Literature#
The different aspects of DAMASK are outlined in several scientific publications.
Contact the DAMASK helpdesk via
Concept#
The concept and the implemented models are described in detail in the following references:
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. Meier, E. Werner, M. Stricker, D. Weygand, and D. Raabe. DAMASK – The Düsseldorf Advanced Material Simulation Kit for Modelling Multi-Physics Crystal Plasticity, Damage, and Thermal Phenomena from the Single Crystal up to the Component Scale Computational Materials Science, 158:420–478, 2019. doi:10.1016/j.commatsci.2018.04.030.
F. Roters, P. Eisenlohr, C. Kords, D. D. Tjahjanto, M. Diehl, and D. Raabe. DAMASK: The Düsseldorf Advanced Material Simulation Kit for studying crystal plasticity using an FE based or a spectral numerical solver In O. Cazacu, editor, Procedia IUTAM: IUTAM Symposium on Linking Scales in Computation: From Microstructure to Macroscale Properties, volume 3, 3–10. Elsevier, 2012. doi:10.1016/j.piutam.2012.03.001.
Crystal Plasticity Overview#
If you are interested in Crystal Plasticity (FEM) in general you might want to read:
M. Diehl. Crystal Plasticity In V. Silberschmidt, editor, Comprehensive Mechanics of Materials, volume 2, 235–266. Elsevier, 2024. doi:10.1016/B978-0-323-90646-3.00023-X.
F. Roters, P. Eisenlohr, T.R. Bieler, and D. Raabe. Crystal Plasticity Finite Element Methods: In Materials Science and Engineering. Wiley-VCH, 2010. doi:10.1002/9783527631483.
F. Roters, P. Eisenlohr, L. Hantcherli, D.D. Tjahjanto, T.R. Bieler, and D. Raabe. Overview of constitutive laws, kinematics, homogenization and multiscale methods in crystal plasticity finite-element modeling: Theory, experiments, applications Acta Materialia, 58(4):1152–1211, 2010. doi:10.1016/j.actamat.2009.10.058.
Constitutive Models for Plasticity#
Details of the implemented constitutive models for plasticity can be found in:
N. Prabhu and M. Diehl. Incorporation of Physics-based Strengthening Coefficients into Phenomenological Crystal Plasticity Models Advanced Engineering Materials, 2026. doi:10.1002/adem.202500390.
T. Maiti and P. Eisenlohr. Fourier-based spectral method solution to finite strain crystal plasticity with free surfaces Scripta Materialia, 145:37–40, 2018. doi:10.1016/j.scriptamat.2017.09.047.
D. Cereceda, M. Diehl, F. Roters, D. Raabe, J.M. Perlado, and J. Marian. Unraveling the temperature dependence of the yield strength in single-crystal tungsten using atomistically-informed crystal plasticity calculations International Journal of Plasticity, 78:242–265, 2016. doi:10.1016/j.ijplas.2015.09.002.
S.L. Wong, M. Madivala, U. Prahl, F. Roters, and D. Raabe. A crystal plasticity model for twinning- and transformation-induced plasticity Acta Materialia, 118:140–151, 2016. doi:10.1016/j.actamat.2016.07.032.
D. Cereceda, M. Diehl, F. Roters, P. Shanthraj, D. Raabe, J.M. Perlado, and J. Marian. Linking atomistic, kinetic Monte Carlo and crystal plasticity simulations of single-crystal tungsten strength GAMM Mitteilungen, 38(2):213–227, 2015. doi:10.1002/gamm.201510012.
C. Reuber, P. Eisenlohr, F. Roters, and D. Raabe. Dislocation density distribution around an indent in single-crystalline nickel: Comparing nonlocal crystal plasticity finite-element predictions with experiments Acta Materialia, 71:333–348, 2014. doi:10.1016/j.actamat.2014.03.012.
C. Kords. On the role of dislocation transport in the constitutive description of crystal plasticity. PhD thesis, RWTH Aachen, 2013. URL: https://publications.rwth-aachen.de/record/229993/files/4862.pdf.
N. Jia, P. Eisenlohr, F. Roters, D. Raabe, and X. Zhao. Orientation dependence of shear banding in face-centered-cubic single crystals Acta Materialia, 60(8):3415–3434, 2012. doi:10.1016/j.actamat.2012.03.005.
J. A. Wollmershauser, B. Clausen, and S. R. Agnew. A slip system-based kinematic hardening model application to in situ neutron diffraction of cyclic deformation of austenitic stainless steel International Journal of Fatigue, 36(1):181–193, 2012. doi:10.1016/j.ijfatigue.2011.07.008.
Homogenization#
The following publications cover tools for large-scale simulations (using mechanical homogenization):
D.D. Tjahjanto, P. Eisenlohr, and F. Roters. A novel grain cluster-based homogenization scheme Modelling and Simulation in Materials Science and Engineering, 2010. doi:10.1088/0965-0393/18/1/015006.
