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 BedeloğluMimar Sinan Güzel Sanatlar Üniversitesi

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

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Effects of Zinc Borate, Aluminum Hydroxide, and Magnesium Hydroxide on the Flame‐Retardant Performance and Mechanical Properties of Glass Fiber‐Reinforced Epoxy Composites2026
  2. 2Synergistic Effects of ATH, APP, Zinc Borate, and Antimony Oxide on the Mechanical and Flame-Retardant Properties of Glass Fiber-Reinforced Polyester Composites2025
  3. 3Optimizing Alumina Trihydrate in <scp>GFRP</scp> Unsaturated Polyester Composites: Flame Retardancy and Mechanical Performance2026
  4. 4Gas-Phase and Condensed-Phase Flame-Retardant Mechanisms in Polyurethane Coatings Modified with ATH, Borax and Carbonate for Wood Protection2026
  5. 5Thermal and Flame Retardant Performance of Glass Fiber-Reinforced UPR Composites Modified with Boric Acid and Sodium Silicate2025