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March 5, 2026Composite Structures0 citationsOpen Access

A novel non-linear orthotropic constitutive model with deformation induced fiber reorientation effect for composite laminate simulation

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RHRoland HorváthLKLászló KovácsSBSzabolcs Berezvai

Key Points

  • To develop a non-linear elastic constitutive model incorporating fiber reorientation effects for composite laminates.
  • Developed a non-linear elastic model for continuous fiber reinforced laminates.
  • Integrated deformation induced fiber reorientation into the model.
  • Implemented the model as a user-defined material subroutine in LS-DYNA.
  • Validated the model through simulations against measurement results of specific materials.
  • The model successfully accounts for differences in tensile and compressive behavior.
  • It effectively captures the effects of fiber reorientation during deformation.
  • Validation shows alignment with experimental results using specific carbon and glass fiber composites.

Abstract

Fiber reorientation plays an important role in the mechanical behavior of composites, since this phenomenon is independent from the applied constitutive laws and can lead to stiffer or softer nature. Previous general approaches have been relied on the small time step size to model such effect in explicit simulations. A novel non-linear in-plane elastic constitutive model is developed for continuous fiber reinforced laminates to account for this problem. The model consists of a non-linear elastic constitutive model with distinguished tensile and compressive behavior along with deformation induced fiber reorientation, which is not handled by the finite element formulations and extended for implicit approach as well. The proposed material model is also implemented as a user-defined material subroutine in the commercial finite element software LS-DYNA. The implementation includes both explicit and implicit formulation approaches for thin shell and solid elements, respectively. Moreover, the proposed material model is also validated via simulations of measurement results performed on Toray Cetex ® TC1225 - Standard Modulus Carbon 145 gsm UD Tape 34% RC and glass fiber reinforced polyester materials.

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Cite This Study

Horváth et al. (2026) studied this question.

synapsesocial.com/papers/69a91d21d6127c7a504bfea1https://doi.org/10.1016/j.compstruct.2026.120212
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