Have a personal or library account? Click to login
Physical and Mechanical Properties of Dune Sand Mortar Reinforced with Recycled Pet Fiber: An Experimental Study Cover

Physical and Mechanical Properties of Dune Sand Mortar Reinforced with Recycled Pet Fiber: An Experimental Study

Open Access
|Dec 2022

References

  1. 1. Y.W. Choi, D.J. Moon, Y.J. Kim, M. Lachemi, Characteristics of mortar and concrete containing fine aggregate manufactured from recycled waste polyethylene terephthalate bottles, Construction and Building Materials. 23 (2009) 2829–2835.10.1016/j.conbuildmat.2009.02.036
  2. 2. K. Hannawi, S. Kamali-Bernard, W. Prince, Physical and mechanical properties of mortars containing PET and PC waste aggregates, Waste Management. 30 (2010) 2312–2320.10.1016/j.wasman.2010.03.02820417085
  3. 3. J.M.L. Reis, E.P. Carneiro, Evaluation of PET waste aggregates in polymer mortars, Construction and Building Materials. 27 (2012) 107–111.10.1016/j.conbuildmat.2011.08.020
  4. 4. S. Akçaozoǧlu, C. Ulu, Recycling of waste PET granules as aggregate in alkaliactivated blast furnace slag/metakaolin blends, Construction and Building Materials. 58 (2014) 31–37.10.1016/j.conbuildmat.2014.02.011
  5. 5. F.A. Spósito, R.T. Higuti, M.M. Tashima, J.L. Akasaki, J.L.P. Melges, C.C. Assunção, M. Bortoletto, R.G. Silva, C.F. Fioriti, Incorporation of PET wastes in rendering mortars based on Portland cement/hydrated lime, Journal of Building Engineering. 32 (2020) 101506.10.1016/j.jobe.2020.101506
  6. 6. M. Hacini, A.S. Benosman, N.K. Tani, M. Mouli, Y. Senhadji, A. Badache, N. Latroch, Utilization and assessment of recycled Polyethylene Terephthalate strapping bands as lightweight aggregates in Eco-efficient composite mortars. Construction and Building Materials. 270 (2021) 12142710.1016/j.conbuildmat.2020.121427
  7. 7. Y. Choi, D. Moon, J. Chung, S. Cho, Effects of waste PET bottles aggregate on the properties of concrete, Cement and Concrete Research. 35 (2005) 776–781.10.1016/j.cemconres.2004.05.014
  8. 8. A. Sadrmomtazi, S. Dolati-Milehsara, O. Lot, A. Sadeghi-Nik, The combined effects of waste Polyethylene Terephthalate (PET) particles and pozzolanic materials on the properties of self- compacting concrete, Journal of Cleaner Production. 112 (2016) 2363–2373.10.1016/j.jclepro.2015.09.107
  9. 9. E. Rahmani, M. Dehestani, M.H.A. Beygi, H. Allahyari, I.M. Nikbin, On the mechanical properties of concrete containing waste PET particles, Construction and Building Materials. 47 (2013) 1302–130810.1016/j.conbuildmat.2013.06.041
  10. 10. F. Fraternali, S. Spadea, V.P. Berardi, Effects of recycled PET fibres on the mechanical properties and seawater curing of Portland cement-based concretes, Construction and Building Materials. 61 (2014) 293–30210.1016/j.conbuildmat.2014.03.019
  11. 11. R. Tang, Q. Wei, K. Zhang, S. Jiang, Z. Shen, Y. Zhang, C.W.K. Chow. Preparation and performance analysis of recycled PET fiber reinforced recycled foamed concrete. Journal of Building Engineering. 57 (2022) 104948A.
  12. 12. H. Alani, M. A.M. Johari, A.T. Noaman, N.M. Bunnori, T.A. Majid, Effect of the incorporation of PET fiber and ternary blended binder on the flexural and tensile behaviour of ultra-high performance green concrete, Construction and Building Materials. 331 (2022) 127306.
