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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.
Abstract:
This study conducted a comprehensive characterization and analyses on the fire-resistant behaviors of novel fungal fibers grown with substrate containing Silica (Si) source at multiple scales. At micro-scale, the results of SEM showed that silica affected the physiological activities of fungi, with the extent of effects depending upon its concentration. Fourier-transform infrared (FTIR) spectra displayed the existence of Si-O-C chemical bonds in fungal fibers grown with Si source, indicating that Si source becomes a part of the structure of fungal fibers. Thermogravimetric analysis (TGA) and Microscale combustion calorimetry (MCC) of fungal fibers exhibit an early thermal decomposition of non-combustible components, which will potentially help release the thermal stress and mitigation of spalling when used in concrete. Compared with polypropylene (PP) fibers, fungal fibers have a lower thermal degradation rate, a higher residual weight, a lower heat release peak temperature, and less total heat of combustion; all of these indicate improved thermal stability and fire resistance, and a lower rate of function loss in case of a fire. Additionally, the thermal stability and fire resistance of fungal fibers were improved with the increase of Si source concentration in the nutrition medium. For example, addition of 2% Si source in the feeding substrate leads to a 23.21% increase in residual weight in TGA, and a 23.66 W/g decrease in peak heat release rate as well as a 2.44 kJ/g reduction in total heat of combustion in MCC. At laboratory scale, compared with PP fibers, fungal fibers grown with 2% Si source have a higher residual weight of 40.40%, a higher ignition temperature of 200.50 °C, and a declined flame height of 11.64 mm in real fire scenarios. Furthermore, only in the fungal fibers grown with Si source, partial burning occurred. In post-fire conditions, the microstructure of residual char from fungal fibers grown with higher content of Si source became denser, which would lead to a reduction of the fuel vapor release and heat transfer. FTIR spectra of residual char demonstrated that fungal fibers grown with Si source formed more stable chemical bonds with higher heat of chemical bond formation, contributing to improved thermal stability and fire resistance. Therefore, compared with traditional fibers used for fiber reinforced concrete, incorporating the new natural grown fibers will potentially further improve the fire resistance of concrete and mitigate the concrete spalling.
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.

