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Estimation of the surface tension and dispersive and polar components of polymers as a function of temperature for composite manufacturing applications
Article de revue scientifique   Open Access   Avec comité de lecture

Estimation of the surface tension and dispersive and polar components of polymers as a function of temperature for composite manufacturing applications

Rami Alawar, Pierre-Jacques Liotier, Romain Ravel et Monica Francesca Pucci
Polymer Testing, Vol.156
03/2026

Résumé

Surface characterization Molten thermoplastic Temperature Dispersive component Polarity Surface tension
Understanding adhesion between fiber and matrix at elevated temperatures is essential for improving the mechanical performance of polymer-based composites, especially with thermoplastic matrices. However, detailed characterization of polymer surface tension and its polar and dispersive components as a function of temperature remains limited. In this work, reliable methods were set using the Wilhelmy plate and pendant drop approaches to investigate these properties against temperature. First, experimental procedures were developed, optimized, and validated through cross-comparison with reference liquids of known surface tension and components. Accurate and reproducible measurements were secondly achieved across a range of elevated temperatures for liquid polymers (polyethylene glycol, bio-based epoxy) and for molten thermoplastics (polypropylene, polylactic acid). The results reveal a linear decrease in surface tension with increasing temperature and contribute to a better understanding of fiber wetting phenomena. Additionally, a procedure was set to determine polymer dispersive and polar components as a function of temperature. Due to the volatility and thermal limitation of n-hexane used in interfacial tension measurements, alternative probe liquids were systematically evaluated. Silicone and paraffin oil were identified and validated as suitable replacements, enabling reliable measurements with polymers at high temperatures. These key findings demonstrate robust methodology for high-temperature surface characterization and provide essential data to understand fiber–matrix adhesion under realistic processing conditions.

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