全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...

Influence of Plastic and Coconut Shell (Cocos nucifera L.) on the Physico-Mechanical Properties of the 8/6 Composite Rafter

DOI: 10.4236/ojcm.2023.134005, PP. 57-68

Keywords: Plastic Waste, Coconut Shell, Recovery, Mechanical and Physical Properties, 8/6 Composite Chevron

Full-Text   Cite this paper   Add to My Lib

Abstract:

In this paper, the authors aim to propose the use of waste plastics as a binder in a coconut shell reinforcement for the development of an 8/6 size composite rafter to replace the natural 8/6 size backbone in construction. Following a study into the choice of the best proportions, a total of 30 size 8/6 composite rafters with different proportions of 20%, 25%, 30%, 35%, 40% and 50% plastic content were developed. All the 8/6 composite rafters were subjected to mechanical (3-point bending strength and Monnin hardness) and physical (bulk density and water absorption) characterization analyses. The results show that flexural strength increases from 27.56 MPa to 33.30 MPa for proportions ranging from 20% to 35% plastic content. Above 35% plastic, the strength drops to 19.60 MPa for a 50% plastic content. Similarly, the Monnin hardness drops from 9 mm to 5 mm when the plastic content varies from 20 to 50%. As for the results of the physical characterisation, the values obtained for apparent density vary from 0.89 to 1 for proportions varying from 20% to 35% plastic content and drop to 0.94 for 50% plastic content. As for water absorption, values drop from 6.82% to 2.45% when the plastic content increases from 20% to 50%. These mechanical strengths stabilise at 35% plastic content. The development of an 8/6 chevron composite material based on plastic and coconut shell could therefore be a way of recovering waste and solving the problem of deforestation.

References

[1]  Fanny, T. (2009) Setting up a Unit for Processing Plastic Bags into Cobblestones. Internship Report to the Association for a Sunny Future (PAE) TOGO, Pierre Mendes-France University.
[2]  Kaho, S.P. (2022) Recovery of Industrial Waste: Development of Composite Materials Based on Expanded Polystyrene and Wood Chips. Doctoral Thesis, Félix Houphouët Boigny University, Abidjan, 138.
[3]  Raomaninasolo, H.M (2018) Production of Activated Carbon from Coconut Endocarp. Master’s Dissertation, University of Antananarivo, Antananarivo, 119.
[4]  Doublier, G. (2008) Recycling Sheet for Plastic Bags.
http://mailloud.ids.free.fr/valorisationplastiques.pdf
[5]  Traoré, B. (2018) Elaboration and Characterization of a Composite Structure (Sand and Recycled Plastic Waste): Improvement of Resistance by Clay Fillers. Doctoral Thesis, Félix Houphouët Boigny University, Abidjan, 212.
[6]  Kosuth, M., Mason, S.A. and Wattenberg, E.V. (2018) Anthropogenic Contamination of Tap Water, Beer, and Sea Salt. PLOS ONE, 13, e0194970,.
https://doi.org/10.1371/journal.pone.0194970
[7]  UNEP (2016) Marine Plastic Debris and Microplastics—Global Lessons and Research to Inspire Action and Guide Policy Change. United Nations Environment Programme, Nairobi, 77.
[8]  Balogoun, C.K., Bawa, L.M., Osseni, S. and Aina, M. (2015) Preparation of Activated Carbons by Phosphoric Acid Chemical Route Based on Coconut Shell. International Journal of Biological and Chemical Sciences, 9, 563-580.
https://doi.org/10.4314/ijbcs.v9i1.48
[9]  Diabagate, A. (2016) Elaboration of Activated Carbons Based on Coconut Shell: Application to the Elimination of Methylene Blue. Master’s Thesis, Nangui Abrogoua University, Abidjan, 56.
[10]  Traoré, B. (2010) Recycling of Plastic Waste: Design of a New Material Based on Plastic (Polyethylene) and Sand: Plasticizable. Master’s Thesis, Université Félix Houphouët-Boigny, Abidjan, 67 p.
[11]  Fofana, M.S. (2018) Plastic Tile: Characterization and Optimization of the Material. Master’s Thesis, Félix Houphouët Boigny University, Abidjan, 56.
[12]  Cyrille, P.N., Raoul, Z.-G., Aime, M.D.G., Luce, M.-P.R., Victoire, O.N.N. and José, K.-K. (2022) Recovery of Plastic Waste into Building Materials. European Scientific Journal, 18, 13.
[13]  Rakotosaona, R., Ramaroson, J.D., Mandimbisoa, M., Andrianaivoravelona, J.O., Andrianary, P., Randrianarivelo, F. and Andrianaivo, L. (2014) Pilote-Scale Recovery of Plastic Waste for the Manufacture of Building Materials. 54-69.
https://docplayer.fr/15112139-Valorisation-a-l-echelle-pilote-des-dechets-plastiques-pour-la-fabrication-de-materiaux-de-construction.html
[14]  Mariam, B. (2011) Contribution to the Development of Household Waste through the Production and Sale of Paving Stones. Master’s Thesis, International Institute of Water and Environmental Engineering, Mali, 51.
[15]  Ledru, Y. (2009) Study of Porosity in Aeronautical Laminated Composite Materials. Doctoral Thesis, University of Toulouse, Toulouse, 242.

Full-Text

comments powered by Disqus

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133