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Influence of Particle Size on the Mechanical Performance and Sintering Quality of Peanut Husk Powder/PES Composites Fabricated through Selective Laser Sintering

This study intends to enhance the mechanical strength of wood–plastic composite selective laser sintering (SLS) parts by using a sustainable composite, peanut husk powder (PHP)/poly ether sulfone (PES) (PHPC). The study aims to address agricultural waste pollution by encouraging the eco-friendly uti...

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Autores principales: Idriss, Aboubaker I. B., Yang, Chun-Mei, Li, Jian, Guo, Yanling, Liu, Jiuqing, Abdelmagid, Alaaeldin A. A., Ahmed, Gafer A., Zhang, Hao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10575073/
https://www.ncbi.nlm.nih.gov/pubmed/37835962
http://dx.doi.org/10.3390/polym15193913
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author Idriss, Aboubaker I. B.
Yang, Chun-Mei
Li, Jian
Guo, Yanling
Liu, Jiuqing
Abdelmagid, Alaaeldin A. A.
Ahmed, Gafer A.
Zhang, Hao
author_facet Idriss, Aboubaker I. B.
Yang, Chun-Mei
Li, Jian
Guo, Yanling
Liu, Jiuqing
Abdelmagid, Alaaeldin A. A.
Ahmed, Gafer A.
Zhang, Hao
author_sort Idriss, Aboubaker I. B.
collection PubMed
description This study intends to enhance the mechanical strength of wood–plastic composite selective laser sintering (SLS) parts by using a sustainable composite, peanut husk powder (PHP)/poly ether sulfone (PES) (PHPC). The study aims to address agricultural waste pollution by encouraging the eco-friendly utilization of such waste in SLS technology. To ensure the sintering quality and mechanical properties and prevent deformation and warping during sintering, the thermo-physical properties of PHP and PES powders were analyzed to determine a suitable preheating temperature for PHPC. Single-layer sintering tests were conducted to assess the formability of PHPC specimens with varying PHP particle sizes. The study showed the effects of different PHP particle sizes on the mechanical performance of PHPC parts. The evaluation covered various aspects of PHPC SLS parts, including mechanical strength, density, residual ash content, dimensional accuracy (DA), and surface roughness, with different PHP particle sizes. The mechanical analysis showed that PHPC parts made from PHP particles of ≤0.125 mm were the strongest. Specifically, the density bending strength, residual ash content, tensile, and impact strength were measured as 1.1825 g/cm(3), 14.1 MPa, 1.2%, 6.076 MPa, and 2.12 kJ/cm(2), respectively. Notably, these parameters showed significant improvement after the wax infiltration treatment. SEM was used to examine the PHP and PES powder particles, PHPC specimen microstructure, and PHPC SLS parts before and after the mechanical tests and waxing. Consequently, SEM analysis wholly confirmed the mechanical test results.
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spelling pubmed-105750732023-10-14 Influence of Particle Size on the Mechanical Performance and Sintering Quality of Peanut Husk Powder/PES Composites Fabricated through Selective Laser Sintering Idriss, Aboubaker I. B. Yang, Chun-Mei Li, Jian Guo, Yanling Liu, Jiuqing Abdelmagid, Alaaeldin A. A. Ahmed, Gafer A. Zhang, Hao Polymers (Basel) Article This study intends to enhance the mechanical strength of wood–plastic composite selective laser sintering (SLS) parts by using a sustainable composite, peanut husk powder (PHP)/poly ether sulfone (PES) (PHPC). The study aims to address agricultural waste pollution by encouraging the eco-friendly utilization of such waste in SLS technology. To ensure the sintering quality and mechanical properties and prevent deformation and warping during sintering, the thermo-physical properties of PHP and PES powders were analyzed to determine a suitable preheating temperature for PHPC. Single-layer sintering tests were conducted to assess the formability of PHPC specimens with varying PHP particle sizes. The study showed the effects of different PHP particle sizes on the mechanical performance of PHPC parts. The evaluation covered various aspects of PHPC SLS parts, including mechanical strength, density, residual ash content, dimensional accuracy (DA), and surface roughness, with different PHP particle sizes. The mechanical analysis showed that PHPC parts made from PHP particles of ≤0.125 mm were the strongest. Specifically, the density bending strength, residual ash content, tensile, and impact strength were measured as 1.1825 g/cm(3), 14.1 MPa, 1.2%, 6.076 MPa, and 2.12 kJ/cm(2), respectively. Notably, these parameters showed significant improvement after the wax infiltration treatment. SEM was used to examine the PHP and PES powder particles, PHPC specimen microstructure, and PHPC SLS parts before and after the mechanical tests and waxing. Consequently, SEM analysis wholly confirmed the mechanical test results. MDPI 2023-09-28 /pmc/articles/PMC10575073/ /pubmed/37835962 http://dx.doi.org/10.3390/polym15193913 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Idriss, Aboubaker I. B.
Yang, Chun-Mei
Li, Jian
Guo, Yanling
Liu, Jiuqing
Abdelmagid, Alaaeldin A. A.
Ahmed, Gafer A.
Zhang, Hao
Influence of Particle Size on the Mechanical Performance and Sintering Quality of Peanut Husk Powder/PES Composites Fabricated through Selective Laser Sintering
title Influence of Particle Size on the Mechanical Performance and Sintering Quality of Peanut Husk Powder/PES Composites Fabricated through Selective Laser Sintering
title_full Influence of Particle Size on the Mechanical Performance and Sintering Quality of Peanut Husk Powder/PES Composites Fabricated through Selective Laser Sintering
title_fullStr Influence of Particle Size on the Mechanical Performance and Sintering Quality of Peanut Husk Powder/PES Composites Fabricated through Selective Laser Sintering
title_full_unstemmed Influence of Particle Size on the Mechanical Performance and Sintering Quality of Peanut Husk Powder/PES Composites Fabricated through Selective Laser Sintering
title_short Influence of Particle Size on the Mechanical Performance and Sintering Quality of Peanut Husk Powder/PES Composites Fabricated through Selective Laser Sintering
title_sort influence of particle size on the mechanical performance and sintering quality of peanut husk powder/pes composites fabricated through selective laser sintering
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10575073/
https://www.ncbi.nlm.nih.gov/pubmed/37835962
http://dx.doi.org/10.3390/polym15193913
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