simulation kit for modeling multi-physics crystal plasticity,
thermal, and damage phenomena from the single crystal up to the component scale. Comput.
Mater. Sci. 158, 420–478 (2019)
20. What is VASP? (VASP Software GmbH) [Online]. Available: https://www.vasp.at/index.php/
about-vasp/59-about-vasp. Accessed Mar 2019
21. LAMMPS Molecular Dynamics Simulator. (Sandia National Laboratories) [Online]. Available: https://lammps.sandia.gov/. Accessed Mar 2019
22. ParaDiS. (Lawrence Livermore National Laboratory) [Online]. Available: http://
paradis.stanford.edu/site/home. Accessed Mar 2019
