PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 30, 2026Journal of Materials Science Polymers0 citationsOpen Access

Flame retardancy and mechanical effects of ZnB and ATH additives in glass fiber-reinforced polyester composites

BABurcu Nisan ARIAYAyten Nur Yuksel YilmazABAyşe Çelik Bedeloğlu

Key Points

  • This research aims to evaluate the impact of ZnB and ATH additives on the fire resistance and mechanical properties of glass fiber-reinforced polyester composites.
  • Composites were produced by hand lay-up method.
  • Additives included aluminum hydroxide (ATH) and zinc borate (ZnB) at varying concentrations (5%, 10%, 15%).
  • Mechanical properties were characterized by flexural and Charpy impact strength tests.
  • UL-94 horizontal burning tests were conducted to assess fire resistance.
  • Post-combustion analysis was performed to evaluate residue structures.
  • Addition of ATH and ZnB decreased flexural strength but increased impact strength.
  • 5% ATH provided the highest flexural strength of 479.98 MPa.
  • 15% ATH resulted in maximum impact strength of 241.03 kJ/m2.
  • The horizontal burning rate decreased significantly with flame retardant additives, with a maximum performance of 10.23 mm/min in hybrid formulations.
  • Post-combustion analysis indicated ATH formed a porous alumina structure enhancing fire resistance.

Abstract

In this study, the effects of halogen-free flame retardant additives aluminum hydroxide (ATH) and zinc borate (ZnB) on the mechanical and fire resistance properties of glass fiber-reinforced unsaturated polyester (GF/UP) composites were systematically investigated. ATH and ZnB additives (5%, 10% and 15%) were added to the polymer matrix both alone and as hybrids (1:1). The composites were produced by hand lay-up method and characterized by flexural strength, Charpy impact strength and UL-94 horizontal burning tests. In terms of mechanical performance, while addition of ATH and ZnB decreased the flexural strength, increased the impact strength of the composites. 5% ATH additive provided the highest flexural strength (479.98 MPa) among the fire retardant added composites. As the ATH additive increased, the impact strength also increased and a value of 241.03 kJ/m2 was reached with 15% ATH addition. While horizontal burning rate of the composite without additive was about 20.15 mm/min, it decreased with the use of flame retardant additives. Moreover, composite with hybrid additives exhibited the best burning rate performance as 10.23 mm/min. Post-combustion analyses revealed that ATH formed a porous alumina structure and ZnB formed a glassy and dense borate phase. The combination of these two structures formed a more compact and crack-resistant surface residue, limiting heat and oxygen transfer. Overall, the UL-94 horizontal burning results indicate a synergistic trend for the ATH/ZnB hybrid formulations, evidenced by the lowest burning rate and a more coherent post-combustion residue, offering significant potential for the design of sustainable and fire-resistant composite materials for automotive, structural and electrical applications.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

ARI et al. (2026) studied this question.

synapsesocial.com/papers/69ca12d4883daed6ee0950eahttps://doi.org/10.1007/s44493-026-00013-6
Ask AI
Helpful
Bookmark
Share
View Full Paper