Assessment of the potential for using PET waste as geomaterials in soil micro-reinforcement

Carlos J.P. Graça , Luís M. Ferreira-Gomes , Luis Andrade Pais , Antonio Albuquerque , Maria Vitoria Morais , André Studart , Leonardo Marchiori
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Abstract

The use of synthetic fibers to enhance soil properties is a growing area of research. This study investigates the incorporation of granulated polyethylene terephthalate (PET) waste – derived from crushed plastic soda bottles – into dune sand at 3 % and 5 % ratios to develop a novel composite material and promote PET fiber reuse as a sustainable solution. By valorizing PET waste, this approach reduces plastic pollution and mitigates the demand for natural resource extraction. Physical and mechanical characterization tests, including specific gravity, particle size distribution, normal proctor compaction, direct shear (DS), consolidated isotropic drained (CID) triaxial, and oedometric tests, were conducted on the dune sand, soil-PET mixtures, and pure PET residue. Results demonstrate that the addition of PET significantly influences the friction angle of the composite material, as evidenced by DS and triaxial CID tests. Specifically, the soil-PET mixtures exhibited enhanced shear strength compared to pure sand, while introducing 5 % of PET, the internal friction angle increased up to 12 % and 22 %, according to DS and CID triaxial tests, respectively, maintaining cohesionless behavior. These improvements are attributed to the reinforcing effect and interlocking behavior of PET particles within the sand matrix. The results indicate that PET addition enhances the shear strength and stability of sandy soils, supporting its use in earthworks. This study highlights the dual environmental and mechanical advantage of PET micro-reinforcement, providing a feasible route for plastic waste reuse in geotechnical engineering.

Abstract Image

PET废弃物作为土壤微加固材料的潜力评价
利用合成纤维增强土壤特性是一个日益发展的研究领域。本研究研究了将颗粒状聚对苯二甲酸乙二醇酯(PET)废料(来自破碎的塑料汽水瓶)以3%和5%的比例掺入沙丘沙中,以开发一种新型复合材料,并促进PET纤维的再利用,作为一种可持续的解决方案。通过使PET废物增值,这种方法减少了塑料污染,减轻了对自然资源开采的需求。对沙丘砂、土壤-PET混合物和纯PET残渣进行了物理力学表征试验,包括比重、粒径分布、正常普罗克特压实、直剪(DS)、固结各向同性排水(CID)三轴和径测试验。结果表明,PET的加入对复合材料的摩擦角有明显的影响,这是DS和三轴CID试验的结果。具体来说,与纯砂相比,土-PET混合物的抗剪强度得到了提高,根据DS和CID三轴试验,当引入5%的PET时,内摩擦角分别增加了12%和22%,保持了无粘结性。这些改进是由于PET颗粒在砂基体中的增强作用和联锁行为。结果表明,PET的加入提高了砂土的抗剪强度和稳定性,支持其在土方工程中的应用。本研究突出了PET微增强材料的环境和力学双重优势,为塑料废弃物在岩土工程中的再利用提供了一条可行的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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