P. Eisenlohr and F. Roters. Selecting a set of discrete orientations for accurate texture reconstruction Computational Materials Science, 42(4):670–678, 2008. doi:10.1016/j.commatsci.2007.09.015.
Spectral Solvers#
The spectral solvers provided with DAMASK are explained in:
P. Shanthraj, M. Diehl, P. Eisenlohr, F. Roters, and D. Raabe. Spectral solvers for crystal plasticity and multi-physics simulations. Springer Singapore, 2019. doi:10.1007/978-981-10-6884-3_80.
P. Shanthraj, P. Eisenlohr, M. Diehl, and F. Roters. Numerically robust spectral methods for crystal plasticity simulations of heterogeneous materials International Journal of Plasticity, 66:31–45, 2015. doi:10.1016/j.ijplas.2014.02.006.
P. Eisenlohr, M. Diehl, R.A. Lebensohn, and F. Roters. A spectral method solution to crystal elasto-viscoplasticity at finite strains International Journal of Plasticity, 46:37–53, 2013. doi:10.1016/j.ijplas.2012.09.012.
Damage and Fracture#
Details of the models for damage and fracture are outlined in:
P. Shanthraj, B. Svendsen, L. Sharma, F. Roters, and D. Raabe. Elasto-viscoplastic phase field modelling of anisotropic cleavage fracture Journal of the Mechanics and Physics of Solids, 99:19–34, 2017. doi:10.1016/j.jmps.2016.10.012.
P. Shanthraj, L. Sharma, B. Svendsen, F. Roters, and D. Raabe. A phase field model for damage in elasto-viscoplastic materials Computer Methods in Applied Mechanics and Engineering, 312:167–185, 2016. doi:10.1016/j.cma.2016.05.006.
Pre- and Post-Processing#
The following publications cover how to set up DAMASK simulations and analyze the data resulting from running them:
D. Otto de Mentock, S. Roongta, F. Roters, P. Eisenlohr, and M. Diehl. A Python Library for Pre- and Post-Processing of DAMASK Simulations Journal of Open Source Software, 10(105):7164, 2025. doi:10.21105/joss.07164.
M. Diehl, P. Eisenlohr, C. Zhang, J. Nastola, P. Shanthraj, and F. Roters. A Flexible and Efficient Output File Format for Grain-Scale Multiphysics Simulations Integrating Materials and Manufacturing Innovation, 6(1):83–91, 2017. doi:10.1007/s40192-017-0084-5.
Related Work#
The following publications cite the DAMASK core publications:
S. S. Acar and T. Yalçinkaya. Crystal plasticity modelling of time-dependent strain accumulation of stainless steel at room temperature Philosophical Magazine, 106(1):1 – 21, 2026. Cited by: 0. doi:10.1080/14786435.2025.2536601.
M. Agarwal, M. Elleithy, P. Acar, R. K. Kapania, and W. Zhao. Multi-Scale Microstructure-Informed Modeling of Residual Stresses and Distortions in Additive Friction Stir Deposition In AIAA Science and Technology Forum and Exposition, AIAA SciTech Forum 2026. American Institute of Aeronautics and Astronautics Inc, AIAA, 2026. Cited by: 0. doi:10.2514/6.2026-1670.
W. An, S. Ren, X. Ye, Z. Wang, and Q.-l. Xiong. Bidirectional transformation in metastable high entropy alloy under impact loading: Experiment and crystal plasticity modeling International Journal of Plasticity, 2026. Cited by: 1. doi:10.1016/j.ijplas.2026.104653.
A. Bakonyi, L. Bodnár, and A. Zelei. Sensitivity Analysis of SAC 305 Solder Polycrystal Mechanical Parameters and Predicted Fatigue Lifetime with Different Grain Structures Applied Sciences (Switzerland), 2026. Cited by: 0. doi:10.3390/app16020704.
O. O. Barah. From precision to prediction in probabilistic FEA fatigue for structural reliability Engineering Research Express, 2026. Cited by: 1. doi:10.1088/2631-8695/ae31cc.
R. Barreira, N. Koltzenburg, R. Wieland, S. Mentese, U. Kramer, and B. Berisha. Void growth drives electrical resistance increase: A physics-based damage model for ductile metallic conductors European Journal of Mechanics, A/Solids, 2026. Cited by: 0. doi:10.1016/j.euromechsol.2026.106043.
B. A. Begley, M. E. Hurley, M. S. David, and V. M. Miller. A Multiscale Model Predicting Site-Specific Texture Evolution: Application to Two-Phase Titanium Alloys Integrating Materials and Manufacturing Innovation, 15(1):18 – 35, 2026. Cited by: 0. doi:10.1007/s40192-025-00433-2.
