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Innovative Composite Aggregates from Thermoplastic Waste for Circular Economy Mortars

npj Climate and Atmospheric Science 2025 1 citation ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count.
Abdelhak Badache, Noureddine Latroch, Mostefa Hacini, Ahmed Soufiane Benosman, Mohamed Mouli, Y. Senhadji, Walid Maherzi

Summary

Researchers developed lightweight synthetic sand (LSS) from dune sand and recycled PET bottles as a natural sand replacement in mortars, finding that up to 25% LSS substitution retains 80% of compressive strength while improving thermal insulation, acoustic properties, and durability, supporting circular economy construction applications.

Polymers

This study investigates sustainable mortars using lightweight synthetic sand (LSS), made from dune sand and recycled PET bottles, to replace natural sand (0–100% by volume). This aligns with circular economy principles by valorizing plastic waste into a construction aggregate. LSS is produced via controlled thermal treatment (250 ± 5 °C, 50–60 rpm), crushing, and sieving (≤3.15 mm), leading to a significantly improved interfacial transition zone (ITZ) with the cement matrix. The evaluation included physico-mechanical tests (density, strength, UPV, dynamic modulus, ductility), thermal properties (conductivity, diffusivity, heat capacity), porosity, sorptivity, alkali–silica reaction (ASR), and SEM. The results show LSS incorporation reduces mortar density (4–23% for 25–100% LSS), lowering material and logistical costs. While compressive strength decreases (35–70%), these mortars remain suitable for low-stress applications. Specifically, at ≤25% LSS, composites retain 80% of their strength, making them ideal for structural uses. LSS also enhances ductility and reduces dynamic modulus (18–69%), providing beneficial flexibility. UPV decreases (8–39%), indicating improved acoustic insulation. Thermal performance improves (4–18% conductivity reduction), suggesting insulation applicability. A progressive decrease in sorptivity (up to 46%) enhances durability. Crucially, the lack of ASR susceptibility reinforces long-term durability. This research significantly contributes to the repurposing of plastic waste into sustainable cement-based materials, advancing sustainable material management in the construction sector.

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