  13. 13. A.A. Mohammed, A.A.F. Rahim, Experimental behavior and analysis of high strength concrete beams reinforced with PET waste fiber, Construction and Building Materials. 244 (2020) 118350.10.1016/j.conbuildmat.2020.118350
  14. 14. L.A. Pereira de Oliveira, João P. Castro-Gomes, Physical and mechanical behaviour of recycled PET fibre reinforced mortar, Construction and Building Materials. 25 (2011) 1712-1717.10.1016/j.conbuildmat.2010.11.044
  15. 15. M. Małek, M. Jackowski, W. Łasica, M. Kadela, Characteristics of recycled polypropylene fibers as an addition to concrete fabrication based on Portland cement, Materials. 13 (2020) 1827.10.3390/ma13081827
  16. 16. F. Alrshoudi, H. Mohammadhosseini, M.M. Tahir, R. Alyousef, H. Alghamdi, Y. Alharbi, A. Alsaif, Drying shrinkage and creep properties of prepacked aggregate concrete reinforced with waste polypropylene fibers, Journal of Building Engineering. 32 (2020) 101522.10.1016/j.jobe.2020.101522
  17. 17. J. Thorneycroft, J. Orr, P. Savoikar, R. Ball, Performance of structural concrete with recycled plastic waste as a partial replacement for sand, Construction and Building Materials. 161 (2018) 63–69.10.1016/j.conbuildmat.2017.11.127
  18. 18. I. Almeshal, B.A. Tayeh, R. Alyousef, H. Alabduljabbar, A.M. Mohamed, Ecofriendly concrete containing recycled plastic as partial replacement for sand, Journal of Materials Research and Technology. 9 (3) (2020) 4631–4643.10.1016/j.jmrt.2020.02.090
  19. 19. AFNOR standards organisation. Méthodes d’essais des ciments - Partie 1: détermination des résistances mécaniques. NF EN 196-1 (2006).
  20. 20. S. Guettala, B. Mezghiche, M. Mellas, Influence of addition dune sand powder to cement, on the properties physical-mechanical and deformability of concrete, Asian Journal of Civil Engineering (Building and Housing). 13 (6) (2012) 765-781.
  21. 21. M. Liu, Y. Hu, Z. Lai, T. Yan, X. He, J. Wu, Z. Lu, S. Lv, Influence of various bentonites on the mechanical properties and impermeability of cement mortars, Construction and Building Materials. 241 (2020) 118015.10.1016/j.conbuildmat.2020.118015
  22. 22. H. Zanni, M. Cheyrezy, V. Maret, S. Philippot, P. Nieto, Investigation of hydration and pozzolanic reaction in reactive powder concrete (RPC) using 29 Si NMR, Cement and Concrete Research. 26 (1) (1996) 93–100.10.1016/0008-8846(95)00197-2
  23. 23. J. Du, W. Meng, K.H. Khayat, Y. Bao, P. Guo, Z. Lyu, A. Abu-obeidah, H. Nassif, H. Wang, New development of ultra-high-performance concrete (UHPC), Composites Part B: Engineering. 224 (2021) 109220.10.1016/j.compositesb.2021.109220
  24. 24. A.H. Alani, M.A.M. Johari, A.T. Noaman, N.M. Bunnori, T.A. Majid. Effect of the incorporation of PET fiber and ternary blended binder on the flexural and tensile behaviour of ultra-high performance green concrete, Construction and Building Materials. 331 (2022) 127306.10.1016/j.conbuildmat.2022.127306
  25. 25. AFNOR standards organisation. Bétons - Mesure du temps d’écoulement des bétons et des mortiers aux maniabilimètres NF 18-452 (1988).
  26. 26. AFNOR standards organisation. Méthodes d’essai des mortiers pour maçonnerie - Partie 6: Détermination de la masse volumique apparente du mortier frais. NF EN 1015-6 (1999).
  27. 27. AFNOR standards organisation. Méthodes d’essai des mortiers pour maçonnerie - Partie 10: détermination de la masse volumique apparente sèche du mortier durci. NF EN 1015-10 (2000).
  28. 28. AFNOR standards organisation. Méthodes d’essai des mortiers pour maçonnerie - Partie 18: détermination du coefficient d’absorption d’eau par capillarité du mortier durci. NF EN 1015-18 (2003).