S. A. Bhat and N. K. Sundaram. Large-strain torsion of FCC single crystal rods: Orientation dependence, Swift effect, and warping using a crystal plasticity finite element integrator Mechanics of Materials, 2026. Cited by: 0. doi:10.1016/j.mechmat.2026.105799.
V. Blümer, J. Kleinhout, C. Soyarslan, and T. van den Boogaard. Enyxe: A modular framework for the elastoplastic analysis of polycrystalline materials in damask SoftwareX, 2026. Cited by: 0. doi:10.1016/j.softx.2026.102639.
C. Bovet, V. Chiaruttini, and A. Vattré. Full-scale crystal plasticity modeling and data-driven learning of microstructure effects in polycrystalline turbine blades Computer Methods in Applied Mechanics and Engineering, 2026. Cited by: 0. doi:10.1016/j.cma.2026.119085.
F. Briffod, T.E.J. Edwards, J. Q. da Fonseca, J. -C. Stinville, D. Texier, and T. Vermeij. Understanding strain localization in metallic materials: a review of high-resolution digital image correlation and related techniques Science and Technology of Advanced Materials, 2026. Cited by: 0. doi:10.1080/14686996.2026.2630488.
A. M. Chandroth, N. Prabhu, M. Diehl, M. Seefeldt, and J. Everaerts. Effect of local crystallographic texture on near-surface residual stress variation in machined titanium Journal of Materials Processing Technology, 2026. Cited by: 3. doi:10.1016/j.jmatprotec.2025.119153.
A.E. Davis, J.M. Donoghue, J. Kennedy, M.D. Atkinson, M. White, L. Neto, R. Biswal, A.E. Caballero, F. Zakir, A.K. Syed, X. Zhang, S. Williams, and P.B. Prangnell. The Impact of Columnar and Equiaxed β-Grain Structures on Mechanical Anisotropy in High-Deposition-Rate Additively Manufactured α + β Titanium Alloys Metallurgical and Materials Transactions A: Physical Metallurgy and Materials Science, 57(2):565 – 599, 2026. Cited by: 1. doi:10.1007/s11661-025-08038-2.
E. Demir, A. Taipale, C. Hardie, and E. Tarleton. A finite element framework for cohesive zone modeling of interface fracture Engineering Fracture Mechanics, 2026. Cited by: 0. doi:10.1016/j.engfracmech.2026.112405.
S. Engel, P. Shanthraj, and J. Quinta da Fonseca. Bayesian calibration and sensitivity analysis of crystal plasticity models using Gaussian process surrogates Computational Materials Science, 2026. Cited by: 0. doi:10.1016/j.commatsci.2026.114770.
T. Feng, Z. Huang, H. Qian, Z. Shen, X. Lu, and Y. Xu. Facets formation and cracks nucleation analysis using the crystal plasticity method coupled with a phase field model for Ti60 alloy in VHCF International Journal of Fatigue, 2026. Cited by: 0. doi:10.1016/j.ijfatigue.2026.109636.
T. Flint, P. Cardiff, J. Quinta da Fonseca, and P. Shanthraj. Eulerian finite volume framework for extreme multiphase plastic deformation International Journal of Mechanical Sciences, 2026. Cited by: 0. doi:10.1016/j.ijmecsci.2026.111794.
F. Gao, Z. Ma, D. Lunt, J. Q. da Fonseca, and J. Robson. Understanding Strain Localization in Magnesium Alloy AZ31 and ZEK100 Through High-Resolution Digital Image Correlation (HRDIC) and Simulation Metallurgical and Materials Transactions A: Physical Metallurgy and Materials Science, 57(8):3983 – 3999, 2026. Cited by: 0. doi:10.1007/s11661-026-08261-5.
Q. Gao, H. Zhu, Y. Zou, and H. Ding. Exploring microscopic constitutive properties and deformation behavior of the constituent phases in a Fe-12Mn-8Al-0.8C duplex lightweight steel Materials Science and Engineering: A, 2026. Cited by: 1. doi:10.1016/j.msea.2025.149439.
D. R. Gunasegaram, N. Samadiani, D. Howard, and N. Fayyazifar. Enhancing Phenomenological Crystal Plasticity Simulations of an Additively Manufactured AlSi10Mg Alloy by Leveraging Deep Neural Network Surrogates, Optimisation Algorithms, and Explainable Artificial Intelligence Metals, 2026. Cited by: 0. doi:10.3390/met16060670.
D. R. Gunasegaram, N. Samadiani, N. G. March, I. Katti, D. Howard, and M. Easton. Accelerating and Improving the Accuracy of Parameter Calibration in a Phenomenological Crystal Plasticity Model Through High-Volume Machine Learning Simulations Metals, 2026. Cited by: 1. doi:10.3390/met16030295.
