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Enhanced Fire Safety of Energy-Saving Foam by Self-Cleavage CO Pre-Combustion and Phosphorus Release Post-Combustion. | LitMetric

AI Article Synopsis

  • Rigid polyurethane foam (RPUF) is valued in construction and rail transport for being lightweight and energy-efficient, but its flammability poses risks in fires.
  • This study investigates the use of potassium salts and a reactive flame retardant (DFD) to enhance fire safety by delaying ignition and preventing flame spread through various chemical mechanisms.
  • The combination of these additives improves the foam's fire resistance without sacrificing its strength or insulation properties, presenting a promising method for developing safer RPUF.

Article Abstract

Rigid polyurethane foam (RPUF) is widely utilized in construction and rail transportation due to its lightweight properties and low thermal conductivity, contributing to energy conservation and emission reduction. However, the inherent flammability of RPUF presents significant challenges. Delaying the time to ignition and preventing flame spread post-combustion is crucial for ensuring sufficient evacuation time in the event of a fire. Based on this principle, this study explores the efficacy of using potassium salts as a catalyst to promote the self-cleavage of RPUF, generating substantial amounts of CO, thereby reducing the local oxygen concentration and delaying ignition. Additionally, the inclusion of a reactive flame retardant (DFD) facilitates the release of phosphorus-oxygen free radicals during combustion, disrupting the combustion chain reaction and thus mitigating flame propagation. Moreover, potassium salt-induced catalytic carbonization and phosphorus derivative cross-linking enhance the condensed phase flame retardancy. Consequently, the combined application of potassium salts and DFD increases the limiting oxygen index (LOI) and reduces both peak heat release rate (PHRR) and total heat release (THR). Importantly, the incorporation of these additives does not compromise the compressive strength or thermal insulation performance of RPUF. This integrated approach offers a new and effective strategy for the development of flame retardant RPUF.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11314537PMC
http://dx.doi.org/10.3390/molecules29153708DOI Listing

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