Resende Heron Freitas, Reis Elvys Dias, Arroyo Felipe Nascimento, de Moraes Matheus Henrique Morato, Dos Santos Herisson Ferreira, da Silva Enio Gomes, Lahr Francisco Antonio Rocco, Chahud Eduardo, Panzera Tulio Hallak, Christoforo André Luis, Branco Luiz Antônio Melgaço Nunes
Engineering School, Federal University of Minas Gerais, Belo Horizonte 31270-901, Minas Gerais, Brazil.
Engineering School, Federal Center for Technological Education of Minas Gerais, Belo Horizonte 30421-169, Minas Gerais, Brazil.
Materials (Basel). 2022 Jul 5;15(13):4711. doi: 10.3390/ma15134711.
Investigations into the fire resistance of high-strength concrete (HSC) is extremely important to optimize structural design in construction engineering. This work describes the influence of polypropylene fibers on the mechanical properties and durability of HSC at high temperatures (25, 100, 200, 400, 600 and 800 °C). HSC specimens with 2 kg/m composed of polypropylene fibers are tested in a temperature range of 25 to 800 °C, followed by microstructural analysis. In addition, a statistical analysis is designed to identify the effect of factors, namely temperature and polypropylene fibers, and their interactions on mechanical properties and water absorption, electrical resistivity, mass loss and ultrasonic velocity. Most of the properties are improved by the incorporation of fibers, obtaining highly predictable regression models. However, the polypropylene fibers reduce compressive strength but improve the residual mechanical properties up to 400 °C.
研究高强度混凝土(HSC)的耐火性对于优化建筑工程中的结构设计极为重要。本文描述了聚丙烯纤维在高温(25、100、200、400、600和800℃)下对高强度混凝土力学性能和耐久性的影响。对含2kg/m³聚丙烯纤维的高强度混凝土试件在25至800℃的温度范围内进行测试,随后进行微观结构分析。此外,设计了一项统计分析,以确定温度和聚丙烯纤维等因素及其相互作用对力学性能、吸水率、电阻率、质量损失和超声波速度的影响。通过掺入纤维,大多数性能得到改善,得到了高度可预测的回归模型。然而,聚丙烯纤维会降低抗压强度,但能提高高达400℃时的残余力学性能。