H. Guo, H. Huang, J. Luo, L. He, X. Huang, and Z. Hao. A High-Fidelity Texture Discretization Method for Polycrystalline Aggregates Considering Grain Size Distributions Materials, 2026. Cited by: 1. doi:10.3390/ma19081501.
N. Guo, G. Fan, Q. Zhou, J. Wang, and B. Tang. Laves phase morphology-mediated damage initiation and deformation heterogeneity mechanisms in laser directed energy deposited GH4169 superalloy Engineering Failure Analysis, 2026. Cited by: 0. doi:10.1016/j.engfailanal.2026.111010.
N. Guo, H. Wang, J. Wang, Q. Zhou, and B. Tang. Phase boundary plasticity and spatial distribution mediated high‑temperature deformation inhomogeneity and damage in laser additively manufactured Ti‑6Al‑4 V titanium alloy Journal of Alloys and Compounds, 2026. Cited by: 0. doi:10.1016/j.jallcom.2026.189772.
N. Guo, J. Yu, J. Wang, Q. Zhou, J. Wang, P. Dong, and B. Tang. Hetero-deformation-induced strengthening, slip activity and damage initiation of high-power laser additively manufactured Cu-Ni alloy via heterogeneous interface regulation Materials Characterization, 2026. Cited by: 0. doi:10.1016/j.matchar.2026.116490.
G. Huang, X. Zhang, X. Zou, K. Wang, Z. Xie, W.-R. Jian, S. Qin, and X. Yao. Roles of lattice distortion and chemical short-range order in dislocation drag and strain-rate sensitivity over wide strain rates Journal of the Mechanics and Physics of Solids, 2026. Cited by: 0. doi:10.1016/j.jmps.2026.106723.
W. Huang, Y. Li, L. Zhou, W. Chen, Y. Liu, Q. Yu, L. Liang, and Z. Xiao. Tailoring microstructure and mechanical properties in a high Ca containing Mg-Al-Ca-Mn alloy: A combined experimental and CPFEM study Journal of Alloys and Compounds, 2026. Cited by: 2. doi:10.1016/j.jallcom.2026.186579.
J. Huber, J. Torgersen, and E. Werner. Phase Field Failure Modeling: Brittle-Ductile Dual-Phase Microstructures under Compressive Loading Advanced Engineering Materials, 2026. Cited by: 0. doi:10.1002/adem.202503052.
S. Islam, M. A. Karim, S. Y. Lee, Y. Ha, J. Kwon, K. Song, H. Lim, T. Park, Y. Jeon, and D. B. Kim. Crystal plasticity approach for predicting mechanical responses of porous wire-arc directed energy deposited Al4043 structure Journal of Alloys and Compounds, 2026. Cited by: 0. doi:10.1016/j.jallcom.2026.188536.
S. Islam, M. A. Karim, S.-Y. Lee, Y. Kim, J. Kwon, Y. Jeon, and D. B. Kim. Crystal plasticity approach for predicting deformation behavior in wire-arc directed energy deposited SS316L-In625 bimetallic structures Engineering Failure Analysis, 2026. Cited by: 0. doi:10.1016/j.engfailanal.2026.110706.
T. Jailin, P. Jedrasiak, E. Cooksey-Nash, P. Shanthraj, H.R. Shercliff, and J. Q. da Fonseca. Experimental and Numerical Study of the Warm Formability of a 7xxx Al Alloy Strain, 2026. Cited by: 0. doi:10.1111/str.70030.
Q. Jia, B. Wang, Y. Xue, L. Zhang, Y. Sun, S. Yuan, D. Sun, P. Zhang, X. Sun, X. Feng, and F. Zhang. Crystal Plasticity Finite Element Simulation and Quasi-In-Situ Experimental Study of Tensile Strain Partitioning in Multiphase High-Strength Steel Coatings, 2026. Cited by: 0. doi:10.3390/coatings16060735.
W. Junhao, X. Yukai, S. Shijie, G. Yang, W. Wenwang, and Z. Xu. RESEARCH ON SIMULATION OF COLD ROLLING BEHAVIOR OF TWIP STEEL BASED ON CRYSTAL PLASTICITY FINITE ELEMENT METHOD; [基于晶体塑性有限元的 TWIP 钢冷轧行为模拟研究] Lixue Xuebao/Chinese Journal of Theoretical and Applied Mechanics, 58(2):453 – 470, 2026. Cited by: 0. doi:10.6052/0459-1879-25-390.
Y. Kadin, E. Broitman, and P. Andric. Screw dislocation strengthening theory unlocks unique stress–strain solutions from nanoindentation: application to bearing steels Meccanica, 2026. Cited by: 0. doi:10.1007/s11012-025-02066-3.
