Development and characterization of novelly grown fire-resistant fungal fibers

Xijin Zhang1, Yanjun Li2, Xudong Fan1

  • 1Department of Civil and Environmental Engineering, Case Western Reserve University, Cleveland, OH, 44106, USA.

Scientific Reports
|June 27, 2022
PubMed

Insights

Novel fungal fibers enhanced with silica show improved fire resistance compared to polypropylene fibers. These silica-infused fungal fibers offer better thermal stability and reduced combustion, making them promising for fire-resistant concrete applications.

Area of Science:

  • Materials Science
  • Biotechnology
  • Fire Safety Engineering

Background:

  • Traditional concrete additives often have limitations in fire resistance.
  • Developing sustainable and effective fire-resistant materials is crucial for construction.

Purpose of the Study:

  • To characterize the fire-resistant properties of fungal fibers grown with a silica (Si) source.
  • To compare the performance of these novel fungal fibers against polypropylene (PP) fibers in fire scenarios.
  • To investigate the impact of silica concentration on the thermal stability and fire resistance of fungal fibers.

Main Methods:

  • Micro-scale analysis using Scanning Electron Microscopy (SEM) and Fourier-Transform Infrared (FTIR) spectroscopy.
  • Thermal analysis including Thermogravimetric Analysis (TGA) and Microscale Combustion Calorimetry (MCC).
  • Laboratory-scale fire testing to evaluate performance in simulated fire conditions.

Main Results:

  • Silica incorporation created Si-O-C bonds within fungal fibers, altering their structure.
  • Fungal fibers exhibited lower thermal degradation rates, higher residual weight, and reduced heat release compared to PP fibers.
  • Increased silica concentration in the growth substrate significantly enhanced thermal stability and fire resistance, with 2% Si source showing marked improvements.
  • Laboratory tests demonstrated higher residual weight, ignition temperature, and reduced flame height for silica-treated fungal fibers.
  • Post-fire analysis revealed denser char structures and more stable chemical bonds in silica-treated fungal fibers, indicating reduced fuel vapor release and heat transfer.

Conclusions:

  • Fungal fibers grown with a silica source possess superior thermal stability and fire resistance compared to conventional polypropylene fibers.
  • Silica concentration is a key factor in optimizing the fire-resistant performance of these novel fungal fibers.
  • These silica-enhanced fungal fibers present a sustainable and effective alternative for improving the fire resistance of concrete and mitigating spalling.