Elevated temperature adhesion testing of spray-applied fire-resistive materials

被引:2
|
作者
White, Christopher C. [1 ]
Tan, Kar Tean [1 ]
Hunston, Donald L. [1 ]
Byrd, Eric W. [1 ]
机构
[1] NIST, Engn Lab Mat & Struct Syst Div, 100 Bur Dr,Stop 8615, Gaithersburg, MD 20899 USA
关键词
ASTM E736; Adhesion; cantilever beam; fracture mechanics; spray-applied fire resistive materials;
D O I
10.1002/fam.2307
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Effective fire protection of steel can be fully realized when spray-applied fire resistive materials (SFRMs) are bonded sufficiently to structural steel during the event of a fire. The adhesion mechanisms and characterization at elevated temperatures, however, have remained elusive, owing to a shortage of quantitative experimental measurements of adhesion between SFRMs and structural steel. In complement with recent efforts aiming to measure the adhesion at ambient temperature, this contribution reports an experimental method based on a fracture mechanics approach to quantify temperature dependent adhesion behaviors of SFRMs adhered to steel substrates. Using this test method, it is shown that a sharp loss in adhesion occurs at temperatures well below 200 degrees C, and a less severe rate at higher temperatures. Thermogravimetric analysis and quasi-state uniaxial compression tests reveal that SFRMs undergo pronounced losses in mass and modulus upon elevated temperature exposures, respectively. Additionally, the dependence of the bulk properties on temperature correlates strongly with that of fracture energy. A mechanism based on mechanical softening and dehydration of SFRMs is proposed to explain the thermally induced adhesion loss. Furthermore, a comparison with the ASTM E736 was made by invoking a fracture mechanics theory. Calculation of bond strengths reveals temperature dependence analogous to the fracture energy data. Also, the residual bond strengths above 150 degrees C fall below the threshold value (i.e., 7.2kPa or 150lb/ft(2)) described in the ASTM E736. Importantly, the SFRMs are found to retain appreciable bond strengths greater than their own body masses, permitting them to remain intact in the event of a fire, in the absence of external perturbations. Published 2015. This article is a U.S. Government work and is in the public domain in the USA.
引用
收藏
页码:519 / 534
页数:16
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