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Influence of thermo-oxidative aging and thermal shock testing on the fire performance of high-Tg epoxy-based GFRP systems

DOI zum Zitieren der Version auf EPub Bayreuth: https://doi.org/10.15495/EPub_UBT_00009516
URN to cite this document: urn:nbn:de:bvb:703-epub-9516-1

Title data

Demleitner, Martin ; Niederauer, Quirin ; Treiber, Bastian ; Ruckdäschel, Holger:
Influence of thermo-oxidative aging and thermal shock testing on the fire performance of high-Tg epoxy-based GFRP systems.
In: Fire Safety Journal. Vol. 163 (2026) . - 104769.
ISSN 1873-7226
DOI der Verlagsversion: https://doi.org/10.1016/j.firesaf.2026.104769

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Abstract

In fire-critical sectors like transportation and construction, flame-retardant composite systems must adhere to stringent safety standards. However, their long-term fire performance is often unexplored, as most studies assess fire behavior only in the as-received state, neglecting potential degradation due to environmental exposures. This study addresses this gap by examining the effects of thermo-oxidative aging and thermal shock testing on glass fiber reinforced composites, comparing both neat and flame-retardant modified version using aluminum diethyl phosphinate (AlPi). An initial assessment was carried out to identify the optimum concentration of AlPi and the impact of glass-fiber reinforcement on the fire behavior. Thermo-oxidative aging at 200 °C for 1000 h showed only slight effects. The maximum average rate of heat emission (MARHE) and effective heat of combustion (EHC) decreased, suggesting enhanced gas-phase flame inhibition and increased char stability. Visual inspections confirmed more stable char layers and reduced delamination in aged, flame-retardant composites. In contrast, thermal shock testing led to significant mechanical degradation, evidenced by up to a 30 reduction in interlaminar shear strength. This degradation is attributed to microcrack formation from internal stresses. Fire performance also deteriorated, with increases in MARHE and total smoke production (TSP) indicating more complete combustion.

Further data

Item Type: Article in a journal
Keywords: Fire behavior; Thermal shock,; Thermo-oxidative aging,; GFRP; Cone calorimetry
DDC Subjects: 600 Technology, medicine, applied sciences > 620 Engineering
Institutions of the University: Faculties > Faculty of Engineering Science > Chair Polymer Materials > Chair Polymer Materials - Univ.-Prof. Dr.-Ing. Holger Ruckdäschel
Faculties
Faculties > Faculty of Engineering Science
Faculties > Faculty of Engineering Science > Chair Polymer Materials
Language: English
Originates at UBT: Yes
URN: urn:nbn:de:bvb:703-epub-9516-1
Date Deposited: 24 Jul 2026 12:08
Last Modified: 24 Jul 2026 12:09
URI: https://epub.uni-bayreuth.de/id/eprint/9516

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