Materials · 2020 · 15 citations · 29 references
EngineeringPolyethylene FibersMechanical EngineeringNylon FibersThermoplastic CompositeFire ResistancePolymer CompositesUltra-high-performance ConcreteThermal StrainMaterials ScienceFiber ReinforcementFibre-reinforced PlasticFire SafetyReinforced ConcreteFiber-reinforced Cement CompositeStructural Fire SafetyAdditive ReinforcementStructural Fire EngineeringCivil EngineeringPolymer ScienceWater Vapor PressureMechanics Of Materials
The prevention and mitigation of spalling in high-strength concrete (HSC) rely on mixing polypropylene (PP) as an additive reinforcement. The dense internal structures of ultra-high-strength concrete (UHSC) result in risks associated with a high thermal stress and high water vapor pressure. Herein, the effects of pore formation and thermal strain on spalling are examined by subjecting fiber-laden UHSC to conditions similar to those under which the ISO-834 standard fire curve was obtained. Evaluation of the initial melting properties of the fibers based on thermogravimetric analysis (TGA) and differential thermal analysis (DTA) demon strated that although nylon fibers exhibit a higher melting point than polypropylene and polyethylene fibers, weight loss occurs below 200 °C. Nylon fibers were effective at reducing spalling in UHSC compared to polypropylene and polyethylene fibers as they rapidly melt, leading to pore formation. We anticipate that these results will serve as references for future studies on the prevention of spalling in fiber-reinforced UHSC.
29
Limits of spalling of fire-exposed concrete
Kristian Dahl Hertz · Fire Safety Journal · 2003 · 509 citations
Nonna Yermak, Prosper Pliya, Anne‐Lise Beaucour et al. · Construction and Building Materials · 2016 · 262 citations
Materials Science, Fiber Reinforcement, Reinforcement Material +8