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Analysis and Economic Evaluation of the Use of Recycled Polyamide Powder in Masonry Mortars

机译:砌体砂浆中再生聚酰胺粉末的分析与经济评价

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摘要

Due to the considerable amount of waste plastics and polymers that are produced annually, the introduction of these waste products in construction materials is becoming a recurrent solution to recycle them. Among polymers, polyamide represents an important proportion of polymer waste. In this study, sustainable and lightweight mortars were designed and elaborated, substituting the aggregates by polyamide powder waste. Mortars were produced with various dosages of cement/aggregates, and the polyamide substitutions were 25, 50, 75, and 100% of the aggregates. The aim of this paper is to determine the density and the compressive strength of the manufactured mortars to observe the feasibility for being employed as masonry or rendering and plastering mortars. Results showed that with increasing polymer substitution, lower densities were achieved, ranging from 1850 to 790 kg/m3 in modified mortars. Mortars with densities below 1300 kg/m3 are cataloged as lightweight mortars. Furthermore, compressive strength also decreased with more polyamide substitution. Obtained values in recycled mortars were between 15.77 and 2.10 MPa, but the majority of the values (eight out of 12) were over 5 MPa. Additionally, an economic evaluation was performed, and it was observed that the use of waste polyamide implies an important cost reduction, apart from the advantage of not having to manage this waste material. Consequently, not only the mechanical properties of the new recycled materials were verified as well as its economic viability.
机译:由于每年生产的大量废塑料和聚合物,在建筑材料中引入这些废物正在成为再循环它们的复发溶液。在聚合物中,聚酰胺代表了聚合物废物的重要比例。在这项研究中,设计和精细设计和精细的砂浆,通过聚酰胺粉末废物来代替聚集体。用各种剂量的水泥/聚集体制备砂浆,聚酰胺取代为25,50,75和100%的聚集体。本文的目的是确定制造砂浆的密度和抗压强度,观察用于砌体或呈现砌体和涂抹砂浆的可行性。结果表明,随着聚合物取代的增加,较低的密度,改性砂浆中的1850至790kg / m 3。密度低于1300 kg / m3的迫击炮被编目为轻质砂浆。此外,抗压强度也随着更多聚酰胺取代而降低。再循环砂浆中获得的值在15.77和2.10MPa之间,但大多数值(十分之八)超过5MPa。此外,进行了经济评估,观察到废聚酰胺的使用意味着一个重要的成本降低,除了不必管理这种废料的优点之外。因此,不仅验证了新的再循环材料的机械性能以及其经济可行性。

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