Reprint

Carbon Fiber Composites

Edited by
August 2024
362 pages
  • ISBN978-3-7258-1063-5 (Hardback)
  • ISBN978-3-7258-1064-2 (PDF)

This is a Reprint of the Special Issue Carbon Fiber Composites that was published in

Chemistry & Materials Science
Engineering
Summary

Many efforts have been made to create light-weight materials that maintain excellent physical and chemical properties, aiming at energy savings and property enhancement for aerospace, automotive, marine, and industrial applications over the past few decades. Among them, carbon fibers and their composites have attracted significant attention because of their unique properties, including high strength and modulus, novel dimensional stability, high surface area/volume ratios, low coefficient of thermal expansion, etc. Therefore, they have been widely applied in fields of energy storage, filtration, aircraft, etc., via advanced manufacturing technologies (i.e., wet/melt spinning, solution casting, 3D printing, etc.). Processing–structure–property relationships of carbon fibers and their composites are crucial for their future applications in the fields of energy, engineering, and the environment. Various precursors and processing approaches have been studied to prepare carbon fibers and composites with specific structures to achieve excellent multifunctional properties, consisting of better mechanical, thermal, electrical, and barrier properties. However, to date, lowering the manufacturing cost and expanding their applications remain challenging. The main aim of this Special Issue is to tackle the points mentioned above for the preparation, characterization, and properties of advanced carbon fibers and their composites to offer an insight into them, facilitating their practical applications in various fields.

Format
  • Hardback
License and Copyright
© 2024 by the authors; CC BY-NC-ND license
Keywords
power ultrasonic; expansion; carbon fiber; glass fiber; pultrusion; closed-injection pultrusion; carbon nano fiber; sensing; tissue engineering; renewables; composite sandwich structure; impact performance; bending behavior; arctic temperature; fiber reinforced polymer; sensor integration; interdigital sensor; curing process monitoring; epoxy; curing; film sensor; flexible sensor; thermoplast; composite plate; carbon fiber; glass fiber; impact; finite elements; CFRP; composite; graphene; contact molding; mechanical properties; fracture toughness; carbon composites; knowledge-based data boosting; predictive analytic; machine learning; flexible riser; tensile armor; carbon fiber; composite tensile armor; CF rod reinforced PLA (CFRPLA); solid carbon fiber rod; fused deposition modeling (FDM); process parameters; tensile strength; carbon fibers; prepreg processing; fluid flow; viscosity; wettability; carbon fiber; epoxy matrix; thermal cycling; mechanical and thermal properties; structural health monitoring (SHM); carbon nanotubes (CNT); quantum piezo-resistive sensor (QRS); in situ measurements; smart materials; embedded sensors; advanced composite cure simulation; carbon fiber-reinforced composites; optimization study; process-induced shape deformation; design of experiments; Latin hypercube sampling; barely visible impact damage (BVID); composite structures; damage detection; carbon fiber reinforced polymer (CFRP); acoustic emission; structural health monitoring; piezoelectric wafer active sensors (PWAS); carbon-polymer adhesion; mechanical interlocking; PAN; PET; polypropylene; composites; carbon fiber; recycling; nonwoven; carding; hot pressing; polyamide 6; polyethylene terephthalate; composite beams; finite element analysis; glass fiber; carbon fiber; polymer matrix; carbon fiber; low cost; finite element method; stress concentration; damage tolerance; delamination; damage growth; impact; fatigue; fatigue after impact; metal matrix composite; carbon short fiber; preform-less; low pressure infiltration; thermal and mechanical property; graphene-encapsulated; electrospinning; OER; nanoparticles; additive manufacturing; compressive properties; carbon fiber reinforced plastics; composites; thermoplastics; polymers; mechanical performance; materials science; fuzzy carbon fiber; turbostratic interconnected graphene; molecular dynamics; interfacial property; uniaxial deformation; n/a