Design of Triaxial Tests with Polymer Matrix Composites
María Del Carmen Serna Moreno1, Sergio Horta Muñoz1, Alberto Ruiz Gracia2
1Instituto de Investigación Aplicada a la Industria Aeronáutica, Escuela de Ingeniería Industrial y Aeroespacial de Toledo, Universidad de Castilla-La Mancha, Av. Carlos III s/n, Real Fábrica de Armas, 45004 Toledo, Spain.
This study designs a numerical triaxial experiment for polymer composites using finite element analysis (FEM). The method characterizes triaxial composite response and identifies failure-prone loading scenarios before experimental failure.
Area of Science:
- Materials Science
- Mechanical Engineering
- Composite Materials
Background:
- Multiaxial testing offers realistic failure modes for composites under complex loads but faces challenges in equipment, experimental design, and result interpretation.
- A six-actuator triaxial testing machine enables simultaneous, synchronized axial loading in three dimensions, providing a framework for advanced composite testing.
Purpose of the Study:
- To numerically design a triaxial experiment for a polymer-based composite using finite element method (FEM).
- To characterize the triaxial response of a polymer-based composite with apparent isotropic behavior.
- To identify loading scenarios that may lead to composite failure under triaxial stress states.
Main Methods:
- Finite Element Method (FEM) was employed to define a triaxial specimen geometry for homogeneous stress and strain states.
- A novel fixing system was proposed to replicate numerical boundary conditions in experimental setups.
- Analytical and FEM virtual testing procedures were developed to determine the full strain tensor in the triaxially loaded region.
Main Results:
- FEM simulations identified stress concentrations in the uniaxially loaded arms of the specimen, predicting experimental failure in these regions.
- The study proposes using hydrostatic and deviatoric strain tensor components to assess composite susceptibility to triaxial failure.
- Loading scenarios with higher deviatoric strain components were identified as more likely to cause damage.
Conclusions:
- The designed triaxial tests, while not precisely determining triaxial strength, are valuable for observing composite behavior before failure.
- The proposed methodology allows for adequate characterization of the triaxial response of polymer-based composites.
- This research contributes to understanding composite material behavior under complex, multiaxial loading conditions.
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