Sodium Silicate/Urea/Melamine Ternary Synergistic Waterborne Acrylic Acid Flame-Retardant Coating and Its Flame-Retardant Mechanism.

flame-retardant coating flame-retardant mechanism poplar veneer sodium silicate ternary synergistic flame retardant

Journal

Molecules (Basel, Switzerland)
ISSN: 1420-3049
Titre abrégé: Molecules
Pays: Switzerland
ID NLM: 100964009

Informations de publication

Date de publication:
26 Mar 2024
Historique:
received: 23 02 2024
revised: 14 03 2024
accepted: 22 03 2024
medline: 13 4 2024
pubmed: 13 4 2024
entrez: 13 4 2024
Statut: epublish

Résumé

Waterborne acrylic coatings, the largest market share of predominant environmentally friendly coatings, face limitations in their extensive application due to their flammability. The flame-retardant properties of the coatings could be significantly enhanced by incorporate inorganic flame retardants. However, inorganic flame retardants tend to aggregate and unevenly disperse in waterborne acrylic coatings, causing a substantial decrease in flame retardancy. In this work, sodium silicate was utilized as a flame retardant, with urea and melamine serving as modifiers and synergistic agents. This combination resulted in the preparation of a sodium silicate/urea/melamine ternary synergistic waterborne acrylic flame-retardant coating. This coating was applied to the surface of poplar veneer to create flame-retardant poplar veneer. Subsequently, various instruments, including a scanning electron microscope (SEM), a limiting oxygen index meter (LOI), a thermogravimetric analyzer (TG), and a cone calorimeter (CONE), were employed to investigate the relevant properties and mechanisms of both the flame-retardant coating and poplar veneer. The results demonstrated that the sodium silicate/urea/melamine ternary synergistic flame retardant did not exhibit aggregation and could be uniformly dispersed in waterborne acrylic coatings. The physical and mechanical properties of the ternary synergistic flame-retardant poplar veneer coating were satisfactory. Melamine and urea, acting as modifiers, not only greatly enhanced the dispersibility of sodium silicate in waterborne acrylic coatings, but also assisted in the formation of a silicon-containing char layer through the generation of nitrogen, achieving ternary synergistic flame retardancy. In conclusion, this work explores a novel method to efficiently and uniformly disperse inorganic flame retardants in organic coatings. It significantly improves the dispersibility and uniformity of inorganic flame retardants in organic polymers, thereby substantially enhancing the flame-retardant performance of coatings. This work provides a theoretical basis for the research and application of new flame-retardant coatings in the field of chemistry and materials.

Identifiants

pubmed: 38611752
pii: molecules29071472
doi: 10.3390/molecules29071472
pii:
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Subventions

Organisme : Zhejiang Provincial Natural Science Foundation
ID : LZ23C160002
Organisme : Zhejiang Provincial Key Research and Development Program
ID : 2019C02037

Auteurs

Yuran Shao (Y)

Bamboo Industry Institute, Zhejiang A & F University, Hangzhou 311300, China.
College of Chemistry and Materials Engineering, Zhejiang A & F University, Hangzhou 311300, China.

Yuting Wang (Y)

Bamboo Industry Institute, Zhejiang A & F University, Hangzhou 311300, China.
College of Chemistry and Materials Engineering, Zhejiang A & F University, Hangzhou 311300, China.

Fei Yang (F)

Bamboo Industry Institute, Zhejiang A & F University, Hangzhou 311300, China.
College of Chemistry and Materials Engineering, Zhejiang A & F University, Hangzhou 311300, China.

Chungui Du (C)

Bamboo Industry Institute, Zhejiang A & F University, Hangzhou 311300, China.
College of Chemistry and Materials Engineering, Zhejiang A & F University, Hangzhou 311300, China.

Jiawei Zhu (J)

Bamboo Industry Institute, Zhejiang A & F University, Hangzhou 311300, China.
College of Chemistry and Materials Engineering, Zhejiang A & F University, Hangzhou 311300, China.

Ying Ran (Y)

Bamboo Industry Institute, Zhejiang A & F University, Hangzhou 311300, China.
College of Chemistry and Materials Engineering, Zhejiang A & F University, Hangzhou 311300, China.

Qichao Bao (Q)

Bamboo Industry Institute, Zhejiang A & F University, Hangzhou 311300, China.
College of Chemistry and Materials Engineering, Zhejiang A & F University, Hangzhou 311300, China.

Yingying Shan (Y)

College of Chemistry and Materials Engineering, Zhejiang A & F University, Hangzhou 311300, China.

Weigang Zhang (W)

Bamboo Industry Institute, Zhejiang A & F University, Hangzhou 311300, China.
College of Chemistry and Materials Engineering, Zhejiang A & F University, Hangzhou 311300, China.

Classifications MeSH