B. Katzer, D. Weygand, and K. Schulz. Characterization of dislocation networks under varying boundary conditions in the discrete to continuum transition regime International Journal of Plasticity, 2026. Cited by: 0. doi:10.1016/j.ijplas.2026.104744.
P. Kiani, M.J. Rezaei, E. Maddah, and M. Sedighi. Fiber texture evolution in cold-drawn aluminum wires using EBSD and crystal plasticity analyses Journal of Materials Research and Technology, 42:10324 – 10336, 2026. Cited by: 0. doi:10.1016/j.jmrt.2026.05.246.
J. Kim, Y. Hayashi, S. S. Ha, and M. Yabashi. Three-dimensional grain extraction from volumetric orientation maps using a label-equivalence-based algorithm Computer Physics Communications, 2026. Cited by: 0. doi:10.1016/j.cpc.2026.110263.
S.-H. Lee, A. A. Fessler, and K. Schulz. A stochastic finite-strain crystal plasticity model with continuum dislocation dynamics Computer Methods in Applied Mechanics and Engineering, 2026. Cited by: 0. doi:10.1016/j.cma.2026.119218.
Z. Li, Q. Xue, S. Tang, Y. Ma, and W. Liu. Investigating the role of slip transfer in synergizing heterogeneous deformations in BCC/FCC dual-phase tungsten alloys: In-situ compression test and crystal plasticity simulation Materials Science and Engineering: A, 2026. Cited by: 2. doi:10.1016/j.msea.2025.149467.
H. Liu, S. Xu, Y. Lou, S. He, Z. Su, W. Huang, Z. Zeng, and Z. Xiao. Anomalous dynamic hardening and superior energy absorption in Mg-Mn alloys driven by rate-induced twinning Journal of Materials Science and Technology, 273:173 – 180, 2026. Cited by: 2. doi:10.1016/j.jmst.2026.02.038.
J. Liu, Y. Zhou, X. Shang, L. Zhang, and K. Chen. Coupled mechanical and crystallographic analysis of intergranular stress corrosion cracking initiation in additively manufactured 316L stainless steels Corrosion Science, 2026. Cited by: 4. doi:10.1016/j.corsci.2026.113852.
S. Liu, Y. Xiong, J. Zhao, B. Liu, W. Wu, and X. Zhang. Crystal plasticity constitutive modeling of temperature-dependent strengthening behavior of dual-heterogeneous carbon steel; [双异质结构碳钢温度依赖性强化行为的晶体塑性本构建模研究] Scientia Sinica: Physica, Mechanica et Astronomica, 2026. Cited by: 0. doi:10.1360/SSPMA-2024-0628.
Y. Luo, H. Ding, L. Miao, C. Zhang, L. Zhang, H. Liu, and C. Yue. Crystal Plasticity Simulation of the Goss Grain Evolution Dominated by Neighboring Grain Orientations and In-Grain Orientation Perturbation in Grain-Oriented Silicon Steel During Cold Rolling JOM, 78(4):3439 – 3456, 2026. Cited by: 1. doi:10.1007/s11837-026-08150-7.
Y. Luo, H. Ding, L. Miao, C. Zhang, L. zhang, and C. Yue. Crystal Plasticity Modeling of Initial and Neighbor Grain Orientation Effects on Cold-Rolling Texture of Ultra-Large Grain-Oriented Silicon Steel Journal of Materials Engineering and Performance, 35(14):13771 – 13787, 2026. Cited by: 0. doi:10.1007/s11665-025-12594-4.
M. Maric, R. Thomas, T. Ungar, P. Frankel, J. Donoghue, S. Armson, I. Alakiozidis, C. Hunt, G. Bowker, O. Muransky, J. Q. da Fonseca, P. Barberis, F. Bourlier, P. Shanthraj, and M. Preuss. Understanding the recrystallisation behaviour of Zircaloy-4 Acta Materialia, 2026. Cited by: 0. doi:10.1016/j.actamat.2026.122227.
L. Miao, Y. Luo, H. Ding, C. Zhang, C. Yue, and H. Liu. Decoding the critical role of cold rolling reduction in texture transition mechanisms of non-oriented electrical steel through an integrated CPFEM-experimental framework Materials Characterization, 2026. Cited by: 2. doi:10.1016/j.matchar.2025.115833.
L. Miao, K. Song, D. Yin, C. Zhang, H. Liu, and C. Yue. An integrated crystal plasticity and 3D cellular automata framework for simulating microstructure/texture evolution during cold rolling and annealing and for predicting formability in ferritic stainless steel Materials Characterization, 2026. Cited by: 0. doi:10.1016/j.matchar.2026.116335.
