[1] M. Shaker, S. S. Hamdani, T. S. Muzata, and M. Rabnawaz, “Driving selective upcycling of mixed polyethylene waste with table salt,” Scientific Reports, vol. 14, no. 1, pp. 1–11, Jun. 2024. [Online]. Available: https://www.nature.com/articles/s41598-024-63482-1
[2] S. S. Núñez, N. Ortuño, S. Fernández-Durán, J. Moltó, and J. A. Conesa, “Analysis and removal of bisphenols in recycled plastics using polyethylene glycol,” Scientific Reports, vol. 14, no. 1, pp. 1–11, Jun. 2024. [Online]. Available: https://www.nature.com/articles/s41598-024-63800-7
[3] P. Saraswat and B. Singh, “Utilization of recycled concrete aggregates in LDPE-bonded cementless paver blocks,” Construction and Building Materials, vol. 419, p. 135467, Mar. 2024.
[4] Z. Zhang, X. Zhang, W. Huang, X. Zheng, B. Ding, and X. Wang, “Breathable and wearable graphene/waterborne polyurethane coated regenerated polyethylene terephthalate fabrics for motion sensing and thermal therapy,” Discover Nano, vol. 19, no. 1, pp. 1–14, Dec. 2024. [Online]. Available: https://link.springer.com/article/10.1186/s11671-024-04004-w
[5] M. Esmaeili, I. Ara, V. Ippolitov, T. Rissanen, and I. Anugwom, “Unlocking sustainable solutions: Harnessing recycled polyester from waste polyester/cotton blended textiles for membrane development,” Chemical Engineering Science, vol. 298, p. 120367, Oct. 2024.
[6] M. Gonçalves, F. Freire, and R. Garcia, “Material flow analysis and circularity assessment of plastic packaging: An application to Portugal,” Resources, Conservation & Recycling, vol. 209, p. 107795, Oct. 2024.
[7] A. Khaki, C. Gerlach, K. Ragaert, and R. Fiorio, “Root causes of post-consumer high-density polyethylene failing in new bottles,” Resources, Conservation & Recycling, vol. 209, p. 107776, Oct. 2024.
[8] B. M. Tosarkani, S. H. Amin, and M. R. Ghiasvand, “Designing a sustainable plastic bottle reverse logistics network: A data-driven optimization approach,” Expert Systems with Applications, vol. 251, p. 123918, Oct. 2024.
[9] J. Krämer et al., “Increasing the melt viscosity of post-consumer recycled polypropylene via E-Beam techniques,” Radiation Physics and Chemistry, vol. 222, p. 111846, Sep. 2024.
[10] A. Oyelere et al., “Evaluation of cracking susceptibility of asphalt binders modified with recycled high-density polyethylene and polypropylene microplastics,” Construction and Building Materials, vol. 438, p. 136811, Aug. 2024.
[11] J. Geier et al., “Feasibility study on the production of low melt flow rate recycled polypropylene from postconsumer waste,” Journal of Applied Polymer Science, vol. 141, no. 30, e55694, Aug. 2024. [Online]. Available: https://onlinelibrary.wiley.com/doi/full/10.1002/app.55694
[12] Y. Q. Liu, Z. K. Li, H. R. Zhang, Z. W. Wang, and C. Y. Hu, “Effect of recycled polypropylene on migration of six processing aids in polypropylene film to milk,” Food Packaging and Shelf Life, vol. 44, p. 101316, Jul. 2024.
[13] C. Fan, Y. Z. Huang, J. N. Lin, and J. Li, “Microplastic constituent identification from admixtures by Fourier-transform infrared (FTIR) spectroscopy,” Environmental Technology & Innovation, vol. 23, p. 101798, Aug. 2021.
[14] H. S. Khabbaz et al., “Rheological insights into the degradation behavior of PP/HDPE blends,” Polymer Degradation and Stability, vol. 225, p. 110819, Jul. 2024.
[15] C. Angulo, L. R. Shackleford, H. Ning, and S. Pillay, “Comparative study on the mechanical behaviors of compression molded, additively manufactured, and injection molded recycled carbon fiber reinforced rHDPE composites,” Composites Part B: Engineering, vol. 275, p. 111323, Apr. 2024.
[16] ASTM International, “ASTM C39/C39M-23: Standard Test Method for Compressive Strength of Cylindrical Concrete Specimens,” West Conshohocken, PA, 2023. [Online]. Available: https://www.astm.org/c0039_c0039m-23.html
[17] ASTM International, “ASTM C469/C469M-22: Standard Test Method for Static Modulus of Elasticity and Poisson’s Ratio of Concrete in Compression,” West Conshohocken, PA, 2022. [Online]. Available: https://www.astm.org/c0469_c0469m-22.html
[18] ASTM International, “ASTM C29/C29M-23: Standard Test Method for Bulk Density (‘Unit Weight’) and Voids in Aggregate,” West Conshohocken, PA, 2023. [Online]. Available: https://www.astm.org/c0029_c0029m-23.html
[19] ASTM International, “ASTM C128/C128M-22: Standard Test Method for Relative Density (Specific Gravity) and Absorption of Fine Aggregate,” West Conshohocken, PA, 2022. [Online]. Available: https://www.astm.org/c0128_c0128m-22.html
[20] ASTM International, “ASTM C33/C33M-23: Standard Specification for Concrete Aggregates,” West Conshohocken, PA, 2023. [Online]. Available: https://www.astm.org/c0033_c0033m-23.html
[21] Instituto Ecuatoriano de Normalización, “NTE INEN 696:2016: Áridos. Análisis granulométrico en los áridos, fino y grueso,” Quito, 2016. [Online]. Available: https://www.normalizacion.gob.ec/normas-tecnicas-ecuatorianas/
[22] Instituto Ecuatoriano de Normalización, “NTE INEN 858:2010: Áridos. Determinación de la masa unitaria (peso volumétrico) y el porcentaje de vacíos,” Quito, 2010. [Online]. Available: https://www.normalizacion.gob.ec/normas-tecnicas-ecuatorianas/
[23] Instituto Ecuatoriano de Normalización, “NTE INEN 0856:2010: Áridos. Determinación de la densidad, densidad relativa (gravedad específica) y absorción del árido fino,” Quito, 2010. [Online]. Available: https://www.normalizacion.gob.ec/normas-tecnicas-ecuatorianas/
[24] Instituto Ecuatoriano de Normalización, “NTE INEN 695:2010: Áridos. Muestreo,” Quito, 2010. [Online]. Available: https://www.normalizacion.gob.ec/normas-tecnicas-ecuatorianas/