Geotechnical characterisation and sustainability assessment of plastic waste inclusions on a cement-treated fine-grained soil for pavement applications

IF 5.5 2区 工程技术 Q1 ENGINEERING, CIVIL Transportation Geotechnics Pub Date : 2025-02-09 DOI:10.1016/j.trgeo.2025.101515
Charakho N. Chah , Sreedeep Sekharan , Vimal Katiyar
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Abstract

Global economic growth leads to massive plastic waste increase, posing severe environmental challenges worldwide. Addressing it demands innovative solutions like repurposing plastics for construction. Extensive engineering and environmental assessments can accelerate their adoption. This study explores the potential incorporation of plastic waste (in flake and pellet forms) into a cement-treated fine-grained soil through a comprehensive geotechnical experimental testing program and Life Cycle Assessment (LCA) study to assess their environmental sustainability. Experimental investigations were conducted on four distinct plastic types, namely polypropylene (PP), high-density polyethylene (HDPE), polylactic acid (PLA), and polyethylene terephthalate (PET), with varying weight percent inclusions of 2 %, 4 %, and 6 %. Results revealed a decreasing trend in maximum dry densities and strength (both unconfined compressive strength (UCS) and split tensile strength (STS)) with increasing plastic content. Sorptivity of soil generally increased with plastic inclusions, yet in the case of PET, for plastic content > 4 %, a notable drop in the rate of increase was observed. California bearing ratio (CBR) test results indicated a reduction in the CBR values by up to 18.33 % for 6 % plastic inclusions. LCA study findings favoured plastic flakes over pellets as a more sustainable material choice, exhibiting a lower environmental impact across all assessed indicators. This research findings offer insights into the potential utilization of plastic waste and promote sustainable geomaterial choices in road pavement construction.
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用于路面应用的水泥处理细粒土壤上塑料废物夹杂物的岩土技术特征和可持续性评估
全球经济增长导致塑料垃圾大量增加,给全球环境带来严峻挑战。解决这个问题需要创新的解决方案,比如将塑料重新用于建筑。广泛的工程和环境评估可以加速它们的采用。本研究通过全面的岩土工程实验测试程序和生命周期评估(LCA)研究来评估其环境可持续性,探讨了塑料废物(以片状和颗粒形式)进入水泥处理的细粒土壤的可能性。实验研究了四种不同的塑料类型,即聚丙烯(PP)、高密度聚乙烯(HDPE)、聚乳酸(PLA)和聚对苯二甲酸乙二醇酯(PET),它们的夹杂物重量百分比分别为2%、4%和6%。结果表明,随着塑料含量的增加,最大干密度和强度(无侧限抗压强度和劈裂抗拉强度)均呈下降趋势。土壤的吸附性通常随着塑料夹杂物的增加而增加,但在PET的情况下,对于塑料含量>;4%时,增长率明显下降。加州承载比(CBR)测试结果表明,当含有6%的塑性夹杂物时,CBR值降低高达18.33%。LCA的研究结果表明,与颗粒相比,塑料薄片是更可持续的材料选择,在所有评估指标中显示出更低的环境影响。该研究结果为塑料废物的潜在利用提供了见解,并促进了道路路面施工中可持续岩土材料的选择。
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来源期刊
Transportation Geotechnics
Transportation Geotechnics Social Sciences-Transportation
CiteScore
8.10
自引率
11.30%
发文量
194
审稿时长
51 days
期刊介绍: Transportation Geotechnics is a journal dedicated to publishing high-quality, theoretical, and applied papers that cover all facets of geotechnics for transportation infrastructure such as roads, highways, railways, underground railways, airfields, and waterways. The journal places a special emphasis on case studies that present original work relevant to the sustainable construction of transportation infrastructure. The scope of topics it addresses includes the geotechnical properties of geomaterials for sustainable and rational design and construction, the behavior of compacted and stabilized geomaterials, the use of geosynthetics and reinforcement in constructed layers and interlayers, ground improvement and slope stability for transportation infrastructures, compaction technology and management, maintenance technology, the impact of climate, embankments for highways and high-speed trains, transition zones, dredging, underwater geotechnics for infrastructure purposes, and the modeling of multi-layered structures and supporting ground under dynamic and repeated loads.
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