Hair-Reinforced Elastomer Matrix Composites: Formulation, Mechanical Testing, and Advanced Microstructural Characterization

Author:

Statnik Eugene S.1ORCID,Cvjetinovic Julijana2,Ignatyev Semen D.1ORCID,Wassouf Loujain3,Salimon Alexey I.1ORCID,Korsunsky Alexander M.14ORCID

Affiliation:

1. «LUCh» Lab, NUST MISIS, 119049 Moscow, Russia

2. Center for Photonic Science and Engineering, Skoltech, 121205 Moscow, Russia

3. Department of Physical Chemistry, NUST MISIS, 119049 Moscow, Russia

4. Trinity College, University of Oxford, Broad St., Oxford OX1 3BH, UK

Abstract

Epoxy matrix composites reinforced with high-performance fibers, such as carbon, Kevlar, and glass, exhibit excellent specific stiffness and strength in many mechanical applications. However, these composites are disappointingly non-recyclable and are usually disposed of in landfill sites, with no realistic prospect for biodegradation in a reasonable time. In contrast, moldable composites with carbonized elastomeric matrices developed in the last decades possess attractive mechanical properties in final net-shape products and can also be incinerated or recycled. Many carbon and inorganic fillers have recently been evaluated to adjust the properties of carbonized elastomeric composites. Renewable organic fillers, such as human or animal hair, offer an attractive fibrous material with substantial potential for reinforcing composites with elastomeric matrices. Samples of unidirectional fiber composites (with hair volume fractions up to 7%) and quasi-isotropic short fiber composites (with hair volume fractions up to 20%) of human hair-reinforced nitrile butadiene rubbers (HH-NBRs) were produced in the peroxide-cured and carbonized states. The samples were characterized using scanning electron microscopy (SEM), Raman spectroscopy, and photoacoustic microscopy. Mechanical tests were performed under tension using a miniature universal testing machine. The expected effect of fiber reinforcement on the overall mechanical performance was demonstrated for both cured and carbonized composites. Considerable enhancement of the elastic modulus (up to ten times), ultimate tensile strength (up to three times), and damage tolerance was achieved. The evidence of satisfactory interfacial bonding between hair and rubber was confirmed via SEM imaging of fracture surfaces. The suitability of photoacoustic microscopy was assessed for 3D reconstructions of the fiber sub-system’s spatial distribution and non-destructive testing.

Funder

National University of Science and Technology MISIS

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

Reference20 articles.

1. Sezgin, H., and Yalcin Enis, I. (December, January 30). Human hair fiber as a reinforcement material in composite structures. Proceedings of the 2nd International Symposium on Innovative Approaches n Scientific Studies, Samsun, Turkey.

2. Long and Short Human Hair Fiber-Reinforced Polymer Composites: Mechanical Properties for Engineering Applications;Arias;Mater. Sci. Forum,2022

3. Fibre reinforced cement-based (FRC) composites after over 40 years of development in building and civil engineering;Brandt;Compos. Struct.,2008

4. Use of horse hair as fiber reinforcement in concrete;Naik;Int. J. Adv. Res.,2015

5. Mechanical, microstructural and thermal characterization of epoxy-based human hair-reinforced composites;Verma;J. Test. Eval.,2019

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