Post-Heat Flexural Properties of Siloxane-Modified Epoxy/Phenolic Composites Reinforced by Glass Fiber

Author:

Ji Yundong12,Zhang Xinchen1ORCID,Wang Changzeng1,Li Shuxin2345,Cao Dongfeng245

Affiliation:

1. School of Materials Science and Engineering, Wuhan University of Technology, Wuhan 430070, China

2. State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan 430070, China

3. Hubei Key Laboratory of Theory and Application of Advanced Materials Mechanics, Wuhan University of Technology, Wuhan 430070, China

4. Foshan Xianhu Laboratory of the Advanced Energy Science and Technology Guangdong Laboratory, Foshan 528000, China

5. Institute of Advanced Materials and Manufacturing Technology, Wuhan University of Technology, Wuhan 430070, China

Abstract

The post-heat mechanical property is one of the important indices for the fire-resistance evaluation of fiber-reinforced polymers. At present, the primary approach to improving the post-heat mechanical property of a material involves incorporating inorganic fillers; yet, the enhancement is limited, and is accompanied by a reduction in room-temperature performance and processability. This study prepares glass-fiber-reinforced composites with elevated mechanical properties after heat through utilizing two variants of epoxy resins modified with polysiloxane, phenolic resin, kaolin, and graphite. In comparison to the phenolic samples, the phenylpropylsiloxane-modified epoxy resulted in a 115% rise in post-heat flexural strength and a 70% increase in the room-temperature flexural strength of phenolic composites. On the other hand, dimethylsiloxane-modified epoxy leads to a 117% improvement in post-heat flexural strength but a 44% decrease in the room-temperature flexural strength of phenolic composites. Macroscopic/microscopic morphologies and a residual structure model of the composites after heat reveal that, during high temperature exposure, the pyrolysis products of polysiloxane promote interactions between carbon elements and fillers, thus preserving more residues and improving the dimensional stability as well as the density of materials. Consequently, a notable enhancement is observed in both the post-heat flexural strength and the mass of carbon residue after the incorporation of polysiloxane and fillers into the materials. The pyrolysis products of polysiloxane-modified epoxy play a vital role in enhancing the post-heat flexural strength by promoting carbon retention, carbon fixation, and interactions with fillers, offering novel pathways for the development of advanced composites with superior fire-resistance properties.

Funder

National Natural Science Foundation of China

Major Program (JD) of Hubei Province

Publisher

MDPI AG

Reference38 articles.

1. Post-fire flexural properties of fibre-reinforced polyester, epoxy and phenolic composites;Mouritz;J. Mater. Sci.,2002

2. Post-fire mechanical properties of marine polymer composites;Mouritz;Compos. Struct.,1999

3. Post-fire mechanical properties of glass-reinforced polyester composites;Mouritz;Compos. Sci. Technol.,2001

4. Experimental Study on Ignition and Combustion Characteristics of Fibre-Reinforced Phenolic Composite;Chen;Key Eng. Mater.,2016

5. (2018). Standard Specification for Fiber-Reinforced Polymer (FRP) Gratings Used in Marine Construction and Shipbuilding (Standard No. ASTM F3059-18).

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