Highly loaded carbon fiber filaments for 3D‐printed composites

Author:

Ramanathan Arunachalam1ORCID,Thippanna Varunkumar1ORCID,Kumar Abhishek Saji2ORCID,Sundaravadivelan Barath3ORCID,Zhu Yuxiang1ORCID,Ravichandran Dharneedar1ORCID,Yang Sui2,Song Kenan4ORCID

Affiliation:

1. Manufacturing Engineering, School of Manufacturing Systems and Networks (MSN), Ira A. Fulton Schools of Engineering Arizona State University (ASU) Mesa Arizona USA

2. Materials Science and Engineering, School for Engineering of Matter, Transport and Energy (SEMTE), Ira A. Fulton Schools of Engineering Arizona State University (ASU) Tempe Arizona USA

3. Mechanical Engineering, School for Engineering of Matter, Transport and Energy (SEMTE), Ira A. Fulton Schools of Engineering Arizona State University (ASU) Tempe Arizona USA

4. School of Environmental, Civil, Agricultural, and Mechanical Engineering (ECAM), College of Engineering University of Georgia Athens Georgia USA

Abstract

AbstractComposites play progressively significant roles across a spectrum of applications involving high‐performance materials and products within industries such as aerospace, naval, automotive, construction, missiles, and defense technology. Notably, oriented fiber composites have garnered substantial attention due to their advantageous attributes like a high strength‐to‐weight ratio and controlled anisotropy. Nonetheless, challenges persist in uneven fiber alignment, fiber clustering within the matrix material, and constraints on fiber volume, impeding the mass production of oriented fiber‐reinforced composites. In this study, we present a novel approach to 3D printing of uniformly aligned short fiber reinforcement in a composite of heavily loaded carbon and nylon. Capitalizing on the additive manufacturing potential of rapidity and precision, the extrusion process induces carbon fiber (CF) alignments in filaments via shear forces. The 3D‐printed structures that were created displayed impressive potential for customization. They consistently demonstrated improved mechanical and thermal properties when compared to the original nylon structures. Our methodology for producing uniformly dispersed and aligned short fiber reinforcement in polymer composites promises to propel the advancement of design and manufacturing for high‐performance composite materials and components.

Funder

American Chemical Society Petroleum Research Fund

Division of Civil, Mechanical and Manufacturing Innovation

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Physical and Theoretical Chemistry

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