Evaluation of eco-friendly concrete having waste PET as fine aggregates

被引:34
作者
Bamigboye, Gideon O. [1 ]
Tarverdi, Karnik [2 ]
Umoren, Amarachi [1 ]
Bassey, Daniel E. [1 ]
Okorie, Uchechukwu [3 ]
Adediran, Joel [1 ]
机构
[1] Covenant Univ, Dept Civil Engn, Ota, Ogun, Nigeria
[2] Brunel Univ London, Dept Chem Engn, Uxbridge, England
[3] Covenant Univ, Dept Econ, Ota, Ogun, Nigeria
来源
CLEANER MATERIALS | 2021年 / 2卷
关键词
Construction materials; Compressive strength; Fine aggregates; Concrete; Polyethylene terephthalate; Cement; PLASTIC WASTE; POLYETHYLENE TEREPHTHALATE; IMPACT RESISTANCE; CURING CONDITIONS; COARSE AGGREGATE; PERFORMANCE; REPLACEMENT; DURABILITY; BOTTLES; SAND;
D O I
10.1016/j.clema.2021.100026
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This study assesses the impacts of recycling waste polyethylene terephthalate (PET) plastic bottles as a partial substitute for fine natural aggregates on the workability, mechanical, microstructural, economic, and thermal properties of concrete. The mix design adopts a concrete mix ratio of 1:2:4 for grade M25, 0.55 water/cement ratio, ordinary Portland cement (OPC) as the binder, varying proportions of heat-processed waste PET and river sand as fine aggregates, and granite as coarse aggregate. Results indicate that workability increased with increasing percentages of waste PET plastics until the 40%PET level, beyond which workability reduces. Compressive and split tensile strength decreased with increasing percentages of waste PET plastics. However, 10% to 40%-PET-modified mixes achieved the recommended strength for M20 concrete. Microstructural analysis on the 30%PET indicates higher quantities of O and Ca, and trivial percentages of Mg, Si, C, Al, and Au. Whereas 100%PET indicates the presence of only C, O, and Au. 100%PET endures three transition stages during heat flow. A glass transition, an exothermic peak below decomposition temperature during cooling at a temperature of 199.88 degrees C from PET crystallization, and a baseline shift after the endothermic peak at 243.22 degrees C. Thermogravimetry revealed that 100%PET suffers a dual-stage decomposition, an initial stage accounting for an 87.41% reduction in sample mass and a second stage accounting for a further mass loss of 12.79%. Highly significant statistical correlations and regressions developed variations between PET% and the workability and mechanical parameters. The study shows that heat-processed PET-modified concrete is appropriate for structural applications due to its suitable fresh, mechanical, microstructural, and thermal properties. Besides, this practice is eco-friendly and sustainable as it conserves natural resources.
引用
收藏
页数:12
相关论文
共 53 条
[1]   An investigation on the use of shredded waste PET bottles as aggregate in lightweight concrete [J].
Akcaozoglu, Semiha ;
Atis, Cengiz Duran ;
Akcaozoglu, Kubilay .
WASTE MANAGEMENT, 2010, 30 (02) :285-290
[2]   The use of granulated plastic waste in structural concrete [J].
Akinyele, J. O. ;
Ajede, A. .
AFRICAN JOURNAL OF SCIENCE TECHNOLOGY INNOVATION & DEVELOPMENT, 2018, 10 (02) :169-175
[3]   Influence of content and particle size of waste pet bottles on concrete behavior at different w/c ratios [J].
Albano, C. ;
Camacho, N. ;
Hernandez, M. ;
Matheus, A. ;
Gutierrez, A. .
WASTE MANAGEMENT, 2009, 29 (10) :2707-2716
[4]   Use of recycled plastic as fine aggregate in cementitious composites: A review [J].
Almeshal, Ibrahim ;
Tayeh, Bassam A. ;
Alyousef, Rayed ;
Alabduljabbar, Hisham ;
Mohamed, Abdeliazim Mustafa ;
Alaskar, Abdulaziz .
CONSTRUCTION AND BUILDING MATERIALS, 2020, 253
[5]   Use of waste polymers in concrete for repair of dam hydraulic surfaces [J].
Alves Galvao, Jose Carlos ;
Portella, Kleber Franke ;
Joukoski, Alex ;
Mendes, Roberto ;
Ferreira, Elizeu Santos .
CONSTRUCTION AND BUILDING MATERIALS, 2011, 25 (02) :1049-1055
[6]  
Amalu R., 2016, Int. J. Sci. Eng. Res., V7
[7]   Effect of thermal cycling on the properties of high-performance concrete: Microstructure and mechanism [J].
An, Mingzhe ;
Huang, Hanfeng ;
Wang, Yue ;
Zhao, Guanyuan .
CONSTRUCTION AND BUILDING MATERIALS, 2020, 243
[8]  
[Anonymous], 2018, ASTM E2160-04, DOI [10.1520/E2160-04R18, DOI 10.1520/E2160-04R18]
[9]  
[Anonymous], 2015, ASTM Standard C134/C134M-15a, DOI [10.1520/C0143C0143M-15A, DOI 10.1520/C0143C0143M-15A]
[10]  
[Anonymous], 2018, Single-Use Plastic: A Roadmap for Sustainability