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Hyperelastic materials models are well established to describe the non-linear stress-strain relations of elastomers.
Comparison of the two Strength of Materials models with the model derived from Finite Elasticity is carried out.
Subsequently, materials models are developed which reproduce interlaminar failure through the usage of surface-based cohesive contact formulations.
For case 1, geometrically linear (GL) and nonlinear (GNL) analyses were performed with two different materials models: a plastic damage model and a brittle damage model.
Here, we propose a different paradigm for fuel performance codes to employ mechanistic materials models that are based on the current state of the evolving microstructure rather than burn-up.
Then the structures are analysed by a commercial explicit finite element code, PAM-CRASH, using detailed geometrical models, suitable materials models and the appropriate definition of contact forces and rivets.
Similar(50)
Asaka, K. & Okuzaki, H. Soft Actuators: Materials, Modeling, Applications, and Future Perspectives (Springer, 2014).
Kubin, L. Dislocations, Mesoscale Simulations and Plastic Flow (Oxford Series on Materials Modelling, Oxford University Press, 2013).
Bai, P. et al. Discovery of optimal zeolites for challenging separations and chemical transformations using predictive materials modeling.
There are obviously many such materials modeling codes.
The underlying formulation is based on Lagrangian elastoplastic materials model.
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