S. Nazari-Onlaghi, G. Li, K. Vanmeensel, and M. Seefeldt. Yield anisotropy of LPBF-processed 316L steel: Crystal plasticity models and phenomenological yield functions European Journal of Mechanics, A/Solids, 2026. Cited by: 0. doi:10.1016/j.euromechsol.2026.106202.
P. Ndiaye, L. Jakabčin, T. Sayet, and A. Gasser. Computational homogenization of an initially orthotropic compressible structure using kinematic hardening law to model primary and secondary stages of creep International Journal of Solids and Structures, 2026. Cited by: 0. doi:10.1016/j.ijsolstr.2026.113979.
T. Nguyen-Minh and L.A.I. Kestens. On the Rotated Cube 001110 Texture Component in Extra and Ultra Low-Carbon Steels Metallurgical and Materials Transactions A: Physical Metallurgy and Materials Science, 2026. Cited by: 0. doi:10.1007/s11661-026-08196-x.
W. Noh, R. B. Vieira, J. Lambros, and H. B. Chew. Microscale strain field predictions from grain microstructure of polycrystalline metals using fully convolutional networks International Journal of Solids and Structures, 2026. Cited by: 1. doi:10.1016/j.ijsolstr.2025.113801.
W. Noh, R. B. Vieira, J. Lambros, and H. B. Chew. Predicting grain textures from microscale strain fields of polycrystalline metals using fully convolutional networks Mechanics of Materials, 2026. Cited by: 0. doi:10.1016/j.mechmat.2026.105770.
H. Ohashi and Y. Aoyagi. Frequency-dependent stress response under thermal cycle: A thermal-crystal plasticity and dynamic mode decomposition study International Journal of Plasticity, 2026. Cited by: 0. doi:10.1016/j.ijplas.2026.104722.
D. Paliwal, S. K. Basantia, S. Ranjan, and N.P. Gurao. Experimental-computational study of tool geometry and processing temperature effects on the deformation behaviour of gradient structured SMGT copper Materialia, 2026. Cited by: 0. doi:10.1016/j.mtla.2026.102756.
B. Pan, Z. Jiang, F. Shen, B. Tekkaya, and S. Münstermann. Cross-Scale Study of DP780 Steel: From Crystal Plasticity Modeling to Failure and Formability Prediction Steel Research International, 97(1):252 – 267, 2026. Cited by: 2. doi:10.1002/srin.202500266.
J. Pan, H. Fu, K. Qiu, W. Li, and J. Xie. Sensitivity-analysis guided Bayesian optimization for crystal plasticity parameter identification International Journal of Mechanical Sciences, 2026. Cited by: 4. doi:10.1016/j.ijmecsci.2026.111205.
M. Pan, X. Li, X. Li, K. Liang, Z. Chen, X. Li, and W. Liao. Fracture mechanism and multiscale response properties in T-welded joint with a comprehensive constitutive framework and crystal plasticity model considering strain-rate/temperature effect Engineering Failure Analysis, 2026. Cited by: 0. doi:10.1016/j.engfailanal.2026.110605.
S. Pawar, K.U. Yazar, K. Thool, W.-G. Seo, C.-G. Jeong, Y.-U. Heo, and S.-H. Choi. Anisotropic compression behavior of 316 L stainless steel at room and cryogenic temperatures: The influence of twinning and transformation mechanisms International Journal of Plasticity, 2026. Cited by: 4. doi:10.1016/j.ijplas.2025.104572.
G. Peng, Z. Guo, M. Du, G. Wang, L. Wang, and W. Yan. Ductilizing additively manufactured paramagnetic alloys via auxiliary magnetic field: Beyond the porosity effect International Journal of Machine Tools and Manufacture, 2026. Cited by: 0. doi:10.1016/j.ijmachtools.2026.104422.
A. Plotkowski, M. Rolchigo, G. Wagner, S. T. Reeve, J. Coleman, G. Knapp, L. Levine, A. To, S. DeWitt, F. Dugast, S. Mahadevan, C. Newman, B. Stump, M. Bement, and J. Turner. Metal additive manufacturing simulation across length, time, and computing scales International Materials Reviews, 71(3):254 – 293, 2026. Cited by: 0. doi:10.1177/09506608251394155.
N. Prabhu and M. Diehl. Incorporation of Physics-Based Strengthening Coefficients into Phenomenological Crystal Plasticity Models Advanced Engineering Materials, 2026. Cited by: 0. doi:10.1002/adem.202500390.
W. Rao, G. Kang, X. Zhang, Q. Shen, R. Tao, Q. Yang, and D. Fang. Nonequilibrium thermodynamics perspective for shear localization in additive manufacturing International Journal of Mechanical Sciences, 2026. Cited by: 0. doi:10.1016/j.ijmecsci.2026.111459.
