Reshma Sonkusare, Hajo Dieringa
Carbon fiber-reinforced magnesium (CFRM) composites are promising materials for aerospace, automotive, and structural applications due to their high specific strength, modulus, and low coefficient of thermal expansion (CTE). This study investigates the thermal expansion, dynamic Young's modulus, and damping of CFRM composites fabricated by adding recycled carbon fibers (rCF) to molten AZ91 magnesium alloy using stir casting. The molten mixture was stirred for uniform fiber distribution and then solidified and hot-extruded to form the final profile. The effects of varying rCF content (2.5 and 5 wt.%) on the composite's thermal and mechanical properties were analyzed. The results showed that increasing rCF content significantly reduced the CTE, indicating improved thermal stability. Additionally, dynamic Young's modulus increased with higher rCF content, emphasizing the importance of carbon fiber in enhancing the material's stiffness. The use of rCF provides an environmentally more sustainable and cost-effective alternative to virgin CF while maintaining high performance. These findings support the development of CFRM composites for lightweight, high-strength applications with improved dimensional stability, using rCF as reinforcement.
@article{35a12c5e-405e-4b16-96cc-bdf8f51b9383,
title={Young/C213s Modulus, Damping, and Thermal Expansion of a Sustainable Magnesium Composite Containing Recycled C-Fibers},
author={Reshma Sonkusare and Hajo Dieringa},
year={2026},
language={en}
}TY - JOUR TI - Young/C213s Modulus, Damping, and Thermal Expansion of a Sustainable Magnesium Composite Containing Recycled C-Fibers AU - Reshma Sonkusare AU - Hajo Dieringa PY - 2026 LA - en ER -
This paper addresses the challenge of assessing the feasibility of wind power plant projects at sites with insufficient or no local historic wind data
Important advances in electrochemical engineering technology over the last three decades have fostered the development of a lternative methods to alle
Increasing volumes of waste printed circuit boards from obsolete electronic equipment posed escalating environmental risks and resource losses due to
The leachability tests for manufacturing scrap TV boards (STVB) have indicated the release of metals beyond the limit levels with potential problems f