PSI - Issue 61

İmren Uyar et al. / Procedia Structural Integrity 61 (2024) 195 – 205 İ. Uyar, E. Gürses / Structural Integrity Procedia 00 ( 2019) 000 – 000

205 11

Ambati, M., Gerasimov, T., & De Lorenzis, L., 2015. A review of phase-field models of brittle fracture and a new fast hybrid formulation. Computational Mechanics, 55, 383 – 405. Asp, L., Greenhalgh, E., 2014. Structural power composites. Composites Science and Technology, 101, 41 – 61. Christensen, J., & Newman, J., 2006. Stress generation and fracture in lithium insertion materials. Journal of Solid State Electrochemistry, 10, 293 – 319. Dal, H., Miehe, C., 2015. Computational electro-chemo-mechanics of lithium-ion battery electrodes at finite strains. Computational Mechanics, 55, 303 – 325. Hirshikesh, S., Natarajan, S., Annabattula, R. K., & Martinez-Paneda, E., 2019. Phase field modeling of crack propagation in functionally graded materials. Composites Part B: Engineering, 169, 239-248. Klinsmann, M., Rosato, D., & Kamlah, M., & McMeeking, R., (2015). Modeling Crack Growth during Li Extraction in Storage Particles Using a Fracture Phase Field Approach. Journal of the Electrochemical Society, 163, 102-118. Miehe, C. & Welschinger, F., Hofacker, M., (2010). Thermodynamically consistent phase ‐ field models of fracture: Variational principles and multi ‐ field FE implementations. International Journal for Numerical Methods in Engineering, 83, 1273 – 1311. Miehe, C., & Hofacker, M., & Welschinger, F., (2010). A phase field model for rate-independent crack propagation: Robust algorithmic implementation based on operator splits. Computer Methods in Applied Mechanics and Engineering, 199, 2765-2778. Moyne, C., & Murad, M. A., 2002. Electro-chemo-mechanical coupling in swelling clays derived from a micro/macro-homogenization procedure. International Journal of Solids and Structures, 39, 6159 – 6190. Pupurs, J., & Varna, J., 2014. Modeling mechanical stress and exfoliation damage in carbon fiber electrodes subjected to cyclic intercalation/deintercalation of lithium ions. Composites Part B: Engineering, 65, 69 – 79. Xu, J., 2017. Structural Lithium-ion battery: Multiphysics modeling of mechanical and electrochemical phenomena. (Licentiate dissertation). Luleå. Xu, J., Lindbergh, G., & Varna, J., 2018. Multiphysics modeling of mechanical and electrochemical phenomena in structural composites for energy storage: Single carbon fiber micro-battery. Journal of Reinforced Plastics and Composites, 37, 701 – 715. Yang, Q. S., Qin, Q. H., Ma, L. H., & Cui, C. Q., 2010. A theoretical model and finite element formulation for coupled thermo-electro mechanical media. Mechanics of Materials, 42, 148 – 156. Zhang, X., Shyy, W., & Sastry, A. M., 2007. Numerical simulation of intercalation-induced stress in Li-ion battery electrode particles. Journal of Electrochemical Society, 154, 910-916.

Made with FlippingBook Digital Publishing Software