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Recycled Polyethylene Fibres for Structural Concrete

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Recycled Polyethylene Fibres for Structural Concrete ( recycled-polyethylene-fibres-structural-concrete )

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Appl. Sci. 2022, 12, 2867 18 of 20 References 1. Sainz-Aja, J.; Thomas, C.; Carrascal, I.; Polanco, J.A.; de Brito, J. Fast fatigue method for self-compacting recycled aggregate concrete characterization. J. Clean. Prod. 2020, 277, 123263. [CrossRef] 2. Long, G.; Gao, Y.; Xie, Y. Designing more sustainable and greener self-compacting concrete. Constr. Build. Mater. 2015, 84, 301–306. [CrossRef] 3. Sainz-Aja, J.; Carrascal, I.; Polanco, J.A.; Thomas, C. Fatigue failure micromechanisms in recycled aggregate mortar by μCT analysis. J. Build. Eng. 2019, 28, 101027. [CrossRef] 4. de Brito, J.; Ferreira, J.G.; Pacheco, J.; Soares, D.; Guerreiro, M. Structural, material, mechanical and durability properties and behaviour of recycled aggregates concrete. J. Build. Eng. 2016, 6, 1–16. [CrossRef] 5. Kou, S.; Poon, C.S. Enhancing the durability properties of concrete prepared with coarse recycled aggregate. Constr. Build. Mater. 2012, 35, 69–76. [CrossRef] 6. 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Mater. 2014, 71, 263–272. [CrossRef] 11. Matias, D.; de Brito, J.; Rosa, A.; Pedro, D. Durability of Concrete with Recycled Coarse Aggregates: Influence of Superplasticizers. J. Mater. Civ. Eng. 2014, 26, 06014011. [CrossRef] 12. Thomas, C.; de Brito, J.; Gil, V.; Sainz-Aja, J.; Cimentada, A. Multiple recycled aggregate properties analysed by X-ray microto- mography. Constr. Build. Mater. 2018, 166, 171–180. [CrossRef] 13. Thomas, C.; de Brito, J.; Cimentada, A.; Sainz-Aja, J. Macro- and micro- properties of multi-recycled aggregate concrete. J. Clean. Prod. 2019, 245, 118843. [CrossRef] 14. Sainz-Aja, J.A.; Carrascal, I.A.; Polanco, J.A.; Sosa, I.; Thomas, C.; Casado, J.; Diego, S. Determination of the Optimum Amount of Superplasticizer Additive for Self-Compacting Concrete. Appl. Sci. 2020, 10, 3096. [CrossRef] 15. Alyamaç, K.E.; Ghafari, E.; Ince, R. Development of eco-efficient self-compacting concrete with waste marble powder using the response surface method. J. Clean. Prod. 2017, 144, 192–202. [CrossRef] 16. Yepes, V.; Martí, J.V.; García-Segura, T. Cost and CO2 emission optimization of precast–prestressed concrete U-beam road bridges by a hybrid glowworm swarm algorithm. Autom. Constr. 2015, 49, 123–134. [CrossRef] 17. Sainz-Aja, J.; Thomas, C.; Polanco, J.A.; Carrascal, I. High-Frequency Fatigue Testing of Recycled Aggregate Concrete. Appl. Sci. 2019, 10, 10. [CrossRef] 18. Merli, R.; Preziosi, M.; Acampora, A.; Lucchetti, M.C.; Petrucci, E. Recycled fibers in reinforced concrete: A systematic literature review. J. Clean. Prod. 2020, 248, 119207. [CrossRef] 19. de Luna, A.M.; Shaikh, F.U.A. Anisotropy and bond behaviour of recycled Polyethylene terephthalate (PET) fibre as concrete reinforcement. Constr. Build. Mater. 2020, 265, 120331. [CrossRef] 20. Chen, M.; Zhong, H.; Chen, L.; Zhang, Y.; Zhang, M. Engineering properties and sustainability assessment of recycled fibre reinforced rubberised cementitious composite. J. Clean. 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Evidence that the Great Pacific Garbage Patch is rapidly accumulating plastic. Sci. Rep. 2018, 8, 1–15. [CrossRef] 26. Tuladhar, R.; Yin, S. Sustainability of Using Recycled Plastic Fiber in Concrete; Elsevier Ltd.: Amsterdam, The Netherlands, 2019. 27. Collins,M.N.;Nechifor,M.;Tanasă,F.;Zănoagă,M.;McLoughlin,A.;Stróz ̇yk,M.A.;Culebras,M.;Teacă,C.-A.Valorization of lignin in polymer and composite systems for advanced engineering applications–A review. Int. J. Biol. Macromol. 2019, 131, 828–849. [CrossRef] 28. Bajwa, D.S.; Pourhashem, G.; Ullah, A.H.; Bajwa, S.G. A concise review of current lignin production, applications, products and their environmental impact. Ind. Crop. Prod. 2019, 139, 111526. [CrossRef] 29. Surendranath, A.; Ramana, P. Valorization of bakelite plastic waste aimed at auxiliary comprehensive concrete. Constr. Build. Mater. 2022, 325, 126851. [CrossRef]

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