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February 5, 20260 citations

Adhesion and interaction of inorganic binder systems with a biodegradable polymer based on polylactic acid

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RGRadoslav GandelNPNestor PlastunPCPetr Cmiel

Key Points

  • The study aims to investigate the adhesion properties of polylactic acid with different types of concrete and their mechanical performance.
  • Conducted three-point bending tests to evaluate adhesion and flexural strength.
  • Compared polylactic acid-based polymer with ordinary Portland cement, high-performance concrete, and alkali-activated materials.
  • Analyzed the effects of different matrices on bond strength and mechanical performance.
  • Polylactic acid showed the strongest adhesion with ordinary Portland cement concrete (OPCC).
  • OPCC specimens exhibited the highest flexural strength gains with polylactic acid at 60%.
  • High-performance concrete and alkali-activated material displayed reduced adhesion, with flexural strength decreasing by up to 20%.

Abstract

The interaction of common building materials with materials with diametrically different physical-mechanical properties represents one of the main problems in the creation of new types of composites. Some types of polymers have proven themselves in the past in the form of dispersed reinforcement. However, the overuse of plastics and the problem of their disposal now provides an open door for other alternative ideas. This work deals with the observation of the adhesion of a biodegradable polylactic acid-based polymer with composites such as conventional concrete, high-performance concrete and alkali-activated system under three-point bending test. Results show that adhesion and mechanical performance depend strongly on both the matrix and reinforcement type. Ordinary Portland cement concrete (OPCC) specimens demonstrated the best bond with polylactic acid (PLA) and the highest flexural strength gains, particularly with ribbed PLA (60 %). In contrast, high-performance concrete (HPC) and alkali-activated material (AAM) showed reduced adhesion, with flexural strength decreasing by up to 20 %.

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Cite This Study

Gandel et al. (2025) studied this question.

synapsesocial.com/papers/6984343ff1d9ada3c1fb2370https://doi.org/10.1051/e3sconf/202564101024/pdf
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