A. Raturi, S. Chandrakar, N. Chawake, N.P. Gurao, and K. Biswas. Deformation behavior and microtexture evolution in non-equiatomic MoNbTaVW refractory high entropy alloy during high-pressure torsion at 473 K: An experimental and crystal plasticity simulations approach Materials Science and Engineering: A, 2026. Cited by: 1. doi:10.1016/j.msea.2026.150134.
A. Raßloff, P. Seibert, K. A. Kalina, and M. Kästner. Inverse design of spinodoid structures using Bayesian optimization Computational Mechanics, 77(1):275 – 296, 2026. Cited by: 14. doi:10.1007/s00466-024-02587-w.
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H. Zhang, M. Diehl, F. Roters, and D. Raabe. A virtual laboratory using high resolution crystal plasticity simulations to determine the initial yield surface for sheet metal forming operations International Journal of Plasticity, 80:111 – 138, 2016. Cited by: 194. doi:10.1016/j.ijplas.2016.01.002.
Y. Akinori. Prediction of 3D microstructure and plastic deformation behavior in dual-phase steel using multi-phase-field and crystal plasticity FFT methods Key Engineering Materials, 651-653:570 – 574, 2015. Cited by: 8. doi:10.4028/www.scientific.net/KEM.651-653.570.
B. Berisha, C. Raemy, C. Becker, M. Gorji, and P. Hora. Multiscale modeling of failure initiation in a ferritic-pearlitic steel Acta Materialia, 100:191 – 201, 2015. Cited by: 53. doi:10.1016/j.actamat.2015.08.035.
T. R. Bieler, D. Kang, D. C. Baars, S. Chandrasekaran, A. Mapar, G. Ciovati, N. T. Wright, F. Pourboghrat, J. E. Murphy, C. C. Compton, and G. R. Myneni. Deformation mechanisms, defects, heat treatment, and thermal conductivity in large grain niobium In AIP Conference Proceedings, volume 1687. American Institute of Physics Inc., 2015. Cited by: 3. doi:10.1063/1.4935316.
D. Cereceda, M. Diehl, F. Roters, P. Shanthraj, D. Raabe, J. M. Perlado, and J. Marian. Linking atomistic, kinetic Monte Carlo and crystal plasticity simulations of single-crystal tungsten strength GAMM Mitteilungen, 38(2):213 – 227, 2015. Cited by: 19. doi:10.1002/gamm.201510012.
J. Gawad, D. Banabic, A. Van Bael, D. S. Comsa, M. Gologanu, P. Eyckens, P. Van Houtte, and D. Roose. An evolving plane stress yield criterion based on crystal plasticity virtual experiments International Journal of Plasticity, 75:141 – 169, 2015. Cited by: 73. doi:10.1016/j.ijplas.2015.02.011.
H. Geng, C. Ding, M. Lu, X. Zhou, X. Liu, Y. Fang, and J. Wang. Numerical simulation of mechanical properties of nickel base casting superalloy with the mesoscale finite element method Materials Research Innovations, 19:S5794 – S5798, 2015. Cited by: 0. doi:10.1179/1432891714Z.0000000001195.
N. Grilli, K. G.F. Janssens, and H. Van Swygenhoven. Crystal plasticity finite element modelling of low cycle fatigue in fcc metals Journal of the Mechanics and Physics of Solids, 84:424 – 435, 2015. Cited by: 47. doi:10.1016/j.jmps.2015.08.007.
O. Güvenç, F. Roters, T. Hickel, and M. Bambach. ICME for Crashworthiness of TWIP Steels: From Ab Initio to the Crash Performance JOM, 67(1):120 – 128, 2015. Cited by: 29. doi:10.1007/s11837-014-1192-8.
S. Nikolov, H. Fabritius, M. Friák, and D. Raabe. Integrated multiscale modeling approach for hierarchical biological nanocomposites applied to lobster cuticle Bulgarian Chemical Communications, 47:424 – 433, 2015. Cited by: 3. URL: https://www.scopus.com/pages/publications/84976421915?origin=resultslist.
P. Shanthraj, P. Eisenlohr, M. Diehl, and F. Roters. Numerically robust spectral methods for crystal plasticity simulations of heterogeneous materials International Journal of Plasticity, 66:31 – 45, 2015. Cited by: 180. doi:10.1016/j.ijplas.2014.02.006.
Y.F. Shen, N. Jia, Y.D. Wang, X. Sun, L. Zuo, and D. Raabe. Suppression of twinning and phase transformation in an ultrafine grained 2 GPa strong metastable austenitic steel: Experiment and simulation Acta Materialia, 97:305 – 315, 2015. Cited by: 101. doi:10.1016/j.actamat.2015.06.053.
