Ferrández Daniel, Zaragoza-Benzal Alicia, Carballosa Pedro, García Calvo José Luis, Santos Paulo
Escuela Técnica Superior de Edificación, Universidad Politécnica de Madrid, Avda. Juan de Herrera, 6, 28040 Madrid, Spain.
Instituto de Ciencias de la Construcción "Eduardo Torroja" (IETcc-CSIC), C/Serrano Galvache 4, 28033 Madrid, Spain.
Materials (Basel). 2025 Aug 28;18(17):4037. doi: 10.3390/ma18174037.
Managing plastic waste is a great challenge for today's society, and it is increasingly necessary to find solutions to the large amount of plastic waste dumped annually in the oceans. The main objective of this research is to perform a comprehensive characterisation of different gypsum-based materials incorporating recycled PP/HDPE pellets from the recycling of discarded fishing nets in the Mediterranean Sea. For this purpose, composites were developed with a partial substitution of the original material by these pellets, up to 30% by volume, while maintaining a water/gypsum ratio of 0.65 by mass. The results showed that even in the most unfavourable case, with a 30% replacement in volume by these recycled pellets, flexural (2.72 MPa) and compressive (7.15 MPa) strengths higher than those required by the standards were obtained, with good integration of the residue in the matrix. Also, there was a decrease in total water absorption of up to 20.5% compared to traditional gypsum. The thermal behaviour study showed that a minimum conductivity value of 292.3 mW/m K was obtained, implying a decrease of 14.9% from the control series. In addition, a life cycle analysis was conducted, obtaining a reduction in environmental impact of up to 13.1% in terms of CO equivalent emissions. Overall, the composites obtained represent a sustainable alternative to producing prefabricated plates and panels for building construction.
管理塑料垃圾是当今社会面临的一项巨大挑战,而且越来越有必要找到解决每年倾倒在海洋中的大量塑料垃圾的办法。本研究的主要目的是对不同的石膏基材料进行全面表征,这些材料包含从地中海废弃渔网回收的再生PP/HDPE颗粒。为此,开发了复合材料,用这些颗粒部分替代原始材料,体积替代率高达30%,同时保持质量水/石膏比为0.65。结果表明,即使在最不利的情况下,即这些再生颗粒的体积替代率为30%时,也能获得高于标准要求的抗折强度(2.72MPa)和抗压强度(7.15MPa),且残渣在基体中具有良好的结合性。此外,与传统石膏相比,总吸水率降低了20.5%。热性能研究表明,获得的最低导热系数值为292.3mW/m·K,这意味着比对照系列降低了14.9%。此外,还进行了生命周期分析,在二氧化碳当量排放方面,环境影响降低了13.1%。总体而言,所获得的复合材料是生产建筑用预制板和面板的可持续替代品。