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Multi-scale modelling of 2D woven composites accounting for in-plane shear

作者:Meng yi Song, Adam J. Thompson, Bassam El Said, Stephen R. Hallett · 发表于:Composite Structures · 年份:2025 · DOI:10.1016/j.compstruct.2025.119165 · 被引用次数:5 · 研究领域:Mechanical Behavior of Composites、Composite Material Mechanics、Structural Analysis and Optimization

Components manufactured from 2D textile composites often exhibit spatial variations in properties when formed into 3D shapes, particularly in areas of high double curvature where the textile must shear to conform to the geometry. During in-plane shear, the fibres rotate away from their default orthogonal positions in a non-linear process driven by contacts and friction, consequently altering the material’s anisotropic behaviour. To address this, a novel automated workflow that integrates advanced process modelling with high-fidelity structural analysis has been developed. By employing a multi-scale approach, this workflow enables the effects of tow deformations caused by manufacturing processes to be realised at the component level, improving the accuracy of component structural models. Homogenised material properties are extracted from pre-sheared meso-scale RVE models with realistic deformed geometries for use in macro-scale component-level models, while also accounting for RVE rotation. • Visualise homogenised RVE properties in a 360°view with varying in-plane shear angle. • Using diagonals of RVE as material axis maintains orthogonality under in-plane shear. • 371% stress increase at critical regions of a part when accounting for in-plane shear.