C.C. Tasan, M. Diehl, D. Yan, M. Bechtold, F. Roters, L. Schemmann, C. Zheng, N. Peranio, D. Ponge, M. Koyama, K. Tsuzaki, and D. Raabe. An Overview of Dual-Phase Steels: Advances in Microstructure-Oriented Processing and Micromechanically Guided Design Annual Review of Materials Research, 45:391 – 431, 2015. Cited by: 606. doi:10.1146/annurev-matsci-070214-021103.
D.D. Tjahjanto, P. Eisenlohr, and F. Roters. Multiscale deep drawing analysis of dual-phase steels using grain cluster-based RGC scheme Modelling and Simulation in Materials Science and Engineering, 2015. Cited by: 25. doi:10.1088/0965-0393/23/4/045005.
A. Yamanaka. 3D modeling of ferrite transformation in deformed-austenite using multi-phase-field method and crystal plasticity fast Fourier transformation method In PTM 2015 - Proceedings of the International Conference on Solid-Solid Phase Transformations in Inorganic Materials 2015, 857 – 864. International Conference on Solid-Solid Phase Transformations in Inorganic Materials 2015, 2015. Cited by: 1. URL: https://www.scopus.com/pages/publications/84962666685?origin=resultslist.
A. Yamanaka. Prediction of deformed-and recrystallized microstructures in metallic materials by crystal plasticity analysis and multi-phase-field method Keikinzoku/Journal of Japan Institute of Light Metals, 65(11):542 – 548, 2015. Cited by: 2. doi:10.2464/jilm.65.542.
C. Zambaldi, C. Zehnder, and D. Raabe. Orientation dependent deformation by slip and twinning in magnesium during single crystal indentation Acta Materialia, 91:267 – 288, 2015. Cited by: 94. doi:10.1016/j.actamat.2015.01.046.
C. Zhang, H. Li, P. Eisenlohr, W. Liu, C.J. Boehlert, M.A. Crimp, and T.R. Bieler. Effect of realistic 3D microstructure in crystal plasticity finite element analysis of polycrystalline Ti-5Al-2.5Sn International Journal of Plasticity, 69:21 – 35, 2015. Cited by: 91. doi:10.1016/j.ijplas.2015.01.003.
M. Demura, D. Raabe, F. Roters, P. Eisenlohr, Y. Xu, T. Hirano, and K. Kishida. Slip system analysis in the cold rolling of a Ni3Al single crystal Materials Science Forum, 783-786:1111 – 1116, 2014. Cited by: 1. URL: https://www.scopus.com/pages/publications/84904543366?origin=resultslist.
O. Güvenç, M. Bambach, and G. Hirt. Coupling of crystal plasticity finite element and phase field methods for the prediction of SRX kinetics after hot working Steel Research International, 85(6):999 – 1009, 2014. Cited by: 29. doi:10.1002/srin.201300191.
R. Kebriaei, I.N. Vladimirov, and S. Reese. Joining of the alloys AA1050 and AA5754 - Experimental characterization and multiscale modeling based on a cohesive zone element technique Journal of Materials Processing Technology, 214(10):2146 – 2155, 2014. Cited by: 21. doi:10.1016/j.jmatprotec.2014.03.014.
F. Meier, C. Schwarz, and E. Werner. Crystal-plasticity based thermo-mechanical modeling of Al-components in integrated circuits Computational Materials Science, 94(C):122 – 131, 2014. Cited by: 29. doi:10.1016/j.commatsci.2014.03.020.
C.C. Tasan, M. Diehl, D. Yan, C. Zambaldi, P. Shanthraj, F. Roters, and D. Raabe. Integrated experimental-simulation analysis of stress and strain partitioning in multiphase alloys Acta Materialia, 81:386 – 400, 2014. Cited by: 358. doi:10.1016/j.actamat.2014.07.071.
C.C. Tasan, J.P.M. Hoefnagels, M. Diehl, D. Yan, F. Roters, and D. Raabe. Strain localization and damage in dual phase steels investigated by coupled in-situ deformation experiments and crystal plasticity simulations International Journal of Plasticity, 63:198 – 210, 2014. Cited by: 541. doi:10.1016/j.ijplas.2014.06.004.
F. Wang, S. Sandlöbes, M. Diehl, L. Sharma, F. Roters, and D. Raabe. In situ observation of collective grain-scale mechanics in Mg and Mg-rare earth alloys Acta Materialia, 80:77 – 93, 2014. Cited by: 115. doi:10.1016/j.actamat.2014.07.048.
P. Eisenlohr, M. Diehl, R.A. Lebensohn, and F. Roters. A spectral method solution to crystal elasto-viscoplasticity at finite strains International Journal of Plasticity, 46:37 – 53, 2013. Cited by: 383. doi:10.1016/j.ijplas.2012.09.012.
F. Roters, M. Diehl, P. Eisenlohr, and D. Raabe. Crystal Plasticity Modeling. wiley, 2013. Cited by: 4. doi:10.1002/9783527652815.ch03.