Evolution of the Viscoelastic Properties of Filler Reinforced Rubber under Physical Aging at Room Temperature

Polymers (Basel). 2023 Apr 6;15(7):1806. doi: 10.3390/polym15071806.

Abstract

Filler reinforced rubber is widely used for engineering applications; therefore, a sound characterization of the effects of physical aging is crucial for accurately predicting its viscoelastic properties within its operational temperature range. Here, the torsion pendulum is used to monitor the evolution of the storage and loss modulus of carbon black filled samples for four days after a temperature drop to 30 °C. The storage modulus presents a continuous increase, while the loss modulus generally displays a steady decrease throughout the four days that each test was conducted. The relationship of the recovery rates with the carbon black properties is also studied, analysing its dependency on the particle size and aggregate structure. The evolution of the recovery rate seems to depend linearly on the surface area while the carbon black structure appears to have a much weaker influence on the physical aging behavior for the set of compounds tested. The obtained results corroborate the presence of physical aging at room temperature for filler rubber materials and the ability of the torsion pendulum to monitor the storage and loss modulus change, providing pivotal data on the influence of physical aging on the viscoelastic properties of the material.

Keywords: carbon black; compressed oil adsorption number; external surface area; loss modulus; natural rubber; physical aging; reinforced rubber; storage modulus; torsion pendulum; viscoelastic properties.