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February 8, 2026Polymers4 citationsOpen Access

Effects of Repeated Thermo-Mechanical Processing on the Degradation Behavior of Bottle-Grade PET Under Controlled Conditions

MSMària StrakováSHSlávka HlaváčikováJFJozef Feranc

Key Points

  • The study aims to systematically investigate the degradation behavior of bottle-grade PET under controlled thermo-mechanical processing.
  • Simulated mechanical recycling using a co-rotating twin-screw extruder.
  • Subjected PET to up to four consecutive processing cycles.
  • Measured changes in intrinsic viscosity, molecular weight, melt flow rate, and ductility.
  • Conducted differential scanning calorimetry to analyze thermal properties.
  • Intrinsic viscosity decreased from approximately 0.80 to 0.65 dL·g−1.
  • Molecular weight reduced, and melt flow rate increased, indicating loss of melt strength.
  • Degree of crystallinity increased from about 23.0% to 29.5%.
  • Ductility decreased significantly, with elongation at break dropping from about 84% to 60%.
  • Optical analysis showed material darkening correlated with intrinsic viscosity.

Abstract

Mechanical recycling of polyethylene terephthalate (PET) is a key strategy for circular packaging applications; however, repeated thermo-mechanical processing leads to progressive polymer degradation. In this study, the effect of controlled repeated extrusion on the degradation behavior of bottle-grade PET was systematically investigated under laboratory conditions. Mechanical recycling was simulated using a co-rotating twin-screw extruder, where PET was subjected to up to four consecutive processing cycles corresponding to a cumulative residence time of 8 min. Progressive processing resulted in chain scission, reflected by a decrease in intrinsic viscosity from approximately 0.80 to 0.65 dL·g−1 and a corresponding reduction in molecular weight. Melt flow rate increased accordingly, indicating a gradual loss of melt strength. Differential scanning calorimetry revealed that the glass transition and melting temperatures remained nearly unchanged, while the degree of crystallinity increased from approximately 23.0% to 29.5%, accompanied by changes in crystallization behavior. These structural changes led to reduced ductility, with elongation at break decreasing from about 84% to 60%. Optical analysis showed systematic material darkening, and a strong linear correlation between lightness (L*) and intrinsic viscosity was observed. By isolating intrinsic thermo-mechanical degradation effects under controlled processing conditions, this study enables a clearer definition of realistic reuse limits for mechanically recycled bottle-grade PET. The results indicate that bottle-grade PET retains properties compatible with demanding applications only after a limited number of thermo-mechanical processing cycles, whereas further processing restricts its usability to less demanding applications such as fibers, films, and non-food packaging.

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Cite This Study

Straková et al. (2026) studied this question.

synapsesocial.com/papers/6988278b0fc35cd7a88466echttps://doi.org/10.3390/polym18030416
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