Wood Plastic Composite Based on Recycled High-Density Polyethylene and Wood Waste (Sawdust)

被引:3
作者
Oliveros-Gaviria, Camilo [1 ]
Cumbalaza, Edwin [1 ]
Mina-Hernandez, Jose Herminsul [1 ]
Valencia-Zapata, Mayra Eliana [2 ]
Suarez-Bonilla, Juan Nicolas [3 ]
Martinez-Mera, Nicolas [1 ]
机构
[1] Univ Valle, Escuela Ingn Mat, Grp Mat Comp, Calle 13 100-00, Cali 760001, Colombia
[2] Univ Ind Santander, Escuela Ingn Met & Ciencia Mat, Carrera 27 Calle 9, Bucaramanga 680002, Colombia
[3] Diseclar Diseno & Fabricac Ecol, Carrera 76 6-217, Cali 760001, Colombia
关键词
wood plastic composite; high-density polyethylene; deforestation; lignocellulosic materials; coupling agents; weather resistance; HDPE;
D O I
10.3390/polym16223136
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
The current work presents the reformulation of a composite based on high-density polyethylene obtained through the recycling of blow-molded containers (rHDPE) with natural fiber residues (wood sawdust). This material is technically and industrially known as WPC (wood plastic composite). The original formulation of this material contains 34% high-density polyethylene and 60% sawdust by weight fraction, while the remaining components include additives and coupling agents such as wax (Coupling Agent TPW 813 for plastic woods), stearic acid, and color pigment. The composite material was processed using the profile extrusion method, from which samples were obtained to conduct various experimental tests. The mechanical analysis revealed that both the strength and Young's modulus of the tensile and flexural properties slightly increased with the addition of sawdust to the composite. Additionally, the stiffness was higher compared to high-density polyethylene, indicating a direct relationship between these properties and the amount of sawdust incorporated. Besides this, other characterization methods were performed on the material, including density, hardness, and compression tests, as well as differential scanning calorimetry (DSC), thermogravimetric analysis (TGA), natural and accelerated aging tests, Vicat softening temperature, and heat deflection temperature analysis (HDT). The initial evaluation provides a guide to enhance the most important properties with the aim of using the extruded profiles as pergolas in the real estate sector. Therefore, new formulations are developed with the assistance of Minitab 21 software, maintaining a constant proportion of materials that do not affect the mechanical properties, such as wax, stearic acid, and color pigment. Once the formulations are made, each one is characterized through tensile tests to determine which has the best performance. The formulation with the highest strength is re-characterized using the techniques mentioned in the starting material to obtain a material with the most optimal characteristics.
引用
收藏
页数:21
相关论文
共 50 条
[41]   The Effect of the Addition of Copper Particles in High-Density Recycled Polyethylene Matrices by Extrusion [J].
Arcos, Camila ;
Munoz, Lisa ;
Cordova, Deborah ;
Munoz, Hugo ;
Walter, Mariana ;
Azocar, Manuel I. ;
Leiva, Angel ;
Sancy, Mamie ;
Rodriguez-Grau, Gonzalo .
POLYMERS, 2022, 14 (23)
[42]   Recycled from waste tires carbon black/high-density polyethylene composite: Multi-scale mechanical properties and polymer aging [J].
Billotte, Catherine ;
Romana, Laurence ;
Flory, Anny ;
Kaliaguine, Serge ;
Ruiz, Edu .
POLYMER COMPOSITES, 2024, 45 (13) :11605-11618
[43]   High density polyethylene/wood flour composite: Optimization of processing temperature, processing time and coupling agent concentration [J].
Ranjbarha, Zahra ;
Aberoomand-Azar, Parviz ;
Mokhtari-Aliabad, Javad ;
Mirmohammadi, Seyed Amin ;
Saber-Tehrani, Mohammad .
POLYMERS & POLYMER COMPOSITES, 2021, 29 (9_SUPPL) :S106-S116
[44]   Optimization of a wood plastic composite for architectural applications [J].
Martins, G. ;
Antunes, F. ;
Mateus, A. ;
Malca, C. .
INTERNATIONAL CONFERENCE ON SUSTAINABLE AND INTELLIGENT MANUFACTURING (RESIM 2016), 2017, 12 :203-220
[45]   Effect of acetylation and additive on the tensile properties of wood fiber-high-density polyethylene composite [J].
Ben Mbarek, Talel ;
Robert, Laurent ;
Sammouda, Habib ;
Charrier, Bertrand ;
Orteu, Jean-Jose ;
Hugot, Francoise .
JOURNAL OF REINFORCED PLASTICS AND COMPOSITES, 2013, 32 (21) :1646-1655
[46]   Wood plastic composites in Europe:: an introduction to wood plastic composite markets and products [J].
Liukko, Tuukka ;
Salila, Tuomas ;
Platt, Samantha ;
Karki, Timo .
BALTIC FORESTRY, 2007, 13 (01) :131-136
[47]   Effects of Boron Compounds on the Mechanical and Fire Properties of Wood-chitosan and High-density Polyethylene Composites [J].
Wu, Guo-Fu ;
Xu, Min .
BIORESOURCES, 2014, 9 (03) :4173-4193
[48]   Resistance of paper mill sludge/wood fiber/high-density polyethylene composites to water immersion and thermotreatment [J].
Yang, Xiaohui ;
Wang, Weihong ;
Huang, Haibing .
JOURNAL OF APPLIED POLYMER SCIENCE, 2015, 132 (11)
[49]   Impact and thermal analysis of heat-treated and untreated mangrove wood/high-density polyethylene composites [J].
Ganiyat Olusola Adebayo ;
Aziz Hassan ;
Rosiyah Yahya ;
Norazilawati Muhamad Sarih ;
Kamilu A. Bello ;
Lawrence Ekebafe .
Polymer Bulletin, 2020, 77 :3813-3829
[50]   Isothermal crystallization kinetics of Kevlar fiber-reinforced wood flour/high-density polyethylene composites [J].
Ou, Rongxian ;
Xie, Yanjun ;
Guo, Chuigen ;
Wang, Qingwen .
JOURNAL OF APPLIED POLYMER SCIENCE, 2012, 126 :E2-E9