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Lightweight Biobased Polyurethane Composites Derived from Liquefied Polyol Reinforced by Biomass Sources with High Mechanical Property and Enhanced Fire-Resistance Performance.
Nguyen, Tuan An; Vo, Dang Khoa; Nguyen, Khoa T D; Tran, Doan Q; Nguyen, Dang Mao; Nguyen, Ngoc Thuy; Vu, Tien Trung; Nguyen, Vy T; Hoang, DongQuy.
  • Nguyen TA; Faculty of Materials Science and Technology, University of Science, Vietnam National University, Ho Chi Minh City 700000, Vietnam.
  • Vo DK; Vietnam National University, Ho Chi Minh City 700000, Vietnam.
  • Nguyen KTD; Faculty of Materials Science and Technology, University of Science, Vietnam National University, Ho Chi Minh City 700000, Vietnam.
  • Tran DQ; Vietnam National University, Ho Chi Minh City 700000, Vietnam.
  • Nguyen DM; Faculty of Materials Science and Technology, University of Science, Vietnam National University, Ho Chi Minh City 700000, Vietnam.
  • Nguyen NT; Vietnam National University, Ho Chi Minh City 700000, Vietnam.
  • Vu TT; Faculty of Materials Science and Technology, University of Science, Vietnam National University, Ho Chi Minh City 700000, Vietnam.
  • Nguyen VT; Vietnam National University, Ho Chi Minh City 700000, Vietnam.
  • Hoang D; Université de Lorraine, LERMAB, 186 Rue de Lorraine, Cosnes-et-Romain 54400, France.
ACS Omega ; 9(17): 19182-19192, 2024 Apr 30.
Article en En | MEDLINE | ID: mdl-38708195
ABSTRACT
Lightweight biobased insulation polyurethane (BPU) composite foams with high fire-resistance efficiency are interested in building effective energy and low environmental impact today. This study focuses on manufacturing lightweight BPU from liquefied bamboo polyols and biomass resources, including rice husk and wood flour. Then, they are combined with three flame retardant (FR) additives, such as aluminum diethyl phosphinate, aluminum trihydroxide, and diammonium phosphate, to improve their fire resistance performance. The physicochemical properties, microstructure, thermal stability, mechanical properties, and flame-retardant properties of the BPU composites are characterized to optimize their compromise properties. The results showed that composites with optimized FRs achieved UL94 V-0 and those with nonoptimized FRs reached UL94 HB. The limiting oxygen index exhibited that the fire resistance of BPU composites could increase up to 21-37% within FR additives. In addition, the thermal stability of BPU composites was significantly improved in a temperature range of 300-700 °C and the compressive strength of the BPU composites was also enhanced with the presence of FRs. The scanning electron microscopy observation showed an influence of FRs on the morphology and cell size of the BPU composites. The bio-PU-derived samples in this study showed significantly low thermal conductivity values, demonstrating their remarkable thermal insulation effectiveness.