PSI - Issue 42

Tuncay Yalçinkaya et al. / Procedia Structural Integrity 42 (2022) 1651–1659 Tuncay Yalc¸inkaya et al. / Structural Integrity Procedia 00 (2019) 000–000

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Kahveci, O., Gencoglu, C., Yalcinkaya, T. 2022. Experimental Analysis and Multiscale Modeling of the Dynamics of a Fiber-Optic Coil. Sensors 22 (2), 582. Luo, M., Wierzbicki, T. 2010. Numerical failure analysis of a stretch-bending test on dual-phase steel sheets using a phenomenological fracture model. International Journal of Solids and Structures 47, 3084-3102. Matsuno, T., Teodosiu, C., Maeda, D., Uenishi, A. 2015. Mesoscale simulation of the early evolution of ductile fracture in dual-phase steels. International Journal of Plasticity 74, 17-34. Pagenkopf, J., Butz, A., Wenk, M., Helm, D., 2016. Virtual testing of dual-phase steels: effect of martensite morphology on plastic flow behavior. Materials Science and Engineering: A 674, 672–686. Park, K., Paulino, G.H., Roesler, J.R. 2009. A unified potential-based cohesive model of mixed-mode fracture. Journal of the Mechanics and Physics of Solids 57, 891–908. Pierman, A.P., Bouaziz, O., Pardoen, T., Jacques, P.J., Brassart, L. 2014. The influence of microstructure and composition on the plastic behaviour of dual-phase steels. Acta Materialia 73, 298-311. Quey, R., Dawson, P.R., Barbe, F. 2011. Large-scale 3D random polycrystals for the finite element method: Generation, meshing and remeshing. Computer Methods in Applied Mechanics and Engineering 200 (17-20), 1729-1745 Scheider, I., Brocks, W. 2003. Simulation of cup–cone fracture using the cohesive model. Engineering Fracture Mechanics 70 (14), 1943-1961 Sirinakorn, T.,Uthaisangsuk, V. 2018. Investigation of damage initiation in high-strength dual-phase steels using cohesive zone model. International Journal of Damage Mechanics 27 (3), 409-438. Tang, A.,Liu, H., Chen, R., Liu, G., Lai, Q., Zhong, Y., Wang, L., Wang, J., Lu, Q., Shen Y. 2021. Mesoscopic origin of damage nucleation in dual-phase steels. International Journal of Plasticity 137, 102920. Tasan, C., Diehl, M., Yan, D., Bechtold, M., Roters, F., Schemmann, L., Zheng, C., Peranio, N., Ponge, D., Koyama, M., Tsuzaki, K., Raabe, D. 2015. An overview of dual-phase steels: advances in microstructure-oriented processing and micromechanically guided design. Annual Review of Materials Research 45, 391–431. Uthaisangsuk, V.,Prahl U., Bleck, W. 2009. Stretch-flangeability characterisation of multiphase steel using a microstructure based failure modelling. Computational Materials Science 45, 617-623. Vajragupta, N., Uthaisangsuk V., Schmaling, B., Mu¨nstermann, S.,Hartmaier A., Bleck, W. 2012. A micromechanical damage simulation of dual phase steels using XFEM. Computational Materials Science 54, 271-279. Woo, W., Em, V., Kim, E.Y., Han,S., Han,Y., Choi, S.H. 2012. Stress–strain relationship between ferrite and martensite in a dual-phase steel studied by in situ neutron diffraction and crystal plasticity theories. Acta Materialia 60 (20), 6972-6981. Yalcinkaya, T., Gungor, G.O., Cakmak, S.O., Tekoglu, T. 2019. A Micromechanics Based Numerical Investigation of Dual Phase Steels. Procedia Structural Integrity 21, 61-72. Yalcinkaya, T., Cakmak, S.O., Tekoglu, T. 2021. A crystal plasticity based finite element framework for RVE calculations of two-phase materials: Void nucleation in dual-phase steels. Finite Elements in Analysis and Design 187, 103510. Yalcinkaya, T., Brekelmans, W., Geers, M. 2008. BCC single crystal plasticity modeling and its experimental identification. Modelling and Simu lation in Materials Science and Engineering 16 (8), 085007. Yalcinkaya, T., Brekelmans, W., Geers, M. 2009. A composite dislocation cell model to describe strain path change effects in BCC metals. Mod elling and Simulation in Materials Science and Engineering 17 (6), 064008. Zhang, J., Di, H., Deng, Y., Misra, R.D.K. 2015. Effect of martensite morphology and volume fraction on strain hardening and fracture behavior of martensite–ferrite dual phase steel. Materials Science and Engineering A 627, 230-240.

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