3.8 Article

An Integrated Multiscale Simulation Routine to Predict Mechanical Performance from Manufacturing Effects

Journal

JOURNAL OF MULTISCALE MODELLING
Volume 12, Issue 4, Pages -

Publisher

WORLD SCIENTIFIC PUBL CO PTE LTD
DOI: 10.1142/S1756973721430010

Keywords

Multiscale modeling; dual scale flow; porous media; micromechanics; structural analysis

Funding

  1. Agency for Science, Technology and Research (A*STAR) under Polymer Matrix Composites Programme (PMCP WP1-1) project [A19C1a0044 (NUS WBS R265000673305)]

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The study focuses on predicting mechanical properties of unidirectional composites using multiscale manufacturing simulation and micromechanical models. It considers the coupling effects between macro-scale preform processes and mesoscale ply processes, as well as between the solid and fluid phases. An integrated platform is designed for analysis and property calculation, enabling design and optimization of composites.
Structural performance of unidirectional composites (UD) is directly dependent on its ingredient's properties, ply configurations and the manufacturing effects. Prediction of mechanical properties using multiscale manufacturing simulation and micromechanical models is the focus of this study. Particular problem of coupled dual-scale deformation-flow process such as the one arising in RTM, Vacuum-Assisted Resin Infusion (VARI) and Vacuum Bag Only (VBO) prepregs is considered. A finite element formulation of porous media theory framework is employed to predict the element-wise local volume fractions and the deformation of a preform in a press forming process. This formulation considers coupling effects between macro-scale preform processes and mesoscale ply processes as well as coupling effects between the solid and fluid phases. A number of different micromechanical models are assessed and the most suitable one is used to calculate mechanical properties from volume fractions. Structural performance of the deformed geometry is then evaluated in mechanical analysis. An integrated platform is designed to cover the whole chain of analysis and perform the properties' calculation and transfer them between the modules in a smooth mapping procedure. The paper is concluded with a numerical example, where a compression-relaxation test of a planar fluid filled prepreg at globally un-drained condition is considered followed by a mechanical loading analysis. The development is user friendly and interactive and is established to enable design and optimization of composites.

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