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Updated: Jan 15, 2026

Determining Tribocorrosion Rate and Wear-Corrosion Synergy of Bulk and Thin Film Aluminum Alloys
Published on: September 11, 2018
Mechanical performance and predictive tribological modeling of Al7075 composites reinforced with rice hull activated
Swapna Banoth1, Suresh Babu Valasingam1, Raghavendra Gujjala1
1Department of Mechanical Engineering, National Institute of Technology, Warangal, Telangana, 506004, India.
Abstract:
This work reports the development of a sustainable Al7075 metal matrix composite reinforced with bio-derived activated carbon (AC) obtained from rice hull agricultural waste. Unlike conventional reinforcements such as SiC and Al₂O₃, rice hull-derived AC provides an eco-friendly, lightweight, and cost-effective alternative. The composites were fabricated using ultrasonic stir casting with varying AC contents (2-8 wt%). Microstructural characterization (OM, FESEM-EDS, and XRD) confirmed uniform dispersion of AC and the absence of detrimental Al₄C₃ formation. Mechanical testing revealed that 2 wt% AC yielded the optimum properties, improving hardness (by 21%) and tensile strength (by 23%) compared to unreinforced Al7075. Abrasive wear studies showed enhanced wear resistance and reduced coefficient of friction at the same reinforcement level. Beyond mechanical and tribological assessment, this work introduces a predictive framework using machine learning models (Gradient Boosted Trees, Gaussian Process Regression), which achieved near-perfect accuracy (R² > 0.99 for wear, R² > 0.96 for COF). These findings establish rice hull-derived activated carbon as a viable reinforcement for Al7075 composites and highlight the potential of data-driven approaches in predicting tribological performance, thereby advancing sustainable and intelligent material design.
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