4.7 Article

Preparation and Characterisation of Sustainable Wood Plastic Composites Extracted from Municipal Solid Waste

期刊

POLYMERS
卷 13, 期 21, 页码 -

出版社

MDPI
DOI: 10.3390/polym13213670

关键词

sustainable chemical engineering; wood plastic; composite materials; municipal solid waste; extrusion; sustainable polymers; moulding process

资金

  1. Fundamental Research Foundation for the Central Universities, China [xzd012021052]
  2. National Natural Science Foundation of Shanxi Province of China [2021JZ-03]
  3. Science and Technology Planning Project of Xi'an of China [20KYPT0001-11-3]

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The study focused on recycling plastic waste by manufacturing wood-plastic composites with improved mechanical properties. Increasing the wood powder ratio resulted in higher bending strength, while reducing the water swelling ratio of the plastic matrix and wood particles led to better mechanical properties. The type of wood species also played a key role in determining the dimensional stability and mechanical properties of the composites.
Municipal solid waste (MSW) contains plastic waste that can be used as a sustainable green substitute to reduce oil footprints, CO2 emissions, and environmental pollution. This study aims to recycle plastic waste by manufacturing wood-plastic composites and to improve its mechanical properties by using additives, coupling agents, and lubricants. These composites are prepared by mixing 40-70% of wood flour with 20-25% of a polymer matrix. Wood was degraded at 220 & DEG;C, and then the composites were processed at 50 & DEG;C. The manufacturing process carried out in the study involved wood waste meshing, drying, shredding, drying, trimming, filling, blending, compounding, and extrusion moulding. The compounding of composites was accomplished in twin-screw extruders. Once the mixture was uniformly mixed, its final shape was given by a two-step extrusion moulding. Previously, researchers aimed at enhancing the mechanical properties of the composites, but our research focus was to improve their durability for different industrial applications. The results suggest that the impact strength is 17 MPa with 50% of wood powder ratio while the maximum value for the tensile strength is 32.5 MPa. About 50% of an increase in wood powder resulted in 8.1% bending strength increase from 26.1 to 32.8 MPa. Reducing the plastic matrix and the wood-particles water swelling ratio resulted in better mechanical properties. The wood species also affected the mechanical properties with their excellent dimensional stability and less variability. A high proportion of wood fibre tends to increase its steady-state torque and viscosity. The mechanical properties against different wood-flour proportions indicate that composite materials exhibit superior water swelling behaviour and extrusion quality.

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