Kodur Venkatesh, Venkatachari Svetha, Matsagar Vasant A, Singh Shamsher Bahadur
Department of Civil and Environmental Engineering, Michigan State University (MSU), 3546 Engineering Building, East Lansing, MI 48823, USA.
Department of Civil Engineering, Indian Institute of Technology (IIT) Delhi, Hauz Khas, New Delhi 110 016, India.
Polymers (Basel). 2022 Apr 24;14(9):1734. doi: 10.3390/polym14091734.
Recent research trends focus on developing bio-based (derived from agricultural byproducts) fiber-reinforced polymer (FRP) composites for structural applications. Fire resistance is one of the key issues that need to be addressed for the use of these FRP materials in buildings. The thermal and mechanical properties of the constituent materials essentially determine the fire performance (and the fire resistance rating) of a structural member, and these properties vary with temperature. Further, the properties of composite materials such as the FRP are highly influenced by the composition and type of fibers and matrix, and these thermo-mechanical properties also vary significantly with temperature. Due to this variation, the fire resistance of FRP materials (both conventional and bio-based) poses a major concern for use in buildings. Currently, very few standardized test procedures are available for evaluating the high-temperature material properties of FRP composites. In this paper, a review of testing protocols and procedures for undertaking tests on FRP materials at various elevated temperatures for evaluating their properties is carried out. Recommendations are provided on the most suitable test methods, specimen conditions, testing regime, and other issues associated with testing at elevated temperatures. In addition, the applicability of the proposed test methods is illustrated through a case study on conventional FRP specimens. Further, the applicability of the recommended test procedures for measuring high-temperature properties of bio-based FRP composites is highlighted.
近期的研究趋势集中在开发用于结构应用的生物基(源自农业副产品)纤维增强聚合物(FRP)复合材料。耐火性是这些FRP材料在建筑中使用时需要解决的关键问题之一。组成材料的热性能和机械性能从根本上决定了结构构件的防火性能(以及耐火等级),并且这些性能会随温度变化。此外,诸如FRP之类的复合材料的性能受到纤维和基体的组成及类型的高度影响,并且这些热机械性能也会随温度显著变化。由于这种变化,FRP材料(传统的和生物基的)的耐火性成为其在建筑中使用的主要关注点。目前,用于评估FRP复合材料高温材料性能的标准化测试程序非常少。本文对在各种高温下对FRP材料进行测试以评估其性能的测试协议和程序进行了综述。针对最合适的测试方法、试样条件、测试方案以及与高温测试相关的其他问题提供了建议。此外,通过对传统FRP试样的案例研究说明了所提出测试方法的适用性。进一步强调了推荐的测试程序用于测量生物基FRP复合材料高温性能的适用性。