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The application of intumescent coatings for fire protection of steel constructions is increasing.
Thanks to the relative thin thickness of the coatings, the typical visual appearance of the
structures can be preserved. In Germany, the applicability of the systems is regulated by the
national as well as European technical approvals. According to the approvals, the application
on steel members in tension is only allowed with limitations. Especially, the application on
solid steel rods in tension is currently not covered. The paper will explain the actual state of
the art of the application of reactive fire protection systems applied to steel structures.
Physical and technical background information will be provided. After that, the latest
scientific results of an on-going research project funded by the German National Institute of
Building Technology (DIBt) and conducted by the Federal Institute for Materials Research
and Testing (BAM) will be described.
The potentialities of a thin layer of steel-fiber reinforced self-compacting concrete (SFRSCC) for the flexural strengthening of handmade brick structural elements are investigated. For this purpose, an experimental program was carried out covering the relevant phenomena that can influence the effectiveness of this technique. The SFRSCC has a post-cracking residual tensile strength capable of improving the flexural stiffness, flexural resistance and ductility of prototypes representatives of ancient handmade brick based structures that fail in bending. To appraise the flexural strengthening effectiveness of this technique, straight beams composed of handmade bricks, low-strength mortar (LSM) and SFRSCC were tested. The obtained results have shown that this technique can increase significantly the flexural stiffness and resistance, and the ductility performance of this type of structures. The strengthening effectiveness depends on the post-cracking residual strength of the SFRSCC, its layer thickness and on the possibility of replacing part of the LSM by SFRSCC. Based on the experimental results for the characterization of the intervening materials, and adopting a cross section layer model capable of predicting the moment-curvature relationship for the distinct types of cross sections of this structural system, the maximum load registered in the tested prototypes was predicted with good accuracy.