Converting waste cooking oil (WCO) into high-value materials is challenging due to low profitability and technical barriers. This study first successfully turned WCO into low-cost, high-performance glass fiber–reinforced polymer (GFRP). Specifically, WCO was transformed into photocurable monomer epoxidized waste oil methyl acrylate (EWOMA) by way of epoxidation and ring-opening esterification. EWOMA was then blended with triisopropylsilyl methacrylate (TIPSMA) to formulate an ultraviolet (UV)-curable resin (designated as EWOMA–TIPSMA (ET)) for use as the GFRP matrix, with glass fiber (GF) fabric serving as the reinforcement. The WCO-based GF/ET composite was fabricated by way of a hand lay-up process using a resin-to-fiber mass ratio of 7:3 and was subsequently cured under 405 nm UV light to form the final GFRP. The optimized GF/ET composite, prepared with an ET resin at an EWOMA-to-TIPSMA mass ratio of 3:2, exhibited outstanding mechanical properties, including a tensile strength of 191.92 MPa, a flexural strength of 204.97 MPa, and an impact strength of 103.49 kJ/m2 – representing ∼12.5-, 6.3-, and 35-fold improvements over the neat resin, respectively. In addition, the composite showed low porosity (3.44%) and minimal water absorption (1.57%). This work provides a sustainable, scalable route to transform WCO into structurally competitive composites, combining resource efficiency with high performance for industrial applications.
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Research Article|
March 17 2026
Synthesis and mechanical properties of glass fiber–reinforced polymer based on waste cooking oil Available to Purchase
Yang Yang;
Yang Yang
College of Materials Science and Engineering,
Guilin University of Technology
, Guilin, China
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Weiting Li;
Weiting Li
College of Materials Science and Engineering,
Guilin University of Technology
, Guilin, China
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Chuanyang Tang;
Chuanyang Tang
College of Materials Science and Engineering,
Guilin University of Technology
, Guilin, China
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Guangzhi Qin;
Guangzhi Qin
College of Materials Science and Engineering,
Guilin University of Technology
, Guilin, China
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Fangping Shen;
Fangping Shen
College of Materials Science and Engineering,
Guilin University of Technology
, Guilin, China
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Minghui Li;
Minghui Li
College of Materials Science and Engineering,
Guilin University of Technology
, Guilin, China
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Mengyao Wu;
Mengyao Wu
College of Materials Science and Engineering,
Guilin University of Technology
, Guilin, China
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Haitian Jiang;
Haitian Jiang
College of Materials Science and Engineering,
Guilin University of Technology
, Guilin, China
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Shuoping Chen
Guangxi Key Laboratory of Optical and Electronic Materials and Devices, College of Materials Science and Engineering,
Guilin University of Technology
, Guilin, China
Corresponding author Shuoping Chen (chenshuoping_777@163.com)
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Corresponding author Shuoping Chen (chenshuoping_777@163.com)
Publisher: Emerald Publishing
Received:
October 19 2025
Accepted:
February 02 2026
Online ISSN: 2049-1239
Print ISSN: 2049-1220
Funding
Funding Group:
- Award Group:
- Funder(s): Guangxi Science and Technology Plan Project
- Award Id(s): GuikeAB24010252,GuikeAD25069100
- Funder(s):
- Award Group:
- Funder(s): National Natural Science Foundation of China
- Award Id(s): 52363015,51763007
- Funder(s):
- Funding Statement(s): This work was supported by the Guangxi Science and Technology Plan Project (Grant Nos. GuikeAB24010252 and GuikeAD25069100) and the National Natural Science Foundation of China (Grant Nos. 52363015 and 51763007).
© 2026 Emerald Publishing Limited
2026
Emerald Publishing Limited
Licensed re-use rights only
Green Materials 1–15.
Article history
Received:
October 19 2025
Accepted:
February 02 2026
Citation
Yang Y, Li W, Tang C, Qin G, Shen F, Li M, Wu M, Jiang H, Chen S (2026;), "Synthesis and mechanical properties of glass fiber–reinforced polymer based on waste cooking oil". Green Materials, Vol. ahead-of-print No. ahead-of-print. https://doi.org/10.1680/jgrma.25.00168
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