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March 14, 2026Discover Mechanical Engineering0 citationsOpen Access

A weighting function approach to modeling the creep behavior of cellulose nanocrystal epoxy nanocomposites

EAEhsan AtaeiYMYounes MohammadiAZAli Akbar Pasha Zanoosi

Key Points

  • The aim is to explore how cellulose nanocrystals affect the creep behavior and mechanical properties of epoxy nanocomposites.
  • Extracted cellulose nanocrystals from cotton linters using acid hydrolysis.
  • Incorporated CNCs into an epoxy matrix at different weight percentages.
  • Conducted tensile and creep tests to assess mechanical and viscoelastic properties.
  • Developed a modified Norton-Bailey model to predict creep behavior.
  • Optimal CNC loading at 1.0 wt% improved tensile strength by 20% and elastic modulus by 21%.
  • Creep resistance enhanced, reducing Norton-Bailey coefficient A by 14%.
  • At 1.5 wt%, CNC agglomeration led to decreased toughness and creep performance.
  • The predictive model showed less than 10% error compared to experimental data.

Abstract

Abstract This study investigates the influence of cellulose nanocrystals (CNCs) on the creep behavior and mechanical performance of epoxy-based nanocomposites, with a focus on optimizing CNC loading for enhanced durability. CNCs were extracted from cotton linters via acid hydrolysis and incorporated into an epoxy matrix (DGEBA-based KER 828) at varying weight percentages (0.5, 1.0, and 1.5 wt%) using a combination of mechanical and ultrasonic dispersion techniques. Tensile and creep tests were conducted on bulk epoxy to evaluate the mechanical and viscoelastic properties. Results indicate that 1.0 wt% CNC loading yields optimal dispersion, improving tensile strength by 20% and elastic modulus by 21% compared to neat epoxy, while also enhancing creep resistance by reducing the Norton-Bailey creep coefficient A by 14%. However, at 1.5 wt%, CNC agglomeration induces stress concentration, leading to reduced toughness and diminished creep performance. A modified Norton-Bailey model incorporating a CNC weighting function was developed to predict the creep behavior of nanocomposites, validated through experimental data with less than 10% error. The weighting function, derived from normalized creep rates, peaks at 0.987 wt% CNC, closely aligning with the experimentally determined optimum. These findings highlight the critical role of nanoparticle dispersion and interfacial adhesion in determining long-term performance, establishing 1.0 wt% CNC as the optimal threshold for sustainable, high-performance composites in structural applications.

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Cite This Study

Ataei et al. (2026) studied this question.

synapsesocial.com/papers/69b4fc1fb39f7826a300cc6fhttps://doi.org/10.1007/s44245-026-00208-9
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