Mechanics of Advanced Materials and Structures· 2026Q1
Multiscale damage modeling of quasi-UD composites using image-based homogenization
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- Q1SCImago
- 2026year
Short summary
A new multiscale homogenization framework accurately predicts transverse damage initiation and progression in quasi-UD composites by integrating microstructural details from experimental images.
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Key points
- A multiscale micro-meso homogenization framework is developed for quasi-UD composites.
- Reduced inter-fiber spacing accelerates damage initiation under transverse loading, particularly at low fiber volume fractions.
- Meso-scale simulations show damage initiates at binder-bundle crossover regions, governed by local fiber density.
- Model predictions show good agreement with experimental transverse tensile results.
AI-generated from the title and abstract; the full text is not read.
Abstract
This study presents a multiscale micro–meso homogenization framework to efficiently capture transverse strength and damage progression in quasi-UD composites. At the micro-scale, representative volume elements with systematically varied fiber volume fraction and inter-fiber spacing are analyzed to quantify their influence on transverse mechanical response. The results demonstrate that reduced inter-fiber spacing accelerates damage initiation under normal transverse loading, particularly at low local fiber volume fractions, while its effect diminishes at higher packing densities. These micro-scale responses are subsequently incorporated into a stochastic homogenization framework and mapped onto a meso-scale geometry reconstructed from experimental microstructural characterization, preserving realistic spatial variability within carbon bundles. Meso-scale simulations reveal that damage initiates preferentially at binder–bundle crossover regions, with the precise onset governed by local fiber density variations rather than average fiber volume fraction. Model predictions show good agreement with experimental transverse tensile results, establishing a computationally efficient and physically grounded approach for architecture-sensitive analysis of quasi-UD composites.
The authors' abstract, as published at the source. Mechanics of Advanced Materials and Structures, 2026 · DOI ↗
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