  29. 29. American society for testing material. Standard Test Method for Pulse Velocity Through Concrete. ASTM C597-02 (2010)
  30. 30. M. Malešev, V. Radonjanin, I. Lukić, V. Bulatović, The effect of aggregate, type and quantity of cement on modulus of elasticity of lightweight aggregate concrete, Arabian Journal for Science and Engineering. 39 (2) (2014) 705–711.10.1007/s13369-013-0702-2
  31. 31. T. Gupta, S. Chaudhary, R.K. Sharma, Mechanical and durability properties of waste rubber fiber concrete with and without silica fume, Journal of Cleaner Production. 112 (1) (2016) 702-711.10.1016/j.jclepro.2015.07.081
  32. 32. M.B. Leite, J.G.L. Figueire do Filho, P.R.L. Lima, Workability study of concretes made with recycled mortar aggregate, Materials and Structures. 46 (2013) 1765–1778.10.1617/s11527-012-0010-4
  33. 33. İ.B. Topçu, S. Şengel, Properties of concretes produced with waste concrete aggregate, Cement and Concrete Research. 34 (2004) 1307–1312.10.1016/j.cemconres.2003.12.019
  34. 34. T. Felixkala, P. Partheeban, Granite powder concrete, Indian Journal of Science and Technology. 3(3) (2010) 311–31710.17485/ijst/2010/v3i3.6
  35. 35. Z. Laidani, Y. Ouldkhaoua, M. Sahraoui, B. Benabed, Feasibility of marble powder and calcined bentonite in SCM as partial substitution of cement for sustainable production Építőanyag – Journal of Silicate Based and Composite Materials. 74 (2022) 61–66.10.14382/epitoanyag-jsbcm.2022.10
  36. 36. C.B. Farinha, J. de Brito, R. Veiga, Incorporation of high contents of textile, acrylic and glass waste fibres in cement-based mortars. Influence on mortars’ fresh, mechanical and deformability behavior, Construction and Building Materials. 303 (2021) 124424.10.1016/j.conbuildmat.2021.124424
  37. 37. T. Ochi, S. Okubo, K. Fukui, Development of recycled PET fiber and its application as concrete-reinforcing fiber, Cement and Concrete Composites. 29 (6) (2007) 448–455.10.1016/j.cemconcomp.2007.02.002
  38. 38. R. Tang, Q. Wei, K. Zhang, S. Jiang, Z. Shen, Y. Zhang, C.W.K. Chow, Preparation and performance analysis of recycled PET fiber reinforced recycled foamed concrete, Journal of Building Engineering. 57 (2022) 10494810.1016/j.jobe.2022.104948
  39. 39. D. Niu, L.i. Su, Y. Luo, D. Huang, D. Luo, Experimental study on mechanical properties and durability of basalt fiber reinforced coral aggregate concrete, Construction and Building Materials. 237 (2020) 117628.10.1016/j.conbuildmat.2019.117628
  40. 40. X.U.E. Weipei, L.I.U. Xiaoyuan, Y.A.O. Zhishu, H. Cheng, L.I. Haopeng, Effects of different damage sources on pore structure change characteristics of basalt fiber reinforced concrete, Journal of Composite Materials. 37 (9) (2020) 2285-2293.
  41. 41. D. Niu, D. Huang, Q. Fu, Experimental investigation on compressive strength and chloride permeability of fiber-reinforced concrete with basalt-polypropylene fibers, Advances in Structural Engineering. 22 (2019) 2278–2288.10.1177/1369433219837387
  42. 42. D. Wang, Y. Ju, H. Shen, L. Xu, Mechanical properties of high performance concrete reinforced with basalt fiber and polypropylene fiber, Construction and Building Materials. 197 (2019) 464–473.10.1016/j.conbuildmat.2018.11.181
  43. 43. Y. Yao, B. Wang, Y. Zhuge, Z. Huang, Properties of hybrid basalt-polypropylene fiber reinforced mortar at different temperatures, Construction and Building Materials. 346 (2022) 128433.10.1016/j.conbuildmat.2022.128433
  44. 44. A. Toghroli, P. Mehrabi, M. Shariati, N.T. Trung, S. Jahandari, H. Rasekh, Evaluating the use of recycled concrete aggregate and pozzolanic additives in fiber-reinforced pervious concrete with industrial and recycled fibers, Construction and Building Materials. 252 (2020) 118997.10.1016/j.conbuildmat.2020.118997
DOI: https://doi.org/10.2478/adms-2022-0018 | Journal eISSN: 2083-4799 | Journal ISSN: 1730-2439
Language: English
Page range: 41 - 56
Published on: Dec 30, 2022
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2022 Abderrahmane Ghrieb, Yacine Abadou, published by Gdansk University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.