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◆ Materials Technology2026-02-21· Ultimate tensile strength

Experimental characterisation and machine learning (ML)-based tensile strength prediction of sugarcane bagasse, hemp and flax fibre hybrid composites for potential biomedical applications

S. Sathees Kumar, P. Shyamala, V. Vignesh, Muhammad Imam Ammarullah

原始摘要(英文原文)· Original abstract
This study presents a novel tri-fibre hybrid composite consisting of flax fibre, hemp fibre and sugarcane bagasse embedded in a vinyl ester matrix. Six composite formulations (H1–H6) were fabricated by varying the fibre composition at a constant resin content. The mechanical properties were evaluated through tensile, flexural, impact, and Shore D hardness tests. Sample H6 (SB 20%, HF 15%, FF 15%) exhibited superior performance, achieving improvements of 40.7% in tensile strength, 44.1% in flexural strength, 44.4% in impact strength, and 10.2% in hardness compared to H1. Thermal and structural stability were confirmed using TGA, XRD, and FTIR analyses. One-way ANOVA indicated highly significant improvements (p < 0.001). ML models were applied to predict the tensile strength, with the random forest model achieving the highest accuracy (95.4%). The results demonstrate the potential of these hybrid composites for sustainable biomedical applications.
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Experimental characterisation and machine learning (ML)-based tensile strength prediction of sugarcane bagasse, hemp and flax fibre hybrid composites for potential biomedical applications — 科研速览 Science Skim